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The new approach for damping modelling in the coupled dynamic load analysis for the Ariane 5 acoustic booster mode load cases

机译:Ariane 5声波助推器模式载荷工况耦合动载荷分析中阻尼建模的新方法

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摘要

Solid propellant booster can have pressure oscillations with frequencies which correspond to the acoustic modes inside the motor case. These quasi-harmonic excitations can lead to severe dynamic responses if their frequencies are coincident with the resonance frequencies of the launcher. A correct modeling of the damping is essential for a realistic dynamic response prediction. The different components of the launcher have different damping characteristics which are known from substructure testing (e.g. modal testing, sine vibration testing). The modal damping in these substructure tests is achieved under certain boundary conditions, which are different compared to the situation in the coupled system. The paper describes the new applied approach which considers the different component mode damping of the substructures and allows a synthesized damping model of the coupled system. The new approach, called 'Equivalent Structural Damping' (ESD), is based on structural damping and makes use of the equivalence of modal viscous damping and modal structural damping in case of small damping. Particular emphasis is put on the damping coupling, which turned out to be significant for the 2nd acoustic booster mode load case and overcomes the inconsistencies of the past approach based on diagonal system damping.
机译:固体推进剂助推器可能会产生压力振荡,其频率对应于电机壳体内部的声学模式。如果这些准谐波激励的频率与发射器的谐振频率一致,则可能导致严重的动态响应。正确的阻尼建模对于实际的动态响应预测至关重要。发射器的不同组件具有不同的阻尼特性,这在子结构测试(例如模态测试,正弦振动测试)中是已知的。这些子结构测试中的模态阻尼是在某些边界条件下实现的,该条件与耦合系统的情况相比有所不同。本文介绍了一种新的应用方法,该方法考虑了子结构的不同构件模式阻尼,并允许建立耦合系统的综合阻尼模型。称为“等效结构阻尼”(ESD)的新方法基于结构阻尼,并利用了模态粘性阻尼和模态结构阻尼的等效性(如果阻尼较小)。特别强调的是阻尼耦合,这对于第二种声增强模式负载情况非常重要,它克服了过去基于对角线系统阻尼的方法的不一致性。

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