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Optimization methods and silicon solar cell numerical modelsThe goal of this project is the development of an optimization algorithm for use with a solar cell model. It is possible to simultaneously vary design variables such as impurity concentrations, front junction depth, back junctions depth, and cell thickness to maximize the predicted cell efficiency. An optimization algorithm has been developed and interfaced with the Solar Cell Analysis Program in 1 Dimension (SCAPID). SCAPID uses finite difference methods to solve the differential equations which, along with several relations from the physics of semiconductors, describe mathematically the operation of a solar cell. A major obstacle is that the numerical methods used in SCAPID require a significant amount of computer time, and during an optimization the model is called iteratively until the design variables converge to the value associated with the maximum efficiency. This problem has been alleviated by designing an optimization code specifically for use with numerically intensive simulations, to reduce the number of times the efficiency has to be calculated to achieve convergence to the optimal solution. Adapting SCAPID so that it could be called iteratively by the optimization code provided another means of reducing the cpu time required to complete an optimization. Instead of calculating the entire I-V curve, as is usually done in SCAPID, only the efficiency is calculated (maximum power voltage and current) and the solution from previous calculations is used to initiate the next solution.
Document ID
19870006980
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Girardini, K.
(California Univ. Los Angeles, CA, United States)
Date Acquired
September 5, 2013
Publication Date
January 1, 1986
Publication Information
Publication: JPL, California Inst. of Tech., Pasadena Proceedings of the 26th Project Integration Meeting
Subject Category
Energy Production And Conversion
Accession Number
87N16413
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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