DocumentCode :
121526
Title :
Estimating the performance of product integrated photovoltaic (PIPV) cells under indoor conditions for the support of design processes
Author :
Apostolou, Georgia ; Verwaal, Martin ; Reinders, Angele
Author_Institution :
Design for Sustainability, Delft Univ. of Technol., Delft, Netherlands
fYear :
2014
fDate :
8-13 June 2014
Abstract :
To estimate the performance of PV products´ cells in an indoor environment we have developed an analytical model, which calculates the efficiency and power production of various types of PV technologies as a function of distance from natural and artificial light sources. The model aims to assist designers during the energy balance calculations when creating PV-integrated products for indoor use. To validate the model, PV cells of 10 commercially available PV-powered products in the power range of 0.8mWp to 4mWp, have been measured indoors, under three types of artificial illumination (halogen, fluorescent, LED lights) and natural light. Since the model´s purpose is to give a best estimation for design processes, the accuracy does not need to be high. Moreover, given the difficulty to accurately measure low irradiance (<; 20W/m2) so far it seems impossible to achieve highly accurate results. The measurements´ analysis showed that the model can sufficiently predict the performance of PV products´ cells under CFL and LED artificial lighting, as well as under mixed indoor light with a typical error around 25%. Measurements showed that under typical mixed indoor irradiance of up to 20W/m2, a-Si cells´ efficiency ranges between 5-6W/m2 (48%), c-Si cells´ between 5-7W/m2 (72%) and mc-Si cells´ between 4-6W/m2 (65%). Still, there are significant deviations on the model outcome for the halogen lamp, for which reason the model cannot be used in that situation yet.
Keywords :
LED lamps; fluorescent lamps; solar cells; CFL artificial lighting; LED artificial lighting; PIPV cells; PV product cells; PV technologies; PV-integrated products; artificial illumination; artificial light sources; design processes; fluorescent lights; halogen lights; indoor irradiance; power production; product integrated photovoltaic cells; Accuracy; Analytical models; Fluorescence; Light sources; Predictive models; Production; Voltage measurement; PV cells; PV products; efficiency; indoor environment; modeling; performance;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Photovoltaic Specialist Conference (PVSC), 2014 IEEE 40th
Conference_Location :
Denver, CO
Type :
conf
DOI :
10.1109/PVSC.2014.6925027
Filename :
6925027
Link To Document :
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