Thomson/Joule Power Compensation and the Measurement of the Thomson Coefficient

被引:0
|
作者
Garrido, Javier [1 ]
Manzanares, Jose A. [1 ]
机构
[1] Univ Valencia, Dept Termodinam, Burjassot 46100, Spain
关键词
thermoelectricity; Thomson coefficient; Thomson effect; Seebeck effect; energy balance; HEAT; TRANSPORT;
D O I
10.3390/ma17184640
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The energy transported by the electric current that circulates a thermoelectric element (TE) varies with position due to the Joule and Thomson effects. The Thomson effect may enhance or compensate the Joule effect. A method for measuring the Thomson coefficient of a TE is presented. This method is based on the total compensation of the Joule and Thomson effects. The electric current then flows without delivering power to the TE or absorbing power from it. For a TE, the global Thomson/Joule compensation ratio Phi<overline>T/J is defined as the ratio of the power absorbed by the current due to the Thomson effect and the power delivered by the current to the TE due to the Joule effect. It can be expressed as Phi<overline>T/J=I0/I, where I is the electric current and I0 is the zero-power current, a quantity that is proportional to the average Thomson coefficient. When I=I0, the Thomson effect exactly compensates the Joule effect and the net power delivered by the current to the TE is zero. Since the power delivered by the current is related to the temperature distribution, temperature measurements for currents around I0 can be used as the basis for a measurement technique of the Thomson coefficient. With varying current, the difference between the temperature at the center of the TE and the mean temperature between its extremes reverses its sign at the zero-power current, I=I0. This observation suggests the possibility of measuring the Thomson coefficient, but a quantitative analysis is needed. With calculations using the constant transport coefficients model for Bi2Te0.94Se0.063 and Bi0.25Sb0.752Te3, it is theoretically shown that a null temperature detector with a sensitivity of the order of 1 mK allows for the accurate determination of the Thomson coefficient.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] The Thomson effect and the ideal equation on thermoelectric coolers
    Lee, HoSung
    ENERGY, 2013, 56 : 61 - 69
  • [22] Thomson scattering on inhomogeneous targets
    Thiele, R.
    Sperling, P.
    Chen, M.
    Bornath, Th
    Faeustlin, R. R.
    Fortmann, C.
    Glenzer, S. H.
    Kraeft, W. -D.
    Pukhov, A.
    Toleikis, S.
    Tschentscher, Th
    Redmer, R.
    PHYSICAL REVIEW E, 2010, 82 (05):
  • [23] The Thermocouple Revisited: The Thomson Effect
    Jacovelli, Paul B.
    Norris, Ronald C.
    Canada, Chester E.
    Zinke, Otto H.
    JOURNAL OF NON-EQUILIBRIUM THERMODYNAMICS, 2019, 44 (04) : 333 - 353
  • [24] Influence of Temperature-Dependent Thomson Coefficient on Thermal Transport in a Low-Dimensional Nanostructure
    Liangruksa, Monrudee
    Puri, Ishwar K.
    NANOSCALE AND MICROSCALE THERMOPHYSICAL ENGINEERING, 2012, 16 (04) : 260 - 273
  • [25] Principles for local measurement of anisotropic electron temperature of plasma using incoherent Thomson scattering
    Yatsuka, E.
    Hatae, T.
    Kusama, Y.
    NUCLEAR FUSION, 2011, 51 (12)
  • [26] Special Important Aspects of the Thomson Effect
    Lashkevych, Igor
    Velazquez, J. E.
    Titov, Oleg Yu.
    Gurevich, Yuri G.
    JOURNAL OF ELECTRONIC MATERIALS, 2018, 47 (06) : 3189 - 3192
  • [27] Influence of Thomson effect on the thermoelectric generator
    Zhang, Mengjun
    Tian, Yuanyuan
    Xie, Huaqing
    Wu, Zihua
    Wang, Yuanyuan
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2019, 137 : 1183 - 1190
  • [28] Special Important Aspects of the Thomson Effect
    Igor Lashkevych
    J. E. Velázquez
    Oleg Yu. Titov
    Yuri G. Gurevich
    Journal of Electronic Materials, 2018, 47 : 3189 - 3192
  • [29] On the Thermoelectricity of W. Thomson: Towards a Theory of Thermoelastic Conductors
    J. D. Goddard
    Journal of Elasticity, 2011, 104 : 267 - 280
  • [30] Joule-Thomson effect and flow behavior for energy-efficient dehydration of high-pressure natural gas in supersonic separator
    Wang, Shiwei
    Wang, Chao
    Ding, Hongbing
    Zhang, Yu
    Dong, Yuanyuan
    Wen, Chuang
    ENERGY, 2023, 279