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The investigation of the dynamic behaviour of a complex assembled structure using the frequency response function based substructuring method

机译:基于频率响应函数的子结构方法研究复杂装配结构的动力特性

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The frequency response function based substructuring method (FRF-BSM) for modelling and investigating dynamic behaviour of engineering structures has received much attention in recent years among modal analysts. However, the accuracy and efficiency of the predicted dynamic behaviour of the structures via the method is often found to be different from the test data. The discrepancy is believed to be the result of the coupling types used in the modelling. This paper aims to investigate the potential candidates of coupling types for FRF based substructuring in predicting the dynamic behaviour of a complex assembled structure which consists of a large flat span and two simplified aircraft pylons. Modal tests are performed to measure the dynamic behaviour of the assembled structure and its components. The finite element method is used for constructing analytical models of the assembled structure. The FRF-BSM is then used for the assembly of the span and pylons, and also to predict the dynamic behaviour of the assembled structure using rigid and elastic coupling. The comparison of results revealed that elastic coupling has demonstrated better capabilities to represent the bolted joints in the test structure, which may due to the coupling calculated is reasonably representing the stiffness of the bolted joints.
机译:基于频率响应函数的子结构化方法(FRF-BSM),用于建模和研究工程结构的动态行为,近年来在模态分析中引起了广泛关注。然而,通常发现通过该方法预测的结构的动态行为的准确性和效率不同于测试数据。该差异被认为是建模中使用的耦合类型的结果。本文旨在研究基于FRF的子结构的耦合类型的潜在候选者,以预测复杂的组装结构的动力学行为,该结构由大跨度和两个简化的飞机塔组成。进行模态测试以测量组装结构及其部件的动态行为。有限元方法用于构造装配结构的分析模型。然后,将FRF-BSM用于跨度和塔架的组装,并使用刚性和弹性耦合来预测组装结构的动态行为。结果比较表明,弹性联轴器在测试结构中表现出更好的表示螺栓连接的能力,这可能是由于计算出的联轴器合理地代表了螺栓连接的刚度。

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