ASTM C1045-2007 Standard Practice for Calculating Thermal Transmission Properties Under Steady-State Conditions《稳态条件下热传递性能的计算用标准实施规程》.pdf
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1、Designation: C 1045 07Standard Practice forCalculating Thermal Transmission Properties Under Steady-State Conditions1This standard is issued under the fixed designation C 1045; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the ye
2、ar of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 This practice provides the user with a uniform procedurefor calculating the thermal transmission properties of
3、a materialor system from data generated by steady state, one dimensionaltest methods used to determine heat flux and surface tempera-tures. This practice is intended to eliminate the need for similarcalculation sections in Test Methods C 177, C 335, C 518,C 1033, C 1114 and C 1363 and Practices C 10
4、43 and C 1044by permitting use of these standard calculation forms byreference.1.2 The thermal transmission properties described include:thermal conductance, thermal resistance, apparent thermalconductivity, apparent thermal resistivity, surface conductance,surface resistance, and overall thermal re
5、sistance or transmit-tance.1.3 This practice provides the method for developing theapparent thermal conductivity as a function of temperaturerelationship for a specimen from data generated by standardtest methods at small or large temperature differences. Thisrelationship can be used to characterize
6、 material for compari-son to material specifications and for use in calculationprograms such as Practice C 680.1.4 The SI unit values used in this practice are consideredstandard.1.5 This practice includes a discussion of the definitions andunderlying assumptions for the calculation of thermal trans
7、-mission properties. Tests to detect deviations from theseassumptions are described. This practice also considers thecomplicating effects of uncertainties due to the measurementprocesses and material variability. See Section 7.1.6 This practice is not intended to cover all possible aspectsof thermal
8、 properties data base development. For new materi-als, the user should investigate the variations in thermalproperties seen in similar materials. The information containedin Section 7, theAppendix and the technical papers listed in theReferences section of this practice may be helpful in determin-in
9、g whether the material under study has thermal propertiesthat can be described by equations using this practice. Someexamples where this method has limited application include:(1) the onset of convection in insulation as described inReference (1);(2) a phase change of one of the insulationsystem com
10、ponents such as a blowing gas in foam; and (3) theinfluence of heat flow direction and temperature differencechanges for reflective insulations.2. Referenced Documents2.1 ASTM Standards:2C 168 Terminology Relating to Thermal InsulationC 177 Test Method for Steady-State Heat Flux Measure-ments and Th
11、ermal Transmission Properties by Means ofthe Guarded-Hot-Plate ApparatusC 335 Test Method for Steady-State Heat Transfer Proper-ties of Pipe InsulationC 518 Test Method for Steady-State Thermal TransmissionProperties by Means of the Heat Flow Meter ApparatusC 680 Practice for Estimate of the Heat Ga
12、in or Loss andthe Surface Temperatures of Insulated Flat, Cylindrical,and Spherical Systems by Use of Computer ProgramsC 1033 Test Method for Steady-State Heat Transfer Prop-erties of Pipe Insulation Installed Vertically3C 1043 Practice for Guarded-Hot-Plate Design Using Cir-cular Line-Heat SourcesC
13、 1044 Practice for Using a Guarded-Hot-Plate Apparatusor Thin-Heater Apparatus in the Single-Sided ModeC 1058 Practice for Selecting Temperatures for Evaluatingand Reporting Thermal Properties of Thermal InsulationC 1114 Test Method for Steady-State Thermal TransmissionProperties by Means of the Thi
14、n-Heater ApparatusC 1199 Test Method for Measuring the Steady-State Ther-mal Transmittance of Fenestration Systems Using Hot BoxMethodsC 1363 Test Method for Thermal Performance of BuildingMaterials and Envelope Assemblies by Means of a HotBox Apparatus1This practice is under the jurisdiction of AST
15、M Committee C16 on ThermalInsulation and is the direct responsibility of Subcommittee C16.30 on ThermalMeasurement.Current edition approved Nov. 1, 2007. Published November 2007. Originallyapproved in 1985. Last previous edition approved in 2001 as C 1045 01.2For referenced ASTM standards, visit the
16、 ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.3Withdrawn.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19
17、428-2959, United States.E 122 Practice for Calculating Sample Size to Estimate,With Specified Precision, the Average for a Characteristicof a Lot or Process3. Terminology3.1 Definitions The definitions and terminology of thispractice are intended to be consistent with Terminology C 168.However, beca
18、use exact definitions are critical to the use of thispractice, the following equations are defined here for use in thecalculations section of this practice.3.2 SymbolsThe symbols, terms and units used in thispractice are the following:A = specimen area normal to heat flux direction, m2,C = thermal c
19、onductance, W/(m2 K),hc= surface heat transfer coefficient, cold side,W/(m2 K),hh= surface heat transfer coefficient, hot side,W/(m2 K),L = thickness of a slab in heat transfer direction, m,Lp= metering area length in the axial direction, m,q = one-dimensional heat flux (time rate of heat flowthroug
20、h metering area divided by the apparatusmetering area A), W/m2,Q = time rate of one-dimensional heat flow throughthe metering area of the test apparatus, W,r = thermal resistivity, K m/K,ra= apparent thermal resistivity, K m/K,rin= inside radius of a hollow cylinder, m,rout= outside radius of a holl
21、ow cylinder, m,R = thermal resistance, m2 K/W,Rc= surface thermal resistance, cold side, m2 K/W,Rh= surface thermal resistance, hot side, m2 K/W,Ru= overall thermal resistance, m2 K/W,T = temperature, K,T1= area-weighted air temperature 75 mm or morefrom the hot side surface, K,T2= area-weighted air
22、 temperature 75 mm or morefrom the cold side surface, K,Tc= area-weighted temperature of the specimen coldsurface, K,Th= area-weighted temperature of specimen hot sur-face, K,Tin= temperature at the inner radius, K,Tm= specimen mean temperature, average of two op-posite surface temperatures, (Th+ Tc
23、)/2, K,Tout= temperature at the outer radius, K,DT = temperature difference, K,DTa-a= temperature difference, air to air, ( T1 T2), K,DTs-s= temperature difference, surface to surface,(Th Tc), K,U = thermal transmittance, W/(m2 K), andx = linear dimension in the heat flow direction, m,l = thermal co
24、nductivity, W/(m K),la= apparent thermal conductivity, W/(m K),l(T) = functional relationship between thermal conduc-tivity and temperature, W/(m K),lexp= experimental thermal conductivity, W/(m K),lm= mean thermal conductivity, averaged with respectto temperature from Tcto Th, W/(m K), (seesections
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