SlideShare a Scribd company logo
Turbines
Dr. Rohit Singh Lather
Introduction
A Turbine is a device which converts the heat energy / Kinetic energy / Pressure Energy into
the Kinetic Energy & then to Rotational energy or directly to rotational Energy
• First century AD - Heron of Alexandria, first recognized thermal engineer
AeolipileHero of Alexandria
Reaction engine
First recorded steam engine
Source: www.wikipedia.com
15/09/16 Dr.	Rohit	Singh	Lather
http://www.italoamericano.org and www.google.com
Branca's Stamping Mill
In 1629 an Italian engineer, Giovanni Branca, was
probably the first to invent an actual impulse
turbine
John Barber Gas Turbine
In 1791 John Barber, an Englishman. was
the first to patent a design that used the
thermodynamic cycle of the modem gas
turbine
15/09/16 Dr.	Rohit	Singh	Lather
Types of Turbines
Turbine Family
Gas TurbineSteamTurbineHydraulic Turbine
Water exerts pressure
on blades of a turbine
Steam exerts
pressure on blades
of a turbine
Hot gases
exerts pressure
on blades of a
turbine
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
Hydraulic Turbines
Pelton KaplanFrancis
15/09/16 Dr.	Rohit	Singh	Lather
Steam Turbines
15/09/16 Dr.	Rohit	Singh	Lather
• Steam turbine with three rotors discs (dark) and two
stator disc (white)
• Turbine Shaft is connected to the electric generator
Angle of the steam turbine blade to
increase the impact of steam
Steam Exit
15/09/16 Dr.	Rohit	Singh	Lather
Gas Turbines
Compressor Combustion Turbine
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
Introduction to Hydraulic Turbines
Water Wheel Water Turbine/Hydraulic TurbineTurbine
Generator
15/09/16 Dr.	Rohit	Singh	Lather
Schematic of a Hydro Power Plant for Electricity Generation
15/09/16 Dr.	Rohit	Singh	Lather
Understanding the Fluid Energy
Bernoulli Equation
Potential + Pressure + Kinetic = Constant
H = z +
𝒑
𝝆𝒈
+
𝒗 𝟐
𝟐𝒈
A cubic meter of water can give about 9800 Joules of mechanical energy for every meter it
descends and a flow of a cubic meter per second in a fall of 1 meter can provide 9800 W of power
𝑷 = 	𝜼. 𝝆. 𝒈. 𝒉. 𝒒
Pressure Head
Velocity HeadTotal Head
Static Head
15/09/16 Dr.	Rohit	Singh	Lather
According to the action of water on moving blades turbines can be
classified as Impulse and Reaction
Impulse Reaction
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
• Tangential flow turbines: In this type of turbines, the water strikes the runner in the direction
of tangent to the wheel. Example: Pelton wheel turbine
• Radial flow turbines: In this type of turbines, the water strikes in the radial direction
accordingly, it is further classified as,
- Inward flow turbine: The flow is inward from periphery to the centre. Eg.: old Francis turbine.
- Outward flow turbine: The flow is outward from the centre to periphery. Eg.: Fourneyron
turbine
• Axial flow turbine: The flow of water is in the direction parallel to the axis of the shaft.
Example: Kaplan turbine and propeller turbine
• Mixed flow turbine: The water enters the runner in the radial direction and leaves in axial
direction. Example: Modern Francis turbine.
According to the Direction of Flow Through Runner
15/09/16 Dr.	Rohit	Singh	Lather
• High head turbine: In this type of turbines, the net head varies from 150m to 2000m or even
more, and these turbines require a small quantity of water. Example: Pelton wheel turbine
• Medium head turbine: The net head varies from 30m to 150m, and also these turbines require
moderate quantity of water. Example: Francis turbine
• Low head turbine: The net head is less than 30m and also these turbines require large
quantity of water. Example: Kaplan turbine
According to the Head at Inlet of Turbine
According to Head and Quantity of Water Available
• Low head and high rate of flow
• High head and low rate of flow
• Medium head and Medium rate of flow
15/09/16 Dr.	Rohit	Singh	Lather
• The specific speed of a turbine is defined as, the speed of a geometrically similar turbine that
would develop unit power when working under a unit head (1m head)
• Low specific speed turbine: The specific speed is less than 50. (varying from 10 to 35 for single
jet and up to 50 for double jet ) Example: Pelton wheel turbine
• Medium specific turbine: The specific speed is varies from 50 to 250. Example: Francis turbine
• High specific turbine: the specific speed is more than 250. Example: Kaplan turbine
According to the Specific Speed of the Turbine
According to the Disposition of Shaft
• Horizontal turbine
• Vertical turbine
15/09/16 Dr.	Rohit	Singh	Lather
• In the impulse turbine, the total head of the incoming fluid is converted in to a large velocity
head at the exit of the supply nozzle
• That is the entire available energy of the water is converted in to kinetic energy
• Although there are various types of impulse turbine designs, perhaps the easiest to understand is
the Pelton wheel turbine
• It is most efficient when operated with a large head and lower flow rate
Impulse Turbine
15/09/16 Dr.	Rohit	Singh	Lather
• The only hydraulic turbine of the impulse type in common use, is named after an American
engineer Laster A Pelton, who contributed much to its development in about 1880
• Known as Pelton Turbine or Pelton Wheel
• Oldest form of water turbine is Pelton Turbine
• A natural head of a stream of water is utilized to drive it
• It is an efficient machine particularly suited to high heads, in excess of 450 m
• The rotor consists of a large circular disc or wheel on which a number (seldom less than 15) of
spoon shaped buckets are spaced uniformly round is periphery
• The wheel is driven by jets of water being discharged at atmospheric pressure from pressure
nozzles
• The nozzles are mounted so that each directs a jet along a tangent to the circle through the
centres of the buckets
Pelton Turbines
15/09/16 Dr.	Rohit	Singh	Lather
• Down the centre of each bucket, there is a splitter ridge which divides the jet into two equal
streams which flow round the smooth inner surface of the bucket and leaves the bucket with a
relative velocity almost opposite in direction to the original jet
Depending on water flow and
design, Pelton wheels can operate
with heads as small as 15 meters
and as high as 1800 meters
The Pelton wheel is
most efficient in high
head applications
15/09/16 Dr.	Rohit	Singh	Lather
• For maximum change in momentum of the fluid and hence for the maximum driving force on the
wheel, the deflection of the water jet should be 180 degree
• In practice, however, the deflection is limited to about 165 degree, so that the water leaving a
bucket may not hit the back of the following bucket
• Therefore, the camber angle of the buckets is made as 165 degree
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
• Best suited -for higher flow rate and lower head situations.
• The rotation of runner or rotor is partly due to impulse action and partly due to change in
pressure over the runner blades; therefore, it is called as reaction turbine
• The penstock pipe feeds water to a row of fixed blades through casing
• These fixed blades convert a part of the pressure energy into kinetic energy before water enters
the runner
• The water entering the runner of a reaction turbine has both pressure energy and kinetic energy
• Water leaving the turbine is still left with some energy (pressure energy and kinetic energy)
Since, the flow from the inlet to tail race is under pressure, casing is absolutely necessary to
enclose the turbine.
• In general, Reaction turbines are medium to low-head, and high-flow rate devices. The reaction
turbines in use are Francis and Kaplan
Reaction Turbines
15/09/16 Dr.	Rohit	Singh	Lather
Francis Turbine
• Francis Turbine is an inward flow reaction turbine
• Designed and developed by the American Engineer James B. Francis
• It is a mixed flow turbine in which the water enters the runner radially at its outer periphery and
leaves axially at its center
• This arrangement provides a large discharge area with the prescribed diameter of the runner
• Suitable for large quantity of water and low and medium heads
15/09/16 Dr.	Rohit	Singh	Lather
Power plants with net heads ranging from 20 to 750 m
15/09/16 Dr.	Rohit	Singh	Lather
The main parts of a radial flow reaction turbine are:
• Casing: - The water from penstocks enters the casing which is of spiral shape in which area of
cross section of casing goes on decreasing gradually. The casing completely surrounds the runner
of the turbine.
• Guide mechanism: - It consists of stationary circular wheel all round the runner of the turbine.
The stationary guide vanes are fixed on guide mechanism. The guide vanes allow the water to
strike the vanes fixed on the runner without shock at inlet.
• Runner: - It is a circular wheel on which a series of radial curved vanes are fixed. The surfaces of
the vanes are made very smooth. The radial curved are so shaped that the water enters and
leaves without shock.
• Draft tube: - The pressure at the exit of the runner of reaction turbine is generally less than
atmospheric pressure. The water exit cannot be directly discharged to the tail race. A tube or
pipe of gradually increasing area is used for discharging water from the exit of turbine to the
tailrace. This tube of increasing area is called draft tube.
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
Penstock
Made of steel and is embedded inside the dam
Draft Tube
15/09/16 Dr.	Rohit	Singh	Lather
Turbine shaft
15/09/16 Dr.	Rohit	Singh	Lather
Francis Runner
Wicket Gates
15/09/16 Dr.	Rohit	Singh	Lather
Francis Turbine Wicket Gate Operation
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
• If the water flows parallel to the axis of the rotation of the shaft, the turbine is known as axial
flow turbine
• If the head at the inlet of the turbine is the sum of pressure energy and kinetic energy and
during the flow of water through runner a part of pressure energy is converted into kinetic
energy, the turbine is known as reaction turbine
• For the axial flow reaction turbines, the shaft of the turbine is vertical. The lower end of the
shaft is made larger which is known as hub. The vanes are fixed on the hub and hence hub acts as
runner for axial flow reaction turbine
• The following are the important type of axial flow turbines: Propeller turbine and Kaplan turbine
• When the vanes are fixed to the hub and they are not adjustable, the turbine is known as
propeller turbine
• If vanes on hub are adjustable the turbine is known as a Kaplan turbine. This turbine is suitable
where a large quantity of water at low heads is available
Axial flow turbines
15/09/16 Dr.	Rohit	Singh	Lather
Kaplan Turbine
• Kaplan turbine is a
- Axial flow turbine (high flow)
- Low Head
- High Specific speed
- Reaction Turbine
• The runner blades are adjustable and can be rotated about the pivots fixed to the boss of the
runner
• The blades are adjusted automatically by servomechanism so that at all loads water enters them
without shock
High efficiency is maintained at part loads
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
Power plants with net heads ranging from 10 to 70 m15/09/16 Dr.	Rohit	Singh	Lather
• Designed by Austrian engineer Viktor Kaplan in Brno in 1913. Kaplan turbine is the only type of
water turbine with adjustable blades
• Adjustable blades allow work with low performance. For example in small hydro power plants
• Water under pressure flush draft tube through the wicket gate and falls on the adjustable
blades, which enables adjust the flow
• After crossing propeller is the kinetic energy of water converted into rotational motion shaft
• The shaft powered generator producing electric power
• The draft tube should be full of water, because the suction causes pressure drop which results in
Cavitation
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather
15/09/16 Dr.	Rohit	Singh	Lather

More Related Content

What's hot

Centrifugal & reciprocating pumps
Centrifugal & reciprocating  pumpsCentrifugal & reciprocating  pumps
Centrifugal & reciprocating pumps
vishalgohel12195
 
Chapter 7. compressible flow.pptx copy
Chapter 7. compressible flow.pptx   copyChapter 7. compressible flow.pptx   copy
Chapter 7. compressible flow.pptx copy
kidanemariam tesera
 
Cavitation in pumps
Cavitation in pumpsCavitation in pumps
Cavitation in pumps
Muhammad Ahmad
 
Hydraulic machines
Hydraulic machinesHydraulic machines
Hydraulic machines
Bhargav Sai
 
18 me54 turbo machines module 02 question no 3a & 3b
18 me54 turbo machines module 02 question no 3a & 3b18 me54 turbo machines module 02 question no 3a & 3b
18 me54 turbo machines module 02 question no 3a & 3b
THANMAY JS
 
Francis Turbine
Francis TurbineFrancis Turbine
Francis Turbine
Sharad Walia
 
Steam Turbines Basics
Steam Turbines BasicsSteam Turbines Basics
Steam Turbines Basics
Prasad Vejendla
 
PPT ON MULTISTAGE OF PUMP.pptx
PPT ON MULTISTAGE OF PUMP.pptxPPT ON MULTISTAGE OF PUMP.pptx
PPT ON MULTISTAGE OF PUMP.pptx
KCNIT BANDA
 
Hydraulic turbines
Hydraulic turbinesHydraulic turbines
Hydraulic turbines
krishna khot
 
Fluid machinery ppt
Fluid machinery pptFluid machinery ppt
Fluid machinery ppt
mahesh kumar
 
Governing of hydraulic turbines.
Governing of hydraulic turbines.Governing of hydraulic turbines.
Centrifugal pump
Centrifugal pumpCentrifugal pump
Centrifugal pump
Anshumaan Tiwari
 
Reciprocating pump pdf
Reciprocating pump pdfReciprocating pump pdf
Reciprocating pump pdf
Sourav Jana
 
Water hammer
Water hammerWater hammer
Water hammer
Naveen Sudharsan
 
various flow meter
various flow metervarious flow meter
various flow meter
Abhijit Panchmatiya
 
losses in pipe flow
losses in pipe flowlosses in pipe flow
losses in pipe flow
Karan Patel
 
3. water turbine (intro)
3. water turbine (intro)3. water turbine (intro)
3. water turbine (intro)
AwanKhadka2
 
Specific Speed of Turbine | Fluid Mechanics
Specific Speed of Turbine | Fluid MechanicsSpecific Speed of Turbine | Fluid Mechanics
Specific Speed of Turbine | Fluid Mechanics
Satish Taji
 
Francis turbine
Francis turbineFrancis turbine
Francis turbine
Md Sujon Babu
 

What's hot (20)

Centrifugal & reciprocating pumps
Centrifugal & reciprocating  pumpsCentrifugal & reciprocating  pumps
Centrifugal & reciprocating pumps
 
Chapter 7. compressible flow.pptx copy
Chapter 7. compressible flow.pptx   copyChapter 7. compressible flow.pptx   copy
Chapter 7. compressible flow.pptx copy
 
Cavitation in pumps
Cavitation in pumpsCavitation in pumps
Cavitation in pumps
 
Hydraulic machines
Hydraulic machinesHydraulic machines
Hydraulic machines
 
18 me54 turbo machines module 02 question no 3a & 3b
18 me54 turbo machines module 02 question no 3a & 3b18 me54 turbo machines module 02 question no 3a & 3b
18 me54 turbo machines module 02 question no 3a & 3b
 
Francis Turbine
Francis TurbineFrancis Turbine
Francis Turbine
 
Steam Turbines Basics
Steam Turbines BasicsSteam Turbines Basics
Steam Turbines Basics
 
PPT ON MULTISTAGE OF PUMP.pptx
PPT ON MULTISTAGE OF PUMP.pptxPPT ON MULTISTAGE OF PUMP.pptx
PPT ON MULTISTAGE OF PUMP.pptx
 
Hydraulic turbines
Hydraulic turbinesHydraulic turbines
Hydraulic turbines
 
Fluid machinery ppt
Fluid machinery pptFluid machinery ppt
Fluid machinery ppt
 
Governing of hydraulic turbines.
Governing of hydraulic turbines.Governing of hydraulic turbines.
Governing of hydraulic turbines.
 
Centrifugal pump
Centrifugal pumpCentrifugal pump
Centrifugal pump
 
Reciprocating pump pdf
Reciprocating pump pdfReciprocating pump pdf
Reciprocating pump pdf
 
Draft tube
Draft tubeDraft tube
Draft tube
 
Water hammer
Water hammerWater hammer
Water hammer
 
various flow meter
various flow metervarious flow meter
various flow meter
 
losses in pipe flow
losses in pipe flowlosses in pipe flow
losses in pipe flow
 
3. water turbine (intro)
3. water turbine (intro)3. water turbine (intro)
3. water turbine (intro)
 
Specific Speed of Turbine | Fluid Mechanics
Specific Speed of Turbine | Fluid MechanicsSpecific Speed of Turbine | Fluid Mechanics
Specific Speed of Turbine | Fluid Mechanics
 
Francis turbine
Francis turbineFrancis turbine
Francis turbine
 

Similar to Turbines Intro

Impulse turbine
Impulse turbineImpulse turbine
Impulse turbine
BUET Khuzdar
 
hydraulicturbine.pptx
hydraulicturbine.pptxhydraulicturbine.pptx
hydraulicturbine.pptx
Mood Naik
 
Hydraulic turbines i
Hydraulic turbines iHydraulic turbines i
Hydraulic turbines i
vijaykumar5042
 
Types of turbine & thier application
Types of turbine & thier applicationTypes of turbine & thier application
Types of turbine & thier application
daudsangeenkhan
 
turbine in plant
turbine in plantturbine in plant
turbine in plantNaman Meena
 
Hydraulic turbines
Hydraulic turbinesHydraulic turbines
Hydraulic turbines
Ali Hussain Umar Bhatti
 
Hydraulic turbine
Hydraulic  turbineHydraulic  turbine
Hydraulic turbine
Jay Patel
 
Hydraulic Turbines
Hydraulic TurbinesHydraulic Turbines
Hydraulic Turbines
Shahriyar Zafar
 
Applications of turbines-Hydroelectric Power Plants
Applications of turbines-Hydroelectric Power PlantsApplications of turbines-Hydroelectric Power Plants
Applications of turbines-Hydroelectric Power Plants
Anand Prithviraj
 
Hm gd
Hm gdHm gd
Hm gd
kshivam124
 
Hydel lecture-2
Hydel lecture-2Hydel lecture-2
Hydel lecture-2
Faraz Humayun
 
Impulse turbine
Impulse turbineImpulse turbine
Impulse turbine
Adnan Ali Cheema
 
Nce403 mod unit5
Nce403 mod unit5Nce403 mod unit5
Nce403 mod unit5
MODASSAR ANSARI
 
Hydraulic Turbines.pdf
Hydraulic Turbines.pdfHydraulic Turbines.pdf
Hydraulic Turbines.pdf
KAhmedRehman
 
Turbine - A neat differentiation
Turbine - A neat differentiationTurbine - A neat differentiation
Turbine - A neat differentiation
Vijay Vicky
 
Turbine and pump.pptx
Turbine and pump.pptxTurbine and pump.pptx
Turbine and pump.pptx
MdToukirShah
 
Micro hydropower plant
Micro hydropower plantMicro hydropower plant
Micro hydropower plant
Surendra Patait
 
Reaction turbine
Reaction turbineReaction turbine
Reaction turbine
presentationsinfo
 
Turbines seminar ppt
Turbines seminar pptTurbines seminar ppt
Turbines seminar ppt
PrakashM306542
 
Francis's turbine
Francis's turbine Francis's turbine
Francis's turbine
Nosherwani
 

Similar to Turbines Intro (20)

Impulse turbine
Impulse turbineImpulse turbine
Impulse turbine
 
hydraulicturbine.pptx
hydraulicturbine.pptxhydraulicturbine.pptx
hydraulicturbine.pptx
 
Hydraulic turbines i
Hydraulic turbines iHydraulic turbines i
Hydraulic turbines i
 
Types of turbine & thier application
Types of turbine & thier applicationTypes of turbine & thier application
Types of turbine & thier application
 
turbine in plant
turbine in plantturbine in plant
turbine in plant
 
Hydraulic turbines
Hydraulic turbinesHydraulic turbines
Hydraulic turbines
 
Hydraulic turbine
Hydraulic  turbineHydraulic  turbine
Hydraulic turbine
 
Hydraulic Turbines
Hydraulic TurbinesHydraulic Turbines
Hydraulic Turbines
 
Applications of turbines-Hydroelectric Power Plants
Applications of turbines-Hydroelectric Power PlantsApplications of turbines-Hydroelectric Power Plants
Applications of turbines-Hydroelectric Power Plants
 
Hm gd
Hm gdHm gd
Hm gd
 
Hydel lecture-2
Hydel lecture-2Hydel lecture-2
Hydel lecture-2
 
Impulse turbine
Impulse turbineImpulse turbine
Impulse turbine
 
Nce403 mod unit5
Nce403 mod unit5Nce403 mod unit5
Nce403 mod unit5
 
Hydraulic Turbines.pdf
Hydraulic Turbines.pdfHydraulic Turbines.pdf
Hydraulic Turbines.pdf
 
Turbine - A neat differentiation
Turbine - A neat differentiationTurbine - A neat differentiation
Turbine - A neat differentiation
 
Turbine and pump.pptx
Turbine and pump.pptxTurbine and pump.pptx
Turbine and pump.pptx
 
Micro hydropower plant
Micro hydropower plantMicro hydropower plant
Micro hydropower plant
 
Reaction turbine
Reaction turbineReaction turbine
Reaction turbine
 
Turbines seminar ppt
Turbines seminar pptTurbines seminar ppt
Turbines seminar ppt
 
Francis's turbine
Francis's turbine Francis's turbine
Francis's turbine
 

More from Dr. Rohit Singh Lather, Ph.D.

Additive manf. and bio materials in automotive industry
Additive manf. and bio materials in automotive industryAdditive manf. and bio materials in automotive industry
Additive manf. and bio materials in automotive industry
Dr. Rohit Singh Lather, Ph.D.
 
Positive Thinking Dr. Rohit Singh
Positive Thinking   Dr. Rohit Singh Positive Thinking   Dr. Rohit Singh
Positive Thinking Dr. Rohit Singh
Dr. Rohit Singh Lather, Ph.D.
 
Introduction to Automotive Safety
Introduction to Automotive SafetyIntroduction to Automotive Safety
Introduction to Automotive Safety
Dr. Rohit Singh Lather, Ph.D.
 
Indian Safety Norms
Indian Safety NormsIndian Safety Norms
Indian Safety Norms
Dr. Rohit Singh Lather, Ph.D.
 
Automotive crash & safety Termnologies
Automotive crash & safety TermnologiesAutomotive crash & safety Termnologies
Automotive crash & safety Termnologies
Dr. Rohit Singh Lather, Ph.D.
 
Introduction to Mechanical Engineering
Introduction to Mechanical Engineering Introduction to Mechanical Engineering
Introduction to Mechanical Engineering
Dr. Rohit Singh Lather, Ph.D.
 
Air conditioning
Air conditioning Air conditioning
Industrial safety
Industrial safetyIndustrial safety
Economics of power plant
Economics of power plantEconomics of power plant
Economics of power plant
Dr. Rohit Singh Lather, Ph.D.
 
Boiler Water Treatment
Boiler Water TreatmentBoiler Water Treatment
Boiler Water Treatment
Dr. Rohit Singh Lather, Ph.D.
 
Analysis of Steam Cycles
Analysis of Steam CyclesAnalysis of Steam Cycles
Analysis of Steam Cycles
Dr. Rohit Singh Lather, Ph.D.
 
Adavance Power Plants
Adavance Power PlantsAdavance Power Plants
Adavance Power Plants
Dr. Rohit Singh Lather, Ph.D.
 
Work and heat
Work and heatWork and heat
Thermodynamic properties
Thermodynamic propertiesThermodynamic properties
Thermodynamic properties
Dr. Rohit Singh Lather, Ph.D.
 
Second law of thermodynamics
Second law of thermodynamicsSecond law of thermodynamics
Second law of thermodynamics
Dr. Rohit Singh Lather, Ph.D.
 
Second law annexure
Second law   annexureSecond law   annexure
Second law annexure
Dr. Rohit Singh Lather, Ph.D.
 
Pure substances
Pure substances Pure substances
Introduction to thermodynamics
Introduction to thermodynamics Introduction to thermodynamics
Introduction to thermodynamics
Dr. Rohit Singh Lather, Ph.D.
 

More from Dr. Rohit Singh Lather, Ph.D. (20)

Additive manf. and bio materials in automotive industry
Additive manf. and bio materials in automotive industryAdditive manf. and bio materials in automotive industry
Additive manf. and bio materials in automotive industry
 
Positive Thinking Dr. Rohit Singh
Positive Thinking   Dr. Rohit Singh Positive Thinking   Dr. Rohit Singh
Positive Thinking Dr. Rohit Singh
 
Throttling
ThrottlingThrottling
Throttling
 
Introduction to Automotive Safety
Introduction to Automotive SafetyIntroduction to Automotive Safety
Introduction to Automotive Safety
 
Indian Safety Norms
Indian Safety NormsIndian Safety Norms
Indian Safety Norms
 
Automotive crash & safety Termnologies
Automotive crash & safety TermnologiesAutomotive crash & safety Termnologies
Automotive crash & safety Termnologies
 
Introduction to Mechanical Engineering
Introduction to Mechanical Engineering Introduction to Mechanical Engineering
Introduction to Mechanical Engineering
 
Air conditioning
Air conditioning Air conditioning
Air conditioning
 
Industrial safety
Industrial safetyIndustrial safety
Industrial safety
 
Economics of power plant
Economics of power plantEconomics of power plant
Economics of power plant
 
Boilers
BoilersBoilers
Boilers
 
Boiler Water Treatment
Boiler Water TreatmentBoiler Water Treatment
Boiler Water Treatment
 
Analysis of Steam Cycles
Analysis of Steam CyclesAnalysis of Steam Cycles
Analysis of Steam Cycles
 
Adavance Power Plants
Adavance Power PlantsAdavance Power Plants
Adavance Power Plants
 
Work and heat
Work and heatWork and heat
Work and heat
 
Thermodynamic properties
Thermodynamic propertiesThermodynamic properties
Thermodynamic properties
 
Second law of thermodynamics
Second law of thermodynamicsSecond law of thermodynamics
Second law of thermodynamics
 
Second law annexure
Second law   annexureSecond law   annexure
Second law annexure
 
Pure substances
Pure substances Pure substances
Pure substances
 
Introduction to thermodynamics
Introduction to thermodynamics Introduction to thermodynamics
Introduction to thermodynamics
 

Recently uploaded

H.Seo, ICLR 2024, MLILAB, KAIST AI.pdf
H.Seo,  ICLR 2024, MLILAB,  KAIST AI.pdfH.Seo,  ICLR 2024, MLILAB,  KAIST AI.pdf
H.Seo, ICLR 2024, MLILAB, KAIST AI.pdf
MLILAB
 
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptxCFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
R&R Consult
 
Event Management System Vb Net Project Report.pdf
Event Management System Vb Net  Project Report.pdfEvent Management System Vb Net  Project Report.pdf
Event Management System Vb Net Project Report.pdf
Kamal Acharya
 
Immunizing Image Classifiers Against Localized Adversary Attacks
Immunizing Image Classifiers Against Localized Adversary AttacksImmunizing Image Classifiers Against Localized Adversary Attacks
Immunizing Image Classifiers Against Localized Adversary Attacks
gerogepatton
 
Courier management system project report.pdf
Courier management system project report.pdfCourier management system project report.pdf
Courier management system project report.pdf
Kamal Acharya
 
Railway Signalling Principles Edition 3.pdf
Railway Signalling Principles Edition 3.pdfRailway Signalling Principles Edition 3.pdf
Railway Signalling Principles Edition 3.pdf
TeeVichai
 
Industrial Training at Shahjalal Fertilizer Company Limited (SFCL)
Industrial Training at Shahjalal Fertilizer Company Limited (SFCL)Industrial Training at Shahjalal Fertilizer Company Limited (SFCL)
Industrial Training at Shahjalal Fertilizer Company Limited (SFCL)
MdTanvirMahtab2
 
Design and Analysis of Algorithms-DP,Backtracking,Graphs,B&B
Design and Analysis of Algorithms-DP,Backtracking,Graphs,B&BDesign and Analysis of Algorithms-DP,Backtracking,Graphs,B&B
Design and Analysis of Algorithms-DP,Backtracking,Graphs,B&B
Sreedhar Chowdam
 
block diagram and signal flow graph representation
block diagram and signal flow graph representationblock diagram and signal flow graph representation
block diagram and signal flow graph representation
Divya Somashekar
 
Cosmetic shop management system project report.pdf
Cosmetic shop management system project report.pdfCosmetic shop management system project report.pdf
Cosmetic shop management system project report.pdf
Kamal Acharya
 
一比一原版(SFU毕业证)西蒙菲莎大学毕业证成绩单如何办理
一比一原版(SFU毕业证)西蒙菲莎大学毕业证成绩单如何办理一比一原版(SFU毕业证)西蒙菲莎大学毕业证成绩单如何办理
一比一原版(SFU毕业证)西蒙菲莎大学毕业证成绩单如何办理
bakpo1
 
Forklift Classes Overview by Intella Parts
Forklift Classes Overview by Intella PartsForklift Classes Overview by Intella Parts
Forklift Classes Overview by Intella Parts
Intella Parts
 
addressing modes in computer architecture
addressing modes  in computer architectureaddressing modes  in computer architecture
addressing modes in computer architecture
ShahidSultan24
 
Pile Foundation by Venkatesh Taduvai (Sub Geotechnical Engineering II)-conver...
Pile Foundation by Venkatesh Taduvai (Sub Geotechnical Engineering II)-conver...Pile Foundation by Venkatesh Taduvai (Sub Geotechnical Engineering II)-conver...
Pile Foundation by Venkatesh Taduvai (Sub Geotechnical Engineering II)-conver...
AJAYKUMARPUND1
 
TECHNICAL TRAINING MANUAL GENERAL FAMILIARIZATION COURSE
TECHNICAL TRAINING MANUAL   GENERAL FAMILIARIZATION COURSETECHNICAL TRAINING MANUAL   GENERAL FAMILIARIZATION COURSE
TECHNICAL TRAINING MANUAL GENERAL FAMILIARIZATION COURSE
DuvanRamosGarzon1
 
J.Yang, ICLR 2024, MLILAB, KAIST AI.pdf
J.Yang,  ICLR 2024, MLILAB, KAIST AI.pdfJ.Yang,  ICLR 2024, MLILAB, KAIST AI.pdf
J.Yang, ICLR 2024, MLILAB, KAIST AI.pdf
MLILAB
 
Quality defects in TMT Bars, Possible causes and Potential Solutions.
Quality defects in TMT Bars, Possible causes and Potential Solutions.Quality defects in TMT Bars, Possible causes and Potential Solutions.
Quality defects in TMT Bars, Possible causes and Potential Solutions.
PrashantGoswami42
 
MCQ Soil mechanics questions (Soil shear strength).pdf
MCQ Soil mechanics questions (Soil shear strength).pdfMCQ Soil mechanics questions (Soil shear strength).pdf
MCQ Soil mechanics questions (Soil shear strength).pdf
Osamah Alsalih
 
Architectural Portfolio Sean Lockwood
Architectural Portfolio Sean LockwoodArchitectural Portfolio Sean Lockwood
Architectural Portfolio Sean Lockwood
seandesed
 
Sachpazis:Terzaghi Bearing Capacity Estimation in simple terms with Calculati...
Sachpazis:Terzaghi Bearing Capacity Estimation in simple terms with Calculati...Sachpazis:Terzaghi Bearing Capacity Estimation in simple terms with Calculati...
Sachpazis:Terzaghi Bearing Capacity Estimation in simple terms with Calculati...
Dr.Costas Sachpazis
 

Recently uploaded (20)

H.Seo, ICLR 2024, MLILAB, KAIST AI.pdf
H.Seo,  ICLR 2024, MLILAB,  KAIST AI.pdfH.Seo,  ICLR 2024, MLILAB,  KAIST AI.pdf
H.Seo, ICLR 2024, MLILAB, KAIST AI.pdf
 
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptxCFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
CFD Simulation of By-pass Flow in a HRSG module by R&R Consult.pptx
 
Event Management System Vb Net Project Report.pdf
Event Management System Vb Net  Project Report.pdfEvent Management System Vb Net  Project Report.pdf
Event Management System Vb Net Project Report.pdf
 
Immunizing Image Classifiers Against Localized Adversary Attacks
Immunizing Image Classifiers Against Localized Adversary AttacksImmunizing Image Classifiers Against Localized Adversary Attacks
Immunizing Image Classifiers Against Localized Adversary Attacks
 
Courier management system project report.pdf
Courier management system project report.pdfCourier management system project report.pdf
Courier management system project report.pdf
 
Railway Signalling Principles Edition 3.pdf
Railway Signalling Principles Edition 3.pdfRailway Signalling Principles Edition 3.pdf
Railway Signalling Principles Edition 3.pdf
 
Industrial Training at Shahjalal Fertilizer Company Limited (SFCL)
Industrial Training at Shahjalal Fertilizer Company Limited (SFCL)Industrial Training at Shahjalal Fertilizer Company Limited (SFCL)
Industrial Training at Shahjalal Fertilizer Company Limited (SFCL)
 
Design and Analysis of Algorithms-DP,Backtracking,Graphs,B&B
Design and Analysis of Algorithms-DP,Backtracking,Graphs,B&BDesign and Analysis of Algorithms-DP,Backtracking,Graphs,B&B
Design and Analysis of Algorithms-DP,Backtracking,Graphs,B&B
 
block diagram and signal flow graph representation
block diagram and signal flow graph representationblock diagram and signal flow graph representation
block diagram and signal flow graph representation
 
Cosmetic shop management system project report.pdf
Cosmetic shop management system project report.pdfCosmetic shop management system project report.pdf
Cosmetic shop management system project report.pdf
 
一比一原版(SFU毕业证)西蒙菲莎大学毕业证成绩单如何办理
一比一原版(SFU毕业证)西蒙菲莎大学毕业证成绩单如何办理一比一原版(SFU毕业证)西蒙菲莎大学毕业证成绩单如何办理
一比一原版(SFU毕业证)西蒙菲莎大学毕业证成绩单如何办理
 
Forklift Classes Overview by Intella Parts
Forklift Classes Overview by Intella PartsForklift Classes Overview by Intella Parts
Forklift Classes Overview by Intella Parts
 
addressing modes in computer architecture
addressing modes  in computer architectureaddressing modes  in computer architecture
addressing modes in computer architecture
 
Pile Foundation by Venkatesh Taduvai (Sub Geotechnical Engineering II)-conver...
Pile Foundation by Venkatesh Taduvai (Sub Geotechnical Engineering II)-conver...Pile Foundation by Venkatesh Taduvai (Sub Geotechnical Engineering II)-conver...
Pile Foundation by Venkatesh Taduvai (Sub Geotechnical Engineering II)-conver...
 
TECHNICAL TRAINING MANUAL GENERAL FAMILIARIZATION COURSE
TECHNICAL TRAINING MANUAL   GENERAL FAMILIARIZATION COURSETECHNICAL TRAINING MANUAL   GENERAL FAMILIARIZATION COURSE
TECHNICAL TRAINING MANUAL GENERAL FAMILIARIZATION COURSE
 
J.Yang, ICLR 2024, MLILAB, KAIST AI.pdf
J.Yang,  ICLR 2024, MLILAB, KAIST AI.pdfJ.Yang,  ICLR 2024, MLILAB, KAIST AI.pdf
J.Yang, ICLR 2024, MLILAB, KAIST AI.pdf
 
Quality defects in TMT Bars, Possible causes and Potential Solutions.
Quality defects in TMT Bars, Possible causes and Potential Solutions.Quality defects in TMT Bars, Possible causes and Potential Solutions.
Quality defects in TMT Bars, Possible causes and Potential Solutions.
 
MCQ Soil mechanics questions (Soil shear strength).pdf
MCQ Soil mechanics questions (Soil shear strength).pdfMCQ Soil mechanics questions (Soil shear strength).pdf
MCQ Soil mechanics questions (Soil shear strength).pdf
 
Architectural Portfolio Sean Lockwood
Architectural Portfolio Sean LockwoodArchitectural Portfolio Sean Lockwood
Architectural Portfolio Sean Lockwood
 
Sachpazis:Terzaghi Bearing Capacity Estimation in simple terms with Calculati...
Sachpazis:Terzaghi Bearing Capacity Estimation in simple terms with Calculati...Sachpazis:Terzaghi Bearing Capacity Estimation in simple terms with Calculati...
Sachpazis:Terzaghi Bearing Capacity Estimation in simple terms with Calculati...
 

Turbines Intro

  • 2. Introduction A Turbine is a device which converts the heat energy / Kinetic energy / Pressure Energy into the Kinetic Energy & then to Rotational energy or directly to rotational Energy • First century AD - Heron of Alexandria, first recognized thermal engineer AeolipileHero of Alexandria Reaction engine First recorded steam engine Source: www.wikipedia.com 15/09/16 Dr. Rohit Singh Lather
  • 3. http://www.italoamericano.org and www.google.com Branca's Stamping Mill In 1629 an Italian engineer, Giovanni Branca, was probably the first to invent an actual impulse turbine John Barber Gas Turbine In 1791 John Barber, an Englishman. was the first to patent a design that used the thermodynamic cycle of the modem gas turbine 15/09/16 Dr. Rohit Singh Lather
  • 4. Types of Turbines Turbine Family Gas TurbineSteamTurbineHydraulic Turbine Water exerts pressure on blades of a turbine Steam exerts pressure on blades of a turbine Hot gases exerts pressure on blades of a turbine 15/09/16 Dr. Rohit Singh Lather
  • 8. • Steam turbine with three rotors discs (dark) and two stator disc (white) • Turbine Shaft is connected to the electric generator Angle of the steam turbine blade to increase the impact of steam Steam Exit 15/09/16 Dr. Rohit Singh Lather
  • 9. Gas Turbines Compressor Combustion Turbine 15/09/16 Dr. Rohit Singh Lather
  • 11. Introduction to Hydraulic Turbines Water Wheel Water Turbine/Hydraulic TurbineTurbine Generator 15/09/16 Dr. Rohit Singh Lather
  • 12. Schematic of a Hydro Power Plant for Electricity Generation 15/09/16 Dr. Rohit Singh Lather
  • 13. Understanding the Fluid Energy Bernoulli Equation Potential + Pressure + Kinetic = Constant H = z + 𝒑 𝝆𝒈 + 𝒗 𝟐 𝟐𝒈 A cubic meter of water can give about 9800 Joules of mechanical energy for every meter it descends and a flow of a cubic meter per second in a fall of 1 meter can provide 9800 W of power 𝑷 = 𝜼. 𝝆. 𝒈. 𝒉. 𝒒 Pressure Head Velocity HeadTotal Head Static Head 15/09/16 Dr. Rohit Singh Lather
  • 14. According to the action of water on moving blades turbines can be classified as Impulse and Reaction Impulse Reaction 15/09/16 Dr. Rohit Singh Lather
  • 16. • Tangential flow turbines: In this type of turbines, the water strikes the runner in the direction of tangent to the wheel. Example: Pelton wheel turbine • Radial flow turbines: In this type of turbines, the water strikes in the radial direction accordingly, it is further classified as, - Inward flow turbine: The flow is inward from periphery to the centre. Eg.: old Francis turbine. - Outward flow turbine: The flow is outward from the centre to periphery. Eg.: Fourneyron turbine • Axial flow turbine: The flow of water is in the direction parallel to the axis of the shaft. Example: Kaplan turbine and propeller turbine • Mixed flow turbine: The water enters the runner in the radial direction and leaves in axial direction. Example: Modern Francis turbine. According to the Direction of Flow Through Runner 15/09/16 Dr. Rohit Singh Lather
  • 17. • High head turbine: In this type of turbines, the net head varies from 150m to 2000m or even more, and these turbines require a small quantity of water. Example: Pelton wheel turbine • Medium head turbine: The net head varies from 30m to 150m, and also these turbines require moderate quantity of water. Example: Francis turbine • Low head turbine: The net head is less than 30m and also these turbines require large quantity of water. Example: Kaplan turbine According to the Head at Inlet of Turbine According to Head and Quantity of Water Available • Low head and high rate of flow • High head and low rate of flow • Medium head and Medium rate of flow 15/09/16 Dr. Rohit Singh Lather
  • 18. • The specific speed of a turbine is defined as, the speed of a geometrically similar turbine that would develop unit power when working under a unit head (1m head) • Low specific speed turbine: The specific speed is less than 50. (varying from 10 to 35 for single jet and up to 50 for double jet ) Example: Pelton wheel turbine • Medium specific turbine: The specific speed is varies from 50 to 250. Example: Francis turbine • High specific turbine: the specific speed is more than 250. Example: Kaplan turbine According to the Specific Speed of the Turbine According to the Disposition of Shaft • Horizontal turbine • Vertical turbine 15/09/16 Dr. Rohit Singh Lather
  • 19. • In the impulse turbine, the total head of the incoming fluid is converted in to a large velocity head at the exit of the supply nozzle • That is the entire available energy of the water is converted in to kinetic energy • Although there are various types of impulse turbine designs, perhaps the easiest to understand is the Pelton wheel turbine • It is most efficient when operated with a large head and lower flow rate Impulse Turbine 15/09/16 Dr. Rohit Singh Lather
  • 20. • The only hydraulic turbine of the impulse type in common use, is named after an American engineer Laster A Pelton, who contributed much to its development in about 1880 • Known as Pelton Turbine or Pelton Wheel • Oldest form of water turbine is Pelton Turbine • A natural head of a stream of water is utilized to drive it • It is an efficient machine particularly suited to high heads, in excess of 450 m • The rotor consists of a large circular disc or wheel on which a number (seldom less than 15) of spoon shaped buckets are spaced uniformly round is periphery • The wheel is driven by jets of water being discharged at atmospheric pressure from pressure nozzles • The nozzles are mounted so that each directs a jet along a tangent to the circle through the centres of the buckets Pelton Turbines 15/09/16 Dr. Rohit Singh Lather
  • 21. • Down the centre of each bucket, there is a splitter ridge which divides the jet into two equal streams which flow round the smooth inner surface of the bucket and leaves the bucket with a relative velocity almost opposite in direction to the original jet Depending on water flow and design, Pelton wheels can operate with heads as small as 15 meters and as high as 1800 meters The Pelton wheel is most efficient in high head applications 15/09/16 Dr. Rohit Singh Lather
  • 22. • For maximum change in momentum of the fluid and hence for the maximum driving force on the wheel, the deflection of the water jet should be 180 degree • In practice, however, the deflection is limited to about 165 degree, so that the water leaving a bucket may not hit the back of the following bucket • Therefore, the camber angle of the buckets is made as 165 degree 15/09/16 Dr. Rohit Singh Lather
  • 24. • Best suited -for higher flow rate and lower head situations. • The rotation of runner or rotor is partly due to impulse action and partly due to change in pressure over the runner blades; therefore, it is called as reaction turbine • The penstock pipe feeds water to a row of fixed blades through casing • These fixed blades convert a part of the pressure energy into kinetic energy before water enters the runner • The water entering the runner of a reaction turbine has both pressure energy and kinetic energy • Water leaving the turbine is still left with some energy (pressure energy and kinetic energy) Since, the flow from the inlet to tail race is under pressure, casing is absolutely necessary to enclose the turbine. • In general, Reaction turbines are medium to low-head, and high-flow rate devices. The reaction turbines in use are Francis and Kaplan Reaction Turbines 15/09/16 Dr. Rohit Singh Lather
  • 25. Francis Turbine • Francis Turbine is an inward flow reaction turbine • Designed and developed by the American Engineer James B. Francis • It is a mixed flow turbine in which the water enters the runner radially at its outer periphery and leaves axially at its center • This arrangement provides a large discharge area with the prescribed diameter of the runner • Suitable for large quantity of water and low and medium heads 15/09/16 Dr. Rohit Singh Lather
  • 26. Power plants with net heads ranging from 20 to 750 m 15/09/16 Dr. Rohit Singh Lather
  • 27. The main parts of a radial flow reaction turbine are: • Casing: - The water from penstocks enters the casing which is of spiral shape in which area of cross section of casing goes on decreasing gradually. The casing completely surrounds the runner of the turbine. • Guide mechanism: - It consists of stationary circular wheel all round the runner of the turbine. The stationary guide vanes are fixed on guide mechanism. The guide vanes allow the water to strike the vanes fixed on the runner without shock at inlet. • Runner: - It is a circular wheel on which a series of radial curved vanes are fixed. The surfaces of the vanes are made very smooth. The radial curved are so shaped that the water enters and leaves without shock. • Draft tube: - The pressure at the exit of the runner of reaction turbine is generally less than atmospheric pressure. The water exit cannot be directly discharged to the tail race. A tube or pipe of gradually increasing area is used for discharging water from the exit of turbine to the tailrace. This tube of increasing area is called draft tube. 15/09/16 Dr. Rohit Singh Lather
  • 29. Penstock Made of steel and is embedded inside the dam Draft Tube 15/09/16 Dr. Rohit Singh Lather
  • 31. Francis Runner Wicket Gates 15/09/16 Dr. Rohit Singh Lather
  • 32. Francis Turbine Wicket Gate Operation 15/09/16 Dr. Rohit Singh Lather
  • 34. • If the water flows parallel to the axis of the rotation of the shaft, the turbine is known as axial flow turbine • If the head at the inlet of the turbine is the sum of pressure energy and kinetic energy and during the flow of water through runner a part of pressure energy is converted into kinetic energy, the turbine is known as reaction turbine • For the axial flow reaction turbines, the shaft of the turbine is vertical. The lower end of the shaft is made larger which is known as hub. The vanes are fixed on the hub and hence hub acts as runner for axial flow reaction turbine • The following are the important type of axial flow turbines: Propeller turbine and Kaplan turbine • When the vanes are fixed to the hub and they are not adjustable, the turbine is known as propeller turbine • If vanes on hub are adjustable the turbine is known as a Kaplan turbine. This turbine is suitable where a large quantity of water at low heads is available Axial flow turbines 15/09/16 Dr. Rohit Singh Lather
  • 35. Kaplan Turbine • Kaplan turbine is a - Axial flow turbine (high flow) - Low Head - High Specific speed - Reaction Turbine • The runner blades are adjustable and can be rotated about the pivots fixed to the boss of the runner • The blades are adjusted automatically by servomechanism so that at all loads water enters them without shock High efficiency is maintained at part loads 15/09/16 Dr. Rohit Singh Lather
  • 39. Power plants with net heads ranging from 10 to 70 m15/09/16 Dr. Rohit Singh Lather
  • 40. • Designed by Austrian engineer Viktor Kaplan in Brno in 1913. Kaplan turbine is the only type of water turbine with adjustable blades • Adjustable blades allow work with low performance. For example in small hydro power plants • Water under pressure flush draft tube through the wicket gate and falls on the adjustable blades, which enables adjust the flow • After crossing propeller is the kinetic energy of water converted into rotational motion shaft • The shaft powered generator producing electric power • The draft tube should be full of water, because the suction causes pressure drop which results in Cavitation 15/09/16 Dr. Rohit Singh Lather