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Effect of temperature dependence of electrical resistivity on the cooling performance of a single thermoelectric element

机译:电阻率的温度依赖性对单个热电元件冷却性能的影响

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The coefficients of performance (COP)φ_0 and φ for a single thermoelectric (TE) element welded with two metal plates were calculated as functions of temperature difference (AT) and thermoelectric figure of merit (ZT) from the conventional thermal rate equations and the new thermal rate ones proposed here, respectively. We made an attempt to take the differences in the Seebeck coefficient a, electrical resistivity p and thermal conductivity k of TE materials at the hot and cold sides of a TE element into the thermal rate equations on the assumption that their TE properties change linearly with temperature. However, the difference in κ was neglected even in the new thermal rate equations because its temperature dependence was too small when φ was applied to the high-performance Bi-Te alloys. The normalized temperature dependences at 300 K of a and ρ were denoted by A and B, respectively. The term of A in the thermal rate equations was canceled out by the Thomson coefficient, but that of B remained. When B > 0 K~(-1), φ/φ_0 is enhanced more significantly with an increase of B at larger ΔT and lower ZT, and it reached about 1.20 at ΔT = 80 K. for Bi-Te alloys with B≈5 × 10~(-3) K~(-1) It was thus found that the COP of a cooling module is also affected strongly by B as well as ZT.
机译:根据传统的热速率方程和新的热速率方程,计算了用两个金属板焊接的单个热电(TE)元件的性能系数(COP)φ_0和φ作为温度差(AT)和热电品质因数(ZT)的函数。这里分别提出了热速率。我们尝试将TE材料在热和冷端的塞贝克系数a,电阻率p和热导率k的差值考虑进热速率方程中,假设它们的TE特性随温度线性变化。 。但是,即使在新的热速率方程中,κ的差异也被忽略了,因为当将φ应用于高性能Bi-Te合金时,其对温度的依赖性太小。 a和ρ在300 K下的归一化温度依赖性分别用A和B表示。热速率方程中的A项被Thomson系数抵消,但B项仍然存在。当B> 0 K〜(-1)时,随着ΔT的增大和ZT的降低,φ/φ_0随B的增加而显着增强,并且在ΔT= 80 K时达到约1.20。 ×10〜(-3)K〜(-1)因此,冷却模块的COP也受到B和ZT的强烈影响。

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