ASTM E2236-2010(2015) Standard Test Methods for Measurement of Electrical Performance and Spectral Response of Nonconcentrator Multijunction Photovoltaic Cells and Modules《测量非聚能多连接.pdf
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1、Designation: E2236 10 (Reapproved 2015)Standard Test Methods forMeasurement of Electrical Performance and SpectralResponse of Nonconcentrator Multijunction PhotovoltaicCells and Modules1This standard is issued under the fixed designation E2236; the number immediately following the designation indica
2、tes the 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 These test methods provide special technique
3、s needed todetermine the electrical performance and spectral response oftwo-terminal, multijunction photovoltaic (PV) devices, bothcell and modules.1.2 These test methods are modifications and extensions ofthe procedures for single-junction devices defined by TestMethods E948, E1021, and E1036.1.3 T
4、hese test methods do not include temperature andirradiance corrections for spectral response and current-voltage(I-V) measurements. Procedures for such corrections are avail-able in Test Methods E948, E1021, and E1036.1.4 These test methods may be applied to cells and modulesintended for concentrato
5、r applications.1.5 The values stated in SI units are to be regarded asstandard. No other units of measurement are included in thisstandard.1.6 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
6、 establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2E772 Terminology of Solar Energy ConversionE927 Specification for Solar Simulation for PhotovoltaicTestingE948 Test Method for Electr
7、ical Performance of Photovol-taic Cells Using Reference Cells Under Simulated Sun-lightE973 Test Method for Determination of the Spectral Mis-match Parameter Between a Photovoltaic Device and aPhotovoltaic Reference CellE1021 Test Method for Spectral Responsivity Measurementsof Photovoltaic DevicesE
8、1036 Test Methods for Electrical Performance of Noncon-centrator Terrestrial Photovoltaic Modules and ArraysUsing Reference CellsE1040 Specification for Physical Characteristics of Noncon-centrator Terrestrial Photovoltaic Reference CellsE1125 Test Method for Calibration of Primary Non-Concentrator
9、Terrestrial Photovoltaic Reference Cells Us-ing a Tabular SpectrumE1328 Terminology Relating to Photovoltaic Solar EnergyConversion (Withdrawn 2012)3E1362 Test Method for Calibration of Non-ConcentratorPhotovoltaic Secondary Reference CellsG138 Test Method for Calibration of a SpectroradiometerUsing
10、 a Standard Source of IrradianceG173 Tables for Reference Solar Spectral Irradiances: DirectNormal and Hemispherical on 37 Tilted Surface3. Terminology3.1 Definitionsdefinitions of terms used in this standardmay be found in Terminology E772 and in TerminologyE1328.3.2 Definitions of Terms Specific t
11、o This Standard:3.2.1 multijunction device, na photovoltaic device com-posed of more than one photovoltaic junction stacked on top ofeach other and electrically connected in series.3.2.2 component cells, nthe individual photovoltaic junc-tions of a multijunction device.3.3 Symbols:1These test method
12、s are under the jurisdiction of ASTM Committee E44 onSolar, Geothermal and Other Alternative Energy Sources and is the direct respon-sibility of SubcommitteeE44.09 on Photovoltaic Electric Power Conversion.Current edition approved March 1, 2015. Published April 2015. Originallyapproved in 2002. Last
13、 previous edition approved in 2010 as E223610. DOI:10.1520/E2236-10R15.2For 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 standards Document Summary page onthe AST
14、M website.3The last approved version of this historical standard is referenced onwww.astm.org.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States1C = reference cell calibration constant under the refer-ence spectrum, Am2W1Eo= total irradi
15、ance of reporting conditions, Wm2ES() = source spectral irradiance, Wm2nm1orWm2m1ER() = reference spectral irradiance, Wm2nm1orWm2m1FF = fill factor, dimensionlessi = subscript index associated with an individual com-ponent cellIo= current of test device under the reference spectrum,AI = current of
16、test device under the source spectrum, AIsc= short-circuit current, AIR= short-circuit current of reference cell under thesource spectrum, AM = spectral mismatch parameter, dimensionlessn = number of component cells in the multijunctiondevicePmax= maximum power, WQ() = quantum efficiency, dimensionl
17、essR() = spectral response, AW1RT() = test device spectral response, AW1RR() = reference cell spectral response, AW1T = temperature, CVoc= open-circuit voltage, VVb= voltage applied by dc bias source, VZ = current balance, dimensionless = wavelength, nm or m4. Significance and Use4.1 In a series-con
18、nected multijunction PV device, theincident total and spectral irradiance determines which com-ponent cell will generate the smallest photocurrent and thuslimit the current through the entire series-connected device.This current-limiting behavior also affects the fill factor of thedevice. Because of
19、 this, special techniques are needed tomeasure the correct I-Vcharacteristics of multijunction devicesunder the desired reporting conditions (see Test MethodsE1036).4.2 These test methods use a numerical parameter called thecurrent balance which is a measure of how well the testconditions replicate
20、the desired reporting conditions. When thecurrent balance deviates from unity by more than 0.03, theuncertainty of the measurement may be increased.4.3 The effects of current limiting in individual componentcells can cause problems for I-V curve translations to differenttemperature and irradiance co
21、nditions, such as the translationsrecommended in Test Methods E1036. For example, if adifferent component cell becomes the limiting cell as theirradiance is varied, a discontinuity in the current versusirradiance characteristic may be observed. For this reason, it isrecommended that I-V characterist
22、ics of multijunction devicesbe measured at temperature and irradiance conditions close tothe desired reporting conditions.4.4 Some multijunction devices have more than two termi-nals which allow electrical connections to each componentcell. In these cases, the special techniques for spectral respons
23、emeasurements are not needed because the component cells canbe measured individually. However, these I-V techniques arestill needed if the device is intended to be operated as atwo-terminal device.4.5 Using these test methods, the spectral response istypically measured while the individual component
24、 cell undertest is illuminated at levels that are less than Eo. Nonlinearityof the spectral response may cause the measured results todiffer from the spectral response at the illumination levels ofactual use conditions.5. Summary of Test Methods5.1 Spectral response measurements of the device under
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