ASTM E2071-2000(2010) Standard Practice for Calculating Heat of Vaporization or Sublimation from Vapor Pressure Data《从蒸气压力数据中计算汽化热或蒸馏热的标准实施规程》.pdf
《ASTM E2071-2000(2010) Standard Practice for Calculating Heat of Vaporization or Sublimation from Vapor Pressure Data《从蒸气压力数据中计算汽化热或蒸馏热的标准实施规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM E2071-2000(2010) Standard Practice for Calculating Heat of Vaporization or Sublimation from Vapor Pressure Data《从蒸气压力数据中计算汽化热或蒸馏热的标准实施规程》.pdf(4页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E2071 00 (Reapproved 2010)Standard Practice forCalculating Heat of Vaporization or Sublimation from VaporPressure Data1This standard is issued under the fixed designation E2071; the number immediately following the designation indicates the year oforiginal adoption or, in the case of re
2、vision, 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 describes the calculation of the heat ofvaporization of a liquid or the heat of subl
3、imation of a solidfrom measured vapor pressure data. It is applicable to pureliquids, azeotropes, pure solids, and homogenous solid solu-tions over the temperature range for which the vapor pressureequation fitted to the measured data is applicable.NOTE 1This practice is generally not applicable to
4、liquid mixtures.For a pure liquid or azeotrope, composition does not change uponvaporization so that the integral heat of vaporization is identical to thedifferential heat of vaporization. Non-azeotropic liquid mixtures changecomposition upon vaporizing. Heat of vaporization data computed fromthis p
5、ractice for a liquid mixture are valid only as an approximation to themixture differential heat of vaporization; it is not a valid approximation tothe mixture integral heat of vaporization.1.2 The values stated in SI units are to be regarded asstandard. No other units of measurement are included in
6、thisstandard.1.3 There is no ISO standard equivalent to this practice.1.4 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
7、 applica-bility of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2D2879 Test Method for Vapor Pressure-Temperature Rela-tionship and Initial Decomposition Temperature of Liquidsby IsoteniscopeE1142 Terminology Relating to Thermophysical PropertiesE1194 Test Method for
8、 Vapor PressureE1719 Test Method for Vapor Pressure of Liquids byEbulliometryE1782 Test Method for Determining Vapor Pressure byThermal Analysis3. Terminology3.1 Symbols:3.1.1 A, B, CAntoine vapor pressure equation constants(log10, kPa, K), Antoine vapor pressure equation:log10P 5 A 2 B/T 1 C!3.1.2
9、Pvapor pressure, kPa.3.1.3 Pccritical pressure, kPa.3.1.4 Prreduced pressure = P/Pc.3.1.5 Tabsolute temperature, K.3.1.6 Tccritical temperature, K.3.1.7 Trreduced temperature = T/Tc.3.1.8 Vmolar volume, cm3/mol.3.1.9 Rgas constant, 8.31433 J/mol-K; 8314330 kPa-cm3/mol-K.3.1.10 DHVheat of vaporizatio
10、n, J/mol.3.1.11 DZVdifference in compressibility factor (Z = PV/RT) upon vaporization. Clapeyron equation:DHV52RDZVdlnP!/d1/T!#3.1.11.1 DiscussionThe subscript “V” will be usedthroughout this practice to designate the vaporization of aliquid. If the vapor pressure data were measured for a solid,subs
11、titute the subscript “S” for the sublimation of a solid.3.2 Definitions:3.2.1 Specialized terms used in this practice are defined inTerminology E1142.3.2.2 sublimationtransition from a solid phase to a gas-eous phase.3.2.3 vaporizationtransition from a liquid phase to agaseous phase.4. Summary of Pr
12、actice4.1 Vapor pressure data are measured by other referencedASTM Standards and then correlated with the Antoine equa-tion. The heat of vaporization or sublimation is computed at the1This practice is under the jurisdiction of Committee E37 on Thermal Measure-ments and is the direct responsibility o
13、f Subcommittee E37.10 on Fundamental,Statistical and Mechanical Properties.Current edition approved July 1, 2010. Published August 2010. Originallyapproved in 2000. Last previous edition approved in 2000 as E2071 00 (2005).DOI: 510.1520/E2071-00R10.2For referenced ASTM standards, visit the ASTM webs
14、ite, 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 Stat
15、es.desired temperature from the vapor-pressure temperature de-rivative from the fitted Antoine equation by use of theClapeyron equation (1).3In the Clapeyron equation, DZVisdetermined by either the Clausius-Clapeyron (2) approxima-tion DZV5 1! or the Haggenmacher (3) approximationDZV5 $1Pr/Tr!3#%1/2
16、! .4.2 An example calculation is given in Annex A1.5. Significance and Use5.1 If the heat of vaporization or sublimation is absorbed orliberated in a process at constant pressure, it is called enthalpyof vaporization or sublimation. Enthalpy of vaporization orsublimation is a fundamental thermodynam
17、ic property of aliquid or solid. It is an important quantity in the design of heatexchangers and other chemical process units. Enthalpy ofvaporization is also used to calculate solubility parameters (4).5.2 This practice may be used in research, regulatorycompliance, and quality assurance applicatio
18、ns.6. Experimental Vapor Pressure Data6.1 Vapor pressure data are measured by Test MethodsD2879, E1194, E1719,orE1782. Note the safety precautionscontained in the test method used.6.1.1 Vapor pressure data from other reliable sources, forexample, peer-review technical journals, may be used. Thesourc
19、e of the vapor pressure data must be noted.6.2 The measured vapor pressure data are fitted to anAntoine vapor pressure equation. See 10.3 in Test MethodE1719 for details on least-squares regression of vapor pressuredata.7. Calculation7.1 At each temperature of interest, calculate the vaporpressure f
20、rom the Antoine equation and calculate the vapor-pressure temperature derivative from the fitted Antoine equa-tion constants from:dlnP!/d1/T!# 522.3025851BT2/T 1 C!2#7.2 Calculate an approximation to DZVat each temperature.7.2.1 The Clausius-Clapeyron approximation to DZVis:DZV 1.07.2.2 The Haggenma
21、cher approximation to DZVis:DZV5 $1Pr/Tr!3#%12NOTE 2The Clausius-Clapyeron approximation is generally used forsolids and for liquids at low Tr. The Haggenmacher approximation isgenerally used for liquids up to Tr 0.75.7.2.3 If equation of state (Z) data are available for both thecondensed and gaseou
22、s phases, DZVmay be calculated directlyfrom the equation of state data.7.3 Calculate the heat of vaporization or heat of sublimationat each temperature from the Clapeyron equation:DHV52RDZVdlnP!/d1/T!#8. Report8.1 Report the following information:8.1.1 The test method and source of the vapor pressur
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