ANSI ASTM D2992-2012 Standard Practice for Obtaining Hydrostatic or Pressure Design Basis for Fiberglass (Glass-Fiber-Reinforced Thermosetting-Resin) Pipe and Fittings《玻璃纤维(增强玻璃纤维的.pdf
《ANSI ASTM D2992-2012 Standard Practice for Obtaining Hydrostatic or Pressure Design Basis for Fiberglass (Glass-Fiber-Reinforced Thermosetting-Resin) Pipe and Fittings《玻璃纤维(增强玻璃纤维的.pdf》由会员分享,可在线阅读,更多相关《ANSI ASTM D2992-2012 Standard Practice for Obtaining Hydrostatic or Pressure Design Basis for Fiberglass (Glass-Fiber-Reinforced Thermosetting-Resin) Pipe and Fittings《玻璃纤维(增强玻璃纤维的.pdf(11页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D2992 12 An American National StandardStandard Practice forObtaining Hydrostatic or Pressure Design Basis for“Fiberglass” (Glass-Fiber-Reinforced Thermosetting-Resin)Pipe and Fittings1This standard is issued under the fixed designation D2992; the number immediately following the designa
2、tion indicates the year oforiginal adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope*1.1 This practice establishes two pr
3、ocedures, Procedure A(cyclic) and Procedure B (static), for obtaining a hydrostaticdesign basis (HDB) or a pressure design basis (PDB) forfiberglass piping products, by evaluating strength-regressiondata derived from testing pipe or fittings, or both, of the samematerials and construction, either se
4、parately or in assemblies.Both glass-fiber-reinforced thermosetting-resin pipe (RTRP)and glass-fiber-reinforced polymer mortar pipe (RPMP) arefiberglass pipe.NOTE 1For the purposes of this standard, polymer does not includenatural polymers.1.2 This practice can be used for the HDB determination forf
5、iberglass pipe where the ratio of outside diameter to wallthickness is 10:1 or more.NOTE 2This limitation, based on thin-wall pipe design theory, servesfurther to limit the application of this practice to internal pressures which,by the hoop-stress equation, are approximately 20 % of the derivedhydr
6、ostatic design stress (HDS). For example, if HDS is 5000 psi (34 500kPa), the pipe is limited to about 1000-psig (6900-kPa) internal pressure,regardless of diameter.1.3 This practice provides a PDB for complex-shaped prod-ucts or systems where complex stress fields seriously inhibitthe use of hoop s
7、tress.1.4 Specimen end closures in the underlying test methodsmay be either restrained or free, leading to certain limitations.1.4.1 Restrained EndsSpecimens are stressed by internalpressure only in the hoop direction, and the HDB is applicablefor stresses developed only in the hoop direction.1.4.2
8、Free EndsSpecimens are stressed by internal pres-sure in both hoop and longitudinal directions, such that thehoop stress is twice as large as the longitudinal stress. Thispractice may not be applicable for evaluating stresses inducedby loadings where the longitudinal stress exceeds 50 % of theHDS.1.
9、5 The values stated in inch-pound units are to be regardedas the standard. The values in parentheses are given forinformation purposes only.NOTE 3There is no known ISO equivalent to this standard.1.6 This standard does not purport to address all of thesafety concerns, if any, associated with its use
10、. 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:2D618 Practice for Conditioning Plastics for TestingD883 Terminology Relating
11、 to PlasticsD1598 Test Method for Time-to-Failure of Plastic PipeUnder Constant Internal PressureD1599 Test Method for Resistance to Short-Time HydraulicPressure of Plastic Pipe, Tubing, and FittingsD1600 Terminology forAbbreviated Terms Relating to Plas-ticsD2143 Test Method for Cyclic Pressure Str
12、ength ofReinforced, Thermosetting Plastic PipeD3567 Practice for Determining Dimensions of “Fiberglass”(Glass-Fiber-Reinforced Thermosetting Resin) Pipe andFittingsF412 Terminology Relating to Plastic Piping SystemsF948 Test Method for Time-to-Failure of Plastic PipingSystems and Components Under Co
13、nstant Internal Pres-sure With Flow2.2 ISO Standard:3 Preferred NumbersSeries of Preferred Numbers31This practice is under the jurisdiction ofASTM Committee D20 on Plasticsandis the direct responsibility of Subcommittee D20.23 on Reinforced Plastic PipingSystems and Chemical Equipment.Current editio
14、n approved April 1, 2012. Published May 2012. Originallyapproved in 1971. Last previous edition approved in 2006 as D2992 06. DOI:10.1520/D2992-12.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandard
15、s volume information, refer to the standards Document Summary page onthe ASTM website.3Available from American National Standards Institute (ANSI), 25 W. 43rd St.,4th Floor, New York, NY 10036, http:/www.ansi.org.*A Summary of Changes section appears at the end of this standardCopyright ASTM Interna
16、tional, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States13. Terminology3.1 Definitions:3.1.1 GeneralDefinitions are in accordance with Termi-nologies D883 and F412, and abbreviations are in accordancewith Terminology D1600, unless otherwise indicated.3.1.2 closure,
17、 free-enda sealing device or mechanismfastened to the end of the test specimen so that internal pressureproduces longitudinal tensile stresses in addition to hoop andradial stresses in the test specimen.3.1.3 closure, restrained-enda sealing device or mecha-nism which relies on a rod through the tes
18、t specimen or anexternal structure to resist the end thrust produced by internalpressure, thereby limiting the stresses in (straight) specimens tothe hoop and radial directions only.3.1.4 failurethe transmission of the test fluid through thebody of the specimen in any manner, whether it be a wallfra
19、cture, localized leaking, or weeping at a distance greaterthan one diameter from the end closure.NOTE 4For this practice, specimens which have not failed may beincluded as failures under the specific conditions given in 6.3, 9.3, and12.2.3.1.5 fiberglass pipea tubular product containing glassfiber r
20、einforcement embedded in or surrounded by curedthermosetting-resin; the composite structure may containaggregate, granular or platelet fillers, thixotropic agents,pigments, or dyes; thermoplastic or thermosetting liners orcoatings may be included.3.1.6 reinforced polymer mortar pipe (RPMP)a fibergla
21、sspipe with aggregate.3.1.7 reinforced thermosetting resin pipe (RTRP)a fiber-glass pipe without aggregate.3.1.8 hoop stressthe tensile stress in the wall of the pipingproduct in the circumferential direction due to internal pres-sure; hoop stress will be calculated by the ISO equation, asfollows:S
22、5 PD 2 tr!/2tr(1)where:S = hoop stress, psi (kPa),D = average reinforced outside diameter, in. (mm),P = internal pressure, psig (kPa), andtr= minimum reinforced wall thickness, in. (mm).NOTE 5Hoop stress should only be determined on straight hollowcylindrical specimens. Product evaluation of more co
23、mplex shapes may bebased on pressure.3.1.9 hydrostatic design basis (HDB)a hoop stress devel-oped for fiberglass pipe by this practice and multiplied by aservice design factor to obtain an HDS.3.1.10 hydrostatic design pressure (HDP)the estimatedmaximum internal hydrostatic pressure that can be appl
24、iedcyclically (Procedure A) or continuously (Procedure B) to apiping component with a high degree of certainty that failure ofthe component will not occur.3.1.11 hydrostatic design stress (HDS)the estimatedmaximum tensile stress in the wall of the pipe in the hoopdirection due to internal hydrostati
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