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Temperature gradient characteristics and effect on optimal thermoelectric performance in exhaust power-generation systems

机译:排气发电系统中的温度梯度特性及其对最佳热电性能的影响

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摘要

An obvious temperature gradient is apparent when engine exhaust gas with low mass flow and a high temperature passes through a thermoelectric generator system to recover thermal energy. Aiming to explore the temperature gradient characteristics and its effect on optimal thermoelectric performance in an exhaust power-generation system, a nonisothermal thermoelectric numerical model was developed using the finite-element method. A commercial-type thermoelectric material was used in the numerical calculation. When the maximum net power was obtained, the corresponding temperature-gradient characteristics under different exhaust mass flow rates and temperatures were examined for an exhaust power-generation system. Moreover, the optimal structural dimensions and maximum net power were investigated with consideration of the temperature dependence of the physical properties of the thermoelectric materials. Additionally, different finite-element conditions were compared to obtain an effective calculation method. The results indicated that the temperature gradient is significantly affected by the exhaust temperature but not the mass flow rate and a linearly increases with an exhaust temperature increase by introducing fitting correlations. Constant physical thermoelectric parameters can be used when the qualitative operating temperature of the semiconductor material is suitably chosen. It is recommended to use one commercial thermoelectric module as one finite calculation element instead of using one PN couple, because this facilitates convenient and high-precision calculations.
机译:当具有低质量流量和高温的发动机废气通过热电发电机系统以回收热能时,就会出现明显的温度梯度。为了探讨排气发电系统中的温度梯度特性及其对最佳热电性能的影响,采用有限元方法建立了一个非等温热电数值模型。在数值计算中使用了商用型热电材料。当获得最大净功率时,针对排气发电系统检查了在不同排气质量流量和温度下的相应温度梯度特性。而且,考虑了热电材料的物理性质的温度依赖性,研究了最佳的结构尺寸和最大净功率。此外,比较了不同的有限元条件以获得有效的计算方法。结果表明,温度梯度受排气温度的影响很大,但不受质量流量的影响,并且通过引入拟合相关性,温度梯度随排气温度的升高呈线性增加。当适当地选择半导体材料的定性工作温度时,可以使用恒定的物理热电参数。建议使用一个商用热电模块作为一个有限的计算元素,而不是使用一个PN对,因为这样可以方便,高精度地进行计算。

著录项

  • 来源
    《Applied Energy》 |2020年第1期|114366.1-114366.9|共9页
  • 作者

  • 作者单位

    Tianjin Univ Commerce Tianjin Key Lab Refrigerat Technol Tianjin 300134 Peoples R China;

    Tokyo Inst Technol Lab Adv Nucl Energy Inst Innovat Res Tokyo 1528550 Japan;

    Tianjin Univ Key Lab Efficient Utilizat Low & Medium Grade Ene Tianjin 300072 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Temperature gradient; Thermoelectric; Nonisothermal; Exhaust; Power generation;

    机译:温度梯度;热电;非等温;排气;发电量;

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