SlideShare a Scribd company logo
1 of 17
Download to read offline
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
DOI : 10.14810/ijmech.2014.3406 51
AIRFOIL LINEAR WIND GENERATOR (ALWG): AS A
NOVEL WIND ENERGY EXTRACTION APPROACH
Hossein Darijani1
and Abbas Panahi2
1,2
Department of Mechanical Engineering, College of Engineering, Shahid
Bahonar University of Kerman, Kerman, Iran
ABSTRACT
Linear wind generator (LWG) is a sufficient way of wind energy harnessing process. However, complicated
LWG energy extraction mechanism such as complex system for transferring linear motion to rotational
motion and problems related to changing the angle of attack is resulted to energy dissipation. In the other
hand the linear generator that delivers ocean wave energy to electricity has been developed as a new
renewable energy extraction method. Some of the problems associated with this technology are corrosion,
high cost of manufacturing, high requirement for installation and construction, economical consideration,
etc. In the most recent works, low dissipation energy in mechanism, low cost, simplicity and high
performance are highly regarded as environmentally friendly methods for wind energy extraction
mechanisms. In the current study, we would like to introduce a new and efficient method to extract wind
energy using airfoil linear wind generator(ALWG). ALWG is a new method that produces liner
reciprocating motion via attached airfoils to a mover in a magnetic field in order to generate electricity.
The most important advantage of ALWG is its simplicity and its compatibility to all wind situations that can
be more controllable relative to ocean-based and also relative to LWG that become challengeable problem.
KEYWORDS
Keywords: ALWG, Airfoil, Linear Generator, Wind Energy
1. INTRODUCTION
An urgent and strategic issue of our society is the solution of the atmosphere pollution problems
which posed by electric energy generation from fossil flues as nonrenewable sources [1].
Obviously, these problems can be resolved by the use of natural sources that are renewable,
cheap, easily available and sustainable for the environment. However, the actual renewable
technologies up to now had not such potentials. As a result, many attempts have been conducted
in order to utilize wind [2], ocean wave [3], solar [4], etc. as green energy sources. One of the
most well-known examples is wind mills or wind turbine that is used as a realistic approach to
harness wind energy in great amount. Wind farms have problems of land occupation and
environmental impact because of this fact that their electrical production depend on the amount of
area that they occupy [5]. To overcome these problems, Milanese et al. has developed a new class
of wind energy generators, named “Kitegen” as shown in Figure 1, [6, 7].
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
52
Figure 1. The mechanism of operation of kite generator
There are many obstacles in front of Kitegen project development, due to the main problems that
wind has created for controlling the trajectory of kite and its stability [8]. Up to now, there are
rare methods to utilize this project efficiently. Consequently, there is much consideration on
Kitegen project in the recent years in order to extract wind energy using this method practically.
For example, Laddermill [9] with similar situations to Kitegen is one of the used technologies. In
the Laddermill structure there are many kites which are connected to a main rode that is twisted
around an attached drum to generator (Figure 2).
Figure 2. The structure of a Laddermill
Another important approach which has been introduced based on Kitegen operation principle, is
linear wind generator (LWG). The LWG can convert an equivalent swept area of wind compared
to wind turbine generator (WTG) into twice the amount of electricity. Also, it is simple to install
and can produce electricity at a substantially lower cost and within a significantly smaller land
area compared to WTGs.
To introduce the LWG operation its principle is demonstrated in Figure 3.
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
53
Figure 3. The principle of action of a LWG
As shown in Fig.3, first, air passing over the initial stage blades to produce a lift force. The air
velocity, after passing the first stage, is reduced significantly and requires the second stage blades
to be angled appropriately because of the changed apparent wind vector. The second stage blades
also produce a lift force component in the direction of cable travel thereby adding to the first
stage’s contribution; by this way the most amount of winds energy have been harnessed .
As you can see in the LWG operation mechanism, it suffers from a complicated energy extraction
process due to a complex system for transferring linear motion to rotational motion. Furthermore,
it has problems originated from changing the angle of attack which are resulted to the energy
dissipation and system life reduction.
One of the newest ideas is the use of linear generator (LG) to convert ocean wave energy to
electricity [10]. The simple structure of a LG for energy extraction from ocean is shown in Figure
4.
Figure 4. The main structure of an ocean wave energy generator
Although the energy extraction from ocean ,[11], is interesting and can be used for special
applications, however it suffer from some drawbacks such as corrosion, high cost of
manufacturing, high requirement for installation and construction, economical consideration, etc.
[12] . Nowadays, some modifications to already existing methodologies to renewable energy
extraction, considering the environmental consciousness in both industrial and academic studies,
have received great attention. Along this line, herein, we introduce a new mechanism (Figure 5)
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
54
based on aerodynamic forces exerts on airfoil by air current. In this method we used from linear
generator instead of rotary generator. Overall, in our protocol the lock-unlock mechanisms and
angle of attack changer is eliminated in order to save energy by use of a flywheel and change of
angleof attack only.
Figure 5. Overall picture of an ALWG
2.1. The structure and mechanism of AWLG
The main structure of a designed AWLG is depicted in Figure 6.
Figure 6. The main components of ALWG and its operation
As shown in Fig. 6, an AWLG contains 3 substructures: 1) a set of airfoils, 2) linear generator and
3) a device for saving energy (flywheel or spring). In AWLG, in first cycle the angle of attack of
airfoil will be changed in order to exert an upward force on airfoil. While the airfoil reaches to the
maximum level in the vertical path, simultaneously the flywheel is saving fraction of the energy.
After this process the flywheel operates and complete the other cycle. Taking into account the
fact that airfoil is on a beam, a reciprocating motion will be produce in perpendicular direction
relative to wind. Considering this issue that radial and axial force occur in the linear generator
(between rotor and stator, this force is due to the geometrical magnetic anisotropy of the
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
55
generator), the existence of flywheel is necessary in order to maintain continues motion and
homogenize anisotropy forces [13]. In the second cycle (operation of flywheel), the changer of
angle of attack mechanism can deplete it to minimum level. This action decrease the lift force on
the airfoil to zero as it reaches to minimum length relative to generator. Affected by this actionthe
flux in the stator coils varies with the mover position from maximum to minimum. Consequently,
an AC motion-induced voltage is produced in the stator coil as a result of up-and-down
oscillatory motion of the mover.
2.2. Conservation of energy
The magnetic flux (φ) can be determined using the following equation (Eq. 1) in the presence of
a magnetic field (B):
∅ = න ‫.ܤ‬ ݀ܽԦ
(1)
Also, to determine the electromotance, in the presence of a magnetic field the Faraday induction
low is used (Eq. 2). (For more study [14])
݁ = −
݀ሺܰ∅ሻ
݀‫ݐ‬
(2)
According to this equation the electromotance (voltage) induced in a close circuit are equal minus
the time derivation of total flux enclosed by the circuit. The minus sign is confirmed that the
direction of the current induced in the circuit is opposed to the direction of increasing flux.
The mechanism of operation of linear actuator according to the equations 1 and 2 is shown in
Figure 7, which is the principle of a linear generator in reverse manner.
Figure 7. The principle of operation of linear generator & actuator
Because the electromechanical energy conversion process is reversible, actuators can be operated
as linear electric generators, in which case mechanical energy is transformed into electric energy.
The fundamental energy conversion equation is demonstrated in Eq. 3.
‫ݔܨ‬ሶ = ܸ‫ܫ‬ (3)
Where F is mechanical force, N; dx/dt is mechanical velocity m/s; V is voltage, and I is current. It
is assumed that F and x are in the same direction.
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
56
When the stator coil is fed with an electric current, the ferromagnetic translator is pulled into the
air gap (between the stator poles) until, for x = 0, the force becomes zero. At x = 0 all the flux
lines ideally become vertical (aligned flux position) and the stored energy in the magnetic field is
minimal. Now, if the current is turned off, the mechanical spring pulls the translator out from the
air gap to x = -l/2 position. At this position the current is turned on again. Sustained oscillations
obtain. This mechanism explain the work of linear actuator ,but it is practical that we reverse the
mechanism in order to getting electricity by enforce mover to experience a reciprocating motion
.We do this work by means of lift force that has been accomplished by an airfoil [14] .
2.3. Mathematical modeling of motion of airfoil
Figure 8 schematically shows an airfoil installed in wind direction.
Figure 8. The mathematical modeling of an airfoil motion
It is assumed that the airfoil can move only vertically. The displacement of the center of mass is z
and it is positive when going upward. The wind is blowing at uniform horizontal of speed u.
When the airfoil moves upward at a speed of v the surrounding air moves downward relative to
the airfoil at the same speed. To the oncoming air flow, the angle of attack of the airfoil can be
obtained by use of the following equation:
ߙ = ߙ଴ + ‫݊ܽݐ‬ିଵ
ቀ
‫ݒ‬
‫ݑ‬
ቁ (4)
In absence of wind the angle of attack of airfoil is ߙ଴ and after that airfoil senses wind the angle
of attack increases as amount of	‫݊ܽݐ‬ିଵ
ሺ
௩
௨
ሻ.
The lift of the airfoil in the direction normal to the flow has the expression as:
‫ܮ‬ =
1
2
ߩሺ‫ݑ‬ଶ
+ ‫ݒ‬ଶሻܵ‫݈ܥ‬
(5)
Where ߩ	is air density, S the projected area of airfoil, and CL is the lift coefficient of the airfoil.
The lift coefficient increases by enhancement of the angle of attack up to stall point. It should be
mentioned that the angle of attack will be reduced, if the rising of angle of attack continue. The
curve of CL versus angle of attack is shown in Figure 9.
International Journal of Recent advances in Mechanical Engineering (IJMEC
Figure 9. Lift coefficient (C
In this study the thin airfoil theory is used in which lift coefficient has a linear relation with angle
of attack (Eq. 6).
‫ܥ‬௅ = 2ߨߙ
It is necessary to avoid very high angle of attack due to the effect of induced drag that cause
exerting an undesirable force in direction of air flow. In high angle of attack, the linear generator
may experience unfavorable input and this can effects on b
motion on it (Fig. 5). Consequently,
More importantly, 'vortex' is an imperative point that could exist when aspect ratio (AR) is
finite. Vortex causes some circulation behind of the airfoil
top and below of the airfoil, that all together cause low effective angle of attack relative to airfoil
section with infinite aspect ratio (AR=
drag force and induced drag as two main factors in structure designing.
The equations of motion for the center of mass are:
݀‫ݖ‬
݀‫ݐ‬
= ‫݉										݀݊ܽ						ݒ‬
݀‫ݒ‬
݀‫ݐ‬
= −
Upon substitution of the value ܿ‫ݏ݋‬
݉
݀‫ݒ‬
݀‫ݐ‬
= −݉݃ − ݂௔௫௜௔௟ + ߨߩܵ
In which m is the sum of mass of airfoil and rotor ( considered 5 Kg ) ,u is velocity of wind,
velocity of mover,݂௔௫௜௔௟is axial force due to the effect of geometrical magnetic anisotropy of the
generator ,ߙ଴ is initial angle of attack ,S is projected area of airfoil .
By considering the fact that electrical power plus losses in generator
current… etc. is equal the mechanical power, so we determined its value as follow:
ܲ = ‫ܸܨ‬
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
Figure 9. Lift coefficient (CL) versus angle of attack (α)
In this study the thin airfoil theory is used in which lift coefficient has a linear relation with angle
It is necessary to avoid very high angle of attack due to the effect of induced drag that cause
exerting an undesirable force in direction of air flow. In high angle of attack, the linear generator
may experience unfavorable input and this can effects on beam that airfoil has a reciprocating
motion on it (Fig. 5). Consequently, α should be selected in a certain range in order to avoid stall.
More importantly, 'vortex' is an imperative point that could exist when aspect ratio (AR) is
ortex causes some circulation behind of the airfoil, unbalanced pressure distribution on
top and below of the airfoil, that all together cause low effective angle of attack relative to airfoil
section with infinite aspect ratio (AR=∞). In this work for simplicity we ignored the effects of
drag force and induced drag as two main factors in structure designing.
The equations of motion for the center of mass are:
−݉݃ + ‫ݏ݋ܿܮ‬ሺ∆ߙሻ − ݂௔௫௜௔௟
ܿ‫ߙ∆ݏ݋‬ =
௨
√௨మା௩మ
and L, the second equation becomes:
ߨߩܵ	‫ݑ‬ ቆߙ଴ + ‫݊ܽݐ‬ିଵ
ቀ
‫ݒ‬
‫ݑ‬
ቁቇ ඥ‫ݑ‬ଶ + ‫ݒ‬ଶ
In which m is the sum of mass of airfoil and rotor ( considered 5 Kg ) ,u is velocity of wind,
is axial force due to the effect of geometrical magnetic anisotropy of the
is initial angle of attack ,S is projected area of airfoil .
By considering the fact that electrical power plus losses in generator due to hysteresis, iron, eddy
etc. is equal the mechanical power, so we determined its value as follow:
H) Vol.3, No.4, November 2014
57
In this study the thin airfoil theory is used in which lift coefficient has a linear relation with angle
(6)
It is necessary to avoid very high angle of attack due to the effect of induced drag that cause
exerting an undesirable force in direction of air flow. In high angle of attack, the linear generator
eam that airfoil has a reciprocating
should be selected in a certain range in order to avoid stall.
More importantly, 'vortex' is an imperative point that could exist when aspect ratio (AR) is
, unbalanced pressure distribution on
top and below of the airfoil, that all together cause low effective angle of attack relative to airfoil
work for simplicity we ignored the effects of
(7)
and L, the second equation becomes:
(8)
In which m is the sum of mass of airfoil and rotor ( considered 5 Kg ) ,u is velocity of wind,	‫ݒ‬ is
is axial force due to the effect of geometrical magnetic anisotropy of the
due to hysteresis, iron, eddy
(9)
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
58
By substituting (8) into (9) following equation will be obtained:
ܲ = ቆ−݉݃ − ݂௔௫௜௔௟ + ߨߩܵ	‫ݑ‬ ቆߙ଴ + ‫݊ܽݐ‬ିଵ
ቀ
‫ݒ‬
‫ݑ‬
ቁቇ ඥ‫ݑ‬ଶ + ‫ݒ‬ଶቇ ‫ݒ‬
(10)
And also eq. 11 is as follow:
ܲ =
ܸଶ
ܴ
(11)
In Eq. 11 R is the equivalent resistant in circuit which depends on the generator and also electrical
properties of stator and rotor which is considered its value a constant. Figure (10) shows
schematically a lumped circuit equivalent of the generator can be used to understand how the
current in generator is related to induced electromotance.
Figure 10 : Lumped circuit equivalent of a synchronous generator
The circuit equivalent is only an approximation but is useful for pedagogical reasons. Figure (10)
shows the equivalence of a generator where the measurable voltage is described by an
electromotance Enl .This voltage is referred to no load voltage, which is the measurable voltage at
the coil ends when no current flows through the generator’s is the reactance of the generator .Rc
is the resistance in the coil windings .The outer circuit, or the load, can be either purely resistive
or reactive. In this work the load is assumed to be strictly resistive and is described by a resistance
RloadThe voltage over the load U will thus be in phase with the armature current Ia.
2.4 Power losses
The power losses in a generator consist of three parts:
1. Losses due to the changing magnetic field (often referred to steel losses)
2. Resistive losses in the coil windings
3. Mechanical losses such as friction and deformation.
The main part of these losses happen in the stator steel .It consists of two parts: hysteresis losses
and losses due to eddy currents.
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
59
2.4.1 Hysteresis losses
Hysteresis losses is the energy it takes to reverse the magnetization of the material and will only
effect materials that are magnetic dipoles .The losses are approximately proportional to the
frequency of the magnetic field and the acquirer of the magnetic induction and per unit volume is
as follows:
ܲ௛ = ‫ܥ‬௛‫ܤ‬ଶ
݂ (12)
Where Ch is a material dependent constant. Hysteresis losses can be reduced by selecting a
material with soft magnetic properties i.e. a material that is easily re-magnetized hysteresis.
2.4.2 Eddy current losses
Eddy currents are circular electric current in a material by the changing magnetic field. These
current are directly proportional to the electromotance induced in circuit by changing magnetic
flux. And the power losses per unit volume is proportional to the square of current as follow:
ܲா = ‫ܥ‬ா
1
ܶ
න ൬
߲‫ܤ‬
߲‫ݐ‬
൰
ଶ
≈ ‫ܥ‬ா‫ܤ‬ଶ
݂ଶ
்
଴
(13)
CE is a material constant depending on the resistivity and T is the time of one period .The major
part of eddy losses appear in stator and can be depleted by assembling them with electric isolated
lamination of the stator steel.
2.4.3 Resistive losses
The resistive losses in the coil windings are referred to as copper losses because the conductor in
most cases are made of copper. Since copper is not a magnetic dipole material hysteresis losses
will not appear. The resistive losses in a conductor with electrical resistance R caring current I
are:
ܲ௖ = ‫ܫ‬ଶ
ܴ (14)
Table 1. The value of wasted powers in a considered linear generator
Hysteresis (KW) 0.52
Eddy current losses (KW) 0.07
Rotational losses (KW) 0.03
Total iron losses (KW) 0.62
In the Eq.15 the principle of conservation of energy is mentioned, that explain the relation
between electrical energy and mechanical energy and also their relevant losses.
P(mechanical)+P(friction-loss)=P(electrical)+P(Copper, iron,… losses) (15)
By substituting (eq. 10) into (eq. 11) and by use of (eq. 15) and also ignoring the amount of losses
(because estimating the maximum energy output of this mechanism is regarded). As a result the
following equation is obtained.
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
60
ܸ = ඨܴ௘௤௔௟ ቆ−݉݃ − ݂௔௫௜௔௟ + ߨߩܵ	‫ݑ‬ ቆߙ଴ + ‫݊ܽݐ‬ିଵ ቀ
‫ݒ‬
‫ݑ‬
ቁቇ ඥ‫ݑ‬ଶ + ‫ݒ‬ଶቇ ‫		ݒ‬ (16)
After plotting P (power) versus mover velocity, this shows that mechanical power increase
dramatically as velocity increases slightly (Figure 11).
Figure 11: The increment of pure mechanical power versus velocity of mover
It is possible to use several airfoils vertically but what is important here is the distance between
the used airfoils. From aerodynamic point of view when air passes on the airfoil, it changes the
stream shape and makes a disturbance in the vicinity around airfoil. This function affects the
pressure distribution around upper or lower airfoil and generally causes depletion in lift force of
them. We supposed that there is no limitation on installing airfoils which have been arranged in a
logical manner that causes no bad effect on the other airfoil. By this way the mechanical power
that has extracted increase dramatically.
Equation 16 is a relation that shows Induced-voltage versus velocity of mover. It should be
considered that velocity can be instantaneous or constant. In the following the induced voltage
and mechanical power for some condition are illustrated.
3. Results and discussions
The mechanical power was plotted versus velocity of mover as depicted in Figure 12.
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
61
Figure 12. Power versus mover velocity in different wind condition
As shown in Fig. 12 by increasing the wind velocity the amount of mechanical power is increased
dramatically.
In other attempt, we investigate the effect of projected area on mechanical power for u=10 m/s.
The diagram of this investigation is shown in Figure 13.
Figure 13. Power versus mover velocity in different value of projected area
Figure 12 show that by increasing the projected area (S) the mechanical power is increased. You
can see that the effect of this parameter is more than wind velocity so that in same velocity of
mover the power output become 3 times greater than the its amount in figure 12.
Other important factor to increase the mechanical power is initial angle of attack. As shown in
Figure 14 the mechanical power is increased with addition of initial angle of attack. For example
for 1 m/s velocity of mover, 10 m/s velocity of wind and initial angle of attacks 10, 14 and 16 the
mechanical power were calculated 6, 7 and 8 KW respectively.
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
62
Figure 14. Power versus mover velocity in different initial angle of attack
Our studies on the effect of number of airfoil on mechanical power showed that this parameter
has significant influence on power output.
Figure 14. Power versus mover velocity for 20, 30 and 40 number of airfoils
As shown in Figure 14, at a certain velocity of mover when the numbers of airfoils increase twice
the power become 7 times approximately. This is very interesting point because we can improve
the power output in huge amount using only manipulation the number of airfoils.
Next we evaluated the effect of wind velocity, projection area, and initial angle of attack on the
overall induced-voltage in the main circuit of system. The results demonstrated that by increment
of wind velocity the output voltage enhance (Figure 15).
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
63
Figure 15. Induced-voltage versus mover velocity in different wind condition
As shown in Figure 15, when the wind velocity changed from 10 m/s to 15 m/s the voltage
become twice. Effect of projected area on voltage is shown in Figure 16.
Figure 16. Induced-voltage versus mover velocity in different projected area
Figure 16 shows that by increase of projection area the voltage is increased so that at u = 10 m/s
when S raise from 1 to 3 voltage change from 350v to 750 v.
Also by increment of initial angle of attack the overall induced-voltage is increased. As shown in
Fig. 17, by enhancement of alpha from 10 to 16 at a specific wind velocity the output voltage
becomes twice approximately.
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
64
Figure 17. Induced-voltage versus mover velocity for different initial angle of attack
Furthermore, Figure 18 shows the value of mechanical power and velocity of mover in same
time, confirming that with past of time these parameters enhance in same manner. This diagram
demonstrated that with increment of time that is same to increase the amplitude of oscillation of
mover, the power output will increase too.
Figure 18 .Value of mechanical power and velocity of mover in same time
3.1. A comparison between ALWG and ocean wave energy
The total energy in an ocean wave can be calculated in joules per unit of width of wave front by
summing up the potential and kinetic energy of all waves together [15]. The potential energy in a
wave of length L is generated by the displacement of the water away from the mean sea level. The
kinetic energy of a wave is a result of both horizontal and vertical water particle motions [16].
The total potential and kinetic energy of an ocean wave can be expressed as:
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
65
‫ܧ‬ =
1
2
ߩ݃‫ܣ‬ଶ
(18)
Where g =9.8 m/s2
and ρ is density of water (1000 Kg/m3
) and A is wave amplitude. To obtain
the average energy flux or power of a wave period, energy is multiplied by the speed of wave
propagation, Vp:
ܸ‫݌‬ =
‫ܮ‬
2ܶ
(19)
Where T is the wave period (s) and L is wavelength (m) [18]:
ܲ‫ݓ‬ =
1
2
ߩ݃‫ܣ‬ଶ
‫ܮ‬
2ܶ
(20)
And by following relation L and T are related:
‫ܮ‬ =
݃ܶଶ
2ߨ
(21)
So the final relation will be:
ܲ‫ݓ‬ =
ߩ݃ଶ
ܶ‫ܣ‬ଶ
8ߨ
=
ߩ݃ଶ
ܶ‫ܪ‬ଶ
32ߨ
(22)
Where H is the height of wave and A is amplitude (H=2A).
In the Figure 19, there is a comparison between the total power of a wave and an AWLG in same
condition. This point has been shown that for the 20 number of airfoil arrangement, the power is
approximately same, of course not for very high value of mover velocity (Table 1).
Table 1. A numerical comparison between ALWG and ocean wave energy
V =H/2T Wave energy (W) 20 airfoil (W) 35 airfoil (W)
H (m) V (m/s)
1 0.125 1000 2000 6000
2 0.25 8000 5000 10000
3 0.375 15000 9000 18000
4 0.5 30000 15000 25000
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
66
Figure 19. A comparison between the total power of a wave and an AWLG in same condition
a) 10 airfoil b) 20 airfoil c) 30airfoil d) 40 airfoil
Conclusion
This work has disclosed a study intended to scrutinize airfoil linear wind generator (ALWG) as a
new class of wind energy extractor, talented to overcome the main limitations of the present wind
energy extractor technologies. Moreover, ALWG has introduced in order to eliminate some of the
problems associated with the previous extractor systems such as LWG and ocean-based systems.
In fact, ALWG is a new method to produces liner reciprocating motion via attached airfoils to a
mover in a linear generator in order to generate electricity.Herein, we have introduced a new
mechanism (Figure 5) based on aerodynamic forces exerts on airfoil by air current. In this method
we used from linear generator instead of rotary generator. Overall, in our protocol the lock-unlock
mechanisms and angle of attack changer is eliminated in order to save energy by use of a
flywheel and change of angleof attack only.
Our study shows that in a certain velocity of mover: 1) increasing the projected area of airfoil has
a considerable effect on mechanical power and also on induced voltage of generator 2) the
mechanical power and induced voltage of generator are increased with addition of initial angle of
attack; 3) wind velocity is a contributory factor but its influence is not more higher than
increasing projected area and initial angle of attack thus the extraction of more energy from wind
is practical using an appropriate design of airfoils in the absence of high wind velocity; 4) the
power will be increased dramatically by increasing the number of airfoils.
Acknowledgment
We gratefully acknowledge Zarand power generation Management Company under management
of Mr. Heidary for partial support of this work. Also, we are thankful to Prof. Mansoori and Prof.
Ameri in Mechanical Engineering Department of Shahid Bahonar University for their helpful
comments.
International Journal of Recent advances in Mechanical Engineering (IJMEC
References
[1] Chen D, Xinhui Bi, Jinping Zhao, Laiguo Chen, Jihua Tan, Bixian Mai, Guoying Sheng, Jiamo Fu,
Minghung Wong Pollution characterization and diurnal variation of PBDEs in the atmosphere of an
E-waste dismantling region, Environmental Pollution, Volume 157, I
1057
[2] A reviewontheperformanceofSavoniuswind turbines Renewable and Sustainable Energy Reviews,
Volume 16, Issue 5, June 2012, Pages 3054
Adriane Prisco Petry
[3] A review of wave-energy extraction' Johannes Falnes, Marine Structures 20 (2007) 185
[4] Energy, exergyandthermo-economicanalysisof solardistillationsystems: A review Renewable and
Sustainable Energy Reviews, Volume 27, November 2013, Pages 709
K.R. Ranjan, S.C. Kaushik
[5] M.Canale, L. Fagiano,M. Milanese, 'Kitegen: A revolution in wind energy generation '
energy, November 2008
[6] Ippolito M. Smart control system exploiting the characteristics of generic kites or airfoils to convert
energy. European patent # 02840646, 2004.
[7] Milanese M, Ippolito M. Sistema e procedimento di controllo automatico Del volo di pro
Potenza. Patent no. TO2006A000372, 2006 [in Italian]
[8] Determinationof kiteforcesusingthree
Energy, Volume36, Issue10, Octobe, 2011, Pages2667
R.A. Shenoi
[9] Laddermill, a novel concept to exploit the energy in theairspace Aircraft Design, Volume4, Issues2
June–September2001, Pages81
[10] Historical Aspects of wave energy conversion, Comprehensive Renewable Energy, Volume 8, 2012,
pages 7-9, A.F.O. Falcão
[11] Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, OmerC.onar,
International Standard Book Number: 978
[12] Design of a linear generator for wave energy plant, O.Danielsson, Upssala University Sweden
[13] Constantin GHITA,Aurel Iounut CHIRILA,Ioan Dragos DEACONU, and Daniel Ion ILINA,'The
magnetizing field of a linear generator used to obtain electrical energy from waves energy '
Department of Electrical Engineering Politehnica University of Bucharest
[14] Linear Electrical actuators and Generators, by I.Boldea (Polytechnic Institute, Timisoara, Romania)
and Syed A.Nasar (university of Kentucky)
[15] Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, Omer Conar,
International Standard Book Number: 978
[16] G.T. Heydt, “An assessment of ocean thermal energy convers
methodology,” Proceedings of the IEEE, 81, 409
Authors
Hossein Darijani received the BSc degree in mechanical engineering from Shahid Bahonar
University of Kerman. He received the MSc and PhD, both in mec
Sharif University of Technology (SUT). His technical interestsare Nonlinear Continuum
Mechanic Constitutive Modelling of Hyperelastic Materials Non
Deformation Thermoelasticity Plasticity. Now, he is assi
University of Kerman.
Abbas Panahi was born in January 21nd 1992,in Shiraz. He received his BSc degree in
mechanical engineering from Shahid Bahonar University of Kerman. His research interests
are computational nanotechnology, Atomistic simulation (molecular dynamic),
mechanic and renewable energy systems (wind, solar).
International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014
Chen D, Xinhui Bi, Jinping Zhao, Laiguo Chen, Jihua Tan, Bixian Mai, Guoying Sheng, Jiamo Fu,
Minghung Wong Pollution characterization and diurnal variation of PBDEs in the atmosphere of an
waste dismantling region, Environmental Pollution, Volume 157, Issue 3, March 2009, Pages 1051
A reviewontheperformanceofSavoniuswind turbines Renewable and Sustainable Energy Reviews,
Volume 16, Issue 5, June 2012, Pages 3054-3064-João Vicente Akwa, Horácio Antonio Vielmo,
energy extraction' Johannes Falnes, Marine Structures 20 (2007) 185
economicanalysisof solardistillationsystems: A review Renewable and
Sustainable Energy Reviews, Volume 27, November 2013, Pages 709-723
M.Canale, L. Fagiano,M. Milanese, 'Kitegen: A revolution in wind energy generation '
Ippolito M. Smart control system exploiting the characteristics of generic kites or airfoils to convert
ean patent # 02840646, 2004.
Milanese M, Ippolito M. Sistema e procedimento di controllo automatico Del volo di pro
Potenza. Patent no. TO2006A000372, 2006 [in Italian]
Determinationof kiteforcesusingthree-dimensionalflight trajectoriesforshippropulsion Renewable
Energy, Volume36, Issue10, Octobe, 2011, Pages2667-2678 George M. Dadd, Dominic A. Hudson,
Laddermill, a novel concept to exploit the energy in theairspace Aircraft Design, Volume4, Issues2
Pages81-97Wubbo J. Ockel
Historical Aspects of wave energy conversion, Comprehensive Renewable Energy, Volume 8, 2012,
Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, OmerC.onar,
national Standard Book Number: 978-1-4398-1508-3
Design of a linear generator for wave energy plant, O.Danielsson, Upssala University Sweden
Constantin GHITA,Aurel Iounut CHIRILA,Ioan Dragos DEACONU, and Daniel Ion ILINA,'The
a linear generator used to obtain electrical energy from waves energy '
Department of Electrical Engineering Politehnica University of Bucharest
Linear Electrical actuators and Generators, by I.Boldea (Polytechnic Institute, Timisoara, Romania)
Syed A.Nasar (university of Kentucky)
Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, Omer Conar,
International Standard Book Number: 978-1-4398-1508-3
G.T. Heydt, “An assessment of ocean thermal energy conversion as an advanced electric Generation
methodology,” Proceedings of the IEEE, 81, 409–418, 1993
Hossein Darijani received the BSc degree in mechanical engineering from Shahid Bahonar
University of Kerman. He received the MSc and PhD, both in mechanical engineering, from
Sharif University of Technology (SUT). His technical interestsare Nonlinear Continuum
Mechanic Constitutive Modelling of Hyperelastic Materials Non-Linear elasticity Finite
Deformation Thermoelasticity Plasticity. Now, he is assistant professor in Shahid Bahonar
was born in January 21nd 1992,in Shiraz. He received his BSc degree in
mechanical engineering from Shahid Bahonar University of Kerman. His research interests
nanotechnology, Atomistic simulation (molecular dynamic), fluid
energy systems (wind, solar).
H) Vol.3, No.4, November 2014
67
Chen D, Xinhui Bi, Jinping Zhao, Laiguo Chen, Jihua Tan, Bixian Mai, Guoying Sheng, Jiamo Fu,
Minghung Wong Pollution characterization and diurnal variation of PBDEs in the atmosphere of an
3, March 2009, Pages 1051-
A reviewontheperformanceofSavoniuswind turbines Renewable and Sustainable Energy Reviews,
João Vicente Akwa, Horácio Antonio Vielmo,
energy extraction' Johannes Falnes, Marine Structures 20 (2007) 185–201
economicanalysisof solardistillationsystems: A review Renewable and
M.Canale, L. Fagiano,M. Milanese, 'Kitegen: A revolution in wind energy generation '-Journal of
Ippolito M. Smart control system exploiting the characteristics of generic kites or airfoils to convert
Milanese M, Ippolito M. Sistema e procedimento di controllo automatico Del volo di profili alari di
forshippropulsion Renewable
2678 George M. Dadd, Dominic A. Hudson,
Laddermill, a novel concept to exploit the energy in theairspace Aircraft Design, Volume4, Issues2–3,
Historical Aspects of wave energy conversion, Comprehensive Renewable Energy, Volume 8, 2012,
Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, OmerC.onar,
Design of a linear generator for wave energy plant, O.Danielsson, Upssala University Sweden
Constantin GHITA,Aurel Iounut CHIRILA,Ioan Dragos DEACONU, and Daniel Ion ILINA,'The
a linear generator used to obtain electrical energy from waves energy '-
Linear Electrical actuators and Generators, by I.Boldea (Polytechnic Institute, Timisoara, Romania)
Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, Omer Conar,
ion as an advanced electric Generation
was born in January 21nd 1992,in Shiraz. He received his BSc degree in
mechanical engineering from Shahid Bahonar University of Kerman. His research interests
fluid

More Related Content

What's hot

Modeling and Control of a Doubly-Fed Induction Generator for Wind Turbine-Gen...
Modeling and Control of a Doubly-Fed Induction Generator for Wind Turbine-Gen...Modeling and Control of a Doubly-Fed Induction Generator for Wind Turbine-Gen...
Modeling and Control of a Doubly-Fed Induction Generator for Wind Turbine-Gen...IJPEDS-IAES
 
Using position control to improve the efficiency of wind turbine
Using position control to improve the efficiency of wind turbineUsing position control to improve the efficiency of wind turbine
Using position control to improve the efficiency of wind turbineTELKOMNIKA JOURNAL
 
Proposed model
Proposed modelProposed model
Proposed modelrahulhirem
 
Modeling of Wind Energy on Isolated Area
Modeling of Wind Energy on Isolated AreaModeling of Wind Energy on Isolated Area
Modeling of Wind Energy on Isolated AreaIJPEDS-IAES
 
A Review and Aspects of High Altitude Wind Power Generation
A Review and Aspects of High Altitude Wind Power GenerationA Review and Aspects of High Altitude Wind Power Generation
A Review and Aspects of High Altitude Wind Power GenerationAyyarao T S L V
 
Thesis- Cont sys for wind turbines (Sept 2015 revision)
Thesis- Cont sys for wind turbines (Sept 2015 revision)Thesis- Cont sys for wind turbines (Sept 2015 revision)
Thesis- Cont sys for wind turbines (Sept 2015 revision)Larry Branscomb
 
IRJET- Design and Analysis of Highway Wind Power Generation using Vertical Ax...
IRJET- Design and Analysis of Highway Wind Power Generation using Vertical Ax...IRJET- Design and Analysis of Highway Wind Power Generation using Vertical Ax...
IRJET- Design and Analysis of Highway Wind Power Generation using Vertical Ax...IRJET Journal
 
An Overview of Wind Power Generation and Design Aspects in India
An Overview of Wind Power Generation and Design Aspects in IndiaAn Overview of Wind Power Generation and Design Aspects in India
An Overview of Wind Power Generation and Design Aspects in Indiaijiert bestjournal
 
Analysis and Comparisons of Different Type of WCES- A Literature Review
Analysis and Comparisons of Different Type of WCES- A Literature ReviewAnalysis and Comparisons of Different Type of WCES- A Literature Review
Analysis and Comparisons of Different Type of WCES- A Literature Reviewpaperpublications3
 
Implementation and assemplingof a small wind turbine
Implementation and assemplingof a small wind turbineImplementation and assemplingof a small wind turbine
Implementation and assemplingof a small wind turbineRayan Hameed
 
Wind and solar integrated to smart grid using islanding operation
Wind and solar integrated to smart grid using islanding operationWind and solar integrated to smart grid using islanding operation
Wind and solar integrated to smart grid using islanding operationiaemedu
 
Design of Lattice Wind Turbine Towers With Structural Optimization
Design of Lattice Wind Turbine Towers With Structural OptimizationDesign of Lattice Wind Turbine Towers With Structural Optimization
Design of Lattice Wind Turbine Towers With Structural OptimizationIJERA Editor
 
Study of Wind Turbine based Variable Reluctance Generator using Hybrid FEMM-M...
Study of Wind Turbine based Variable Reluctance Generator using Hybrid FEMM-M...Study of Wind Turbine based Variable Reluctance Generator using Hybrid FEMM-M...
Study of Wind Turbine based Variable Reluctance Generator using Hybrid FEMM-M...Yayah Zakaria
 

What's hot (18)

Modeling and Control of a Doubly-Fed Induction Generator for Wind Turbine-Gen...
Modeling and Control of a Doubly-Fed Induction Generator for Wind Turbine-Gen...Modeling and Control of a Doubly-Fed Induction Generator for Wind Turbine-Gen...
Modeling and Control of a Doubly-Fed Induction Generator for Wind Turbine-Gen...
 
Using position control to improve the efficiency of wind turbine
Using position control to improve the efficiency of wind turbineUsing position control to improve the efficiency of wind turbine
Using position control to improve the efficiency of wind turbine
 
Proposed model
Proposed modelProposed model
Proposed model
 
Modeling of Wind Energy on Isolated Area
Modeling of Wind Energy on Isolated AreaModeling of Wind Energy on Isolated Area
Modeling of Wind Energy on Isolated Area
 
Cm36532538
Cm36532538Cm36532538
Cm36532538
 
Robust power control methods for wind turbines using DFIG-generator
Robust power control methods for wind turbines using DFIG-generatorRobust power control methods for wind turbines using DFIG-generator
Robust power control methods for wind turbines using DFIG-generator
 
A Review and Aspects of High Altitude Wind Power Generation
A Review and Aspects of High Altitude Wind Power GenerationA Review and Aspects of High Altitude Wind Power Generation
A Review and Aspects of High Altitude Wind Power Generation
 
Thesis- Cont sys for wind turbines (Sept 2015 revision)
Thesis- Cont sys for wind turbines (Sept 2015 revision)Thesis- Cont sys for wind turbines (Sept 2015 revision)
Thesis- Cont sys for wind turbines (Sept 2015 revision)
 
IRJET- Design and Analysis of Highway Wind Power Generation using Vertical Ax...
IRJET- Design and Analysis of Highway Wind Power Generation using Vertical Ax...IRJET- Design and Analysis of Highway Wind Power Generation using Vertical Ax...
IRJET- Design and Analysis of Highway Wind Power Generation using Vertical Ax...
 
An Overview of Wind Power Generation and Design Aspects in India
An Overview of Wind Power Generation and Design Aspects in IndiaAn Overview of Wind Power Generation and Design Aspects in India
An Overview of Wind Power Generation and Design Aspects in India
 
Analysis and Comparisons of Different Type of WCES- A Literature Review
Analysis and Comparisons of Different Type of WCES- A Literature ReviewAnalysis and Comparisons of Different Type of WCES- A Literature Review
Analysis and Comparisons of Different Type of WCES- A Literature Review
 
Implementation and assemplingof a small wind turbine
Implementation and assemplingof a small wind turbineImplementation and assemplingof a small wind turbine
Implementation and assemplingof a small wind turbine
 
Wind and solar integrated to smart grid using islanding operation
Wind and solar integrated to smart grid using islanding operationWind and solar integrated to smart grid using islanding operation
Wind and solar integrated to smart grid using islanding operation
 
Prospect of renewable energy resources in Bangladesh
Prospect of renewable energy resources in BangladeshProspect of renewable energy resources in Bangladesh
Prospect of renewable energy resources in Bangladesh
 
jeas_0116_3445
jeas_0116_3445jeas_0116_3445
jeas_0116_3445
 
Design of Lattice Wind Turbine Towers With Structural Optimization
Design of Lattice Wind Turbine Towers With Structural OptimizationDesign of Lattice Wind Turbine Towers With Structural Optimization
Design of Lattice Wind Turbine Towers With Structural Optimization
 
Performance enhancements of DFIG wind turbine using fuzzy-feedback linearizat...
Performance enhancements of DFIG wind turbine using fuzzy-feedback linearizat...Performance enhancements of DFIG wind turbine using fuzzy-feedback linearizat...
Performance enhancements of DFIG wind turbine using fuzzy-feedback linearizat...
 
Study of Wind Turbine based Variable Reluctance Generator using Hybrid FEMM-M...
Study of Wind Turbine based Variable Reluctance Generator using Hybrid FEMM-M...Study of Wind Turbine based Variable Reluctance Generator using Hybrid FEMM-M...
Study of Wind Turbine based Variable Reluctance Generator using Hybrid FEMM-M...
 

Viewers also liked

Kite wind generator 1 (sai).pptx (sai raju)
Kite wind generator 1 (sai).pptx (sai raju)Kite wind generator 1 (sai).pptx (sai raju)
Kite wind generator 1 (sai).pptx (sai raju)MD NAWAZ
 
Experimental validation of effect of equivalence ratio on detonation characte...
Experimental validation of effect of equivalence ratio on detonation characte...Experimental validation of effect of equivalence ratio on detonation characte...
Experimental validation of effect of equivalence ratio on detonation characte...ijmech
 
EXPERIMENTAL AND PERFORMANCE ANALYSIS OF SINGLE NOZZLE JET PUMP WITH VARIOUS ...
EXPERIMENTAL AND PERFORMANCE ANALYSIS OF SINGLE NOZZLE JET PUMP WITH VARIOUS ...EXPERIMENTAL AND PERFORMANCE ANALYSIS OF SINGLE NOZZLE JET PUMP WITH VARIOUS ...
EXPERIMENTAL AND PERFORMANCE ANALYSIS OF SINGLE NOZZLE JET PUMP WITH VARIOUS ...ijmech
 
technoloTwo dimensional numerical simulation of the combined heat transfer in...
technoloTwo dimensional numerical simulation of the combined heat transfer in...technoloTwo dimensional numerical simulation of the combined heat transfer in...
technoloTwo dimensional numerical simulation of the combined heat transfer in...ijmech
 
Performance prediction of a turboshaft engine by using of one dimensional ana...
Performance prediction of a turboshaft engine by using of one dimensional ana...Performance prediction of a turboshaft engine by using of one dimensional ana...
Performance prediction of a turboshaft engine by using of one dimensional ana...ijmech
 
THERMAL PERFORMANCE TESTING OF A FLAT PLATE SOLAR AIR HEATER USING OPTICAL ME...
THERMAL PERFORMANCE TESTING OF A FLAT PLATE SOLAR AIR HEATER USING OPTICAL ME...THERMAL PERFORMANCE TESTING OF A FLAT PLATE SOLAR AIR HEATER USING OPTICAL ME...
THERMAL PERFORMANCE TESTING OF A FLAT PLATE SOLAR AIR HEATER USING OPTICAL ME...ijmech
 
ULTIMATE LIMIT STATE ASSESSMENT OF STIFFENED PANEL STRUCTURES FOR VERY LARGE ...
ULTIMATE LIMIT STATE ASSESSMENT OF STIFFENED PANEL STRUCTURES FOR VERY LARGE ...ULTIMATE LIMIT STATE ASSESSMENT OF STIFFENED PANEL STRUCTURES FOR VERY LARGE ...
ULTIMATE LIMIT STATE ASSESSMENT OF STIFFENED PANEL STRUCTURES FOR VERY LARGE ...ijmech
 
Comparative analysis of passenger ride comfort using various semi active susp...
Comparative analysis of passenger ride comfort using various semi active susp...Comparative analysis of passenger ride comfort using various semi active susp...
Comparative analysis of passenger ride comfort using various semi active susp...ijmech
 
COMPARISON OF SURFACE ROUGHNESS OF COLDWORK AND HOT WORK TOOL STEELS IN HARD ...
COMPARISON OF SURFACE ROUGHNESS OF COLDWORK AND HOT WORK TOOL STEELS IN HARD ...COMPARISON OF SURFACE ROUGHNESS OF COLDWORK AND HOT WORK TOOL STEELS IN HARD ...
COMPARISON OF SURFACE ROUGHNESS OF COLDWORK AND HOT WORK TOOL STEELS IN HARD ...ijmech
 
PARAMETRIC STUDIES ON THE EFFECT OF FOUR TYPES OF FASTENER MODELING IN CHANNE...
PARAMETRIC STUDIES ON THE EFFECT OF FOUR TYPES OF FASTENER MODELING IN CHANNE...PARAMETRIC STUDIES ON THE EFFECT OF FOUR TYPES OF FASTENER MODELING IN CHANNE...
PARAMETRIC STUDIES ON THE EFFECT OF FOUR TYPES OF FASTENER MODELING IN CHANNE...ijmech
 
CFD SIMULATION OF SOLDER PASTE FLOW AND DEFORMATION BEHAVIOURS DURING STENCIL...
CFD SIMULATION OF SOLDER PASTE FLOW AND DEFORMATION BEHAVIOURS DURING STENCIL...CFD SIMULATION OF SOLDER PASTE FLOW AND DEFORMATION BEHAVIOURS DURING STENCIL...
CFD SIMULATION OF SOLDER PASTE FLOW AND DEFORMATION BEHAVIOURS DURING STENCIL...ijmech
 
A fuzzy logic model for evaluation of oil film pressure in hydrodynamic bearing
A fuzzy logic model for evaluation of oil film pressure in hydrodynamic bearingA fuzzy logic model for evaluation of oil film pressure in hydrodynamic bearing
A fuzzy logic model for evaluation of oil film pressure in hydrodynamic bearingijmech
 
THE STUDY OF THE EFFECTS OF RADIATION AND BLOWING FROM THE WALL OF A VERTICAL...
THE STUDY OF THE EFFECTS OF RADIATION AND BLOWING FROM THE WALL OF A VERTICAL...THE STUDY OF THE EFFECTS OF RADIATION AND BLOWING FROM THE WALL OF A VERTICAL...
THE STUDY OF THE EFFECTS OF RADIATION AND BLOWING FROM THE WALL OF A VERTICAL...ijmech
 
SIMULTANEOUS OPTIMIZATION OF SEMIACTIVE QUARTER CAR SUSPENSION PARAMETERS USI...
SIMULTANEOUS OPTIMIZATION OF SEMIACTIVE QUARTER CAR SUSPENSION PARAMETERS USI...SIMULTANEOUS OPTIMIZATION OF SEMIACTIVE QUARTER CAR SUSPENSION PARAMETERS USI...
SIMULTANEOUS OPTIMIZATION OF SEMIACTIVE QUARTER CAR SUSPENSION PARAMETERS USI...ijmech
 
DESIGN IMPROVISATION OF ELECTROMECHANICAL ACTUATORS FOR OPERATION AT SUB ZERO...
DESIGN IMPROVISATION OF ELECTROMECHANICAL ACTUATORS FOR OPERATION AT SUB ZERO...DESIGN IMPROVISATION OF ELECTROMECHANICAL ACTUATORS FOR OPERATION AT SUB ZERO...
DESIGN IMPROVISATION OF ELECTROMECHANICAL ACTUATORS FOR OPERATION AT SUB ZERO...ijmech
 
AMPPS_CNC IN AN AUTOMATED MODULAR PROCESS PLANNING SYSTEM FOR ROTATIONAL PART
AMPPS_CNC IN AN AUTOMATED MODULAR PROCESS PLANNING SYSTEM FOR ROTATIONAL PARTAMPPS_CNC IN AN AUTOMATED MODULAR PROCESS PLANNING SYSTEM FOR ROTATIONAL PART
AMPPS_CNC IN AN AUTOMATED MODULAR PROCESS PLANNING SYSTEM FOR ROTATIONAL PARTijmech
 
Increasing life of spur gears with the help of finite element analysis
Increasing life of spur gears with the help of finite element analysisIncreasing life of spur gears with the help of finite element analysis
Increasing life of spur gears with the help of finite element analysisijmech
 
EFFECT OF NOSE RADIUS ON SURFACE ROUGHNESS DURING CNC TURNING USING RESPONSE ...
EFFECT OF NOSE RADIUS ON SURFACE ROUGHNESS DURING CNC TURNING USING RESPONSE ...EFFECT OF NOSE RADIUS ON SURFACE ROUGHNESS DURING CNC TURNING USING RESPONSE ...
EFFECT OF NOSE RADIUS ON SURFACE ROUGHNESS DURING CNC TURNING USING RESPONSE ...ijmech
 
DESIGN AND DEVELOPMENT OF MACHINE FAULT SIMULATOR (MFS) FOR FAULT DIAGNOSIS
DESIGN AND DEVELOPMENT OF MACHINE FAULT SIMULATOR (MFS) FOR FAULT DIAGNOSISDESIGN AND DEVELOPMENT OF MACHINE FAULT SIMULATOR (MFS) FOR FAULT DIAGNOSIS
DESIGN AND DEVELOPMENT OF MACHINE FAULT SIMULATOR (MFS) FOR FAULT DIAGNOSISijmech
 
SELECTION OF MATERIAL HANDLING EQUIPMENT FOR FLEXIBLE MANUFACTURING SYSTEM US...
SELECTION OF MATERIAL HANDLING EQUIPMENT FOR FLEXIBLE MANUFACTURING SYSTEM US...SELECTION OF MATERIAL HANDLING EQUIPMENT FOR FLEXIBLE MANUFACTURING SYSTEM US...
SELECTION OF MATERIAL HANDLING EQUIPMENT FOR FLEXIBLE MANUFACTURING SYSTEM US...ijmech
 

Viewers also liked (20)

Kite wind generator 1 (sai).pptx (sai raju)
Kite wind generator 1 (sai).pptx (sai raju)Kite wind generator 1 (sai).pptx (sai raju)
Kite wind generator 1 (sai).pptx (sai raju)
 
Experimental validation of effect of equivalence ratio on detonation characte...
Experimental validation of effect of equivalence ratio on detonation characte...Experimental validation of effect of equivalence ratio on detonation characte...
Experimental validation of effect of equivalence ratio on detonation characte...
 
EXPERIMENTAL AND PERFORMANCE ANALYSIS OF SINGLE NOZZLE JET PUMP WITH VARIOUS ...
EXPERIMENTAL AND PERFORMANCE ANALYSIS OF SINGLE NOZZLE JET PUMP WITH VARIOUS ...EXPERIMENTAL AND PERFORMANCE ANALYSIS OF SINGLE NOZZLE JET PUMP WITH VARIOUS ...
EXPERIMENTAL AND PERFORMANCE ANALYSIS OF SINGLE NOZZLE JET PUMP WITH VARIOUS ...
 
technoloTwo dimensional numerical simulation of the combined heat transfer in...
technoloTwo dimensional numerical simulation of the combined heat transfer in...technoloTwo dimensional numerical simulation of the combined heat transfer in...
technoloTwo dimensional numerical simulation of the combined heat transfer in...
 
Performance prediction of a turboshaft engine by using of one dimensional ana...
Performance prediction of a turboshaft engine by using of one dimensional ana...Performance prediction of a turboshaft engine by using of one dimensional ana...
Performance prediction of a turboshaft engine by using of one dimensional ana...
 
THERMAL PERFORMANCE TESTING OF A FLAT PLATE SOLAR AIR HEATER USING OPTICAL ME...
THERMAL PERFORMANCE TESTING OF A FLAT PLATE SOLAR AIR HEATER USING OPTICAL ME...THERMAL PERFORMANCE TESTING OF A FLAT PLATE SOLAR AIR HEATER USING OPTICAL ME...
THERMAL PERFORMANCE TESTING OF A FLAT PLATE SOLAR AIR HEATER USING OPTICAL ME...
 
ULTIMATE LIMIT STATE ASSESSMENT OF STIFFENED PANEL STRUCTURES FOR VERY LARGE ...
ULTIMATE LIMIT STATE ASSESSMENT OF STIFFENED PANEL STRUCTURES FOR VERY LARGE ...ULTIMATE LIMIT STATE ASSESSMENT OF STIFFENED PANEL STRUCTURES FOR VERY LARGE ...
ULTIMATE LIMIT STATE ASSESSMENT OF STIFFENED PANEL STRUCTURES FOR VERY LARGE ...
 
Comparative analysis of passenger ride comfort using various semi active susp...
Comparative analysis of passenger ride comfort using various semi active susp...Comparative analysis of passenger ride comfort using various semi active susp...
Comparative analysis of passenger ride comfort using various semi active susp...
 
COMPARISON OF SURFACE ROUGHNESS OF COLDWORK AND HOT WORK TOOL STEELS IN HARD ...
COMPARISON OF SURFACE ROUGHNESS OF COLDWORK AND HOT WORK TOOL STEELS IN HARD ...COMPARISON OF SURFACE ROUGHNESS OF COLDWORK AND HOT WORK TOOL STEELS IN HARD ...
COMPARISON OF SURFACE ROUGHNESS OF COLDWORK AND HOT WORK TOOL STEELS IN HARD ...
 
PARAMETRIC STUDIES ON THE EFFECT OF FOUR TYPES OF FASTENER MODELING IN CHANNE...
PARAMETRIC STUDIES ON THE EFFECT OF FOUR TYPES OF FASTENER MODELING IN CHANNE...PARAMETRIC STUDIES ON THE EFFECT OF FOUR TYPES OF FASTENER MODELING IN CHANNE...
PARAMETRIC STUDIES ON THE EFFECT OF FOUR TYPES OF FASTENER MODELING IN CHANNE...
 
CFD SIMULATION OF SOLDER PASTE FLOW AND DEFORMATION BEHAVIOURS DURING STENCIL...
CFD SIMULATION OF SOLDER PASTE FLOW AND DEFORMATION BEHAVIOURS DURING STENCIL...CFD SIMULATION OF SOLDER PASTE FLOW AND DEFORMATION BEHAVIOURS DURING STENCIL...
CFD SIMULATION OF SOLDER PASTE FLOW AND DEFORMATION BEHAVIOURS DURING STENCIL...
 
A fuzzy logic model for evaluation of oil film pressure in hydrodynamic bearing
A fuzzy logic model for evaluation of oil film pressure in hydrodynamic bearingA fuzzy logic model for evaluation of oil film pressure in hydrodynamic bearing
A fuzzy logic model for evaluation of oil film pressure in hydrodynamic bearing
 
THE STUDY OF THE EFFECTS OF RADIATION AND BLOWING FROM THE WALL OF A VERTICAL...
THE STUDY OF THE EFFECTS OF RADIATION AND BLOWING FROM THE WALL OF A VERTICAL...THE STUDY OF THE EFFECTS OF RADIATION AND BLOWING FROM THE WALL OF A VERTICAL...
THE STUDY OF THE EFFECTS OF RADIATION AND BLOWING FROM THE WALL OF A VERTICAL...
 
SIMULTANEOUS OPTIMIZATION OF SEMIACTIVE QUARTER CAR SUSPENSION PARAMETERS USI...
SIMULTANEOUS OPTIMIZATION OF SEMIACTIVE QUARTER CAR SUSPENSION PARAMETERS USI...SIMULTANEOUS OPTIMIZATION OF SEMIACTIVE QUARTER CAR SUSPENSION PARAMETERS USI...
SIMULTANEOUS OPTIMIZATION OF SEMIACTIVE QUARTER CAR SUSPENSION PARAMETERS USI...
 
DESIGN IMPROVISATION OF ELECTROMECHANICAL ACTUATORS FOR OPERATION AT SUB ZERO...
DESIGN IMPROVISATION OF ELECTROMECHANICAL ACTUATORS FOR OPERATION AT SUB ZERO...DESIGN IMPROVISATION OF ELECTROMECHANICAL ACTUATORS FOR OPERATION AT SUB ZERO...
DESIGN IMPROVISATION OF ELECTROMECHANICAL ACTUATORS FOR OPERATION AT SUB ZERO...
 
AMPPS_CNC IN AN AUTOMATED MODULAR PROCESS PLANNING SYSTEM FOR ROTATIONAL PART
AMPPS_CNC IN AN AUTOMATED MODULAR PROCESS PLANNING SYSTEM FOR ROTATIONAL PARTAMPPS_CNC IN AN AUTOMATED MODULAR PROCESS PLANNING SYSTEM FOR ROTATIONAL PART
AMPPS_CNC IN AN AUTOMATED MODULAR PROCESS PLANNING SYSTEM FOR ROTATIONAL PART
 
Increasing life of spur gears with the help of finite element analysis
Increasing life of spur gears with the help of finite element analysisIncreasing life of spur gears with the help of finite element analysis
Increasing life of spur gears with the help of finite element analysis
 
EFFECT OF NOSE RADIUS ON SURFACE ROUGHNESS DURING CNC TURNING USING RESPONSE ...
EFFECT OF NOSE RADIUS ON SURFACE ROUGHNESS DURING CNC TURNING USING RESPONSE ...EFFECT OF NOSE RADIUS ON SURFACE ROUGHNESS DURING CNC TURNING USING RESPONSE ...
EFFECT OF NOSE RADIUS ON SURFACE ROUGHNESS DURING CNC TURNING USING RESPONSE ...
 
DESIGN AND DEVELOPMENT OF MACHINE FAULT SIMULATOR (MFS) FOR FAULT DIAGNOSIS
DESIGN AND DEVELOPMENT OF MACHINE FAULT SIMULATOR (MFS) FOR FAULT DIAGNOSISDESIGN AND DEVELOPMENT OF MACHINE FAULT SIMULATOR (MFS) FOR FAULT DIAGNOSIS
DESIGN AND DEVELOPMENT OF MACHINE FAULT SIMULATOR (MFS) FOR FAULT DIAGNOSIS
 
SELECTION OF MATERIAL HANDLING EQUIPMENT FOR FLEXIBLE MANUFACTURING SYSTEM US...
SELECTION OF MATERIAL HANDLING EQUIPMENT FOR FLEXIBLE MANUFACTURING SYSTEM US...SELECTION OF MATERIAL HANDLING EQUIPMENT FOR FLEXIBLE MANUFACTURING SYSTEM US...
SELECTION OF MATERIAL HANDLING EQUIPMENT FOR FLEXIBLE MANUFACTURING SYSTEM US...
 

Similar to Airfoil linear wind generator (alwg) as a novel wind energy extraction approach

Performance analysis of wind turbine as a distributed generation unit in dist...
Performance analysis of wind turbine as a distributed generation unit in dist...Performance analysis of wind turbine as a distributed generation unit in dist...
Performance analysis of wind turbine as a distributed generation unit in dist...ijcsit
 
Doubly Fed Induction Generator-Based Wind Turbine Modelling and Simulation Us...
Doubly Fed Induction Generator-Based Wind Turbine Modelling and Simulation Us...Doubly Fed Induction Generator-Based Wind Turbine Modelling and Simulation Us...
Doubly Fed Induction Generator-Based Wind Turbine Modelling and Simulation Us...IRJET Journal
 
IRJET- Simulation and Implementation of Hybrid Micro Grid Based on DC-AC ...
IRJET-  	  Simulation and Implementation of Hybrid Micro Grid Based on DC-AC ...IRJET-  	  Simulation and Implementation of Hybrid Micro Grid Based on DC-AC ...
IRJET- Simulation and Implementation of Hybrid Micro Grid Based on DC-AC ...IRJET Journal
 
Application of statcom to increase transient stability of wind farm
Application of statcom to increase transient stability of wind farmApplication of statcom to increase transient stability of wind farm
Application of statcom to increase transient stability of wind farmMellah Hacene
 
Transient analysis and modeling of wind generator during power and grid volta...
Transient analysis and modeling of wind generator during power and grid volta...Transient analysis and modeling of wind generator during power and grid volta...
Transient analysis and modeling of wind generator during power and grid volta...IAEME Publication
 
IRJET - Measurement and Analysis of the Voltage Current Characteristic of a M...
IRJET - Measurement and Analysis of the Voltage Current Characteristic of a M...IRJET - Measurement and Analysis of the Voltage Current Characteristic of a M...
IRJET - Measurement and Analysis of the Voltage Current Characteristic of a M...IRJET Journal
 
A Hybrid Wind and Hydroelectric Power Production System
A Hybrid Wind and Hydroelectric Power Production SystemA Hybrid Wind and Hydroelectric Power Production System
A Hybrid Wind and Hydroelectric Power Production Systemijtsrd
 
Novel control strategy for the global model of wind turbine
Novel control strategy for the global model of wind turbineNovel control strategy for the global model of wind turbine
Novel control strategy for the global model of wind turbineIJECEIAES
 
Proposed model
Proposed modelProposed model
Proposed modelrahulhirem
 
Domestic Solar - Aero - Hydro Power Generation System
Domestic Solar - Aero - Hydro Power Generation SystemDomestic Solar - Aero - Hydro Power Generation System
Domestic Solar - Aero - Hydro Power Generation SystemIOSR Journals
 
Electricity from wind energy
Electricity from wind energyElectricity from wind energy
Electricity from wind energyH Janardan Prabhu
 
Wind-Driven SEIG Systems: A Comparison Study
Wind-Driven SEIG Systems: A Comparison StudyWind-Driven SEIG Systems: A Comparison Study
Wind-Driven SEIG Systems: A Comparison StudyCSCJournals
 
Wind Turbine Generator Tied To Grid Using Inverter Techniques and Its Designs
Wind Turbine Generator Tied To Grid Using Inverter Techniques and Its DesignsWind Turbine Generator Tied To Grid Using Inverter Techniques and Its Designs
Wind Turbine Generator Tied To Grid Using Inverter Techniques and Its DesignsIJSRD
 
Sizing Optimization of Stand-Alone Wind Power System Using Hybrid Energy Stor...
Sizing Optimization of Stand-Alone Wind Power System Using Hybrid Energy Stor...Sizing Optimization of Stand-Alone Wind Power System Using Hybrid Energy Stor...
Sizing Optimization of Stand-Alone Wind Power System Using Hybrid Energy Stor...ijsrd.com
 
Performance of piezoelectric energy harvester with vortex-induced vibration a...
Performance of piezoelectric energy harvester with vortex-induced vibration a...Performance of piezoelectric energy harvester with vortex-induced vibration a...
Performance of piezoelectric energy harvester with vortex-induced vibration a...TELKOMNIKA JOURNAL
 
Vertical Axis Wind Turbine using MAGLEV Technology
Vertical Axis Wind Turbine using MAGLEV TechnologyVertical Axis Wind Turbine using MAGLEV Technology
Vertical Axis Wind Turbine using MAGLEV TechnologyIRJET Journal
 

Similar to Airfoil linear wind generator (alwg) as a novel wind energy extraction approach (20)

Using Y-source network as a connector between turbine and network in the stru...
Using Y-source network as a connector between turbine and network in the stru...Using Y-source network as a connector between turbine and network in the stru...
Using Y-source network as a connector between turbine and network in the stru...
 
Performance analysis of wind turbine as a distributed generation unit in dist...
Performance analysis of wind turbine as a distributed generation unit in dist...Performance analysis of wind turbine as a distributed generation unit in dist...
Performance analysis of wind turbine as a distributed generation unit in dist...
 
Doubly Fed Induction Generator-Based Wind Turbine Modelling and Simulation Us...
Doubly Fed Induction Generator-Based Wind Turbine Modelling and Simulation Us...Doubly Fed Induction Generator-Based Wind Turbine Modelling and Simulation Us...
Doubly Fed Induction Generator-Based Wind Turbine Modelling and Simulation Us...
 
Maglev windmill
Maglev windmillMaglev windmill
Maglev windmill
 
IRJET- Simulation and Implementation of Hybrid Micro Grid Based on DC-AC ...
IRJET-  	  Simulation and Implementation of Hybrid Micro Grid Based on DC-AC ...IRJET-  	  Simulation and Implementation of Hybrid Micro Grid Based on DC-AC ...
IRJET- Simulation and Implementation of Hybrid Micro Grid Based on DC-AC ...
 
Application of statcom to increase transient stability of wind farm
Application of statcom to increase transient stability of wind farmApplication of statcom to increase transient stability of wind farm
Application of statcom to increase transient stability of wind farm
 
Transient analysis and modeling of wind generator during power and grid volta...
Transient analysis and modeling of wind generator during power and grid volta...Transient analysis and modeling of wind generator during power and grid volta...
Transient analysis and modeling of wind generator during power and grid volta...
 
IRJET - Measurement and Analysis of the Voltage Current Characteristic of a M...
IRJET - Measurement and Analysis of the Voltage Current Characteristic of a M...IRJET - Measurement and Analysis of the Voltage Current Characteristic of a M...
IRJET - Measurement and Analysis of the Voltage Current Characteristic of a M...
 
A Hybrid Wind and Hydroelectric Power Production System
A Hybrid Wind and Hydroelectric Power Production SystemA Hybrid Wind and Hydroelectric Power Production System
A Hybrid Wind and Hydroelectric Power Production System
 
Novel control strategy for the global model of wind turbine
Novel control strategy for the global model of wind turbineNovel control strategy for the global model of wind turbine
Novel control strategy for the global model of wind turbine
 
Proposed model
Proposed modelProposed model
Proposed model
 
Domestic Solar - Aero - Hydro Power Generation System
Domestic Solar - Aero - Hydro Power Generation SystemDomestic Solar - Aero - Hydro Power Generation System
Domestic Solar - Aero - Hydro Power Generation System
 
Electricity from wind energy
Electricity from wind energyElectricity from wind energy
Electricity from wind energy
 
Implementation of Variable Frequency Drive on Underground Main Fans for Energ...
Implementation of Variable Frequency Drive on Underground Main Fans for Energ...Implementation of Variable Frequency Drive on Underground Main Fans for Energ...
Implementation of Variable Frequency Drive on Underground Main Fans for Energ...
 
Wind-Driven SEIG Systems: A Comparison Study
Wind-Driven SEIG Systems: A Comparison StudyWind-Driven SEIG Systems: A Comparison Study
Wind-Driven SEIG Systems: A Comparison Study
 
Wind Turbine Generator Tied To Grid Using Inverter Techniques and Its Designs
Wind Turbine Generator Tied To Grid Using Inverter Techniques and Its DesignsWind Turbine Generator Tied To Grid Using Inverter Techniques and Its Designs
Wind Turbine Generator Tied To Grid Using Inverter Techniques and Its Designs
 
Sizing Optimization of Stand-Alone Wind Power System Using Hybrid Energy Stor...
Sizing Optimization of Stand-Alone Wind Power System Using Hybrid Energy Stor...Sizing Optimization of Stand-Alone Wind Power System Using Hybrid Energy Stor...
Sizing Optimization of Stand-Alone Wind Power System Using Hybrid Energy Stor...
 
Performance of piezoelectric energy harvester with vortex-induced vibration a...
Performance of piezoelectric energy harvester with vortex-induced vibration a...Performance of piezoelectric energy harvester with vortex-induced vibration a...
Performance of piezoelectric energy harvester with vortex-induced vibration a...
 
Wind turbine report
Wind turbine reportWind turbine report
Wind turbine report
 
Vertical Axis Wind Turbine using MAGLEV Technology
Vertical Axis Wind Turbine using MAGLEV TechnologyVertical Axis Wind Turbine using MAGLEV Technology
Vertical Axis Wind Turbine using MAGLEV Technology
 

Recently uploaded

AI as an Interface for Commercial Buildings
AI as an Interface for Commercial BuildingsAI as an Interface for Commercial Buildings
AI as an Interface for Commercial BuildingsMemoori
 
Key Features Of Token Development (1).pptx
Key  Features Of Token  Development (1).pptxKey  Features Of Token  Development (1).pptx
Key Features Of Token Development (1).pptxLBM Solutions
 
Beyond Boundaries: Leveraging No-Code Solutions for Industry Innovation
Beyond Boundaries: Leveraging No-Code Solutions for Industry InnovationBeyond Boundaries: Leveraging No-Code Solutions for Industry Innovation
Beyond Boundaries: Leveraging No-Code Solutions for Industry InnovationSafe Software
 
Pigging Solutions Piggable Sweeping Elbows
Pigging Solutions Piggable Sweeping ElbowsPigging Solutions Piggable Sweeping Elbows
Pigging Solutions Piggable Sweeping ElbowsPigging Solutions
 
Presentation on how to chat with PDF using ChatGPT code interpreter
Presentation on how to chat with PDF using ChatGPT code interpreterPresentation on how to chat with PDF using ChatGPT code interpreter
Presentation on how to chat with PDF using ChatGPT code interpreternaman860154
 
"Federated learning: out of reach no matter how close",Oleksandr Lapshyn
"Federated learning: out of reach no matter how close",Oleksandr Lapshyn"Federated learning: out of reach no matter how close",Oleksandr Lapshyn
"Federated learning: out of reach no matter how close",Oleksandr LapshynFwdays
 
My Hashitalk Indonesia April 2024 Presentation
My Hashitalk Indonesia April 2024 PresentationMy Hashitalk Indonesia April 2024 Presentation
My Hashitalk Indonesia April 2024 PresentationRidwan Fadjar
 
APIForce Zurich 5 April Automation LPDG
APIForce Zurich 5 April  Automation LPDGAPIForce Zurich 5 April  Automation LPDG
APIForce Zurich 5 April Automation LPDGMarianaLemus7
 
SIEMENS: RAPUNZEL – A Tale About Knowledge Graph
SIEMENS: RAPUNZEL – A Tale About Knowledge GraphSIEMENS: RAPUNZEL – A Tale About Knowledge Graph
SIEMENS: RAPUNZEL – A Tale About Knowledge GraphNeo4j
 
Maximizing Board Effectiveness 2024 Webinar.pptx
Maximizing Board Effectiveness 2024 Webinar.pptxMaximizing Board Effectiveness 2024 Webinar.pptx
Maximizing Board Effectiveness 2024 Webinar.pptxOnBoard
 
Injustice - Developers Among Us (SciFiDevCon 2024)
Injustice - Developers Among Us (SciFiDevCon 2024)Injustice - Developers Among Us (SciFiDevCon 2024)
Injustice - Developers Among Us (SciFiDevCon 2024)Allon Mureinik
 
Kotlin Multiplatform & Compose Multiplatform - Starter kit for pragmatics
Kotlin Multiplatform & Compose Multiplatform - Starter kit for pragmaticsKotlin Multiplatform & Compose Multiplatform - Starter kit for pragmatics
Kotlin Multiplatform & Compose Multiplatform - Starter kit for pragmaticscarlostorres15106
 
Automating Business Process via MuleSoft Composer | Bangalore MuleSoft Meetup...
Automating Business Process via MuleSoft Composer | Bangalore MuleSoft Meetup...Automating Business Process via MuleSoft Composer | Bangalore MuleSoft Meetup...
Automating Business Process via MuleSoft Composer | Bangalore MuleSoft Meetup...shyamraj55
 
CloudStudio User manual (basic edition):
CloudStudio User manual (basic edition):CloudStudio User manual (basic edition):
CloudStudio User manual (basic edition):comworks
 
"LLMs for Python Engineers: Advanced Data Analysis and Semantic Kernel",Oleks...
"LLMs for Python Engineers: Advanced Data Analysis and Semantic Kernel",Oleks..."LLMs for Python Engineers: Advanced Data Analysis and Semantic Kernel",Oleks...
"LLMs for Python Engineers: Advanced Data Analysis and Semantic Kernel",Oleks...Fwdays
 
The Codex of Business Writing Software for Real-World Solutions 2.pptx
The Codex of Business Writing Software for Real-World Solutions 2.pptxThe Codex of Business Writing Software for Real-World Solutions 2.pptx
The Codex of Business Writing Software for Real-World Solutions 2.pptxMalak Abu Hammad
 
Designing IA for AI - Information Architecture Conference 2024
Designing IA for AI - Information Architecture Conference 2024Designing IA for AI - Information Architecture Conference 2024
Designing IA for AI - Information Architecture Conference 2024Enterprise Knowledge
 
#StandardsGoals for 2024: What’s new for BISAC - Tech Forum 2024
#StandardsGoals for 2024: What’s new for BISAC - Tech Forum 2024#StandardsGoals for 2024: What’s new for BISAC - Tech Forum 2024
#StandardsGoals for 2024: What’s new for BISAC - Tech Forum 2024BookNet Canada
 

Recently uploaded (20)

AI as an Interface for Commercial Buildings
AI as an Interface for Commercial BuildingsAI as an Interface for Commercial Buildings
AI as an Interface for Commercial Buildings
 
The transition to renewables in India.pdf
The transition to renewables in India.pdfThe transition to renewables in India.pdf
The transition to renewables in India.pdf
 
Key Features Of Token Development (1).pptx
Key  Features Of Token  Development (1).pptxKey  Features Of Token  Development (1).pptx
Key Features Of Token Development (1).pptx
 
Beyond Boundaries: Leveraging No-Code Solutions for Industry Innovation
Beyond Boundaries: Leveraging No-Code Solutions for Industry InnovationBeyond Boundaries: Leveraging No-Code Solutions for Industry Innovation
Beyond Boundaries: Leveraging No-Code Solutions for Industry Innovation
 
Pigging Solutions Piggable Sweeping Elbows
Pigging Solutions Piggable Sweeping ElbowsPigging Solutions Piggable Sweeping Elbows
Pigging Solutions Piggable Sweeping Elbows
 
Presentation on how to chat with PDF using ChatGPT code interpreter
Presentation on how to chat with PDF using ChatGPT code interpreterPresentation on how to chat with PDF using ChatGPT code interpreter
Presentation on how to chat with PDF using ChatGPT code interpreter
 
"Federated learning: out of reach no matter how close",Oleksandr Lapshyn
"Federated learning: out of reach no matter how close",Oleksandr Lapshyn"Federated learning: out of reach no matter how close",Oleksandr Lapshyn
"Federated learning: out of reach no matter how close",Oleksandr Lapshyn
 
My Hashitalk Indonesia April 2024 Presentation
My Hashitalk Indonesia April 2024 PresentationMy Hashitalk Indonesia April 2024 Presentation
My Hashitalk Indonesia April 2024 Presentation
 
APIForce Zurich 5 April Automation LPDG
APIForce Zurich 5 April  Automation LPDGAPIForce Zurich 5 April  Automation LPDG
APIForce Zurich 5 April Automation LPDG
 
SIEMENS: RAPUNZEL – A Tale About Knowledge Graph
SIEMENS: RAPUNZEL – A Tale About Knowledge GraphSIEMENS: RAPUNZEL – A Tale About Knowledge Graph
SIEMENS: RAPUNZEL – A Tale About Knowledge Graph
 
Maximizing Board Effectiveness 2024 Webinar.pptx
Maximizing Board Effectiveness 2024 Webinar.pptxMaximizing Board Effectiveness 2024 Webinar.pptx
Maximizing Board Effectiveness 2024 Webinar.pptx
 
Injustice - Developers Among Us (SciFiDevCon 2024)
Injustice - Developers Among Us (SciFiDevCon 2024)Injustice - Developers Among Us (SciFiDevCon 2024)
Injustice - Developers Among Us (SciFiDevCon 2024)
 
Kotlin Multiplatform & Compose Multiplatform - Starter kit for pragmatics
Kotlin Multiplatform & Compose Multiplatform - Starter kit for pragmaticsKotlin Multiplatform & Compose Multiplatform - Starter kit for pragmatics
Kotlin Multiplatform & Compose Multiplatform - Starter kit for pragmatics
 
Automating Business Process via MuleSoft Composer | Bangalore MuleSoft Meetup...
Automating Business Process via MuleSoft Composer | Bangalore MuleSoft Meetup...Automating Business Process via MuleSoft Composer | Bangalore MuleSoft Meetup...
Automating Business Process via MuleSoft Composer | Bangalore MuleSoft Meetup...
 
CloudStudio User manual (basic edition):
CloudStudio User manual (basic edition):CloudStudio User manual (basic edition):
CloudStudio User manual (basic edition):
 
"LLMs for Python Engineers: Advanced Data Analysis and Semantic Kernel",Oleks...
"LLMs for Python Engineers: Advanced Data Analysis and Semantic Kernel",Oleks..."LLMs for Python Engineers: Advanced Data Analysis and Semantic Kernel",Oleks...
"LLMs for Python Engineers: Advanced Data Analysis and Semantic Kernel",Oleks...
 
The Codex of Business Writing Software for Real-World Solutions 2.pptx
The Codex of Business Writing Software for Real-World Solutions 2.pptxThe Codex of Business Writing Software for Real-World Solutions 2.pptx
The Codex of Business Writing Software for Real-World Solutions 2.pptx
 
Designing IA for AI - Information Architecture Conference 2024
Designing IA for AI - Information Architecture Conference 2024Designing IA for AI - Information Architecture Conference 2024
Designing IA for AI - Information Architecture Conference 2024
 
#StandardsGoals for 2024: What’s new for BISAC - Tech Forum 2024
#StandardsGoals for 2024: What’s new for BISAC - Tech Forum 2024#StandardsGoals for 2024: What’s new for BISAC - Tech Forum 2024
#StandardsGoals for 2024: What’s new for BISAC - Tech Forum 2024
 
E-Vehicle_Hacking_by_Parul Sharma_null_owasp.pptx
E-Vehicle_Hacking_by_Parul Sharma_null_owasp.pptxE-Vehicle_Hacking_by_Parul Sharma_null_owasp.pptx
E-Vehicle_Hacking_by_Parul Sharma_null_owasp.pptx
 

Airfoil linear wind generator (alwg) as a novel wind energy extraction approach

  • 1. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 DOI : 10.14810/ijmech.2014.3406 51 AIRFOIL LINEAR WIND GENERATOR (ALWG): AS A NOVEL WIND ENERGY EXTRACTION APPROACH Hossein Darijani1 and Abbas Panahi2 1,2 Department of Mechanical Engineering, College of Engineering, Shahid Bahonar University of Kerman, Kerman, Iran ABSTRACT Linear wind generator (LWG) is a sufficient way of wind energy harnessing process. However, complicated LWG energy extraction mechanism such as complex system for transferring linear motion to rotational motion and problems related to changing the angle of attack is resulted to energy dissipation. In the other hand the linear generator that delivers ocean wave energy to electricity has been developed as a new renewable energy extraction method. Some of the problems associated with this technology are corrosion, high cost of manufacturing, high requirement for installation and construction, economical consideration, etc. In the most recent works, low dissipation energy in mechanism, low cost, simplicity and high performance are highly regarded as environmentally friendly methods for wind energy extraction mechanisms. In the current study, we would like to introduce a new and efficient method to extract wind energy using airfoil linear wind generator(ALWG). ALWG is a new method that produces liner reciprocating motion via attached airfoils to a mover in a magnetic field in order to generate electricity. The most important advantage of ALWG is its simplicity and its compatibility to all wind situations that can be more controllable relative to ocean-based and also relative to LWG that become challengeable problem. KEYWORDS Keywords: ALWG, Airfoil, Linear Generator, Wind Energy 1. INTRODUCTION An urgent and strategic issue of our society is the solution of the atmosphere pollution problems which posed by electric energy generation from fossil flues as nonrenewable sources [1]. Obviously, these problems can be resolved by the use of natural sources that are renewable, cheap, easily available and sustainable for the environment. However, the actual renewable technologies up to now had not such potentials. As a result, many attempts have been conducted in order to utilize wind [2], ocean wave [3], solar [4], etc. as green energy sources. One of the most well-known examples is wind mills or wind turbine that is used as a realistic approach to harness wind energy in great amount. Wind farms have problems of land occupation and environmental impact because of this fact that their electrical production depend on the amount of area that they occupy [5]. To overcome these problems, Milanese et al. has developed a new class of wind energy generators, named “Kitegen” as shown in Figure 1, [6, 7].
  • 2. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 52 Figure 1. The mechanism of operation of kite generator There are many obstacles in front of Kitegen project development, due to the main problems that wind has created for controlling the trajectory of kite and its stability [8]. Up to now, there are rare methods to utilize this project efficiently. Consequently, there is much consideration on Kitegen project in the recent years in order to extract wind energy using this method practically. For example, Laddermill [9] with similar situations to Kitegen is one of the used technologies. In the Laddermill structure there are many kites which are connected to a main rode that is twisted around an attached drum to generator (Figure 2). Figure 2. The structure of a Laddermill Another important approach which has been introduced based on Kitegen operation principle, is linear wind generator (LWG). The LWG can convert an equivalent swept area of wind compared to wind turbine generator (WTG) into twice the amount of electricity. Also, it is simple to install and can produce electricity at a substantially lower cost and within a significantly smaller land area compared to WTGs. To introduce the LWG operation its principle is demonstrated in Figure 3.
  • 3. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 53 Figure 3. The principle of action of a LWG As shown in Fig.3, first, air passing over the initial stage blades to produce a lift force. The air velocity, after passing the first stage, is reduced significantly and requires the second stage blades to be angled appropriately because of the changed apparent wind vector. The second stage blades also produce a lift force component in the direction of cable travel thereby adding to the first stage’s contribution; by this way the most amount of winds energy have been harnessed . As you can see in the LWG operation mechanism, it suffers from a complicated energy extraction process due to a complex system for transferring linear motion to rotational motion. Furthermore, it has problems originated from changing the angle of attack which are resulted to the energy dissipation and system life reduction. One of the newest ideas is the use of linear generator (LG) to convert ocean wave energy to electricity [10]. The simple structure of a LG for energy extraction from ocean is shown in Figure 4. Figure 4. The main structure of an ocean wave energy generator Although the energy extraction from ocean ,[11], is interesting and can be used for special applications, however it suffer from some drawbacks such as corrosion, high cost of manufacturing, high requirement for installation and construction, economical consideration, etc. [12] . Nowadays, some modifications to already existing methodologies to renewable energy extraction, considering the environmental consciousness in both industrial and academic studies, have received great attention. Along this line, herein, we introduce a new mechanism (Figure 5)
  • 4. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 54 based on aerodynamic forces exerts on airfoil by air current. In this method we used from linear generator instead of rotary generator. Overall, in our protocol the lock-unlock mechanisms and angle of attack changer is eliminated in order to save energy by use of a flywheel and change of angleof attack only. Figure 5. Overall picture of an ALWG 2.1. The structure and mechanism of AWLG The main structure of a designed AWLG is depicted in Figure 6. Figure 6. The main components of ALWG and its operation As shown in Fig. 6, an AWLG contains 3 substructures: 1) a set of airfoils, 2) linear generator and 3) a device for saving energy (flywheel or spring). In AWLG, in first cycle the angle of attack of airfoil will be changed in order to exert an upward force on airfoil. While the airfoil reaches to the maximum level in the vertical path, simultaneously the flywheel is saving fraction of the energy. After this process the flywheel operates and complete the other cycle. Taking into account the fact that airfoil is on a beam, a reciprocating motion will be produce in perpendicular direction relative to wind. Considering this issue that radial and axial force occur in the linear generator (between rotor and stator, this force is due to the geometrical magnetic anisotropy of the
  • 5. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 55 generator), the existence of flywheel is necessary in order to maintain continues motion and homogenize anisotropy forces [13]. In the second cycle (operation of flywheel), the changer of angle of attack mechanism can deplete it to minimum level. This action decrease the lift force on the airfoil to zero as it reaches to minimum length relative to generator. Affected by this actionthe flux in the stator coils varies with the mover position from maximum to minimum. Consequently, an AC motion-induced voltage is produced in the stator coil as a result of up-and-down oscillatory motion of the mover. 2.2. Conservation of energy The magnetic flux (φ) can be determined using the following equation (Eq. 1) in the presence of a magnetic field (B): ∅ = න ‫.ܤ‬ ݀ܽԦ (1) Also, to determine the electromotance, in the presence of a magnetic field the Faraday induction low is used (Eq. 2). (For more study [14]) ݁ = − ݀ሺܰ∅ሻ ݀‫ݐ‬ (2) According to this equation the electromotance (voltage) induced in a close circuit are equal minus the time derivation of total flux enclosed by the circuit. The minus sign is confirmed that the direction of the current induced in the circuit is opposed to the direction of increasing flux. The mechanism of operation of linear actuator according to the equations 1 and 2 is shown in Figure 7, which is the principle of a linear generator in reverse manner. Figure 7. The principle of operation of linear generator & actuator Because the electromechanical energy conversion process is reversible, actuators can be operated as linear electric generators, in which case mechanical energy is transformed into electric energy. The fundamental energy conversion equation is demonstrated in Eq. 3. ‫ݔܨ‬ሶ = ܸ‫ܫ‬ (3) Where F is mechanical force, N; dx/dt is mechanical velocity m/s; V is voltage, and I is current. It is assumed that F and x are in the same direction.
  • 6. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 56 When the stator coil is fed with an electric current, the ferromagnetic translator is pulled into the air gap (between the stator poles) until, for x = 0, the force becomes zero. At x = 0 all the flux lines ideally become vertical (aligned flux position) and the stored energy in the magnetic field is minimal. Now, if the current is turned off, the mechanical spring pulls the translator out from the air gap to x = -l/2 position. At this position the current is turned on again. Sustained oscillations obtain. This mechanism explain the work of linear actuator ,but it is practical that we reverse the mechanism in order to getting electricity by enforce mover to experience a reciprocating motion .We do this work by means of lift force that has been accomplished by an airfoil [14] . 2.3. Mathematical modeling of motion of airfoil Figure 8 schematically shows an airfoil installed in wind direction. Figure 8. The mathematical modeling of an airfoil motion It is assumed that the airfoil can move only vertically. The displacement of the center of mass is z and it is positive when going upward. The wind is blowing at uniform horizontal of speed u. When the airfoil moves upward at a speed of v the surrounding air moves downward relative to the airfoil at the same speed. To the oncoming air flow, the angle of attack of the airfoil can be obtained by use of the following equation: ߙ = ߙ଴ + ‫݊ܽݐ‬ିଵ ቀ ‫ݒ‬ ‫ݑ‬ ቁ (4) In absence of wind the angle of attack of airfoil is ߙ଴ and after that airfoil senses wind the angle of attack increases as amount of ‫݊ܽݐ‬ିଵ ሺ ௩ ௨ ሻ. The lift of the airfoil in the direction normal to the flow has the expression as: ‫ܮ‬ = 1 2 ߩሺ‫ݑ‬ଶ + ‫ݒ‬ଶሻܵ‫݈ܥ‬ (5) Where ߩ is air density, S the projected area of airfoil, and CL is the lift coefficient of the airfoil. The lift coefficient increases by enhancement of the angle of attack up to stall point. It should be mentioned that the angle of attack will be reduced, if the rising of angle of attack continue. The curve of CL versus angle of attack is shown in Figure 9.
  • 7. International Journal of Recent advances in Mechanical Engineering (IJMEC Figure 9. Lift coefficient (C In this study the thin airfoil theory is used in which lift coefficient has a linear relation with angle of attack (Eq. 6). ‫ܥ‬௅ = 2ߨߙ It is necessary to avoid very high angle of attack due to the effect of induced drag that cause exerting an undesirable force in direction of air flow. In high angle of attack, the linear generator may experience unfavorable input and this can effects on b motion on it (Fig. 5). Consequently, More importantly, 'vortex' is an imperative point that could exist when aspect ratio (AR) is finite. Vortex causes some circulation behind of the airfoil top and below of the airfoil, that all together cause low effective angle of attack relative to airfoil section with infinite aspect ratio (AR= drag force and induced drag as two main factors in structure designing. The equations of motion for the center of mass are: ݀‫ݖ‬ ݀‫ݐ‬ = ‫݉ ݀݊ܽ ݒ‬ ݀‫ݒ‬ ݀‫ݐ‬ = − Upon substitution of the value ܿ‫ݏ݋‬ ݉ ݀‫ݒ‬ ݀‫ݐ‬ = −݉݃ − ݂௔௫௜௔௟ + ߨߩܵ In which m is the sum of mass of airfoil and rotor ( considered 5 Kg ) ,u is velocity of wind, velocity of mover,݂௔௫௜௔௟is axial force due to the effect of geometrical magnetic anisotropy of the generator ,ߙ଴ is initial angle of attack ,S is projected area of airfoil . By considering the fact that electrical power plus losses in generator current… etc. is equal the mechanical power, so we determined its value as follow: ܲ = ‫ܸܨ‬ International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 Figure 9. Lift coefficient (CL) versus angle of attack (α) In this study the thin airfoil theory is used in which lift coefficient has a linear relation with angle It is necessary to avoid very high angle of attack due to the effect of induced drag that cause exerting an undesirable force in direction of air flow. In high angle of attack, the linear generator may experience unfavorable input and this can effects on beam that airfoil has a reciprocating motion on it (Fig. 5). Consequently, α should be selected in a certain range in order to avoid stall. More importantly, 'vortex' is an imperative point that could exist when aspect ratio (AR) is ortex causes some circulation behind of the airfoil, unbalanced pressure distribution on top and below of the airfoil, that all together cause low effective angle of attack relative to airfoil section with infinite aspect ratio (AR=∞). In this work for simplicity we ignored the effects of drag force and induced drag as two main factors in structure designing. The equations of motion for the center of mass are: −݉݃ + ‫ݏ݋ܿܮ‬ሺ∆ߙሻ − ݂௔௫௜௔௟ ܿ‫ߙ∆ݏ݋‬ = ௨ √௨మା௩మ and L, the second equation becomes: ߨߩܵ ‫ݑ‬ ቆߙ଴ + ‫݊ܽݐ‬ିଵ ቀ ‫ݒ‬ ‫ݑ‬ ቁቇ ඥ‫ݑ‬ଶ + ‫ݒ‬ଶ In which m is the sum of mass of airfoil and rotor ( considered 5 Kg ) ,u is velocity of wind, is axial force due to the effect of geometrical magnetic anisotropy of the is initial angle of attack ,S is projected area of airfoil . By considering the fact that electrical power plus losses in generator due to hysteresis, iron, eddy etc. is equal the mechanical power, so we determined its value as follow: H) Vol.3, No.4, November 2014 57 In this study the thin airfoil theory is used in which lift coefficient has a linear relation with angle (6) It is necessary to avoid very high angle of attack due to the effect of induced drag that cause exerting an undesirable force in direction of air flow. In high angle of attack, the linear generator eam that airfoil has a reciprocating should be selected in a certain range in order to avoid stall. More importantly, 'vortex' is an imperative point that could exist when aspect ratio (AR) is , unbalanced pressure distribution on top and below of the airfoil, that all together cause low effective angle of attack relative to airfoil work for simplicity we ignored the effects of (7) and L, the second equation becomes: (8) In which m is the sum of mass of airfoil and rotor ( considered 5 Kg ) ,u is velocity of wind, ‫ݒ‬ is is axial force due to the effect of geometrical magnetic anisotropy of the due to hysteresis, iron, eddy (9)
  • 8. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 58 By substituting (8) into (9) following equation will be obtained: ܲ = ቆ−݉݃ − ݂௔௫௜௔௟ + ߨߩܵ ‫ݑ‬ ቆߙ଴ + ‫݊ܽݐ‬ିଵ ቀ ‫ݒ‬ ‫ݑ‬ ቁቇ ඥ‫ݑ‬ଶ + ‫ݒ‬ଶቇ ‫ݒ‬ (10) And also eq. 11 is as follow: ܲ = ܸଶ ܴ (11) In Eq. 11 R is the equivalent resistant in circuit which depends on the generator and also electrical properties of stator and rotor which is considered its value a constant. Figure (10) shows schematically a lumped circuit equivalent of the generator can be used to understand how the current in generator is related to induced electromotance. Figure 10 : Lumped circuit equivalent of a synchronous generator The circuit equivalent is only an approximation but is useful for pedagogical reasons. Figure (10) shows the equivalence of a generator where the measurable voltage is described by an electromotance Enl .This voltage is referred to no load voltage, which is the measurable voltage at the coil ends when no current flows through the generator’s is the reactance of the generator .Rc is the resistance in the coil windings .The outer circuit, or the load, can be either purely resistive or reactive. In this work the load is assumed to be strictly resistive and is described by a resistance RloadThe voltage over the load U will thus be in phase with the armature current Ia. 2.4 Power losses The power losses in a generator consist of three parts: 1. Losses due to the changing magnetic field (often referred to steel losses) 2. Resistive losses in the coil windings 3. Mechanical losses such as friction and deformation. The main part of these losses happen in the stator steel .It consists of two parts: hysteresis losses and losses due to eddy currents.
  • 9. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 59 2.4.1 Hysteresis losses Hysteresis losses is the energy it takes to reverse the magnetization of the material and will only effect materials that are magnetic dipoles .The losses are approximately proportional to the frequency of the magnetic field and the acquirer of the magnetic induction and per unit volume is as follows: ܲ௛ = ‫ܥ‬௛‫ܤ‬ଶ ݂ (12) Where Ch is a material dependent constant. Hysteresis losses can be reduced by selecting a material with soft magnetic properties i.e. a material that is easily re-magnetized hysteresis. 2.4.2 Eddy current losses Eddy currents are circular electric current in a material by the changing magnetic field. These current are directly proportional to the electromotance induced in circuit by changing magnetic flux. And the power losses per unit volume is proportional to the square of current as follow: ܲா = ‫ܥ‬ா 1 ܶ න ൬ ߲‫ܤ‬ ߲‫ݐ‬ ൰ ଶ ≈ ‫ܥ‬ா‫ܤ‬ଶ ݂ଶ ் ଴ (13) CE is a material constant depending on the resistivity and T is the time of one period .The major part of eddy losses appear in stator and can be depleted by assembling them with electric isolated lamination of the stator steel. 2.4.3 Resistive losses The resistive losses in the coil windings are referred to as copper losses because the conductor in most cases are made of copper. Since copper is not a magnetic dipole material hysteresis losses will not appear. The resistive losses in a conductor with electrical resistance R caring current I are: ܲ௖ = ‫ܫ‬ଶ ܴ (14) Table 1. The value of wasted powers in a considered linear generator Hysteresis (KW) 0.52 Eddy current losses (KW) 0.07 Rotational losses (KW) 0.03 Total iron losses (KW) 0.62 In the Eq.15 the principle of conservation of energy is mentioned, that explain the relation between electrical energy and mechanical energy and also their relevant losses. P(mechanical)+P(friction-loss)=P(electrical)+P(Copper, iron,… losses) (15) By substituting (eq. 10) into (eq. 11) and by use of (eq. 15) and also ignoring the amount of losses (because estimating the maximum energy output of this mechanism is regarded). As a result the following equation is obtained.
  • 10. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 60 ܸ = ඨܴ௘௤௔௟ ቆ−݉݃ − ݂௔௫௜௔௟ + ߨߩܵ ‫ݑ‬ ቆߙ଴ + ‫݊ܽݐ‬ିଵ ቀ ‫ݒ‬ ‫ݑ‬ ቁቇ ඥ‫ݑ‬ଶ + ‫ݒ‬ଶቇ ‫ ݒ‬ (16) After plotting P (power) versus mover velocity, this shows that mechanical power increase dramatically as velocity increases slightly (Figure 11). Figure 11: The increment of pure mechanical power versus velocity of mover It is possible to use several airfoils vertically but what is important here is the distance between the used airfoils. From aerodynamic point of view when air passes on the airfoil, it changes the stream shape and makes a disturbance in the vicinity around airfoil. This function affects the pressure distribution around upper or lower airfoil and generally causes depletion in lift force of them. We supposed that there is no limitation on installing airfoils which have been arranged in a logical manner that causes no bad effect on the other airfoil. By this way the mechanical power that has extracted increase dramatically. Equation 16 is a relation that shows Induced-voltage versus velocity of mover. It should be considered that velocity can be instantaneous or constant. In the following the induced voltage and mechanical power for some condition are illustrated. 3. Results and discussions The mechanical power was plotted versus velocity of mover as depicted in Figure 12.
  • 11. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 61 Figure 12. Power versus mover velocity in different wind condition As shown in Fig. 12 by increasing the wind velocity the amount of mechanical power is increased dramatically. In other attempt, we investigate the effect of projected area on mechanical power for u=10 m/s. The diagram of this investigation is shown in Figure 13. Figure 13. Power versus mover velocity in different value of projected area Figure 12 show that by increasing the projected area (S) the mechanical power is increased. You can see that the effect of this parameter is more than wind velocity so that in same velocity of mover the power output become 3 times greater than the its amount in figure 12. Other important factor to increase the mechanical power is initial angle of attack. As shown in Figure 14 the mechanical power is increased with addition of initial angle of attack. For example for 1 m/s velocity of mover, 10 m/s velocity of wind and initial angle of attacks 10, 14 and 16 the mechanical power were calculated 6, 7 and 8 KW respectively.
  • 12. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 62 Figure 14. Power versus mover velocity in different initial angle of attack Our studies on the effect of number of airfoil on mechanical power showed that this parameter has significant influence on power output. Figure 14. Power versus mover velocity for 20, 30 and 40 number of airfoils As shown in Figure 14, at a certain velocity of mover when the numbers of airfoils increase twice the power become 7 times approximately. This is very interesting point because we can improve the power output in huge amount using only manipulation the number of airfoils. Next we evaluated the effect of wind velocity, projection area, and initial angle of attack on the overall induced-voltage in the main circuit of system. The results demonstrated that by increment of wind velocity the output voltage enhance (Figure 15).
  • 13. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 63 Figure 15. Induced-voltage versus mover velocity in different wind condition As shown in Figure 15, when the wind velocity changed from 10 m/s to 15 m/s the voltage become twice. Effect of projected area on voltage is shown in Figure 16. Figure 16. Induced-voltage versus mover velocity in different projected area Figure 16 shows that by increase of projection area the voltage is increased so that at u = 10 m/s when S raise from 1 to 3 voltage change from 350v to 750 v. Also by increment of initial angle of attack the overall induced-voltage is increased. As shown in Fig. 17, by enhancement of alpha from 10 to 16 at a specific wind velocity the output voltage becomes twice approximately.
  • 14. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 64 Figure 17. Induced-voltage versus mover velocity for different initial angle of attack Furthermore, Figure 18 shows the value of mechanical power and velocity of mover in same time, confirming that with past of time these parameters enhance in same manner. This diagram demonstrated that with increment of time that is same to increase the amplitude of oscillation of mover, the power output will increase too. Figure 18 .Value of mechanical power and velocity of mover in same time 3.1. A comparison between ALWG and ocean wave energy The total energy in an ocean wave can be calculated in joules per unit of width of wave front by summing up the potential and kinetic energy of all waves together [15]. The potential energy in a wave of length L is generated by the displacement of the water away from the mean sea level. The kinetic energy of a wave is a result of both horizontal and vertical water particle motions [16]. The total potential and kinetic energy of an ocean wave can be expressed as:
  • 15. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 65 ‫ܧ‬ = 1 2 ߩ݃‫ܣ‬ଶ (18) Where g =9.8 m/s2 and ρ is density of water (1000 Kg/m3 ) and A is wave amplitude. To obtain the average energy flux or power of a wave period, energy is multiplied by the speed of wave propagation, Vp: ܸ‫݌‬ = ‫ܮ‬ 2ܶ (19) Where T is the wave period (s) and L is wavelength (m) [18]: ܲ‫ݓ‬ = 1 2 ߩ݃‫ܣ‬ଶ ‫ܮ‬ 2ܶ (20) And by following relation L and T are related: ‫ܮ‬ = ݃ܶଶ 2ߨ (21) So the final relation will be: ܲ‫ݓ‬ = ߩ݃ଶ ܶ‫ܣ‬ଶ 8ߨ = ߩ݃ଶ ܶ‫ܪ‬ଶ 32ߨ (22) Where H is the height of wave and A is amplitude (H=2A). In the Figure 19, there is a comparison between the total power of a wave and an AWLG in same condition. This point has been shown that for the 20 number of airfoil arrangement, the power is approximately same, of course not for very high value of mover velocity (Table 1). Table 1. A numerical comparison between ALWG and ocean wave energy V =H/2T Wave energy (W) 20 airfoil (W) 35 airfoil (W) H (m) V (m/s) 1 0.125 1000 2000 6000 2 0.25 8000 5000 10000 3 0.375 15000 9000 18000 4 0.5 30000 15000 25000
  • 16. International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 66 Figure 19. A comparison between the total power of a wave and an AWLG in same condition a) 10 airfoil b) 20 airfoil c) 30airfoil d) 40 airfoil Conclusion This work has disclosed a study intended to scrutinize airfoil linear wind generator (ALWG) as a new class of wind energy extractor, talented to overcome the main limitations of the present wind energy extractor technologies. Moreover, ALWG has introduced in order to eliminate some of the problems associated with the previous extractor systems such as LWG and ocean-based systems. In fact, ALWG is a new method to produces liner reciprocating motion via attached airfoils to a mover in a linear generator in order to generate electricity.Herein, we have introduced a new mechanism (Figure 5) based on aerodynamic forces exerts on airfoil by air current. In this method we used from linear generator instead of rotary generator. Overall, in our protocol the lock-unlock mechanisms and angle of attack changer is eliminated in order to save energy by use of a flywheel and change of angleof attack only. Our study shows that in a certain velocity of mover: 1) increasing the projected area of airfoil has a considerable effect on mechanical power and also on induced voltage of generator 2) the mechanical power and induced voltage of generator are increased with addition of initial angle of attack; 3) wind velocity is a contributory factor but its influence is not more higher than increasing projected area and initial angle of attack thus the extraction of more energy from wind is practical using an appropriate design of airfoils in the absence of high wind velocity; 4) the power will be increased dramatically by increasing the number of airfoils. Acknowledgment We gratefully acknowledge Zarand power generation Management Company under management of Mr. Heidary for partial support of this work. Also, we are thankful to Prof. Mansoori and Prof. Ameri in Mechanical Engineering Department of Shahid Bahonar University for their helpful comments.
  • 17. International Journal of Recent advances in Mechanical Engineering (IJMEC References [1] Chen D, Xinhui Bi, Jinping Zhao, Laiguo Chen, Jihua Tan, Bixian Mai, Guoying Sheng, Jiamo Fu, Minghung Wong Pollution characterization and diurnal variation of PBDEs in the atmosphere of an E-waste dismantling region, Environmental Pollution, Volume 157, I 1057 [2] A reviewontheperformanceofSavoniuswind turbines Renewable and Sustainable Energy Reviews, Volume 16, Issue 5, June 2012, Pages 3054 Adriane Prisco Petry [3] A review of wave-energy extraction' Johannes Falnes, Marine Structures 20 (2007) 185 [4] Energy, exergyandthermo-economicanalysisof solardistillationsystems: A review Renewable and Sustainable Energy Reviews, Volume 27, November 2013, Pages 709 K.R. Ranjan, S.C. Kaushik [5] M.Canale, L. Fagiano,M. Milanese, 'Kitegen: A revolution in wind energy generation ' energy, November 2008 [6] Ippolito M. Smart control system exploiting the characteristics of generic kites or airfoils to convert energy. European patent # 02840646, 2004. [7] Milanese M, Ippolito M. Sistema e procedimento di controllo automatico Del volo di pro Potenza. Patent no. TO2006A000372, 2006 [in Italian] [8] Determinationof kiteforcesusingthree Energy, Volume36, Issue10, Octobe, 2011, Pages2667 R.A. Shenoi [9] Laddermill, a novel concept to exploit the energy in theairspace Aircraft Design, Volume4, Issues2 June–September2001, Pages81 [10] Historical Aspects of wave energy conversion, Comprehensive Renewable Energy, Volume 8, 2012, pages 7-9, A.F.O. Falcão [11] Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, OmerC.onar, International Standard Book Number: 978 [12] Design of a linear generator for wave energy plant, O.Danielsson, Upssala University Sweden [13] Constantin GHITA,Aurel Iounut CHIRILA,Ioan Dragos DEACONU, and Daniel Ion ILINA,'The magnetizing field of a linear generator used to obtain electrical energy from waves energy ' Department of Electrical Engineering Politehnica University of Bucharest [14] Linear Electrical actuators and Generators, by I.Boldea (Polytechnic Institute, Timisoara, Romania) and Syed A.Nasar (university of Kentucky) [15] Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, Omer Conar, International Standard Book Number: 978 [16] G.T. Heydt, “An assessment of ocean thermal energy convers methodology,” Proceedings of the IEEE, 81, 409 Authors Hossein Darijani received the BSc degree in mechanical engineering from Shahid Bahonar University of Kerman. He received the MSc and PhD, both in mec Sharif University of Technology (SUT). His technical interestsare Nonlinear Continuum Mechanic Constitutive Modelling of Hyperelastic Materials Non Deformation Thermoelasticity Plasticity. Now, he is assi University of Kerman. Abbas Panahi was born in January 21nd 1992,in Shiraz. He received his BSc degree in mechanical engineering from Shahid Bahonar University of Kerman. His research interests are computational nanotechnology, Atomistic simulation (molecular dynamic), mechanic and renewable energy systems (wind, solar). International Journal of Recent advances in Mechanical Engineering (IJMECH) Vol.3, No.4, November 2014 Chen D, Xinhui Bi, Jinping Zhao, Laiguo Chen, Jihua Tan, Bixian Mai, Guoying Sheng, Jiamo Fu, Minghung Wong Pollution characterization and diurnal variation of PBDEs in the atmosphere of an waste dismantling region, Environmental Pollution, Volume 157, Issue 3, March 2009, Pages 1051 A reviewontheperformanceofSavoniuswind turbines Renewable and Sustainable Energy Reviews, Volume 16, Issue 5, June 2012, Pages 3054-3064-João Vicente Akwa, Horácio Antonio Vielmo, energy extraction' Johannes Falnes, Marine Structures 20 (2007) 185 economicanalysisof solardistillationsystems: A review Renewable and Sustainable Energy Reviews, Volume 27, November 2013, Pages 709-723 M.Canale, L. Fagiano,M. Milanese, 'Kitegen: A revolution in wind energy generation ' Ippolito M. Smart control system exploiting the characteristics of generic kites or airfoils to convert ean patent # 02840646, 2004. Milanese M, Ippolito M. Sistema e procedimento di controllo automatico Del volo di pro Potenza. Patent no. TO2006A000372, 2006 [in Italian] Determinationof kiteforcesusingthree-dimensionalflight trajectoriesforshippropulsion Renewable Energy, Volume36, Issue10, Octobe, 2011, Pages2667-2678 George M. Dadd, Dominic A. Hudson, Laddermill, a novel concept to exploit the energy in theairspace Aircraft Design, Volume4, Issues2 Pages81-97Wubbo J. Ockel Historical Aspects of wave energy conversion, Comprehensive Renewable Energy, Volume 8, 2012, Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, OmerC.onar, national Standard Book Number: 978-1-4398-1508-3 Design of a linear generator for wave energy plant, O.Danielsson, Upssala University Sweden Constantin GHITA,Aurel Iounut CHIRILA,Ioan Dragos DEACONU, and Daniel Ion ILINA,'The a linear generator used to obtain electrical energy from waves energy ' Department of Electrical Engineering Politehnica University of Bucharest Linear Electrical actuators and Generators, by I.Boldea (Polytechnic Institute, Timisoara, Romania) Syed A.Nasar (university of Kentucky) Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, Omer Conar, International Standard Book Number: 978-1-4398-1508-3 G.T. Heydt, “An assessment of ocean thermal energy conversion as an advanced electric Generation methodology,” Proceedings of the IEEE, 81, 409–418, 1993 Hossein Darijani received the BSc degree in mechanical engineering from Shahid Bahonar University of Kerman. He received the MSc and PhD, both in mechanical engineering, from Sharif University of Technology (SUT). His technical interestsare Nonlinear Continuum Mechanic Constitutive Modelling of Hyperelastic Materials Non-Linear elasticity Finite Deformation Thermoelasticity Plasticity. Now, he is assistant professor in Shahid Bahonar was born in January 21nd 1992,in Shiraz. He received his BSc degree in mechanical engineering from Shahid Bahonar University of Kerman. His research interests nanotechnology, Atomistic simulation (molecular dynamic), fluid energy systems (wind, solar). H) Vol.3, No.4, November 2014 67 Chen D, Xinhui Bi, Jinping Zhao, Laiguo Chen, Jihua Tan, Bixian Mai, Guoying Sheng, Jiamo Fu, Minghung Wong Pollution characterization and diurnal variation of PBDEs in the atmosphere of an 3, March 2009, Pages 1051- A reviewontheperformanceofSavoniuswind turbines Renewable and Sustainable Energy Reviews, João Vicente Akwa, Horácio Antonio Vielmo, energy extraction' Johannes Falnes, Marine Structures 20 (2007) 185–201 economicanalysisof solardistillationsystems: A review Renewable and M.Canale, L. Fagiano,M. Milanese, 'Kitegen: A revolution in wind energy generation '-Journal of Ippolito M. Smart control system exploiting the characteristics of generic kites or airfoils to convert Milanese M, Ippolito M. Sistema e procedimento di controllo automatico Del volo di profili alari di forshippropulsion Renewable 2678 George M. Dadd, Dominic A. Hudson, Laddermill, a novel concept to exploit the energy in theairspace Aircraft Design, Volume4, Issues2–3, Historical Aspects of wave energy conversion, Comprehensive Renewable Energy, Volume 8, 2012, Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, OmerC.onar, Design of a linear generator for wave energy plant, O.Danielsson, Upssala University Sweden Constantin GHITA,Aurel Iounut CHIRILA,Ioan Dragos DEACONU, and Daniel Ion ILINA,'The a linear generator used to obtain electrical energy from waves energy '- Linear Electrical actuators and Generators, by I.Boldea (Polytechnic Institute, Timisoara, Romania) Energy harvesting (solar, wind and ocean energy conversion system),Alireza khaligh, Omer Conar, ion as an advanced electric Generation was born in January 21nd 1992,in Shiraz. He received his BSc degree in mechanical engineering from Shahid Bahonar University of Kerman. His research interests fluid