ASTM D6326-2008 516 Standard Practice for The Selection of Maximum Transit-Rate Ratios and Depths for the U S Series of Isokinetic Suspended-Sediment Samplers《U S 系列等动力悬浮-沉淀取样器最大接转.pdf
《ASTM D6326-2008 516 Standard Practice for The Selection of Maximum Transit-Rate Ratios and Depths for the U S Series of Isokinetic Suspended-Sediment Samplers《U S 系列等动力悬浮-沉淀取样器最大接转.pdf》由会员分享,可在线阅读,更多相关《ASTM D6326-2008 516 Standard Practice for The Selection of Maximum Transit-Rate Ratios and Depths for the U S Series of Isokinetic Suspended-Sediment Samplers《U S 系列等动力悬浮-沉淀取样器最大接转.pdf(3页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 6326 08Standard Practice forThe Selection of Maximum Transit-Rate Ratios and Depthsfor the U.S. Series of Isokinetic Suspended-SedimentSamplers1This standard is issued under the fixed designation D 6326; the number immediately following the designation indicates the year oforiginal ad
2、option 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 practice covers the maximum transit-rate ratios anddepths for se
3、lected suspended-sediment sampler-nozzle-container configurations.1.2 This practice explains the reasons for limiting thetransit-rate ratio and depths that suspended-sediment samplerscan be correctly used.1.3 This practice give maximum transit-rate ratios anddepths for selected isokinetic suspended-
4、sediment sampler/nozzle/container size for samplers developed by the FederalInteragency Sedimentation Project.1.4 Throughout this practice, a samplers lowering rate isassumed to be equal to its raising rate.1.5 The values stated in inch-pound units are to be regardedas the standard. The SI units giv
5、en in parentheses are forinformation only.1.6 This standard does not purport to address all of thesafety concerns, if any, associated 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 regulator
6、y limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2D 1129 Terminology Relating to WaterD 4410 Terminology for Fluvial SedimentD 4411 Guide for Sampling Fluvial Sediment in Motion3. Terminology3.1 Definitions:3.1.1 For Definitions of terms used in this practice, refer toTerminology
7、 D 1129 and Terminology D 4410.3.2 Definitions of Terms Specific to This Standard:3.2.1 approach anglethe angle between the velocity vec-tor of the approaching flow and the centerline of the nozzle.3.2.2 approaching flowflow immediately upstream of anozzles entrance.3.2.3 bag samplera suspended-sedi
8、ment sampler thatuses a flexible collapsible bag as a sample container.3.2.4 compression ratethe rate at which the air is com-pressed in the sample container and is a function of the speedat which the sampler is lowered in the sampling vertical.3.2.5 isokineticthe conditions under which the directio
9、nand speed of the flowing water/sediment mixture are un-changed upon entering the nozzle of a suspended-sedimentsampler.3.2.6 maximum transit ratethe maximum speed at whichthe sampler can be lowered and raised in the sampling verticaland still have the sample collected isokinetically.3.2.7 transit r
10、atethe speed at which the suspended sedi-ment sampler is lowered and raised in the sampling vertical.3.2.8 transit-rate ratiothe ratio computed by dividing thetransit rate by the mean stream velocity in the vertical beingsampled.4. Summary of Practice4.1 This practice describes the maximum transit-r
11、ate ratiosand depths that can be used for selected isokinetic suspended-sediment sampler/nozzle/container configurations to ensureisokinetic sampling. (Manufacturing differences in the produc-tion of sediment samplers may result in some samplers notcollecting a sample isokinetically. It is the users
12、 responsibilityto ensure through calibration that the sampler does collect asample isokinetically. Guide D 4411 describes a process forchecking calibration of suspended-sediment samplers.)5. Significance and Use5.1 This practice describes the maximum transit-rate ratiosand depths that can be used fo
13、r selected isokinetic suspended-sediment sampler/nozzle/container configurations in order toinsure isokinetic sampling.5.2 This practice is designed to be used by field personnelcollecting whole-water samples from open channel flow.1This practice is under the jurisdiction of ASTM Committee D19 on Wa
14、ter andthe direct responsibility of Subcommittee D19.07 on Sediments, Geomorphology,and Open-Channel Flow.Current edition approved May 1, 2008. Published May 2008. Originallyapproved in 1998. Last previous edition approved in 2003 as D 6326 03.2For referenced ASTM standards, visit the ASTM website,
15、www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.6.
16、 Background6.1 The distribution of velocity and sediment concentrationin a sampling vertical is very complex. The velocity of the flowwill generally decrease with depth while the suspended-sediment concentration will normally increase with depth in avertical. For a sediment sampler to collect a repr
17、esentativevolume, the water-sediment mixture must enter the nozzlewithout undergoing a change in direction or speed. Ideally, thewater must enter the nozzle at the same velocity as theapproaching flow. When the velocity is unchanged uponentering the nozzle, the condition is termed isokinetic. Depth-
18、and point-integrating samplers sample isokinetically only iftheir nozzles point directly into the flow and the samplers areused within certain ranges of depths. Depth-integrating sam-plers also operate isokinetically only when their vertical transitrate is within a given range.6.2 If the velocity of
19、 the water-sediment mixture enteringthe nozzle exceeds that of the approach velocity, the samplesediment concentration is smaller than the concentration of theapproaching flow. Decreasing the velocity in the nozzle com-pared to the approach velocity will cause the sample sedimentconcentration to be
20、greater than that of the approaching flow.The magnitude of the difference between nozzle and approachvelocity is related to the degree of increase or decrease inconcentration. The concentration shift is also related to thesizes of the grains in suspension. The larger the grain size, thelarger the po
21、tential shift in concentrations will be.6.3 The sampler will not operate properly if the transit rateis too fast, the sampling depth is too great, or both. See GuideD 4411 for more details on proper use of depth integratingsuspended sediment samplers.6.4 Two factors control the maximum transit rate
22、for asampler: approach angle and the compression rate.6.4.1 At a given sample vertical, as the transit rate increases,the approach angle increases. If the transit-rate exceeds 0.4times the mean flow velocity in the vertical, the intake velocityundergoes a significant acceleration due to changes in f
23、lowdirection. The maximum vertical transit rate for a depth-integrating sampler or point-integrating sampler used for depthintegrating, should not exceed 0.4 times the mean streamvelocity of the section.6.4.2 The compression rate, which is related to the compres-sion limit, may restrict the vertical
24、 transit rate to less than 0.4times the mean stream velocity when a rigid sample containeris used. As the sampler is lowered through the water, theincreasing water pressure compresses the air in the samplercontainer. If the sampler is lowered slowly, the volume of theincoming water exceeds the volum
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