ASTM D6836-2002(2008)e2 809 Standard Test Methods for Determination of the Soil Water Chararcteristic Curve for Desorption Using a Hanging Column Pressure Extractor Chilled Mirror .pdf
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1、Designation: D 6836 02 (Reapproved 2008)2Standard Test Methods forDetermination of the Soil Water Characteristic Curve forDesorption Using Hanging Column, Pressure Extractor,Chilled Mirror Hygrometer, or Centrifuge1This standard is issued under the fixed designation D 6836; the number immediately fo
2、llowing the 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.1NOTEMercury warning and o
3、ther minor changes were editorially added in November 2008.2NOTE“1n” was editorially corrected to “ln” in Eq 12 in March 2009.1. Scope1.1 These test methods cover the determination of soil watercharacteristic curves (SWCCs) for desorption (drying).SWCCs describe the relationship between suction and
4、volu-metric water content, gravimetric water content, or degree ofwater saturation. SWCCs are also referred to as soil waterretention curves, soil water release curves, or capillary pressurecurves.1.2 This standard describes five methods (A-E) for deter-mining the soil water characteristic curve. Me
5、thod A (hangingcolumn) is suitable for making determinations for suctions inthe range of 0 to 80 kPa. Method B (pressure chamber withvolumetric measurement) and Method C (pressure chamberwith gravimetric measurement) are suitable for suctions in therange of 0 to 1500 kPa. Method D (chilled mirror hy
6、grometer)is suitable for making determinations for suctions in the rangeof 500 kPa to 100 MPa. Method E (centrifuge method) issuitable for making determinations in the range 0 to 120 kPa.MethodAtypically is used for coarse soils with little fines thatdrain readily. Methods B and C typically are used
7、 for finer soilswhich retain water more tightly. Method D is used whensuctions near saturation are not required and commonly isemployed to define the dry end of the soil water characteristiccurve (that is, water contents corresponding to suctions 1000kPa). Method E is typically used for coarser soil
8、s where anappreciable amount of water can be extracted with suctions upto 120 kPa. The methods may be combined to provide adetailed description of the soil water characteristic curve. Inthis application, Method A or E is used to define the soil watercharacteristic curve at lower suctions (0 to 80 kP
9、a for A, 0 to120 kPa for E) near saturation and to accurately identify the airentry suction, Method B or C is used to define the soil watercharacteristic curve for intermediate water contents and suc-tions (100 to 1000 kPa), and Method D is used to define the soilwater characteristic curves at low w
10、ater contents and highersuctions ( 1000 kPa).1.3 All observed and calculated values shall conform to theguide for significant digits and rounding established in PracticeD 6026. The procedures in Practice D 6026 that are used tospecify how data are collected, recorded, and calculated areregarded as t
11、he industry standard. In addition, they are repre-sentative of the significant digits that should generally beretained. The procedures do not consider material variation,purpose for obtaining the data, special purpose studies, or anyconsiderations for the objectives of the user. Increasing orreducin
12、g the significant digits of reported data to be commen-surate with these considerations is common practice. Consid-eration of the significant digits to be used in analysis methodsfor engineering design is beyond the scope of this standard.1.4 The values stated in SI units are to be regarded asstanda
13、rd. No other units of measurement are included in thisstandard.1.5 WarningMercury has been designated by EPA andmany state agencies as a hazardous material that can causecentral nervous system, kidney, and liver damage. Mercury, orits vapor, may be hazardous to health and corrosive tomaterials. Caut
14、ion should be taken when handling mercury andmercury-containing products. See the applicable product Ma-terial Safety Data Sheet (MSDS) for details and EPAs website(http:/www.epa.gov/mercury/faq.htm) for additional informa-tion. Users should be aware that selling mercury or mercury-containing produc
15、ts, or both, in your state may be prohibited bystate law.1These test methods are under the jurisdiction ofASTM Committee D18 on Soiland Rock and are the direct responsibility of Subcommittee D18.04 on HydrologicProperties and Hydraulic Barriers.Current edition approved Sept. 1, 2008. Published Novem
16、ber 2008. Originallyapproved in 2002. Last previous edition approved in 2002 as D 6836 02.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.1.6 This standard does not purport to address all of thesafety concerns, if any, associated wit
17、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.2. Referenced Documents2.1 ASTM Standards:2D 421 Practice for Dry Preparation of Soil Samples forParticle-Size
18、 Analysis and Determination of Soil Con-stantsD 425 Test Method for Centrifuge Moisture Equivalent ofSoilsD 653 Terminology Relating to Soil, Rock, and ContainedFluidsD 698 Test Methods for Laboratory Compaction Character-istics of Soil Using Standard Effort (12 400 ft-lbf/ft3(600kN-m/m3)D 854 Test
19、Methods for Specific Gravity of Soil Solids byWater PycnometerD 2216 Test Methods for Laboratory Determination of Wa-ter (Moisture) Content of Soil and Rock by MassD 3740 Practice for Minimum Requirements for AgenciesEngaged in Testing and/or Inspection of Soil and Rock asUsed in Engineering Design
20、and ConstructionD 4753 Guide for Evaluating, Selecting, and SpecifyingBalances and Standard Masses for Use in Soil, Rock, andConstruction Materials TestingD 5084 Test Methods for Measurement of Hydraulic Con-ductivity of Saturated Porous Materials Using a FlexibleWall PermeameterD 6026 Practice for
21、Using Significant Digits in Geotechni-cal Data2.2 API Standard:API RP 40 Recommended Practice for Core-Analysis Pro-cedure33. Terminology3.1 For common definitions of other terms in this standardsee Terminology D 653.3.2 Definitions of Terms Specific to This Standard:3.2.1 air entry pressurethe air
22、pressure required to intro-duce air into and through the pores of a saturated porous plate.3.2.2 air entry suction, cathe suction required to intro-duce air into and through the pores of a saturated porousmaterial.3.2.3 axis translationthe principle stating that a matricsuction c can be applied to a
23、 soil by controlling the pore gaspressure, ug, and the pore water pressure, uw, so that thedifference between the pore gas pressure and pore waterpressure equals the desired matric suction, that is, c = ug uw.3.2.4 gravimetric water content, wthe ratio of the mass ofwater contained in the pore space
24、s of soil or rock to the massof solid particles.3.2.5 matric suction, cthe negative gage pressure, rela-tive to an external gas pressure acting on the soil water, thatmust be applied to a solution identical in composition to thesoil water to maintain equilibrium through a porous membraneexisting bet
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