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Multi-objective linear regression based optimization of full repowering a single pressure steam power plant

机译:基于多目标线性回归的单压力蒸汽发电厂的全重新排斥优化优化

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Full repowering of Be'sat steam power plant has been studied in this work. The methodology is used to simulate the new cycle according to its principal specifications and to optimize it based on the objective functions. Objective functions are electricity cost per kWh and exergy efficiency. These parameters are functions of the pinch and approach point temperature differences at high and low pressure points and at the pre-heater in the heat recovery steam generator (HRSG), steam turbine inlet flow rate, gas turbine (GT) isentropic efficiency, air compressor isentropic efficiency and compressor pressure ratio. Finally, considering the introduced objective functions, it is tried to achieve the most optimized techno-economic characteristics for Be'sat power plant repowering cycle using the genetic algorithm with two scenarios of single and multi-objective optimizations. The results show that the efficiencies of the repowered cycle are 52.59% and 51.3% for two cases of unfired and fired duct burners, respectively. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在这项工作中研究了Be'Sat Steam Power Plant的全额重新排斥权。该方法用于根据其主要规范模拟新周期,并根据目标函数优化它。客观功能是每千瓦时的电力成本和高效率。这些参数是高压和低压点处的夹切和接近点温度差异的功能,以及在热回收蒸汽发生器(HRSG)中的预加热器,蒸汽轮机入口流量,燃气轮机(GT)等熵效率,空气压缩机型效率和压缩机压力比。最后,考虑到介绍的客观函数,试图使用具有两种单一和多目标优化的遗传算法来实现Be'SAT电厂重新权力循环的最优化的技术经济特征。结果表明,重新燃烧循环的效率分别为52.59%,两种未用和烧制的管道燃烧器的效率为52.59%和51.3%。 (c)2019 Elsevier Ltd.保留所有权利。

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