ASTM D7400-2007 Standard Test Methods for Downhole Seismic Testing《井下地震测试用标准试验方法》.pdf
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1、Designation: D 7400 07Standard Test Methods forDownhole Seismic Testing1This standard is issued under the fixed designation D 7400; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the year of last revision. A number in parentheses
2、indicates the year of last reapproval. Asuperscript epsilon (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 These test methods are limited to the determination ofthe interval velocities from arrival times and relative arrivaltimes of compression (P) and vertically
3、 (SV) and horizontally(SH) polarized shear (S) seismic waves which are generatednear surface and travel down to an array of vertically installedseismic sensors.Apreferred method intended to obtain data foruse on critical projects where the highest quality data isrequired is included. Also included i
4、s an optional methodintended for use on projects which do not require measure-ments of a high degree of precision.1.2 Various applications of the data will be addressed andacceptable procedures and equipment, such as seismic sources,receivers, and recording systems will be discussed. Other itemsaddr
5、essed include source-to-receiver spacing, drilling, casing,grouting, a procedure for borehole installation, and boreholeand seismic cone actual test conduct. Data reduction andinterpretation is limited to the identification of various seismicwave types, apparent velocity relation to true velocity, e
6、xamplecomputations, use of Snells law of refraction, and assump-tions.1.3 There are several acceptable devices that can be used togenerate a high-quality P or SV source wave or both and SHsource waves. Several types of commercially available receiv-ers and recording systems can also be used to condu
7、ct anacceptable downhole survey. Special consideration should begiven to the types of receivers used and their configuration.Heavily-damped sensors should not be used so that spectralsmearing, phase shifting, and latency response between sensorsis avoided. These test methods primarily concern the ac
8、tual testprocedure, data interpretation, and specifications for equipmentwhich will yield uniform test results.1.4 All recorded and calculated values shall conform to theguide for significant digits and rounding established in PracticeD 6026.1.4.1 The procedures used to specify how data are collecte
9、d/recorded and calculated in these test methods are regarded asthe industry standard. In addition, they are representative of thesignificant digits that should generally be retained. The proce-dures used do not consider material variation, purpose forobtaining the data, special purpose studies, or a
10、ny consider-ations for the users objectives; and it is common practice toincrease or reduce significant digits of reported data to becommensurate with these considerations. It is beyond the scopeof these test methods to consider significant digits used inanalysis methods for engineering design.1.4.2
11、 Measurements made to more significant digits orbetter sensitivity than specified in these test methods shall notbe regarded a nonconformance with this standard.1.5 This standard is written using SI units. Inch-pound unitsare provided for convenience. The values stated in inch poundunits may not be
12、exact equivalents; therefore, they shall beused independently of the SI system. Combining values fromthe two systems may result in nonconformance with thisstandard.1.5.1 The gravitational system of inch-pound units is usedwhen dealing with inch-pound units. In this system, the pound(lbf) represents
13、a unit of force (weight), while the unit for massis slugs. The rationalized slug unit is not given, unless dynamic(F = ma) calculations are involved.1.5.2 It is common practice in the engineering/constructionprofession to concurrently use pounds to represent both a unitof mass (lbm) and of force (lb
14、f). This implicitly combines twoseparate systems of units; that is, the absolute system and thegravitational system. It is scientifically undesirable to combinethe use of two separate sets of inch-pound units within a singlestandard. As stated, this standard includes the gravitationalsystem of inch-
15、pound units and does not use/present the slugunit for mass. However, the use of balances or scales recordingpounds of mass (lbm) or recording density in lbm/ft3shall notbe regarded as nonconformance with this standard.1.6 This standard does not purport to address all of thesafety concerns, if any, a
16、ssociated 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.1This test method is under the jurisdiction ofASTM Committee D18 on Soil andRock and is the direc
17、t responsibility of Subcommittee D18.09 on Cyclic andDynamic Properties of Soils.Current edition approved Nov. 1, 2007. Published November 2007.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.2. Referenced Documents2.1 ASTM Standards
18、:2D 653 Terminology Relating to Soil, Rock, and ContainedFluidsD 3740 Practice for Minimum Requirements for AgenciesEngaged in the Testing and/or Inspection of Soil and Rockas Used in Engineering Design and ConstructionD 4428/D 4428M Test Methods for Crosshole Seismic Test-ingD 5778 Test Method for
19、Performing Electronic FrictionCone and Piezocone Penetration Testing of SoilsD 6026 Practice for Using Significant Digits in Geotechni-cal Data3. Terminology3.1 Definitions:3.1.1 For definitions of terms used in these test methods, seeTerminology D 653.4. Summary of Test Method4.1 The Downhole Seism
20、ic Test makes direct measurementsof compression (P-) or shear (S-) wave velocities, or both, in aborehole advanced through soil or rock or in a cone penetrationtest sounding. It is similar in several respects to the CrossholeSeismic Test Method (Test Methods D 4428/D 4428M). Aseismic source is used
21、to generate a seismic wave train at theground surface offset horizontally from the top of a casedborehole. Downhole receivers are used to detect the arrival ofthe seismic wave train. The downhole receiver(s) may bepositioned at selected test depths in a borehole or advanced aspart of the instrumenta
22、tion package on an electronic conepenetrometer (Test Method D 5778). The seismic source isconnected to and triggers a data recording system that recordsthe response of the downhole receiver(s), thus measuring thetravel time of the wave train between the source and receiv-er(s). Measurements of the a
23、rrival times (travel time fromsource to sensor) of the generated P- and S- waves are thenmade so that the low strain (104%) in-situ P-wave andS-wave velocities can be determined. The calculated seismicvelocities are used to characterize the natural or man-made (orboth) properties of the stratigraphi
24、c profile.5. Significance and Use5.1 The seismic downhole method provides a designer withinformation pertinent to the seismic wave velocities of thematerials in question (1). The P-wave and S-wave velocitiesare directly related to the important geotechnical elastic con-stants of Poissons ratio, shea
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