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Numerical analysis of heat transfer on a rotating disk surface under confined liquid jet impingement

机译:受限液体射流冲击下转盘表面传热的数值分析

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The objective of this study is to characterize the conjugate heat transfer for a confined liquid jet impinging on a rotating and uniformly heated solid disk of finite thickness and radius. The model covers the entire fluid region (impinging jet and flow spreading out over the rotating surface) and the solid disk as a conjugate problem. Calculations were done for a number of disk materials and working fluids covering a range of Reynolds number (500-1500), under a broad rotational rate range of 0-750 rpm or Ekman number (4.42 x 10~(-5) to ∞), nozzle to target spacing (β = 0.25-5.0), disk thicknesses to nozzle diameter ratio (b/d_n = 0.167-1.67), Biot number (3.73 x 10~(-3)—0.118), Prandtl number (1.29-124.44), and solid to fluid thermal conductivity ratio (36.91-2222). It was found that plate materials with higher thermal conductivity maintained a more uniform temperature distribution at the solid-fluid interface. A higher Reynolds number increased the local heat transfer coefficient reducing the wall to fluid temperature difference over the entire interface. The rotational rate also increased local heat transfer coefficient under most conditions. The simulation results compared reasonably well with previous experimental studies.
机译:这项研究的目的是表征撞击在有限厚度和半径的旋转且均匀加热的固态圆盘上的受限液体射流的共轭传热。该模型涵盖了整个流体区域(撞击的射流和在整个旋转表面上扩散的气流)和固态磁盘,这是一个共轭问题。在0-750 rpm或Ekman数(4.42 x 10〜(-5)至∞)的宽旋转速率范围内,对涵盖一定范围雷诺数(500-1500)的多种圆盘材料和工作流体进行了计算,喷嘴与目标间距(β= 0.25-5.0),圆盘厚度与喷嘴直径之比(b / d_n = 0.167-1.67),比奥数(3.73 x 10〜(-3)-0.118),普朗特数(1.29-124.44) ),以及固体与流体的导热系数之比(36.91-2222)。已经发现,具有较高导热率的板材在固-液界面处保持更均匀的温度分布。较高的雷诺数增加了局部传热系数,从而减小了整个界面上的壁与流体温度差。在大多数情况下,转速还增加了局部传热系数。仿真结果与先前的实验研究比较合理。

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