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Subsystem identification in structures with a human occupant based on composite frequency response functions

机译:基于复合频率响应函数的人员居住结构子系统识别

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A method is proposed for the subsystem identification of a composite system composing a lightweight low-frequency civil engineering structure and a human occupant. It is shown for the first time that the dynamics of the structure and the stiffness and damping of the human occupant can be determined from the frequency response functions of the composite system and the known mass of the human occupant. The advantage of the proposed approach over existing methods is not only in the simplicity of problem formulation but also in the substantial reduction of experimental complexity. Subsystem identification is demonstrated using a numerical example and two experimental case studies. In the first experimental case study, the method is applied to a laboratory bridge with a human occupant in a standing posture and frequency response functions are measured using shaker testing. In the second case study, the method is applied to a laboratory bridge with a hammer operator crouching on the bridge to perform impact hammer tests. It is demonstrated that subsystem dynamics can be accurately identified. The method is especially applicable to the correction of the effect of the hammer operator in manually operated impact hammer testing. In addition, the method can be generalised for the compenstation of the effects of the electrodynamic shaker in shaker testing for civil engineering applications. (C) 2018 The Authors. Published by Elsevier Ltd.
机译:提出了一种用于复合系统子系统识别的方法,该复合系统由轻便的低频土木工程结构和人员组成。首次显示,可以根据复合系统的频率响应函数和乘员的已知质量确定乘员的结构动力学以及乘员的刚度和阻尼。与现有方法相比,所提出的方法的优势不仅在于问题制定的简单性,而且在于实验复杂性的大幅降​​低。使用一个数字示例和两个实验案例研究来演示子系统识别。在第一个实验案例研究中,该方法被应用于具有站立姿势的人类乘员的实验室桥梁,并使用振动筛测试来测量频率响应函数。在第二个案例研究中,该方法应用于实验室桥梁,其中锤子操作员蹲在桥梁上进行冲击锤测试。证明可以准确地识别子系统动力学。该方法特别适用于在手动冲击锤测试中校正锤操作者的效果。另外,该方法可以推广用于补偿在用于土木工程应用的振动器测试中电动振动器的效果。 (C)2018作者。由Elsevier Ltd.发布

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