ASTM D5096-2002(2007) Standard Test Method for Determining the Performance of a Cup Anemometer or Propeller Anemometer《杯形风速计或螺旋桨式风速计性能测定的标准试验方法》.pdf
《ASTM D5096-2002(2007) Standard Test Method for Determining the Performance of a Cup Anemometer or Propeller Anemometer《杯形风速计或螺旋桨式风速计性能测定的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM D5096-2002(2007) Standard Test Method for Determining the Performance of a Cup Anemometer or Propeller Anemometer《杯形风速计或螺旋桨式风速计性能测定的标准试验方法》.pdf(5页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 5096 02 (Reapproved 2007)Standard Test Method forDetermining the Performance of a Cup Anemometer orPropeller Anemometer1This standard is issued under the fixed designation D 5096; the number immediately following the designation indicates the year oforiginal adoption or, in the case o
2、f 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 Start-ing Threshold, Distance Constant, Tran
3、sfer Function, andOff-Axis Response of a cup anemometer or propeller anemom-eter from direct measurement in a wind tunnel.1.2 This test method provides for a measurement of cupanemometer or propeller anemometer performance in theenvironment of wind tunnel flow. Transference of valuesdetermined by th
4、ese methods to atmospheric flow must be donewith an understanding that there is a difference between thetwo flow systems.1.3 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-p
5、riate safety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2D 1356 Terminology Relating to Sampling and Analysis ofAtmospheresD 3631 Test Methods for Measuring Surface AtmosphericPressure3. Terminology3.1 For de
6、finitions of terms used in this standard, refer toTerminology D 1356.3.2 Definitions of Terms Specific to This Standard:3.2.1 starting threshold (Uo, m/s)the lowest wind speed atwhich a rotating anemometer starts and continues to turn andproduce a measurable signal when mounted in its normalposition
7、. The normal position for cup anemometers is with theaxis of rotation vertical, and the normal position for propelleranemometers is with the axis of rotation aligned with thedirection of flow. Note that if the anemometer axis is notaligned with the direction of flow, the calculated wind speedcompone
8、nt parallel to the anemometer axis is used to deter-mine starting threshold.3.2.2 distance constant (L, m)the distance the air flowspast a rotating anemometer during the time it takes the cupwheel or propeller to reach (1 1/e) or 63 % of the equilibriumspeed after a step change in wind speed (1).3Th
9、e response ofa rotating anemometer to a step change in which wind speedincreases instantaneously from U =0toU=Ufis (2):Ut5 Uf1 2 e2t/ t! (1)where:Ut= is the instantaneous indicated wind speed at time t inm/s,Uf= is the final indicated wind speed, or wind tunnel speed,in m/s,t = is the elapsed time i
10、n seconds after the step changeoccurs, andt = is the time constant of the instrument.Distance Constant is: L 5 Uft (2)3.2.3 transfer function (f= a+bR, m/s)the linear rela-tionship between wind speed and the rate of rotation of theanemometer throughout the specified working range. fis thepredicted w
11、ind speed in m/s, a is a constant, commonly calledzero offset, in m/s, b is a constant representing the windpassage in m/r for each revolution of the particular anemometercup wheel or propeller, and R is the rate of rotation in r/s. Itshould be noted that zero offset is not the same as startingthres
12、hold. In some very sensitive anemometers the constant a,zero offset, may not be significantly greater than zero. Theconstants a and b must be determined by wind tunnel measure-ment for each type of anemometer (3).3.2.4 off-axis response (U/(Ufcos u)the ratio of theindicated wind speed (U) at various
13、 angles of attack (u)totheindicated wind speed at zero angle of attack (Uf) multiplied bythe cosine of the angle of attack. This ratio compares the actualoff-axis response to a cosine response.1This test method is under the jurisdiction of ASTM Committee D22 on AirQuality and is the direct responsib
14、ility of Subcommittee D22.11 on Meteorology.Current edition approved Oct. 1, 2007. Published December 2007. Originallyapproved in 1990. Last previous edition approved in 2002 as D5096 - 02.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at servic
15、eastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.3The boldface numbers in parentheses refer to the list of references at the end ofthis standard.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Cons
16、hohocken, PA 19428-2959, United States.3.3 Symbols:a (m/s) = zero offset constantb (m/r) = wind passage (apparent pitch) constant orcalibration constantL (m) = distance constantr (none) = a shaft revolutionR (r/s) = rate of rotationt(s) = time constantt (s) = timeUo(m/s) = starting thresholdU (m/s)
17、= indicated wind speed (used in off-axis test)Uf(m/s) = final indicated wind speed or wind tunnelspeedUmax(m/s) = anemometer application rangeUt(m/s) = instantaneous indicated wind speed at time tf(m/s) = predicted wind speedu (deg) = off-axis angle of attack4. Summary of Test Method4.1 This test me
18、thod requires a wind tunnel described inSection 6, Apparatus.4.2 Starting Threshold (Uo, m/s) is determined by measur-ing the lowest speed at which a rotating anemometer starts andcontinues to turn and produce a measurable signal whenmounted in its normal position.4.3 Distance Constant (L, m) may be
19、 determined at anumber of wind speeds but must include 5 m/s, and 10 m/s. Itis computed from the time required for the anemometer rotor toaccelerate (1 1/e) or 63 % of a step change in rotational speedafter release from a restrained, non-rotating condition. Thefinal response, Uf, is the wind tunnel
20、speed as indicated by theanemometer. In order to avoid the unrealistic effects of therestrained condition, as shown in Fig. 1, the time measurementshould be made from 0.30 of Ufto 0.74 of Uf. This interval inseconds is equal to one time constant (t) and is converted to theDistance Constant by multip
21、lying by the wind tunnel speed inmeters per second (m/s).4.4 Transfer Function (f= a+bR, m/s) is determined bymeasuring the rate of rotation of the anemometer at a numberof wind speeds throughout the specified working range. In therange of wind speeds where the anemometer response isnon-linear (near
22、 threshold) a minimum of five data points arerecorded. A minimum of five additional data points arerecorded within the working range of the anemometer andwind tunnel but above the non-linear threshold region (see Fig.2). Measurements are recorded for each data point with thewind tunnel speed ascendi
23、ng and descending. The values of aand b are determined by least-squares linear regression of theindividual data points.4.5 Off-Axis Response may be measured at a number ofwind speeds but must include 5 m/s, and 10 m/s.4.5.1 Cup AnemometersA measurement is made of theoutput signal when the anemometer
24、 is inclined into the wind(representing a down-draft) and away from the wind (repre-senting an updraft), while the wind tunnel is running at a steadyspeed. The output signal is measured with the anemometer axisat 5 intervals from vertical to plus and minus 30 fromvertical. The measured signal is the
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