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Transient conjugate heat transfer in straight microchannels

机译:直线微通道中的瞬态共轭传热

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摘要

Many theoretical and experimental studies have been carried out in order to study the flow and heat transfer in microchannels. In the recent years, numerical simulation has been applied to investigate the problem under a variety of conditions. However, much of the focus has been on steady-state problems and time-dependent transport has received relatively minor attention, despite its importance in practical electronic devices and systems. Employing a versatile commercial code, this paper aims to examine heat removal from straight rectangular microchannels affected by a time-dependent heat flux input. Both cosinusoidal variation and step-change application and removal of a uniform heat source are studied to determine the response time of the system. For the fluid phase, the two-dimensional momentum and energy equations are solved, considering temperature dependent properties and viscous dissipation. The effects of the amplitude of the heat flux variation, inlet velocity, and geometry, including the thickness of the heat sink, are investigated. Channels of smaller width are found to be more sensitive to the heat flux source, especially for higher input values. The velocity represents the most important parameter for channels of greatest width considered here, as it directly affects the fluid dynamics and the pressure drop when a time-dependent heat source is applied to the system.
机译:为了研究微通道中的流动和传热,已经进行了许多理论和实验研究。近年来,数值模拟已用于研究各种条件下的问题。然而,尽管它在实际的电子设备和系统中很重要,但很多注意力都集中在稳态问题上,并且时变运输受到的关注相对较小。本文采用通用的商业法规,旨在研究受时间相关的热通量输入影响的直矩形微通道的散热。研究了余弦曲线的变化和阶跃变化的施加以及均匀热源的去除,以确定系统的响应时间。对于液相,考虑了温度依赖性和粘性耗散,求解了二维动量和能量方程。研究了热通量变化幅度,入口速度和几何形状(包括散热器的厚度)的影响。发现宽度较小的通道对热通量源更敏感,尤其是对于较高的输入值。速度代表此处考虑的最大宽度通道的最重要参数,因为当将随时间变化的热源应用于系统时,它直接影响流体动力学和压降。

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