4.5 Article

Ellipsoidal Optical Cavities for Enhanced Thermophotovoltaics

期刊

IEEE JOURNAL OF PHOTOVOLTAICS
卷 12, 期 1, 页码 353-363

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JPHOTOV.2021.3116918

关键词

Photonics; Stimulated emission; Recycling; Temperature; Cooling; Optical design; Optical device fabrication; Effective view factor; optical cavity; photon recycling; thermophotovoltaics (TPV)

资金

  1. Natural Sciences and Engineering Research Council of Canada

向作者/读者索取更多资源

An ellipsoidal optical cavity is proposed to enhance the performance of solar thermophotovoltaic (STPV) systems. By controlling the geometrical parameters, the degree of photon recycling, emitter temperature, gap distance, and view factor can be optimized. Numerical analysis shows high view factors and efficiency can be achieved with this optical cavity in STPV systems.
Herein, we present an optical cavity in the form of a prolate ellipsoid that can greatly enhance the performance of solar thermophotovoltaic (STPV) systems. The geometrical parameters of the cavity can be designed to control the degree of photon recycling, the temperature of the emitter within the STPV system, gap distance and effective view factor between the PV cell and the emitter, and to minimize the emission losses. Numerical analysis shows the ellipsoidal optical cavity can be designed to achieve an effective view factor of 88.7% between the emitter and PV cell within an STPV system. Results show an efficiency of 5.62% in an STPV system with a GaSb PV cell and a black-body emitter under solar radiation at a concentration factor of 350X. Further, assuming the surface of the ellipsoidal optical cavity is capable of reflecting 99% of the radiation incident onto its surface, efficiencies of 15.54% can be attained when the solar concentration factor is 1400X. These results are attained for STPV systems without using selective absorbers, emitters or filters. The ellipsoidal optical cavity can be integrated into the design of advanced thermophotovoltaics (TPVs) systems and bring them closer to the high theoretical efficiencies TPV systems are capable of.

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