4.7 Article

Micro/nanoscale surface on enhancing the microchannel flow boiling performance: A Lattice Boltzmann simulation

期刊

APPLIED THERMAL ENGINEERING
卷 205, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.applthermaleng.2022.118036

关键词

Microchannel heat sink; Micro/nanoscale surface; Lattice Boltzmann Method; Heat transfer enhancement; Flow boiling

资金

  1. Research Grants Council of the Hong Kong Special Administrative Region, China [11210920]

向作者/读者索取更多资源

In this study, an advanced micro/nanoscale surface modification design for microchannel heat sink (MCHS) is proposed and analyzed using the Lattice Boltzmann method (LBM). The effects of surface wettability and micropillar on MCHS heat transfer performance are investigated, and design-based suggestions are made. The results provide valuable guidance for MCHS design and enhance understanding of the flow boiling process.
Microchannel Heat Sink (MCHS) has been widely adopted in thermal engineering fields, such as refrigerators, chip cooling, battery packs, etc. To meet the ever-increasing demand for heat dissipation, surface modification methods adopting micro/nanoscale-modified surfaces have received considerable attention. In this paper, an advanced micro/nanoscale surface modification design is proposed based on a Lattice Boltzmann method (LBM) simulation study. Coupled boundary treatments at the inlet/outlet are developed with better numerical stability. The effects of surface wettability and micropillar on MCHS heat transfer performance are analyzed through bubbles' dynamic behaviors, Nusselt number, heat flux, and pressure drop. Design-based suggestions are proposed, and the enhancement mechanisms are explained. Results show that hydrophobic surface is more preferred for temperature-sensitive devices with low superheat requirement (Ja < 0.1115), while the hydrophilic surface is more preferred for devices with a large heat dissipation requirement (Ja >= 0.1286). Furthermore, the micropillar surfaces with pillar geometric factor S-p of 7 can yield the optimum heat transfer performance under a wide range of superheat conditions. Finally, an advanced design of a biphilic micropillar surface is proposed with superhydrophobic regions located at the top of the pillars, and other regions remain hydrophilic surfaces. An excellent heat transfer enhancement of 105.8% is achieved even compared with a pure hydrophilic micropillar surface. The enhancement is attributed to the superhydrophobic top regions efficiently blocking the bubbles merging process, which leads to more intense bubbles departure. These results provide a valuable guide for MCHS design and unravel the enhancement mechanism of the flow boiling process.

作者

我是这篇论文的作者
点击您的名字以认领此论文并将其添加到您的个人资料中。

评论

主要评分

4.7
评分不足

次要评分

新颖性
-
重要性
-
科学严谨性
-
评价这篇论文

推荐

暂无数据
暂无数据