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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Solution to the 1-D unsteady heat conduction equation with internal Joule heat generation for thermoelectric devices
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Solution to the 1-D unsteady heat conduction equation with internal Joule heat generation for thermoelectric devices

机译:带有内部焦耳热的一维非稳态热传导方程的求解

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Thermoelectric devices are semiconductor devices which are capable of either generating a voltage when placed in between a temperature gradient, exploiting the Seebeck effect, or producing a temperature gradient when powered by electricity, exploiting the Peltier effect. The devices are usually employed in environments with time-varying temperature differences and input/output powers. Therefore it becomes important to understand the behaviour of thermoelectric devices during thermal and electrical transients in order to properly simulate and design complex thermoelectric systems which also include power electronics and control systems. The purpose of this paper is to provide the transient solution to the one-dimensional heat conduction equation with internal heat generation that describes the transfer and generation of heat throughout a thermoelectric device. The solution proposed can be included in a model in which the Peltier effect, the thermal masses and the electrical behaviour of the system are considered too; this would be of great benefit because it would allow accurate simulations of thermoelectric systems. While the previous literature does not focus on the study of thermal transients in thermoelectric applications and usually considers constant the temperatures at the hot and cold sides, this paper proposes a dynamic exchange of heat through the hot and cold side, both in steady-state and transients. This paper also presents an analytical solution which is then computed by Matlab to simulate a physical experiment. Simulation results show excellent correlation with experimentally determined values, thus validating the solution.
机译:热电器件是半导体器件,当置于温度梯度之间时,可以利用塞贝克效应产生电压;而在通电供电时,可以利用珀尔帖效应产生电压梯度。该设备通常用于温度时差和输入/输出功率随时间变化的环境中。因此,重要的是要了解热电设备在热和电瞬变期间的行为,以便正确地模拟和设计复杂的热电系统,其中还包括电力电子和控制系统。本文的目的是为一维热传导方程式提供瞬态解,该方程式具有内部生热,描述了整个热电设备中热量的传递和产生。提出的解决方案可以包含在模型中,该模型中也考虑了珀耳帖效应,系统的热质量和电性能。这将是非常有益的,因为它将允许对热电系统进行精确的仿真。虽然先前的文献并不专注于热电应用中的热瞬态研究,并且通常考虑在热侧和冷侧保持恒定的温度,但本文提出了在稳态和热态下通过热侧和冷侧的动态热交换。瞬变。本文还提出了一种解析解决方案,然后由Matlab计算以模拟物理实验。仿真结果显示与实验确定的值具有极好的相关性,从而验证了解决方案。

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