ISA 75 02 01-2008 Control Valve Capacity Test Procedures《控制阀能力试验程序》.pdf
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1、 AMERICAN NATIONAL STANDARD ANSI/ISA75.02.012008 (IEC 60534-2-3 Mod) Formerly ANSI/ISA-75.02-1996 Control Valve Capacity Test Procedures Approved 21 April 2009 ANSI/ISA-75.02.01-2008 (IEC 60534-2-3 Mod) Control Valve Capacity Test Procedures ISBN: 978-1-936007-11-0 Copyright 2008 by IEC and ISA. All
2、 rights reserved. Not for resale. Printed in the United States of America. No part of this publication may be reproduced, stored in a retrieval system, or transmitted in any form or by any means (electronic mechanical, photocopying, recording, or otherwise), without the prior written permission of t
3、he Publisher. ISA 67 Alexander Drive P.O. Box 12277 Research Triangle Park, North Carolina 27709 - 3 - ANSI/ISA-75.02.01-2008 (IEC 60534-2-3 Mod) Preface This preface, as well as all footnotes and annexes, is included for information purposes and is not part of ANSI/ISA-75.02.01-2008 (IEC 60534-2-3
4、Mod). This document has been prepared as part of the service of ISA towards a goal of uniformity in the field of instrumentation. To be of real value, this document should not be static but should be subject to periodic review. Toward this end, the Society welcomes all comments and criticisms and as
5、ks that they be addressed to the Secretary, Standards and Practices Board; ISA; 67 Alexander Drive; P. O. Box 12277; Research Triangle Park, NC 27709; Telephone (919) 549-8411; Fax (919) 549-8288; E-mail: standardsisa.org. The ISA Standards and Practices Department is aware of the growing need for a
6、ttention to the metric system of units in general, and the International System of Units (SI) in particular, in the preparation of instrumentation standards. The Department is further aware of the benefits to USA users of ISA standards of incorporating suitable references to the SI (and the metric s
7、ystem) in their business and professional dealings with other countries. Toward this end, this Department will endeavor to introduce SI-acceptable metric units in all new and revised standards, recommended practices, and technical reports to the greatest extent possible. Standard for Use of the Inte
8、rnational System of Units (SI): The Modern Metric System, published by the American Society for Testing b) test section; c) throttling valves; d) flow-measuring device; e) pressure taps; and f) temperature sensor. Figure 1 Basic flow test system 4.2 Test specimen The test specimen is any valve or co
9、mbination of valve, pipe reducer, and expander or other devices attached to the valve body for which test data are required. See Annex B for additional examples of test specimens representative of typical field installations. Additional considerations apply when testing certain styles of control val
10、ves. (1) Fractional C (Cv, Kv) valves (valves where C 0.87. See Annex E for a more detailed “long form” procedure. NOTE Values of upstream pressure and pressure differential used in this procedure are those values measured at the pressure taps. 6.2.3 The following data shall be recorded using the pr
11、ovisions in Clause 4: a) Valve travel b) Upstream pressure (P1) c) Differential pressure (P) across test section pressure taps d) Volumetric flow rate (Q) e) Fluid temperature f) Barometric pressure g) Physical description of test specimen (i.e., type of valve, flow direction, etc.) h) Physical desc
12、ription of test system and test fluid i) Any deviation from the provisions of this standard 6.3 Piping geometry factor, FP, test procedure The piping geometry factor, FP, modifies the valve sizing coefficient for reducers or other devices attached to the valve body that are not in accord with the te
13、st section. It is the ratio of the installed C (Cv, Kv) with these reducers or other devices attached to the valve body to the rated C (Cv, Kv) of the - 23 - ANSI/ISA-75.02.01-2008 (IEC 60534-2-3 Mod) valve installed in a standard test section and tested under identical service conditions. This fact
14、or is obtained by replacing the valve with the desired combination of valve, reducers, and/or other devices and then conducting the flow test outlined in 6.1, treating the combination of the valve and reducers as the test specimen for the purpose of determining test section line size. For example, a
15、 100-mm (4-in.) valve between reducers in a 150-mm (6-in.) line would use pressure tap locations based on 150-mm (6-in.) nominal diameter. The data evaluation procedure is provided in 7.3. 6.4 Combination (product) of liquid pressure recovery factor FLand piping geometry factor FP, FLPtest procedure
16、 Perform the tests outlined for FLin 6.2, replacing the valve with the desired combination of valve and pipe reducers or other devices and treating the combination of valve and reducers as the test specimen. The data evaluation procedure is provided in 7.4. 6.5 Reynolds Number factor, FR, test proce
17、dure To produce values of the Reynolds Number factor, FR, nonturbulent flow conditions must be established through the test valve. Such conditions will require low pressure differentials, high viscosity fluids, small values of C (Cv, Kv) or some combination of these. With the exception of valves wit
18、h very small values of C (Cv, Kv) turbulent flow will always exist when flowing tests are performed in accordance with the procedure outlined in 5.1, and FRunder these conditions will have the value of 1.0. Determine values of FRby performing flowing tests with the valve installed in the standard te
19、st section without reducers or other devices attached. These tests shall follow the procedure for C (Cv, Kv) determination except that a) test pressure differentials may be any appropriate values provided that no vaporization of the test fluid occurs within the test valve; b) minimum upstream test p
20、ressure values shown in Table 2 may not apply if the test fluid is not fresh water at 20 C 14 C (68 F 25 F); and c) the test fluid shall be a Newtonian fluid having a viscosity considerably greater than water unless instrumentation is available for accurately measuring very low pressure differential
21、s. Perform a sufficient number of these tests at each selected valve travel by varying the pressure differential across the valve so that the entire range of conditions, from turbulent to laminar flow, is spanned. The data evaluation procedure is provided in 7.5. 6.6 Liquid critical pressure ratio f
22、actor, FF, test procedures The liquid critical pressure ratio factor, FF, is ideally a property of the fluid and its temperature. It is the ratio of the apparent vena contracta pressure at choked flow conditions to the vapor pressure of liquid at inlet temperature. The quantity of FFmay be determine
23、d experimentally, although it is not possible to evaluate FF, C and FLconcurrently. A test specimen for which FLand C (Cv, Kv) have been previously established by test in a system utilizing known fluid properties is required. The standard test section without reducers or other devices attached will
24、be used with the test specimen installed. The test procedure outlined in 6.2 for obtaining Qmaxwill be used with the fluid of interest as the test fluid. The data evaluation procedure is in 7.6. ANSI/ISA-75.02.01-2008 (IEC 60534-2-3 Mod)- 24 - PNQ= Co117 Data evaluation procedure incompressible flui
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