Title :
Dynamic Real-Time I–V Curve Measurement System for Indoor/Outdoor Characterization of Photovoltaic Cells and Modules
Author :
Yandt, Mark D. ; Cook, John P. D. ; Kelly, Michael ; Schriemer, Henry ; Hinzer, Karin
Author_Institution :
Sunlab, Univ. of Ottawa, Ottawa, ON, Canada
Abstract :
A test method that measures the current-voltage I-V curve of a photovoltaic (PV) cell or module in real time is presented as a means of characterizing and understanding the inherently variable nature of performance under field conditions. Temperature, incident light intensity, orientation to the light source, incident spectrum, the uniformity of illumination, as well as a diverse set of failure mechanisms, both catastrophic and otherwise, have characteristic effects on the I-V curve. Seeing the I-V curve change dynamically with these influences allows visual correlation to real-time events. With a live I-V curve generated by performing forward and reversed bias sweeps repeatedly, the effect of parasitic inductance and bias sweep rate on the measurement can be demonstrated directly. This technique also ensures that the device junction is held in quasi-thermal equilibrium during the measurement. The relative alignment of optics in a concentrating photovoltaic module is analyzed to demonstrate the value of the live I-V curve.
Keywords :
electrical conductivity; solar cells; bias sweep rate; device junction; dynamic real-time I-V curve measurement system; failure mechanisms; field condition; forward bias sweep; illumination uniformity; incident light intensity; incident spectrum; indoor-outdoor characterization; light source; parasitic inductance; photovoltaic cell; photovoltaic module; quasithermal equilibrium; reversed bias sweep; Current measurement; Electrical resistance measurement; Impedance measurement; Photovoltaic cells; Real-time systems; Temperature measurement; Voltage measurement; Bidirectional I–V measurement; Bidirectional I???V measurement; inductive hysteresis; live I–V curve; live I???V curve; real time; test station; thermal hysteresis;
Journal_Title :
Photovoltaics, IEEE Journal of
DOI :
10.1109/JPHOTOV.2014.2366690