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Energy and exergy analyses of novel supercritical CO_2 Brayton cycles driven by direct oxy-fuel combustor

机译:直接氧燃料燃烧器驱动的新型超临界CO_2布雷顿循环的能量和暴风分析

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摘要

This study addresses major research gaps related to supercritical carbon dioxide (sCO2) power cycles including the shortcomings due to adding extra components, the high operating temperatures and the lack of studies on using direct oxy-combustion for sCO2 power cycles. Energy and exergy analyses for five novel sCO2 Brayton cycles with direct oxy-fuel combustion are introduced. The studied cycle configurations are the simple recuperator cycle (SRC), dual recuperator cycle (DRC), intercooling cycle (ICC), reheating cycle (RHC) and partial intercooling cycle (PIC). A numerical model was developed for the detailed calculations of the recuperators that considers variations in the properties of sCO2 as a function of temperature. Comprehensive studies and optimization are performed for the major parameters including the pressure ratio (rc), intermediate pressure ratio (RPR), turbine inlet temperature (TIT) and compressor inlet temperature (CIT). Optimum rc and RPR values have been obtained at which the maximum efficiencies of the cycles occur. Results show that the partial intercooling cycle (PIC) has superior performance compared to the other configurations at higher TIT and lower PRR. The maximum thermal efficiency of 52% is achieved by the PIC at rc of 5, RPR of 0.45, TIT of 750 ?C, high pressure of 20 MPa, and CIT of 50 ?C. Furthermore, the reheating cycle has the highest second law efficiency with marginal improvement in the thermal efficiency compared to the dual recuperator cycle (DRC).
机译:本研究解决了与超临界二氧化碳(SCO2)电源循环相关的主要研究差距,包括增加额外部件,高效温度和使用直接氧燃烧进行SCO2功率循环的缺乏研究的缺点。引入了五种新型SCO2 Brayton循环的能量和暴力分析,具有直接氧燃料燃烧。所研究的循环配置是简单的恢复循环(SRC),双重恢复循环(DRC),中冷循环(ICC),再加热循环(RHC)和部分中冷循环(PIC)。开发了一种数值模型,用于考虑SCO2属性的变化作为温度的函数的恢复器的详细计算。对包括压力比(RC),中压比(RPR),涡轮机入口温度(山雀)和压缩机入口温度(CIT)的主要参数进行综合研究和优化。已经获得了最佳RC和RPR值,在此发生循环的最大效率。结果表明,与较高山脊和较低PRR处的其他配置相比,部分中间冷却循环(PIC)具有优异的性能。 52%的最大热效率通过5,RPR为0.45的RC,滴度为750℃,高压20MPa,50℃的CIT。此外,与双重恢复循环(DRC)相比,再加热循环具有最高的第二律效率,其热效率处于热效率。

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