
【国外标准】 Standard Test Method for Measuring Compressive Properties of Thermal Insulations
本网站 发布时间:
2024-02-28
开通会员免费在线看70000余条国内标准,赠送文本下载次数,单本最低仅合13.3元!还可享标准出版进度查询、定制跟踪推送、标准查新等超多特权!  
查看详情>>

适用范围:
4.1 In providing Procedures A and B, it is recognized that different types of thermal insulation will exhibit significantly different behavior under compressive load. Data must usually be obtained from a complete load-deformation curve, and the useful working range normally corresponds to only a portion of the curve. The user is cautioned against use of the product in the range beyond which the product is permanently damaged or properties are adversely affected.4.2 Load-deformation curves provide useful data for research and development, quality control, specification acceptance or rejection, and for other special purposes. Standard loading rates shall not be used arbitrarily for all purposes; the effects of impact, creep, fatigue, and repeated cycling must be considered. All load-deformation data shall be reviewed carefully for applicability prior to acceptance for use in engineering designs differing widely in load, load application rate, and material dimensions involved.1.1 This test method covers two procedures for determining the compressive resistance of thermal insulations.1.1.1 Procedure A covers thermal insulations having an approximate straight-line portion of a load-deformation curve, with or without an identifiable yield point as shown in Figs. 1 and 2. Such behavior is typical of most rigid board or block-type insulations.FIG. 1 Procedure A—Straight Line Portion with Definite Yield PointFIG. 2 Procedure A—Straight Line Portion but no Definite Yield Point1.1.2 Procedure B covers thermal insulations that become increasingly more stiff as load is increased, as shown in Fig. 3. Such behavior is typical of fibrous batt and blanket insulations that have been compressed previously to at least the same deformation by compression packaging or mechanical softening.FIG. 3 Procedure B—Increasing Stiffness1.2 It is recognized that the classification of materials under Procedures A and B shall not hold in all cases. For example, some batt or blanket materials that have not been compression packaged will exhibit behavior more typical of Procedure A for their first loadings. Also, some higher density fibrous insulation boards that have been precompressed will exhibit load-deformation curves more typical of Procedure B. There will also be thermal insulations with load-deformation curves that follow none of the three types shown here; that is, curves with no straight-line portion, curves with compaction areas, and curves that change from negative to positive slope.1.3 This test method does not cover reflective or loose fill insulations.1.4 The values stated in inch-pound units are to be regarded as the standard. The values given in parentheses are for information only.1.5 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility of the user of this standard to establish appropriate safety, health, and environmental practices and determine the applicability of regulatory limitations prior to use.1.6 This international standard was developed in accordance with internationally recognized principles on standardization established in the Decision on Principles for the Development of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.
标准号:
ASTM C165-23
标准名称:
Standard Test Method for Measuring Compressive Properties of Thermal Insulations
英文名称:
Standard Test Method for Measuring Compressive Properties of Thermal Insulations标准状态:
Active-
发布日期:
-
实施日期:
出版语种:
- 推荐标准
- ASTM D7379/D7379M-08(2021) Standard Test Methods for Strength of Modified Bitumen Sheet Material Laps Using Cold Process Adhesive
- ASTM D7381-07(2021)e1 Standard Practice for Establishing Allowable Stresses for Round Timbers for Piles from Tests of Full-Size Material
- ASTM D7382-20 Standard Test Methods for Determination of Maximum Dry Unit Weight of Granular Soils Using a Vibrating Hammer
- ASTM D7385-21 Standard Guide for Estimating Carbon Saturation by Temperature Rise Upon Immersion
- ASTM D7387-20 Standard Test Method for Vibration Testing of Intermediate Bulk Containers (IBCs) Used for Shipping Liquid Hazardous Materials (Dangerous Goods)
- ASTM D7390-18e1 Standard Guide for Evaluating Asbestos in Dust on Surfaces by Comparison Between Two Environments
- ASTM D7391-20 Standard Test Method for Categorization and Quantification of Airborne Fungal Structures in an Inertial Impaction Sample by Optical Microscopy
- ASTM D7392-20 Standard Practice for PM Detector and Bag Leak Detector Manufacturers to Certify Conformance with Design and Performance Specifications for Cement Plants
- ASTM D7395-18(2023) Standard Test Method for Cone/Plate Viscosity at a 500 s-1 Shear Rate
- ASTM D7396-14(2020) Standard Guide for Preparation of New, Continuous Zinc-Coated (Galvanized) Steel Surfaces for Painting
- ASTM D7398-23 Standard Test Method for Boiling Range Distribution of Fatty Acid Methyl Esters (FAME) in the Boiling Range from 100 °C to 615 °C by Gas Chromatography
- ASTM D7399-18 Standard Test Method for Determination of the Amount of Polypropylene in Polypropylene/Low Density Polyethylene Mixtures Using Infrared Spectrophotometry
- ASTM D7400/D7400M-19 Standard Test Methods for Downhole Seismic Testing
- ASTM D7402-09(2017) Standard Practice for Identifying Cationic Emulsified Asphalts
- ASTM D7403-19 Standard Test Method for Determination of Residue of Emulsified Asphalt by Low Temperature Vacuum Distillation