BS ISO 7278-4-1999 Liquid hydrocarbons - Dynamic measurement - Proving systems for volumetric meters - Guide for operators of pipe provers《液态烃 动态测量 容积式流量计校验系统 管道校验仪操作者指南》.pdf
《BS ISO 7278-4-1999 Liquid hydrocarbons - Dynamic measurement - Proving systems for volumetric meters - Guide for operators of pipe provers《液态烃 动态测量 容积式流量计校验系统 管道校验仪操作者指南》.pdf》由会员分享,可在线阅读,更多相关《BS ISO 7278-4-1999 Liquid hydrocarbons - Dynamic measurement - Proving systems for volumetric meters - Guide for operators of pipe provers《液态烃 动态测量 容积式流量计校验系统 管道校验仪操作者指南》.pdf(34页珍藏版)》请在麦多课文档分享上搜索。
1、BRITISH STANDARD BS ISO 7278-4:1999 ISO 7278-4: 1999 Liquid hydrocarbons Dynamic measurement Proving systems for Volumetric meters Part 4: Guide for operators of pipe provers ICS 75.180.30BSISO7278-4:1999 This British Standard, having been prepared under the directionof the Sector Committeefor Mater
2、ials and Chemicals, was published underthe authority of the Standards Committee and comesinto effect on 15August1999 BSI 03-2000 ISBN 0 580 32797 3 National foreword This British Standard reproduces verbatim ISO7278-4:1999 and implements it as the UK national standard. The UK participation in its pr
3、eparation was entrusted by Technical Committee PTI/12, Petroleum measurement and sampling, to Subcommittee PTI/12/1, Static and dynamic measurement, which has the responsibility to: aid enquirers to understand the text; present to the responsible international/European committee any enquiries on the
4、 interpretation, or proposals for change, and keep the UK interests informed; monitor related international and European developments and promulgate them in the UK. A list of organizations represented on this subcommittee can be obtained on request to its secretary. Cross-references The British Stan
5、dards which implement international or European publications referred to in this document may be found in the BSI Standards Catalogue under the section entitled “International Standards Correspondence Index”, or by using the “Find” facility of the BSI Standards Electronic Catalogue. A British Standa
6、rd does not purport to include all the necessary provisions of a contract. Users of British Standards are responsible for their correct application. Compliance with a British Standard does not of itself confer immunity from legal obligations. Summary of pages This document comprises a front cover, a
7、n inside front cover, pagesi andii, theISO title page, pagesii toiv, pages1 to25 and a back cover. This standard has been updated (see copyright date) and may have had amendments incorporated. This will be indicated in the amendment table on the inside front cover. Amendments issued since publicatio
8、n Amd. No. Date CommentsBSISO7278-4:1999 BSI 03-2000 i Contents Page National foreword Inside front cover Foreword iii Text of ISO 7278-4 1ii blankBSISO7278-4:1999 ii BSI 03-2000 Contents Page Foreword iii Introduction 1 1 Scope 1 2 Normative references 1 3 Principles 2 3.1 Ways of expressing a mete
9、rs performance 2 3.2 How meter performance varies 3 3.3 Correction factors 4 4 Meters and provers 4 4.1 Pulse-generating meters 4 4.2 Sources of error in operating meters 5 4.3 Pulse interpolators 6 4.4 Conventional pipe provers 6 4.5 Small volume pipe provers 10 4.6 Methods of installing pipe prove
10、rs 11 4.7 Sources of error in operating pipe provers 12 4.8 Prover calibration and recalibration 14 4.9 Meter installations 14 5 Safety requirements 14 5.1 General 14 5.2 Permits 14 5.3 Mechanical safety 14 5.4 Electrical safety 18 5.5 Fire precautions 19 5.6 Miscellaneous safety precautions 19 5.7
11、Records 19 6 Operating a pipe prover 19 6.1 Setting up a portable prover 19 6.2 Warming up provers 20 6.3 Periodical checks of factors affecting accuracy 20 6.4 The actual proving operation 20 6.5 Assessment of the results 21 6.6 Fault finding 21 Annex A (informative) Bibliography 25 Figure 1 Princi
12、ple of operation of pipe prover 7 Figure 2 Arrangement of a typical unidirectional prover 8 Figure 3 Arrangement of a conventional sphere type bidirectional prover 9 Figure 4 Example of a unidirectional small volume prover with internal valve 12 Figure 5 Example of a unidirectional small volume prov
13、er with external valve 13 Figure 6 A simple turbine flowmeter installation with bidirectional prover 15 Figure 7 A typical multi-stream metering installation 16 Figure 8 Example of control chart 22 Table 1 Trouble-shooting guide for pipe prover operators 23BSISO7278-4:1999 BSI 03-2000 iii Foreword I
14、SO (the International Organization for Standardization) is a worldwide federation of national standards bodies (ISO member bodies). The work of preparing International Standards is normally carried out through ISO technical committees. Each member body interested in a subject for which a technical c
15、ommittee has been established has the right to be represented on that committee. International organizations, governmental and non-governmental, in liaison with ISO, also take part in the work. ISO collaborates closely with the International Electrotechnical Commission (IEC) on all matters of electr
16、otechnical standardization. Draft International Standards adopted by the technical committees are circulated to the member bodies for voting. Publication as an International Standard requires approval by at least75% of the member bodies casting a vote. International Standard ISO7278-4 was prepared b
17、y Technical Committee ISO/TC28, Petroleum products and lubricants, Subcommittee SC2, Dynamic petroleum measurement. ISO 7278 consists of the following parts, under the general title Liquid hydrocarbons Dynamic measurement Proving systems for volumetric meters: Part 1: General principles; Part 2: Pip
18、e provers; Part 3: Pulse interpolation techniques; Part 4: Guide for operators of pipe provers; Part 5: Small volume provers. Annex A of this part of ISO7278 is for information only.iv blankBSISO7278-4:1999 BSI 03-2000 1 Introduction All measuring instruments which have to meet a standard of accurac
19、y need periodic calibration that is to say, a test or series of tests has to be performed in which readings obtained from the instrument are compared with independent measurements of higher accuracy. Petroleum meters are no exception. Nearly all those used for the purpose of selling or assessing tax
20、es, by national laws, need proving at intervals, and when there is a large amount of money at stake they are likely to be calibrated quite frequently. In the petroleum industry the term “proving” is used to describe the procedure of calibrating volume meters on crude oil and petroleum products. The
21、most usual way to prove a meter is to pass a quantity of liquid through it into an accurate device for measuring volume, known as a prover. With very small meters the proving device may be a volumetric flask or similarly shaped vessel of metal with an accurately known volume. There are, for instance
22、, standard measuring vessels which can be used to prove the meters incorporated in gasoline dispensing pumps at roadside filling stations. If the pump dial registers10,2 litres when enough gasoline has been delivered to fill a10 litre vessel, it is evident that the meter is over-reading by2%. In a l
23、arge metering installation, where a single meter can be passing thousands of litres per second, the situation is much more complicated. The measuring elements of the meters generally do not drive mechanical dials graduated in units of volume like a gasoline dispenser, but instead cause a series of e
24、lectrical pulses to be generated which are registered by electrical counters. With meters of this type the purpose of proving is to determine the relationship between the number of pulses generated/counted and the volume passed through the meter a relationship which varies with the design and size o
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