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Exergy analysis of a 1000 MW single reheat supercritical CO_2 Brayton cycle coal-fired power plant

机译:1000 MW单重热超临界CO_2布雷顿循环燃煤电厂的火用分析

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This study proposes an optimization method for the supercritical carbon dioxide (S-CO2) Brayton cycle in a 1000 MW single-reheat S-CO2 coal-fired power plant based on the second law of thermodynamics. The effects of parameters and configurations on S-CO2 cycle efficiencies and component irreversibility are studied. The analysis reveals that variations in parameters and configurations have more remarkable effects on the irreversibility of heat exchangers, particularly on the high-temperature recuperator (HTR) and cooler (COL), than on that of turbo machines. The results show that the optimum parameter of turbines provides a higher expansion ratio for the low-pressure turbine (LPT) than for the high-pressure turbine (HPT). The effects of split ratio to economizer (ECO) have contradicting results on cycle thermal and exergy efficiencies given that the irreversibility of HTR decreases with the increase in the split ratio to ECO. The minimum cycle pressure drastically affects the irreversible interaction between HTR and COL because of the nonlinear characteristics of CO2 near its critical point. Double compression and the Case 2 of the ECO configuration is more reasonable for S-CO2 power plants. The main differences between the S-CO2 and traditional steam power plant are that exergy loss ratio of fuel combustion and exergy efficiency of the water wall, screen heaters, primary heaters are noticeably higher in the S-CO2 boiler than those in the traditional steam boiler. The overall exergy efficiency of the innovative single-reheat 1000 MW S-CO2 coal-fired power plant is 45.4%, which is approximately 3.5% higher than that of the traditional ultra-supercritical steam plant.
机译:本研究基于热力学第二定律,提出了一种1000 MW单次再热S-CO2燃煤电厂超临界二氧化碳(S-CO2)布雷顿循环的优化方法。研究了参数和配置对S-CO2循环效率和组件不可逆性的影响。分析表明,与涡轮机相比,参数和配置的变化对热交换器的不可逆性,特别是对高温换热器(HTR)和冷却器(COL)的不可逆性具有更大的影响。结果表明,涡轮机的最佳参数为低压涡轮机(LPT)提供了比高压涡轮机(HPT)高的膨胀比。考虑到HTR的不可逆性随对ECO的分配比的增加而降低,因此对ECO的分配比的影响在循环热效率和火用效率上有矛盾的结果。最小循环压力极大地影响了HTR和COL之间不可逆的相互作用,因为CO2在其临界点附近具有非线性特性。对于S-CO2电厂,双压缩和ECO配置的情况2更合理。 S-CO2锅炉与传统蒸汽发电厂的主要区别在于,S-CO2锅炉的燃料燃烧的火用损耗率和水冷壁,火炉,主加热器的火用效率明显高于传统蒸汽锅炉。创新的单次再热1000 MW S-CO2燃煤电厂的总火用效率为45.4%,比传统的超超临界蒸汽电厂高约3.5%。

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