ASTM E799-2003(2015) 9148 Standard Practice for Determining Data Criteria and Processing for Liquid Drop Size Analysis《测定液滴大小分析用数据判别和数据处理的标准实践规程》.pdf
《ASTM E799-2003(2015) 9148 Standard Practice for Determining Data Criteria and Processing for Liquid Drop Size Analysis《测定液滴大小分析用数据判别和数据处理的标准实践规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM E799-2003(2015) 9148 Standard Practice for Determining Data Criteria and Processing for Liquid Drop Size Analysis《测定液滴大小分析用数据判别和数据处理的标准实践规程》.pdf(5页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E799 03 (Reapproved 2015)Standard Practice for DeterminingData Criteria and Processing for Liquid Drop Size Analysis1This standard is issued under the fixed designation E799; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revis
2、ion, 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.1. Scope1.1 This practice gives procedures for determining appro-priate sample size, size class widths, character
3、istic drop sizes,and dispersion measure of drop size distribution. The accuracyof and correction procedures for measurements of drops usingparticular equipment are not part of this practice. Attention isdrawn to the types of sampling (spatial, flux-sensitive, orneither) with a note on conversion req
4、uired (methods notspecified). The data are assumed to be counts by drop size. Thedrop size is assumed to be the diameter of a sphere ofequivalent volume.1.2 The values stated in SI units are to be regarded asstandard. No other units of measurement are included in thisstandard.1.3 The analysis applie
5、s to all liquid drop distributionsexcept where specific restrictions are stated.2. Referenced Documents2.1 ASTM Standards:2E1296 Terminology for Liquid Particle Statistics (With-drawn 1997)32.2 ISO Standards:4133201 Particle Size Analysis-Laser Diffraction Methods92761 Representation of Results of P
6、article Size Analysis-Graphical Representation92722 Calculation ofAverage Particle Sizes/Diameters andMoments from Particle Size Distribution3. Terminology3.1 Definitions of Terms Specific to This Standard:3.1.1 spatial, adjdescribes the observation or measure-ment of drops contained in a volume of
7、space during such shortintervals of time that the contents of the volume observed donot change during any single observation. Examples of spatialsampling are single flash photography or laser holography.Anysum of such photographs would also constitute spatial sam-pling. A spatial set of data is prop
8、ortional to concentration:number per unit volume.3.1.2 flux-sensitive, adjdescribes the observation of mea-surement of the traffic of drops through a fixed area duringintervals of time. Examples of flux-sensitive sampling are thecollection for a period of time on a stationary slide or in asampling c
9、ell, or the measurement of drops passing through aplane (gate) with a shadowing on photodiodes or by usingcapacitance changes. An example that may be characterized asneither flux-sensitive nor spatial is a collection on a slidemoving so that there is measurable settling of drops on the slidein addit
10、ion to the collection by the motion of the slide throughthe swept volume. Optical scattering devices sensing continu-ously may be difficult to identify as flux-sensitive, spatial, orneither due to instantaneous sampling of the sensors and themeasurable accumulation and relaxation time of the sensors
11、.For widely spaced particles sampling may resemble temporaland for closely spaced particles it may resemble spatial. Aflux-sensitive set of data is proportional to flux density: numberper (unit area unit time).3.1.3 representative, adjindicates that sufficient data havebeen obtained to make the effe
12、ct of random fluctuationsacceptably small. For temporal observations this requiressufficient time duration or sufficient total of time durations. Forspatial observations this requires a sufficient number of obser-vations.Aspatial sample of one flash photograph is usually notrepresentative since the
13、drop population distribution fluctuateswith time. 1000 such photographs exhibiting no correlationwith the fluctuations would most probably be representative.Atemporal sample observed over a total of periods of time thatis long compared to the time lapse between extreme fluctua-tions would most proba
14、bly be representative.3.1.4 local, adjindicates observations of a very small part(volume or area) of a larger region of concern.3.2 SymbolsRepresentative Diameters:1This practice is under the jurisdiction ofASTM Committee E29 on Particle andSpray Characterization and is the direct responsibility of
15、Subcommittee E29.02 onNon-Sieving Methods.Current edition approved March 1, 2015. Published March 2015. Originallyapproved in 1981. Last previous edition approved in 2009 as E799 03 (2009).DOI: 10.1520/E0799-03R15.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM C
16、ustomer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.3The last approved version of this historical standard is referenced onwww.astm.org.4Available from American National Standards Institute (ANSI), 2
17、5 W. 43rd St.,4th Floor, New York, NY 10036, http:/www.ansi.org.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States13.2.1 (Dpq) is defined to be such that:5Dpqp2q!5(iDip(iDiq(1)where:D= the overbar in Ddesignates an averagingprocess,(pq)p
18、q = the algebraic power of Dpq,p and q = the integers 1, 2, 3 or 4,Di= the diameter of the ith drop, andi= the summation of Dipor Diq, representingall drops in the sample.0=pand q = values 0, 1, 2, 3, or 4.iDi0is the total number of drops in the sample, and someof the more common representative diam
19、eters are:D10= linear (arithmetic) mean diameter,D20= surface area mean diameter,D30= volume mean diameter,D32= volume/surface mean diameter (Sauter), andD43= mean diameter over volume (De Broukere or Herdan).See Table 1 for numerical examples.3.2.2 DNf,DLf,DAf, and DVfare diameters such that thefra
20、ction, f, of the total number, length of diameters, surfacearea, and volume of drops, respectively, contain precisely all ofthe drops of smaller diameter. Some examples are:DN0.5= number median diameter,DL0.5= length median diameter,DA0.5= surface area median diameter,DV0.5= volume median diameter,
21、andDV0.9= drop diameter such that 90 % of the total liquidvolume is in drops of smaller diameter.See Table 2 for numerical examples.3.2.3logDgm! 5(ilogDi!/n (2)where:n = number of drops,Dgm= the geometric mean diameter3.2.4DRR5 DVF(3)where:f = 11e 0.6321, andDRR= Rosin-Rammler Diameter fitting the R
22、osin-Rammlerdistribution factor (see Terminology E1296).5This notation follows: Mugele, R.A., and Evans, H.D., “Droplet Size Distri-bution in Sprays,” Industrial and Engineering Chemistry, Vol 43, No. 6, 1951, pp.13171324.TABLE 1 Sample Data Calculation TableSize Class Bounds(Diameterin Micrometres)
23、ClassWidthNo. ofDrops inClassSum of Dirin Each Size ClassAVol. %in ClassBCum. %by Vol.DiDi2Di3Di4240360 120 65 19.5 1035.91061.81091. 10120.005 0.005360450 90 119 48.2 19.6 8.0 3 0.021 0.026450562.5 112.5 232 117.4 59.7 30.5 16 0.081 0.107562.5703 140.5 410 259.4 164.8 105.2 67 0.280 0.387703878 175
24、 629 497.2 394.7 314.5 252 0.837 1.2248781097 219 849 838.4 831.3 827.6 827 2.202 3.42610971371 274 990 1221.7 1513.7 1883.2 2352 5.010 8.43613711713 342 981 1512.7 2342.1 3641.1 5683 9.687 18.12317132141 428 825 1589.8 3076.1 5976.2 11657 15.900 34.02321412676 535 579 1394.5 3372.5 8189.2 19965 21.
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