首页> 外文会议>ASME international mechanical engineering congress and exposition >EFFECT OF GROOVE DIMENSION ON THERMAL PERFORMANCE OF TURBULENT FLUID FLOW IN INTERNALLY GROOVED TUBE
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EFFECT OF GROOVE DIMENSION ON THERMAL PERFORMANCE OF TURBULENT FLUID FLOW IN INTERNALLY GROOVED TUBE

机译:沟槽尺寸对内部沟槽管内湍流流动热性能的影响

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A Computational Fluid Dynamics (CFD) study of heat enhancement in helically grooved tubes was carried out by using a 3-dimensional simulation with the STARCCM+ simulation package software. The k-ε model selected for turbulent flow simulation and the governing equations were solved by using the finite volume method. Geometric models of the current study include 3 rectangular grooved tubes with different groove width (w) and depth (e) which varies from 0.2 mm to 0.6 mm for the same tube length of 2.0m and diameter of 7.1 mm. The simulations were performed in the Reynolds number (Re) range of 4000-10000 with a uniform wall heat flux of 3150 w/m~2 applied as a boundary condition on the surface of each tube. The purpose of this research is to investigate the effect of different groove dimensions on the thermal performance and pressure drop of water inside the grooved tubes and clarify the structural nature of the flow in regards to flow swirl and turbulent kinetic energy distributions. It was found that the highest performance belongs to the groove with these dimensions (w=0.2 mm and e=0.2 mm) which was considered for further study. Then, for these same groove dimensions four pitch size to tube diameter (p/D) ratios ranging from 1 to 18 were simulated for the same 2.0 m length tube. The results for Nusselt number (Nu) and friction factor (f) showed that by increasing the (p/D) ratio both the Nu numbers and the friction factors (f) values decrease. With a smaller pitch length (p) the turbulence intensity generated by the internal groove was also found to increase. The physical behavior of the turbulent flow and heat transfer characteristics were observed by contour plots which showed an increasing swirl flow and turbulent kinetic energy as p/D decreases. With an increase of the Nu number for smaller p/D ratio, a penalty of a higher pressure drop was obtained. The results were validated with a previous experimental work and the average error between the experimental and CFD Nu numbers and/were 13% and 8% respectively. A higher level of turbulent kinetic energy is observed near the grooves, as compared to the smooth areas of the pipe surface away from the grooves, which are expected to lead to higher levels of heat transfer. The effect of pitch length (p) on the flow pattern were plotted by streamlines along the tubes, by decreasing the pitch size (p/D ratio) an increase in the swirl is noticed as evidenced by the plots of the path lines. Finally, empirical correlations for Nusselt number and friction factor were provided as a function of p/D and Re number. This study indicates that the incorporation of the internal groove, of particular dimensions, can lead to an improvement of performance in heat exchanger devices. A limited variation of the groove dimensions was conducted and it was found that the values of Nu and f do not improve with an increase of (w) nor with that of (e) from 0.2-0.6 mm.
机译:通过使用带有STARCCM +模拟软件包的3维模拟,对螺旋沟槽管中的热增强进行了计算流体动力学(CFD)研究。通过有限体积法求解了用于湍流模拟的k-ε模型和控制方程。当前研究的几何模型包括3个矩形沟槽管,它们的沟槽宽度(w)和深度(e)不同,对于相同的管长2.0m和直径7.1 mm,其变化范围为0.2 mm至0.6 mm。在4000-10000的雷诺数(Re)范围内进行模拟,并在每个管子的表面上施加3150 w / m〜2的均匀壁热通量作为边界条件。这项研究的目的是研究不同沟槽尺寸对沟槽管内水的热性能和水压降的影响,并就流旋流和湍动能分布阐明流的结构性质。发现具有这些尺寸(w = 0.2mm和e = 0.2mm)的沟槽具有最高的性能,这被认为是需要进一步研究的。然后,对于这些相同的凹槽尺寸,对于相同的2.0 m长的管,模拟了从1到18的四个节距尺寸与管直径(p / D)的比率。 Nusselt数(Nu)和摩擦因数(f)的结果表明,通过增加(p / D)比,Nu数和摩擦因数(f)值都会降低。在较小的节距长度(p)下,还发现由内部凹槽产生的湍流强度增加。通过等高线图观察了湍流的物理行为和传热特性,该等高线图显示随着p / D的减小,涡流和湍动能增加。对于较小的p / D比,随着Nu值的增加,获得了较高的压降的损失。结果通过先前的实验工作进行了验证,实验数值和CFD Nu数值之间的平均误差分别为13%和8%。与管道表面远离沟槽的光滑区域相比,在沟槽附近观察到更高水平的湍动能,这有望导致更高水平的热传递。螺距长度(p)对流型的影响通过沿管道的流线绘制,通过减小螺距大小(p / D比),可以注意到旋流的增加,如路径线图所示。最后,提供了Nusselt数和摩擦系数的经验相关性,它们是p / D和Re数的函数。该研究表明,特别尺寸的内部凹槽的合并可导致热交换器设备性能的提高。进行了沟槽尺寸的有限变化,并且发现Nu和f的值不会随着(w)的增加而增加,也不会随着(e)的从0.2-0.6mm的增加而改善。

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