ASTM D4787-1993(1999) Standard Practice for Continuity Verification of Liquid or Sheet Linings Applied to Concrete Substrates《对混凝土底层使用的液体或薄板衬垫的连续验正》.pdf
《ASTM D4787-1993(1999) Standard Practice for Continuity Verification of Liquid or Sheet Linings Applied to Concrete Substrates《对混凝土底层使用的液体或薄板衬垫的连续验正》.pdf》由会员分享,可在线阅读,更多相关《ASTM D4787-1993(1999) Standard Practice for Continuity Verification of Liquid or Sheet Linings Applied to Concrete Substrates《对混凝土底层使用的液体或薄板衬垫的连续验正》.pdf(4页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 4787 93 (Reapproved 1999)Standard Practice forContinuity Verification of Liquid or Sheet Linings Applied toConcrete Substrates1This standard is issued under the fixed designation D 4787; the number immediately following the designation indicates the year oforiginal adoption or, in the
2、 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 procedures that may be used toallow the detection of discontinuit
3、ies in nonconductive liningsapplied to concrete substrates.1.2 Discontinuities may include pinholes, internal voids,holidays, cracks, and conductive inclusions.1.3 This practice describes detection of discontinuities uti-lizing a low voltage wet sponge holiday detector and a highvoltage pulsating or
4、 continuous dc spark tester. Linings withthickness in excess of 20 mils must be tested utilizing highvoltage spark testing equipment.NOTE 1For further information on discontinuity testing refer toNACE Standard RP0188-88 or Practice D 5162.1.4 This practice describes procedures both with and with-out
5、 the use of a conductive underlayment.1.5 The values stated in the inch-pound units are to beregarded as the standard. The values given in parentheses arefor information only.1.6 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibi
6、lity 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. For a specifichazard statement, see Section 7.2. Referenced Documents2.1 ASTM Standards:2D 149 Test Method for Dielectric Breakdown Voltage
7、 andDielectric Strength of Solid Electrical Insulating Materialsat Commercial Power FrequenciesD 5162 Practice for Discontinuity (Holiday) Testing ofNonconductive Protective Coating on Metallic Substrates2.2 NACE Standards:3RP0188-88 Discontinuity (Holiday) Testing of ProtectiveCoatings3. Terminolog
8、y3.1 Definitions of Terms Specific to This Standard:3.1.1 discontinuitya localized lining site that has a dielec-tric strength less than a determined test voltage.3.1.2 conductive underlaymenta continuous layer appliedto the prepared concrete surface prior to the application of anonconductive lining
9、 layer(s) that will allow high voltage sparktesting for discontinuities in the lining.3.1.3 spark-overthe distance a spark, from a high voltagetester, will jump across a space from a grounded surface at aspecific electrical voltage.3.1.4 high voltage spark testeran electrical device (inexcess of 800
10、 V) used to locate discontinuities in a noncon-ductive protective coating applied to a conductive substrate.3.1.5 low voltage testera low voltage wet sponge electri-cal detector used to locate discontinuities in nonconductivelinings applied to conductive substrates.3.1.5.1 DiscussionThis test instru
11、ment is not suitable fortesting linings in excess of 20 mils.3.1.6 test voltagethat electrical voltage established whichwill allow a discontinuity at the thickest lining location site tobe tested, but which will not damage the lining.3.1.6.1 DiscussionThe test voltage must always be setwell below th
12、e dielectric breakdown strength of the lining. Thisvoltage should be recommended by the lining manufacturer.The dielectric breakdown voltage strength of a solid can bedetermined by Test Method D 149.4. Summary of Practice4.1 This practice allows for high and low voltage electricaldetection of discon
13、tinuities in new linings applied to concretesubstrates through the utilization of a continuous conductiveunderlayment applied to the prepared concrete surface prior tothe application of the nonconductive lining layer(s) or bydetermining the conductivity of the concrete substrate to be1This practice
14、is under the jurisdiction of ASTM Committee D01 on Paint andRelated Coatings, Materials, and Applications and is the direct responsibility ofSubcommittee D01.46 on Industrial Protective Coatings.Current edition approved Jan. 10, 1999. Published September 1999. Originallypublished as D 4787 88. Last
15、previous edition D 4787 88.2For 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 ASTM website.3Available from NationalAssociatio
16、n of Corrosion Engineers, P.O. Box 218340,Houston, TX 77218.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.tested. The conductivity of concrete varies, depending onmoisture content, type, density, and location of rebars. Test thecon
17、ductivity of the concrete by attaching the ground wire torebar or other metallic ground permanently installed in theconcrete. If a metallic ground is not available, the ground wireshall be placed directly against the bare concrete surface andweighted with a damp cloth or paper sand-filled bag. If th
18、e testindicates the concrete provides an insufficient ground, a con-ductive underlayment will be required if a continuity test is tobe conducted.5. Significance and Use5.1 The electrical conductivity of concrete is primarilyinfluenced by the presence of moisture. Other factors whichaffect the contin
19、uity of concrete include the following:5.1.1 Presence of metal rebars,5.1.2 Cement content and type,5.1.3 Aggregate types,5.1.4 Admixtures,5.1.5 Porosity,5.1.6 Above or below grade elevation,5.1.7 Indoor or outdoor location,5.1.8 Temperature and humidity, and5.1.9 Age of concrete.5.2 The electrical
20、conductivity of concrete itself may besuccessfully used for high-voltage continuity testing of liningsapplied directly with no specific conductive underlaymentinstalled. However, the voltage required to find a discontinuitymay vary greatly from point to point on the structure. Thisvariance may reduc
21、e the test reliability.5.3 Although the most common conductive underlaymentsare liquid primers applied by trowel, roller, or spray, and whichcontain carbon or graphite fillers, others may take the form ofthe following:5.3.1 Sheet-applied graphite veils,5.3.2 Conductive polymers,5.3.3 Conductive grap
22、hite fibers,5.3.4 Conductive metallic fibers, and5.3.5 Conductive metallic screening.5.4 Liquid-applied conductive underlayments may be desir-able as they can serve to address imperfections in the concretesurface and provide a better base for which to apply the lining.5.5 This practice is intended f
23、or use only with new liningsapplied to concrete substrates. Inspecting a lining previouslyexposed to an immersion condition could result in damagingthe lining or produce an erroneous detection of discontinuitiesdue to permeation or moisture absorption of the lining.Deposits may also be present on th
24、e surface causing telegraph-ing. The use of a high voltage tester on a previously exposedlining is not recommended because of possible spark throughwhich will damage an otherwise sound lining. A low voltagetester can be used but could produce erroneous readings.5.6 The user may consider this practic
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