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首页> 外文期刊>Journal of Wind Engineering and Industrial Aerodynamics: The Journal of the International Association for Wind Engineering >Numerical simulation of the aeroelastic response of bridge structures including instabilities
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Numerical simulation of the aeroelastic response of bridge structures including instabilities

机译:包括不稳定性在内的桥梁结构气动弹性响应的数值模拟

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This paper presents a finite element model for the time-domain simulation of light-weight bridges under wind loading. In particular, aeroelastic effects are taken into account which allow the detection of flutter instabilities. It is assumed that the overall aeroelastic behaviour can be described by cross-section properties. Their determination is not part of the numerical model, instead they are assumed to have been experimentally determined before; in the design phase this is usually done by section testing in a boundary layer wind tunnel. The paper concentrates on flutter in smooth flow for which a description of the self-excited forces by flutter derivatives is chosen. These aeroelastic forces are introduced into a general 3D finite element code which in principle permits the modelling of the structure with arbitrary accuracy, allowing also structural nonlinearities, though that aspect is not pursued further here. The critical wind speed is calculated by numerical experiments in the time domain where wind speed and flutter frequency are modified until a contradiction-free solution is found. An extensive numerical study, studying in particular the effects of dampers on the flutter vulnerability, demonstrates the capabilities of the proposed model. The usefulness of this approach lies in the combination of relatively simple 2D measurements with advanced 3D computational methods. These are free from the constraints of the model laws so that, depending on the quality of the FE model, any number of mode shapes can be accurately captured, which would be extremely difficult to achieve in a fully aeroelastic 3D model test. (c) 2006 Published by Elsevier Ltd.
机译:本文为轻载桥梁在风荷载下的时域仿真提供了一个有限元模型。特别是考虑了气动弹性效应,可以检测颤振不稳定性。假定总体气动弹性行为可以用截面特性描述。它们的确定不是数值模型的一部分,而是假定它们以前已经通过实验确定;在设计阶段,通常通过在边界层风洞中进行截面测试来完成。本文着重于平稳流动的颤动,为此选择了由颤动导数引起的自激力的描述。这些气弹力被引入到通用的3D有限元代码中,该代码原则上允许以任意精度对结构进行建模,还允许结构非线性,尽管此处不再赘述。在时域中通过数值实验计算临界风速,在该时域中修改风速和颤振频率,直到找到无矛盾的解决方案。广泛的数值研究,特别是研究了阻尼器对颤振脆弱性的影响,证明了所提出模型的功能。这种方法的有用之处在于将相对简单的2D测量与先进的3D计算方法相结合。这些不受模型定律的约束,因此,根据有限元模型的质量,可以精确地捕获任意数量的模态形状,而这在完全气动的3D模型测试中很难实现。 (c)2006年由Elsevier Ltd.发布。

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