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Simulation of transport phenomena in a photo-electrochemical reactor for solar hydrogen production

机译:模拟光电化学反应器中用于生产太阳能氢的传输现象

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A numerical simulation of transport phenomena in the photo-electrochemical (PEC) reactor is performed. The transport phenomena equations include the Navier Stokes, the respective energy equation for electrolyte, and the radiative transfer equation (RTE). Two different designs, design A, and design B of photoelectrochemical reactors are suggested. The hydrogen production rate and solar-to-hydrogen efficiency are estimated for each design at different solar incident flux ranged from 500 to 2000 W/m(2) in increments of 500 W/m(2). Results have shown that the solar-to-hydrogen efficiency increases as solar flux increases for both designs. Its predicted values could reach 12.8% for design A, and 13.1% for design B. Moreover, by increasing the solar incident flux, the hydrogen volume production rate is increased as well. It is found to be 79 L/m(2).h for design A, and 85.4 L/m(2).h for design B. Comparison between currently predicted results and previous data indicates an enhancement of solar-to-hydrogen efficiency and hydrogen production that can be achieved with the suggested design. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:进行了光电化学反应器中传输现象的数值模拟。传输现象方程式包括Navier Stokes,相应的电解质能量方程式和辐射传递方程式(RTE)。提出了两种不同的设计,即光电化学反应器的设计A和设计B。在500至2000 W / m(2)范围内以500 W / m(2)的增量变化的不同太阳入射通量下,每种设计的产氢率和太阳能转化效率均得到估算。结果表明,两种设计的太阳能效率都随太阳通量的增加而增加。对于设计A,其预测值可以达到12.8%,对于设计B,其预测值可以达到13.1%。此外,通过增加太阳入射通量,氢的体积产率也将提高。对于设计A,发现为79 L / m(2).h,对于设计B,发现为85.4 L / m(2).h。当前预测结果与先前数据之间的比较表明,太阳能到氢的效率提高了通过建议的设计可以实现氢气生产。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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