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Simulating Space Capsule Water Landing with Explicit Finite Element Method

机译:显式有限元法模拟太空舱水着陆

摘要

A study of using an explicit nonlinear dynamic finite element code for simulating the water landing of a space capsule was performed. The finite element model contains Lagrangian shell elements for the space capsule and Eulerian solid elements for the water and air. An Arbitrary Lagrangian Eulerian (ALE) solver and a penalty coupling method were used for predicting the fluid and structure interaction forces. The space capsule was first assumed to be rigid, so the numerical results could be correlated with closed form solutions. The water and air meshes were continuously refined until the solution was converged. The converged maximum deceleration predicted is bounded by the classical von Karman and Wagner solutions and is considered to be an adequate solution. The refined water and air meshes were then used in the models for simulating the water landing of a capsule model that has a flexible bottom. For small pitch angle cases, the maximum deceleration from the flexible capsule model was found to be significantly greater than the maximum deceleration obtained from the corresponding rigid model. For large pitch angle cases, the difference between the maximum deceleration of the flexible model and that of its corresponding rigid model is smaller. Test data of Apollo space capsules with a flexible heat shield qualitatively support the findings presented in this paper.
机译:进行了使用显式非线性动态有限元代码模拟太空舱水着陆的研究。有限元模型包含用于太空舱的拉格朗日壳单元和用于水和空气的欧拉固体单元。任意拉格朗日欧拉(ALE)求解器和惩罚耦合方法用于预测流体和结构的相互作用力。首先假定太空舱是刚性的,因此数值结果可以与封闭形式的解相关。将水和空气筛网不断细化,直到溶液收敛为止。预测的收敛最大减速度受经典von Karman和Wagner解的限制,并且被认为是适当的解决方案。然后在模型中使用精制的水和空气网格来模拟具有柔性底部的胶囊模型的水着陆。对于较小的俯仰角情况,发现来自柔性胶囊模型的最大减速度明显大于从相应的刚性模型获得的最大减速度。对于较大的俯仰角情况,柔性模型的最大减速度与其对应的刚性模型的最大减速度之间的差异较小。具有柔性隔热罩的阿波罗太空舱的测试数据在质量上支持了本文提出的结果。

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    Lyle Karen H.; Wang John T.;

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  • 年度 2007
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