首页> 外文会议>ASME International Conference on Micro/Nanoscale Heat and Mass Transfer >HEAT EXCHANGER IMPROVEMENT VIA CURVED MICROFLUIDIC CHANNELS PART 1: IMPACT OF CROSS-SECTIONAL GEOMETRY AND CHANNEL DESIGN ON HEAT TRANSFER ENHANCEMENT
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HEAT EXCHANGER IMPROVEMENT VIA CURVED MICROFLUIDIC CHANNELS PART 1: IMPACT OF CROSS-SECTIONAL GEOMETRY AND CHANNEL DESIGN ON HEAT TRANSFER ENHANCEMENT

机译:通过弯曲的微流体通道改善换热器改进部分1:横截面几何形状和通道设计对热传递增强的影响

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The efficiency of conventional heat exchangers is restricted by many factors, such as effectiveness of convective heat transfer and the cost of their operation. The current research deals with these issues by developing a novel method for building a lower-cost yet more efficient heat sink. This method involves using a specially designed curved microchannel to utilise the enhanced fluid mixing characteristics of Dean vortices, and thus transferring heat efficiently. Numerical models have been employed to investigate the heat transfer enhancement of curved channels over straight equivalents, with the aim of optimising the heat exchanger design based on the parameters of maximising heat transfer whilst minimising pressure drop and unit cost. A range of cross-sectional geometries for the curved channels were compared, showing significantly higher Nusselt Numbers than equivalent straight channels throughout, and finding superior performance factors for square, circular and symmetrical trapezoidal profiles. Due the difficulty and expense in manufacturing circular microchannels, the relatively simple to fabricate square and symmetrical trapezoidal channels are put forward as the most advantageous designs. These results take into account both constant wall temperature and constant heat flux conditions. For a given set of channel dimensions, an optimal input flow rate condition is also determined.
机译:传统热交换器的效率受到许多因素的限制,例如对流传热的有效性和其操作的成本。目前的研究通过开发一种建立较低成本更有效的散热器的新方法来涉及这些问题。该方法涉及使用专门设计的弯曲微通道来利用Dean Vortices的增强的流体混合特性,从而有效地传递热量。已经采用数值模型来研究直的等同物中弯曲通道的传热增强,目的是基于最大化热传递的参数来优化热交换器设计,同时最小化压降和单位成本。比较了用于弯曲通道的一系列横截面几何形状,显示出比当量贯穿相同的直线通道的显着更高,并找到正方形,圆形和对称梯形轮廓的卓越性能因素。由于制造圆形微通道的难度和费用,相对简单的制造正方形和对称梯形通道被提出作为最有利的设计。这些结果考虑了恒定壁温和恒定的热量条件。对于给定的一组信道尺寸,还确定了最佳输入流量条件。

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