SlideShare ist ein Scribd-Unternehmen logo
1 von 29
Atkinson Cycle, Ericsson Cycle
and Stirling Cycle
-by Group 11
[Dhaval Shukla,
Abhishek Singh R.,
Abhishek Singh
Aman Singh]
-Engineering Thermodynamics
-A.C.E.T.
Atkinson Cycle
 The Atkinson cycle was
conceived and developed
by a British engineer, Dr.
James Atkinson.
 This cycle consists of two
adiabatic processes, a
constant volume and a
constant pressure
processes.
Atkinson Cycle
 Fig. 1.1, shows the Atkinson cycle plotted
on p-V and T-s diagram.
Atkinson Cycle
 The point 1 represents that the cylinder is
full of air with volume V₁, pressure p₁, and
absolute temperature T₁.
a) Process 1-2: This process represents the
isentropic compression of air from state-1
to state-2.
b) Process 2-3: Heat is supplied to the
compressed air at constant volume from
an external source. The pressure rises
and the ratio α=p₃/p₂ is called the
explosion ratio.
Atkinson Cycle
c) Process 3-4: The increased high pressure
exerts a greater amount of force on the piston
and pushes it forward. Expansion of working
fluid takes place isentropically up to the
lowest pressure p₁=p₄ of the cycle, and work
is done by the system.
d) Process 4-1: This process represents the
rejection of heat by air at constant pressure.
Hence volume and temperature of air
decreases to initial value. Therefore, a cycle
is completed.
Atkinson Cycle
 Calculation of air standard efficiency
Consider ‘m’ kg of air in the cycle.
3 2
4 1
3 2 4 1
Heat supplied at constant volume,
( )
Heat rejected at constant pressure,
( )
Net work done,
Heat supplied - Heat rejected
= ( ) - ( )
S v
R p
net
v p
Q mC T T
Q mC T T
W
mC T T mC T T
 
 

 
Atkinson Cycle
 
3 2 4 1
3 2
4 1
3 2
Air standard efficiency,
work done
η=
Heat supplied
( ) ( )
=
( )
γ( )
=1 1
v p
v
mC T T mC T T
mC T T
T T
T T
  


 

Atkinson Cycle
γ-1
γ-11
2 1 1
2
γ-13
3 2 2 1
2
From isentropic compression process 1-2,
From constant volume process 2-3,
α=α
From isentropic expansion process 3-4,
V
T T T r
V
p
T T T T r
p
 
  
 
 
Atkinson Cycle
 
γ-1 γ-1
3 3 1
4 3 3
4 1 4
γ-1
2 1
3 2 3
1 4
γ-1
3 1
γ-1
4
4
4 1
1
=
=
From constant pressure process 4-1,
V V V
T T T
V V V
V V
T V V
V V
T V
r V
V
T T
V
   
     
   
 
  
 
 
 
 

Q
Atkinson Cycle
 
 
 
1
γ
1 1
γ-1 γ-1
1 1
1
γ
γ-1
Substituting the value of temperatures
in equation 1 , we get
1 γ α -
η
α
γ α 1
η 1 2
α -1
T T
T r T r
r
 
   
 

 
 
   
 
 
Atkinson Cycle
 Which is the required equation for air
standard efficiency of the cycle.
 The idea of the Atkinson cycle is to get
more work than that given by Otto cycle.
 The area 4 onwards represents this
increased work.
 Further it is to be noted that heat rejection
occurs at lower average temperature (T₅
being higher than T₁).
Atkinson Cycle
 This aspects make Atkinson cycle more
efficient than Otto cycle.
 However, it is very difficult to construct
an engine working on Atkinson cycle.
Atkinson Cycle
 Application of Atkinson Cycle:
Atkinson Differential
Engine
(Opposed Piston Engine)
Atkinson Gas Engine with
Intake
Atkinson Cycle
 Application of Atkinson Cycle:
Rotary Atkinson Cycle
Engine
Ericsson Cycle
 The Ericsson cycle is
named after inventor John
Ericsson, who designed and
built many unique heat
engines based on various
thermodynamic cycles.
 He is credited with inventing
two unique heat engine
cycles and developing
practical engines based on
Ericsson Cycle
 His first cycle is now known as the closed
Brayton cycle, while his second cycle is
what is now called the Ericsson cycle.
 The Ericsson cycle consists of two
isothermal and two constant pressure
processes.
 The p-V and T-s diagram with the
mainframe structure of Ericsson Cycle is
shown in Fig.1.2:
Ericsson Cycle
Ericsson Cycle
 The processes taking place in Ericsson
cycle is given below:
a) Process 1-2: At a constant
temperature the pressure of air is
increased, therefore the compression
takes place.
b) Process 2-3: The increased pressure
during this process is maintained and
further heat is added to the cylinder.
Ericsson Cycle
c) Process 3-4: Now, the temperature is
again maintained constant and the
volume of air increases. Therefore the
expansion takes place.
d) Process 4-1: Again maintaining the
pressure constant, heat is removed from
the cylinder system. Hence the process
reaches to its initial state, making the
process reversible cyclic process.
Ericsson Cycle
 The thermal efficiency of Ericsson Cycle is
given below:
thη
1
,
H L
H
L
H
H
L
T T
T
T
T
where T Higher Temperature
and T Lower Temperature


 


Ericsson Cycle
 Application of Ericsson Cycle:
Ericsson Engine
Ericsson Cycle
Engine
Stirling Cycle
 The Stirling cycle was
introduced by Dr. Robert
Stirling over the
improvement of ideal
Otto and Diesel cycles.
 The Stirling cycle is
a thermodynamic
cycle that describes the
general class of Stirling
devices.
Stirling Cycle
 The Stirling cycle consists of two
isothermal and two isochoric processes.
 The p-V and T-s diagrams of Stirling cycle
has been given below:
Stirling Cycle
 The processes occurring in a Stirling
Cycle is given below:
a) Process 1-2: The volume of gas
increases at a constant temperature.
Therefore, the process is called
isothermal expansion process.
b) Process 2-3: The increased volume now
is maintained constant and heat removal
is offered. Therefore, the process is
called Isochoric heat-removal process.
Stirling Cycle
c) Process 3-4: In this process again
temperature is maintained constant and
pressure increases. Therefore,
isothermal compression takes place.
d) Process 4-1: Now, the heat is added at
a constant volume. Therefore, the
process is called isochoric heat addition
process. Hence, the process reaches to
its initial state. Therefore, cycle is
completed.
Stirling Cycle
 The thermal efficiency of Stirling Cycle is
given below:
thη
1
,
H L
H
L
H
H
L
T T
T
T
T
where T Higher Temperature
and T Lower Temperature


 


Stirling Cycle
 Application of Stirling Cycle:
Stirling Engine
Alpha Stirling Engine
Stirling Cycle
 Application of Stirling Cycle:
Four phase Stirling Cycle
Engine
(Ideal Stirling Engine)
Thank you!

Weitere ähnliche Inhalte

Was ist angesagt?

Thermodynamic assignment 2
Thermodynamic assignment 2Thermodynamic assignment 2
Thermodynamic assignment 2Lahiru Dilshan
 
Volumetric efficient of a compressor
Volumetric efficient of a compressorVolumetric efficient of a compressor
Volumetric efficient of a compressorLahiru Dilshan
 
Numerical problems on spur gear (type i)
Numerical problems on spur gear (type i)Numerical problems on spur gear (type i)
Numerical problems on spur gear (type i)taruian
 
Degree of reaction
Degree of reactionDegree of reaction
Degree of reactionHarshit Jain
 
Heat transfer from extended surfaces (or fins)
Heat transfer from extended surfaces (or fins)Heat transfer from extended surfaces (or fins)
Heat transfer from extended surfaces (or fins)tmuliya
 
Air compressor
Air compressorAir compressor
Air compressorsureshkcet
 
air standard, fuel air and actual cycles
air standard, fuel air and actual cyclesair standard, fuel air and actual cycles
air standard, fuel air and actual cyclesmp poonia
 
Thermodynamic Chapter 5 Air Standard Cycle
Thermodynamic Chapter 5 Air Standard CycleThermodynamic Chapter 5 Air Standard Cycle
Thermodynamic Chapter 5 Air Standard CycleMuhammad Surahman
 
Acutal Cycles and Their Analysis - Unit-I
Acutal Cycles and Their Analysis - Unit-IAcutal Cycles and Their Analysis - Unit-I
Acutal Cycles and Their Analysis - Unit-IS.Vijaya Bhaskar
 
2presentation otto-cycle-101225122612-phpapp012
2presentation otto-cycle-101225122612-phpapp0122presentation otto-cycle-101225122612-phpapp012
2presentation otto-cycle-101225122612-phpapp012akshay garg
 
Gas turbine 2 - regeneration and intercooling
Gas turbine   2 - regeneration and intercoolingGas turbine   2 - regeneration and intercooling
Gas turbine 2 - regeneration and intercoolingNihal Senanayake
 
Velocity Triangle for Moving Blade of an impulse Turbine
Velocity Triangle for Moving Blade of an impulse TurbineVelocity Triangle for Moving Blade of an impulse Turbine
Velocity Triangle for Moving Blade of an impulse TurbineShowhanur Rahman
 
TWO DIMENSIONAL STEADY STATE HEAT CONDUCTION
TWO DIMENSIONAL STEADY STATE HEAT CONDUCTIONTWO DIMENSIONAL STEADY STATE HEAT CONDUCTION
TWO DIMENSIONAL STEADY STATE HEAT CONDUCTIONDebre Markos University
 
Rankine Cycle & How to increase its efficiency
Rankine Cycle & How to increase its efficiencyRankine Cycle & How to increase its efficiency
Rankine Cycle & How to increase its efficiencyRaja Dolat
 

Was ist angesagt? (20)

Draught and chimney
Draught and chimneyDraught and chimney
Draught and chimney
 
Thermodynamic assignment 2
Thermodynamic assignment 2Thermodynamic assignment 2
Thermodynamic assignment 2
 
Volumetric efficient of a compressor
Volumetric efficient of a compressorVolumetric efficient of a compressor
Volumetric efficient of a compressor
 
Numerical problems on spur gear (type i)
Numerical problems on spur gear (type i)Numerical problems on spur gear (type i)
Numerical problems on spur gear (type i)
 
Flywheel.ppt
Flywheel.pptFlywheel.ppt
Flywheel.ppt
 
Degree of reaction
Degree of reactionDegree of reaction
Degree of reaction
 
Heat transfer from extended surfaces (or fins)
Heat transfer from extended surfaces (or fins)Heat transfer from extended surfaces (or fins)
Heat transfer from extended surfaces (or fins)
 
Air compressor
Air compressorAir compressor
Air compressor
 
air standard, fuel air and actual cycles
air standard, fuel air and actual cyclesair standard, fuel air and actual cycles
air standard, fuel air and actual cycles
 
Rankine cycle
Rankine cycleRankine cycle
Rankine cycle
 
Rankine cycle
Rankine cycleRankine cycle
Rankine cycle
 
Thermodynamic Chapter 5 Air Standard Cycle
Thermodynamic Chapter 5 Air Standard CycleThermodynamic Chapter 5 Air Standard Cycle
Thermodynamic Chapter 5 Air Standard Cycle
 
Acutal Cycles and Their Analysis - Unit-I
Acutal Cycles and Their Analysis - Unit-IAcutal Cycles and Their Analysis - Unit-I
Acutal Cycles and Their Analysis - Unit-I
 
2presentation otto-cycle-101225122612-phpapp012
2presentation otto-cycle-101225122612-phpapp0122presentation otto-cycle-101225122612-phpapp012
2presentation otto-cycle-101225122612-phpapp012
 
Gas turbine 2 - regeneration and intercooling
Gas turbine   2 - regeneration and intercoolingGas turbine   2 - regeneration and intercooling
Gas turbine 2 - regeneration and intercooling
 
Rankine cycle
Rankine cycleRankine cycle
Rankine cycle
 
Steam turbine and its types
Steam turbine and its typesSteam turbine and its types
Steam turbine and its types
 
Velocity Triangle for Moving Blade of an impulse Turbine
Velocity Triangle for Moving Blade of an impulse TurbineVelocity Triangle for Moving Blade of an impulse Turbine
Velocity Triangle for Moving Blade of an impulse Turbine
 
TWO DIMENSIONAL STEADY STATE HEAT CONDUCTION
TWO DIMENSIONAL STEADY STATE HEAT CONDUCTIONTWO DIMENSIONAL STEADY STATE HEAT CONDUCTION
TWO DIMENSIONAL STEADY STATE HEAT CONDUCTION
 
Rankine Cycle & How to increase its efficiency
Rankine Cycle & How to increase its efficiencyRankine Cycle & How to increase its efficiency
Rankine Cycle & How to increase its efficiency
 

Ähnlich wie Atkinson Cycle, Ericsson Cycle And Stirling Cycle

REVIEW OF POWER PLANT
REVIEW OF POWER PLANTREVIEW OF POWER PLANT
REVIEW OF POWER PLANTCharltonInao1
 
Chapter_9_lecture_new Gas Power Cycle.pdf
Chapter_9_lecture_new Gas Power Cycle.pdfChapter_9_lecture_new Gas Power Cycle.pdf
Chapter_9_lecture_new Gas Power Cycle.pdfCemerlangStudi1
 
Recapitulation of carnot,otto and diesel cycle, dual cycle,comparison of ott...
Recapitulation of  carnot,otto and diesel cycle, dual cycle,comparison of ott...Recapitulation of  carnot,otto and diesel cycle, dual cycle,comparison of ott...
Recapitulation of carnot,otto and diesel cycle, dual cycle,comparison of ott...vaibhav tailor
 
Itenas termodinamika ii bab 9a
Itenas termodinamika ii bab 9aItenas termodinamika ii bab 9a
Itenas termodinamika ii bab 9aNoviyantiNugraha
 
THERMAL_ENGG_Module_2_STUDY_MATERIAL_f31f24bf2a214020795dc836391208de.pdf
THERMAL_ENGG_Module_2_STUDY_MATERIAL_f31f24bf2a214020795dc836391208de.pdfTHERMAL_ENGG_Module_2_STUDY_MATERIAL_f31f24bf2a214020795dc836391208de.pdf
THERMAL_ENGG_Module_2_STUDY_MATERIAL_f31f24bf2a214020795dc836391208de.pdfmomentr50
 
Thermodynamics Examples and Class test
Thermodynamics Examples and Class testThermodynamics Examples and Class test
Thermodynamics Examples and Class testVJTI Production
 
Gaspowercycle by- anshuman pptt
Gaspowercycle by- anshuman ppttGaspowercycle by- anshuman pptt
Gaspowercycle by- anshuman ppttanahuman singh
 
Thermodynamic Cycles - A Review - Carnot Cycle, Ideal Gas Law, Thermodynamics...
Thermodynamic Cycles - A Review - Carnot Cycle, Ideal Gas Law, Thermodynamics...Thermodynamic Cycles - A Review - Carnot Cycle, Ideal Gas Law, Thermodynamics...
Thermodynamic Cycles - A Review - Carnot Cycle, Ideal Gas Law, Thermodynamics...dineshprabhu41
 
Thermodynamics chapter:7 Some Power and Refrigerator Cycle
Thermodynamics chapter:7 Some Power and Refrigerator Cycle Thermodynamics chapter:7 Some Power and Refrigerator Cycle
Thermodynamics chapter:7 Some Power and Refrigerator Cycle Ashok giri
 
Introduction to Air Refrigeration for 3/4 B.Tech
Introduction to Air Refrigeration for 3/4 B.TechIntroduction to Air Refrigeration for 3/4 B.Tech
Introduction to Air Refrigeration for 3/4 B.Techmaheshchindanu5783
 
Carnot cycle, Joule cycle, Dual combustion cycle
Carnot cycle, Joule cycle, Dual combustion cycleCarnot cycle, Joule cycle, Dual combustion cycle
Carnot cycle, Joule cycle, Dual combustion cyclehafizarsalan3
 
Air-Cycle refrigeration.pdf
Air-Cycle refrigeration.pdfAir-Cycle refrigeration.pdf
Air-Cycle refrigeration.pdfEssaYimer
 
Refrigeration vtu atd notes pdf download
Refrigeration vtu atd notes pdf downloadRefrigeration vtu atd notes pdf download
Refrigeration vtu atd notes pdf downloadkiran555555
 

Ähnlich wie Atkinson Cycle, Ericsson Cycle And Stirling Cycle (20)

REVIEW OF POWER PLANT
REVIEW OF POWER PLANTREVIEW OF POWER PLANT
REVIEW OF POWER PLANT
 
Gas power-09
Gas power-09Gas power-09
Gas power-09
 
Chapter_9_lecture_new Gas Power Cycle.pdf
Chapter_9_lecture_new Gas Power Cycle.pdfChapter_9_lecture_new Gas Power Cycle.pdf
Chapter_9_lecture_new Gas Power Cycle.pdf
 
20MDELE109
20MDELE10920MDELE109
20MDELE109
 
CARNOT CYCLE
CARNOT CYCLECARNOT CYCLE
CARNOT CYCLE
 
Recapitulation of carnot,otto and diesel cycle, dual cycle,comparison of ott...
Recapitulation of  carnot,otto and diesel cycle, dual cycle,comparison of ott...Recapitulation of  carnot,otto and diesel cycle, dual cycle,comparison of ott...
Recapitulation of carnot,otto and diesel cycle, dual cycle,comparison of ott...
 
Itenas termodinamika ii bab 9a
Itenas termodinamika ii bab 9aItenas termodinamika ii bab 9a
Itenas termodinamika ii bab 9a
 
THERMAL_ENGG_Module_2_STUDY_MATERIAL_f31f24bf2a214020795dc836391208de.pdf
THERMAL_ENGG_Module_2_STUDY_MATERIAL_f31f24bf2a214020795dc836391208de.pdfTHERMAL_ENGG_Module_2_STUDY_MATERIAL_f31f24bf2a214020795dc836391208de.pdf
THERMAL_ENGG_Module_2_STUDY_MATERIAL_f31f24bf2a214020795dc836391208de.pdf
 
Thermodynamics Examples and Class test
Thermodynamics Examples and Class testThermodynamics Examples and Class test
Thermodynamics Examples and Class test
 
OTTO CYCLE
OTTO CYCLEOTTO CYCLE
OTTO CYCLE
 
Carnot Cycle
Carnot CycleCarnot Cycle
Carnot Cycle
 
Gaspowercycle by- anshuman pptt
Gaspowercycle by- anshuman ppttGaspowercycle by- anshuman pptt
Gaspowercycle by- anshuman pptt
 
Gas turbine power plant
Gas turbine power plantGas turbine power plant
Gas turbine power plant
 
13. The Otto Cycle.pdf
13. The Otto Cycle.pdf13. The Otto Cycle.pdf
13. The Otto Cycle.pdf
 
Thermodynamic Cycles - A Review - Carnot Cycle, Ideal Gas Law, Thermodynamics...
Thermodynamic Cycles - A Review - Carnot Cycle, Ideal Gas Law, Thermodynamics...Thermodynamic Cycles - A Review - Carnot Cycle, Ideal Gas Law, Thermodynamics...
Thermodynamic Cycles - A Review - Carnot Cycle, Ideal Gas Law, Thermodynamics...
 
Thermodynamics chapter:7 Some Power and Refrigerator Cycle
Thermodynamics chapter:7 Some Power and Refrigerator Cycle Thermodynamics chapter:7 Some Power and Refrigerator Cycle
Thermodynamics chapter:7 Some Power and Refrigerator Cycle
 
Introduction to Air Refrigeration for 3/4 B.Tech
Introduction to Air Refrigeration for 3/4 B.TechIntroduction to Air Refrigeration for 3/4 B.Tech
Introduction to Air Refrigeration for 3/4 B.Tech
 
Carnot cycle, Joule cycle, Dual combustion cycle
Carnot cycle, Joule cycle, Dual combustion cycleCarnot cycle, Joule cycle, Dual combustion cycle
Carnot cycle, Joule cycle, Dual combustion cycle
 
Air-Cycle refrigeration.pdf
Air-Cycle refrigeration.pdfAir-Cycle refrigeration.pdf
Air-Cycle refrigeration.pdf
 
Refrigeration vtu atd notes pdf download
Refrigeration vtu atd notes pdf downloadRefrigeration vtu atd notes pdf download
Refrigeration vtu atd notes pdf download
 

Mehr von Dhaval Shukla

Time Travelling.... Is It Possible?
Time Travelling.... Is It Possible?Time Travelling.... Is It Possible?
Time Travelling.... Is It Possible?Dhaval Shukla
 
Linear Combination, Span And Linearly Independent, Dependent Set
Linear Combination, Span And Linearly Independent, Dependent SetLinear Combination, Span And Linearly Independent, Dependent Set
Linear Combination, Span And Linearly Independent, Dependent SetDhaval Shukla
 
Metallic Glasses (Type of Metallic Materials)
Metallic Glasses (Type of Metallic Materials)Metallic Glasses (Type of Metallic Materials)
Metallic Glasses (Type of Metallic Materials)Dhaval Shukla
 
Crank Sliding Link Cylinder Mechanism
Crank Sliding Link Cylinder MechanismCrank Sliding Link Cylinder Mechanism
Crank Sliding Link Cylinder MechanismDhaval Shukla
 
Lamps, Reflectors And Lumen Requirements
Lamps, Reflectors And Lumen RequirementsLamps, Reflectors And Lumen Requirements
Lamps, Reflectors And Lumen RequirementsDhaval Shukla
 
Laplace Transform of Periodic Function
Laplace Transform of Periodic FunctionLaplace Transform of Periodic Function
Laplace Transform of Periodic FunctionDhaval Shukla
 
Electromagnetic Transducers (EMT)
Electromagnetic Transducers (EMT)Electromagnetic Transducers (EMT)
Electromagnetic Transducers (EMT)Dhaval Shukla
 
Corporate Social Responsibility (CSR)
Corporate Social Responsibility (CSR)Corporate Social Responsibility (CSR)
Corporate Social Responsibility (CSR)Dhaval Shukla
 
Gaussian Quadrature Formula
Gaussian Quadrature FormulaGaussian Quadrature Formula
Gaussian Quadrature FormulaDhaval Shukla
 
Are We Really Independent?
Are We Really Independent?Are We Really Independent?
Are We Really Independent?Dhaval Shukla
 

Mehr von Dhaval Shukla (10)

Time Travelling.... Is It Possible?
Time Travelling.... Is It Possible?Time Travelling.... Is It Possible?
Time Travelling.... Is It Possible?
 
Linear Combination, Span And Linearly Independent, Dependent Set
Linear Combination, Span And Linearly Independent, Dependent SetLinear Combination, Span And Linearly Independent, Dependent Set
Linear Combination, Span And Linearly Independent, Dependent Set
 
Metallic Glasses (Type of Metallic Materials)
Metallic Glasses (Type of Metallic Materials)Metallic Glasses (Type of Metallic Materials)
Metallic Glasses (Type of Metallic Materials)
 
Crank Sliding Link Cylinder Mechanism
Crank Sliding Link Cylinder MechanismCrank Sliding Link Cylinder Mechanism
Crank Sliding Link Cylinder Mechanism
 
Lamps, Reflectors And Lumen Requirements
Lamps, Reflectors And Lumen RequirementsLamps, Reflectors And Lumen Requirements
Lamps, Reflectors And Lumen Requirements
 
Laplace Transform of Periodic Function
Laplace Transform of Periodic FunctionLaplace Transform of Periodic Function
Laplace Transform of Periodic Function
 
Electromagnetic Transducers (EMT)
Electromagnetic Transducers (EMT)Electromagnetic Transducers (EMT)
Electromagnetic Transducers (EMT)
 
Corporate Social Responsibility (CSR)
Corporate Social Responsibility (CSR)Corporate Social Responsibility (CSR)
Corporate Social Responsibility (CSR)
 
Gaussian Quadrature Formula
Gaussian Quadrature FormulaGaussian Quadrature Formula
Gaussian Quadrature Formula
 
Are We Really Independent?
Are We Really Independent?Are We Really Independent?
Are We Really Independent?
 

Kürzlich hochgeladen

Unit7-DC_Motors nkkjnsdkfnfcdfknfdgfggfg
Unit7-DC_Motors nkkjnsdkfnfcdfknfdgfggfgUnit7-DC_Motors nkkjnsdkfnfcdfknfdgfggfg
Unit7-DC_Motors nkkjnsdkfnfcdfknfdgfggfgsaravananr517913
 
Past, Present and Future of Generative AI
Past, Present and Future of Generative AIPast, Present and Future of Generative AI
Past, Present and Future of Generative AIabhishek36461
 
Correctly Loading Incremental Data at Scale
Correctly Loading Incremental Data at ScaleCorrectly Loading Incremental Data at Scale
Correctly Loading Incremental Data at ScaleAlluxio, Inc.
 
BSNL Internship Training presentation.pptx
BSNL Internship Training presentation.pptxBSNL Internship Training presentation.pptx
BSNL Internship Training presentation.pptxNiranjanYadav41
 
Main Memory Management in Operating System
Main Memory Management in Operating SystemMain Memory Management in Operating System
Main Memory Management in Operating SystemRashmi Bhat
 
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catchers
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor CatchersTechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catchers
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catcherssdickerson1
 
Research Methodology for Engineering pdf
Research Methodology for Engineering pdfResearch Methodology for Engineering pdf
Research Methodology for Engineering pdfCaalaaAbdulkerim
 
US Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of ActionUS Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of ActionMebane Rash
 
Risk Management in Engineering Construction Project
Risk Management in Engineering Construction ProjectRisk Management in Engineering Construction Project
Risk Management in Engineering Construction ProjectErbil Polytechnic University
 
Arduino_CSE ece ppt for working and principal of arduino.ppt
Arduino_CSE ece ppt for working and principal of arduino.pptArduino_CSE ece ppt for working and principal of arduino.ppt
Arduino_CSE ece ppt for working and principal of arduino.pptSAURABHKUMAR892774
 
Indian Dairy Industry Present Status and.ppt
Indian Dairy Industry Present Status and.pptIndian Dairy Industry Present Status and.ppt
Indian Dairy Industry Present Status and.pptMadan Karki
 
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)Dr SOUNDIRARAJ N
 
home automation using Arduino by Aditya Prasad
home automation using Arduino by Aditya Prasadhome automation using Arduino by Aditya Prasad
home automation using Arduino by Aditya Prasadaditya806802
 
Industrial Safety Unit-IV workplace health and safety.ppt
Industrial Safety Unit-IV workplace health and safety.pptIndustrial Safety Unit-IV workplace health and safety.ppt
Industrial Safety Unit-IV workplace health and safety.pptNarmatha D
 
Crushers to screens in aggregate production
Crushers to screens in aggregate productionCrushers to screens in aggregate production
Crushers to screens in aggregate productionChinnuNinan
 
Transport layer issues and challenges - Guide
Transport layer issues and challenges - GuideTransport layer issues and challenges - Guide
Transport layer issues and challenges - GuideGOPINATHS437943
 
Crystal Structure analysis and detailed information pptx
Crystal Structure analysis and detailed information pptxCrystal Structure analysis and detailed information pptx
Crystal Structure analysis and detailed information pptxachiever3003
 
Engineering Drawing section of solid
Engineering Drawing     section of solidEngineering Drawing     section of solid
Engineering Drawing section of solidnamansinghjarodiya
 
Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...121011101441
 

Kürzlich hochgeladen (20)

Unit7-DC_Motors nkkjnsdkfnfcdfknfdgfggfg
Unit7-DC_Motors nkkjnsdkfnfcdfknfdgfggfgUnit7-DC_Motors nkkjnsdkfnfcdfknfdgfggfg
Unit7-DC_Motors nkkjnsdkfnfcdfknfdgfggfg
 
Past, Present and Future of Generative AI
Past, Present and Future of Generative AIPast, Present and Future of Generative AI
Past, Present and Future of Generative AI
 
Correctly Loading Incremental Data at Scale
Correctly Loading Incremental Data at ScaleCorrectly Loading Incremental Data at Scale
Correctly Loading Incremental Data at Scale
 
BSNL Internship Training presentation.pptx
BSNL Internship Training presentation.pptxBSNL Internship Training presentation.pptx
BSNL Internship Training presentation.pptx
 
Designing pile caps according to ACI 318-19.pptx
Designing pile caps according to ACI 318-19.pptxDesigning pile caps according to ACI 318-19.pptx
Designing pile caps according to ACI 318-19.pptx
 
Main Memory Management in Operating System
Main Memory Management in Operating SystemMain Memory Management in Operating System
Main Memory Management in Operating System
 
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catchers
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor CatchersTechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catchers
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catchers
 
Research Methodology for Engineering pdf
Research Methodology for Engineering pdfResearch Methodology for Engineering pdf
Research Methodology for Engineering pdf
 
US Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of ActionUS Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of Action
 
Risk Management in Engineering Construction Project
Risk Management in Engineering Construction ProjectRisk Management in Engineering Construction Project
Risk Management in Engineering Construction Project
 
Arduino_CSE ece ppt for working and principal of arduino.ppt
Arduino_CSE ece ppt for working and principal of arduino.pptArduino_CSE ece ppt for working and principal of arduino.ppt
Arduino_CSE ece ppt for working and principal of arduino.ppt
 
Indian Dairy Industry Present Status and.ppt
Indian Dairy Industry Present Status and.pptIndian Dairy Industry Present Status and.ppt
Indian Dairy Industry Present Status and.ppt
 
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)
 
home automation using Arduino by Aditya Prasad
home automation using Arduino by Aditya Prasadhome automation using Arduino by Aditya Prasad
home automation using Arduino by Aditya Prasad
 
Industrial Safety Unit-IV workplace health and safety.ppt
Industrial Safety Unit-IV workplace health and safety.pptIndustrial Safety Unit-IV workplace health and safety.ppt
Industrial Safety Unit-IV workplace health and safety.ppt
 
Crushers to screens in aggregate production
Crushers to screens in aggregate productionCrushers to screens in aggregate production
Crushers to screens in aggregate production
 
Transport layer issues and challenges - Guide
Transport layer issues and challenges - GuideTransport layer issues and challenges - Guide
Transport layer issues and challenges - Guide
 
Crystal Structure analysis and detailed information pptx
Crystal Structure analysis and detailed information pptxCrystal Structure analysis and detailed information pptx
Crystal Structure analysis and detailed information pptx
 
Engineering Drawing section of solid
Engineering Drawing     section of solidEngineering Drawing     section of solid
Engineering Drawing section of solid
 
Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...
 

Atkinson Cycle, Ericsson Cycle And Stirling Cycle

  • 1. Atkinson Cycle, Ericsson Cycle and Stirling Cycle -by Group 11 [Dhaval Shukla, Abhishek Singh R., Abhishek Singh Aman Singh] -Engineering Thermodynamics -A.C.E.T.
  • 2. Atkinson Cycle  The Atkinson cycle was conceived and developed by a British engineer, Dr. James Atkinson.  This cycle consists of two adiabatic processes, a constant volume and a constant pressure processes.
  • 3. Atkinson Cycle  Fig. 1.1, shows the Atkinson cycle plotted on p-V and T-s diagram.
  • 4. Atkinson Cycle  The point 1 represents that the cylinder is full of air with volume V₁, pressure p₁, and absolute temperature T₁. a) Process 1-2: This process represents the isentropic compression of air from state-1 to state-2. b) Process 2-3: Heat is supplied to the compressed air at constant volume from an external source. The pressure rises and the ratio α=p₃/p₂ is called the explosion ratio.
  • 5. Atkinson Cycle c) Process 3-4: The increased high pressure exerts a greater amount of force on the piston and pushes it forward. Expansion of working fluid takes place isentropically up to the lowest pressure p₁=p₄ of the cycle, and work is done by the system. d) Process 4-1: This process represents the rejection of heat by air at constant pressure. Hence volume and temperature of air decreases to initial value. Therefore, a cycle is completed.
  • 6. Atkinson Cycle  Calculation of air standard efficiency Consider ‘m’ kg of air in the cycle. 3 2 4 1 3 2 4 1 Heat supplied at constant volume, ( ) Heat rejected at constant pressure, ( ) Net work done, Heat supplied - Heat rejected = ( ) - ( ) S v R p net v p Q mC T T Q mC T T W mC T T mC T T       
  • 7. Atkinson Cycle   3 2 4 1 3 2 4 1 3 2 Air standard efficiency, work done η= Heat supplied ( ) ( ) = ( ) γ( ) =1 1 v p v mC T T mC T T mC T T T T T T        
  • 8. Atkinson Cycle γ-1 γ-11 2 1 1 2 γ-13 3 2 2 1 2 From isentropic compression process 1-2, From constant volume process 2-3, α=α From isentropic expansion process 3-4, V T T T r V p T T T T r p         
  • 9. Atkinson Cycle   γ-1 γ-1 3 3 1 4 3 3 4 1 4 γ-1 2 1 3 2 3 1 4 γ-1 3 1 γ-1 4 4 4 1 1 = = From constant pressure process 4-1, V V V T T T V V V V V T V V V V T V r V V T T V                             Q
  • 10. Atkinson Cycle       1 γ 1 1 γ-1 γ-1 1 1 1 γ γ-1 Substituting the value of temperatures in equation 1 , we get 1 γ α - η α γ α 1 η 1 2 α -1 T T T r T r r                     
  • 11. Atkinson Cycle  Which is the required equation for air standard efficiency of the cycle.  The idea of the Atkinson cycle is to get more work than that given by Otto cycle.  The area 4 onwards represents this increased work.  Further it is to be noted that heat rejection occurs at lower average temperature (T₅ being higher than T₁).
  • 12. Atkinson Cycle  This aspects make Atkinson cycle more efficient than Otto cycle.  However, it is very difficult to construct an engine working on Atkinson cycle.
  • 13. Atkinson Cycle  Application of Atkinson Cycle: Atkinson Differential Engine (Opposed Piston Engine) Atkinson Gas Engine with Intake
  • 14. Atkinson Cycle  Application of Atkinson Cycle: Rotary Atkinson Cycle Engine
  • 15. Ericsson Cycle  The Ericsson cycle is named after inventor John Ericsson, who designed and built many unique heat engines based on various thermodynamic cycles.  He is credited with inventing two unique heat engine cycles and developing practical engines based on
  • 16. Ericsson Cycle  His first cycle is now known as the closed Brayton cycle, while his second cycle is what is now called the Ericsson cycle.  The Ericsson cycle consists of two isothermal and two constant pressure processes.  The p-V and T-s diagram with the mainframe structure of Ericsson Cycle is shown in Fig.1.2:
  • 18. Ericsson Cycle  The processes taking place in Ericsson cycle is given below: a) Process 1-2: At a constant temperature the pressure of air is increased, therefore the compression takes place. b) Process 2-3: The increased pressure during this process is maintained and further heat is added to the cylinder.
  • 19. Ericsson Cycle c) Process 3-4: Now, the temperature is again maintained constant and the volume of air increases. Therefore the expansion takes place. d) Process 4-1: Again maintaining the pressure constant, heat is removed from the cylinder system. Hence the process reaches to its initial state, making the process reversible cyclic process.
  • 20. Ericsson Cycle  The thermal efficiency of Ericsson Cycle is given below: thη 1 , H L H L H H L T T T T T where T Higher Temperature and T Lower Temperature      
  • 21. Ericsson Cycle  Application of Ericsson Cycle: Ericsson Engine Ericsson Cycle Engine
  • 22. Stirling Cycle  The Stirling cycle was introduced by Dr. Robert Stirling over the improvement of ideal Otto and Diesel cycles.  The Stirling cycle is a thermodynamic cycle that describes the general class of Stirling devices.
  • 23. Stirling Cycle  The Stirling cycle consists of two isothermal and two isochoric processes.  The p-V and T-s diagrams of Stirling cycle has been given below:
  • 24. Stirling Cycle  The processes occurring in a Stirling Cycle is given below: a) Process 1-2: The volume of gas increases at a constant temperature. Therefore, the process is called isothermal expansion process. b) Process 2-3: The increased volume now is maintained constant and heat removal is offered. Therefore, the process is called Isochoric heat-removal process.
  • 25. Stirling Cycle c) Process 3-4: In this process again temperature is maintained constant and pressure increases. Therefore, isothermal compression takes place. d) Process 4-1: Now, the heat is added at a constant volume. Therefore, the process is called isochoric heat addition process. Hence, the process reaches to its initial state. Therefore, cycle is completed.
  • 26. Stirling Cycle  The thermal efficiency of Stirling Cycle is given below: thη 1 , H L H L H H L T T T T T where T Higher Temperature and T Lower Temperature      
  • 27. Stirling Cycle  Application of Stirling Cycle: Stirling Engine Alpha Stirling Engine
  • 28. Stirling Cycle  Application of Stirling Cycle: Four phase Stirling Cycle Engine (Ideal Stirling Engine)