ASTM C1041-1985(2007) Standard Practice for In-Situ Measurements of Heat Flux in Industrial Thermal Insulation Using Heat Flux Transducers《使用热通量转换器现场测定工业绝热材料的热通量》.pdf
《ASTM C1041-1985(2007) Standard Practice for In-Situ Measurements of Heat Flux in Industrial Thermal Insulation Using Heat Flux Transducers《使用热通量转换器现场测定工业绝热材料的热通量》.pdf》由会员分享,可在线阅读,更多相关《ASTM C1041-1985(2007) Standard Practice for In-Situ Measurements of Heat Flux in Industrial Thermal Insulation Using Heat Flux Transducers《使用热通量转换器现场测定工业绝热材料的热通量》.pdf(6页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C 1041 85 (Reapproved 2007)Standard Practice forIn-Situ Measurements of Heat Flux in Industrial ThermalInsulation Using Heat Flux Transducers1This standard is issued under the fixed designation C 1041; the number immediately following the designation indicates the year oforiginal adopti
2、on or, in the case of revision, the year 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 covers the in-situ measurement of heat fluxthrough industri
3、al thermal insulation using a heat flux trans-ducer (HFT).1.2 This practice estimates the thermal transport propertiesof thermal insulation materials in-situ in field applicationsunder pseudo steady-state conditions. It is not intended that thispractice should be used as a substitute for more precis
4、elaboratory procedures such as Test Methods C 177, C 335, orC 518.1.3 This practice is limited by the relatively small area thatcan be covered by an HFT and by the transient effects ofenvironmental conditions.1.4 Temperature limitations shall be as specified by themanufacturer of the HFT.1.5 While a
5、ccurate values of heat flux are highly depend-entupon proper calibrations under the conditions of use, manufac-turers calibrations may be used with confidence for compara-tive work between similar materials, aging, or other conditionsof use.NOTE 1Further information may be found in the literature (1
6、-6).21.6 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 and health practices and determine the applica-bility of regulatory limitations prior to use.2. Referen
7、ced Documents2.1 ASTM Standards:3C 177 Test Method for Steady-State Heat Flux Measure-ments and Thermal 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 Transmis
8、sionProperties by Means of the Heat Flow Meter ApparatusE 220 Test Method for Calibration of Thermocouples ByComparison TechniquesE 230 Specification and Temperature-Electromotive Force(EMF) Tables for Standardized Thermocouples3. Terminology3.1 Definitions:3.1.1 heat flux transducer (HFT)a rigid or
9、 flexible trans-ducer in a durable housing comprised of a thermopile orequivalent for sensing the temperature drop across a thinthermal resistance layer which gives a voltage output propor-tional to the heat flux through the transducer.3.1.1.1 belt HFTa heat flux transducer having a belt-likeconfigu
10、ration such that the unit can be wrapped helicallyaround a section of pipe insulation (see Fig. 1).3.1.1.2 spot HFTa small heat flux transducer having around, square, rectangular or other configuration for thesensitive area (see Fig. 1).3.1.2 pseudo steady state of HFTthe criterion for pseudosteady-
11、state condition is that the average HFT reading over twoconsecutive 5-min periods does not differ by more than 2 %.Since the time constant of an HFT is typically less than or ofthe order of 1 min, using a time interval of 5 min ensures thatthe transient effects in the HFT are averaged.3.2 Symbols:Sy
12、mbols:3.2.1 Qheat flow, W (Btu/h).3.2.2 qheat flux, W/m2(Btu/hft2).3.2.3 Coverall conductance of the insulated section,W/m2K (Btu/hft2 F).3.2.4 t0process surface temperature, C(F).3.2.5 t1insulation inside surface temperature. For pur-poses of this standard, t0and t1shall be considered to beidentica
13、l.3.2.6 t2insulation outside surface temperature, C (F).3.2.7 Rareal resistance of the insulating section,m2 KWShft2FBtuD (1)3.2.8 l (k)apparent thermal conductivity, W/mK(Btuinhft2F).1This practice is under the jurisdiction of ASTM Committee C16 on ThermalInsulation and is the direct responsibility
14、 of Subcommittee C16.30 on ThermalMeasurement.Current edition approved May 1, 2007. Published June 2007. Originallyapproved in 1985. Last previous edition approved in 2001 as C 1041 85(2001).2The boldface numbers in parentheses refer to the list of references at the end ofthis standard.3For referenc
15、ed ASTM standards, visit the 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.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Co
16、nshohocken, PA 19428-2959, United States.3.2.9 Dthickness of test section, m (in.).3.2.10 r2outer radius of pipe insulation, m (in.).3.2.11 r1inner radius of pipe insulation, m (in.).3.2.12 r0outer radius of pipe, m (in.).3.2.13 VHFT output in millivolts or other chosen unit.4. Summary of Practice4.
17、1 This practice is a guide to the proper use of heat fluxtransducers for estimating the thermal transport properties ofthermal insulation in-situ in field applications under pseudosteady-state conditions.5. Significance and Use5.1 The major contribution of this practice is that it enablesa measureme
18、nt of the real-time energy loss or gain through achosen surface of an existing process insulation with minimaldisturbance to the heat flux through the insulating body.5.2 The primary use of this practice will be for the in-situestimation of thermal transport properties of industrial insula-tion such
19、 as used on pipes, tanks, ovens, and boilers, operatingunder normal process conditions.5.3 Errors attributable to heat flow measurements over asmall area or short term testing can be misleading and thispractice is intended to minimize such errors.5.4 Insulation processes with large temperature diffe
20、rencesacross the insulation are best suited to HFT measurementsbecause modest changes in ambient conditions have butminimal effects on HFT output.5.5 While it would be ideal for the HFT and attachmentsystem to have zero thermal resistance, this factor is insignifi-cant to the measured result if kept
21、 to 5 % or less of theresistance of the insulating section being tested.6. Apparatus6.1 Heat Flux Transducer, as described in 3.1.1.6.2 Voltmeter/RecorderA voltage-measuring recordinginstrument accurate to within 0.5 % of the lowest HFT outputanticipated during the test. An integrating voltmeter is
22、evenmore appropriate for reading the output of the HFT.6.3 Temperature SensorA thermocouple or other deviceof a type suitable for the temperatures being measured.6.3.1 For measuring the temperature of an insulated surface,such as a pipe under insulation, a 1.5-mm diameter or smaller,flexible ungroun
23、ded thermocouple probe 500 mm long isrecommended.6.3.2 For measuring the temperature of surfaces that can beeasily accessed, 24 gage or smaller, bare bead thermocouplesor equivalent shall be used.6.4 Attachment MaterialsPressure-sensitive adhesivetape, elastic bands, straps, mastic, grease, or other
24、 means maybe used to hold the HFT in place on the test surface.6.5 Thermal Contact MaterialsPatching cement, siliconegrease, heat sink grease, silicone sealant, room temperaturevulcanizing elastomer, thermally conducting epoxy, or con-formable pads may be used to provide maximum contactbetween the t
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