McClure Emma R, Carey Van P
Department of Mechanical Engineering, University of California at Berkeley, Berkeley, California 94709, United States.
ACS Appl Mater Interfaces. 2020 Jun 10;12(23):26350-26359. doi: 10.1021/acsami.0c04139. Epub 2020 May 28.
Recent studies have indicated that droplet evaporation heat transfer can be substantially enhanced by fabricating a thin nanoporous superhydrophilic layer on a metal substrate. Such surfaces have immense potential to improve spray cooling processes, however, little durability testing of the surface has been performed. In spray cooling applications, as water evaporates any impurities in the water will be deposited onto the surface. Primarily, this investigation serves to demonstrate how minerals in hard water deposit on the surface and interact with the ZnO nanopillars of the superhydrophilic surface. Quantifying the effects of mineral scale on droplet spreading and vaporization heat transfer on the surface is important in determining implementation requirements to advance the surface into industry applications. Micrographs of the surface demonstrate minerals deposit nonuniformly and quickly fill the nanostructure. Despite a reduction in the extent of droplet spreading due to the mineral deposition, scaled surfaces still demonstrated improved thermal performance compared to an uncoated, smooth copper surface. Scale tended to build up on previously deposited scale, leaving largely uncoated areas where droplets chose to preferentially spread and resulting in a continued low contact angle. Maintaining these uncoated areas and reducing the contaminants present in the water will extend the life and performance of the nanostructured surface.
最近的研究表明,通过在金属基底上制备一层薄的纳米多孔超亲水层,可以显著增强液滴蒸发传热。这类表面在改善喷雾冷却过程方面具有巨大潜力,然而,对该表面的耐久性测试却很少进行。在喷雾冷却应用中,随着水的蒸发,水中的任何杂质都会沉积在表面上。本研究主要旨在证明硬水中的矿物质如何沉积在表面并与超亲水表面的氧化锌纳米柱相互作用。量化矿物垢对表面上液滴铺展和汽化传热的影响,对于确定将该表面推进到工业应用中的实施要求至关重要。表面的显微照片显示,矿物质沉积不均匀,并迅速填充纳米结构。尽管由于矿物沉积导致液滴铺展程度降低,但与未涂层的光滑铜表面相比,有垢表面仍表现出更好的热性能。垢倾向于在先前沉积的垢上堆积,留下大量未涂层区域,液滴会优先在这些区域铺展,从而导致接触角持续较低。保持这些未涂层区域并减少水中存在的污染物将延长纳米结构表面的寿命和性能。