ASTM C1130-2017 Standard Practice for Calibration of Thin Heat Flux Transducers《薄热流量传感器校准的标准实施规程》.pdf
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1、Designation: C1130 17Standard Practice forCalibration of Thin Heat Flux Transducers1This standard is issued under the fixed designation C1130; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the year of last revision. A number in p
2、arentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope1.1 This practice, in conjunction with either Test MethodC177, C518, C1114,orC1363, establishes procedures for thecalibration of heat flux transducers
3、 that are dimensionally thinin comparison to their planar dimensions.1.1.1 The thickness of the heat flux transducer shall be lessthan 30 % of the narrowest planar dimension of the heat fluxtransducer.1.2 This practice describes techniques for determining thesensitivity, S, of a heat flux transducer
4、 when subjected to onedimensional heat flow normal to the planar surface or wheninstalled in a building application.1.3 This practice shall be used in conjunction with PracticeC1046 and Practice C1155 when performing in-situ measure-ments of heat flux on opaque building components. Thispractice is c
5、omparable, but not identical, to the calibrationtechniques described in ISO 9869-1.1.4 This practice is not intended to determine the sensitivityof heat flux transducers used as components of heat flow meterapparatus, as in Test Method C518, or used for in-situindustrial applications, as covered in
6、Practice C1041.1.5 The text of this standard references notes and footnoteswhich provide explanatory material. These notes and footnotes(excluding those in tables and figures) shall not be consideredas requirements of the standard.1.6 UnitsThe values stated in SI units are to be regardedas standard.
7、 The values given in parentheses are provided forinformation only and are not considered standard.1.7 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety, health, a
8、nd environmental practices and deter-mine the applicability of regulatory limitations prior to use.1.8 This international standard was developed in accor-dance with internationally recognized principles on standard-ization established in the Decision on Principles for theDevelopment of International
9、 Standards, Guides and Recom-mendations issued by the World Trade Organization TechnicalBarriers to Trade (TBT) Committee.2. Referenced Documents2.1 ASTM Standards:2C168 Terminology Relating to Thermal InsulationC177 Test Method for Steady-State Heat Flux Measure-ments and Thermal Transmission Prope
10、rties by Means ofthe Guarded-Hot-Plate ApparatusC518 Test Method for Steady-State Thermal TransmissionProperties by Means of the Heat Flow Meter ApparatusC1041 Practice for In-Situ Measurements of Heat Flux inIndustrial Thermal Insulation Using Heat Flux Transduc-ersC1044 Practice for Using a Guarde
11、d-Hot-Plate Apparatus orThin-Heater Apparatus in the Single-Sided ModeC1046 Practice for In-Situ Measurement of Heat Flux andTemperature on Building Envelope ComponentsC1114 Test Method for Steady-State Thermal TransmissionProperties by Means of the Thin-Heater ApparatusC1155 Practice for Determinin
12、g Thermal Resistance ofBuilding Envelope Components from the In-Situ DataC1363 Test Method for Thermal Performance of BuildingMaterials and Envelope Assemblies by Means of a HotBox Apparatus2.2 ISO Standards:3ISO 9869-1 Thermal insulation Building elements In-situmeasurement of thermal resistance an
13、d thermal transmit-tance Part 1: Heat flow meter method3. Terminology3.1 DefinitionsFor definitions of terms relating to thermalinsulating materials, see Terminology C168.3.2 Definitions of Terms Specific to This Standard:1This practice is under the jurisdiction of ASTM Committee C16 on ThermalInsul
14、ation and is the direct responsibility of Subcommittee C16.30 on ThermalMeasurement.Current edition approved Sept. 1, 2017. Published October 2017. Originallyapproved in 1989. Last previous edition approved in 2012 as C1130 07 (2012).DOI: 10.1520/C1130-17.2For referenced ASTM standards, visit the AS
15、TM 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.3Available from International Organization for Standardization (ISO), ISOCentral Secretariat, BIBC II, Ch
16、emin de Blandonnet 8, CP 401, 1214 Vernier,Geneva, Switzerland, http:/www.iso.org.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United StatesThis international standard was developed in accordance with internationally recognized principles on sta
17、ndardization established in the Decision on Principles for theDevelopment of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.13.2.1 maskmaterial (or materials) having the same, ornearly the same, thermal propertie
18、s and thickness surroundingthe heat flux transducer thereby promoting one-dimensionalheat flow through the heat flux transducer.3.2.2 R-squared (R2)coefficient of determination (alsoknown as “goodness of fit”) is a statistical measure of howclose the data are to the fitted line.3.2.3 sensitivitythe
19、ratio of the electrical output of the heatflux transducer to the heat flux passing through the devicewhen measured under steady-state heat flow.3.2.4 test stacka layer or a series of layers of material puttogether to comprise a test sample (for example, a roof systemcontaining a membrane, an insulat
20、ion, and a roof deck).3.3 Symbols:3.3.1 Emeasured HFT output voltage, V.3.3.2 qsteady-state heat flux, W/m2(Btu/hft2).3.3.3 Ssensitivity, V/(W/m2) (V/(Btu/hft2).3.3.4 uccombined standard uncertainty, V.3.3.5 u1standard uncertainty of the regression coefficients,V.3.3.6 u2standard uncertainty for rep
21、licate measurements,V.3.3.7 u3standard uncertainty for the measurement, V.4. Summary of Practice4.1 This practice presents three techniques for the labora-tory calibration of heat flux transducers (1)4: (1) ideallyguarded; (2) embedded; and, (3) surface mounted. Thesetechniques establish a hierarchy
22、 defined by the extent that theassumption of one-dimensional heat flow is satisfied (1).4.1.1 The ideally-guarded technique places the heat fluxtransducer (HFT) in a test stack consisting of homogeneous,thermally characterized materials that promotes one-dimensional heat flow normal to the planar di
23、mensions of theHFT. The results of this technique provide a baseline calibra-tion for the HFT.4.1.2 The embedded technique places the HFT within a teststack consisting of material layers identical, or comparable to,the building construction to be studied under application.4.1.3 The surface mounted c
24、alibration, which is the mostcomplex, places the HFT on the external surface of a test stackand incorporates environmental effects that cause lateral heatflow in the locality of the HFT.4.2 The calibration results are intended for use with PracticeC1046 to measure in-situ the heat flux through opaqu
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