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Exergo economic analysis of solar-assisted hybrid power generation systems integrated with thermochemical fuel conversion

机译:结合了热化学燃料转换的太阳能辅助混合发电系统的Exergo经济分析

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Solar-assisted hybrid power generation systems integrated with thermochemical fuel conversion are of increasing interest because they offer efficient use of lower temperature solar heat, with the important associated advantages of lower emissions, reduction of use of depletable fuels, production of easily storable fuel to alleviate the variability of solar heat, and relatively low cost of the use of lower temperature solar components. This paper examines economic performance of two previously proposed and analyzed thermochemical hybridized power generation systems: SOLRGT that incorporates reforming of methane, and SOLRMCC that incorporates methanol decomposition, both of which use low temperature solar heat (at similar to 220 degrees C) to help convert the methane or methanol input to syngas, which is then burned for power generation. The solar heat is used "indirectly" in the methane reforming process, to vaporize the needed water for it, while it is used directly in the methanol decomposition process since methanol decomposition requires lower temperatures than methane reforming. This analysis resulted in an equation for each power system for determining the conditions under which the hybrid systems will have a lower levelized electricity cost, and how it will change as a function of the fuel price, carbon tax rate, and the cost of the collection equipment needed for the additional heat source. (C) 2017 Elsevier Ltd. All rights reserved.
机译:集成了热化学燃料转换的太阳能辅助混合发电系统越来越受到关注,因为它们可有效利用较低温度的太阳能,并具有以下重要的相关优势:排放量减少,减少了可消耗燃料的使用,易于储存的燃料的生产以减轻排放太阳热的可变性以及使用较低温度的太阳能组件的成本相对较低。本文研究了先前提出并分析的两个热化学混合发电系统的经济性能:结合甲烷重整的SOLRGT和结合甲醇分解的SOLRMCC,这两个系统均使用低温太阳能(类似于220摄氏度)来帮助转化将甲烷或甲醇输入合成气,然后燃烧以发电。太阳能在甲烷重整过程中“间接”使用,以蒸发所需的水,而太阳能直接用于甲醇分解过程,因为甲醇分解所需的温度低于甲烷重整。这项分析得出了每个电力系统的方程式,用于确定混合动力系统将具有较低水平的电力成本的条件,以及其如何根据燃料价格,碳税率和征收成本而变化。额外热源所需的设备。 (C)2017 Elsevier Ltd.保留所有权利。

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