AGA TOMS-2003 The Theory and Operations of Meter Shop Sonic Nozzle Proving Systems for the Natural Gas Industry《天然气工业用仪表车间音速喷嘴校正系统的原理和操作.XQ0308》.pdf
《AGA TOMS-2003 The Theory and Operations of Meter Shop Sonic Nozzle Proving Systems for the Natural Gas Industry《天然气工业用仪表车间音速喷嘴校正系统的原理和操作.XQ0308》.pdf》由会员分享,可在线阅读,更多相关《AGA TOMS-2003 The Theory and Operations of Meter Shop Sonic Nozzle Proving Systems for the Natural Gas Industry《天然气工业用仪表车间音速喷嘴校正系统的原理和操作.XQ0308》.pdf(41页珍藏版)》请在麦多课文档分享上搜索。
1、This is a sample of format to be used in other Technical Notes Engineering Technical Note Prepared by the AGA Operating Section Distribution Measurement Committee 400 N. Capitol St., N.W., 4thFloor Washington, DC 20001 U.S.A. Phone: 202-824-7000 Fax: 202-824-7082 Web site: www.aga.org The Theory and
2、 Operations of Meter Shop Sonic Nozzle Proving Systems for the Natural Gas Industry Copyright 2003 American Gas Association All Rights Reserved Catalog No. XQ0308 March 2003 This is a sample of format to be used in other Technical Notes TABLE OF CONTENTS TABLE OF CONTENTS ii DISCLAIMERS AND COPYRIGH
3、Tiv ACKNOWLEDGMENTSv ABSTRACT .vi 1. SONIC NOZZLE THEORY 1 1.1. Definition of a Sonic Nozzle Element1 1.2. Sonic Nozzle Development and the Need for Its Use 1 1.3. Sonic Nozzle Design 2 1.4. The Toroidal Sonic Nozzle Design 2 1.5. Nozzle Flow Calculations 4 2. APPLICATIONS OF SONIC FLOW NOZZLES6 2.1
4、. Calibration Methods of Sonic Flow Nozzles6 2.2. Bell Prover Calibration of Sonic Flow Nozzles .6 2.3. Various Applications for the Calibrated Sonic Nozzle 9 2.4. Sonic Nozzle Proving of Gas Meters Positive Pressure Versus Atmospheric Pressure Proving .9 2.5. The Sonic Nozzle As a Gas Meter Proving
5、 Device .10 3. THE SONIC NOZZLE PROVER FOR TESTING GAS METERS 12 3.1. The Sonic Nozzle Array.13 3.2. Measurement Instrumentation14 3.3. Prover Flow Path and Vacuum Source.15 3.4. Overall Prover Construction.16 3.5. Meter Volume Measurement17 3.6. Meter Handling and Testing Features 19 3.7. The Prove
6、r Control System 19 3.8. Human Interface with the Prover .20 3.9. Safety Features .20 4. GENERAL OPERATION OF THE SONIC NOZZLE PROVER .21 4.1. Gas Meter Proving and Testing Operations .21 4.2. Saving of Meter Test Data23 4.3. Diagnostics.23 5. MAINTENANCE AND CALIBRATION OF THE SONIC NOZZLE PROVER 2
7、5 5.1. Suggested Maintenance and Service Schedule.25 5.2. Calibration of Sensors and Instrumentation .26 iiThis is a sample of format to be used in other Technical Notes 6. RECERTIFICATION OF SONIC NOZZLE PROVERS.28 6.1. Certification of the Master Bell Prover 28 6.2. The Bell Interface Procedure28
8、6.3. Acceptance of the Bell Interface Method.30 7. COMMON TROUBLESHOOTING CONCERNS31 8. SUMMARY34 9. REFERENCES 35 iiiThis is a sample of format to be used in other Technical Notes DISCLAIMERS AND COPYRIGHT The AGA and the AGA Distribution Measurement Committee disclaim liability for any personal in
9、jury, property or other damages of any nature whatsoever, whether special, indirect, consequential or compensatory, directly or indirectly resulting from the publication, use of, or reliance on this document or whether based on information contained in or omitted from this document. All warranties,
10、expressed or implied, are disclaimed, including without limitation, any and all warranties concerning the accuracy of the information, its fitness or appropriateness for a particular purpose or use, its merchantability and its non-infringement of any third partys intellectual property rights. AGA (t
11、ogether with its members) expressly disclaims any and all responsibilities for the accuracy or completeness of the information and makes no representations or warranties regarding the informations compliance with any applicable statute, rule or regulation. In issuing and making this document availab
12、le, the AGA and the AGA Distribution Measurement Committee are not undertaking to render professional or other services for or on behalf of any person or entity. Nor are they undertaking to perform any duty owed by any person or entity to someone else. Anyone using this document is doing so at the u
13、sers own discretion and at its own risk. The user should seek the advice of a competent professional in determining the exercise of reasonable care in any given circumstances. Permission is granted to republish material herein in laws or ordinances, and in regulations, administrative orders, or simi
14、lar documents issued by public authorities. Those desiring permission for other publications should consult the Operating and Engineering Section, American Gas Association, 400 North Capitol Street, NW, 4thFloor, Washington, DC 20001, U.S.A. Copyright 2003 American Gas Association, All Rights Reserv
15、ed ivThis is a sample of format to be used in other Technical Notes ACKNOWLEDGMENTS This technical note represents work by the members of the Distribution Measurement Committee Sonic Nozzle Prover Task Group, chaired by Terry Camden, Vectren Energy. The collaboration of Gregory Germ American Meter C
16、ompany, Donald Jones Actaris US Gas, Paul Werner Heath Consultants, Harry Deutsch Measurement Systems, Phil Whittemore Dresser Measurement, and Ken Meates Halliburton, is appreciated. In addition, the following list includes those who provided information for the technical note, reviewed the drafts,
17、 offered comments and helped in the writing of this document. Their contributions are acknowledged with thanks. Though every attempt was made to include in the list everyone who contributed, we sincerely regret if any omissions have occurred. Last Name First Name Organization Cavey Lee BGE Fraser La
18、rry Measurement Canada (Retired) Higgins Alan Piedmont Natural Gas Johnson Ron KeySpan Energy Kopidlansky Russ Wisconsin Public Service Leary Brian Pacific Gas its a design that has become the international standard for critical flow measurement devices. Figure 1.1 shows the modern toroidal sonic no
19、zzle design. Please note that the majority of the nozzle dimensions are in terms of the nozzle throat diameter (d). Figure 1.1: THE TOROIDAL NOZZLE DESIGN 2This is a sample of format to be used in other Technical Notes For a given throat diameter, d, the inlet plane of the nozzle element perpendicul
20、ar to the axis of the symmetry of the throat diameter is equal to 2.5 times the throat diameter, or 2.5*d, with an allowable uncertainty of +/- 0.1d. The converging part of the sonic nozzle converges from the inlet plane to the nozzle throat diameter with a radius of curvature equal to 2 times the t
21、hroat diameter, or 2.0*d, with an allowable uncertainty of +/- 0.2d. The inlet convergent part of the nozzle actually extends through the throat and is tangent to the nozzles recovery cone, or divergent section. The nozzle divergent section, or recovery cone, forms a frustum of a cone with a half-an
22、gle between 2.5 and 6 degrees or a full cone angle between 5 and 12 degrees. The length of the recovery cone must be at least one times the throat diameter. Modern designs permit a recovery cone length between 7 times to 10 times the throat diameter, or between 7*d to 10*d, with a divergent angle be
23、tween 7 or 8 degrees. Smith and Matz originally designed their critical flow nozzle to have a recovery cone angle equal to 12-degrees. Further testing of sonic nozzle designs by the natural gas industry found that a more shallow recovery angle equal to 7 or 8 degrees actually provided better pressur
24、e recovery, meaning that the shallow nozzle design was more practical than the steeper 12-degree cone. Figure 1.2 shows the ASME/ANSI standard nozzle design, from the MFC-7M publication. Please note that a specification has been chosen for the nozzles internal surface roughness. A surface roughness
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