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Numerical investigation on heat transfer performance and flow characteristics in enhanced tube with dimples and protrusions

机译:带凹痕和凸起的增强管传热性能和流动特性的数值研究

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In the present investigation, a new design of enhanced tube aiming to improve heat transfer by employing dimples and protrusions was put forward. The special enhanced tube with dimples and protrusions is obtained by extruded the conventional plain tube. The objective is to present details of flow field characteristics and heat transfer mechanisms for the ETDP, then effects of protrusion depth, pitch and radius on thermal-hydraulic performance also being discussed. The operating Reynolds number ranged from 5000 to 30,000 and the validated realizablek-εturbulence model was employed on the numerical simulations. The local streamlines, velocity contour, temperature contour and Nusselt number were presented to illustrate the heat transfer enhancement mechanisms. From this investigation, it is found that the varying geometric parameters of ETDP play an important role in thermal-hydraulic characterises. The main findings are that the ETDP have an advantage for augmented heat transfer rate and PEC compared with the plain tube, due to improved flow mixing, interrupted the boundary layer, formed periodic jet flows and swirl flows induced by dimples and protrusions. The Nusselt number and friction factor increase andPECdecrease with an increasing protrusion depth. Among the investigated different protrusion pitch, it is found that the friction factor first decrease and then increase with the increase of protrusion pitch. For varying the protrusion radius, the ETDP withR = 3 mm have the largest PEC at the mostRe. Under operating condition and geometric parameters considered, the ETDP withD = 3 mm,P = 30 mm andR = 4 mm offers the largest PEC value of about 1.65.
机译:在本研究中,提出了一种新设计的增强管,旨在通过使用凹坑和突起来改善传热。通过挤压传统的普通管获得具有凹痕和突起的特殊增强管。目的是详细介绍ETDP的流场特性和传热机理,然后讨论突出深度,螺距和半径对热工液压性能的影响。雷诺数为5000到30,000,数值模拟采用了已验证的可实现k-ε湍流模型。提出了局部流线,速度等值线,温度等值线和努塞尔数,以说明传热增强机理。从这项研究中,发现ETDP的变化几何参数在热工液压特性中起着重要作用。主要发现是,与普通管相比,ETDP具有提高传热速率和PEC的优势,这是由于改进了流动混合,中断了边界层,形成了周期性的喷射流以及由酒窝和突起引起的涡流。随着突出深度的增加,Nusselt数和摩擦系数增加,PEC减少。在研究的不同突起间距中,发现摩擦系数随着突起间距的增加先减小后增大。为了改变突出半径,R = 3 mm的ETDP在最大Re时具有最大的PEC。在考虑工作条件和几何参数的情况下,D = 3 mm,P = 30 mm和R = 4 mm的ETDP的最大PEC值约为1.65。

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