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A SOLAR-HYBRID POWER PLANT INTEGRATED WITH ETHANOL CHEMICAL-LOOPING COMBUSTION

机译:一种与乙醇化学循环燃烧一体的太阳能混合动力装置

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In this paper, a new solar hybrid gas turbine cycle integrating ethanol-fueled chemical-looping combustion (CLC) has been proposed, and the system was investigated with the aid of the Energy-Utilization Diagram (EUD). Chemical-looping combustion consists of two successive reactions: first, ethanol fuel is oxidized by metal oxide (NiO) as an oxygen carrier (reduction of metal oxide); secondly, the reduced metal (Ni) is successively oxidized by combustion air (the oxidation of metal). The reduction of NiO with ethanol requires a relative low-grade thermal energy at 150-200°C. Then concentrated solar thermal energy at approximately 200-300°C can be utilized to provide the process heat for this reaction. The integration of solar thermal energy and CLC could make the exergy efficiency and the net solar-to-electric efficiency of the system more than 54% and 28% at a turbine inlet temperature (TIT) of 1288°C, respectively. At the same time, the variation in the overall thermal efficiency (η) of the system with varying key parameters was analyzed, such as Turbine Inlet Temperature, pressure ratio (π) and the temperature of reduction reactor. Additionally, preliminary experiments on ethanol-fueled chemical-looping combustion are carried out to verify the feasibility of the key process. The promising results obtained here indicate that this novel gas turbine cycle with ethanol-fueled chemical-looping combustion could provide a promising approach of both efficient use of alternative fuel and low-temperature solar thermal and offer a technical probability of combining the chemical-looping combustion with inherent CO_2 capture for the alternative fuel.
机译:本文提出了一种新的太阳能混合燃气涡轮循环,已经提出了整合乙醇燃料的化学环燃烧(CLC),并借助能量利用图(EUD)研究了该系统。化学环燃烧由两个连续反应组成:首先,乙醇燃料通过金属氧化物(NIO)作为氧载体(金属氧化物的还原)氧化;其次,通过燃烧空气(金属氧化)连续氧化还原金属(Ni)。用乙醇的NiO减少需要在150-200℃下相对低级的热能。然后可以利用大约200-300℃的浓缩太阳能热能,以提供该反应的方法热量。太阳能热能和CLC的整合可以在1288°C的涡轮机入口温度(山雀)分别为系统的高度效率和净太阳能电效率和28%。同时,分析了具有不同关键参数的系统的总热效率(η)的变化,例如涡轮机入口温度,压力比(π)和还原反应器的温度。另外,对乙醇燃料的化学环化燃烧进行了初步实验,以验证关键过程的可行性。这里获得的有希望的结果表明,这种具有乙醇燃料的化学环燃烧的新型燃气涡轮机循环可以提供有效使用替代燃料和低温太阳能热的有效方法,并提供组合化学循环燃烧的技术可能性具有固有的CO_2捕获替代燃料。

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