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Numerical Investigation of Flow and Heat Transfer over a Shallow Cavity: Effect of Cavity Height Ratio

机译:浅腔流动和传热的数值研究:腔高比率的影响

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摘要

Flow over shallow cavities is used to model the flow field and heat transfer in a solar collector and a variety of engineering applications. Many studies have been conducted to demonstrate the effect of cavity aspect ratio (AR), but very few studies have been carried out to investigate the effect of cavity height ratio (HR) on shallow cavity flow behavior. In this paper, flow field structure and heat transfer within the 3-D shallow cavity are obtained numerically for two height ratio categories: HR = 0.0, 0.25, 0.5, 0.75, and 1.0 and HR = 1.25, 1.5, 1.75, 2.0, 2.25, and 2.5. The governing equations, continuity, momentum, and energy are solved numerically and using the standard (K-ε) turbulence model. ANSYS FLUENT 14 CFD code is used to perform the numerical simulation based on the finite volume method. In this study, the cavity aspect ratio, AR = 5.0, and Reynolds number, Re = 3 × 105, parameters are fixed. The cavity’s bottom wall is heated with a constant and uniform heat flux (q = 740 W/m2), while the other walls are assumed to be adiabatic. For the current Reynolds number and cavity geometry, a single vortex structure (recirculation region) is formed and occupies most of the cavity volume. The shape and location of the vortex differ according to the height ratio. A reverse velocity profile across the recirculation region near the cavity’s bottom wall is shown at all cavity height ratios. Streamlines and temperature contours on the plane of symmetry and cavity bottom wall are displayed. Local static pressure coefficient and Nusselt number profiles are obtained along the cavity’s bottom wall, and the average Nusselt number for various height ratios is established. The cavity height ratio (HR) is an important geometry parameter in shallow cavities, and it plays a significant role in the cavity flow behavior and heat transfer characteristics. The results indicate interesting flow dynamics based on height ratio (HR), which includes a minimal value in average Nusselt number for HR ≈ 1.75 and spatial transitions in local Nusselt number distribution along the bottom wall for different HRs.
机译:在浅腔上流流动用于在太阳能收集器和各种工程应用中模拟流场和传热。已经进行了许多研究以证明腔纵横比(AR)的效果,但是已经进行了很少的研究以研究腔高比(HR)对浅腔流动行为的影响。在本文中,三维浅腔内的流场结构和热传递在数值上以两个高度比例获得:HR = 0.0,0.25,0.5,0.75和1.0和HR = 1.25,1.5,1.75,2.0,2.25和2.5。控制方程,连续性,动量和能量在数字上并使用标准(K-ε)湍流模型。 ANSYS FLUENT 14 CFD代码用于基于有限卷方法执行数值模拟。在该研究中,腔纵横比AR = 5.0和雷诺数,RE = 3×105,参数是固定的。腔的底壁用恒定和均匀的热通量加热(Q = 740W / m 2),而另一壁被认为是绝热的。对于当前的雷诺数和腔几何形状,形成单个涡旋结构(再循环区域)并占据大部分腔体积。涡流的形状和位置根据高度比而不同。腔底壁附近的再循环区域的反向速度曲线在所有腔高度比上示出。显示对称性平面和腔底壁的流线和温度轮廓。沿着腔的底壁获得局部静压系数和纽带数型材,并且建立了各种高度比的平均露天数。腔高比(HR)是浅腔中的重要几何参数,并且在腔流动行为和传热特性中起着重要作用。结果表明了基于高度比(HR)的有趣的流动动态,其包括HR≈1.75的平均孤立号的最小值,以及沿着不同HRS的底壁的局部喷射数分布中的空间转换。

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