ASME PTC PM-2010 Performance Monitoring Guidelines for Power Plants《电厂性能监控指南》.pdf
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1、ASME PTC PM-2010PerformanceMonitoring Guidelines for Power Plants(Revision of PTC PM-1993)Performance Test CodesINTENTIONALLY LEFT BLANKPerformance Monitoring Guidelines for Power Plants Performance Test Codes Date of Issuance: April 30, 2010 The next edition of this Guide is scheduled for publicati
2、on in 2015. There will be no addenda or written interpretations of the requirements of this Guide issued to this edition. ASME is the registered trademark of The American Society of Mechanical Engineers. This code or standard was developed under procedures accredited as meeting the criteria for Amer
3、ican National Standards. The Standards Committee that approved the code or standard was balanced to assure that individuals from competent and concerned interests have had an opportunity to participate. The proposed code or standard was made available for public review and comment that provides an o
4、pportunity for additional public input from industry, academia, regulatory agencies, and the public-at-large. ASME does not approve, rate, or endorse any item, construction, proprietary device, or activity. ASME does not take any position with respect to the validity of any patent rights asserted in
5、 connection with any items mentioned in this document, and does not undertake to insure anyone utilizing a standard against liability for infringement of any applicable letters patent, nor assumes any such liability. Users of a code or standard are expressly advised that determination of the validit
6、y of any such patent rights, and the risk of infringement of such rights, is entirely their own responsibility. Participation by federal agency representative(s) or person(s) affiliated with industry is not to be interpreted as government or industry endorsement of this code or standard. ASME accept
7、s responsibility for only those interpretations of this document issued in accordance with the established ASME procedures and policies, which precludes the issuance of interpretations by individuals. No part of this document may be reproduced in any form, in an electronic retrieval system or otherw
8、ise, without the prior written permission of the publisher. The American Society of Mechanical Engineers Three Park Avenue, New York, NY 10016-5990 Copyright 2010 by THE AMERICAN SOCIETY OF MECHANICAL ENGINEERS All rights reserved Printed in U.S.A. iii CONTENTS Foreword vii Committee Roster . viii C
9、orrespondence With the PTC PM Committee. x Introduction. xi Section 1 Fundamental Concepts. 1 1-1 Object and Scope 1 1-2 Overview. 1 1-3 Definitions and Description of Terms. 17 Section 2 Program Implementation. 22 2-1 Program Planning 22 2-2 Instrumentation . 33 2-3 Performance Monitoring Implement
10、ation and Diagnostics 58 2-4 Incremental Heat Rate. 131 2-5 Performance Optimization 145 Section 3 Case Studies/Diagnostic Examples 177 3-1 Air Heater Plugging Due to Failed Sootblower 177 3-2 Boiler Example . 179 3-3 Temperature Calibrations 180 3-4 Capacity Loss Investigation Due to Fouling of Fee
11、dwater Flow Nozzle (Nuclear Plant) . 184 3-5 Unit Capacity and ID Fan Capacity Due to Air Heater Leakage 189 3-6 Loss of Extraction Flow 191 3-7 Question and Answer Session: A Nuclear Plant Diagnostic Problem 193 3-8 Application of Turbine Test Data for Problem Identification. 195 3-9 Condenser Tube
12、 Fouling Problem 196 3-10 Feedwater Partition-Plate Bypass Problem. 199 3-11 Air-Heater Pluggage Problem. 200 3-12 Deposits in High-Pressure Turbine. 201 3-13 Pulverizer Coal-Mill Fineness Problem 202 iv Figures 1-2.6-1 Typical Plant Losses 5 1-2.6-2 Typical Losses for a Gas-Turbine-Based Combined C
13、ycle Plant . 6 1-2.6-3 Heat Balance for Turbine Cycle of Typical Pressurized Water Reactor Nuclear Plant 7 1-2.6-4 Mass Flows Through Steam and Feedwater System for Typical Pressurized Water Reactor Plant 8 1-2.6-5 Energy Distribution for a Typical Pressurized Water Reactor Nuclear Plant. 8 1-2.6-6
14、Typical Boiler Losses 9 1-2.6-7 Typical Cycle Losses. 10 1-2.6-8 Typical Turbine/Generator Losses 11 1-2.6-9 Computed Variation of Unburned Carbon With Excess Air . 12 1-2.6-10 Effect of O2 and Coal Fineness on Unit Heat Rate 13 1-2.6-11 Effect of Stack Gas Temperature on Unit Heat Rate 13 1-2.6-12
15、Boiler Loss Optimization 14 2-2.3.1-1 Primary Flow Section for Welded Assembly 37 2-2.3.1-2 Inspection Port 37 2-2.4-1 Basic Pressure Terms From ASME PTC 19.2 40 2-2.4-2 General Uncertainties of Pressure-Measuring Devices From PTC 6 Report . 40 2-2.4.5-1 Effect of Pressure and Bias Errors on HP Turb
16、ine Efficiency 42 2-2.4.5-2 Effect of Pressure and Bias Errors on IP Turbine Efficiency . 43 2-2.5.1-1 TC Drift Study of Six Thermocouples Cycled 210 days to 300 days. 44 2-2.5.2-1 Drift of Ice Point Resistance of 102 RTDs Cycled 810 days 45 2-2.5.3-1 Effect of Temperature Bias and Error on HP Turbi
17、ne Efficiency. 46 2-2.5.3-2 Effect of Temperature Bias and Error on IP Turbine Efficiency 46 2-3.6.2.1-1 Performance Curves to Characterize Boiler Losses Example for a Coal-Fired Unit 63 2-3.6.2.3-1 Heat Rate Logic Tree Main Diagram. 64 2-3.6.2.3-2 Illustration of Decision Tree Concept for Investiga
18、ting Performance Parameter Deviations . 65 2-3.8.4.1-1 Pulverizer Capacity Curve 81 2-3.8.4.1-2 Arrangement for Sampling Pulverized Coal. 82 2-3.8.4.1-3 Graphical Form for Representing Distribution of Sizes of Broken Coal 83 v 2-3.8.6.1-1 Sampling Direct-Fired Pulverized Coal-Sampling Stations (Dime
19、nsions Are “Percent of Pipe Diameter”) . 89 2-3.9.4.3-1 Typical DCA and TTD Versus Internal Liquid Level 105 2-4.2-1 Input/Output Curves for the Two Typical Thermal Units 131 2-4.2-2 Input/Output Relationships for a 2 1 Combined Cycle Facility 132 2-4.2-3 Incremental Heat Rate for Steam Turbine With
20、 Sequential Valve Operation . 132 2-4.3.1-1 Optimum Load Division by Equal Incremental Heat Rate. 135 2-4.4-1 Example of Heat Rate Not Monotonically Increasing in a 2 1 Configuration 137 2-4.4-2 Incremental Curve Shape . 138 2-4.4-3 Illustration of Development of Incremental Heat Rate Information Fr
21、om Basic Plant Measurements. 139 2-4.4-4 Heat Rate and Incremental Heat Rate Versus Load Fossil Unit. 141 2-4.4-5 Heat Rate and Incremental Heat Rate Versus Load Bias Error 141 2-4.4-6 Heat Rate and Incremental Heat Rate Versus Load Combined Bias and Random Error . 142 2-4.6.1-1 Combined Cycle Heat
22、Rates Versus Ambient Temperature 144 2-4.6.2-1 Combined Cycle Input/Output Relationships. 144 2-4.6.2-2 Combined Cycle Incremental Heat Rates Versus Ambient Temperature 145 3-1.1-1 Air Heater Exit Gas Temperature 2-Week Trend. 177 3-1.3-1 Air Heater Differential Pressure 2-Week Trends . 178 3-3.2-1
23、Three RTDs: Readings Collected at Five Temperatures 181 3-3.2-2 Fit of RTD Data 182 3-3.2-3 Histogram of RTD A 182 3-3.2-4 Distribution of Errors for the Three RTDs. 182 3-3.2-5 Fits of RTDs A, B, and C in Open Circuit . 183 3-3.2-6 Fits of RTDs A, B, and C Using the CalendarVan Dusen Eq. (3-3.2) fo
24、r Calibration. 183 3-3.3-1 Fits With and Without Replicate Data 184 3-4.1.1-1 Logic Tree for Case Study: Capacity Loss Investigation. 186 3-4.1.2-1 Decision Tree for Capacity Loss Due to Suspected Fouling of the Feedwater Flow Nozzle 187 3-4.1.3-1 Power Design Heat Balance for Case Study 188 vi 3-5.
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