BS PD CEN TR 15131-2006 Thermal performance of building materials — The use of interpolating equations in relation to thermal measurement on thick specimens — Guarded hot plate and.pdf

上传人:priceawful190 文档编号:588691 上传时间:2018-12-15 格式:PDF 页数:32 大小:704.12KB
下载 相关 举报
BS PD CEN TR 15131-2006 Thermal performance of building materials — The use of interpolating equations in relation to thermal measurement on thick specimens — Guarded hot plate and.pdf_第1页
第1页 / 共32页
BS PD CEN TR 15131-2006 Thermal performance of building materials — The use of interpolating equations in relation to thermal measurement on thick specimens — Guarded hot plate and.pdf_第2页
第2页 / 共32页
BS PD CEN TR 15131-2006 Thermal performance of building materials — The use of interpolating equations in relation to thermal measurement on thick specimens — Guarded hot plate and.pdf_第3页
第3页 / 共32页
BS PD CEN TR 15131-2006 Thermal performance of building materials — The use of interpolating equations in relation to thermal measurement on thick specimens — Guarded hot plate and.pdf_第4页
第4页 / 共32页
BS PD CEN TR 15131-2006 Thermal performance of building materials — The use of interpolating equations in relation to thermal measurement on thick specimens — Guarded hot plate and.pdf_第5页
第5页 / 共32页
亲,该文档总共32页,到这儿已超出免费预览范围,如果喜欢就下载吧!
资源描述

1、PUBLISHED DOCUMENT PD CEN/TR 15131:2006 Thermal performance of building materials The use of interpolating equations in relation to thermal measurement on thick specimens Guarded hot plate and heat flow meter apparatus ICS 91.100.60; 91.120.10 PD CEN/TR 15131:2006 This Published Document was publish

2、ed under the authority of the Standards Policy and Strategy Committee on 21 February 2006. BSI 21 February 2006ISBN 0 580 47345 7 National foreword This Published Document is the official English language version of CEN/TR 15131:2006. The UK participation in its preparation was entrusted to Technica

3、l Committee B/540, Energy performance of materials, components and buildings, which has the responsibility to: A list of organizations represented on this committee can be obtained on request to its secretary. Cross-references The British Standards which implement international or European publicati

4、ons referred to in this document may be found in the BSI Catalogue under the section entitled “International Standards Correspondence Index”, or by using the “Search” facility of the BSI Electronic Catalogue or of British Standards Online. This publication does not purport to include all the necessa

5、ry provisions of a contract. Users are responsible for its correct application. Compliance with a Published Document does not of itself confer immunity from legal obligations. aid enquirers to understand the text; present to the responsible international/European committee any enquiries on the inter

6、pretation, or proposals for change, and keep UK interests informed; monitor related international and European developments and promulgate them in the UK. Summary of pages This document comprises a front cover, an inside front cover, the CEN/TR title page, pages 2 to 28, an inside back cover and a b

7、ack cover. The BSI copyright notice displayed in this document indicates when the document was last issued. Amendments issued since publication Amd. No. Date CommentsTECHNICALREPORT RAPPORTTECHNIQUE TECHNISCHERBERICHT CEN/TR15131 January2006 ICS91.100.60;91.120.10 EnglishVersion Thermalperformanceof

8、buildingmaterialsTheuseof interpolatingequationsinrelationtothermalmeasurementon thickspecimens Guardedhotplateandheatflowmeter apparatus Performancethermiquedesmatriauxpourlebtiment Utilisationdesquationsdinterpolationdanslecadredes mesuragesthermiquessurprouvettepaissePlaque chaudegardeetappareilf

9、luxmtre DieAnwendungvonInterpolationsgleichungenfr wrmetechnischeMessungenunddickenProbekrpern HeizplattenundWrmestromMessapparate ThisTechnicalReportwasapprovedbyCENon27September2005.IthasbeendrawnupbytheTechnicalCommitteeCEN/TC89. CENmembersarethenationalstandardsbodiesofAustria,Belgium,Cyprus,Cze

10、chRepublic,Denmark,Estonia,Finland,France, Germany,Greece,Hungary,Iceland,Ireland,Italy,Latvia,Lithuania,Luxembourg,Malta,Netherlands,Norway,Poland,Portugal,Romania, Slovakia,Slovenia,Spain,Sweden,SwitzerlandandUnitedKingdom. EUROPEANCOMMITTEEFORSTANDARDIZATION COMITEUROPENDENORMALISATION EUROPISCHE

11、SKOMITEEFRNORMUNG ManagementCentre:ruedeStassart,36B1050Brussels 2006CEN Allrightsofexploitationinanyformandbyanymeansreserved worldwideforCENnationalMembers. Ref.No.CEN/TR15131:2006:E2 Contents page Foreword 3 1 Scope .4 2 Normative references .4 3 Terms, definitions and symbols 4 4 Modelling thick

12、ness effect .5 5 Prediction of the thickness effect with the interpolating functions 11 Bibliography.28 CEN/TR 15131:20063 Foreword This Technical Report (CEN/TR 15131:2006) has been prepared by Technical Committee CEN/TC 89 “Thermal performance of buildings and building components”, the secretariat

13、 of which is held by SIS. CEN/TR 15131:20064 1 Scope This Technical Report supplements technical information on modelling of heat transfer in products of high and medium thermal resistance when the thickness effect may be relevant; by doing this it supplies minimum background information on the inte

14、rpolating equations to be used in the procedures described in EN 12939 to test thick products of high and medium thermal resistance. All testing procedures to evaluate the thermal performance of thick specimens require utilities, which are essentially based on interpolating functions containing a nu

15、mber of material parameters and testing conditions. Interpolating functions and material parameters are not the same for all materials. Essential phenomena and common interpolating functions are presented in Clause 4, which is followed by separate equations for each material family. This Technical R

16、eport also gives diagrams derived from the above interpolating equations to assess the relevance of the thickness effect for some insulating materials. 2 Normative references The following referenced documents are indispensable for the application of this Technical Report. For dated references, only

17、 the edition cited applies. For undated references, the latest edition of the referenced document (including any amendments) applies. EN 12939:2000, Thermal performance of building materials and products Determination of thermal resistance by means of guarded hot plate and heat flow meter methods Th

18、ick products of high and medium thermal resistance EN ISO 7345:1995, Thermal insulation Physical quantities and definitions (ISO 7345:1987) EN ISO 9288:1996, Thermal insulation Heat transfer by radiation Physical quantities and definitions (ISO 9288:1989) 3 Terms, definitions and symbols For the pur

19、poses of this Technical Report, the terms and definitions given in EN ISO 7345:1995, EN ISO 9288:1996 and EN 12939:2000 apply. NOTE EN ISO 9288 defines spectral directional extinction, absorption and scattering coefficients and the spectral directional albedo only, while this Technical Report makes

20、use of total hemispherical coefficients, which can be obtained from the previous ones by appropriate integrations. To avoid confusion with the monochromatic directional coefficients, they are referenced here as related to the “two flux model“, see Clause 4. Symbol Quantity Unit d thickness m h surfa

21、ce coefficient of heat transfer J transfer factor W/(mK) R thermal resistance m 2 K/W T thermodynamic temperature K total hemispherical emissivity thermal conductivity W/(mK) r radiativity density kg/m 3 CEN/TR 15131:20065 Stefan-Boltzmanns constant (5,6699710 -8 ) W/(m 2 K 4 ) Celsius temperature C

22、 4 Modelling thickness effect 4.1 General The following qualitative description of heat transfer in low density homogeneous insulating materials formed the basis for the development of a model to get interpolating functions. A graph of thermal resistance versus specimen thickness for all homogeneous

23、 insulating materials has the form of that in Figure 1. The extrapolation to zero thickness, R 0 , of the straight portion (bold continuous line) depends both on material properties and testing conditions, in particular the emissivity of the surfaces bounding the specimen or product. Only the slope

24、of the straight portion of the plot of thermal resistance versus thickness is an intrinsic material property; the incremental ratio d/ R for d d is called thermal transmissivity, see EN ISO 9288. Guarded hot plate or heat flow meter apparatus basically measure a thermal resistance, R. If the specime

25、n thickness, d, is measured, then the transfer factor, J = d/R, can be calculated. The transfer factor is often referred to in technical literature as measured, equivalent or effective thermal conductivity of a specimen and, for low density insulating materials, depends not only on such material pro

26、perties as the coefficient of radiation extinction, the thermal conductivity of the gas and solid matrix and air flow permeability but also on such testing or end-use conditions as product thickness, mean test temperature, temperature difference and emissivity of the bounding surfaces. When the spec

27、imen thickness is large enough, the transfer factor becomes independent of specimen thickness and emissivity of the surfaces of the apparatus, i.e. becomes a material property called thermal transmissivity. NOTE 1 When different materials are considered, having the same thermal transmissivity, the s

28、ame coefficient of radiation extinction and the same thermal conductivity of the gas and solid matrix, the thickness d i, at which the straight portion of the plot starts, is larger for cellular plastic materials than for mineral wool. This is due to the different mechanism of the radiation extincti

29、on. Consequently for cellular plastic materials the thicknesses corresponding to the dashed portion of the plot, i.e. d d i, may more frequently than for mineral wool be larger than actual specimen thicknesses. For these reasons the procedures of this Technical Report should be differentiated by mat

30、erial families. The following equations, describing the above phenomena, are those used in EN 12939 as interpolating tools. NOTE 2 The model used assumes that all radiation beams crossing a plane in all possible directions can be grouped into those crossing the plane from its side A to the side B an

31、d those crossing the same plane from the side B to the side A, i.e. the radiation crossing the plane is reduced to a forward radiation intensity and a backward radiation intensity. This way of handling radiation is known as the “two-flux model“. To radiation heat transfer, heat transfer by conductio

32、n was coupled. The thermal resistance, R, of a flat specimen of low-density material may be expressed as: R = R 0+ d/ t(1) where R 0 is not necessarily independent of the thickness d, and t= cd+ r (2) According to EN ISO 9288 tis the thermal transmissivity, cdis the combined gaseous and solid therma

33、l conductivity and ris the radiativity. Possible expressions for the gaseous and solid conductivity, that are material- dependent, will be considered in the following subclauses. CEN/TR 15131:20066 The thickness d indicates the beginning of the straight portion of the plot of thermal resistance, R.

34、A reduction of apparatus emissivity shifts the bold line upwards. if d d The ratio d/ R is constant; the thermal transmissivity t, that is an intrinsic material property independent of experimental conditions, can be measured. In this case, the radiativity r and the gaseous and solid thermal conduct

35、ivity cd can also be defined as material properties and put t = cd + r. Nevertheless J = d/R is not yet independent of the thickness d, see dashed and dotted lines. Figure 1 Thermal resistance, R, as a function of the specimen thickness, d If T mis the mean test thermodynamic temperature, n= 5,66997

36、10 -8W/(m 2 K 4 ) the Stefan-Boltzmanns constant, the total hemispherical emissivity of the apparatus, *a mass extinction parameter, an albedo, the bulk density of the material, the following expressions are introduced: F = (1 - *) (3) h r= 4 nT m 3(4) the radiativity, r , is expressed as follows: 2

37、 * r r = h(5) and the term R 0 is expressed as follows: + = t cd 2 * t r 0 2 tanh 1 2 2 F d E Z h R (6) Z = 1 for all materials except expanded polystyrene and insulating cork boards, see 4.3, while E is a modified extinction parameter, due to coupled conduction and radiation heat transfer, expresse

38、d as: CEN/TR 15131:20067 cd t * F E = (7) It becomes zero when the absorption parameter * is zero, i.e. the extinction parameter * becomes simply the scattering parameter * . E tends to infinity when conduction becomes negligible, i.e. when cd= 0. If the specimen thickness, d, is measured, the trans

39、fer factor can be calculated using Equation (1) as follows: 1 1 0 t t R d J + = (8) 4.2 Interpolating functions for mineral wool and wood wool products 4.2.1 One layer of homogeneous mineral wool and wood wool product For mineral wool and wood wool products the parameter F that appears in Equation (

40、7) has values between 0,2 and 0,5, see 1 in the Bibliography. Consequently the majority of the specimens have thicknesses such that (E d/2) 3, i.e. tanh(E d/2) does not differ from 1 by more than 1 %. In this situation the thermal resistance R 0 , expressed by Equation (6), becomes a thermal resista

41、nce R 0independent of specimen thickness. + = t cd 2 * t r 0 1 2 2 F h R (9) Introducing two parameters A and B, the term cd , that represents the combined conduction through the gaseous phase and the solid matrix (of density s ) of the insulating material, is expressed as: + + = s cd 1 1 B B A (10)

42、 For glass wool products, B is close to 0,016 m 3 /kg and sis close to 2400 kg/m 3 . For the same products an even simpler expression is cd= A (1 + 0,0015 ); this expression underestimates the conduction in the solid matrix at low densities, but for these densities this contribution is of minor impo

43、rtance. When the density tends to zero, cdapproaches the thermal conductivity of the gaseous phase, represented in Equation (10) by the value of the parameter A. By introducing an additional parameter * r 2 h C = , and taking account of Equations (5) and (10), Equation (2) can be rewritten as in Equ

44、ation (11), see its representation in Figure 2: c B B A + + + = s T 1 1 (11) CEN/TR 15131:20068 The dashed line represents the transfer factor, J, of a layer of constant mass per area, d. Figure 2 Thermal transmissivity tand its components ) 1 ( / , s B B A A + as a function of density, , for a semi

45、-transparent material (continuous line) In the proposed model there are three material parameters that enter in the definition of the thermal transmissivity according to Equations (5) and (11), namely the parameters A and B and the mass extinction parameter * . In addition the material bulk density

46、and the mean test temperature shall be known. The definition of the thermal resistance or the transfer factor requires an additional material parameter, F (or its complement to 1, the albedo * ), and an additional testing condition, the emissivity, , of the apparatus. In principle, any material para

47、meter is temperature dependent. For mineral wool the effect of temperature on thermal resistance or transfer factor can be concentrated in the term h rappearing in the radiativity and in the parameter A. Around room temperature, the parameter A, i.e. the thermal conductivity of the air, can be expressed as a function of the Celsius temperature, , by the following expression: ) 10 282 , 1 003052 , 0 1 ( 0242396 , 0 2 6 a + = (12) To verify the proposed model, the expression within brackets in Equation (12) can be reta

展开阅读全文
相关资源
  • BS ISO IEC 29150-2011 Information technology Security techniques Signcryption《信息技术 安全技术 签密》.pdfBS ISO IEC 29150-2011 Information technology Security techniques Signcryption《信息技术 安全技术 签密》.pdf
  • BS ISO IEC 15408-1-2009 Information technology - Security techniques - Evaluation criteria for IT Security - Introduction and general model《信息技术 安全技术 IT安全评价准则 一.pdfBS ISO IEC 15408-1-2009 Information technology - Security techniques - Evaluation criteria for IT Security - Introduction and general model《信息技术 安全技术 IT安全评价准则 一.pdf
  • BS ISO 7295-1988+A1-2014 Tyre valves for aircraft Interchangeability dimensions《飞机轮胎汽门嘴 互换性尺寸》.pdfBS ISO 7295-1988+A1-2014 Tyre valves for aircraft Interchangeability dimensions《飞机轮胎汽门嘴 互换性尺寸》.pdf
  • BS ISO 15118-1-2013 Road vehicles Vehicle to grid communication interface General information and use-case definition《道路车辆 车辆到电力通讯接口 通用信息和使用案例定义》.pdfBS ISO 15118-1-2013 Road vehicles Vehicle to grid communication interface General information and use-case definition《道路车辆 车辆到电力通讯接口 通用信息和使用案例定义》.pdf
  • BS ISO 13765-2-2004 Refractory mortars - Determination of consistency using the reciprocating flow table method《耐熔灰浆 使用往复流动表法测定一致性》.pdfBS ISO 13765-2-2004 Refractory mortars - Determination of consistency using the reciprocating flow table method《耐熔灰浆 使用往复流动表法测定一致性》.pdf
  • BS ISO 10998-2008+A1-2014 Agricultural tractors Requirements for steering《农业拖拉机 操纵要求》.pdfBS ISO 10998-2008+A1-2014 Agricultural tractors Requirements for steering《农业拖拉机 操纵要求》.pdf
  • BS Z 9-1998 Space data and information transfer systems - Advanced orbiting systems - Networks and data links - Architectural specification《空间数据和信息传输系统 高级轨道系统 网络和数据链接 结构规范》.pdfBS Z 9-1998 Space data and information transfer systems - Advanced orbiting systems - Networks and data links - Architectural specification《空间数据和信息传输系统 高级轨道系统 网络和数据链接 结构规范》.pdf
  • BS Z 7-1998 Space data and information transfer systems - ASCII encoded English《空间数据和信息传输系统 ASCII 编码英语》.pdfBS Z 7-1998 Space data and information transfer systems - ASCII encoded English《空间数据和信息传输系统 ASCII 编码英语》.pdf
  • BS Z 5-1997 Space data and information transfer systems - Standard formatted data units - Control authority procedures《航天数据和信息发送系统 标准格式数据单元 控制授权程序》.pdfBS Z 5-1997 Space data and information transfer systems - Standard formatted data units - Control authority procedures《航天数据和信息发送系统 标准格式数据单元 控制授权程序》.pdf
  • BS Z 4-1997 Space data and information transfer systems - Standard formatted data units - Structure and construction rules《航天数据和信息传输系统 标准格式数据单元 结构和构造规则》.pdfBS Z 4-1997 Space data and information transfer systems - Standard formatted data units - Structure and construction rules《航天数据和信息传输系统 标准格式数据单元 结构和构造规则》.pdf
  • 猜你喜欢
  • ASTM D6906-2012a red 0625 Standard Test Method for Determination of Titanium Treatment Weight on Metal Substrates by Wavelength Dispersive X-Ray Fluorescence《用波长色散X射线荧光法测定金属基质上钛处理重.pdf ASTM D6906-2012a red 0625 Standard Test Method for Determination of Titanium Treatment Weight on Metal Substrates by Wavelength Dispersive X-Ray Fluorescence《用波长色散X射线荧光法测定金属基质上钛处理重.pdf
  • ASTM D6906-2012a(2016) 6889 Standard Test Method for Determination of Titanium Treatment Weight on Metal Substrates by Wavelength Dispersive X-Ray Fluorescence《用波长色散X射线荧光法测定金属基体上钛处.pdf ASTM D6906-2012a(2016) 6889 Standard Test Method for Determination of Titanium Treatment Weight on Metal Substrates by Wavelength Dispersive X-Ray Fluorescence《用波长色散X射线荧光法测定金属基体上钛处.pdf
  • ASTM D6907-2005(2010) 0625 Standard Practice for Sampling Soils and Contaminated Media with Hand-Operated Bucket Augers《使用手动斗式螺旋钻的土壤和被污染介质取样的标准实施规程》.pdf ASTM D6907-2005(2010) 0625 Standard Practice for Sampling Soils and Contaminated Media with Hand-Operated Bucket Augers《使用手动斗式螺旋钻的土壤和被污染介质取样的标准实施规程》.pdf
  • ASTM D6907-2005(2016) 3174 Standard Practice for Sampling Soils and Contaminated Media with Hand-Operated Bucket Augers《使用手动斗式螺旋钻的土壤和被污染介质取样的标准实施规程》.pdf ASTM D6907-2005(2016) 3174 Standard Practice for Sampling Soils and Contaminated Media with Hand-Operated Bucket Augers《使用手动斗式螺旋钻的土壤和被污染介质取样的标准实施规程》.pdf
  • ASTM D6907-2005e1 Standard Practice for Sampling Soils and Contaminated Media with Hand-Operated Bucket Augers《使用手动斗式螺旋钻的土壤和被污染介质取样的标准规程》.pdf ASTM D6907-2005e1 Standard Practice for Sampling Soils and Contaminated Media with Hand-Operated Bucket Augers《使用手动斗式螺旋钻的土壤和被污染介质取样的标准规程》.pdf
  • ASTM D6908-2006 Standard Practice for Integrity Testing of Water Filtration Membrane Systems《水过滤膜系统的完整性测试的标准实施规程》.pdf ASTM D6908-2006 Standard Practice for Integrity Testing of Water Filtration Membrane Systems《水过滤膜系统的完整性测试的标准实施规程》.pdf
  • ASTM D6908-2006(2010) 2500 Standard Practice for Integrity Testing of Water Filtration Membrane Systems《水过滤膜系统的完整性测试的标准实施规程》.pdf ASTM D6908-2006(2010) 2500 Standard Practice for Integrity Testing of Water Filtration Membrane Systems《水过滤膜系统的完整性测试的标准实施规程》.pdf
  • ASTM D6908-2006(2017) 0000 Standard Practice for Integrity Testing of Water Filtration Membrane Systems《水过滤膜系统的完整性测试的标准实施规程》.pdf ASTM D6908-2006(2017) 0000 Standard Practice for Integrity Testing of Water Filtration Membrane Systems《水过滤膜系统的完整性测试的标准实施规程》.pdf
  • ASTM D6909-2003 Standard Specification for High Temperature and Acid-Resistant Fluorocarbon Terpolymer Elastomer《碳氟三元共聚物合成橡胶耐高温和耐酸的标准规范》.pdf ASTM D6909-2003 Standard Specification for High Temperature and Acid-Resistant Fluorocarbon Terpolymer Elastomer《碳氟三元共聚物合成橡胶耐高温和耐酸的标准规范》.pdf
  • 相关搜索

    当前位置:首页 > 标准规范 > 国际标准 > BS

    copyright@ 2008-2019 麦多课文库(www.mydoc123.com)网站版权所有
    备案/许可证编号:苏ICP备17064731号-1