ASTM D4891-1989(2006) Standard Test Method for Heating Value of Gases in Natural Gas Range by Stoichiometric Combustion《用化学计量燃烧法在天然气系列中煤气的发热值的试验方法》.pdf
《ASTM D4891-1989(2006) Standard Test Method for Heating Value of Gases in Natural Gas Range by Stoichiometric Combustion《用化学计量燃烧法在天然气系列中煤气的发热值的试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM D4891-1989(2006) Standard Test Method for Heating Value of Gases in Natural Gas Range by Stoichiometric Combustion《用化学计量燃烧法在天然气系列中煤气的发热值的试验方法》.pdf(4页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 4891 89 (Reapproved 2006)Standard Test Method forHeating Value of Gases in Natural Gas Range byStoichiometric Combustion1This standard is issued under the fixed designation D 4891; the number immediately following the designation indicates the year oforiginal adoption or, in the case
2、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 covers the determination of the heatingvalue of natural gases and similar g
3、aseous mixtures within therange of composition shown in Table 1.1.2 This standard involves combustible gases. It is not thepurpose of this standard to address the safety concerns, if any,associated with their use. It is the responsibility of the user ofthis standard to establish appropriate safety a
4、nd health prac-tices and determine the applicability of regulatory limitationsprior to use.2. Referenced Documents2.1 ASTM Standards:2D 1826 Test Method for Calorific (Heating) Value of Gasesin Natural Gas Range by Continuous Recording Calorim-eterE 691 Practice for Conducting an Interlaboratory Stu
5、dy toDetermine the Precision of a Test Method3. Terminology3.1 All of the terms defined in Test Method D 1826 areincluded by reference.3.2 Descriptions of Terms:3.2.1 combustion ratiothe ratio of combustion air togaseous fuel.3.2.2 stoichiometric ratiothe combustion ratio when thequantity of combust
6、ion air is just sufficient to convert all of thecombustibles in the fuel to water and carbon dioxide.3.2.3 burned gas parametera property of the burned gasafter combustion which is a function of the combustion ratio.3.2.4 critical combustion ratiofor a specific burned gasparameter, the combustion ra
7、tio at which a plot of burned gasparameter versus combustion ratio has either maximum valueor maximum slope.4. Summary of Test Method4.1 Air is mixed with the gaseous fuel to be tested. Themixture is burned and the air-fuel ratio is adjusted so thatessentially a stoichiometric proportion of air is p
8、resent. Moreexactly, the adjustment is made so that the air-fuel ratio is in aconstant proportion to the stoichiometric ratio which is arelative measure of the heating value. To set this ratio, acharacteristic property of the burned gas is measured, such astemperature or oxygen concentration.5. Sign
9、ificance and Use5.1 This test method provides an accurate and reliableprocedure to measure the total heating value of a fuel gas, ona continuous basis, which is used for regulatory compliance,custody transfer, and process control.5.2 Some instruments which conform to the requirementsset forth in thi
10、s test method can have response times on theorder of 1 min or less and can be used for on-line measurementand control.5.3 The method is sensitive to the presence of oxygen andnonparaffin fuels. For components not listed and compositionranges that fall outside those in Table 1, modifications in theme
11、thod may be required to obtain correct results.6. Apparatus6.1 A suitable apparatus for carrying out the stoichiometriccombustion method will have at least the following fourcomponents: flow meter or regulator, or both; combustionchamber; burned gas sensor; and electronics. The requirementfor each o
12、f these components is discussed below. The detailed1This test method is under the jurisdiction ofASTM Committee D03 on GaseousFuels and is the direct responsibility of Subcommittee D03.03 on Determination ofHeating Value and Relative Density of Gaseous Fuels.Current edition approved June 1, 2006. Pu
13、blished June 2006. Originallyapproved in 1989. Last previous edition approved in 2001 as D489189 (2001).2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standard
14、s Document Summary page onthe ASTM website.TABLE 1 Natural Gas Components and Range of CompositionCoveredCompound Concentration Range, mole, %Helium 0.01 to 5Nitrogen 0.01 to 20Carbon dioxide 0.01 to 10Methane 50 to 100Ethane 0.01 to 20Propane 0.01 to 20n-butane 0.01 to 10isobutane 0.01 to 10n-penta
15、ne 0.01 to 2Isopentane 0.01 to 2Hexanes and heavier 0.01 to 21Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.design of each of these components can vary. Two differentapparatus are shown in Fig. 1 and Fig. 2. In each figure theequiva
16、lent of the four necessary components are enclosed indashed lines.6.2 OverviewAir and fuel enter the apparatus and the flowof each is measured. Alternatively, only one gas flow need bemeasured if the flow of the other is kept the same duringmeasurement and calibration. This is illustrated in Fig. 2.
17、 Nextthere is a combustion chamber in which the air and fuel aremixed and burned. This can be as simple as a bunsen or meekerburner, but precautions should be taken that subsequent mea-surements of burned gas characteristics are not influenced byambient conditions. Finally, there is a sensor in the
18、burned gaswhich measures a property of this gas that is sensitive to thecombustion ratio and has a unique feature at the stoichiometricratio. Two such properties are temperature and oxygen concen-trations, and either can be measured.6.3 Flow Meter and/or RegulatorThe flow measurementpart of the appa
19、ratus should have an accuracy and precision ofthe order of 0.1 %. Likewise, if the flow is to be kept constant,the flow regulator should maintain this constant value within0.1 %.The meter or regulator for natural gas must maintain thisprecision and accuracy over the density and viscosity rangesconsi
20、stent with the composition range in Table 1.6.4 Combustion Chamber:6.4.1 There are two different types of combustion chambersthat may be used. In the first type the air and fuel are mixed andburned in a single burner. The apparatus shown in Fig. 1 hasthis type of combustion chamber.6.4.2 In the seco
21、nd type of combustion chamber, the air andfuel are each divided into two streams, and combustion takesplace simultaneously in two burners. The division of air flowmust be such that the proportion of air going to each burneralways remains the same. Likewise the division of fuel flowmust always remain
22、 the same even through fuel compositionchanges.Another requirement is that the flow divisions be suchthat one burner has a mixture with a slightly higher combustionratio than the other. The apparatus shown in Fig. 2 has this typeof combustion chamber.6.5 Burned Gas Sensor:6.5.1 The burned gas sensor
23、 must measure a characteristicof the burned gas which is a function of the combustion ratioand for which there is a critical combustion ratio related to thestoichiometric ratio. A combustion chamber of the first type(Fig. 1) would have one sensor in the burned gas and its outputsignal would constitu
24、te the desired measurement. In a combus-tion chamber of the second type (Fig. 2) there would be asensor in the burned gas from each burner. The differencebetween the two output signals would constitute the desiredmeasurement.6.5.2 There are several properties of the burned gas whichare related uniqu
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