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Solar thermal power cycle with integration of methanol decomposition and middle-temperature solar thermal energy

机译:集成了甲醇分解和中温太阳能的太阳能热电循环

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摘要

In this paper, we have proposed a new solar thermal power cycle which integrates methanol decomposition and middle-temperature solar thermal energy, and investigated its features based on the principle of the cascade utilization of chemical exergy. Also, the methanol decomposition with a catalyst was experimentally studied at temperatures of 150-300℃ and under atmospheric pressure. The chemical energy released by methanol fuel in this cycle consisted of two successive processes: solar energy drives the thermal decomposition of methanol in a solar receiver-reactor, and the syngas of resulting products is combusted with air, namely, indirect combustion after methanol decomposition. As a result, the net solar-to-electric efficiency of the proposed cycle could be 35% at the collector temperature of 220℃ and the turbine inlet temperature of 1300℃, and the exergy loss in the indirect combustion of methanol was about 7% points lower than that in the direct combustion of methanol. The promising results obtained in this study indicated that this new solar thermal power cycle could make significant improvements both in the efficient use of the chemical energy of clean synthetic fuel and in the middle-temperature solar thermal energy in a power system.
机译:在本文中,我们提出了一个新的太阳能热电循环,该循环将甲醇分解和中温太阳能热能结合在一起,并基于化学能级联利用的原理研究了其特征。此外,在150-300℃的温度和大气压下,对用催化剂进行的甲醇分解进行了实验研究。甲醇燃料在此循环中释放的化学能包括两个连续的过程:太阳能驱动太阳能在太阳能接收器-反应器中的热分解,所得产物的合成气与空气燃烧,即甲醇分解后的间接燃烧。结果,在220℃的集热器温度和1300℃的涡轮机入口温度下,所提出的循环的净太阳能发电效率可达到35%,甲醇间接燃烧的火用损失约为7%。比甲醇直接燃烧低。这项研究中获得的有希望的结果表明,这种新的太阳能热能循环可以在清洁合成燃料的化学能的有效利用和电力系统中的中温太阳能热能方面做出重大改进。

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