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A parametric study of the conjugate heat transfer problem in an axisymmetric venturi-type cooling system

机译:轴对称文档型冷却系统中的共轭传热问题的参数研究

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It is shown that an indirect cooling system based on the venturi principle enhances the convective heat transfer many-folds as compared to a simple pipe-flow. Such enhancement results from the acceleration of the coolant in a variable cross-section annulus, created by a concentrically placed bi-conical obstruction inside a circular pipe. The heat-source is placed on the outer-wall of the pipe, at a location corresponding to the venturi-throat. The effect of different pipe materials on the thermal performance of the new cooling system are explored. Numerical results are presented for six Reynolds numbers (based on the pipe diameter) covering the range of about 3200 to 32000, and for a single, circular, ring-type heat-load of 273.5 W/cm{sup}2 The coolant used is water, at an inlet temperature of 20°C. The materials considered are copper, aluminum and stainless-steel (AISI 304). It has been found that even though stainless-steel gives heat transfer rates better than copper and aluminum, that gain is outweighed by the undesirably high temperatures at the heat-sources, thereby making it an unsuitable wall-material for indirect cooling of high heat-flux electronics using the venturi system.
机译:结果表明,与简单的管道流相比,基于文丘里原子原理的间接冷却系统增强了对流热传递多倍。这种增强来自可变横截面环中的冷却剂的加速度,由圆形管内的同心放置的双锥形梗阻产生的可变横截面环。将热源放置在管的外壁上,位于与文丘里喉部对应的位置。探讨了不同管材对新冷却系统热性能的影响。数值结果呈现六个雷诺数(基于管道直径)覆盖约3200至32000的范围,并且对于273.5W / cm {sup} 2的单个,圆形,环型热负荷是使用的冷却剂是水,入口温度为20°C。考虑的材料是铜,铝和不锈钢(AISI 304)。已经发现,即使不锈钢比铜和铝产生热传递率,即使是热源的不期望的高温超过该增益,从而使其成为一种不适合的壁材料,用于间接冷却高热量 - 使用Venturi系统的助焊剂电子器件。

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