chapter 7 Compressor and Turbine 7-1 Classification of Compressor compressor Positive displacementTurbine reciprocatingrotarycentrifugalaxial.

Slides:



Advertisements
Similar presentations
Second Law Analysis of Open Systems Isentropic Device Efficiency
Advertisements

Chapter 1 Basic Concepts
Entropy balance for Open Systems
Fisica Generale - Alan Giambattista, Betty McCarty Richardson Copyright © 2008 – The McGraw-Hill Companies s.r.l. 1 Chapter 15: Thermodynamics The First.
Advanced Thermodynamics Note 6 Applications of Thermodynamics to Flow Processes Lecturer: 郭修伯.
Chapter 7 Entropy (Continue).
GAS POWER CYCLES Chapter 9. Introduction Two important areas of application for thermodynamics are power generation and refrigeration. Two important areas.
Entropy Cengel & Boles, Chapter 6 ME 152.
Entropy Change Property diagrams (T-s and h-s diagrams) –From the definition of the entropy, it is known that  Q=TdS during a reversible process. –Hence.
Reciprocating Compressor
Energy Conversion CHE 450/550. Ideal Gas Basics and Heat Capacities - I Ideal gas: – a theoretical gas composed of a set of non-interacting point particles.
Isentropic Efficiencies of Steady-flow Devices. A standard for efficiencies We have the Carnot cycle for cyclic devices.We have the Carnot cycle for cyclic.
7.7 The Tds Relations.
Chapter 7 Continued Entropy: A Measure of Disorder Study Guide in PowerPoint to accompany Thermodynamics: An Engineering Approach, 5th edition.
Vapor Power Cycles Thermodynamics Professor Lee Carkner Lecture 19.
Instructors Visual Aids Heat, Work and Energy. A First Course in Thermodynamics © 2002, F. A. Kulacki Chapter 6 Module 1 Slide 1 The T-dS Equations ΔS.
Further Analysis of Reversible Machines P M V Subbarao Professor Mechanical Engineering Department Innovation of A New Property of A System!!!!
Shaft Power Cycles Ideal cycles Assumptions:
For next time: Read: § 8-6 to 8-7 HW11 due Wednesday, November 12, 2003 Outline: Isentropic efficiency Air standard cycle Otto cycle Important points:
Reversible Steady-flow Work. Some questions can be answered Why do they dump all that energy out by condensing the steam in a steam power generating system.
CBE 150A – Transport Spring Semester 2014 Compressors.
EGR 334 Thermodynamics Chapter 6: Sections 11-13
Department of Mechanical Engineering ME 322 – Mechanical Engineering Thermodynamics Lecture 27 Gas Power Generation The Brayton Cycle.
Reciprocating Compressor
Evaluating entropy changes
Thermodynamics I Chapter 6 Entropy Mohsin Mohd Sies Fakulti Kejuruteraan Mekanikal, Universiti Teknologi Malaysia.
Chapter 7 ENTROPY Mehmet Kanoglu
Analysis of Thrust Equation for Ideal Turbo Jet Engine P M V Subbarao Professor Mechanical Engineering Department Understanding the Features of A True.
Chap. 3 (Sec. 3-5 to End of Chapter) Mass Flow Rate =  A V (kg/s) Volume Flow Rate = A V (m 3 /s) V = velocity.
Gas Power Cycle - Jet Propulsion Technology, A Case Study
8 CHAPTER Gas Power Cycles.
Chapter 6 Using Entropy.
ME 200 L31: Review for Examination 3 ME 200 L31: Review for Examination 3 Thu 4/10/14 Examination 3 (L22 – L30) 6:30 – 7:30 PM WTHR 200, CL50 224, PHY.
Lecture slides by Mehmet Kanoglu
Lesson 8 SECOND LAW OF THERMODYNAMICS
Review for Exam 2.
Reciprocating Compressor
Entropy of a Pure Substance Entropy is a thermodynamic property, the value of entropy depends on the state of the system. For example: given T & P, entropy,
ENGR 2213 Thermodynamics F. C. Lai School of Aerospace and Mechanical Engineering University of Oklahoma.
Chapter 9 Gas Power Cycles Study Guide in PowerPoint to accompany Thermodynamics: An Engineering Approach, 8th edition by Yunus A. Çengel and Michael.
Entropy Change Property diagrams (T-s and h-s diagrams) from the definition of the entropy, it is known that Q=TdS during a reversible.
MT 313 IC ENGINES LECTURE NO: 04 (24 Feb, 2014) Khurram Yahoo Group Address: ICE14.
ChemE 260 Entropy Balances On Open and Closed Systems
Gas dynamics of Real Combustion in Turbo Combustor P M V Subbarao Professor Mechanical Engineering Department Make Sure that design is Acceptable to Gas.
Vapor compression cycle performance. 1- Effect of evaporation pressure “ or temperature” for the following figs: R-22, 4.5% clearance, 50 L/s displacement.
Chapter 7 ENTROPY Dr. Kagan ERYURUK
SSSF Analysis of Devices Used in Power Generation - 1 P M V Subbarao Professor Mechanical Engineering Department Sources of Work for Manufacturing Industry.
6. ENTROPY. Objectives Apply the second law of thermodynamics to processes. Define a new property called entropy to quantify the second-law effects. Establish.
kr 1 Lecture Notes on Thermodynamics 2008 Chapter 7 Entropy Prof. Man Y. Kim, Autumn 2008, ⓒ Aerospace.
CHAPTER 6 Entropy. Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or display. The Clausius Inequality: This inequality.
ENGR 2213 Thermodynamics F. C. Lai School of Aerospace and Mechanical Engineering University of Oklahoma.
The Second Law of Thermodynamics Entropy and Work Chapter 7c.
AH.  Define entropy to quantify the 2nd-law effects.  The increase of entropy principle.  Calculate the entropy changes  Examine isentropic processes.
“THERMODYNAMIC AND HEAT TRANSFER” University of Rome – Tor Vergata Faculty of Engineering – Department of Industrial Engineering Accademic Year
Vapor And Combined Power Cycles Wrocław, Technical Thermodynamics - Lecture 6.
7–12 ISENTROPIC EFFICIENCIES OF STEADY-FLOW DEVICES
Unit 61: Engineering Thermodynamics
AIR COMPRESSOR Construction :. AIR COMPRESSOR Construction :
P M V Subbarao Professor Mechanical Engineering Department
Temperature - Entropy plot
An Engineering Approach
Chapter 7 Entropy: A Measure of Disorder
Process Equipment Design and Heuristics – Gas Compressors
Thermodynamics: An Engineering Approach Yunus A. Cengel, Michael A
Raffle_snaffle Recall from homework set #2, air in a closed system undergoes two processes in series. First the air is compressed from state 1 to state.
Review for Exam 2.
ChemE 260 Isentropic Efficiency
CHAPTER 6 Entropy.
Chapter 6: Entropy First law: Energy conservation concept.
Presentation transcript:

chapter 7 Compressor and Turbine

7-1 Classification of Compressor compressor Positive displacementTurbine reciprocatingrotarycentrifugalaxial flow This is the type we will study

7-2 Compressor Work The cycle of compressor p v

7-2-2 Compressor Work

If isothermal If isentropic If polytropic

p v Isothermal Polytropic Isentropic

7-3 Real compressor Clearance volume

7-3-2 The effect of Clearance volume p v

7-4 Multistage Compression with Intercooling p v p1p1 p2p2 pmpm B A

Since p 1 v 1 =p m v m

To get the minimum work Then:

7-5 Steam Turbine Steam Turbine

7-5-2 h-s Diagram h s c p1p1 p2p2 T1T1 T2T2 v X=0.8 (1)constant pressure curves (2) Isothermal curves (3) constant specific volume curves (4) constant dryness fraction curves X=1 X=0.6 X=0

7-6 Adiabatic Efficiency of Steady-Flow Devices Compressor If an adiabatic compressor:

1 2 Draw the process on a h-s diagram But if the process is an irreversible process, it will be: h s P2P2 P1P1 w 2’ w’ Therefore we define the inner efficiency of compressor as following: This equation can also be used for pump

7-6-2 Turbine If an adiabatic turbine: 2 1 h s P1P1 P2P2 w w’ Therefore we define the inner efficiency of turbine as following: 2’ This equation can also be used for nozzle If irreversible:

The end of this chapter