ASTM D7002-2016 red 3871 Standard Practice for Electrical Leak Location on Exposed Geomembranes Using the Water Puddle Method《采用水搅拌法的暴露土工薄膜上电泄漏位置的标准实施规程》.pdf
《ASTM D7002-2016 red 3871 Standard Practice for Electrical Leak Location on Exposed Geomembranes Using the Water Puddle Method《采用水搅拌法的暴露土工薄膜上电泄漏位置的标准实施规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM D7002-2016 red 3871 Standard Practice for Electrical Leak Location on Exposed Geomembranes Using the Water Puddle Method《采用水搅拌法的暴露土工薄膜上电泄漏位置的标准实施规程》.pdf(5页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D7002 15D7002 16Standard Practice forElectrical Leak Location on Exposed Geomembranes Usingthe Water Puddle Method1This standard is issued under the fixed designation D7002; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revisi
2、on, 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. Scope1.1 This practice is a performance-based standard for an electrical method for locating leaks in exposed g
3、eomembranes. Forclarity, this practice uses the term “leak” to mean holes, punctures, tears, knife cuts, seam defects, cracks, and similar breaches inan installed geomembrane (as defined in 3.2.5).1.2 This practice can be used for geomembranes installed in basins, ponds, tanks, ore and waste pads, l
4、andfill cells, landfill caps,canals, and other containment facilities. It is applicable for geomembranes made of materials such as polyethylene, polypropylene,polyvinyl chloride, chlorosulfonated polyethylene, bituminous geomembrane, and any other electrically insulating materials. Thispractice is b
5、est applicable for locating geomembrane leaks where the proper preparations have been made during the constructionof the facility.1.3 The values stated in SI units are to be regarded as standard. No other units of measurement are included in this standard.1.4 This standard does not purport to addres
6、s all of the safety concerns, if any, associated with its use. It is the responsibilityof the user of this standard to establish appropriate safety and health practices and determine the applicability of regulatorylimitations prior to use.2. Referenced Documents2.1 ASTM Standards:2D4439 Terminology
7、for GeosyntheticsD6747 Guide for Selection of Techniques for Electrical Leak Location of Leaks in GeomembranesD7703 Practice for Electrical Leak Location on Exposed Geomembranes Using the Water Lance Method1 This practice is under the jurisdiction of ASTM Committee D35 on Geosynthetics and is the di
8、rect responsibility of Subcommittee D35.10 on Geomembranes.Current edition approved Jan. 1, 2015Jan. 1, 2016. Published January 2015January 2016. Originally approved in 2003. Last previous edition approved in 20102015 asD7002D700210.-15. DOI: 10.1520/D7002-15.10.1520/D7002-16.2 For referencedASTM st
9、andards, visit theASTM website, www.astm.org, or contactASTM Customer Service at serviceastm.org. For Annual Book of ASTM Standardsvolume information, refer to the standards Document Summary page on the ASTM website.This document is not an ASTM standard and is intended only to provide the user of an
10、 ASTM standard an indication of what changes have been made to the previous version. Becauseit may not be technically possible to adequately depict all changes accurately, ASTM recommends that users consult prior editions as appropriate. In all cases only the current versionof the standard as publis
11、hed by ASTM is to be considered the official document.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States1D7953 Practice for Electrical Leak Location on Exposed Geomembranes Using the Arc Testing Method3. Terminology3.1 Definitions:3.1.1
12、For general definitions used in this practice, refer to Terminology D4439.3.2 Definitions of Terms Specific to This Standard:3.2.1 artificial leak, nan electrical simulation of a leak in a geomembrane.3.2.2 conductive-backed geomembrane, na specialty geomembrane manufactured using coextrusion techno
13、logy featuring aninsulating layer in intimate contact with a conductive layer.3.2.3 current, nthe flow of electricity or the flow of electric charge.3.2.4 electrical leak location, na method which uses electrical current or electrical potential to locate leaks.3.2.5 leak, nfor the purposes of this d
14、ocument, a leak is any unintended opening, perforation, breach, slit, tear, puncture,crack, or seam breach. Significant amounts of liquids or solids may or may not flow through a leak. Scratches, gouges, dents, orother aberrations that do not completely penetrate the geomembrane are not considered t
15、o be leaks. Types of leaks detected duringsurveys include, but are not limited to: burns, circular holes, linear cuts, seam defects, tears, punctures, and material defects.3.2.6 leak detection sensitivity, nthe smallest leak that the leak location equipment and survey methodology are capable ofdetec
16、ting under a given set of conditions. The leak detection sensitivity specification is usually stated as a diameter of the smallestleak that can likely be detected.3.2.7 poor contact condition, nfor the purposes of this practice, a poor contact condition means that a leak is not in intimatecontact wi
17、th the conductive layer above or underneath the geomembrane to be tested. This occurs on a wrinkle or wave, under theoverlap flap of a fusion weld, in an area of liner bridging and in an area where there is a subgrade depression or rut.3.2.8 probe, nfor the purposes of this practice, any conductive
18、structure that is attached to a power source.3.2.9 squeegee, nfor the purposes of this document, a squeegee is a device used to contain and push water on top of anexposed geomembrane. It may consist of a handle and a transverse piece at one end set with a strip of leather or rubber, or a rollerappar
19、atus.3.2.10 water puddle, na small pool of water placed on the geomembrane to create a conduit for current to flow through anyleaks.4. Significance and Use4.1 Geomembranes are used as barriers to prevent liquids from leaking from landfills, ponds, and other containments. For thispurpose, it is desir
20、able that the geomembrane have as little leakage as practical.4.2 The liquids may contain contaminants that, if released, can cause damage to the environment. Leaking liquids can erode thesubgrade, causing further damage. Leakage can result in product loss or otherwise prevent the installation from
21、performing itsintended containment purpose.4.3 Geomembranes are often assembled in the field, either by unrolling and welding panels of the geomembrane materialtogether in the field, unfolding flexible geomembranes in the field, or a combination of both.4.4 Geomembrane leaks can be caused by poor qu
22、ality of the subgrade, poor quality of the material placed on the geomembrane,accidents, poor workmanship, manufacturing defects, and carelessness.4.5 Electrical leak location methods are an effective and proven quality assurance measure to detect and locate leaks.5. Summary of Exposed Geomembrane E
23、lectrical Leak Location Methods5.1 Principles of the Electrical Leak Location Methods for Exposed Geomembranes:5.1.1 The principle of the electrical leak location methods is to place a voltage across a geomembrane and then locate areaswhere electrical current flows through leaks in the geomembrane.5
24、.1.2 Currently available methods include the water lance method (Practice D7703), the arc testing method (Practice D7953),and the water puddle method.5.1.3 All of the methods listed in 5.1.2 are effective at locating leaks in exposed geomembranes. Each method has specific siteand labor requirements,
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