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In-Silico Environment for Designing Anti-icing Surfaces

机译:用于设计防冰表面的硅环境

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摘要

In-flight icing occurs when supercooled water droplets suspended in the atmosphere impinge on cold aircraft surfaces. Thin layers of accreted ice significantly increase aerodynamic drag while thick layers of ice severely alter the aerodynamics of control surfaces and lift. Chunks of ice can break away from the airframe and cowlings and be ingested into engines causing considerable damage. Developing durable surfaces that prevent the nucleation of supercooled water or reduce ice adhesion to a point where airstream shear forces can remove it would allow the design of a more robust, energy efficient deicing/anti-icing system for aircraft and other applications. In this work, a simulations based framework is developed to predict anti-icing performance of various nanocomposite coatings under the in-flight environment. The intrinsic multiscale feature of our model allows a rational design of durable anti-icing coatings targeting different (macroscale) structures in an aircraft body through tailoring (nano to microscale) material chemistry and surface morphology. This work is an integral part of the Aerospace Simulations and Optimization Platform (AESOP) currently being developed for aerospace materials design.
机译:当悬浮在大气中的过冷水滴冲击冷飞机表面时,就会发生在飞行中的结冰。薄层的冰层显着增加空气动力学阻力,而厚厚的冰层严重改变了控制表面和升力的空气动力学。冰块可以脱离机身和牛仔,并进入发动机,导致造成相当大的损坏。开发耐用表面,以防止过冷水成核或将冰粘附降低到气流剪切力可以去除的点,这将允许为飞机和其他应用设计更强大,节能的除冰/防冰系统。在这项工作中,开发了一种基于模拟的框架,以预测飞行环境下的各种纳米复合涂层的防掺杂性能。我们模型的内在多叠层特征允许通过剪裁(Nano至MicroScle)材料化学和表面形态来瞄准飞机体中不同(Macroscale)结构的耐用防冰涂层的合理设计。这项工作是目前正在为航空航天材料设计开发的航空航天仿真和优化平台(AESOP)的组成部分。

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