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Time- and frequency-domain linear viscoelastic modeling of highly damped aerospace structures

机译:高阻尼航空航天结构的时域和频域线性粘弹性建模

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The numerical modeling of highly damped viscoelastic materials is critical for aerospace applications such as dynamic analysis of solid rocket motors - showing high damping ratios due to the presence of solid propellant - and design of passive damping devices for minimizing vibrations in aeronautical and space systems. Time-domain viscous damping models - giving damping forces proportional to velocities - are directly applicable in transient simulations, but they give a frequency-linear dissipative behavior which has no experimental evidence. On the other hand, frequency-domain hysteretic damping models - giving damping forces proportional to displacements - result in a frequency-constant dissipation that better describes the behavior of certain materials. However, using such models in transient analyses may give unphysical, non-Hermitian and non-causal system response. This paper reviews a class of first-principle-based damping models commonly used in structural dynamics by deriving them as particular cases of a general continuum mechanics formulation. The proposed damping models are tuned, in their frequency-domain description, on material experimental data so providing a Hermitian and causal time-domain responses, and they are applied to highly damped, practical aerospace structures via Finite Element models. The proposed model is applied to two aerospace systems: a scaled-down test article dynamically representative of a solid rocket motor launch-vehicle stage and a two-dimensional airfoil with passive viscoelastic dampers for flutter suppression. (C) 2018 Elsevier Ltd. All rights reserved.
机译:高阻尼粘弹性材料的数值模型对于航空航天应用至关重要,例如对固体火箭发动机的动力分析-由于存在固体推进剂而显示出高阻尼比-以及设计无源阻尼装置以最大程度地减少航空航天系统中的振动。时域粘性阻尼模型-提供与速度成比例的阻尼力-直接适用于瞬态模拟,但它们给出了频率线性耗散行为,没有实验证据。另一方面,频域滞后阻尼模型-提供与位移成比例的阻尼力-导致频率恒定的耗散,可以更好地描述某些材料的性能。但是,在瞬态分析中使用此类模型可能会产生非物理,非Hermitian和非因果的系统响应。本文通过将它们推导为一般连续体力学公式的特殊情况,回顾了结构动力学中常用的一类基于第一原理的阻尼模型。拟议的阻尼模型在频域描述中根据材料实验数据进行了调整,从而提供了Hermitian和因果时域响应,并通过有限元模型将其应用于高阻尼,实用的航空航天结构。所提出的模型应用于两个航空系统:按比例缩小的测试文章,可动态表示固体火箭发动机的发射阶段;以及带有无源粘弹性阻尼器的二维机翼,可抑制颤动。 (C)2018 Elsevier Ltd.保留所有权利。

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