BS ISO 29903-2013 Guidance for comparison of toxic gas data between different physical fire models and scales《不同物理火灾模型和规模之间有毒气体数据的对比指南》.pdf
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1、BSI Standards PublicationBS ISO 29903:2012Guidance for comparisonof toxic gas data betweendifferent physical fire modelsand scalesBS ISO 29903:2012 BRITISH STANDARDNational forewordThis British Standard is the UK implementation of ISO 29903:2012.The UK participation in its preparation was entrusted
2、to TechnicalCommittee FSH/16, Hazards to life from fire.A list of organizations represented on this committee can beobtained on request to its secretary.This publication does not purport to include all the necessaryprovisions of a contract. Users are responsible for its correctapplication. The Briti
3、sh Standards Institution 2013. Published by BSI StandardsLimited 2013ISBN 978 0 580 74791 5ICS 13.220.01Compliance with a British Standard cannot confer immunity fromlegal obligations.This British Standard was published under the authority of theStandards Policy and Strategy Committee on 31 August 2
4、013.Amendments issued since publicationDate Text affectedBS ISO 29903:2012 ISO 2012Guidance for comparison of toxic gas data between different physical fire models and scalesLignes directrices pour la comparaison de donnes de gaz toxiques entre divers modles et chelles de feu physiquesINTERNATIONAL
5、STANDARDISO29903First edition2012-12-01Reference numberISO 29903:2012(E)BS ISO 29903:2012ISO 29903:2012(E)ii ISO 2012 All rights reservedCOPYRIGHT PROTECTED DOCUMENT ISO 2012All rights reserved. Unless otherwise specified, no part of this publication may be reproduced or utilized in any form or by a
6、ny means, electronic or mechanical, including photocopying and microfilm, without permission in writing from either ISO at the address below or ISOs member body in the country of the requester.ISO copyright officeCase postale 56 CH-1211 Geneva 20Tel. + 41 22 749 01 11Fax + 41 22 749 09 47E-mail copy
7、rightiso.orgWeb www.iso.orgPublished in SwitzerlandBS ISO 29903:2012ISO 29903:2012(E) ISO 2012 All rights reserved iiiContents PageForeword ivIntroduction v1 Scope . 12 Normative references 13 Terms and definitions . 24 Combustion conditions 34.1 General . 34.2 Thermal environment . 34.3 Ventilation
8、 . 34.4 Characteristics of test specimens 35 Toxic gas data . 45.1 Identification of toxic species . 45.2 Different expressions for toxic gas data 45.3 Significance of analysis data 66 Comparison/prediction of toxic gas data from different physical fire models . 76.1 General . 76.2 Comparison princi
9、ples . 86.3 Comparison methodology . 96.4 Prediction of data from one fire model to another .117 Documentation 12Annex A (informative) Characteristics of physical fire models 13Annex B (informative) Influence of sampling and analysis on toxic gas data .16Annex C (informative) Application examples: C
10、omparison of ISO 19700 bench-scale data with data from large-scale tests 18Bibliography .25BS ISO 29903:2012ISO 29903:2012(E)ForewordISO (the International Organization for Standardization) is a worldwide federation of national standards bodies (ISO member bodies). The work of preparing Internationa
11、l Standards is normally carried out through ISO technical committees. Each member body interested in a subject for which a technical committee has been established has the right to be represented on that committee. International organizations, governmental and non-governmental, in liaison with ISO,
12、also take part in the work. ISO collaborates closely with the International Electrotechnical Commission (IEC) on all matters of electrotechnical standardization.International Standards are drafted in accordance with the rules given in the ISO/IEC Directives, Part 2.The main task of technical committ
13、ees is to prepare International Standards. 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 least 75 % of the member bodies casting a vote.Attention is drawn to the possi
14、bility that some of the elements of this document may be the subject of patent rights. ISO shall not be held responsible for identifying any or all such patent rights.ISO 29903 was prepared by Technical Committee ISO/TC 92, Fire Safety, Subcommittee SC 3, Fire threat to people and the environment.iv
15、 ISO 2012 All rights reservedBS ISO 29903:2012ISO 29903:2012(E)IntroductionThe production of toxic gases in fires can be a significant factor in determining whether people escape from a fire or not. Estimation of the time available for escape and the time required for escape each require values of t
16、he concentrations of toxic gases along possible escape paths. Typically, the yields of the gases from burning finished products are estimated or measured prior to conducting such calculations. In some rare cases toxic species production can be calculated during modelling of the fire development. Typ
17、ically spread of the gases and their dilution with air is then simulated using equations or computational models.The yields of these gases can be measured in a real-scale laboratory test of the entire finished product (e.g. a chair) or in a bench-scale test (using a physical fire model) of a specime
18、n cut from the product or a component of the product. Since there are thousands of different combustibles, routine real-scale testing is both costly and impractical. Thus, there is a need to develop reliable methods to use physical fire models, conducted in less than real-scale, for the estimation o
19、f real-scale emissions.The yields of the gases from the real-scale test are often considered to be the accurate values for the particular test conditions. In tests involving a portion of the finished product in a physical fire model, the specimen characteristics and the combustion conditions differ
20、from those in the real-scale test. In most cases the physical fire model reproduces one part of the entire real-scale scenario, e.g. initial well ventilated conditions or later vitiated conditions. The yields of combustion products in a fire test depend on apparatus conditions such as: the fuel/air
21、equivalence ratio, whether the decomposition is flaming or non-flaming, the persistence of flaming of the sample, the temperature of the specimen and the effluents produced, the stability of the decomposition conditions, and the interaction of the apparatus with the decomposition process, with the e
22、ffluents and with the flames.It is, therefore, important to have a standardised methodology for comparing the toxic gas yields generated in tests of different scales to determine the appropriateness of using the data from individual physical fire models in fire hazard and risk assessment. It is also
23、 valuable to be able to compare the yield data from different physical fire models to determine whether or when they generate comparable results.This International Standard concerns the comparison of toxic gas data between small-scale (physical fire models) and large-scale tests and between differen
24、t small-scale tests, i.e. it coversa) the comparison of toxic gas data from fire tests of different physical scales and characteristics in terms of a methodology to identify whether the data are comparable and (provided it is comparable) how to make relevant comparisons, andb) the prediction of larg
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