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Numerical and experimental analysis of transient supercooling effect of voltage pulse on thermoelectric element

机译:电压脉冲对热电元件​​瞬态过冷效应的数值和实验分析

摘要

This paper presents a mathematical model and its solution algorithm for analyzing the transient supercooling effect of voltage pulse on a thermoelectric (TE) element. Realistic boundary conditions, including the hot-end convection heat transfer coefficient (h) and cold-end cooling load, are considered in solving the model. The numerical simulation results show that the transient supercooling occurs when the steady input voltage experiences a step change. However, the minimum supercooling temperature (T mts) cannot approach absolute zero as reported in previous research due to the co-existence of Joule heat and Peltier effect. There is a cost-effective h to achieve T mts and maximum hold time of the supercooling temperature. However, the cold-end cooling load only affects T mts. Experiments are conducted to test the transient supercooling effect of voltage pulse. The trends of the cold-end temperature responding to voltage pulses obtained in numerical simulation and experiment tests match well.
机译:本文提出了一种数学模型及其求解算法,用于分析电压脉冲对热电(TE)元件的瞬态过冷效应。在求解模型时考虑了实际的边界条件,包括热端对流传热系数(h)和冷端冷却负荷。数值模拟结果表明,当稳定输入电压发生阶跃变化时,会发生瞬态过冷。但是,由于焦耳热和珀尔帖效应的共同存在,最低过冷温度(T mts)不能接近绝对零,如先前研究中所报道。要达到T mts和过冷温度的最大保持时间,要有一个经济有效的时机。但是,冷端的冷却负荷仅影响T mts。进行实验以测试电压脉冲的瞬态过冷效果。数值模拟和实验测试得到的冷端温度对电压脉冲的响应趋势吻合得很好。

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