...
首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Single-phase convective heat transfer performance of wavy microchannels in macro geometry
【24h】

Single-phase convective heat transfer performance of wavy microchannels in macro geometry

机译:宏观几何波浪微通道的单相对流传热性能

获取原文
获取原文并翻译 | 示例
           

摘要

The feasibility of attaining microscale heat transfer effects using macro geometries has been demonstrated. The concentric superposition of two macro geometries, manufactured through conventional machining, yielded an annular microchannel with a microscale gap of 300 mu m. In this paper, sinusoidal wave geometrical profiles were introduced on the inner cylinder's surface to enhance convective heat transfer and the overall energy efficiency, for a given heat transfer area. Experimental and numerical studies were conducted on steady-state, single-phase heat transfer, using distilled water as the coolant, with an operating Reynolds number range of 1300-4600. Results showed that the enhanced microchannels with higher wave amplitudes and shorter wavelengths performed better in terms of heat transfer, at the expense of heightened pressure losses. Overall, the highest-performing enhanced microchannel is capable of removing 51 percent more heat than the plain annular channel at a given pumping power. In addition, large wave amplitudes coupled with low operating Reynolds number yielded optimal heat transfer efficiency and vice versa. The wavy profiles promote heat transfer efficiency through flow perturbation and the reinitialization of boundary layers along the peaks while keeping pressure losses relatively low. New correlations for the average Nusselt number and friction factor were proposed for the wavy annular microchannels, which can be utilised for future compact heat exchanger designs, exhibiting enhanced microscale heat removal capabilities while employing relatively economical fabrication processes.
机译:已经证明了使用宏几何形状获得微观传热效应的可行性。通过传统加工制造的两个宏几何形状的同心叠加,产生了带有300μm的微观间隙的环形微通道。本文在内筒面引入了正弦波几何轮廓,以提高给定的传热区域的对流传热和整体能效。使用蒸馏水作为冷却剂的稳态,单相热传递进行实验和数值研究,操作雷诺数为1300-4600。结果表明,由于高压损失的牺牲,具有较高波浪幅度和较短波长的增强的微通道更好地执行。总的来说,性能最高的增强微通道能够在给定的泵送电力下除去比普通环形通道更高的热量。另外,与低操作雷诺数耦合的大波幅产生最佳的传热效率,反之亦然。波浪型材通过流动扰动促进传热效率,并沿峰值的边界层的重新升级,同时保持压力损失相对较低。提出了用于波浪环形微通道的平均冲击数和摩擦系数的新相关性,其可用于未来的紧凑型热交换器设计,在采用相对经济的制造过程的同时表现出增强的微观散热能力。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号