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ANALYSIS OF STEADY STATE CONJUGATE HEAT TRANSFER IN A CIRCULAR MICROTUBE INSIDE A SUBSTRATE

机译:基质内部圆形微管中稳态共轭传热的分析

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The steady state heat transfer for laminar flow inside a circular microtube within a rectangular substrate has been investigated. Silicon, Silicon Carbide, and Stainless Steel were the substrates used and Water and FC-72 were the coolants employed. Equations governing the conservation of mass, momentum, and energy were solved in the fluid region. Within the solid wafer, the heat conduction was solved. A thorough investigation for velocity and temperature distributions for different substrates and coolants was performed by varying geometrical dimensions and Reynolds number. At a constant diameter and Reynolds number, for combinations comprising same coolant but different substrates, one with the lowest solid to fluid thermal conductivity ratio (k_s/k_f) attains the highest local peripheral average interface temperature. It was found that the Nusselt number is more for a system with Silicon as the substrate and FC-72 as the working fluid and the least for a system with Stainless Steel as the substrate and Water as the working fluid. The lower k_s/k_f ratio of Stainless Steel-Water combination is the main reason for the lower Nusselt number. With the increase in hydraulic diameter and Reynolds number, the average Nusselt number increased. It was also observed that the maximum temperature of the substrate and hence the outlet temperature of the fluid increased as the Reynolds number decreased.
机译:已经研究了矩形基板内圆形微管内部层流的稳态传热。硅,碳化硅和不锈钢是使用的基材,水和FC-72是使用的冷却剂。在流体区域中求解了控制质量,动量和能量守恒的方程。在固体晶片内,热传导得以解决。通过改变几何尺寸和雷诺数,对不同基材和冷却剂的速度和温度分布进行了全面研究。在具有恒定直径和雷诺数的情况下,对于包含相同冷却剂但不同基材的组合,具有最低固液导热系数(k_s / k_f)的组合可获得最高局部局部平均界面温度。结果发现,对于以硅为底物,FC-72为工作液的系统,努塞尔数更大,而对于以不锈钢为底物,以水为工作液的系统,努塞尔特数最少。不锈钢-水组合的k_s / k_f比值较低是Nusselt值较低的主要原因。随着水力直径和雷诺数的增加,平均努塞尔数增加。还观察到,随着雷诺数减小,基板的最高温度以及因此流体的出口温度升高。

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