| Literature DB >> 31709595 |
Wenming Li1, Zuankai Wang2, Fanghao Yang3, Tamanna Alam1, Mengnan Jiang2, Xiaopeng Qu1, Fengyu Kong2, Ahmed Shehab Khan4, Minjie Liu2, Mohammad Alwazzan1, Yan Tong4, Chen Li1.
Abstract
Development of smaller, faster, and more powerful electronic devices requires effective cooling strategies to efficiently remove ever-greater heat. Phase-change heat transfer such as boiling and evaporation has been widely exploited in various water-energy industries owing to its efficient heat transfer mode. Despite extensive progress, it remains challenging to achieve the physical limit of flow boiling due to highly transitional and chaotic nature of multiphase flows as well as unfavorable boundary layer structures. Herein, a new strategy that promises to approach the physical limit of flow boiling heat transfer is reported. The flow boiling device with multiple channels is characterized with the design of micropinfin fences, which fundamentally transforms the boundary layer structures and imparts significantly higher heat transfer coefficient even at high heat flux conditions, in which boiling heat transfer is usually deteriorated due to the development of dryout starting from outlet regions and severe two-phase flow instabilities. Moreover, the approaching of physical limit is achieved without elevating pressure drop.Keywords: boundary layer; phase change; physical limit; supercapillary architecture; two-phase separation
Year: 2019 PMID: 31709595 DOI: 10.1002/adma.201905117
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849