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首页> 外文期刊>Journal of turbomachinery >Effect of Radial Location of Nozzles on Heat Transfer in Preswirl Cooling Systems
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Effect of Radial Location of Nozzles on Heat Transfer in Preswirl Cooling Systems

机译:喷嘴径向位置对预旋冷却系统传热的影响

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This paper investigates heat transfer in a rotating disk system using preswirled cooling air from nozzles at high and low radius. The experiments were conducted over a range of rotational speeds, flow rates, and preswirl ratios. Narrow-band thermochromic liquid crystal (TLC) was specifically calibrated for application to experiments on a disk, rotating at ~5000 rpm and subsequently used to measure surface temperature in a transient experiment. The TLC was viewed through the transparent polycarbonate disk using a digital video camera and strobe light synchronized to the disk frequency. The convective heat transfer coefficient h was subsequently calculated from the one-dimensional solution of Fourier's conduction equation for a semi-infinite wall. The analysis was accounted for the exponential rise in the air temperature driving the heat transfer, and for the experimental uncertainties in the measured values of h. The experimental data was supported by "flow visualization," determined from CFD. Two heat transfer regimes were revealed for the low-radius preswirl system: a viscous regime at relatively low coolant flow rates, and an inertial regime at higher flow rates. Both regimes featured regions of high heat transfer where thin, boundary layers replaced air exiting through receiver holes at high radius on the rotating disk. The heat transfer in the high-radius preswirl system was shown to be dominated by impingement under the flow conditions tested.
机译:本文使用来自高低半径喷嘴的预旋冷却空气研究旋转盘系统中的热传递。实验是在一定范围的转速,流速和预旋流比下进行的。窄带热致变色液晶(TLC)经过专门校准,可用于磁盘上的实验,并以〜5000 rpm的转速旋转,随后在瞬态实验中用于测量表面温度。通过使用数字摄像机的透明聚碳酸酯光盘和与光盘频率同步的频闪灯查看TLC。随后,根据半无限壁的傅立叶传导方程的一维解计算对流传热系数h。该分析考虑了驱动传热的气温指数上升,以及h的测量值的实验不确定性。实验数据由CFD确定的“流量可视化”支持。对于低半径的预旋流系统,揭示了两种传热方式:在较低的冷却剂流速下为粘性状态,在较高的流速下为惯性状态。两种状态均具有高传热区域,薄的边界层代替了通过旋转圆盘上大半径的接收器孔排出的空气。在测试的流动条件下,高半径预旋流系统中的传热受冲击支配。

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