论文标题

表面声波配备具有主动除法功能的材料:脱离的除法机制和应用于厘米尺度透明表面

Surface Acoustic Waves Equip Materials with Active Deicing Functionality: Unraveled Deicing Mechanisms and Application to Centimeter Scale Transparent Surfaces

论文作者

Jacob, Stefan, Pandey, Shilpi, Del Moral, Jaime, Karimzadeh, Atefeh, Gil-Rostra, Jorge, González-Elipe, Agustín R., Borrás, Ana, Winkler, Andreas

论文摘要

迁移活跃的直导能力迁移到具有低导热率的透明材料,具有改善汽车,机器人,能源和航空航天部门的几个开创性行业的运营的较高潜力。但是,在相关尺度和现实世界中,其与最终用户表面的兼容性,其有效且对环境友好的开采方法的发展仍处于起步阶段。在本文中,我们通过表面声波(锯)实现的纳米级表面激活接近去缝线,从而使表面积有效地按需进行按需除法,这些表面区域跨越了几平方厘米,上面覆盖着厚厚的格拉斯冰层。我们从两个角度的角度考虑基于锯的根源:首先,我们通过散装的压电材料(Linbo3)和压电胶片(ZnO)证明了它的功能,后者构成了其多功能的适用性,这些适用性对各种具有实际重要性的功能材料;其次,我们获得了负责使用锯有效进行除法的机制的基本知识。特别是,我们表明,看到振动模式很容易在电极区域以外的更距离上运输能量,并有效地融化了覆盖材料表面的大型冰骨料。此外,通过经过精心设计的实验和数值研究来推断基于锯的根源的基本物理。我们通过在除法和高度分辨的激光多普勒振动仪在室温下在气候室内捕获的宏观摄像头快照,以支持我们的发现。非常小心地将用于SAW激发的互换能器(IDT)放置在靠近芯片边缘的无冰区域上,这使大多数用于对不变的底物进行除去的底物,事实上,证明了透明的Deicing解决方案。

Migrating active deicing capabilities to transparent materials with low thermal conductivity has a high potential to improve the operations of several seminal industries in the automotive, robotic, energy, and aerospace sectors. However, the development of efficient and environmentally friendly deicing methods is yet in its infancy regarding their compatibility with end-user surfaces at relevant scales and real-world operations. Herein, we approach deicing through nanoscale surface activation enabled by surface acoustic waves (SAWs), allowing efficient on-demand deicing of surface areas spanning several square centimeters covered with thick layers of glace ice. We contemplate SAW-based deicing from a twofold perspective: First, we demonstrate its functionality both with a bulk piezoelectric material (LiNbO3) and a piezo-electric film (ZnO), the latter proving its versatile applicability to a large variety of functional materials with practical importance; second, we gain fundamental knowledge of the mechanisms responsible for efficient deicing using SAWs. In particular, we show that SAW vibrational modes easily transport energy over greater distances outside the electrode areas and efficiently melt large ice aggregates covering the materials' surfaces. In addition, the essential physics of SAW-based deicing is inferred from a carefully designed experimental and numerical study. We support our findings by providing macroscopic camera snapshots captured in situ inside a climate chamber during deicing and highly resolved laser-doppler vibrometer scans of the undisturbed wavefields at room temperature. Great care was taken to deposit the interdigital transducers (IDTs) used for SAW excitation only on ice-free areas close to the chip edges, leaving most of the substrate used for deicing unaltered and, as a matter of fact, demonstrating transparent deicing solutions.

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