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Advanced exergy analysis of a combined Brayton/Brayton power cycle

机译:结合布雷顿/布雷顿功率循环的高级火用分析

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A combined Brayton/Brayton power cycle has been investigated using the advanced exergy analysis. The combustion chamber was shown to be the component with the largest exergy destruction. However, the analysis revealed that most of the irreversibility generation at the combustion chamber was endogenous and unavoidable. In contrast, the irreversibility generation at both turbines and both compressors was largely endogenous and avoidable. The total exergy destruction, endogenous unavoidable and exogenous avoidable exergy destruction at the combustion chamber monotonically decreased, while the endogenous avoidable and exogenous unavoidable exergy destruction at the same component initially decreased, reached a minimum, and then increased when the topping cycle pressure ratio was increased. On the other hand, when the bottoming cycle pressure ratio was increased, the endogenous and exogenous unavoidable exergy destruction at the combustion chamber decreased, reached a minimum, and then increased. All four terms of the exergy destruction of the topping cycle turbine and compressor consistently increased with the topping cycle pressure ratio, while their sensitivity to the bottoming cycle pressure ratio was relatively small. Finally, varying the combustion temperature from 1000 K to 1600 K has resulted in a reduction of the total exergy destruction, as well as the endogenous unavoidable, endogenous avoidable, exogenous unavoidable and exogenous avoidable exergy destruction at the least efficient components of the power plant. (C) 2018 Elsevier Ltd. All rights reserved.
机译:使用先进的(火用)分析研究了组合的布雷顿/布雷顿功率循环。燃烧室被证明是最大的火用破坏成分。但是,分析表明,燃烧室的大多数不可逆性产生是内源性的,是不可避免的。相反,两个涡轮机和两个压缩机的不可逆性产生在很大程度上都是内生的,可以避免。燃烧室的总本能破坏,内源性不可避免和外源性避免本能破坏单调减少,而同一分量处的内源性可避免和外源性不可避免本能破坏最初降低,达到最小值,然后随着打顶循环压力比的增加而增加。 。另一方面,当增加底部循环压力比时,燃烧室内的内源性和外源性不可避免的本能破坏减小,达到最小,然后增加。顶部循环涡轮机和压缩机的火用破坏的所有四个项都随着顶部循环压力比而持续增加,而它们对底部循环压力比的敏感性相对较小。最后,将燃烧温度从1000 K更改为1600 K导致总的火用破坏减少,并且在电厂效率最低的组件上发生了内源性不可避免的,内源性可避免的,外源性不可避免的和外源性可避免的火用破坏。 (C)2018 Elsevier Ltd.保留所有权利。

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