ASME PTC 12 4-1992 Moisture Separator Reheaters《脱湿器再热装置》.pdf
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1、ASME PTC 12.4-1 992 I AN AMERICAN NATIONAL STANDARD THE AMERICAN SOCIETY OF MECHANICAL ENGINEERS United Engineering Center 345 East 47th Street New York, N.Y. 10017 Date of Issuance: May 24, 1993 This Standard will be revised when the Society approves the issuance of a new edition. There will be no
2、addenda or written interpretations of the require- ments of this Standard 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 American National Standards.
3、 The Consensus Committee that approved the code or standard was balance 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 which provides an opportunity for additiona
4、l public input from industry, academia, regulatory agen- cies, 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 connection with
5、 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 assume any such liability. Users of a code or standard are expressly advised that the determination of the validity of any such
6、 patent rights, and the risk of the infringement of such rights, is entirely their own responsibility. Participation by federal agency representative(s1 or person(s) affiliated with industry is not to be interpreted as government or industry endorsement of this code or standard. ASME accepts respons
7、ibility for only those interpretations issued in accordance with governing ASME procedures and policies which preclude the issuance of interpretations by individual vol- unteers. No part of this document may be reproduced in any form, in an electronic retrieval system or otherwise, without the prior
8、 written permission of the publisher. Copyright 0 1993 by THE AMERICAN SOCIETY OF MECHANICAL ENGINEERS All Rights Reserved Printed in U.S.A. FOREWORD (This Foreword is not part of ASME PTC 12.4-1 992.) Moisture Separator Reheaters (MSRs) were introduced to steam power cycles after the advent of comm
9、ercial nuclear power. A moisture separator, with no reheat was first added to nuclear power cycles to minimize the low pressure (LP) turbine erosion caused by wet steam prevalent in those cycles and improve turbine cycle performance. Steam reheat was added later to reduce further the quantity of moi
10、sture in the steam passing through the LP turbine and to increase further the efficiency of the LP turbine. The first MSRs were susceptible to many modes of failure. Great technological advances have occurred over the past 30 years with respect to MSR design and operation. These advances increased t
11、he reliability and enhanced the performance of the MSR which pro- vided the momentum and justification for MSR upgrades. During the 1970s and early 1980s an increasing number of utilities were involved in MSR upgrades which included replacing portions of or their entire MSRs. The ASME Board on Perfo
12、rmance Test Code was notified in June 1984 that no code existed for the testing and analysis of MSRs. PTC-6 (1982) on steam turbines treated the MSR as an integral part of a turbine generator, which it is when purchased as a package. The Board authorized the formation of a new performance test code
13、committee to develop a code for the treatment of the MSR as a separate component. A new committee was formed and first met in December 1985. Numerous drafts were developed over the next 4 years, each more detailed than the previous. Upon the comple- tion of appendices containing a set of sample calc
14、ulations and a complete uncertainty analysis, the draft was released for the industry review in July of 1990. The comment resolution process, completed in April 1991, strengthened the document. The committee was balloted and approved the code draft in July 1991. The Board on Performance Test Codes a
15、pproved the code in January 1992. This test code has been approved as an Amer- ican National Standard by the ANSI Board of Standards Review on November 24, 1992. PERSONNEL OF P,ERFORMANCE TEST CODE COMMITTEE No. 12.4 ON MOISTURE SEPARATOR REHEATERS (The following is the roster of the Committee at th
16、e time of approval of this Standard.) OFFICERS Samuel J. Korellis, Chairman W. Cary Campbell, Vice Chairman Geraldine A. Omura, Secretary COMMITTEE PERSONNEL Paul G. Albert, General Electric Co. George L. Amodeo, Virginia Power Peter Von Bockh, lngenierschule Beider Basel W. Cary Campbell, Southern
17、Company Services H. Gay Hargrove, Westinghouse Electric Corp. Edwin W. Hewitt, Condenser (d) Testing and calculational techniques; and (e) Information contained in the test report. rating and steam reheating components located between the high pressure and low pressure steam turbine. The purpose of
18、the Code is to determine the performance of the MSR and to provide guidance in the evaluation of its performance effect on the turbine cycle heat rate with regard to: (a) Moisture Separator Outlet Quality; (b) Reheater Terminal Temperature Difference (c) Cycle Steam pressure drop across applicable (
19、d) Excess heating steam flow. (TTD) per stage; component(s); and 1.2 SCOPE Requirements are specified by this Code for appli- cation on MSR testing in the following areas: (a) Pretest arrangements and agreements; (b) Instrumentation types and accuracies; 1.3 EXPECTED MEASUREMENT UNCERTAINTY By satis
20、fying the instrument accuracy criteria spec- ified in Section 4 and complying with the balance of procedural requirements of this Code, a test will gen- erally provide 95 percent or greater confidence that the measurement of the required performance param- eters will yield results for which the boun
21、ds of the difference between the final test results and the true value is within (b) reference values (or defining equations) for use in Table 5.1, for calculation of MSR performance; (c) frequency of observations, method of recording data, number, and duration of test runs; (d) system alignment and
22、 verification during the test; (e) determination of parameters not measured (e.g., inlet cycle steam moisture content and heating steam inlet quality); (0 test objectives; (g) method of comparing test results to perfor- mance guarantee(s), including considerations for test- ing MSRs individually or
23、simultaneously; (h) provisions for maintaining stable test condi- tions; (i) that MSR components, system piping, and inter- nal structures have been installed as required or spec- ified (j) cleanliness conditions of the MSR (e.g., exis- tence of fouling and debris); (k) identification of any known d
24、amage or defi- ciency (e.g., missing tubes, plugged tubes, and bro- ken welds); (I) number, use, installation, and location of tem- perature, pressure, and flow sensors, including redun- dant measurements of critical test parameters; (m) location and use of any station instrumentation for balance of
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