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Role of impactor properties on the computational simulation of particle impact damage in transparent ceramic windows

机译:冲击器特性在透明陶瓷窗户中颗粒冲击损伤计算模拟中的作用

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The ability to deploy advanced sensor and seeker systems in harsh environments is often restricted by the mechanical durability of the external electromagnetic window or dome. Mission environments may range from long flights at high speeds through rain, ice, or sand to exposure at slower speeds to debris on runways or from helicopter downwash. While significant progress has been made to characterize, understand, and model rain damage, less is known about modeling damage in windows and domes caused by impacts from solid particles such as stones, pebbles, and sand. This paper highlights recent progress made to simulate particle impact damage in zinc sulfide (ZnS) using peridynamics (PD). Early versions of the PD model of sand impact damage simulated the sand particle as a rigid disk. Results from these early models indicated that the extent of damage in relation to the size of the impacting particle was significantly larger than the actual damage observed by experimentation. In order to identify possible explanations for this discrepancy, the shape, impact orientation and mechanical properties of the impacting particle were modified to more closely resemble actual sand particle impacts, that is, the particle was made friable (deformable and breakable). The impacting geometries considered include sphere, flat face of a cylinder, cube-face, cube-edge, and cube-corner. Results confirm that modification of the impacting particle's mechanical properties, shape and impact orientation lead to better agreement between experimental observations and simulation results.
机译:在恶劣环境中部署高级传感器和导引头系统的能力通常受到外部电磁窗或球罩的机械耐久性的限制。任务环境可能包括高速飞行,降雨,冰冻或沙尘飞行,低速暴露在跑道上的碎屑或直升机下水道。尽管在表征,理解和建模雨水损害方面已经取得了重大进展,但是对于由固体颗粒(如石头,鹅卵石和沙子)的撞击所造成的窗户和穹顶损害建模的了解却很少。本文重点介绍了使用周动力学(PD)来模拟硫化锌(ZnS)中的颗粒冲击损伤的最新进展。早期版本的砂土冲击破坏PD模型将砂粒模拟为刚性圆盘。这些早期模型的结果表明,相对于撞击颗粒大小的破坏程度明显大于通过实验观察到的实际破坏程度。为了找出对此差异的可能解释,修改了冲击粒子的形状,冲击方向和机械性能,使其更接近实际的沙粒冲击,也就是说,粒子变得易碎(可变形和易碎)。考虑的影响几何形状包括球体,圆柱体的平面,立方体面,立方体边缘和立方体角。结果证实,对撞击粒子的机械性能,形状和撞击方向的修改可以使实验观察结果与模拟结果更好地吻合。

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