IEC 61511-3-2016 Functional safety - Safety instrumented systems for the process industry sector - Part 3 Guidance for the determination of the required safety .pdf

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1、 IEC 61511-3 Edition 2.0 2016-07 REDLINE VERSION Functional safety Safety instrumented systems for the process industry sector Part 3: Guidance for the determination of the required safety integrity levels IEC 61511-3:2016-07 RLV(en) colour inside THIS PUBLICATION IS COPYRIGHT PROTECTED Copyright 20

2、16 IEC, Geneva, Switzerland All rights reserved. Unless otherwise specified, no part of this publication may be reproduced or utilized in any form or by any means, electronic or mechanical, including photocopying and microfilm, without permission in writing from either IEC or IECs member National Co

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4、2 11 3, rue de Varemb Fax: +41 22 919 03 00 CH-1211 Geneva 20 infoiec.ch Switzerland www.iec.ch About the IEC The International Electrotechnical Commission (IEC) is the leading global organization that prepares and publishes International Standards for all electrical, electronic and related technolo

5、gies. About IEC publications The technical content of IEC publications is kept under constant review by the IEC. Please make sure that you have the latest edition, a corrigenda or an amendment might have been published. IEC Catalogue - webstore.iec.ch/catalogue The stand-alone application for consul

6、ting the entire bibliographical information on IEC International Standards, Technical Specifications, Technical Reports and other documents. Available for PC, Mac OS, Android Tablets and iPad. IEC publications search - www.iec.ch/searchpub The advanced search enables to find IEC publications by a va

7、riety of criteria (reference number, text, technical committee,). It also gives information on projects, replaced and withdrawn publications. IEC Just Published - webstore.iec.ch/justpublished Stay up to date on all new IEC publications. Just Published details all new publications released. Availabl

8、e online and also once a month by email. Electropedia - www.electropedia.org The worlds leading online dictionary of electronic and electrical terms containing 20 000 terms and definitions in English and French, with equivalent terms in 15 additional languages. Also known as the International Electr

9、otechnical Vocabulary (IEV) online. IEC Glossary - std.iec.ch/glossary 65 000 electrotechnical terminology entries in English and French extracted from the Terms and Definitions clause of IEC publications issued since 2002. Some entries have been collected from earlier publications of IEC TC 37, 77,

10、 86 and CISPR. IEC Customer Service Centre - webstore.iec.ch/csc If you wish to give us your feedback on this publication or need further assistance, please contact the Customer Service Centre: csciec.ch. IEC 61511-3 Edition 2.0 2016-07 REDLINE VERSION Functional safety Safety instrumented systems f

11、or the process industry sector Part 3: Guidance for the determination of the required safety integrity levels INTERNATIONAL ELECTROTECHNICAL COMMISSION ICS 13.110; 25.040.01 ISBN 978-2-8322-3545-4 Registered trademark of the International Electrotechnical Commission Warning! Make sure that you obtai

12、ned this publication from an authorized distributor. colour inside 2 IEC 61511-3:2016 RLV IEC 2016 CONTENTS FOREWORD. 7 INTRODUCTION . 9 1 Scope 12 2 Normative references 13 3 Terms, definitions and abbreviations 14 Annex A (informative) Risk and safety integrity general guidance 15 A.1 General . 15

13、 A.2 Necessary risk reduction . 15 A.3 Role of safety instrumented systems 15 3.4 Safety integrity . A.4 Risk and safety integrity 17 A.5 Allocation of safety requirements . 18 A.6 Hazardous event, hazardous situation and harmful event . 18 A.7 Safety integrity levels 19 A.8 Selection of the method

14、for determining the required safety integrity level 19 Annex B (informative) Semi-quantitative method event tree analysis 22 B.1 General Overview . 22 B.2 Compliance with IEC 61511-1:2016 . 22 B.3 Example . 23 B.3.1 General . 23 B.3.2 Process safety target level . 24 B.3.3 Hazard analysis . 24 B.3.4

15、 Semi-quantitative risk analysis technique 25 B.3.5 Risk analysis of existing process 26 B.3.6 Events that do not meet the process safety target level . 29 B.3.7 Risk reduction using other protection layers 30 B.3.8 Risk reduction using a safety instrumented function 30 Annex C (informative) The saf

16、ety layer matrix method 34 C.1 Introduction Overview 34 C.2 Process safety target 35 C.3 Hazard analysis 36 C.4 Risk analysis technique . 36 C.5 Safety layer matrix 37 C.6 General procedure 38 Annex D (informative) Determination of the required safety integrity levels A semi- qualitative method: cal

17、ibrated risk graph . 40 D.1 Introduction Overview 40 D.2 Risk graph synthesis . 40 D.3 Calibration 41 D.4 Membership and organization of the team undertaking the SIL assessment 42 D.5 Documentation of results of SIL determination . 43 D.6 Example calibration based on typical criteria 43 D.7 Using ri

18、sk graphs where the consequences are environmental damage 46 D.8 Using risk graphs where the consequences are asset loss . 47 D.9 Determining the integrity level of instrument protection function where the consequences of failure involve more than one type of loss 47 IEC 61511-3:2016 RLV IEC 2016 3

19、Annex E (informative) Determination of the required safety integrity levels A qualitative method: risk graph . 48 E.1 General . 48 E.2 Typical implementation of instrumented functions 48 E.3 Risk graph synthesis . 49 E.4 Risk graph implementation: personnel protection . 50 E.5 Relevant issues to be

20、considered during application of risk graphs . 53 Annex F (informative) Layer of protection analysis (LOPA) . 54 F.1 Introduction Overview 54 F.2 Layer of protection analysis F.2 Impact event . 55 F.3 Severity level 55 F.4 Initiating cause 56 F.5 Initiation likelihood 57 F.6 Protection layers . 57 F

21、.7 Additional mitigation 58 F.8 Independent protection layers (IPL) . 58 F.9 Intermediate event likelihood . 59 F.10 SIF integrity level 59 F.11 Mitigated event likelihood 59 F.12 Total risk . 59 F.13 Example . 60 F.13.1 General . 60 F.13.2 Impact event and severity level 60 F.13.3 Initiating cause

22、60 F.13.4 Initiating likelihood . 60 F.13.5 Protection layers General process design . 60 F.13.6 BPCS 60 F.13.7 Alarms . 60 F.13.8 Additional mitigation . 61 F.13.9 Independent protection level layer(s) (IPL) 61 F.13.10 Intermediate event likelihood 61 F.13.11 SIS 61 F.13.12 Next SIF 61 Annex G (inf

23、ormative) Layer of protection analysis using a risk matrix 63 G.1 Overview 63 G.2 Procedure . 65 G.2.1 General . 65 G.2.2 Step 1: General Information and node definition . 65 G.2.3 Step 2: Describe hazardous event . 66 G.2.4 Step 3: Evaluate initiating event frequency . 69 G.2.5 Step 4: Determine ha

24、zardous event consequence severity and risk reduction factor 70 G.2.6 Step 5: Identify independent protection layers and risk reduction factor . 71 G.2.7 Step 6: Identify consequence mitigation systems and risk reduction factor . 72 G.2.8 Step 7: Determine CMS risk gap . 73 G.2.9 Step 8: Determine s

25、cenario risk gap 76 G.2.10 Step 9: Make recommendations when needed . 76 4 IEC 61511-3:2016 RLV IEC 2016 Annex H (informative) A qualitative approach for risk estimation any IEC National Committee interested in the subject dealt with may participate in this preparatory work. International, governmen

26、tal and non- governmental organizations liaising with the IEC also participate in this preparation. IEC collaborates closely with the International Organization for Standardization (ISO) in accordance with conditions determined by agreement between the two organizations. 2) The formal decisions or a

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28、se and are accepted by IEC National Committees in that sense. While all reasonable efforts are made to ensure that the technical content of IEC Publications is accurate, IEC cannot be held responsible for the way in which they are used or for any misinterpretation by any end user. 4) In order to pro

29、mote international uniformity, IEC National Committees undertake to apply IEC Publications transparently to the maximum extent possible in their national and regional publications. Any divergence between any IEC Publication and the corresponding national or regional publication shall be clearly indi

30、cated in the latter. 5) IEC itself does not provide any attestation of conformity. Independent certification bodies provide conformity assessment services and, in some areas, access to IEC marks of conformity. IEC is not responsible for any services carried out by independent certification bodies. 6

31、) All users should ensure that they have the latest edition of this publication. 7) No liability shall attach to IEC or its directors, employees, servants or agents including individual experts and members of its technical committees and IEC National Committees for any personal injury, property dama

32、ge or other damage of any nature whatsoever, whether direct or indirect, or for costs (including legal fees) and expenses arising out of the publication, use of, or reliance upon, this IEC Publication or any other IEC Publications. 8) Attention is drawn to the Normative references cited in this publ

33、ication. Use of the referenced publications is indispensable for the correct application of this publication. 9) Attention is drawn to the possibility that some of the elements of this IEC Publication may be the subject of patent rights. IEC shall not be held responsible for identifying any or all s

34、uch patent rights. DISCLAIMER This Redline version is not an official IEC Standard and is intended only to provide the user with an indication of what changes have been made to the previous version. Only the current version of the standard is to be considered the official document. This Redline version provides you with a quick and easy way to compare all the changes between this standard and its previous edition. A vertical bar appears in the margin wherever a change has been made. Additions are in green text, deletions are in strikethrough red text.

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