ASTM G42-1996(2003) Standard Test Method for Cathodic Disbonding of Pipeline Coatings Subjected to Elevated Temperatures《在高温条件下管道覆层阴极剥离合作用的试验方法》.pdf
《ASTM G42-1996(2003) Standard Test Method for Cathodic Disbonding of Pipeline Coatings Subjected to Elevated Temperatures《在高温条件下管道覆层阴极剥离合作用的试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM G42-1996(2003) Standard Test Method for Cathodic Disbonding of Pipeline Coatings Subjected to Elevated Temperatures《在高温条件下管道覆层阴极剥离合作用的试验方法》.pdf(8页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: G 42 96 (Reapproved 2003)Standard Test Method forCathodic Disbonding of Pipeline Coatings Subjected toElevated Temperatures1This standard is issued under the fixed designation G 42; the number immediately following the designation indicates the year of originaladoption or, in the case o
2、f revision, the year of last revision.Anumber in parentheses indicates the year of last reapproval.Asuperscriptepsilon (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 This test method describes an accelerated procedure fordetermining comparative characteristics of
3、 insulating coatingsystems applied to steel pipe exterior for the purpose ofpreventing or mitigating corrosion that may occur in under-ground service where the pipe will be exposed to hightemperatures and is under cathodic protection. This test methodis intended for use with samples of coated pipe t
4、aken fromcommercial production and is applicable to such samples whenthe coating is characterized by function as an electrical barrier.1.2 This test method is intended for testing coatings sub-merged or immersed in the test solution at elevated tempera-ture. When it is impractical to submerge or imm
5、erse the testspecimen, Test Method G95may be considered where the testcell is cemented to the surface of the coated pipe specimen. Ifroom temperatures are required, see Test Methods G8.Ifaspecific test method is required with no options, see TestMethod G80.1.3 The values stated in SI units to three
6、significant deci-mals are to be regarded as the standard. The values given inparentheses are for information only.1.4 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 s
7、afety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2G8 Test Methods for Cathodic Disbonding of PipelineCoatingsG12 Test Method for Nondestructive Measurement of FilmThickness of Pipeline Coatings on SteelG80 Te
8、st Method for Specific Cathodic Disbonding ofPipeline CoatingsG95 Test Method for Cathodic Disbondment Test of Pipe-line Coatings (Attached Cell Method)3. Summary of Test Method3.1 This test method subjects the coating on the test speci-men to electrical stress in a highly conductive electrolyte. Th
9、ecoating is artificially perforated before starting the test. Theelectrical stress is produced by connecting the test specimen tothe negative terminal of a source of direct current and byconnecting an anode to the positive terminal. Electrical instru-mentation is provided for measuring the current f
10、lowing in thecell. The electrical potential is also measured and the specimenis physically examined at intervals during the test period andupon conclusion of the test.3.1.1 The cathodic stress is applied under conditions of aconstant-elevated temperature.4. Significance and Use4.1 Damage to pipe coa
11、ting is almost unavoidable duringtransportation and construction. Breaks or holidays in pipecoatings may expose the pipe to possible corrosion since, aftera pipe has been installed underground, the surrounding earthwill be moisture-bearing and will constitute an effectiveelectrolyte. Applied cathodi
12、c protection potentials may causeloosening of the coating, beginning at holiday edges. Sponta-neous holidays may also be caused by such potentials. This testmethod provides accelerated conditions for cathodic disbond-ment to occur and provides a measure of resistance of coatingsto this type of actio
13、n.4.2 The effects of the test are to be evaluated by physicalexaminations and monitoring the current drawn by the testspecimen. Usually there is no correlation between the twomethods of evaluation, but both methods are significant.Physical examination consists of assessing the effective contactof th
14、e coating with the metal surface in terms of observeddifferences in the relative adhesive bond. It is usually foundthat the cathodically disbonded area propagates from an areawhere adhesion is zero to an area where adhesion reaches theoriginal level.An intermediate zone of decreased adhesion mayalso
15、 be present.1This test method is under the jurisdiction of ASTM Committee D01 on Paintand Related Coatings, Materials, and Applications and is the direct responsibility ofSubcommittee D01.48 on Durability of Pipeline Coating and Linings.Current edition approved Dec. 1, 2003. Published December 2003.
16、 Originallyapproved in 1975. Last previous edition approved in 1996 as G 42 96.2For 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 o
17、nthe ASTM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.4.3 Assumptions associated with test results include:4.3.1 Maximum adhesion, or bond, is found in the coatingthat was not immersed in the test liquid, and4.3.2 Decreas
18、ed adhesion in the immersed test area is theresult of cathodic disbondment.4.4 Ability to resist disbondment is a desired quality on acomparative basis, but disbondment in this test method is notnecessarily an adverse indication of coating performance. Thevirtue of this test method is that all diele
19、ctric-type coatings nowin common use will disbond to some degree, thus providing ameans of comparing one coating to another.4.5 The current density appearing in this test method ismuch greater than that usually required for cathodic protectionin natural environments.4.6 That any relatively lesser bo
20、nded area was caused byelectrical stressing in combination with the elevated and ordepressed temperature and was not attributable to an anomalyin the application process. Ability to resist disbondment is adesired quality on a comparative basis, but most insulatingmaterials will disbond to some exten
21、t under the acceleratedconditions of this test. Bond strength is more important forproper functioning of some coatings than others and the samemeasured disbondment for two different coating systems maynot represent equivalent loss of corrosion protection.4.6.1 The amount of current flowing in the te
22、st cell may bea relative indicator of the extent of areas requiring protectionagainst corrosion; however, the current density appearing inthis test is much greater than that usually required for cathodicprotection in natural, inland soil environments.4.6.2 Test voltages higher than those recommended
23、 mayresult in the formation of chlorine gas. The subsequent chemi-cal effects on the coating could cast doubt on the interpretationof the test results.5. Apparatus5.1 Test VesselAsuitable nonreactive vessel shall be used,capable of withstanding internal heating at not less than 60Cand suitable for c
24、ontinuous circulation of the electrolyte.A19-L (5-gal) cylindrical glass vessel has been found suitable,having an approximate diameter of 300 mm (12 in.) and adepth of 300 mm. A flat bottom is required for operation of amagnetic stirring rod. An alternate means of heating the testsample can be provi
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