Bio‐Inspired Anti‐Icing Material as an Energy‐Saving Design toward Sustainable Ice Repellency

Hui Yang, Zhanhui Wang, Si-Cong Tan, Ruhua Zang, Cunyi Li, Zhiyuan He, Jingxin Meng, Shutao Wang, Jianjun Wang
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引用次数: 4

Abstract

To avoid disastrous consequences from ice deposition, solar anti‐icing surfaces (SASs) have performed the potential of anti‐icing application because of their excellent photothermal de‐icing effect in the daytime. However, the deposition of ice still cannot be prevented due to the lack of solar energy at cold night, inevitably requiring extra energy consumption such as electrical heating. In this work, a bio‐inspired anti‐icing material (BAM) is presented, showing an energy‐saving design for sustainable ice repellency. By integrating a phase change microcapsule (PCM) layer with a superhydrophobic photothermal (SPT) layer, the BAM can delay icing for more than 8 h at cold night without any external energy. Different from traditional SASs, the PCM layer can store energy in the daytime and release heat energy for keeping temperature up freezing point at night. In addition, the SPT layer displays excellent solar‐to‐heat conversion for sufficient energy and robust self‐cleaning property for avoiding the blockage of sunlight from the contaminants or molten water, thereby resulting in the excellent icing delay. Therefore, this design can be developed and utilized for sustainable ice repellent applications such as power transmission, building infrastructure, and transportation networks.
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生物启发防冰材料作为可持续防冰的节能设计
为了避免冰沉积带来的灾难性后果,太阳能防冰表面(SASs)由于其在白天具有出色的光热除冰效果而发挥了防冰应用的潜力。然而,在寒冷的夜晚,由于缺乏太阳能,仍然无法阻止冰的沉积,不可避免地需要额外的能源消耗,如电加热。在这项工作中,提出了一种生物启发防冰材料(BAM),展示了可持续防冰的节能设计。通过将相变微胶囊(PCM)层与超疏水光热(SPT)层集成在一起,BAM可以在寒冷的夜晚不需要任何外部能量的情况下延迟结冰8小时以上。与传统的SASs不同,PCM层可以在白天储存能量,在夜间释放热能,使温度保持在冰点以上。此外,SPT层显示出优异的太阳能-热转换,以获得足够的能量和强大的自清洁性能,以避免污染物或熔融水阻挡阳光,从而导致优异的结冰延迟。因此,这种设计可以开发并用于可持续的防冰应用,如电力传输、建筑基础设施和交通网络。
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