ISO 9845-1-1992 Solar energy reference solar spectral irradiance at the ground at different receiving conditions part 1 direct normal and hemispherical solar ir.pdf
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1、INTERNATIONAL STANDARD IS0 98454 First edition 1992-10-15 Solar energy - Reference solar spectral irradiance at the ground at different receiving conditions - Part 1: Direct normal and hemispherical solar irradiance for air mass I,5 gnergie solaire - Rayonnement solaire spectral de Mkrence au sol so
2、us diffkentes conditions de rkeption - Partie 1: Rayonnernent solaire direct normal et hbmisph thus 1 In - 8 3,0. 80 in t0 3 Application of the spectral data for deriving effective solar lrradiances and solar spectrum weighted quantities 3.1 Spectrally modified total solar lrradlance If R(R) is the
3、wavelength-dependent property of a device (such as responsivity, transmittance, reflectance, absorptance) and I;:,(R) represents the solar spectral irradiance, then I:, the effective total solar irradiance weighted with the spectral property of this device, can be calculated as an integral of the pr
4、oduct of LA) and R(R). Es = R(I)El dR . . . 3.2 Solar spectrum weighted property The mean value R, of the property R(R), which is ef- fective if the total solar spectrum is applied, can in general be calculated by the following equation. . . (2) Since the spectral property and the spectral ir- radia
5、nce are usually known as discrete values, the integration shall be performed as summations so that equations (1) and (2) become, respectively, N E$ = CRQ,)EAI, . . (3) iz I and Rs= N 4 . . . where ,Ii is the wavelength of the fib point out of Ii for which the spectral data are known. The values repr
6、esent the practical limits of the summation. 3.3 Weighted ordinate method The weighted ordinate method is described by the summations indicated in equations (3) and (4) by using the values Ii, AR, and EA. given in table 1. In- terpolation between nearby values of the spectral response, R(R), is ofte
7、n required since the wave- lengths of digitally recorded response curves may differ from those given in table 1. 3.4 Selected ordinate method In the selected ordinate method the solar spectral irradiance is divided into m wavelength intervals, each containing l/m of the total solar irradiance, ho.,
8、and having a centroid wavelength Li. This re- sults in all the products EA,AJi being equal to Eo.,/m, allowing them to bk factored from the summation. Equations (3) and (4) respectively re- duce to the following: i-. I and R, = l/m2 R(E.,) . . . (3) i-l Appropriate values for the centroid wavelength
9、s for 100 and 50 selected ordinates are provided in tables 2 and 3. For devices with relatively smooth spectral responsivity, 50-point selected ordinates are ad- equate. For devices with spectral responses that contain complex structures, the loo-point selected ordinate or weighted ordinate method s
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