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变热容工质不可逆布雷顿热机的优化分析 被引量:1

Optimal Analysis of an Irreversible Brayton Heat Engine with the Variable Heat Capacity Working Substance
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摘要 研究以变热容气体为工质的不可逆布雷顿热机循环的优化性能,导出循环的输出功率和效率的表达式,通过数值计算获得循环的一些重要优化特性曲线。结果表明,当布雷顿热机运行在压强比、热机效率、输出功率、工质的最低和最高温度的优化区间时,热机的性能最佳。变热容工质对上述优化区间的影响是显著的。 The optimal performance of an irreversible Brayton heat engine with the variable heat capacity working substance is researched,and the expressions for the output power and efficiency of the cycle are derived. Some important optimal performance characteristic curves are generated through the numerical calculation. It is shown that the performance of Brayton heat engine is the best when running at optimal regions of the pressure ratio,efficiency,output power,the lowest and highest temperatures of the working substance. It is also found that the influence of the variable heat capacity working substance on the above optimal regions is remarkable.
出处 《黑龙江八一农垦大学学报》 2010年第5期91-95,共5页 journal of heilongjiang bayi agricultural university
基金 福建省自然科学基金计划资助项目(2008J0222) 福建省教育厅科技计划项目(JA08158)
关键词 布雷顿热机 变热容 不可逆性 优化分析 Brayton cycle variable heat capacity irreversibility optimal analysis
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  • 1[1]Bejan A. Entropy Generation Minimization: The New Thermodynamics of Finite-Size Device and Finite-Time Processes. J. Appl. Phys., 1996, 79(3): 1191-1218
  • 2[2]Chen Lingen, Wu Chih, Sun Fengrui. Finite Time Thermodynamic Optimization or Entropy Generation Minimization of Energy Systems. J. Non-Equilib. Thermodyn., 1999, 24(4): 327-359
  • 3[3]Chen Lingen, Sun Fengrui. Advances in Finite Time Thermodynamics: Analysis and Optimization. New York: Nova Science Publishers, 2004
  • 4[4]Mozurkewich M, Berry R S. Optimal paths for thermodynamic Systems: The Ideal Otto Cycle. J. Appl. Phys.,1982, 53(1): 34-42
  • 5[5]Aizenbud B M, Band Y B, Kafri O. Optimization of a Model Internal Combustion Engine. J. Appl. Phys.,1982, 53(3): 1277-1282
  • 6[6]Chen Lingen, Sun Fengrui, Wu Chih. Optimal Expansion of a Heated Working Fluid with Linear Phenomenological Heat Transfer. Energy Convers. Mgmt., 1998, 39(3/4):149-156
  • 7[7]Orlov V N, Berry R S. Power and Efficiency Limits for Internal Combustion Engines Via Methods of Finite-Time Thermodynamics. J. Appl. Phys., 1993, 74(10): 4317-4322
  • 8[8]Angulo-Brown F, Fernandez-Betanzos J, Diaz-Pico C A.Compression Ratio of an Optimized Otto-cycle Model.Eur. J. Phys., 1994, 15(1): 38-42
  • 9[9]Klein S A. An Explanation for Observed Compression Ratios in Internal Combustion Engines. Trans. ASME J.Engng. Gas Turbine Pow., 1991, 113(4): 511-513
  • 10[10]Chen Lingen, Wu Chih, Sun Fengrui, et al. Heat Transfer Effects on the Net Work Output and Efficiency Characteristics for an Air Standard Otto Cycle. Energy Convers.Mgnt., 1998, 39(7): 643-648

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