ASTM D4105-1996(2002) Standard Test Method (Analytical Procedure) for Determining Transmissivity and Storage Coefficient of Nonleaky Confined Aquifers by the Modified Theis Nonequi.pdf
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1、Designation: D 4105 96 (Reapproved 2002)Standard Test Method(Analytical Procedure) for Determining Transmissivity andStorage Coefficient of Nonleaky Confined Aquifers by theModified Theis Nonequilibrium Method1This standard is issued under the fixed designation D 4105; the number immediately followi
2、ng 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 (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 This test method c
3、overs an analytical procedure fordetermining transmissivity and storage coefficient of a non-leaky confined aquifer under conditions of radial flow to a fullypenetrating well of constant flux. This test method is a shortcutprocedure used to apply the Theis nonequilibrium method. TheTheis method is d
4、escribed in Test Method D 4106.1.2 This test method is used in conjunction with the fieldprocedure given in Test Method D 4050.1.3 LimitationsThe limitations of this test method areprimarily related to the correspondence between the fieldsituation and the simplifying assumptions of this test method(
5、see 5.1). Furthermore, application is valid only for values of uless than 0.01 (u is defined in Eq 2, in 8.6).1.4 The values stated in SI units are to be regarded asstandard.1.5 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibil
6、ity 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:D 653 Terminology Relating to Soil, Rock, and ContainedFluids2D 4043 Guide for Selection of Aquifer
7、-Test Method inDetermining Hydraulic Properties by Well Techniques2D 4050 Test Method (Field Procedure) for Withdrawal andInjection Well Tests for Determining Hydraulic Propertiesof Aquifer Systems2D 4106 Test Method (Analytical Procedure) for Determin-ing Transmissivity and Storage Coefficient of N
8、onleakyConfined Aquifers by the Theis Nonequilibrium Method23. Terminology3.1 Definitions:3.1.1 aquifer, confinedan aquifer bounded above andbelow by confining beds and in which the static head is abovethe top of the aquifer.3.1.2 aquifer, unconfinedan aquifer that has a water table.3.1.3 confining
9、beda hydrogeologic unit of less perme-able material bounding one or more aquifers.3.1.4 control wellwell by which the aquifer is stressed, forexample, by pumping, injection, or change of head.3.1.5 drawdownvertical distance the static head is low-ered due to the removal of water.3.1.6 hydraulic cond
10、uctivity(field aquifer tests), the vol-ume of water at the existing kinematic viscosity that will movein a unit time under unit hydraulic gradient through a unit areameasured at right angles to the direction of flow.3.1.7 observation wella well open to all or part of anaquifer.3.1.8 piezometeruse to
11、 measure static head at a point inthe subsurface.3.1.9 specific storagethe volume of water released fromor taken into storage per unit volume of the porous medium perunit change in head.3.1.10 storage coeffcientthe volume of water an aquiferreleases from or takes into storage per unit surface area o
12、f theaquifer per unit change in head. For a confined aquifer, it isequal to the product of specific storage and aquifer thickness.For an unconfined aquifer, the storage coefficient is approxi-mately equal to the specific yield.3.1.11 transmissivitythe volume of water at the existingkinematic viscosi
13、ty that will move in a unit time under a unithydraulic gradient through a unit width of the aquifer.3.1.12 For definitions of other terms used in this testmethod, see Terminology D 653.3.2 Symbols:Symbols and Dimensions:3.2.1 K LT1hydraulic conductivity.3.2.2 Kxyhydraulic conductivity in the horizon
14、tal direc-tion.3.2.3 Kzhydraulic conductivity in the vertical direction.3.2.4 T L2T1transmissivity.3.2.5 S ndstorage coefficient.1This test method is under the jurisdiction of ASTM Committee D18 on Soil andRock and is the direct responsibility of Subcommittee D18.21 on Ground Water andVadose Zone In
15、vestigations.Current edition approved Oct. 10, 1996. Published June 1997. Originallypublished as D 4105 91. Last previous edition D 4105 91.2Annual Book of ASTM Standards, Vol 04.08.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.3.2
16、.6 Ss L1specific storage.3.2.7 s Ldrawdown.3.2.8 Q L3T1discharge.3.2.9 r Lradial distance from control well.3.2.10 t Ttime.3.2.11 b Lthickness of the aquifer.4. Summary of Test Method4.1 This test method describes an analytical procedure foranalyzing data collected during a withdrawal or injection w
17、elltest. The field procedure (see Test Method D 4050) involvespumping a control well at a constant rate and measuring thewater level response in one or more observation wells orpiezometers. The water-level response in the aquifer is afunction of the transmissivity and coefficient of storage of theaq
18、uifer. Alternatively, the test can be performed by injectingwater at a constant rate into the aquifer through the controlwell. Analysis of buildup of water level in response to injectionis similar to analysis of drawdown of water level in response towithdrawal in a confined aquifer. Drawdown of wate
19、r level isanalyzed by plotting drawdown against factors incorporatingeither time or distance from the control well, or both, andmatching the drawdown response with a straight line.4.2 SolutionThe solution given by Theis (1)3can beexpressed as follows:s 5Q4pT*u e2yydy (1)where:u 5r2S4Tt(2)and:*u e2yy
20、dy 5 Wu! 520.577216 2 logeu (3)1 u 2u22!21u33!32u44!41 .4.3 The sum of the terms to the right of logeu in the seriesof Eq 3 is not significant when u becomes small.NOTE 1The errors for small values of u, from Kruseman andDeRidder (1) are as follows:Error less than, %: 1 2 5 10For u smaller than: 0.0
21、3 0.05 0.1 0.15The value of u decreases with increasing time, t, anddecreases as the radial distance, r, decreases. Therefore, forlarge values of t and reasonably small values of r, the terms tothe right of logeu in Eq 3 may be neglected as recognized byTheis (2) and Jacob (3). The Theis equation ca
22、n then be writtenas follows:s 5Q4pTF20.577216 2 lnSr2S4TtDG(4)from which it has been shown by Lohman (4) thatT 52.3Q4pDs/Dlog10t(5)and:T 522.3Q2pDs/Dlog10r(6)where:Ds/Dlog10t = the drawdown (measured or projected) overone log cycle of time, andDs/Dlog10r = the drawdown (measured or projected) overon
23、e log cycle of radial distance from thecontrol well.5. Significance and Use5.1 Assumptions:5.1.1 Well discharges at a constant rate, Q.5.1.2 Well is of infinitesimal diameter and fully penetratesthe aquifer, that is, the well is open to the full thickness of theaquifer.5.1.3 The nonleaky aquifer is
24、homogeneous, isotropic, andareally extensive. A nonleaky aquifer receives insignificantcontribution of water from confining beds.5.1.4 Discharge from the well is derived exclusively fromstorage in the aquifer.5.1.5 The geometry of the assumed aquifer and well condi-tions are shown in Fig. 1.5.2 Impl
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