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Bio-inspired dewetted surfaces based on SiC/Si interlocked structures for enhanced-underwater stability and regenerative-drag reduction capability

机译:基于SiC / Si互锁结构的生物启发的脱焊表面,用于增强水下稳定性和再生阻力减阻能力

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Drag reduction has become a serious issue in recent years in terms of energy conservation and environmental protection. Among diverse approaches for drag reduction, superhydrophobic surfaces have been mainly researched due to their high drag reducing efficiency. However, due to limited lifetime of plastron (i.e., air pockets) on superhydrophobic surfaces in underwater, the instability of dewetted surfaces has been a sticking point for practical applications. This work presents a breakthrough in improving the underwater stability of superhydrophobic surfaces by optimizing nanoscale surface structures using SiC/Si interlocked structures. These structures have an unequaled stability of underwater superhydrophobicity and enhance drag reduction capabilities,with a lifetime of plastron over 18 days and maximum velocity reduction ratio of 56%. Furthermore, through photoelectrochemical water splitting on a hierarchical SiC/Si nanostructure surface, the limited lifetime problem of air pockets was overcome by refilling the escaping gas layer, which also provides continuous drag reduction effects.
机译:近年来,在节能和环境保护方面,减少减免已成为一个严重的问题。在减少减阻的不同方法中,由于其高阻力降低效率,超疏水表面主要研究。然而,由于水下超疏水表面上的PRASTRON(即气袋)的寿命有限,脱焊表面的不稳定性是实际应用的粘附点。该工作呈现出通过使用SiC / Si互锁结构优化纳米级表面结构来改善超疏水表面的水下稳定性的突破。这些结构具有不等水下超水性的稳定性,并增强阻力减少能力,寿命超过18天,最大速度降低率为56%。此外,通过在等级SiC / Si纳米结构表面上的光电化学水分解,通过重新填充逸出的气体层克服了空气口袋的有限寿命问题,这也提供了连续阻力减少效果。

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