BS PD CEN TR 16988-2016 Estimation of uncertainty in the single burning item test《单燃烧体不确定度的估算》.pdf
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1、PD CEN/TR 16988:2016 Estimation of uncertainty in the single burning item test BSI Standards Publication WB11885_BSI_StandardCovs_2013_AW.indd 1 15/05/2013 15:06PD CEN/TR 16988:2016 PUBLISHED DOCUMENT National foreword This Published Document is the UK implementation of CEN/TR 16988:2016. The UK par
2、ticipation in its preparation was entrusted to Technical Committee FSH/21, Reaction to fire tests. A list of organizations represented on this committee can be obtained on request to its secretary. This publication does not purport to include all the necessary provisions of a contract. Users are res
3、ponsible for its correct application. The British Standards Institution 2016. Published by BSI Standards Limited 2016 ISBN 978 0 580 90291 8 ICS 17.200.01 Compliance with a British Standard cannot confer immunity from legal obligations. This Published Document was published under the authority of th
4、e Standards Policy and Strategy Committee on 31 August 2016. Amendments issued since publication Date Text affectedPD CEN/TR 16988:2016TECHNICAL REPORT RAPPORT TECHNIQUE TECHNISCHER BERICHT CEN/TR 16988 July 2016 ICS 17.200.01 English Version Estimation of uncertainty in the single burning item test
5、 Messunsicherheit - Thermische Beanspruchung durch einen einzelnen brennenden Gegenstand (SBI) This Technical Report was approved by CEN on 4 July 2016. It has been drawn up by the Technical Committee CEN/TC 127. CEN members are the national standards bodies of Austria, Belgium, Bulgaria, Croatia, C
6、yprus, Czech Republic, Denmark, Estonia, Finland, Former Yugoslav Republic of Macedonia, France, Germany, Greece, Hungary, Iceland, Ireland, Italy, Latvia, Lithuania, Luxembourg, Malta, Netherlands, Norway, Poland, Portugal, Romania, Slovakia, Slovenia, Spain, Sweden, Switzerland, Turkey and United
7、Kingdom. EUROPEAN COMMITTEE FOR STANDARDIZATION COMIT EUROPEN DE NORMALISATION EUROPISCHES KOMITEE FR NORMUNG CEN-CENELEC Management Centre: Avenue Marnix 17, B-1000 Brussels 2016 CEN All rights of exploitation in any form and by any means reserved worldwide for CEN national Members. Ref. No. CEN/TR
8、 16988:2016 EPD CEN/TR 16988:2016 CEN/TR 16988:2016 (E) 2 Contents Page European foreword . 4 1 Scope 5 1.1 General 5 1.2 Calculation procedure . 5 1.2.1 Introduction 5 1.2.2 Synchronization of data 5 1.2.3 Heat output 5 2 Uncertainty 9 2.1 Introduction 9 2.2 Elaboration of terms and concepts 11 2.2
9、.1 Mean and variance . 11 2.2.2 Estimation of the confidence interval for the population mean . 12 2.2.3 Sources of uncertainty 12 2.2.4 Standard uncertainties for different distributions 12 2.2.5 Combined uncertainty 15 2.2.6 Expanded uncertainty 16 2.2.7 Uncorrected bias 16 2.3 Combined standard u
10、ncertainties . 17 2.3.1 Combined standard uncertainty on sums . 17 2.3.2 Combined standard uncertainty on averages 18 2.3.3 Combined standard uncertainty of a product and a division . 19 2.3.4 Combined standard uncertainty on the heat release rate (Q) . 20 2.3.5 Combined standard uncertainty on the
11、depletion factor () 22 2.3.6 Combined standard uncertainty on the initial O 2-concentration (X D O2) . 22 2.3.7 Combined standard uncertainty on the volume flow rate (V D298) 23 2.3.8 Combined standard uncertainty on the air density ( air) 24 2.3.9 Combined standard uncertainty on specimen heat rele
12、ase rate (Q specimen) 24 2.3.10 Combined standard uncertainty on the average heat release rate (Q av) . 24 2.3.11 Combined standard uncertainty on FIGRA . 25 2.3.12 Combined standard uncertainty on THR600s . 25 2.3.13 Combined standard uncertainty on the volume flow (V(t) . 25 2.3.14 Combined standa
13、rd uncertainty on the smoke production rate (SPR) 25 2.3.15 Combined standard uncertainty on specimen smoke production rate (SPR) . 26 2.3.16 Combined standard uncertainty on the average smoke production rate (SPR av) 26 2.3.17 Combined standard uncertainty on SMOGRA 26 2.3.18 Combined standard unce
14、rtainty on TSP600s 27 2.4 Confidence interval classification parameters 27 2.5 Standard uncertainty on the different components 28 2.5.1 Uncertainty on the data acquisition (DAQ). 28 2.5.2 Transient error . 28 2.5.3 Aliasing error . 28 2.5.4 Uncertainty on data synchronicity 29 2.5.5 Uncertainty on
15、the component E and E . 30 2.5.6 Uncertainty on the component . 36 2.5.7 Uncertainty on the component p atm . 36 2.5.8 Uncertainty on the component T room . 36 2.5.9 Uncertainty on the component 38 PD CEN/TR 16988:2016 CEN/TR 16988:2016 (E) 3 2.5.10 Uncertainty on the component c . 38 2.5.11 Uncerta
16、inty on the component A and L 39 2.5.12 Uncertainty on the component q gas 40 2.5.13 Uncertainty on the component k t 40 2.5.14 Uncertainty on the component k p . 43 2.5.15 Uncertainty on the component p 44 2.5.16 Uncertainty on the component T ms . 44 2.5.17 Uncertainty on the component I 46 Annex
17、A (informative) List of symbols and abbreviations . 48 PD CEN/TR 16988:2016 CEN/TR 16988:2016 (E) 4 European foreword This document (CEN/TR 16988:2016) has been prepared by Technical Committee CEN/TC 127 “Fire Safety in Buildings”, the secretariat of which is held by BSI. Attention is drawn to the p
18、ossibility that some of the elements of this document may be the subject of patent rights. CEN shall not be held responsible for identifying any or all such patent rights. This document has been prepared under a mandate given to CEN by the European Commission and the European Free Trade Association.
19、 PD CEN/TR 16988:2016 CEN/TR 16988:2016 (E) 5 1 Scope 1.1 General The measuring technique of the SBI (single burning item) test instrument is based on the observation that, in general, the heats of combustion per unit mass of oxygen consumed are approximately the same for most fuels commonly encount
20、ered in fires (Huggett 12). The mass flow, together with the oxygen concentration in the extraction system, suffices to continuously calculate the amount of heat released. Some corrections can be introduced if CO 2, CO and/or H 2O are additionally measured. 1.2 Calculation procedure 1.2.1 Introducti
21、on The main calculation procedures for obtaining the HRR and its derived parameters are summarized here for convenience. The formulas will be used in the following clauses and especially in the clause on uncertainty. The calculations and procedures can be found in full detail in the SBI standard 1.
22、1.2.2 Synchronization of data The measured data are synchronized making use of the dips and peaks that occur in the data due to the switch from primary to main burner around t = 300 s, i.e. at the start of the thermal attack to the test specimen. Synchronization is necessary due to the delayed respo
23、nse of the oxygen and carbon dioxide analysers. The filters, long transport lines, the cooler, etc. in between the gas sample probe and the analyser unit, cause this shift in time. After synchronization, all data are shifted so that the main burner ignites by definition at time t = 300 s. 1.2.3 Heat
24、 output 1.2.3.1 Average heat release rate of the specimen (HRR 30s) A first step in the calculation of the HRR contribution of the specimen is the calculation of the global HRR. The global HRR is constituted of the HRR contribution of both the specimen and the burner and is defined as + = ) ( 105 ,
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