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A sudden-melting event during water freezing inside a copper well

机译:在铜内冻结的水井里突然融化的事件

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摘要

We studied the freezing of super-cooled water inside a millimeter-sized copper well by confocal microscopy. During freezing, we surprisingly observed a novel melting scenario, which we call a sudden-melting event': the ice directly above the bottom substrate suddenly melts in the late stage of the freezing process, while the system is continuously being cooled. After this event, an empty gap around 10 m to 20 m between the substrate and the bulk ice is formed. Because this gap occupies the majority of the area of the bottom substrate, the adhesion between the bulk ice and the substrate is greatly reduced: the adhesion force decreases by more than 50% compared with the flat-substrate situation. We further discovered that air dissolved in water plays a crucial role in this melting event: the air excluded by water freezing produces inter-connecting channels in the bulk ice, which transport the warm water produced by latent heat to the substrate which causes the sudden melting event. Because this event makes the contact between ice and substrate very poor, and greatly reduces ice adhesion, our observation may lead to a promising anti-icing method on solid substrates. Compared to the prevalent super-hydrophobic surface technique, our approach only requires millimeter-sized wells instead of complex microscopic textures. Therefore, it is much easier and cheaper to produce, as well as much more robust for large-scale practical applications.
机译:我们通过共聚焦显微镜研究了毫米尺寸的铜井内的超冷水冻结。在冻结期间,我们惊奇地观察了一种新的融化场景,我们称之为突然熔化的事件':直接在底板上方的冰突然在冷冻过程的后期融化,而系统连续冷却。在此事件之后,形成基板与散装冰之间的10米至20μm的空隙。因为该间隙占据底部基板的大部分区域,因此大大减少了散装冰和基板之间的粘合性:与平衬基板的情况相比,粘合力减小超过50%。我们进一步发现溶解在水中的空气在这种熔化事件中起着至关重要的作用:被水冷冻排除的空气在散装冰中产生连接间通道,该冰块将通过潜热产生的温水运送到基材上导致突然熔化事件。因为这一事件使冰和衬底之间的接触非常差,并且大大减少了冰粘合,我们的观察可能导致固体基材上有希望的防糖粉。与普遍的超级疏水性表面技术相比,我们的方法只需要毫米尺寸的井而不是复杂的显微镜纹理。因此,生产的更容易和更便宜,以及对大型实际应用的更强大。

著录项

  • 来源
    《RSC Advances》 |2018年第61期|共6页
  • 作者

    Xu WenQiang;

  • 作者单位

    Chinese Univ Hong Kong Dept Phys Hong Kong Hong Kong Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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