Standard Test Method for Centrifuge Moisture Equivalent of Soils

SIGNIFICANCE AND USE
Not all water contained in a saturated soil can be removed by gravity drainage. The amount of water retained after gravity drainage is usually expressed as water holding capacity or specific retention. It varies with time, and with the particle-size distribution and plasticity of the soil (in general, increasing in value with increasing plasticity index).  
In general, the centrifuge moisture equivalent is based on the theory of applying a centrifugal force great enough to reduce the capillary fringe zone enough that it can be ignored without introducing much error, even in small specimens, and yet not so great as to withdraw a large proportion of the water that is held securely above the capillary fringe. For example, if a soil will hold water 100 mm by capillarity acting against gravity, the soil will theoretically be able to hold the water only 0.1 mm against a centrifugal force that is 1000 times greater than the force of gravity. It has been determined that for at least medium-textured soils (sandy to silty particle-size distribution) the centrifuge moisture equivalent approximates the water holding capacity and when combined with the bulk density can be used to calculate an approximate specific retention and specific yield. These properties when combined with porosity can be used to estimate aquifer storage coefficient.
SCOPE
1.1 This test method covers the determination of the moisture equivalent of soil in the laboratory by means of a centrifuge technique.  
1.2 This test method is limited to disturbed specimens of coarse-grained soils having fines of low plasticity such as SP, SW, SC-SM, or SM soils. The test is limited to soils passing the 2.00-mm sieve or that fraction of a soil passing a 2.00-mm sieve.
Note 1—Test Method D 3152 or Test Method D 2325 should be used to evaluate the capillary-moisture relations of fine-grained soils and coarse-grained soils having fines of medium to high plasticity, undisturbed soils, and soils at specific desired units weights.  
1.3 The test method is temperature-dependent, and consistent comparable results can be obtained only if the tests are performed under a constant-temperature condition.
1.4 The values stated in SI units are to be regarded as the standard.
1.5 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility of the user of this standard to establish appropriate safety and health practices and determine the applicability of regulatory limitations prior to use.

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Historical
Publication Date
31-Jan-2008
Current Stage
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ASTM D425-88(2008) - Standard Test Method for Centrifuge Moisture Equivalent of Soils
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NOTICE: This standard has either been superseded and replaced by a new version or withdrawn.
Contact ASTM International (www.astm.org) for the latest information
Designation: D425 − 88 (Reapproved 2008)
Standard Test Method for
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Centrifuge Moisture Equivalent of Soils
This standard is issued under the fixed designation D425; the number immediately following the designation indicates the year of
original adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. A
superscript epsilon (´) indicates an editorial change since the last revision or reapproval.
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1. Scope Apparatus (Withdrawn 2007)
D3152 Test Method for Capillary-Moisture Relationships
1.1 This test method covers the determination of the mois-
for Fine-Textured Soils by Pressure-MembraneApparatus
ture equivalent of soil in the laboratory by means of a
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(Withdrawn 2007)
centrifuge technique.
D4753 Guide for Evaluating, Selecting, and Specifying Bal-
1.2 This test method is limited to disturbed specimens of
ances and Standard Masses for Use in Soil, Rock, and
coarse-grained soils having fines of low plasticity such as SP,
Construction Materials Testing
SW,SC-SM,orSMsoils.Thetestislimitedtosoilspassingthe
E11 Specification for Woven Wire Test Sieve Cloth and Test
2.00-mm sieve or that fraction of a soil passing a 2.00-mm
Sieves
sieve.
3. Terminology
NOTE 1—Test Method D3152 or Test Method D2325 should be used to
evaluate the capillary-moisture relations of fine-grained soils and coarse-
3.1 All definitions are in accordance with Terminology
grained soils having fines of medium to high plasticity, undisturbed soils,
D653. Terms of particular significance are as follows:
and soils at specific desired units weights.
3.2 capillary fringe zone—the zone above the free water
1.3 The test method is temperature-dependent, and consis-
elevation in which water is held by capillary action.
tent comparable results can be obtained only if the tests are
3.3 centrifuge moisture equivalent—the water content of a
performed under a constant-temperature condition.
soilafterithasbeensaturatedwithwaterandthensubjectedfor
1.4 The values stated in SI units are to be regarded as the
one hour to a centrifugal force equal to 1000 times that of
standard.
gravity.
1.5 This standard does not purport to address all of the
3.4 specific retention—the ratio of the volume of water that
safety concerns, if any, associated with its use. It is the
cannot be drained from a saturated soil under the action of
responsibility of the user of this standard to establish appro-
force of gravity to the total volume of voids.
priate safety and health practices and determine the applica-
3.5 water-holding capacity—the smallest value to which the
bility of regulatory limitations prior to use.
water content of soil or rock can be reduced by gravity
drainage.
2. Referenced Documents
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2.1 ASTM Standards:
4. Summary of Test Method
D653 Terminology Relating to Soil, Rock, and Contained
4.1 The centrifuge moisture equivalent of soils is deter-
Fluids
mined by initially air-drying the soil, selecting two 5-g test
D2216 Test Methods for Laboratory Determination of Water
specimens, thoroughly soaking each test specimen, and then
(Moisture) Content of Soil and Rock by Mass
determining the water content of each specimen after it has
D2325 Test Method for Capillary-Moisture Relationships
been centrifuged for 1 h at a force equal to 1000 times that of
for Coarse- and Medium-Textured Soils by Porous-Plate
gravity at a controlled temperature of 20 6 1°C.
5. Significance and Use
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This test method is under the jurisdiction ofASTM Committee D18 on Soil and
5.1 Not all water contained in a saturated soil can be
Rock and is the direct responsibility of Subcommittee D18.03 on Texture, Plasticity
removed by gravity drainage. The amount of water retained
and Density Characteristics of Soils.
Current edition approved Feb. 1, 2008. Published March 2008. Originally
after gravity drainage is usually expressed as water holding
approved in 1935. Last previous edition approved in 2001 as D425 – 88 (2001).
capacity or specific retention. It varies with time, and with the
DOI: 10.1520/D0425-88R08.
2
For referenced ASTM standards, visit the ASTM website, www.astm.org, or
contact ASTM Customer Service at service@astm.org. For Annual Book of ASTM
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Standards volume information, refer to the standard’s Document Summary page on The last approved version of this historical standard is referenced on
the ASTM website. www.astm.org.
Copyright © ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States
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D425 − 88 (2008)
particle-size distribution and plasticity of the soil (in general, where:
increasing in value with increasing plasticity index).
N = revolutions per minute,
RCF = relative centrifugal force (1000),
5.2 In general, the centrifuge moisture equivalent is based
r =
...

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