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Numerical and experimental analysis of heat transfer in turbulent flow channels with two-dimensional ribs

机译:二维肋肋湍流通道内传热的数值和实验分析

摘要

The repeated ribs surfaces are known for their effective enhancement of heat transfer, which is widely demanded in many scientific and industrial applications. In this paper, further improvements were made by the introduction of a textured asymmetric arc rib structure, on which arrays of secondary micro grooves are superimposed onto a primary asymmetric surface. Numerical simulation has been carried out on the turbulent force convection flow in a single-phase channel with two-dimension (2D) ribbed internal surface in the range of Reynolds number from 20,000 to 60,000. A uniform heat flux is applied on the external surface of channel. In contrast to the conventional optimized symmetric triangular rib, the advanced compound rib could improve the performance of heat transfer while minimizes the pressure drop. These improvements are closely correlated to the promotion of the separated flow which could reattach the channel surface. Since the geometry of the novel compound rib is difficult to fabricate by conventional means, ultra-precision raster milling (UPRM) is used to generate these micro-structures. According to prediction of numerical simulation, the experimental cooling works have been designed and conducted for the considered shaped ribs with the signi ficant dimensionless pitch of 5 and 6. A good agreement was found between the simulation and experimental results.
机译:重复的肋条表面以有效地增强传热而闻名,这在许多科学和工业应用中被广泛要求。在本文中,通过引入带纹理的不对称弧肋结构进行了进一步的改进,在该结构上,辅助微沟槽的阵列叠加在主不对称表面上。在二维(2D)带肋内表面在雷诺数范围为20,000至60,000的单相通道中,对湍流对流进行了数值模拟。在通道的外表面上施加均匀的热通量。与传统的优化对称三角肋相比,先进的复合肋可以改善传热性能,同时最大程度地降低压降。这些改进与促进分离的流动密切相关,分离的流动可能会重新附着通道表面。由于新型复合肋的几何形状难以通过常规方法制造,因此使用超精密光栅铣削(UPRM)来生成这些微结构。根据数值模拟的预测,已经设计并进行了考虑的成形肋的实验冷却工作,其显着的无因次节距为5和6。在模拟和实验结果之间找到了很好的一致性。

著录项

  • 作者

    Wang HT; Lee WB; Chan J; To S;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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