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Kagome和四面体桁架芯格夹层板的对流换热比较。

Comparison of convective heat transfer for Kagome and tetrahedral truss-cored lattice sandwich panels.

作者信息

Yang Guangmeng, Hou Chi, Zhao Meiying, Mao Wei

机构信息

School of Aeronautics, Northwestern Polytechnical University, Xi'an, 710072, China.

Science and technology on space physics laboratory, Beijing, 100076, China.

出版信息

Sci Rep. 2019 Mar 6;9(1):3731. doi: 10.1038/s41598-019-39704-2.

Abstract

The aim of this paper is to make a thorough comparison between Kagome and tetrahedral truss-cored lattices both experimentally and numerically. Two titanium sandwich panels -one cored with the Kagome lattice and the other with the tetrahedral lattice -are manufactured by 3D printing technology. Comparisons of the thermal insulation, the inner flow pattern and the heat transfer between the two sandwich panels are completed subsequently according to the results from forced convective experiments and numerical simulation. Within the Reynolds number range of interest for this study, the Kagome lattice exhibits excellent heat dissipation compared with the tetrahedral lattice. In particular, when the cooling air flows in the direction OB of the two sandwich panels, the Kagome lattice provides an 8~37% higher overall Nusselt number for the sandwich panel compared to the tetrahedral lattice. The superiority of the Kagome lattice comes from a unique configuration in which the centre vertex acting as the vortex generator not only disturbs the primary flow but also induces more serious flow stagnation and separation. The complex fluid flow behaviours enhance heat transfer on both the endwalls and the trusses while causing a pressure drop that is almost two times higher than that of the tetrahedral lattice in the flow direction OB.

摘要

本文旨在通过实验和数值方法对 Kagome 晶格和四面体桁架芯晶格进行全面比较。利用 3D 打印技术制造了两块钛夹芯板,一块采用 Kagome 晶格作为芯材,另一块采用四面体晶格作为芯材。随后,根据强制对流实验和数值模拟结果,对两块夹芯板的隔热性能、内部流动模式和传热情况进行了比较。在本研究感兴趣的雷诺数范围内,与四面体晶格相比,Kagome 晶格表现出优异的散热性能。特别是,当冷却空气沿两块夹芯板的 OB 方向流动时,与四面体晶格相比,Kagome 晶格使夹芯板的总努塞尔数提高了 8%至 37%。Kagome 晶格的优势源于其独特的结构,其中作为涡旋发生器的中心顶点不仅会扰乱主流,还会导致更严重的流动停滞和分离。复杂的流体流动行为增强了端壁和桁架上的传热,同时在 OB 流动方向上产生的压降几乎是四面体晶格的两倍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b29/6403307/8cd86e801fcc/41598_2019_39704_Fig1_HTML.jpg

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