SlideShare a Scribd company logo
1 of 25
Steam turbine
summary
 What is the turbine?
 What is the principle of steam
  turbine?
 Types of steam turbine.
 Component of steam turbine.
 Problems in steam turbine.
What exactly is the turbine?

Turbine is an engine
that converts energy of
fluid into mechanical
energy


The steam turbine is
steam driven rotary
engine.
Principle of steam turbine:
 The steam energy is converted mechanical work
  by expansion through the turbine.
 Expansion takes place through a series of fixed
  blades(nozzles) and moving blades.
 In each row fixed blade and moving blade are
  called stage.
Steam turbine:


Steam Turbine System:
•   Widely used in CHP(combined heat and power)
    applications.
•   Oldest prime mover technology
•   Capacities: 50 kW to hundreds of MWs
•   Thermodynamic cycle is the “Rankin cycle” that uses a
    boiler
•   Most common types
     • Back pressure steam turbine
     • Extraction condensing steam turbine




                                                            5
Steam turbine:

       Back Pressure Steam Turbine
       •   Steam exits the turbine at a higher pressure that the
           atmospheric

                         HP Steam
                                                           Advantages:
                                                           -Simple configuration
                                                           -Low capital cost
                Boiler                   Turbine           -Low need of cooling water
                                                           -High total efficiency
Fuel

                                                           Disadvantages:
            Condensate                             LP
                                    Process        Steam
                                                           -Larger steam turbine




            Figure: Back pressure steam turbine
                                                                                   6
Steam turbine:

  Extraction Condensing Steam
  Turbine                                   HP Steam



• Steam obtained by
  extraction from an               Boiler                   Turbine

  intermediate stage    Fuel



• Remaining steam is           Condensate
                                                                 LP Steam

                                                       Process
  exhausted
• Relatively high
  capital cost, lower                                                       Condenser

  total efficiency


                           Figure: Extraction condensing steam turbine

                                                                                  7
steam turbine and blades
Types of steam turbine:
 There are two main types
1. Impulse steam turbine
2. Reaction steam turbine
Impulse steam turbine:
 The basic idea of an impulse turbine is that
  a jet of steam from a fixed nozzle pushes
  against the rotor blades and impels them
  forward.
 The velocity of steam is twice as fast as the
  velocity of blade.
 Pressure drops take place in the fixed blade
  (nozzle).
The single stage impulse turbine:
 The turbine consists of a single rotor to
  which impulse blades are attached.
 The steam is fed through one or several
  convergent nozzles.
 If high velocity of steam is allowed to flow
  through one row of moving blades.
 It produces a rotor speed of about 30000
  rpm which is too high for practical use.
Velocity diagram:
Cross section view:
Component of impulse steam turbine:
 Main components are
1. Casing
2. Rotor
3. Blades
4. Stop and control valve
5. Oil befell, steam befell
6. governor
7. Bearing(general and thrust bearing)
8. Gear box(epicyclic gear box)
9. Oil pumps
Construction of steam turbines




1 – steam pipeline        9 – rotor disc                     21 – bearing pedestal
2 – inlet control valve   10 – rotor                         22 – safety governor
3 – nozzle chamber        11 – journal bearing               23 – main oil pump
4 – nozzle-box            13 – thrust bearing                24 – centrifugal governor
5 – outlet                14 – generator rotor               25 – turning gear
6 – stator                15 – coupling                      29 – control stage impulse blading
7 – blade carrier         16 – labyrinth packing
8 – casing                19 – steam bleeding (extraction)
Reaction steam turbine:
 A reaction turbine utilizes a jet of
  steam that flows from a nozzle on the
  rotor.
 Actually, the steam is directed into the
  moving blades by fixed blades
  designed to expand the steam.
 The result is a small increase in
  velocity over that of the moving
  blades.
Schematic diagram:
Problems in steam turbine:
 Stress corrosion carking
 Corrosion fatigue
 Pitting
 Oil lubrication
 imbalance of the rotor can lead to
  vibration
 misalignment
 Thermal fatigue
BLADE FAILURES:
 Unknown 26%
 Stress-Corrosion Cracking 22%
 High-Cycle Fatigue 20%
 Corrosion-Fatigue Cracking 7%
 Temperature Creep Rupture 6%
 Low-Cycle Fatigue 5%
 Corrosion 4%
 Other causes 10%
Corrosion:
 Resultant damage:
 Extensive pitting of
  airfoils, shrouds, covers, blade root
  surfaces.
 Causes of failure:
 Chemical attack from corrosive
  elements in the steam provided to the
  turbine.
Creep:
 Resultant damage:
 Airfoils, shrouds, covers permanently
  deformed.
 Causes of failure:
 Deformed parts subjected to steam
  temperatures in excess of design
  limits.
Fatigue:
 Resultant damage:
 Cracks in
  airfoils, shrouds, covers, blade roots.
 Causes of failure:
 Loosing of parts (cover, tie wire, etc.)
 Exceeded part fatigue life design limit
Stress Corrosion Cracking:
 Resultant damage:
 Cracks in highly stressed areas of the
  blading.
 Causes of failure:
 caused by the combined presence of
  corrosive elements and high stresses
  in highly loaded locations.
Thank you

More Related Content

What's hot

Improvement of rankine efficinecy of steam power plants
Improvement of rankine efficinecy of steam power plantsImprovement of rankine efficinecy of steam power plants
Improvement of rankine efficinecy of steam power plantsDhilip Pugalenthi
 
Steam turbine
Steam turbineSteam turbine
Steam turbineNathan
 
Steam turbine
Steam turbineSteam turbine
Steam turbineRavi97246
 
Boiler performance (Part 1) - Equivalent evaporation - Notes
Boiler performance (Part 1) - Equivalent evaporation - NotesBoiler performance (Part 1) - Equivalent evaporation - Notes
Boiler performance (Part 1) - Equivalent evaporation - NotesAVDHESH TYAGI
 
Unit lightup synchronisation & shutdown
Unit lightup synchronisation & shutdownUnit lightup synchronisation & shutdown
Unit lightup synchronisation & shutdownNitin Mahalle
 
Steam turbine
Steam turbineSteam turbine
Steam turbinewatbN kh
 
STEAM NOZZLE AND STEAM TURBINE
STEAM NOZZLE AND STEAM TURBINESTEAM NOZZLE AND STEAM TURBINE
STEAM NOZZLE AND STEAM TURBINEDHAMMADIP KAMBLE
 
Steam turbines
Steam turbinesSteam turbines
Steam turbinesPrem Baboo
 
Turbine Governing System
Turbine Governing SystemTurbine Governing System
Turbine Governing SystemSalil Vaidya
 
660 mw supercritical boiler
660 mw supercritical boiler660 mw supercritical boiler
660 mw supercritical boilerAshvani Shukla
 
Mini project ppt on working of steam turbine and its auxiliaries
Mini project ppt on working of steam turbine and its auxiliariesMini project ppt on working of steam turbine and its auxiliaries
Mini project ppt on working of steam turbine and its auxiliariesjyotishmathi college
 
Ntpc (national thermal power corporation) sipat boiler haxxo24 i~i
Ntpc (national thermal power corporation) sipat boiler haxxo24 i~iNtpc (national thermal power corporation) sipat boiler haxxo24 i~i
Ntpc (national thermal power corporation) sipat boiler haxxo24 i~ihaxxo24
 

What's hot (20)

Improvement of rankine efficinecy of steam power plants
Improvement of rankine efficinecy of steam power plantsImprovement of rankine efficinecy of steam power plants
Improvement of rankine efficinecy of steam power plants
 
Turbine safety protection
Turbine safety protectionTurbine safety protection
Turbine safety protection
 
Steam turbine and its types
Steam turbine and its typesSteam turbine and its types
Steam turbine and its types
 
Steam turbine
Steam turbineSteam turbine
Steam turbine
 
Steam turbine
Steam turbineSteam turbine
Steam turbine
 
Boiler performance (Part 1) - Equivalent evaporation - Notes
Boiler performance (Part 1) - Equivalent evaporation - NotesBoiler performance (Part 1) - Equivalent evaporation - Notes
Boiler performance (Part 1) - Equivalent evaporation - Notes
 
Steam Turbine.pdf
Steam Turbine.pdfSteam Turbine.pdf
Steam Turbine.pdf
 
Unit lightup synchronisation & shutdown
Unit lightup synchronisation & shutdownUnit lightup synchronisation & shutdown
Unit lightup synchronisation & shutdown
 
Steam turbine
Steam turbineSteam turbine
Steam turbine
 
steam turbine.pptx
steam turbine.pptxsteam turbine.pptx
steam turbine.pptx
 
STEAM NOZZLE AND STEAM TURBINE
STEAM NOZZLE AND STEAM TURBINESTEAM NOZZLE AND STEAM TURBINE
STEAM NOZZLE AND STEAM TURBINE
 
Gas turbine cycles
Gas turbine cyclesGas turbine cycles
Gas turbine cycles
 
Steam turbines
Steam turbinesSteam turbines
Steam turbines
 
Turbine Governing System
Turbine Governing SystemTurbine Governing System
Turbine Governing System
 
660 mw supercritical boiler
660 mw supercritical boiler660 mw supercritical boiler
660 mw supercritical boiler
 
Gas turbine 1
Gas turbine  1Gas turbine  1
Gas turbine 1
 
STEAM TURBINE BASIC
STEAM TURBINE BASIC STEAM TURBINE BASIC
STEAM TURBINE BASIC
 
Mini project ppt on working of steam turbine and its auxiliaries
Mini project ppt on working of steam turbine and its auxiliariesMini project ppt on working of steam turbine and its auxiliaries
Mini project ppt on working of steam turbine and its auxiliaries
 
Ntpc (national thermal power corporation) sipat boiler haxxo24 i~i
Ntpc (national thermal power corporation) sipat boiler haxxo24 i~iNtpc (national thermal power corporation) sipat boiler haxxo24 i~i
Ntpc (national thermal power corporation) sipat boiler haxxo24 i~i
 
Super critical boiler
Super critical boilerSuper critical boiler
Super critical boiler
 

Similar to Steam turbine Working

Similar to Steam turbine Working (20)

Steamturbine
SteamturbineSteamturbine
Steamturbine
 
Steam turbine ntpc seepat bilaspur chhattisgarh
Steam turbine ntpc seepat bilaspur chhattisgarhSteam turbine ntpc seepat bilaspur chhattisgarh
Steam turbine ntpc seepat bilaspur chhattisgarh
 
Power plant engineering chapter 2
Power plant engineering chapter 2Power plant engineering chapter 2
Power plant engineering chapter 2
 
Presentation1
Presentation1Presentation1
Presentation1
 
Rankine Cycle.pptx
Rankine Cycle.pptxRankine Cycle.pptx
Rankine Cycle.pptx
 
TG_AUX_TRG_PowerPoint Presentation 3.ppt
TG_AUX_TRG_PowerPoint Presentation 3.pptTG_AUX_TRG_PowerPoint Presentation 3.ppt
TG_AUX_TRG_PowerPoint Presentation 3.ppt
 
STEAM POWER PLANT
STEAM POWER PLANTSTEAM POWER PLANT
STEAM POWER PLANT
 
Bme notes
Bme notesBme notes
Bme notes
 
Vapor_power cycles KM.pptx ..
Vapor_power cycles KM.pptx            ..Vapor_power cycles KM.pptx            ..
Vapor_power cycles KM.pptx ..
 
steam turbines
steam turbinessteam turbines
steam turbines
 
Ppt of internship at dccpp
Ppt of internship at dccppPpt of internship at dccpp
Ppt of internship at dccpp
 
Hydraulics and Pneumatic Systems HPS.pptx
Hydraulics and Pneumatic Systems HPS.pptxHydraulics and Pneumatic Systems HPS.pptx
Hydraulics and Pneumatic Systems HPS.pptx
 
training report
training reporttraining report
training report
 
SUMMER TRAINING AT NTPC DADRI GAS SECTION
SUMMER TRAINING AT NTPC DADRI GAS SECTIONSUMMER TRAINING AT NTPC DADRI GAS SECTION
SUMMER TRAINING AT NTPC DADRI GAS SECTION
 
Condensate system
Condensate systemCondensate system
Condensate system
 
Tpp summer pro rep
Tpp summer pro repTpp summer pro rep
Tpp summer pro rep
 
Gas turbine power_plant_new
Gas turbine power_plant_newGas turbine power_plant_new
Gas turbine power_plant_new
 
FAQ on Turbines Part 2
FAQ on Turbines Part 2FAQ on Turbines Part 2
FAQ on Turbines Part 2
 
Gas turbine course
Gas turbine courseGas turbine course
Gas turbine course
 
.steam turbine for mechanical engineering .ppt
.steam turbine for mechanical engineering .ppt.steam turbine for mechanical engineering .ppt
.steam turbine for mechanical engineering .ppt
 

Recently uploaded

[BuildWithAI] Introduction to Gemini.pdf
[BuildWithAI] Introduction to Gemini.pdf[BuildWithAI] Introduction to Gemini.pdf
[BuildWithAI] Introduction to Gemini.pdfSandro Moreira
 
Strategize a Smooth Tenant-to-tenant Migration and Copilot Takeoff
Strategize a Smooth Tenant-to-tenant Migration and Copilot TakeoffStrategize a Smooth Tenant-to-tenant Migration and Copilot Takeoff
Strategize a Smooth Tenant-to-tenant Migration and Copilot Takeoffsammart93
 
Six Myths about Ontologies: The Basics of Formal Ontology
Six Myths about Ontologies: The Basics of Formal OntologySix Myths about Ontologies: The Basics of Formal Ontology
Six Myths about Ontologies: The Basics of Formal Ontologyjohnbeverley2021
 
Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...
Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...
Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...Jeffrey Haguewood
 
Vector Search -An Introduction in Oracle Database 23ai.pptx
Vector Search -An Introduction in Oracle Database 23ai.pptxVector Search -An Introduction in Oracle Database 23ai.pptx
Vector Search -An Introduction in Oracle Database 23ai.pptxRemote DBA Services
 
Apidays New York 2024 - Passkeys: Developing APIs to enable passwordless auth...
Apidays New York 2024 - Passkeys: Developing APIs to enable passwordless auth...Apidays New York 2024 - Passkeys: Developing APIs to enable passwordless auth...
Apidays New York 2024 - Passkeys: Developing APIs to enable passwordless auth...apidays
 
presentation ICT roal in 21st century education
presentation ICT roal in 21st century educationpresentation ICT roal in 21st century education
presentation ICT roal in 21st century educationjfdjdjcjdnsjd
 
Platformless Horizons for Digital Adaptability
Platformless Horizons for Digital AdaptabilityPlatformless Horizons for Digital Adaptability
Platformless Horizons for Digital AdaptabilityWSO2
 
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...DianaGray10
 
Apidays New York 2024 - Accelerating FinTech Innovation by Vasa Krishnan, Fin...
Apidays New York 2024 - Accelerating FinTech Innovation by Vasa Krishnan, Fin...Apidays New York 2024 - Accelerating FinTech Innovation by Vasa Krishnan, Fin...
Apidays New York 2024 - Accelerating FinTech Innovation by Vasa Krishnan, Fin...apidays
 
Architecting Cloud Native Applications
Architecting Cloud Native ApplicationsArchitecting Cloud Native Applications
Architecting Cloud Native ApplicationsWSO2
 
AWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of TerraformAWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of TerraformAndrey Devyatkin
 
EMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWER
EMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWEREMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWER
EMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWERMadyBayot
 
Apidays New York 2024 - The Good, the Bad and the Governed by David O'Neill, ...
Apidays New York 2024 - The Good, the Bad and the Governed by David O'Neill, ...Apidays New York 2024 - The Good, the Bad and the Governed by David O'Neill, ...
Apidays New York 2024 - The Good, the Bad and the Governed by David O'Neill, ...apidays
 
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers:  A Deep Dive into Serverless Spatial Data and FMECloud Frontiers:  A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FMESafe Software
 
DBX First Quarter 2024 Investor Presentation
DBX First Quarter 2024 Investor PresentationDBX First Quarter 2024 Investor Presentation
DBX First Quarter 2024 Investor PresentationDropbox
 
Corporate and higher education May webinar.pptx
Corporate and higher education May webinar.pptxCorporate and higher education May webinar.pptx
Corporate and higher education May webinar.pptxRustici Software
 
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers:  A Deep Dive into Serverless Spatial Data and FMECloud Frontiers:  A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FMESafe Software
 
Finding Java's Hidden Performance Traps @ DevoxxUK 2024
Finding Java's Hidden Performance Traps @ DevoxxUK 2024Finding Java's Hidden Performance Traps @ DevoxxUK 2024
Finding Java's Hidden Performance Traps @ DevoxxUK 2024Victor Rentea
 

Recently uploaded (20)

[BuildWithAI] Introduction to Gemini.pdf
[BuildWithAI] Introduction to Gemini.pdf[BuildWithAI] Introduction to Gemini.pdf
[BuildWithAI] Introduction to Gemini.pdf
 
Strategize a Smooth Tenant-to-tenant Migration and Copilot Takeoff
Strategize a Smooth Tenant-to-tenant Migration and Copilot TakeoffStrategize a Smooth Tenant-to-tenant Migration and Copilot Takeoff
Strategize a Smooth Tenant-to-tenant Migration and Copilot Takeoff
 
Six Myths about Ontologies: The Basics of Formal Ontology
Six Myths about Ontologies: The Basics of Formal OntologySix Myths about Ontologies: The Basics of Formal Ontology
Six Myths about Ontologies: The Basics of Formal Ontology
 
Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...
Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...
Web Form Automation for Bonterra Impact Management (fka Social Solutions Apri...
 
Vector Search -An Introduction in Oracle Database 23ai.pptx
Vector Search -An Introduction in Oracle Database 23ai.pptxVector Search -An Introduction in Oracle Database 23ai.pptx
Vector Search -An Introduction in Oracle Database 23ai.pptx
 
Apidays New York 2024 - Passkeys: Developing APIs to enable passwordless auth...
Apidays New York 2024 - Passkeys: Developing APIs to enable passwordless auth...Apidays New York 2024 - Passkeys: Developing APIs to enable passwordless auth...
Apidays New York 2024 - Passkeys: Developing APIs to enable passwordless auth...
 
presentation ICT roal in 21st century education
presentation ICT roal in 21st century educationpresentation ICT roal in 21st century education
presentation ICT roal in 21st century education
 
Platformless Horizons for Digital Adaptability
Platformless Horizons for Digital AdaptabilityPlatformless Horizons for Digital Adaptability
Platformless Horizons for Digital Adaptability
 
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
 
Apidays New York 2024 - Accelerating FinTech Innovation by Vasa Krishnan, Fin...
Apidays New York 2024 - Accelerating FinTech Innovation by Vasa Krishnan, Fin...Apidays New York 2024 - Accelerating FinTech Innovation by Vasa Krishnan, Fin...
Apidays New York 2024 - Accelerating FinTech Innovation by Vasa Krishnan, Fin...
 
Understanding the FAA Part 107 License ..
Understanding the FAA Part 107 License ..Understanding the FAA Part 107 License ..
Understanding the FAA Part 107 License ..
 
Architecting Cloud Native Applications
Architecting Cloud Native ApplicationsArchitecting Cloud Native Applications
Architecting Cloud Native Applications
 
AWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of TerraformAWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of Terraform
 
EMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWER
EMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWEREMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWER
EMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWER
 
Apidays New York 2024 - The Good, the Bad and the Governed by David O'Neill, ...
Apidays New York 2024 - The Good, the Bad and the Governed by David O'Neill, ...Apidays New York 2024 - The Good, the Bad and the Governed by David O'Neill, ...
Apidays New York 2024 - The Good, the Bad and the Governed by David O'Neill, ...
 
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers:  A Deep Dive into Serverless Spatial Data and FMECloud Frontiers:  A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
 
DBX First Quarter 2024 Investor Presentation
DBX First Quarter 2024 Investor PresentationDBX First Quarter 2024 Investor Presentation
DBX First Quarter 2024 Investor Presentation
 
Corporate and higher education May webinar.pptx
Corporate and higher education May webinar.pptxCorporate and higher education May webinar.pptx
Corporate and higher education May webinar.pptx
 
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers:  A Deep Dive into Serverless Spatial Data and FMECloud Frontiers:  A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
 
Finding Java's Hidden Performance Traps @ DevoxxUK 2024
Finding Java's Hidden Performance Traps @ DevoxxUK 2024Finding Java's Hidden Performance Traps @ DevoxxUK 2024
Finding Java's Hidden Performance Traps @ DevoxxUK 2024
 

Steam turbine Working

  • 2. summary  What is the turbine?  What is the principle of steam turbine?  Types of steam turbine.  Component of steam turbine.  Problems in steam turbine.
  • 3. What exactly is the turbine? Turbine is an engine that converts energy of fluid into mechanical energy The steam turbine is steam driven rotary engine.
  • 4. Principle of steam turbine:  The steam energy is converted mechanical work by expansion through the turbine.  Expansion takes place through a series of fixed blades(nozzles) and moving blades.  In each row fixed blade and moving blade are called stage.
  • 5. Steam turbine: Steam Turbine System: • Widely used in CHP(combined heat and power) applications. • Oldest prime mover technology • Capacities: 50 kW to hundreds of MWs • Thermodynamic cycle is the “Rankin cycle” that uses a boiler • Most common types • Back pressure steam turbine • Extraction condensing steam turbine 5
  • 6. Steam turbine: Back Pressure Steam Turbine • Steam exits the turbine at a higher pressure that the atmospheric HP Steam Advantages: -Simple configuration -Low capital cost Boiler Turbine -Low need of cooling water -High total efficiency Fuel Disadvantages: Condensate LP Process Steam -Larger steam turbine Figure: Back pressure steam turbine 6
  • 7. Steam turbine: Extraction Condensing Steam Turbine HP Steam • Steam obtained by extraction from an Boiler Turbine intermediate stage Fuel • Remaining steam is Condensate LP Steam Process exhausted • Relatively high capital cost, lower Condenser total efficiency Figure: Extraction condensing steam turbine 7
  • 9. Types of steam turbine:  There are two main types 1. Impulse steam turbine 2. Reaction steam turbine
  • 10. Impulse steam turbine:  The basic idea of an impulse turbine is that a jet of steam from a fixed nozzle pushes against the rotor blades and impels them forward.  The velocity of steam is twice as fast as the velocity of blade.  Pressure drops take place in the fixed blade (nozzle).
  • 11. The single stage impulse turbine:  The turbine consists of a single rotor to which impulse blades are attached.  The steam is fed through one or several convergent nozzles.  If high velocity of steam is allowed to flow through one row of moving blades.  It produces a rotor speed of about 30000 rpm which is too high for practical use.
  • 14. Component of impulse steam turbine:  Main components are 1. Casing 2. Rotor 3. Blades 4. Stop and control valve 5. Oil befell, steam befell 6. governor 7. Bearing(general and thrust bearing) 8. Gear box(epicyclic gear box) 9. Oil pumps
  • 15. Construction of steam turbines 1 – steam pipeline 9 – rotor disc 21 – bearing pedestal 2 – inlet control valve 10 – rotor 22 – safety governor 3 – nozzle chamber 11 – journal bearing 23 – main oil pump 4 – nozzle-box 13 – thrust bearing 24 – centrifugal governor 5 – outlet 14 – generator rotor 25 – turning gear 6 – stator 15 – coupling 29 – control stage impulse blading 7 – blade carrier 16 – labyrinth packing 8 – casing 19 – steam bleeding (extraction)
  • 16. Reaction steam turbine:  A reaction turbine utilizes a jet of steam that flows from a nozzle on the rotor.  Actually, the steam is directed into the moving blades by fixed blades designed to expand the steam.  The result is a small increase in velocity over that of the moving blades.
  • 18. Problems in steam turbine:  Stress corrosion carking  Corrosion fatigue  Pitting  Oil lubrication  imbalance of the rotor can lead to vibration  misalignment  Thermal fatigue
  • 19. BLADE FAILURES:  Unknown 26%  Stress-Corrosion Cracking 22%  High-Cycle Fatigue 20%  Corrosion-Fatigue Cracking 7%  Temperature Creep Rupture 6%  Low-Cycle Fatigue 5%  Corrosion 4%  Other causes 10%
  • 20. Corrosion:  Resultant damage:  Extensive pitting of airfoils, shrouds, covers, blade root surfaces.  Causes of failure:  Chemical attack from corrosive elements in the steam provided to the turbine.
  • 21. Creep:  Resultant damage:  Airfoils, shrouds, covers permanently deformed.  Causes of failure:  Deformed parts subjected to steam temperatures in excess of design limits.
  • 22. Fatigue:  Resultant damage:  Cracks in airfoils, shrouds, covers, blade roots.  Causes of failure:  Loosing of parts (cover, tie wire, etc.)  Exceeded part fatigue life design limit
  • 23. Stress Corrosion Cracking:  Resultant damage:  Cracks in highly stressed areas of the blading.  Causes of failure:  caused by the combined presence of corrosive elements and high stresses in highly loaded locations.
  • 24.