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Study of velocity effects on parachute inflation performance based on fluid-structure interaction method

机译:基于流固耦合方法研究速度对降落伞充气性能的影响

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摘要

The inflation of a five-ring cone parachute with the airflow velocity of 18 m/s is studied based on the simplified arbitrary Lagrange Euler (SALE)/fluid-structure interaction (FSI) method. The numerical results of the canopy shape, stability, opening load, and drag area are obtained, and they are well consistent with the experimental data gained from wind tunnel tests. The method is then used to simulate the opening process under different velocities. It is found that the first load shock affected by the velocity often occurs at the end of the initial inflation stage. For the first time, the phenomena that the inflation distance proportion coefficient increases and the dynamic load coefficient decreases, respectively, with the increase in the velocity are revealed. The above proposed method is competent to solve the large deformation problem without empirical coefficients, and can collect more space-time details of fluid-structure-motion information when it is compared with the traditional method.
机译:基于简化的任意拉格朗日欧拉(SALE)/流固耦合(FSI)方法研究了风速为18 m / s的五环圆锥形降落伞的充气。获得了冠层形状,稳定性,开启载荷和阻力面积的数值结果,它们与从风洞试验获得的实验数据非常吻合。然后将该方法用于模拟不同速度下的打开过程。发现受速度影响的第一载荷冲击通常发生在初始充气阶段的末期。首次揭示了随着速度的增加,充气距离比例系数增大,动载荷系数减小的现象。上述方法能够解决没有经验系数的大变形问题,并且与传统方法相比能够收集更多的时空细节的流固运动信息。

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