Thermal Performance of Jet Impingement with Spent Flow Management

A. Husain, M. Ariz
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引用次数: 6

Abstract

The present study proposes novel micro-jet impingement heat sink with effusion holes for flow extraction. The design consists of impingement nozzles surrounded by multiple effusion holes to take away the spent fluid. A three-dimensional numerical model is used for steady, incompressible, laminar flow and conjugate heat transfer for the performance analysis of the proposed design. The computational domain is defined by applying symmetric boundary conditions around a unit cell of the jet impingements and effusion holes. The effect of several design parameters, viz., jet diameter, effusion-hole diameter, stand-off and the jet-to-effusion pitch is investigated. A higher standoff-to-jet diameter ratio exhibited lower thermal resistance whereas lower standoff-to-jet diameter ratio exhibited lower pressure-drop. Smaller jet-to-effusion hole spacing resulted in minimum temperature-rise along with maximum total pressure-drop and heat transfer coefficients.
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废流管理下射流冲击热性能研究
本研究提出了一种新型的带射流孔的射流冲击散热器。该设计包括由多个渗出孔包围的撞击喷嘴,以带走废流体。采用定常、不可压缩、层流和共轭传热的三维数值模型对设计进行了性能分析。通过在射流冲击和射流孔的单元格周围应用对称边界条件来定义计算域。考察了射流直径、射流孔直径、间隙和射流-射流节距等设计参数对射流性能的影响。高壁径比具有较低的热阻,而低壁径比具有较低的压降。射流孔间距越小,温升越小,总压降和换热系数也越大。
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