首页> 外文期刊>International Journal of Heat and Mass Transfer >Optimization of the heat transfer coefficient and pressure drop of Taylor-Couette-Poiseuille flows between an inner rotating cylinder and an outer grooved stationary cylinder
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Optimization of the heat transfer coefficient and pressure drop of Taylor-Couette-Poiseuille flows between an inner rotating cylinder and an outer grooved stationary cylinder

机译:内旋转缸和外带槽固定缸之间的泰勒-库瓦-泊瓦流传热系数和压降的优化

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The aim of this study is to find optimum values of design parameters of annular flow with outer grooved cylinder and rotating inner cylinder in the presence of axial flow by using Response surface Method (RSM). This configuration is popular in cooling of electric generators and rotating machineries. Groove aspect ratio (0 < b/c < 1.5), number of grooves (0 < N_g < 20), Taylor number (0 < Ta < 2.24 × 10~6) and axial Reynolds number (4437 < Re_a < 14,297) are selected as design parameters while the Nusselt number (Nu) and pressure drop (AP) are selected as responses. Firstly, the effect of b/c and N_g on pressure drop, friction factor and heat transfer enhancement inside grooved channel is investigated. In the next step, RSM has been employed to construct correlations required in optimization. The accuracy of correlations is proved experimentally. Finally optimization based on heat transfer to pressure drop ratio has been employed to determine optimum values of design parameters to maximize heat transfer and minimize pressure drop of Couette-Taylor-Poiseuille flow inside the grooved channels. Heat transfer to pressure drop ratio is maximum at b/c = 1.42 and N_g = 19. This optimization gives a lot of freedom to designers to choose the optimal geometric parameters of electric motors.
机译:这项研究的目的是通过使用响应面法(RSM)来找到在存在轴向流动的情况下,带有外沟槽圆柱体和带有旋转内圆柱体的环形流的设计参数的最佳值。这种构造在发电机和旋转机械的冷却中很流行。选择凹槽的纵横比(0

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