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3-D numerical simulation of heat transfer and turbulent flow in a receiver tube of solar parabolic trough concentrator with louvered twisted-tape inserts

机译:百叶窗胶带槽储层的接收管中传热和湍流的3-D数值模拟

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High temperature and higher-thermal efficiency for CSP cycles are main goals to improve trough collector's technologies. For a parabolic trough collector the major factor for optimum heat transfer from sun to the heat transfer fluid passing in the absorber tube is to have high convection heat transfer coefficient. Literature shows that absorber tubes with various tape inserts are used and recommended to produce high convection coefficient. Typical twisted-tape (TT) enhances heat exchange between tube surface and working fluid by generating turbulent swirling flow, In this study, enhancement of convection coefficient in the receiver tube of a solar parabolic trough concentrator that the absorber tube is equipped with a new perforated louvered twisted-tape (LTT) is studied numerically. For numerical simulations three different twist ratios (TR), TR=y/W= 2.67, 4, 5.33 (y is the length required for one twist and W is the width of the tape) are used in an experimental laboratory trough collector. Flow is assumed turbulent due to louvered perforated surface and rotational shape of the tape. For thermal boundary condition, nonuniform wall solar heat flux is determined by Soltrace code on the outer surface of the absorber tube. Heat transfer rate and pressure drop are determined for fully developed condition for several Reynolds numbers based on the tube diameter and flow mean velocity. Results show that the heat transfer coefficient and pressure drop increase significantly in comparison with a typical plain twisted-tape in the tube and a plain tube.
机译:CSP周期的高温和高热效率是提高Trough Collector技术的主要目标。对于抛物线槽收集器,从太阳到吸收管中的阳光到传热流体的最佳热传递的主要因素是具有高对流传热系数。文献表明,使用具有各种带插入件的吸收管,并推荐用于产生高对流系数。典型的双绞带(TT)通过产生湍流旋转流动,在本研究中提高了管表面和工作流体之间的热交换,增强了吸收管的太阳抛抛道槽浓缩器的接收管中的对流系数,使得吸收管配有新的穿孔百叶窗扭曲 - 胶带(LTT)在数值上进行了研究。对于数值模拟三种不同的扭曲比(Tr),Tr = Y / W = 2.67,4,5.33(Y是一个扭曲所需的长度,W是胶带的宽度)用于实验实验室槽收集器。由于宽大的穿孔表面和胶带的旋转形状,由于宽大的穿孔表面和旋转形状而被假定流动。对于热边界条件,不均匀的壁太阳能热通量由吸收管的外表面上的溶解码确定。基于管直径和流动平均速度,确定传热速率和压降对于几个雷诺数,用于几个雷诺数。结果表明,与管中的典型平纹胶带和普通管相比,传热系数和压降显着增加。

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