ASTM E973-2015 red 7262 Standard Test Method for Determination of the Spectral Mismatch Parameter Between a Photovoltaic Device and a Photovoltaic Reference Cell 《测定光电装置与光电参比电池之间光谱.pdf
《ASTM E973-2015 red 7262 Standard Test Method for Determination of the Spectral Mismatch Parameter Between a Photovoltaic Device and a Photovoltaic Reference Cell 《测定光电装置与光电参比电池之间光谱.pdf》由会员分享,可在线阅读,更多相关《ASTM E973-2015 red 7262 Standard Test Method for Determination of the Spectral Mismatch Parameter Between a Photovoltaic Device and a Photovoltaic Reference Cell 《测定光电装置与光电参比电池之间光谱.pdf(8页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E973 10 (Reapproved 2015)E973 15Standard Test Method forDetermination of the Spectral Mismatch Parameter Betweena Photovoltaic Device and a Photovoltaic Reference Cell 1This standard is issued under the fixed designation E973; the number immediately following the designation indicates t
2、he year oforiginal adoption or, in the case of revision, 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 test method coversprovides a procedure for t
3、he determination of a spectral mismatch parameter used in performancetesting of photovoltaic devices.1.2 The spectral mismatch parameter is a measure of the error,error introduced in the testing of a photovoltaic device, devicethat is caused by mismatch between the spectral responses of the photovol
4、taic device the photovoltaic device under test and thephotovoltaic reference cell, cell having non-identical quantum efficiencies, as well as mismatch between the test light source andthe reference spectral irradiance distribution to which the photovoltaic reference cell was calibrated. Examples of
5、reference spectralirradiance distributions are Tables E490 or G173.1.2.1 Examples of reference spectral irradiance distributions are Tables E490 or G173.1.3 The spectral mismatch parameter can be used to correct photovoltaic performance data for spectral mismatch error.1.4 Temperature-dependent quan
6、tum efficiencies are used to quantify the effects of temperature differences between testconditions and reporting conditions.1.5 This test method is intended for use with linear photovoltaic devices.devices in which short-circuit is directly proportionalto incident irradiance.1.6 The values stated i
7、n SI units are to be regarded as standard. No other units of measurement are included in this standard.1.7 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibilityof the user of this standard to establish appropriate safety and h
8、ealth practices and determine the applicability of regulatorylimitations prior to use.2. Referenced Documents2.1 ASTM Standards:2E490 Standard Solar Constant and Zero Air Mass Solar Spectral Irradiance TablesE772 Terminology of Solar Energy ConversionE948 Test Method for Electrical Performance of Ph
9、otovoltaic Cells Using Reference Cells Under Simulated SunlightE1021 Test Method for Spectral Responsivity Measurements of Photovoltaic DevicesE1036 Test Methods for Electrical Performance of Nonconcentrator Terrestrial Photovoltaic Modules and Arrays UsingReference CellsE1039 Test Method for Calibr
10、ation of Silicon Non-Concentrator Photovoltaic Primary Reference Cells Under Global Irradiation(Withdrawn 2004)3E1125 Test Method for Calibration of Primary Non-Concentrator Terrestrial Photovoltaic Reference Cells Using a TabularSpectrumE1328 Terminology Relating to Photovoltaic Solar Energy Conver
11、sion (Withdrawn 2012)3E1362 Test Method for Calibration of Non-Concentrator Photovoltaic Secondary Reference CellsG138 Test Method for Calibration of a Spectroradiometer Using a Standard Source of IrradianceG173 Tables for Reference Solar Spectral Irradiances: Direct Normal and Hemispherical on 37 T
12、ilted Surface1 This test method is under the jurisdiction of ASTM Committee E44 on Solar, Geothermal and Other Alternative Energy Sources and is the direct responsibility ofSubcommittee E44.09 on Photovoltaic Electric Power Conversion.Current edition approved March 1, 2015Dec. 1, 2015. Published Apr
13、il 2015January 2016. Originally approved in 1983. Last previous edition approved in 20102015 asE973 10. 10(2015). DOI: 10.1520/E0973-10R15.10.1520/E0973-15.2 For referencedASTM standards, visit theASTM website, www.astm.org, or contactASTM Customer Service at serviceastm.org. For Annual Book of ASTM
14、 Standardsvolume information, refer to the standards Document Summary page on the ASTM website.This document is not an ASTM standard and is intended only to provide the user of an ASTM standard an indication of what changes have been made to the previous version. Becauseit may not be technically pos
15、sible to adequately depict all changes accurately, ASTM recommends that users consult prior editions as appropriate. In all cases only the current versionof the standard as published by ASTM is to be considered the official document.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, W
16、est Conshohocken, PA 19428-2959. United States1SI10 Standard for Use of the International System of Units (SI): The Modern Metric System3. Terminology3.1 DefinitionsDefinitions of terms used in this test method may be found in Terminology E772 and Terminology E1328.3.2 Definitions of Terms Specific
17、to This Standard:3.2.1 test light source, na source of illumination whose spectral irradiance will be used for the spectral mismatch calculation.The light source may be natural sunlight or a solar simulator.3.3 SymbolsThe following symbols and units are used in this test method:Mspectral mismatch pa
18、rameter,measurement error in short-circuit current,wavelength, m or nm,Rr()spectral response of reference cell, AW1,Rt()spectral response of photovoltaic device, AW1,Eirradiance, Wm2,E ()spectral irradiance, Wm2 m1 or Wm2 nm1, andEo()reference spectral irradiance, Wm2 m1 or Wm2 nm1.NOTE 1Following n
19、ormal SI rules for compound units (see Practice SI10), the units for spectral irradiance, the derivative of irradiance with respectto wavelength dE/d(), would be Wm3. However, to avoid possible confusion with a volumetric power density unit and for convenience in numericalcalculations, it is common
20、practice to separate the wavelength in the compound unit. This compound unit is also used in Tables G173 .3.3 Symbols: The following symbols and units are used in this test method:3.3.1 wavelength (m or nm).3.3.2 Das a subscript, refers to the device to be tested.3.3.3 Ras a subscript, refers to the
21、 reference cell.3.3.4 Sas a subscript, refers to the test light source.3.3.5 0as a subscript, refers to the reference spectral irradiance distribution.3.3.6 Aactive area, (m2).3.3.7 Eirradiance (Wm2).3.3.8 ES()spectral irradiance, test light source (Wm2m1 or Wm2nm1).3.3.9 E0()spectral irradiance, to
22、 which the reference cell is calibrated (Wm2m1 or Wm2nm1).3.3.9.1 DiscussionFollowing normal SI rules for compound units (see Practice SI10), the units for spectral irradiance, the derivative of irradiance,with respect to wavelength, dE/d, would be Wm3. However, to avoid possible confusion with a vo
23、lumetric power density unitand for convenience in numerical calculations, it is common practice to separate the wavelength in the compound unit. Thiscompound unit is also used in Tables G173.3.3.10 Ishort-circuit current (A).3.3.11 JLlight-generated photocurrent density (Am2).3.3.12 Mspectral mismat
24、ch parameter (dimensionless).3.3.13 Q(,T)quantum efficiency (electrons per photon or %).3.3.14 ()partial derivative of quantum efficiency with respect to temperature (electrons per photonC1 or %C1).3.3.15 R()spectral responsivity (AW1).3.3.16 Ttemperature (C).3.3.17 TR0temperature, at which the refe
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