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The role of interface DoFs in decoupling of substructures based on the dual domain decomposition

机译:界面自由度在基于双域分解的子结构解耦中的作用

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摘要

The paper considers the decoupling problem, i.e. the identification of the dynamic behaviour of a structural subsystem, starting from the known dynamic behaviour of the coupled system, and from information about the remaining part of the structural system (residual subsystem). Typically, the FRF matrix of the coupled system is assumed to be known at the coupling DoFs (standard interface). To circumvent ill-conditioning around particular frequencies, some authors suggest the use of FRFs at some internal DoFs of the residual subsystem. In this paper, the decoupling problem is revisited in the general framework of frequency based substructuring. Specifically, the dual domain decomposition is used by adding a fictitious subsystem, which is the negative of the residual subsystem, to the coupled system. In this framework, the use of internal DoFs of the residual subsystem, in addition to coupling DoFs, appears quite natural (extended interface). The effects of using an extended interface are widely discussed: the main drawback is that the problem becomes singular at any frequency. However, this singularity is easily removed by using standard smart inversion techniques. The approach is tested on a discrete system describing a two-speed transmission, using simulated data polluted by noise. Results are compared with those obtained from existing approaches.
机译:本文考虑了解耦问题,即从耦合系统的已知动态行为以及有关结构系统其余部分(剩余子系统)的信息开始,识别结构子系统的动态行为。通常,假定在耦合DoF(标准接口)处已知耦合系统的FRF矩阵。为了绕开特定频率周围的疾病,一些作者建议在残差子系统的某些内部DoF处使用FRF。在本文中,去耦问题在基于频率的子结构的一般框架中被重新讨论。具体而言,通过将虚拟子系统添加到耦合系统来使用双域分解,该虚拟子系统是残差子系统的负数。在此框架中,除了耦合DoF之外,使用剩余子系统的内部DoF显得很自然(扩展接口)。广泛讨论了使用扩展接口的效果:主要缺点是,该问题在任何频率下都变得单一。但是,通过使用标准智能反转技术可以轻松消除这种奇异之处。该方法在离散系统上进行了测试,该系统使用噪音污染的模拟数据在描述两速传输的系统上进行了测试。将结果与从现有方法获得的结果进行比较。

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