Analyses of thermodynamic performance for the endoreversible Otto cycle with the concepts of entropy generation and entransy

被引:1
|
作者
YanQiu Wu
机构
[1] Chongqing Three Gorges University,College of Mathematics & Statistics
来源
关键词
entropy generation minimization; entransy; finite time thermodynamics; endoreversible Otto cycle; applied mathematics;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, the endoreversible Otto cycle is analyzed with the entropy generation minimization and the entransy theory. The output power and the heat-work conversion efficiency are taken as the optimization objectives, and the relationships of the output power, the heat-work conversion efficiency, the entropy generation rate, the entropy generation numbers, the entransy loss rate, the entransy loss coefficient, the entransy dissipation rate and the entransy variation rate associated with work are discussed. The applicability of the entropy generation minimization and the entransy theory to the analyses is also analyzed. It is found that smaller entropy generation rate does not always lead to larger output power, while smaller entropy generation numbers do not always lead to larger heat-work conversion efficiency, either. In our calculations, both larger entransy loss rate and larger entransy variation rate associated with work correspond to larger output power, while larger entransy loss coefficient results in larger heat-work conversion efficiency. It is also found that the concept of entransy dissipation is not always suitable for the analyses because it was developed for heat transfer.
引用
收藏
页码:692 / 700
页数:8
相关论文
共 50 条
  • [21] Analyses of coupled steady heat transfer processes with entropy generation minimization and entransy theory
    Cheng, XueTao
    Liang, XinGang
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2018, 127 : 1092 - 1098
  • [22] Exergy-based ecological optimal performance for a universal endoreversible thermodynamic cycle
    Zhang, W.
    Chen, L.
    Sun, F.
    Wu, C.
    INTERNATIONAL JOURNAL OF AMBIENT ENERGY, 2007, 28 (01) : 51 - 56
  • [23] Theoretical analyses of the performance of a concentrating photovoltaic/thermal solar system with a mathematical and physical model, entropy generation minimization and entransy theory
    XueTao Cheng
    XiangHua Xu
    XinGang Liang
    Science China Technological Sciences, 2018, 61 : 843 - 852
  • [24] Optimization with the criterion of minimum entropy generation of a non- endoreversible Brayton cycle with external recovery
    Pincay G., Nestor A.
    HOMBRE Y LA MAQUINA, 2010, (34): : 42 - 55
  • [25] Theoretical analyses of the performance of a concentrating photovoltaic/thermal solar system with a mathematical and physical model, entropy generation minimization and entransy theory
    CHENG XueTao
    XU XiangHua
    LIANG XinGang
    Science China(Technological Sciences) , 2018, (06) : 843 - 852
  • [26] Theoretical analyses of the performance of a concentrating photovoltaic/thermal solar system with a mathematical and physical model, entropy generation minimization and entransy theory
    Cheng XueTao
    Xu XiangHua
    Liang XinGang
    SCIENCE CHINA-TECHNOLOGICAL SCIENCES, 2018, 61 (06) : 843 - 852
  • [27] Theoretical analyses of the performance of a concentrating photovoltaic/thermal solar system with a mathematical and physical model, entropy generation minimization and entransy theory
    CHENG XueTao
    XU XiangHua
    LIANG XinGang
    Science China(Technological Sciences), 2018, 61 (06) : 843 - 852
  • [28] Analyses of entropy generation and heat entransy loss in heat transfer and heat-work conversion
    Cheng, XueTao
    Liang, XinGang
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2013, 64 : 903 - 909
  • [29] Thermodynamic modelling and performance analysis of a closed endoreversible indirectly-fired gas turbine cycle
    Ma, Z.
    Zhu, Z.
    International Journal of Ambient Energy, 2009, 30 (04): : 199 - 206
  • [30] Thermodynamic modelling and performance analysis of a closed endoreversible indirectly-fired gas turbine cycle
    Ma, Z.
    Zhu, Z.
    INTERNATIONAL JOURNAL OF AMBIENT ENERGY, 2009, 30 (04) : 199 - 206