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Analysis and comparison of solar-heat driven Stirling, Brayton and Rankine cycles for space power generation

机译:太阳热驱动斯特林,布雷顿和朗肯循环的空间发电分析与比较

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This paper presents an analysis of solar-heat driven Brayton, Rankine and Stirling cycles operating in space with different working fluids. Generation of power in space for terrestrial use can represent a great future opportunity: the low-temperature of space (similar to 3 K), allows the attainment of very high efficiency even with low-temperature heat inputs, and the solar energy input is higher in space than on earth. This paper shows a comparative analysis of advanced Brayton, Rankine and Stirling cycles to improve the understanding of the optimal trade-off between high efficiency and the smallest needed heat rejection area. The effect of the main cycles' operational parameters and plant layouts on efficiency and power to radiator area ratio have been analyzed. The thermal efficiency of regenerative-reheated-intercooled Brayton cycle was found to be the best among the investigated configurations. The power to radiator area ratio was found to increase with the introduction of reheating for both the Rankine and Brayton cycles. Stirling cycles efficiencies are lower than those obtained by the Brayton and Rankine cycles but with values of power to radiator area ratio equal to about half of those obtained by Brayton cycles but much higher than those obtained by the Rankine cycles. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文分析了太阳热驱动的布雷顿,朗肯和斯特林循环在不同工作流体下在太空中的运行情况。用于地面用途的太空发电将代表巨大的未来机遇:太空低温(类似于3 K),即使使用低温热输入,也能实现非常高的效率,并且太阳能输入更高在太空中比在地球上。本文对先进的布雷顿循环,朗肯循环和斯特林循环进行了比较分析,以增进对高效与最小散热面积之间最佳权衡的理解。分析了主循环的运行参数和设备布局对效率以及功率与散热器面积比的影响。在所研究的构型中,再生-再热-中冷布雷顿循环的热效率是最好的。发现随着朗肯循环和布雷顿循环的再加热的引入,功率与散热器的面积比增加。斯特林循环效率低于通过布雷顿循环和朗肯循环获得的效率,但是功率与散热器面积比的值大约等于通过布雷顿循环获得的功率的一半,但远高于通过朗肯循环获得的效率。 (C)2016 Elsevier Ltd.保留所有权利。

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