ASTM D7703-2011 1250 Standard Practice for Electrical Leak Location on Exposed Geomembranes Using the Water Lance System《利用水枪系统 借助电力对露天土工膜进行泄漏定位的标准操作规程》.pdf
《ASTM D7703-2011 1250 Standard Practice for Electrical Leak Location on Exposed Geomembranes Using the Water Lance System《利用水枪系统 借助电力对露天土工膜进行泄漏定位的标准操作规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM D7703-2011 1250 Standard Practice for Electrical Leak Location on Exposed Geomembranes Using the Water Lance System《利用水枪系统 借助电力对露天土工膜进行泄漏定位的标准操作规程》.pdf(5页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D7703 11Standard Practice forElectrical Leak Location on Exposed Geomembranes Usingthe Water Lance System1This standard is issued under the fixed designation D7703; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the y
2、ear 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 standard is a performance-based practice using thewater lance system, a electrical method for detecting le
3、aks inexposed geomembranes. For clarity, this document uses theterm “leak” to mean holes, punctures, tears, knife cuts, seamdefects, cracks and similar breaches in an installed geomem-brane.1.2 This standard can be used for geomembranes installed inbasins, ponds, tanks, ore and waste pads, landfill
4、cells, landfillcaps, canals, and other containment facilities. It is applicablefor geomembranes made of materials such as polyethylene,polypropylene, polyvinyl chloride, chlorosulfonated polyethyl-ene, bituminous geomembrane, and any other electricallyinsu-lating materials. This standard may not be
5、applicable forlocating geomembrane leaks where the proper preparationshave not been made during the construction of the facility.1.3 WarningThe electrical methods used for geomem-brane leak location could use high voltages, resulting in thepotential for electrical shock or electrocution. This hazard
6、might be increased because operations might be conductedin or near water. In particular, a high voltage could existbetween the water or earth material and earth ground, orany grounded conductor. These procedures are potentiallyVERY DANGEROUS, and can result in personal injury ordeath. The electrical
7、 methods used for geomembrane leaklocation should be attempted only by qualified and experi-enced personnel. Appropriate safety measures must betaken to protect the leak location operators as well as otherpeople at the site.1.4 This standard does not purport to address all of thesafety concerns, if
8、any, associated with its use. 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:2D4439 Terminology for GeosyntheticsD6747 Guide f
9、or Selection of Techniques for ElectricalDetection of Potential Leak Paths in GeomembranesD7007 Practices for Electrical Methods for Locating Leaksin Geomembranes Covered with Water or Earth Materials3. Terminology3.1 For general definitions used in this document, refer toD4439.3.2 Definitions of Te
10、rms Specific to This Standard:3.2.1 artificial leak, nan electrical simulation of a leak ina geomembrane.3.2.2 current, nthe flow of electricity or the flow ofelectric charge.3.2.3 electrode, nthe conductive plate that is placed inearth or in the material under the geomembrane or a conductiveelement
11、 typically placed inside the water reservoir.3.2.4 electrical leak location, na method which useselectrical current or electrical potential to detect and locateleaks.3.2.5 leak, nfor the purposes of this document, a leak isany unintended opening, perforation, breach, slit, tear, punc-ture, crack, or
12、 seam breach. Significant amounts of liquids orsolids may or may not flow through a leak. Scratches, gouges,dents, or other aberrations that do not completely penetrate thegeomembrane are not considered to be leaks. Leaks detectedduring surveys have been grouped into five categories:holesround shape
13、d voids with downward or upward pro-truding rims.tearslinear or areal voids with irregular edge borders.linear cutslinear voids with neat close edges.1This practice is under the jurisdiction of ASTM Committee D35 on Geosyn-thetics and is the direct responsibility of Subcommittee D35.10 on Geomembran
14、es.Current edition approved June 1, 2011. Published July 2011. DOI: 10.1520/D770311.2For 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 p
15、age onthe ASTM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.seam defectsarea of partial or total separation betweensheets.burned through zonesvoids created by melting polymerduring welding.3.2.6 leak detection sensitivity,
16、 nthe smallest leak that theleak location equipment and survey methodology are capableof detecting under a given set of conditions. The leak detectionsensitivity specification is usually stated as a diameter of thesmallest leak that can be reliably detected.3.2.7 water stream, nfor the purposes of t
17、his document, acontinuous stream of water between the water lance and thegeomembrane that creates a conduit for current to flow throughany leaks.3.2.8 water lance, nfor the purposes of this document, aprobe (lance) incorporating two electrodes that directs a solidstream of water through a single noz
18、zle mounted at the end.4. Summary of Practice4.1 The Principle of the Electrical Leak Location MethodUsing the Water Lance System:4.1.1 The principle of the electrical leak location method isto place a voltage across a geomembrane and then locate areaswhere electrical current flows through leaks. AS
19、TM StandardD6747 is a guide for the selection of the various implementa-tions of the method.4.1.2 Fig. 1 shows a diagram of the electrical leak locationmethod of the water lance system for exposed geomembranes.One output of an electrical excitation power supply is con-nected to an electrode placed i
20、n the water reservoir; a pumpsends this charged water to the water lance (Fig. 2) that jets thewater in a solid stream on top of the geomembrane. The otheroutput of the power supply is connected to an electrode placedin electrically conductive material under the geomembrane.4.2 Leak Location Surveys
21、 of Exposed Geomembrane Usingthe Water Lance System:4.2.1 The water lance detection system usually consists of asingle nozzle mounted at the end of a probe (lance) (Fig. 2) thatdirects a solid stream of water onto a geomembrane, and anelectronic detector assembly as shown in Fig. 3. A pressurizedwat
22、er source, usually from a small reservoir on top of the liner,or from a tank truck isolated from ground parked at higherelevation, is connected to the water lance using a plastic orrubber hose.4.2.2 Direct current power supplies (often a 12 or 24 voltbattery) have been used for leak location surveys
23、.4.2.3 For leak location surveys of exposed geomembrane,the solid water stream (not a spray) is moved systematicallyover the geomembrane area to locate the points where theelectrical current flow increases as the charged water from thewater lance contacts the oppositely charged conductive mediaunder
24、 the geomembrane through a hole.4.2.4 The voltage drop signal between the two electrodes inthe water column in the water lance is typically connected to anelectronic detector assembly that converts the electrical signalto an audible signal that increases in pitch and amplitude as theleak signal incr
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