ASTM C755-2003 Standard Practice for Selection of Water Vapor Retarders for Thermal Insulation《热绝缘用水蒸气缓凝剂选择的标准实施规程》.pdf
《ASTM C755-2003 Standard Practice for Selection of Water Vapor Retarders for Thermal Insulation《热绝缘用水蒸气缓凝剂选择的标准实施规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM C755-2003 Standard Practice for Selection of Water Vapor Retarders for Thermal Insulation《热绝缘用水蒸气缓凝剂选择的标准实施规程》.pdf(12页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C 755 03Standard Practice forSelection of Water Vapor Retarders for Thermal Insulation1This standard is issued under the fixed designation C 755; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the year of last revisio
2、n. 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 outlines factors to be considered, describesdesign principles and procedures for water vapor retarderselection, and
3、 defines water vapor transmission values appro-priate for established criteria. It is intended for the guidance ofdesign engineers in preparing vapor retarder application speci-fications for control of water vapor flow through thermalinsulation. It covers commercial and residential building con-stru
4、ction and industrial applications in the service temperaturerange from 40 to +150F (40 to +66C). Emphasis is placedon the control of moisture penetration by choice of the mostsuitable components of the system.1.2 This standard does not purport to address all of thesafety concerns, if any, associated
5、 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. Referenced Documents2.1 ASTM Standards:2C 168 Terminology Relating to Thermal InsulationC 647 Guide to
6、Properties and Test Methods of Mastics andCoating Finishes for Thermal InsulationC 921 Specifications for Jackets for Thermal InsulationC 1136 Specification for Flexible, Low Permeance VaporRetarders for Thermal InsulationE 96 Test Methods for Water Vapor Transmission of Mate-rials3. Terminology3.1
7、For definitions of terms used in this practice, refer toTerminology C 168.4. Significance and Use4.1 Experience has shown that uncontrolled water entry intothermal insulation is the most serious factor causing impairedperformance. Water entry into an insulation system may bethrough diffusion of wate
8、r vapor, air leakage carrying watervapor, and leakage of surface water. Application specificationsfor insulation systems that operate below ambient dew-pointtemperatures should include an adequate vapor retarder sys-tem. This may be separate and distinct from the insulationsystem or may be an integr
9、al part of it. For selection ofadequate retarder systems to control vapor diffusion, it isnecessary to establish acceptable practices and standards.4.2 Vapor Retarder FunctionWater entry into an insula-tion system may be through diffusion of water vapor, airleakage carrying water vapor, and leakage
10、of surface water.The primary function of a vapor retarder is to control move-ment of diffusing water vapor into or through a permeableinsulation system. The vapor retarder system alone is seldomintended to prevent either entry of surface water or air leakage,but it may be considered as a second line
11、 of defense.4.3 Vapor Retarder PerformanceDesign choice of retard-ers will be affected by thickness of retarder materials, substrateto which applied, the number of joints, available length andwidth of sheet materials, useful life of the system, andinspection procedures. Each of these factors will ha
12、ve an effecton the retarder system performance and each must be consid-ered and evaluated by the designer.4.3.1 Although this practice properly places major emphasison selecting the best vapor retarders, it must be recognized thatfaulty installation techniques can impair vapor retarder perfor-mance.
13、 The effectiveness of installation or application tech-niques in obtaining design water vapor transmission (WVT)performance must be considered in the selection of retardermaterials.4.3.2 As an example of the evaluation required, it may beimpractical to specify a lower “as installed” value, becausedi
14、fficulties of field application often will preclude “as installed”attainment of the inherent WVT values of the vapor retardermaterials used. The designer could approach this requirementby selecting a membrane retarder material that has a lowerpermeance manufactured in 5-ft (1.5-m) width or a sheetma
15、terial 20 ft (6.1 m) wide having a higher permeance. Thesealternatives may be approximately equivalent on an installedbasis since the wider material has fewer seams and joints.4.3.3 For another example, when selecting mastic or coatingretarder materials, the choice of a product having a permeanceval
16、ue somewhat higher than the lowest obtainable might be1This practice is under the jurisdiction of ASTM Committee C16 on ThermalInsulation and is the direct responsibility of Subcommittee C16.33 on InsulationFinishes and Moisture.Current edition approved Nov. 1, 2003. Published December 2003. Origina
17、llyapproved in 1973. Last previous edition approved in 2002 as C 755 02.2For referenced 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 AS
18、TM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.justified on the basis of its easier application techniques, thusensuring “as installed” system attainment of the specifiedpermeance. The permeance of the substrate and its e
19、ffects onthe application of the retarder material must also be consideredin this case.5. Factors to Be Considered in Choosing Water VaporRetarders5.1 Water Vapor Pressure Difference is the difference in thepressure exerted on each side of an insulation system orinsulated structure that is due to the
20、 temperature and moisturecontent of the air on each side of the insulated system orstructure. This pressure difference determines the direction andmagnitude of the driving force for the diffusion of the watervapor through the insulated system or structure. In general, fora given permeable structure,
21、 the greater the water vaporpressure difference, the greater the rate of diffusion. Watervapor pressure differences for specific conditions can becalculated by numerical methods or from psychrometric tablesshowing thermodynamic properties of water at saturation.5.1.1 Fig. 1 shows the variation of de
22、w-point temperaturewith water vapor pressure.5.1.2 Fig. 2 illustrates the magnitude of water vapor pres-sure differences for four ambient air conditions and cold-sideoperating temperatures between +40 and 40F (+4.4and 40C).5.1.3 At a stated temperature the water vapor pressure isproportional to rela
23、tive humidity but at a stated relativehumidity the vapor pressure is not proportional to temperature.5.1.4 Outdoor design conditions vary greatly dependingupon geographic location and season and can have a substantialimpact on system design requirements. It is therefore necessaryto calculate the act
24、ual conditions rather than rely on estimates.As an example, consider the cold-storage application shown inTable 1. The water vapor pressure difference for the facilitylocated in Biloxi, MS is 0.96 in. Hg as compared to a 0.001 in.Hg pressure difference if the facility was located in Interna-tional F
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