ASTM F2659-2010 Standard Guide for Preliminary Evaluation of Comparative Moisture Condition of Concrete Gypsum Cement and Other Floor Slabs and Screeds Using a Non-Destructive Elec.pdf
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1、Designation: F2659 10Standard Guide forPreliminary Evaluation of Comparative Moisture Conditionof Concrete, Gypsum Cement and Other Floor Slabs andScreeds Using a Non-Destructive Electronic Moisture Meter1This standard is issued under the fixed designation F2659; the number immediately following the
2、 designation 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. Scope1.1 This guide focuses on obt
3、aining the comparative mois-ture condition within the upper 1.0 in. (25.4 mm) stratum inconcrete, gypsum, anhydrite floor slabs and screeds for fieldtests. Due to the wide variation of material mixtures andadditives used in floor slabs and screeds, this methodology maynot be appropriate for all appl
4、ications. See 1.2 through 1.8 andSection 11. Where appropriate or when specified use furthertesting as outlined in Test Methods F1869, F2170 or F2420before installing a resilient floor covering.1.2 This guide is intended for use to determine if there aremoisture-related conditions existing on, or in
5、, the floor slabsthat could adversely impact the successful application andperformance of resilient flooring products.1.3 This guide may be used to aid in the diagnosis offailures of installed resilient flooring.1.4 This guide is intended to be used in conjunction withmeter manufacturers operation i
6、nstructions and interpretivedata where available.1.5 Where possible, or when results need to be quantifieduse this standard guide to determine where additional testingsuch as Test Methods F1869, F2170,orF2420 as specified tocharacterize the floor slab and the test area environment formoisture, humid
7、ity and temperature conditions.1.6 This guide may not be suitable for areas that havesurface applied moisture migration systems, curing compoundsor coatings that cannot be removed or cleaned off sufficiently toallow the moisture to move upwards through the slab. For afloor slab of 6 in. (150 mm) plu
8、s thickness, low porosity slabs,slabs with no vapor retarder installed, and slabs where theabove surface environmental conditions can have a greater thannormal influence on the moisture reduction gradient of the floorslab or screed, consider Test Method F2170 (below surface insitu rh method) as a mo
9、re suitable test method under thesecircumstances.1.7 This guide is not intended to provide quantitative resultsas a basis for acceptance of a floor for installation of moisturesensitive flooring finishes systems. Test Methods F1869,F2170,orF2420 provide quantitative information for deter-mining if m
10、oisture levels are within specific limits. Resultsfrom this guide do not provide vital information when evalu-ating thick slabs, slabs without effective vapor retarders di-rectly under the slab, lightweight aggregate concrete floors, andslabs with curing compound or sealers on the surface.1.8 The va
11、lues stated in inch-pound units are to be regardedas standard. The values given in parentheses are mathematicalconversions to SI units that are provided for information onlyand are not considered standard.1.9 This standard does not purport to address all of thesafety concerns, if any, associated wit
12、h 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. Specific warningsare given in Section 7.2. Referenced Documents2.1 ASTM Standards:2D4259 Practice for Abradin
13、g ConcreteF1869 Test Method for Measuring Moisture Vapor Emis-sion Rate of Concrete Subfloor Using Anhydrous CalciumChlorideF2170 Test Method for Determining Relative Humidity inConcrete Floor Slabs Using in situ ProbesF2420 Test Method for Determining Relative Humidity onthe Surface of Concrete Flo
14、or Slabs Using Relative Hu-midity Probe Measurement and Insulated HoodNOTE 1Also see Related Documents section at the end of thisstandard.1This guide is under the jurisdiction ofASTM Committee F06 on Resilient FloorCoverings and is the direct responsibility of Subcommittee F06.40 on Practices.Curren
15、t edition approved July 1, 2010. Published September 2010. DOI:10.1520/F2659-10.2For 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
16、onthe ASTM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.3. Terminology3.1 Definitions:3.1.1 dew point, ndew point temperature is the tempera-ture at which condensation begins. It is the temperature atwhich air must be cool
17、ed in order to reach saturation (assumingair pressure and moisture content are constant).3.1.2 moisture content (MC), nmoisture content testsindicate the moisture content in the slab at the time of the test.This can be defined as the mass of moisture per unit mass ofdry material, for example:Wet wei
18、ght Dry weightDry weight3 100.3.1.3 relative humidity, nratio of the amount of watervapor actually in the air compared to the amount of water vaporrequired for saturation at that particular temperature andpressure, expressed as a percentage.3.1.4 service temperature and relative humidity, ntheaverag
19、e ambient air temperature and relative humidity thattypically will be found in the buildings occupied spaces duringnormal use.3.1.5 vapor emission, nmoisture vapor emission is used todefine the amount of water vapor emitting from the concretefloor slab when using the Anhydrous Calcium Chloride test.
20、This is usually expressed in lb/1000 ft2during a 24-h period.4. Summary of Guide4.1 Procedure:4.1.1 This guide covers a procedure in which a purpose-made and calibrated electronic moisture meter is used inconjunction with interpretive methods provided by meter or themeter manufacturer, or both, to d
21、etermine the comparativemoisture content in the upper 1 in. (25.4 mm) stratum ofconcrete and other floor slabs and screeds by non-destructivelymeasuring the electrical ac impedance.4.2 Principles of Operation:4.2.1 The electrical impedance of a material varies inproportion to its comparative moistur
22、e condition. The electricalimpedance of the floor slab directly under the footprint of theinstrument is measured by creating an alternating electric fieldthat penetrates the material under test. The small alternatingcurrent flowing through the field is inversely proportional tothe impedance of the m
23、aterial. The instrument determines thecurrents amplitude and thus derives the moisture value. (SeeFig. 1). Classifications of meters using this technology areimpedance, capacitance based and electrical field changedetecting devices.4.2.2 The depth of the signal penetration will vary depend-ing on th
24、e material and moisture content of the material beingtested. It generally varies from 0.5 to 1.0 in. (12.7 to 25.4 mm).5. Significance and Use5.1 Moisture in concrete floor slabs affects the performanceof flooring systems such as resilient, wood, and textile floorcoverings and coatings. Manufacturer
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