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Low-voltage and -surface energy SWCNT/poly(dimethylsiloxane) (PDMS) nanocomposite film: Surface wettability for passive anti-icing and surface-skin heating for active deicing

机译:低压和表面能SWCNT /聚(二甲基硅氧烷)(PDMS)纳米复合薄膜:用于被动除冰的表面润湿性和用于主动除冰的表面皮肤加热

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摘要

Icing is a multiphase/multiscale/multiparameter physical process, and is of frequent occurrence when suitable conditions with temperature, pressure and humidity are met. In the present work, we prepared a series of PDMS-matrix nanocomposite films with different SWCNT contents, which were endowed with hydrophobicity based on the low-surface-energy PDMS matrix and the conductivity on the SWCNT filler. Furthermore, by etching the pillar-textured structure on its surface, the nanocomposite with 5.0 wt% SWCNT was given the super-hydrophobicity. These nanocomposites can be easily switched from a hydrophobic anti-icing mode to an electro-thermal deicing mode by supplying a low voltage. Using non-contact infrared thermometry, we presented an analysis of the freezing phase transition process of a single water droplet on cooling surfaces with different wettability, and investigated their ice nucleation rate and macroscopic growth velocity on these surfaces. The ice-retarding capability of superhydrophobic nanocomposite surface subjected to lots of condensed droplets was also confirmed, and understanding in light of weak contact interaction with droplets. Also under consideration is the icephobicity after freezing in terms of ice shear strength. In addition, we performed a statistical analysis about the Joule heat distribution on nanocomposite surface, the results of which demonstrated that the nanocomposite could supply a suitable heating function for active deicing, demonstrating with an energy-input deicing experiment subsequently.
机译:结冰是一个多相/多尺度/多参数的物理过程,当满足温度,压力和湿度的适当条件时,结冰会频繁发生。在目前的工作中,我们制备了一系列具有不同SWCNT含量的PDMS-基质纳米复合膜,这些膜基于低表面能PDMS基质和SWCNT填料上的电导率而具有疏水性。此外,通过在其表面上蚀刻柱纹理结构,使具有5.0wt%SWCNT的纳米复合材料具有超疏水性。通过提供低电压,这些纳米复合材料可以容易地从疏水性除冰模式切换为电热除冰模式。使用非接触式红外测温法,我们对具有不同润湿性的冷却表面上单个水滴的冻结相变过程进行了分析,并研究了它们在这些表面上的冰成核率和宏观生长速度。还证实了经受大量冷凝液滴的超疏水纳米复合材料表面的抗冰能力,并且根据与液滴的弱接触相互作用来理解。还考虑了冷冻后的冰剪切强度方面的疏冰性。此外,我们对纳米复合材料表面的焦耳热分布进行了统计分析,其结果表明,纳米复合材料可以为主动除冰提供合适的加热功能,随后通过能量输入除冰实验证明。

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