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Bulletin of Electrical Engineering and Informatics
Vol. 10, No. 4, August 2021, pp. 1846~1855
ISSN: 2302-9285, DOI: 10.11591/eei.v10i4.3113 1846
Journal homepage: http://beei.org
Hybrid renewable energy photovoltaic and darrieus VAWT as
propulsion fuel of prototype catamaran ship
Budhy Setiawan, Ekananda Sulistyo Putra, Indrazno Siradjuddin
Electrical Engineering Department, State Polytechnic of Malang, Malang, Indonesia
Article Info ABSTRACT
Article history:
Received Dec 22, 2020
Revised Mar 26, 2021
Accepted Jun 19, 2021
Currently, marine transportation in the world still uses fossil fuels. In addition
to running low on supplies, fossil fuels also cause emissions that cause global
warming. Sea transportation generates around 1,000 million tonnes of CO2
emissions. Therefore, the exploration of alternative energy is becoming a
popular research direction. Several renewable energy sources include solar
and wind energy. Indonesia has an average wind speed of above 8 m/s at sea.
Also, the energy potential of the sun is around 4.8 kWh/m2
. Based on the
potential of these renewable energy sources, this study discusses the potential
of renewable energy sources from sunlight and wind, which are implemented
in the prototype catamaran ship. The results obtained from the experiment, the
total energy of photovoltaic (PV) and wind turbine generators is 774 Wh. This
energy can be used to charge a battery with a battery specification of 35Ah for
6 hours.
Keywords:
Hybrid renewable energy
Photovoltaic module
Ship’s propulsion
Wind turbine generator
This is an open access article under the CC BY-SA license.
Corresponding Author:
Ekananda Sulistyo Putra
Electrical Engineering Department
State Polytechnic of Malang
Jl. Soekarno-Hatta No. 9, Malang 65141, Indonesia
Email: ekananda_putra@polinema.ac.id
1. INTRODUCTION
Currently, the majority of electrical energy is produced from fossils; almost 85% of all energy
comes from fossil fuels [1], [2]. One of the sectors that use fossil fuels is sea transportation. More than 95%
of civil ships use diesel engines for propulsion [3]. Sea transport emissions around 1,000 million tonnes of
CO2 yearly and contribute to 2.5% of global warming [4], [5]. Therefore, exploration of alternative energy,
alternative fuels, energy conservation, and environmental protection technology is becoming a popular
research direction [3], [6]-[8]. Renewable energy comes from natural resources such as sunlight, wind, tide
and geothermal, which is replenished naturally [9]-[11].
The wind speed map based on the WindSat data, in Indonesia has wind speeds from 5 m/s to 10 m/s
or greater than the minimum wind speed to drive wind turbine generator, which is 4 m/s [2], [12]. Apart from
wind energy, Indonesia has an average solar radiation potential around 4.8 kWh/m2
/day with a monthly
variation of about 9% [13]. Wind turbines are alternative energy technologies that are able to convert wind
energy into electrical energy [14], [15]. There are two types of wind turbines, namely horizontal-vertical axis
wind turbine (HAWT) and vertical axis wind turbine (VAWT). The working principle of the HAWT wind
turbine is based on the lift force of the wind energy while the VAWT wind turbine is based on the drag force
that occurs due to wind movement [16], [17]. HAWT is widely used for higher production volumes that
require a large investment and occupy more space for installation compared to VAWT [18], [19]. VAWT
requires a low-cost investment and less space for installation compared to HAWT [16], [17]. Photovoltaic
(PV) module is a semiconductor consisting of a dio [20] de p-n junction when exposed to sunlight, will create
Bulletin of Electr Eng & Inf ISSN: 2302-9285 
Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of … (Budhy Setiawan)
1847
electrical energy that can be utilized, this energy conversion is called the photoelectric effect [5], [21]-[23].
Both renewable energy sources will be stored in lithium batteries [24], [25]. Using a lithium battery because
it has the highest energy to weight and energy to space ratio of modern rechargeable batteries and is
relatively light [26], [27].
In this research discusses the potential use of the that renewable energy sources which are
implemented in the catamaran prototype with specifications length of arc 170 cm, beam 100 cm and depth
32 cm. Catamaran ship is a twin-hull ship [28], where the two hulls are connected with substantial deck
construction and stretch on it to withstand large bending moments and shear forces and work towards the
midline (Centerline) ship [29], [30]. The catamaran model uses a battery to supply energy to the DC motor.
They were charging the battery using renewable energy sources of solar energy and wind turbine generators.
2 pieces of PV used with a specification of 100 wp per PV, while for wind turbines using the VAWT type.
2. PROPOSED METHOD
In this research, a catamaran ship model uses renewable energy to drive ship propulsion. The
methodology used is collecting PV and wind turbine performance data using a microcontroller directly,
simulating a controller to combine PV energy and wind turbines. Next, look at the power used by the motor
and simulate the energy used by the ship.
2.1. Energy system block diagram
The block diagram system is shown in Figure 1. Wind energy will drive the wind turbine, which
will drive the generator. The generator will produce AC voltage which is then rectified using a rectifier to
produce DC voltage. The output voltage generated by the PV and generator in the wind turbine is connected
to the buck-boost converter. Buck-boost converter is used to adjust the voltage so that the voltage is stable
with a value of 14 Volts to charge the battery for driving power on the catamaran model. The specifications
of the components used in this study are shown in Table 1 for wind turbine generator specifications, Table 2
for blade specifications, Table 3 for PV specifications, Table 4 for battery specifications and Table 5 for
motor specification.
Figure 1. Energy system block diagram
Table 1. VAWT specification
No Specification Value
1 Type Darrieus VAWT
2 Diameter 120 cm
3 Height 200 cm
4 Material Alumunium Pipe
Stainless steel
Alumunium Dural
Table 2. Blade specification
No Specification Value
1 Type 0015
2 Blade Amount 3
3 Material Balsa Wood
4 Height 150 cm
5 Length 16 cm
6 Width 1.9 cm
Table 3. Photovoltaic module specification
No Specification Value
1 Max Power 100 Watt
2 Open Circuit Voltage 19.2 Volt
3 Short Circuit Current 6.87 Ampere
4 Max Power Voltage 16 Volt
5 Max Power Current 6.25 Ampere
Table 4. Battery specification
No Specification Value
1 Capacity 35 Ah
2 Voltage 12.8 Volt
3 Weight 3.8 Kg
4 Dimension 348 mm x 261 mm x 30 mm
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1848
Table 5. Motor specification
No Specification Value
1 Voltage 12 Volt
2 KV Value 460 KV
3 Speed 5300 rpm
4 Diameter 90 mm
5 Type Submerge BLDC Motor
2.2. Hardware design
Figure 2 is the electronics components used in the research. Three current and voltage sensors are
used to determine the energy of PV, wind turbine, and accumulator. The wind direction sensor and wind
sensor are used to determine wind direction and determine wind speed in real-time, respectively. Optocoupler
is used to determine the RPM of wind turbines. The RF transmitter is used to send the data that has been
obtained by microcontroller to the ground station. Figure 3 is a design of a catamaran ship prototype with
LoA specifications 170 cm, beam 100 cm, and depth 32 cm.
Arduino
Voltage
Sensor
Current
Sensor
Generator
Wind Turbine
Voltage
Sensor
Current
Sensor
Photovoltaic
Module
Wind Speed Sensor
Wind Direction Sensor
Motor
Accumulator
Voltage
Sensor
Current
Sensor
LCD
RF Transmitter
RF Receiver
Laptop
Lux Sensor
Figure 2. Electronics data acquisition design
Figure 3. Ship mechanical design
Bulletin of Electr Eng & Inf ISSN: 2302-9285 
Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of … (Budhy Setiawan)
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The planned draft is about 15cm, so that the ship's deadweight tonnage value is around
85 kg. Deadweight tonnage means the total weight of the ship (mechanical weight and payload) that can be
transported by the ship. The prototype of this ship is made using fiber and resin with a maximum weight of
prototype catamaran ship is 17 Kg, using 2 BLDC motors with the specifications in Table 5.
3. RESULTS AND DISCUSSION
3.1. Result of wind speed identification
Identification of wind speed using a data logger for 3 days. Then these results will be calculated the
average per hour. It was found that the lowest wind speed is around 0.4 m/s and the highest wind speed is
around 4.65 m/s. So that the average wind speed is about 2.71 m/s. The graph of the wind speed is shown in
Figure 4.
Figure 4. Wind speed
From the experimental results obtained, the maximum power that can be generated by the wind
turbine generator is 39 watts, which is when the wind speed is around 4.6 m/s. The energy produced was
about 354 Wh for one day of the experiment. The graph of the power generated by the wind turbine generator
is described in Figure 5.
Figure 5. Wind turbine generator power
3.2. Results of photovoltaic identification
PV module performance identification was carried out for three days, from 09.00 to 15.50 hours. In
this measurement using 2 PV installed in parallel, the load used is a lithium battery, voltage and current data
will be saved to the data logger using a microcontroller as shown in Figure 6.
From the results of the PV performance test, it is described in Figure 7, which shows the lux value
in the time range from 08.56 to 15.50 hours. The highest lux value was obtained at 11:15, which is around
110,000 lux and the average lux value at the time of testing was approximately 66,365 lux. Based on Figure 8
shows the value of power against time. The highest power is obtained around 75 Watts. Meanwhile, the
average power during the testing period is around 60.07 Watt. From the experiments, the PV power used is
200 Wp, while the results of the PV test can produce 420 Wh.
 ISSN: 2302-9285
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1850
Figure 6. Battery charging by PV
Figure 7. Day light itensity
Figure 8. Photovoltaic module power
3.3. Propeler motor identification
From the motor, testing is done by tying the ship model and changing the throttle value on the
remote. Next, observe the current required by the motor and the thrust that produced by the motor. The
results obtained are shown in the Table 6 and Figure 9.
Bulletin of Electr Eng & Inf ISSN: 2302-9285 
Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of … (Budhy Setiawan)
1851
Table 6. BLDC motor test results
Throtle (%) Voltage (Volt) Current (A) Thrust (Kg) Power (Watt)
10 12.7 2.2 3.4 27.94
25 12.8 5.1 5.1 65.28
50 12.7 10 7 127
75 12.6 20.4 13 257.04
100 12.4 38 18 474
Based on Figure 9, the value of motor power to changes in the value of the throttle on the remote.
From the experiments that have been carried out, the maximum power value is 474 Watt. The next test is the
thrust motor. The results obtained are described in the Figure 10.
Figure 9. BLDC motor power
Figure 10. BLDC motor thrust
Based on Figure 10, the value of motor thrust to changes in the value of the throttle on the remote.
From the experiments that have been done, the maximum power value is 18 Kg which is shown in Figure 11.
From the graph above shows the ship speed when the load changes are given. The maximum speed of the
ship with weight payload 3 Kg is 1.81 m/s (3.5 Knots). With weight payload 10 kg, the ship speed is 1.3 m/s
(2.57 Knots). At a payload of 15 kg, the ship speed is 1.07 m/s (2.07 Knots).
 ISSN: 2302-9285
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1852
Figure 11. Prototype catamaran ship speed with payload
3.4. Energy simulation
From the experiments conducted, it is obtained the PV power and wind turbine generator power
which is described in Figure 12. The battery has a capacity of 35Ah and 100% DoD. Which shows that the
battery is capable of producing a current of 35 Amperes continuously within 1 hour. From the identification
results of PV, wind turbine, and motor parameters obtained as shown in the Table 7.
Figure 12. PV and wind turbine power generation
Table 7. Energy and power parameters
No Parameters Value
1 PV Energy 420 Wh
2 Wind Turbine Generator Energy 354 Wh
3 Motor Power 474 W
4 Battery Energy 448 Wh
From Table 7, it is found that the battery time can work when the motor is used as shown in (1)-(3):
𝐼𝑚𝑜𝑡𝑜𝑟 =
𝑃𝑚𝑜𝑡𝑜𝑟
𝑉
(1)
𝐼𝑚𝑜𝑡𝑜𝑟 =
474 𝑊𝑎𝑡𝑡
12.8 𝑉𝑜𝑙𝑡
= 37 𝐴𝑚𝑝𝑒𝑟𝑒 (2)
Bulletin of Electr Eng & Inf ISSN: 2302-9285 
Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of … (Budhy Setiawan)
1853
𝑇𝑖𝑚𝑒 =
35 𝐴ℎ
37 𝐴ℎ
= 0.945 𝐻𝑜𝑢𝑟 = 56,7 𝑀𝑖𝑛𝑢𝑡𝑒𝑠 (3)
From the above calculations, it is obtained, that the value of the battery discharge time, when used
maximum PWM for 56.7 minutes. Furthermore, for the measure of the battery charging time. PV energy is
obtained during the 7-hour test, so the average power that can be generated is 60 Watts. At the same time,
wind turbine energy is obtained from the test results for 24 hours so that the power produced is 14.75 Watt.
The total power generated by the system is 74.75 watts.
𝑃𝑡𝑜𝑡𝑎𝑙 = 𝑃𝑝𝑣 + 𝑃𝑤𝑖𝑛𝑑 𝑡𝑢𝑟𝑏𝑖𝑛𝑒 𝑔𝑒𝑛𝑒𝑟𝑎𝑡𝑜𝑟 (4)
𝐼 =
𝑃𝑡𝑜𝑡𝑎𝑙
𝑉
(5)
𝐼 =
74.75
12.8
= 5.8 𝐴𝑚𝑝𝑒𝑟𝑒 (6)
𝑇𝑖𝑚𝑒 =
35 𝐴ℎ
5.8 𝐴ℎ
= 6 𝐻𝑜𝑢𝑟 (7)
Then it takes about 6 hours to charge the battery fully.
4. CONCLUSION
In this study, the main objective is to see the ability to use solar and wind as the main energy of the
catamaran prototype that has been made with a Maximum total weight is 34 Kg with details 15.2 Kg for
mechanical of prototype, 15 Kg for payload, and 3.8 Kg for battery. From the experiment results, the total
energy of PV and wind turbine generators is 774 Wh. This energy can be used to charge a battery with a
battery specification of 35Ah for 6 hours. Meanwhile, when the battery is full, it can supply the motor with a
power of 474 Watt for 56.7 minutes at a speed of 1.81 m/s (3.5 Knots) when the payload weight is 3 kg and
when the payload is 15 kg, the ship speed is about 1.07 m/s (2.07 Knots).
APPENDIX
Prototype catamaran ship testing Darrieus VAWT
Machanical prototype catamaran ship with PV
 ISSN: 2302-9285
Bulletin of Electr Eng & Inf, Vol. 10, No. 4, August 2021 : 1846 – 1855
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REFERENCES
[1] B. Setiawan, F. Ronilaya, D. K. P. Aji, A. Setiawan, and E. S. Putra, "Online monitoring and data logging power
quality parameters of Low Voltage Distribution Panel (LVDP) on industrial system," in IOP Conference Series
Materials Science and Engineering, Bandung, Indonesia, 2019, vol. 830, no. 3, p. 032032, doi: 10.1088/1757-
899X/830/3/032032.
[2] S. Rehman, M. M. Alam, L. M. Alhems, and M. M. Rafique, "Horizontal Axis Wind Turbine Blade Design
Methodologies for Efficiency Enhancement - A Review," Energies, vol. 11, no. 3, pp. 1-34, 2018, doi:
10.3390/en11030506.
[3] Y. Yuan, J. Wang, X. P. Yan, T. Long, and B. Shen, "A review of multi-energy hybrid power system for ships,"
Renewable and Sustainable Energy Reviews, vol. 132, p. 110081, 2020, doi: 10.1016/j.rser.2020.110081.
[4] M. Krcum, A. Gudelj, and V. Tomas, "Optimal Design of Ship’s Hybrid Power System for Efficient Energy,"
Transaction on Maritime Science, vol. 7, no. 1, pp. 23-32, 2018, doi: 10.7225/toms.v07.n01.002.
[5] M. R. Banaei and R. Alizadeh, "Simulation-Based Modeling and Power Management of All-Electric Ships Based
on Renewable Energy Generation Using Model Predictive Control Strategy," in IEEE Intelligent Transportation
Systems Magazine, vol. 8, no. 2, pp. 90-103, Summer 2016, doi: 10.1109/MITS.2016.2533960.
[6] I. Sofimieari, M. W. B. Mustafa, and F. Obite, "Modelling and analysis of a PV/wind/diesel hybrid standalone
microgrid for rural electrification in Nigeria," Bulletin of Electrical Engineering and Informatics, vol. 8, no. 4, pp.
1468-1477, 2019, doi: 10.11591/eei.v8i4.1608.
[7] Y. Sun, X. Yan, C. Yuan, X. Tang, R. Maleklan, C. Guo, and Z. Li, "The application of hybrid photovoltaic system
on the ocean-going ship:engineering practice and experimental research," Journal of Marine Engineering
Technology, vol. 18, no. 2, pp. 1-11, 2019, doi: 10.1080/20464177.2018.1493025.
[8] M. Gaber, S. H. El-banna, M. S. Hamad and M. Eldabah, "Performance Enhancement of Ship Hybrid Power
System Using Photovoltaic Arrays," 2020 IEEE PES/IAS PowerAfrica, 2020, pp. 1-5, doi:
10.1109/PowerAfrica49420.2020.9219808.
[9] B. Jaganathan, D. Sattinadan, and S. Vidyasagar, "Minimum-Order Observers for hybrid Wind Turbine and Fuel
Cell," Bulletin of Electrical Engineering and Informatics, vol. 1, no. 2, pp. 151-164, 2012, doi:
10.11591/eei.v1i2.245.
[10] M. Lamnadi, M. Trihi, and A. Boulezhar, "Study of a hybrid renewable energy system for a rural school in Tagzirt,
Morocco," 2016 International Renewable and Sustainable Energy Conference (IRSEC), 2016, pp. 381-386, doi:
10.1109/IRSEC.2016.7984079.
[11] H. A. Gabbar and M. R. Abdussami, "Feasibility Analysis of Grid-Connected Nuclear-Renewable Micro Hybrid
Energy System," 2019 IEEE 7th International Conference on Smart Energy Grid Engineering (SEGE), 2019, pp.
294-298, doi: 10.1109/SEGE.2019.8859925.
[12] B. Setiawan, E. S. Putra, I. Siradjuddin, and M. Junus, “Optimisation solar and wind hybrid energy for model
catamaran ship,” IOP Conference Series: Materials Science and Engineering, vol. 1073, no. 1, p. 012044, 2021,
doi: https://doi.org/10.1088/1757-899X/1073/1/012044.
[13] N. A. Handayani and D. Ariyanti, “Potency of Solar Energy Applications in Indonesia,” International Journal of
Renewable Energy Development, vol. 1, no. 2, pp. 33–38, 2012, doi: https://doi.org/10.14710/ijred.1.2.33-38.
[14] C. Promdee and C. Photong, "Effects of Wind Angles and Wind Speeds on Voltage Generation of Savonius Wind
Turbine with Double Wind Tunnels," Procedia Computer Science, vol. 86, pp. 401-404, 2016, doi:
10.1016/j.procs.2016.05.044.
[15] B. Setiawan, I. I. Habibi, A. Parastiwi, A. M. Damayanti, and R. N. Wakidah, “Dynamic VAWT Darrieus by
changing angle of attack to reach maximum efficiency,” IOP Conference Series: Materials Science and
Engineering, vol. 732, p. 012058, 2020., doi: https://doi.org/10.1088/1757-899X/732/1/012058.
[16] L. Nguyen and M. Metzger, “Optimization of a vertical axis wind turbine for application in an urban/suburban
area,” Journal of Renewable and Sustainable Energy, vol. 9, no. 4, p. 043302, 2017, doi:
https://doi.org/10.1063/1.4994574.
[17] C. Vivek, P. Gopikrishnan, R. Murugesh, and R. R. Mohamed, "A Review on Vertical and Horizontal Axis Wind
Turbine," International Research Journal of Engineering and Technology (IRJET), vol. 4, no. 4, pp. 247-250, 2017.
[18] L. Gumilar, A. Kusumawardana, D. Prihanto, and H. Wicaksono, "Analysis Performance Vertical Axis Wind
Turbine Based on Pitch Angle to Output Power," 2019 International Conference on Information and
Communications Technology (ICOIACT), 2019, pp. 767-772, doi: 10.1109/ICOIACT46704.2019.8938519.
[19] M. O. KORUKCU, "Numerical Investigation of Vertical Axis Wind Turbine for Different Parameters," 2019 4th
International Conference on Smart and Sustainable Technologies (SpliTech), 2019, pp. 1-5, doi:
10.23919/SpliTech.2019.8783100.
[20] Wang Haiying, Wu Feng, Fu Ying, Li Ran and Zhang Qian, "Study on key technologies of lithium battery for
electric vehicle," Proceedings of 2011 6th International Forum on Strategic Technology, 2011, pp. 291-294, doi:
10.1109/IFOST.2011.6021025.
[21] N. S. Hussin et al., “Performance Factors of the Photovoltaic System: A Review,” MATEC Web of Conferences,
vol. 225, p. 03020, 2018, doi: 10.1051/matecconf/201822503020.
[22] N. Rawat, P. Thakur, and U. Jadli, "Solar PV parameter estimation using multi-objective optimisation," Bulletin of
Electrical Engineering and Informatics, vol. 8, no. 4, pp. 1198-1205, 2019, doi: 10.11591/eei.v8i4.1312.
[23] B. G. Bhang, W. Lee, G. G. Kim, J. H. Choi, S. Y. Park, and H. -K. Ahn, "Power Performance of Bifacial c-Si PV
Modules With Different Shading Ratios," in IEEE Journal of Photovoltaics, vol. 9, no. 5, pp. 1413-1420, Sept.
2019, doi: 10.1109/JPHOTOV.2019.2928461.
Bulletin of Electr Eng & Inf ISSN: 2302-9285 
Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of … (Budhy Setiawan)
1855
[24] H. Zhao, Q. Wu, S. Hu, H. Xu, and C. N. Rasmussen, "Review of energy storage system for wind power integration
support," Applied Energy, pp. 545-553, 2015, doi: 10.1016/j.apenergy.2014.04.103.
[25] C. Yao, M. Chen, and Y. Hong, "Novel Adaptive Multi-Clustering Algorithm-Based Optimal ESS Sizing in Ship
Power System Considering Uncertainty," in IEEE Transactions on Power Systems, vol. 33, no. 1, pp. 307-316, Jan.
2018, doi: 10.1109/TPWRS.2017.2695339.
[26] H. Keshan, J. Thornburg, and T. S. Ustun, "Comparison of lead-acid and lithium ion batteries for stationary storage
in off-grid energy systems," 4th IET Clean Energy and Technology Conference (CEAT 2016), 2016, pp. 1-7, doi:
10.1049/cp.2016.1287.
[27] C. Iclodean, B. Varga, N. Burnete, D. Cimerdean, and B. Jurchiş, “Comparison of Different Battery Types for
Electric Vehicles,” IOP Conference Series: Materials Science and Engineering, vol. 252, p. 012058, 2017, doi:
10.1088/1757-899X/252/1/012058
.[28] Y. Yanuar et al., “Numerical and Experimental Analysis of Total Hull Resistance on Floating Catamaran Pontoon
for N219 Seaplanes based on Biomimetics Design with Clearance Configuration,” International Journal of
Technology, vol. 11, no. 7, p. 1397, 2020, doi: https://doi.org/10.14716/ijtech.v11i7.4503.
[29] M. Iqbal and S. Samuel, “Traditional Catamaran Hull Form Configurations that Reduce Total Resistance,”
International Journal of Technology, vol. 8, no. 1, p. 85, 2017.
[30] A. Kurniawan, Hardianto, E. S. Koenhardono and I. R. Kusuma, "Modeling and control of ballast system to
improve stability of catamaran boat," 2015 International Conference on Advanced Mechatronics, Intelligent
Manufacture, and Industrial Automation (ICAMIMIA), 2015, pp. 202-204, doi:
10.1109/ICAMIMIA.2015.7508032.

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Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of prototype catamaran ship

  • 1. Bulletin of Electrical Engineering and Informatics Vol. 10, No. 4, August 2021, pp. 1846~1855 ISSN: 2302-9285, DOI: 10.11591/eei.v10i4.3113 1846 Journal homepage: http://beei.org Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of prototype catamaran ship Budhy Setiawan, Ekananda Sulistyo Putra, Indrazno Siradjuddin Electrical Engineering Department, State Polytechnic of Malang, Malang, Indonesia Article Info ABSTRACT Article history: Received Dec 22, 2020 Revised Mar 26, 2021 Accepted Jun 19, 2021 Currently, marine transportation in the world still uses fossil fuels. In addition to running low on supplies, fossil fuels also cause emissions that cause global warming. Sea transportation generates around 1,000 million tonnes of CO2 emissions. Therefore, the exploration of alternative energy is becoming a popular research direction. Several renewable energy sources include solar and wind energy. Indonesia has an average wind speed of above 8 m/s at sea. Also, the energy potential of the sun is around 4.8 kWh/m2 . Based on the potential of these renewable energy sources, this study discusses the potential of renewable energy sources from sunlight and wind, which are implemented in the prototype catamaran ship. The results obtained from the experiment, the total energy of photovoltaic (PV) and wind turbine generators is 774 Wh. This energy can be used to charge a battery with a battery specification of 35Ah for 6 hours. Keywords: Hybrid renewable energy Photovoltaic module Ship’s propulsion Wind turbine generator This is an open access article under the CC BY-SA license. Corresponding Author: Ekananda Sulistyo Putra Electrical Engineering Department State Polytechnic of Malang Jl. Soekarno-Hatta No. 9, Malang 65141, Indonesia Email: ekananda_putra@polinema.ac.id 1. INTRODUCTION Currently, the majority of electrical energy is produced from fossils; almost 85% of all energy comes from fossil fuels [1], [2]. One of the sectors that use fossil fuels is sea transportation. More than 95% of civil ships use diesel engines for propulsion [3]. Sea transport emissions around 1,000 million tonnes of CO2 yearly and contribute to 2.5% of global warming [4], [5]. Therefore, exploration of alternative energy, alternative fuels, energy conservation, and environmental protection technology is becoming a popular research direction [3], [6]-[8]. Renewable energy comes from natural resources such as sunlight, wind, tide and geothermal, which is replenished naturally [9]-[11]. The wind speed map based on the WindSat data, in Indonesia has wind speeds from 5 m/s to 10 m/s or greater than the minimum wind speed to drive wind turbine generator, which is 4 m/s [2], [12]. Apart from wind energy, Indonesia has an average solar radiation potential around 4.8 kWh/m2 /day with a monthly variation of about 9% [13]. Wind turbines are alternative energy technologies that are able to convert wind energy into electrical energy [14], [15]. There are two types of wind turbines, namely horizontal-vertical axis wind turbine (HAWT) and vertical axis wind turbine (VAWT). The working principle of the HAWT wind turbine is based on the lift force of the wind energy while the VAWT wind turbine is based on the drag force that occurs due to wind movement [16], [17]. HAWT is widely used for higher production volumes that require a large investment and occupy more space for installation compared to VAWT [18], [19]. VAWT requires a low-cost investment and less space for installation compared to HAWT [16], [17]. Photovoltaic (PV) module is a semiconductor consisting of a dio [20] de p-n junction when exposed to sunlight, will create
  • 2. Bulletin of Electr Eng & Inf ISSN: 2302-9285  Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of … (Budhy Setiawan) 1847 electrical energy that can be utilized, this energy conversion is called the photoelectric effect [5], [21]-[23]. Both renewable energy sources will be stored in lithium batteries [24], [25]. Using a lithium battery because it has the highest energy to weight and energy to space ratio of modern rechargeable batteries and is relatively light [26], [27]. In this research discusses the potential use of the that renewable energy sources which are implemented in the catamaran prototype with specifications length of arc 170 cm, beam 100 cm and depth 32 cm. Catamaran ship is a twin-hull ship [28], where the two hulls are connected with substantial deck construction and stretch on it to withstand large bending moments and shear forces and work towards the midline (Centerline) ship [29], [30]. The catamaran model uses a battery to supply energy to the DC motor. They were charging the battery using renewable energy sources of solar energy and wind turbine generators. 2 pieces of PV used with a specification of 100 wp per PV, while for wind turbines using the VAWT type. 2. PROPOSED METHOD In this research, a catamaran ship model uses renewable energy to drive ship propulsion. The methodology used is collecting PV and wind turbine performance data using a microcontroller directly, simulating a controller to combine PV energy and wind turbines. Next, look at the power used by the motor and simulate the energy used by the ship. 2.1. Energy system block diagram The block diagram system is shown in Figure 1. Wind energy will drive the wind turbine, which will drive the generator. The generator will produce AC voltage which is then rectified using a rectifier to produce DC voltage. The output voltage generated by the PV and generator in the wind turbine is connected to the buck-boost converter. Buck-boost converter is used to adjust the voltage so that the voltage is stable with a value of 14 Volts to charge the battery for driving power on the catamaran model. The specifications of the components used in this study are shown in Table 1 for wind turbine generator specifications, Table 2 for blade specifications, Table 3 for PV specifications, Table 4 for battery specifications and Table 5 for motor specification. Figure 1. Energy system block diagram Table 1. VAWT specification No Specification Value 1 Type Darrieus VAWT 2 Diameter 120 cm 3 Height 200 cm 4 Material Alumunium Pipe Stainless steel Alumunium Dural Table 2. Blade specification No Specification Value 1 Type 0015 2 Blade Amount 3 3 Material Balsa Wood 4 Height 150 cm 5 Length 16 cm 6 Width 1.9 cm Table 3. Photovoltaic module specification No Specification Value 1 Max Power 100 Watt 2 Open Circuit Voltage 19.2 Volt 3 Short Circuit Current 6.87 Ampere 4 Max Power Voltage 16 Volt 5 Max Power Current 6.25 Ampere Table 4. Battery specification No Specification Value 1 Capacity 35 Ah 2 Voltage 12.8 Volt 3 Weight 3.8 Kg 4 Dimension 348 mm x 261 mm x 30 mm
  • 3.  ISSN: 2302-9285 Bulletin of Electr Eng & Inf, Vol. 10, No. 4, August 2021 : 1846 – 1855 1848 Table 5. Motor specification No Specification Value 1 Voltage 12 Volt 2 KV Value 460 KV 3 Speed 5300 rpm 4 Diameter 90 mm 5 Type Submerge BLDC Motor 2.2. Hardware design Figure 2 is the electronics components used in the research. Three current and voltage sensors are used to determine the energy of PV, wind turbine, and accumulator. The wind direction sensor and wind sensor are used to determine wind direction and determine wind speed in real-time, respectively. Optocoupler is used to determine the RPM of wind turbines. The RF transmitter is used to send the data that has been obtained by microcontroller to the ground station. Figure 3 is a design of a catamaran ship prototype with LoA specifications 170 cm, beam 100 cm, and depth 32 cm. Arduino Voltage Sensor Current Sensor Generator Wind Turbine Voltage Sensor Current Sensor Photovoltaic Module Wind Speed Sensor Wind Direction Sensor Motor Accumulator Voltage Sensor Current Sensor LCD RF Transmitter RF Receiver Laptop Lux Sensor Figure 2. Electronics data acquisition design Figure 3. Ship mechanical design
  • 4. Bulletin of Electr Eng & Inf ISSN: 2302-9285  Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of … (Budhy Setiawan) 1849 The planned draft is about 15cm, so that the ship's deadweight tonnage value is around 85 kg. Deadweight tonnage means the total weight of the ship (mechanical weight and payload) that can be transported by the ship. The prototype of this ship is made using fiber and resin with a maximum weight of prototype catamaran ship is 17 Kg, using 2 BLDC motors with the specifications in Table 5. 3. RESULTS AND DISCUSSION 3.1. Result of wind speed identification Identification of wind speed using a data logger for 3 days. Then these results will be calculated the average per hour. It was found that the lowest wind speed is around 0.4 m/s and the highest wind speed is around 4.65 m/s. So that the average wind speed is about 2.71 m/s. The graph of the wind speed is shown in Figure 4. Figure 4. Wind speed From the experimental results obtained, the maximum power that can be generated by the wind turbine generator is 39 watts, which is when the wind speed is around 4.6 m/s. The energy produced was about 354 Wh for one day of the experiment. The graph of the power generated by the wind turbine generator is described in Figure 5. Figure 5. Wind turbine generator power 3.2. Results of photovoltaic identification PV module performance identification was carried out for three days, from 09.00 to 15.50 hours. In this measurement using 2 PV installed in parallel, the load used is a lithium battery, voltage and current data will be saved to the data logger using a microcontroller as shown in Figure 6. From the results of the PV performance test, it is described in Figure 7, which shows the lux value in the time range from 08.56 to 15.50 hours. The highest lux value was obtained at 11:15, which is around 110,000 lux and the average lux value at the time of testing was approximately 66,365 lux. Based on Figure 8 shows the value of power against time. The highest power is obtained around 75 Watts. Meanwhile, the average power during the testing period is around 60.07 Watt. From the experiments, the PV power used is 200 Wp, while the results of the PV test can produce 420 Wh.
  • 5.  ISSN: 2302-9285 Bulletin of Electr Eng & Inf, Vol. 10, No. 4, August 2021 : 1846 – 1855 1850 Figure 6. Battery charging by PV Figure 7. Day light itensity Figure 8. Photovoltaic module power 3.3. Propeler motor identification From the motor, testing is done by tying the ship model and changing the throttle value on the remote. Next, observe the current required by the motor and the thrust that produced by the motor. The results obtained are shown in the Table 6 and Figure 9.
  • 6. Bulletin of Electr Eng & Inf ISSN: 2302-9285  Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of … (Budhy Setiawan) 1851 Table 6. BLDC motor test results Throtle (%) Voltage (Volt) Current (A) Thrust (Kg) Power (Watt) 10 12.7 2.2 3.4 27.94 25 12.8 5.1 5.1 65.28 50 12.7 10 7 127 75 12.6 20.4 13 257.04 100 12.4 38 18 474 Based on Figure 9, the value of motor power to changes in the value of the throttle on the remote. From the experiments that have been carried out, the maximum power value is 474 Watt. The next test is the thrust motor. The results obtained are described in the Figure 10. Figure 9. BLDC motor power Figure 10. BLDC motor thrust Based on Figure 10, the value of motor thrust to changes in the value of the throttle on the remote. From the experiments that have been done, the maximum power value is 18 Kg which is shown in Figure 11. From the graph above shows the ship speed when the load changes are given. The maximum speed of the ship with weight payload 3 Kg is 1.81 m/s (3.5 Knots). With weight payload 10 kg, the ship speed is 1.3 m/s (2.57 Knots). At a payload of 15 kg, the ship speed is 1.07 m/s (2.07 Knots).
  • 7.  ISSN: 2302-9285 Bulletin of Electr Eng & Inf, Vol. 10, No. 4, August 2021 : 1846 – 1855 1852 Figure 11. Prototype catamaran ship speed with payload 3.4. Energy simulation From the experiments conducted, it is obtained the PV power and wind turbine generator power which is described in Figure 12. The battery has a capacity of 35Ah and 100% DoD. Which shows that the battery is capable of producing a current of 35 Amperes continuously within 1 hour. From the identification results of PV, wind turbine, and motor parameters obtained as shown in the Table 7. Figure 12. PV and wind turbine power generation Table 7. Energy and power parameters No Parameters Value 1 PV Energy 420 Wh 2 Wind Turbine Generator Energy 354 Wh 3 Motor Power 474 W 4 Battery Energy 448 Wh From Table 7, it is found that the battery time can work when the motor is used as shown in (1)-(3): 𝐼𝑚𝑜𝑡𝑜𝑟 = 𝑃𝑚𝑜𝑡𝑜𝑟 𝑉 (1) 𝐼𝑚𝑜𝑡𝑜𝑟 = 474 𝑊𝑎𝑡𝑡 12.8 𝑉𝑜𝑙𝑡 = 37 𝐴𝑚𝑝𝑒𝑟𝑒 (2)
  • 8. Bulletin of Electr Eng & Inf ISSN: 2302-9285  Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of … (Budhy Setiawan) 1853 𝑇𝑖𝑚𝑒 = 35 𝐴ℎ 37 𝐴ℎ = 0.945 𝐻𝑜𝑢𝑟 = 56,7 𝑀𝑖𝑛𝑢𝑡𝑒𝑠 (3) From the above calculations, it is obtained, that the value of the battery discharge time, when used maximum PWM for 56.7 minutes. Furthermore, for the measure of the battery charging time. PV energy is obtained during the 7-hour test, so the average power that can be generated is 60 Watts. At the same time, wind turbine energy is obtained from the test results for 24 hours so that the power produced is 14.75 Watt. The total power generated by the system is 74.75 watts. 𝑃𝑡𝑜𝑡𝑎𝑙 = 𝑃𝑝𝑣 + 𝑃𝑤𝑖𝑛𝑑 𝑡𝑢𝑟𝑏𝑖𝑛𝑒 𝑔𝑒𝑛𝑒𝑟𝑎𝑡𝑜𝑟 (4) 𝐼 = 𝑃𝑡𝑜𝑡𝑎𝑙 𝑉 (5) 𝐼 = 74.75 12.8 = 5.8 𝐴𝑚𝑝𝑒𝑟𝑒 (6) 𝑇𝑖𝑚𝑒 = 35 𝐴ℎ 5.8 𝐴ℎ = 6 𝐻𝑜𝑢𝑟 (7) Then it takes about 6 hours to charge the battery fully. 4. CONCLUSION In this study, the main objective is to see the ability to use solar and wind as the main energy of the catamaran prototype that has been made with a Maximum total weight is 34 Kg with details 15.2 Kg for mechanical of prototype, 15 Kg for payload, and 3.8 Kg for battery. From the experiment results, the total energy of PV and wind turbine generators is 774 Wh. This energy can be used to charge a battery with a battery specification of 35Ah for 6 hours. Meanwhile, when the battery is full, it can supply the motor with a power of 474 Watt for 56.7 minutes at a speed of 1.81 m/s (3.5 Knots) when the payload weight is 3 kg and when the payload is 15 kg, the ship speed is about 1.07 m/s (2.07 Knots). APPENDIX Prototype catamaran ship testing Darrieus VAWT Machanical prototype catamaran ship with PV
  • 9.  ISSN: 2302-9285 Bulletin of Electr Eng & Inf, Vol. 10, No. 4, August 2021 : 1846 – 1855 1854 REFERENCES [1] B. Setiawan, F. Ronilaya, D. K. P. Aji, A. Setiawan, and E. S. Putra, "Online monitoring and data logging power quality parameters of Low Voltage Distribution Panel (LVDP) on industrial system," in IOP Conference Series Materials Science and Engineering, Bandung, Indonesia, 2019, vol. 830, no. 3, p. 032032, doi: 10.1088/1757- 899X/830/3/032032. [2] S. Rehman, M. M. Alam, L. M. Alhems, and M. M. Rafique, "Horizontal Axis Wind Turbine Blade Design Methodologies for Efficiency Enhancement - A Review," Energies, vol. 11, no. 3, pp. 1-34, 2018, doi: 10.3390/en11030506. [3] Y. Yuan, J. Wang, X. P. Yan, T. Long, and B. Shen, "A review of multi-energy hybrid power system for ships," Renewable and Sustainable Energy Reviews, vol. 132, p. 110081, 2020, doi: 10.1016/j.rser.2020.110081. [4] M. Krcum, A. Gudelj, and V. Tomas, "Optimal Design of Ship’s Hybrid Power System for Efficient Energy," Transaction on Maritime Science, vol. 7, no. 1, pp. 23-32, 2018, doi: 10.7225/toms.v07.n01.002. [5] M. R. Banaei and R. Alizadeh, "Simulation-Based Modeling and Power Management of All-Electric Ships Based on Renewable Energy Generation Using Model Predictive Control Strategy," in IEEE Intelligent Transportation Systems Magazine, vol. 8, no. 2, pp. 90-103, Summer 2016, doi: 10.1109/MITS.2016.2533960. [6] I. Sofimieari, M. W. B. Mustafa, and F. Obite, "Modelling and analysis of a PV/wind/diesel hybrid standalone microgrid for rural electrification in Nigeria," Bulletin of Electrical Engineering and Informatics, vol. 8, no. 4, pp. 1468-1477, 2019, doi: 10.11591/eei.v8i4.1608. [7] Y. Sun, X. Yan, C. Yuan, X. Tang, R. Maleklan, C. Guo, and Z. Li, "The application of hybrid photovoltaic system on the ocean-going ship:engineering practice and experimental research," Journal of Marine Engineering Technology, vol. 18, no. 2, pp. 1-11, 2019, doi: 10.1080/20464177.2018.1493025. [8] M. Gaber, S. H. El-banna, M. S. Hamad and M. Eldabah, "Performance Enhancement of Ship Hybrid Power System Using Photovoltaic Arrays," 2020 IEEE PES/IAS PowerAfrica, 2020, pp. 1-5, doi: 10.1109/PowerAfrica49420.2020.9219808. [9] B. Jaganathan, D. Sattinadan, and S. Vidyasagar, "Minimum-Order Observers for hybrid Wind Turbine and Fuel Cell," Bulletin of Electrical Engineering and Informatics, vol. 1, no. 2, pp. 151-164, 2012, doi: 10.11591/eei.v1i2.245. [10] M. Lamnadi, M. Trihi, and A. Boulezhar, "Study of a hybrid renewable energy system for a rural school in Tagzirt, Morocco," 2016 International Renewable and Sustainable Energy Conference (IRSEC), 2016, pp. 381-386, doi: 10.1109/IRSEC.2016.7984079. [11] H. A. Gabbar and M. R. Abdussami, "Feasibility Analysis of Grid-Connected Nuclear-Renewable Micro Hybrid Energy System," 2019 IEEE 7th International Conference on Smart Energy Grid Engineering (SEGE), 2019, pp. 294-298, doi: 10.1109/SEGE.2019.8859925. [12] B. Setiawan, E. S. Putra, I. Siradjuddin, and M. Junus, “Optimisation solar and wind hybrid energy for model catamaran ship,” IOP Conference Series: Materials Science and Engineering, vol. 1073, no. 1, p. 012044, 2021, doi: https://doi.org/10.1088/1757-899X/1073/1/012044. [13] N. A. Handayani and D. Ariyanti, “Potency of Solar Energy Applications in Indonesia,” International Journal of Renewable Energy Development, vol. 1, no. 2, pp. 33–38, 2012, doi: https://doi.org/10.14710/ijred.1.2.33-38. [14] C. Promdee and C. Photong, "Effects of Wind Angles and Wind Speeds on Voltage Generation of Savonius Wind Turbine with Double Wind Tunnels," Procedia Computer Science, vol. 86, pp. 401-404, 2016, doi: 10.1016/j.procs.2016.05.044. [15] B. Setiawan, I. I. Habibi, A. Parastiwi, A. M. Damayanti, and R. N. Wakidah, “Dynamic VAWT Darrieus by changing angle of attack to reach maximum efficiency,” IOP Conference Series: Materials Science and Engineering, vol. 732, p. 012058, 2020., doi: https://doi.org/10.1088/1757-899X/732/1/012058. [16] L. Nguyen and M. Metzger, “Optimization of a vertical axis wind turbine for application in an urban/suburban area,” Journal of Renewable and Sustainable Energy, vol. 9, no. 4, p. 043302, 2017, doi: https://doi.org/10.1063/1.4994574. [17] C. Vivek, P. Gopikrishnan, R. Murugesh, and R. R. Mohamed, "A Review on Vertical and Horizontal Axis Wind Turbine," International Research Journal of Engineering and Technology (IRJET), vol. 4, no. 4, pp. 247-250, 2017. [18] L. Gumilar, A. Kusumawardana, D. Prihanto, and H. Wicaksono, "Analysis Performance Vertical Axis Wind Turbine Based on Pitch Angle to Output Power," 2019 International Conference on Information and Communications Technology (ICOIACT), 2019, pp. 767-772, doi: 10.1109/ICOIACT46704.2019.8938519. [19] M. O. KORUKCU, "Numerical Investigation of Vertical Axis Wind Turbine for Different Parameters," 2019 4th International Conference on Smart and Sustainable Technologies (SpliTech), 2019, pp. 1-5, doi: 10.23919/SpliTech.2019.8783100. [20] Wang Haiying, Wu Feng, Fu Ying, Li Ran and Zhang Qian, "Study on key technologies of lithium battery for electric vehicle," Proceedings of 2011 6th International Forum on Strategic Technology, 2011, pp. 291-294, doi: 10.1109/IFOST.2011.6021025. [21] N. S. Hussin et al., “Performance Factors of the Photovoltaic System: A Review,” MATEC Web of Conferences, vol. 225, p. 03020, 2018, doi: 10.1051/matecconf/201822503020. [22] N. Rawat, P. Thakur, and U. Jadli, "Solar PV parameter estimation using multi-objective optimisation," Bulletin of Electrical Engineering and Informatics, vol. 8, no. 4, pp. 1198-1205, 2019, doi: 10.11591/eei.v8i4.1312. [23] B. G. Bhang, W. Lee, G. G. Kim, J. H. Choi, S. Y. Park, and H. -K. Ahn, "Power Performance of Bifacial c-Si PV Modules With Different Shading Ratios," in IEEE Journal of Photovoltaics, vol. 9, no. 5, pp. 1413-1420, Sept. 2019, doi: 10.1109/JPHOTOV.2019.2928461.
  • 10. Bulletin of Electr Eng & Inf ISSN: 2302-9285  Hybrid renewable energy photovoltaic and darrieus VAWT as propulsion fuel of … (Budhy Setiawan) 1855 [24] H. Zhao, Q. Wu, S. Hu, H. Xu, and C. N. Rasmussen, "Review of energy storage system for wind power integration support," Applied Energy, pp. 545-553, 2015, doi: 10.1016/j.apenergy.2014.04.103. [25] C. Yao, M. Chen, and Y. Hong, "Novel Adaptive Multi-Clustering Algorithm-Based Optimal ESS Sizing in Ship Power System Considering Uncertainty," in IEEE Transactions on Power Systems, vol. 33, no. 1, pp. 307-316, Jan. 2018, doi: 10.1109/TPWRS.2017.2695339. [26] H. Keshan, J. Thornburg, and T. S. Ustun, "Comparison of lead-acid and lithium ion batteries for stationary storage in off-grid energy systems," 4th IET Clean Energy and Technology Conference (CEAT 2016), 2016, pp. 1-7, doi: 10.1049/cp.2016.1287. [27] C. Iclodean, B. Varga, N. Burnete, D. Cimerdean, and B. Jurchiş, “Comparison of Different Battery Types for Electric Vehicles,” IOP Conference Series: Materials Science and Engineering, vol. 252, p. 012058, 2017, doi: 10.1088/1757-899X/252/1/012058 .[28] Y. Yanuar et al., “Numerical and Experimental Analysis of Total Hull Resistance on Floating Catamaran Pontoon for N219 Seaplanes based on Biomimetics Design with Clearance Configuration,” International Journal of Technology, vol. 11, no. 7, p. 1397, 2020, doi: https://doi.org/10.14716/ijtech.v11i7.4503. [29] M. Iqbal and S. Samuel, “Traditional Catamaran Hull Form Configurations that Reduce Total Resistance,” International Journal of Technology, vol. 8, no. 1, p. 85, 2017. [30] A. Kurniawan, Hardianto, E. S. Koenhardono and I. R. Kusuma, "Modeling and control of ballast system to improve stability of catamaran boat," 2015 International Conference on Advanced Mechatronics, Intelligent Manufacture, and Industrial Automation (ICAMIMIA), 2015, pp. 202-204, doi: 10.1109/ICAMIMIA.2015.7508032.