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FAST THREE-DIMENSIONAL METHOD OF MODELING ATOMIC OXYGEN UNDERCUTTING OF PROTECTED POLYMERS

机译:基于保护聚合物的原子氧气抑制的快速三维方法

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A method is presented to model atomic oxygen erosion of protected polymers in low Earth orbit (LEO). Undercutting of protected polymers by atomic oxygen occurs in LEO due to the presence of scratch, crack or pin-window defects in the protective coatings. As a means of providing a better understanding of undercutting processes, a fast method of modeling atomic-oxygen undercutting of protected polymers has been developed. Current simulation methods often rely on computationally expensive ray-tracing procedures to track the surface-to-surface movement of individual "atoms". The method introduced in this paper replaces slow individual particle approaches by substituting a model that utili/es both a geometric configuration-factor technique, which governs the diffuse transport of atoms between surfaces, and an efficient telescoping series algorithm, which rapidly integrates the cumulative effects stemming from the numerous atomic oxygen events occurring at the surfaces of an undercut cavity. This new method facilitates the systematic study of three-dimensional undercutting by allowing rapid simulations to be made over a wide range of erosion parameters.
机译:提出了一种方法以在低地轨道(LEO)中的保护聚合物的原子氧侵蚀模拟原子氧腐蚀。由于保护涂层中的划痕,裂缝或针窗缺陷存在,在Leo中淹没受保护聚合物的削弱。作为提供更好地理解削减过程的方法,已经开发出一种快速建模受保护聚合物的氧气底切。电流仿真方法经常依赖于计算昂贵的射线跟踪程序,以跟踪各个“原子”的表面到表面运动。本文介绍的方法通过代替利用几何配置因子技术的模型来取代慢速各个粒子方法,该模型控制表面之间原子的漫射传输,以及迅速整合累积效应的速度缩放算法源于在底切腔的表面发生的许多原子氧事件。这种新方法通过允许在广泛的侵蚀参数上进行快速模拟来促进对三维底切的系统研究。

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