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Separation dynamics of large-scale fairing section: a fluid-structure interaction study

机译:大型整流罩截面的分离动力学:流固耦合研究

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The separation dynamics of a large-scale fairing section in ground test is investigated numerically using a fluid-structure interaction method. The commercial finite element software MSC/Dytran is adopted to establish the dynamic fluid-structure coupling model of the fairing. Two coupling surfaces are constructed for the inner and outer surfaces of the fairing section. The coupling equations are solved using the sequenced-coupling method, in which the fluid and structural problems are examined by the finite volume method and the finite element method, respectively. A comparison between fluid-structure interaction and dynamical response analysis is performed under the conditions with and without atmosphere effect. Results shown that the consideration of atmosphere effect will attenuate the vibration frequency and slow down the center of mass velocity. The effect of aerodynamic interference on the displacement response indicates that a maximum of 13.3% relative displacement can be induced, which may cause collision between the lower trailing portion of fairing section and the core vehicle. Therefore, it can be concluded that the fluid-structure interaction analysis is essential for evaluating and validating the reliability of separation mechanisms in ground tests.
机译:采用流固耦合方法数值研究了地面试验中大型整流罩截面的分离动力学。采用商业有限元软件MSC / Dytran建立整流罩的动态流固耦合模型。为整流罩部分的内表面和外表面构造了两个耦合表面。使用顺序耦合法求解耦合方程,其中分别通过有限体积法和有限元法研究流体和结构问题。在有和没有大气影响的条件下,进行了流固耦合和动力响应分析之间的比较。结果表明,考虑大气效应会减弱振动频率并减慢质心速度。空气动力干扰对位移响应的影响表明,最大可引起13.3%的相对位移,这可能会导致整流罩部分的下部尾部与核心车辆发生碰撞。因此,可以得出结论,在地面测试中,流固耦合分析对于评估和验证分离机制的可靠性至关重要。

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