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首页> 外文期刊>International Journal of Heat and Mass Transfer >Numerical study of turbulent flow inside heat exchangers using perforated louvered strip inserts
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Numerical study of turbulent flow inside heat exchangers using perforated louvered strip inserts

机译:采用多孔百叶窗带插入件湍流流动湍流的数值研究

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摘要

Numerical simulations have been performed to analyze the turbulent flow characteristics and thermal performance of fluid flows inside heat exchangers fitted with novel perforated louvered strip inserts with different slant angles. The (RNG) k-ε is employed for the numerical simulations with the Reynolds number in the range of 5000-14,000. The results demonstrate that the recirculation flow through the holes of perforated louvered strips significantly improves the Nusselt number and thermal enhancement factor compared to the louvered strips without holes. Better fluid mixing between the tube walls and core region is the main physical reason for heat transfer augmentation. The recirculation flow through the holes of the perforated louvered strips significantly intensifies the flow disturbance and thus, the turbulent kinetic energy values near the holes increases. The effects of double mounted louvered strips on the axial velocity and turbulent kinetic energy are also investigated. The results show that the average Nusselt numbers for the cases of double perforated louvered strip with 9 = 15° and 25° are 30.1% and 45.84%, respectively, higher than single perforated louvered strip with the same slant angles. The maximum thermal enhancement factor of 1.84 can be obtained by employing double perforated louvered strip with θ = 25° at Re=14,000.
机译:已经进行了数值模拟,以分析具有不同倾斜角的新型穿孔宽松条带插入件的热交换器内流体流的湍流特性和热性能。 (RNG)K-ε用于数值模拟,雷诺数在5000-14,000的范围内。结果表明,与无孔的宽孔条相比,通过穿孔的宽钻条的孔的再循环流动显着改善了尤塞格数和热增强因子。管壁和核心区域之间的更好的流体混合是传热增强的主要物理原因。通过穿孔宽流带的孔的再循环流动显着增强了流动干扰,因此,孔附近的湍流动能值增加。还研究了双安装的百叶窗带对轴向速度和湍流动能的影响。结果表明,具有9 = 15°和25°的双孔百叶窗带的平均露天数分别为30.1%和45.84%,高于单个穿孔的百叶窗带,具有相同的倾斜角度。通过在RE = 14,000处采用双穿孔百叶窗带,可以通过采用双穿孔宽叶条带来获得1.84的最大热增强因子。

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