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Detailed analysis of the effect of the turbine and compressor isentropic efficiency on the thermal and exergy efficiency of a Brayton cycle

机译:详细分析涡轮和压缩机的等熵效率对布雷顿循环的热效率和火用效率的影响

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Energy and exergy analysis of a Brayton cycle with an ideal gas is given. The irreversibility of the adiabatic processes in turbine and compressor is taken into account through their isentropic efficiencies. The net work per cycle, the thermal efficiency and the two exergy efficiencies are expressed as functions of the four dimensionless variables: the isentropic efficiencies of turbine and compressor, the pressure ratio, and the temperature ratio. It is shown that the maximal values of the net work per cycle, the thermal and the exergy efficiency are achieved when the isentropic efficiencies and temperature ratio are as high as possible, while the different values of pressure ratio that maximize the net work per cycle, the thermal and the exergy efficiencies exist. These pressure ratios increase with the increase of the temperature ratio and the isentropic efficiency of compressor and turbine. The increase of the turbine isentropic efficiency has a greater impact on the increase of the net work per cycle and the thermal efficiency of a Brayton cycle than the same increase of compressor isentropic efficiency. Finally, two goal functions are proposed for thermodynamic optimization of a Brayton cycle for given values of the temperature ratio and the compressor and turbine isentropic efficiencies. The first maximizes the sum of the net work per cycle and thermal efficiency while the second the net work per cycle and exergy efficiency. In both cases the optimal pressure ratio is closer to the pressure ratio that maximizes the net work per cycle.
机译:给出了具有理想气体的布雷顿循环的能量和火用分析。透平和压缩机的绝热过程的不可逆性通过它们的等熵效率来考虑。每个循环的净功,热效率和两个火用效率表示为四个无量纲变量的函数:涡轮机和压缩机的等熵效率,压力比和温度比。结果表明,当等熵效率和温度比尽可能高时,可以获得每个循环的净功,热效率和火用效率的最大值,而使每个循环的净功最大化的压力比的不同值,存在热效率和火用效率。这些压力比随着温度比以及压缩机和涡轮机的等熵效率的增加而增加。与压缩机等熵效率的相同提高相比,涡轮等熵效率的提高对每个循环的净功和布雷顿循环的热效率具有更大的影响。最后,针对给定的温度比值以及压缩机和涡轮等熵效率,提出了两个目标函数,用于布雷顿循环的热力学优化。第一个最大化每个循环的净功和热效率之和,第二个最大化每个循环的净功和火用效率。在这两种情况下,最佳压力比都接近使每个循环的净功最大化的压力比。

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