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Thermodynamic optimization of the operating parameters for a combined power cycle utilizing low-temperature waste heat and LNG cold energy

机译:利用低温废热和LNG冷能对联合功率循环的运行参数进行热力学优化

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摘要

This paper deals with the optimization of a novel combined power system, which can effectively recover low-temperature waste heat and fully utilize the cold energy of LNG as well, based on the first thermodynamic law and the second thermodynamic law respectively. Parametric analysis has been performed to study the effects of heat source temperature, ammonia turbine inlet pressure, LNG turbine inlet and outlet pressures, as well as ammonia mass fraction of basic solution. The simulation results show that the system performance can be improved by applying optimization techniques. The optimization is conducted under a certain set of constraints by using the differential evolution (DE) algorithm to maximize the first and the second law efficiency respectively. Through parallel direct search over the whole feasible region, it is found that a maximum first law efficiency of 39.33% can be obtained when variable vector V_1 = [423.70 K, 1.8 MPa, 3.904 MPa, 0.3 MPa, 0.52]; while a maximum second law efficiency of 55.62% can be obtained when variable vector V_2 = [423.93 K, 1.874 MPa, 3.493 MPa, 0.8 MPa, 0.48]. In addition, the irreversibilities in various components of the cycle under typical operating conditions and exergy efficiency optimum condition have been compared through detailed exergy analysis.
机译:本文分别基于第一热力学定律和第二热力学定律,对一种新型的组合电力系统进行了优化,可以有效地回收低温废热,并充分利用LNG的冷能。已经进行了参数分析,以研究热源温度,氨汽轮机进口压力,LNG汽轮机进口和出口压力以及碱性溶液的氨质量分数的影响。仿真结果表明,采用优化技术可以提高系统性能。通过使用差分进化(DE)算法分别在第一约束效率和第二约束效率上最大化来在一组特定约束条件下进行优化。通过对整个可行区域进行并行直接搜索,发现当变量矢量V_1 = [423.70 K,1.8 MPa,3.904 MPa,0.3 MPa,0.52]时,最大第一定律效率可以达到39.33%。当变量向量V_2 = [423.93 K,1.874 MPa,3.493 MPa,0.8 MPa,0.48]时,最大第二定律效率为55.62%。此外,通过详细的火用分析,比较了典型操作条件和火用效率最佳条件下循环各组成部分的不可逆性。

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