Rankine cycle

A
Ashish Kumar JainO & M HEAD um ASHISH KUMAR JAIN
Rankine Cycle
Figures from Cengel and Boles,
Thermodynamics, An Engineering
Approach, 6th
ed., McGraw Hill, 2008.
First Law of Thermodynamics Review
SIinkJ/kgofunitshas(work)Wwherepower
SIinkJ/kgofunitshasQwhereferheat transofrate
:negligiblearechangesenergypotentialandkinetic
&existsstreamfluid1onlyif
22
:LawFirstState-Steady
22
mWW
mQQ
hhWQ
gz
V
hmgz
V
hmWQ
ie
i
i
ie
e
e



=
=
−=−








++∑−








++∑=−
Vapor Power Cycles
 In these types of cycles,
a fluid evaporates and
condenses.
 Ideal cycle is the Carnot
 Which processes here
would cause problems?
Ideal Rankine Cycle
 This cycle follows the idea of the Carnot cycle but
can be practically implemented.
1-2 isentropic pump 2-3 constant pressure heat addition
3-4 isentropic turbine 4-1 constant pressure heat rejection
Ideal Cycle Analysis
 h1=hf@ low pressure (saturated liquid)
 Wpump (ideal)=h2-h1=vf(Phigh-Plow)
 vf=specific volume of saturated liquid at low pressure
 Qin=h3-h2 heat added in boiler (positive value)
 Rate of heat transfer = Q*mass flow rate
 Usually either Qin will be specified or else the high
temperature and pressure (so you can find h3)
Ideal Cycle Analysis, cont.
 Qout=h4-h1 heat removed from condenser (here h4
and h1 signs have been switched to keep this a
positive value)
 Wturbine=h3-h4 turbine work
 Power = work * mass flow rate
 h4@ low pressure and s4=s3
Example 1– Ideal Rankine Cycle
 An ideal Rankine cycle operates between
pressures of 30 kPa and 6 MPa. The
temperature of the steam at the inlet of the
turbine is 550°C. Find the net work for the cycle
and the thermal efficiency.
 Wnet=Wturbine-Wpump OR Qin-Qout
 Thermal efficiency ηth=Wnet/Qin
Deviations from Ideal in Real Cycles
 Pump is not ideal
 Turbine is not ideal
 There will be a pressure drop across the boiler and
condenser
 Subcool the liquid in the condenser to prevent cavitation
in the pump. For example, if you subcool it 5°C, that
means that the temperauture entering the pump is 5°C
below the saturation temperature.
( )
pump
f
actual
actual
ideal
pump
PPv
W
W
W
ηη 12 −
==
equationpumptheofinverseanisthat thisnoteideal
actual
turbine W
W
=η
Cavitation Photos
Munson, Young, Okiishi, Fundamentals of Fluid Mechanics, 3rd
ed., John Wiley and Sons, 1998.
Example 2
 Repeat the last problem but with an isentropic
pump efficiency of 75% and turbine efficiency of
85%.
T-s Diagrams
 Draw a T-s diagram for an ideal Rankine Cycle.
Now show how that diagram will change if you
keep the pressures the same but increase the
superheating. What happens to
 Pump work input?
 Turbine work output?
 Heat rejected?
 Moisture content at turbine exit?
T-s Diagrams
 Draw a T-s diagram for an ideal Rankine Cycle.
Now show how that diagram will change if you
bix the turbine inlet temperature and condenser
pressure but increase the boiler pressure. What
happens to
 Pump work input?
 Heat rejected?
 Moisture content at exit of turbine?
To increase system efficiency
 Lower condenser pressure
 Must have at least 10°C ∆T between condenser and
cooling water or air temperature for effective heat
transfer
 Watch quality at exit to prevent turbine problems
(shouldn’t go less than about 88%)
 Superheat the steam more
 Tmax ~ 620° due to metallurgical considerations
 Increase boiler pressure (with same Tmax)
 Pmax ~ 30 MPa
 Watch quality at exit
Reheat Cycle
 Allows us to increase boiler pressure without
problems of low quality at turbine exit
Regeneration
 Preheats steam entering boiler using a
feedwater heater, improving efficiency
 Also deaerates the fluid and reduces large volume
flow rates at turbine exit.
A more complicated cycle…
Combined Cycle
1 von 17

Recomendados

Vapour power cycles von
Vapour power cyclesVapour power cycles
Vapour power cycleskrishna khot
804 views21 Folien
rankine cycle von
rankine cyclerankine cycle
rankine cyclejaydeep bhanushali
14.3K views13 Folien
Rankine Cycle von
Rankine CycleRankine Cycle
Rankine CycleDhaval Chauhan
880 views20 Folien
Rankine cycle von
Rankine cycleRankine cycle
Rankine cycleAkash Sood
43.6K views15 Folien
Steam turbine von
Steam turbineSteam turbine
Steam turbineGaurav Kaushik
16.7K views77 Folien
Regenerative rankine cycle - Complete Overview von
Regenerative rankine cycle - Complete OverviewRegenerative rankine cycle - Complete Overview
Regenerative rankine cycle - Complete OverviewHashim Hasnain Hadi
1K views13 Folien

Más contenido relacionado

Was ist angesagt?

Compressor von
CompressorCompressor
CompressorBilalwahla
21.8K views34 Folien
Rankine Cycle von
Rankine CycleRankine Cycle
Rankine CycleKunj Soni
3.9K views15 Folien
Gas turbine 1 von
Gas turbine  1Gas turbine  1
Gas turbine 1Nihal Senanayake
12.8K views52 Folien
Steam turbine von
Steam turbineSteam turbine
Steam turbineRavi97246
2.3K views46 Folien
Rankinecycle 120509124313-phpapp02 (3) von
Rankinecycle 120509124313-phpapp02 (3)Rankinecycle 120509124313-phpapp02 (3)
Rankinecycle 120509124313-phpapp02 (3)yamini champaneri
1.5K views13 Folien
1.2 brayton cycle von
1.2 brayton cycle1.2 brayton cycle
1.2 brayton cycleArup Kumar Sikdar
171 views16 Folien

Was ist angesagt?(20)

Compressor von Bilalwahla
CompressorCompressor
Compressor
Bilalwahla21.8K views
Rankine Cycle von Kunj Soni
Rankine CycleRankine Cycle
Rankine Cycle
Kunj Soni3.9K views
Steam turbine von Ravi97246
Steam turbineSteam turbine
Steam turbine
Ravi972462.3K views
Steam turbines von Prem Baboo
Steam turbinesSteam turbines
Steam turbines
Prem Baboo4.8K views
Atkinson Cycle, Ericsson Cycle And Stirling Cycle von Dhaval Shukla
Atkinson Cycle, Ericsson Cycle And Stirling CycleAtkinson Cycle, Ericsson Cycle And Stirling Cycle
Atkinson Cycle, Ericsson Cycle And Stirling Cycle
Dhaval Shukla23.2K views
[PPT] on Steam Turbine von Sumit Sharma
[PPT] on Steam Turbine[PPT] on Steam Turbine
[PPT] on Steam Turbine
Sumit Sharma97.3K views
Reciprocating compressor von Nathan
Reciprocating compressorReciprocating compressor
Reciprocating compressor
Nathan 12.6K views
First law of thermodynamic von Pavan Patel
First law of thermodynamicFirst law of thermodynamic
First law of thermodynamic
Pavan Patel4K views
Lecture 6 _ Brayton cycle von Sijal Ahmed
Lecture 6 _ Brayton cycle Lecture 6 _ Brayton cycle
Lecture 6 _ Brayton cycle
Sijal Ahmed1.2K views
Thermodynamic Chapter 6 Thermal Power Plant von Muhammad Surahman
Thermodynamic Chapter 6 Thermal Power PlantThermodynamic Chapter 6 Thermal Power Plant
Thermodynamic Chapter 6 Thermal Power Plant
Muhammad Surahman16.1K views
compressors and types von Ali Murtaza
compressors and typescompressors and types
compressors and types
Ali Murtaza8.3K views

Similar a Rankine cycle

Ch 6b 2nd law von
Ch 6b  2nd lawCh 6b  2nd law
Ch 6b 2nd lawfisehaye tium
1.7K views28 Folien
Power plant cycle von
Power plant cyclePower plant cycle
Power plant cycleSuvamay Sahoo
6.7K views18 Folien
Ch 6b 2nd law von
Ch 6b  2nd lawCh 6b  2nd law
Ch 6b 2nd lawabfisho
1.6K views29 Folien
Gas power-09 von
Gas power-09Gas power-09
Gas power-09UthsoNandy
86 views82 Folien
REVIEW OF POWER PLANT von
REVIEW OF POWER PLANTREVIEW OF POWER PLANT
REVIEW OF POWER PLANTCharltonInao1
51 views110 Folien
ThermoDynamics (Working of steam power plant and rankine cyle) von
ThermoDynamics (Working of steam power plant and rankine cyle)ThermoDynamics (Working of steam power plant and rankine cyle)
ThermoDynamics (Working of steam power plant and rankine cyle)Graphic Era University.
2.2K views15 Folien

Similar a Rankine cycle(20)

Ch 6b 2nd law von abfisho
Ch 6b  2nd lawCh 6b  2nd law
Ch 6b 2nd law
abfisho1.6K views
Air-Cycle refrigeration.pdf von EssaYimer
Air-Cycle refrigeration.pdfAir-Cycle refrigeration.pdf
Air-Cycle refrigeration.pdf
EssaYimer51 views
Second law of thermodynamics von Jaimin Patel
Second law of thermodynamicsSecond law of thermodynamics
Second law of thermodynamics
Jaimin Patel1.1K views
Gas cycles part i (1) von Mehtab Rai
Gas cycles   part i (1)Gas cycles   part i (1)
Gas cycles part i (1)
Mehtab Rai792 views
J2006 termodinamik 1 unit11 von Malaysia
J2006 termodinamik 1 unit11J2006 termodinamik 1 unit11
J2006 termodinamik 1 unit11
Malaysia972 views
Thermodynamics of thermal power plants von Sugam Parnami
Thermodynamics of thermal power plantsThermodynamics of thermal power plants
Thermodynamics of thermal power plants
Sugam Parnami61 views
Presentation on rankine cycle von Manan Neupane
Presentation on rankine cyclePresentation on rankine cycle
Presentation on rankine cycle
Manan Neupane488 views
Thermodynamic cycles4.ppt von Mehtab Rai
Thermodynamic cycles4.pptThermodynamic cycles4.ppt
Thermodynamic cycles4.ppt
Mehtab Rai121 views

Más de Ashish Kumar Jain

Proximate & ultimate analysis of coal von
Proximate & ultimate analysis of coalProximate & ultimate analysis of coal
Proximate & ultimate analysis of coalAshish Kumar Jain
5.1K views7 Folien
Assessment of boiler performance von
Assessment of boiler performanceAssessment of boiler performance
Assessment of boiler performanceAshish Kumar Jain
1.5K views22 Folien
Condensate von
Condensate Condensate
Condensate Ashish Kumar Jain
379 views25 Folien
Belt conveyor-manufacturing & utilization von
Belt conveyor-manufacturing & utilizationBelt conveyor-manufacturing & utilization
Belt conveyor-manufacturing & utilizationAshish Kumar Jain
520 views22 Folien
Cooling tower von
Cooling towerCooling tower
Cooling towerAshish Kumar Jain
4.3K views38 Folien
Permacare RO membrane expertise von
Permacare RO membrane expertisePermacare RO membrane expertise
Permacare RO membrane expertiseAshish Kumar Jain
319 views83 Folien

Más de Ashish Kumar Jain(20)

Hydraullically assisted pressure relief valve service sheet von Ashish Kumar Jain
Hydraullically assisted pressure relief valve service sheetHydraullically assisted pressure relief valve service sheet
Hydraullically assisted pressure relief valve service sheet
Ashish Kumar Jain125 views
Chiller absorption machine working principle von Ashish Kumar Jain
Chiller absorption machine  working principleChiller absorption machine  working principle
Chiller absorption machine working principle
Ashish Kumar Jain453 views
STEAM TURBINES Governing System & TROUBLE SHOOTING von Ashish Kumar Jain
STEAM TURBINES Governing System & TROUBLE SHOOTINGSTEAM TURBINES Governing System & TROUBLE SHOOTING
STEAM TURBINES Governing System & TROUBLE SHOOTING
Ashish Kumar Jain10.2K views
Thermal Power Plant - Emergency situations von Ashish Kumar Jain
Thermal Power Plant   -   Emergency situations Thermal Power Plant   -   Emergency situations
Thermal Power Plant - Emergency situations
Ashish Kumar Jain4.9K views

Último

Literature review and Case study on Commercial Complex in Nepal, Durbar mall,... von
Literature review and Case study on Commercial Complex in Nepal, Durbar mall,...Literature review and Case study on Commercial Complex in Nepal, Durbar mall,...
Literature review and Case study on Commercial Complex in Nepal, Durbar mall,...AakashShakya12
45 views115 Folien
DevOps to DevSecOps: Enhancing Software Security Throughout The Development L... von
DevOps to DevSecOps: Enhancing Software Security Throughout The Development L...DevOps to DevSecOps: Enhancing Software Security Throughout The Development L...
DevOps to DevSecOps: Enhancing Software Security Throughout The Development L...Anowar Hossain
10 views34 Folien
802.11 Computer Networks von
802.11 Computer Networks802.11 Computer Networks
802.11 Computer NetworksTusharChoudhary72015
9 views33 Folien
Multi-objective distributed generation integration in radial distribution sy... von
Multi-objective distributed generation integration in radial  distribution sy...Multi-objective distributed generation integration in radial  distribution sy...
Multi-objective distributed generation integration in radial distribution sy...IJECEIAES
15 views14 Folien
13_DVD_Latch-up_prevention.pdf von
13_DVD_Latch-up_prevention.pdf13_DVD_Latch-up_prevention.pdf
13_DVD_Latch-up_prevention.pdfUsha Mehta
9 views16 Folien
Digital Watermarking Of Audio Signals.pptx von
Digital Watermarking Of Audio Signals.pptxDigital Watermarking Of Audio Signals.pptx
Digital Watermarking Of Audio Signals.pptxAyushJaiswal781174
8 views25 Folien

Último(20)

Literature review and Case study on Commercial Complex in Nepal, Durbar mall,... von AakashShakya12
Literature review and Case study on Commercial Complex in Nepal, Durbar mall,...Literature review and Case study on Commercial Complex in Nepal, Durbar mall,...
Literature review and Case study on Commercial Complex in Nepal, Durbar mall,...
AakashShakya1245 views
DevOps to DevSecOps: Enhancing Software Security Throughout The Development L... von Anowar Hossain
DevOps to DevSecOps: Enhancing Software Security Throughout The Development L...DevOps to DevSecOps: Enhancing Software Security Throughout The Development L...
DevOps to DevSecOps: Enhancing Software Security Throughout The Development L...
Anowar Hossain10 views
Multi-objective distributed generation integration in radial distribution sy... von IJECEIAES
Multi-objective distributed generation integration in radial  distribution sy...Multi-objective distributed generation integration in radial  distribution sy...
Multi-objective distributed generation integration in radial distribution sy...
IJECEIAES15 views
13_DVD_Latch-up_prevention.pdf von Usha Mehta
13_DVD_Latch-up_prevention.pdf13_DVD_Latch-up_prevention.pdf
13_DVD_Latch-up_prevention.pdf
Usha Mehta9 views
Performance of Back-to-Back Mechanically Stabilized Earth Walls Supporting th... von ahmedmesaiaoun
Performance of Back-to-Back Mechanically Stabilized Earth Walls Supporting th...Performance of Back-to-Back Mechanically Stabilized Earth Walls Supporting th...
Performance of Back-to-Back Mechanically Stabilized Earth Walls Supporting th...
ahmedmesaiaoun12 views
Informed search algorithms.pptx von Dr.Shweta
Informed search algorithms.pptxInformed search algorithms.pptx
Informed search algorithms.pptx
Dr.Shweta12 views
Machine Element II Course outline.pdf von odatadese1
Machine Element II Course outline.pdfMachine Element II Course outline.pdf
Machine Element II Course outline.pdf
odatadese16 views
7_DVD_Combinational_MOS_Logic_Circuits.pdf von Usha Mehta
7_DVD_Combinational_MOS_Logic_Circuits.pdf7_DVD_Combinational_MOS_Logic_Circuits.pdf
7_DVD_Combinational_MOS_Logic_Circuits.pdf
Usha Mehta50 views
cloud computing-virtualization.pptx von RajaulKarim20
cloud computing-virtualization.pptxcloud computing-virtualization.pptx
cloud computing-virtualization.pptx
RajaulKarim2082 views

Rankine cycle

  • 1. Rankine Cycle Figures from Cengel and Boles, Thermodynamics, An Engineering Approach, 6th ed., McGraw Hill, 2008.
  • 2. First Law of Thermodynamics Review SIinkJ/kgofunitshas(work)Wwherepower SIinkJ/kgofunitshasQwhereferheat transofrate :negligiblearechangesenergypotentialandkinetic &existsstreamfluid1onlyif 22 :LawFirstState-Steady 22 mWW mQQ hhWQ gz V hmgz V hmWQ ie i i ie e e    = = −=−         ++∑−         ++∑=−
  • 3. Vapor Power Cycles  In these types of cycles, a fluid evaporates and condenses.  Ideal cycle is the Carnot  Which processes here would cause problems?
  • 4. Ideal Rankine Cycle  This cycle follows the idea of the Carnot cycle but can be practically implemented. 1-2 isentropic pump 2-3 constant pressure heat addition 3-4 isentropic turbine 4-1 constant pressure heat rejection
  • 5. Ideal Cycle Analysis  h1=hf@ low pressure (saturated liquid)  Wpump (ideal)=h2-h1=vf(Phigh-Plow)  vf=specific volume of saturated liquid at low pressure  Qin=h3-h2 heat added in boiler (positive value)  Rate of heat transfer = Q*mass flow rate  Usually either Qin will be specified or else the high temperature and pressure (so you can find h3)
  • 6. Ideal Cycle Analysis, cont.  Qout=h4-h1 heat removed from condenser (here h4 and h1 signs have been switched to keep this a positive value)  Wturbine=h3-h4 turbine work  Power = work * mass flow rate  h4@ low pressure and s4=s3
  • 7. Example 1– Ideal Rankine Cycle  An ideal Rankine cycle operates between pressures of 30 kPa and 6 MPa. The temperature of the steam at the inlet of the turbine is 550°C. Find the net work for the cycle and the thermal efficiency.  Wnet=Wturbine-Wpump OR Qin-Qout  Thermal efficiency ηth=Wnet/Qin
  • 8. Deviations from Ideal in Real Cycles  Pump is not ideal  Turbine is not ideal  There will be a pressure drop across the boiler and condenser  Subcool the liquid in the condenser to prevent cavitation in the pump. For example, if you subcool it 5°C, that means that the temperauture entering the pump is 5°C below the saturation temperature. ( ) pump f actual actual ideal pump PPv W W W ηη 12 − == equationpumptheofinverseanisthat thisnoteideal actual turbine W W =η
  • 9. Cavitation Photos Munson, Young, Okiishi, Fundamentals of Fluid Mechanics, 3rd ed., John Wiley and Sons, 1998.
  • 10. Example 2  Repeat the last problem but with an isentropic pump efficiency of 75% and turbine efficiency of 85%.
  • 11. T-s Diagrams  Draw a T-s diagram for an ideal Rankine Cycle. Now show how that diagram will change if you keep the pressures the same but increase the superheating. What happens to  Pump work input?  Turbine work output?  Heat rejected?  Moisture content at turbine exit?
  • 12. T-s Diagrams  Draw a T-s diagram for an ideal Rankine Cycle. Now show how that diagram will change if you bix the turbine inlet temperature and condenser pressure but increase the boiler pressure. What happens to  Pump work input?  Heat rejected?  Moisture content at exit of turbine?
  • 13. To increase system efficiency  Lower condenser pressure  Must have at least 10°C ∆T between condenser and cooling water or air temperature for effective heat transfer  Watch quality at exit to prevent turbine problems (shouldn’t go less than about 88%)  Superheat the steam more  Tmax ~ 620° due to metallurgical considerations  Increase boiler pressure (with same Tmax)  Pmax ~ 30 MPa  Watch quality at exit
  • 14. Reheat Cycle  Allows us to increase boiler pressure without problems of low quality at turbine exit
  • 15. Regeneration  Preheats steam entering boiler using a feedwater heater, improving efficiency  Also deaerates the fluid and reduces large volume flow rates at turbine exit.
  • 16. A more complicated cycle…