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Comparison of TMD designs for a footbridge subjected to human-induced vibrations accounting for structural and load uncertainties

机译:对人类诱导振动造成结构和负荷不确定性的人群桥的TMD设计比较

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A vibration serviceability assessment of footbridges is required in design stage to evaluate the response to human-induced excitation. If the calculated response does not meet the desired criteria for vibration comfort, a Tuned Mass Damper (TMD) can be installed as a vibration mitigation device. The TMD mass, stiffness and damping constant must be tuned to the modal parameters of the structure to obtain the desired response reduction. The response prediction and TMD design rely on a good knowledge of the modal parameters of the footbridge and usually assume that the response is governed by a perfect harmonic loading causing resonance. Differences between the predicted and actual modal parameters may lead to both an unreliable response prediction and a suboptimal TMD performance. Therefore, a robust design of the TMD is proposed accounting for uncertainties in the modal parameters. Realistic walking scenarios of continuous pedestrian traffic are simulated to obtain an effective response reduction by the TMD. In this contribution, the robust design of a TMD is demonstrated for a slender footbridge accounting for reasonable levels of uncertainties in the modal parameters. Numerical optimisation is therefore applied and vibration serviceability requirements are imposed as design constraints. The obtained TMD parameters are compared to those obtained from the formulae proposed by Asami, determining the stiffness and damping constant as a function of its mass. It is found that the TMD mass can be further reduced when the TMD parameters are tuned independently from each other compared to the classical design according to Asami but a higher computation cost is needed. Furthermore, an increasing degree of robustness against variations in the modal parameters is obtained by increasing the TMD mass and damping.
机译:设计阶段需要振动可靠性评估,以评估对人诱导的激发的反应。如果计算的响应不符合所需的振动舒适标准,则可以将调谐质量阻尼器(TMD)安装为振动缓解装置。必须调整TMD质量,刚度和阻尼恒定的结构,以获得所需的响应减少。响应预测和TMD设计依赖于人行桥的模态参数的良好知识,并且通常假设响应受到引起共振的完美谐波载荷。预测和实际模态参数之间的差异可能导致不可靠的响应预测和次优TMD性能。因此,提出了TMD的强大设计,占模态参数中的不确定性。模拟持续行人交通的现实步行场景,以获得TMD的有效响应。在这一贡献中,针对模态参数中的合理不确定性水平的纤维行桥来说明TMD的鲁棒设计。因此,施加了数值优化,并且振动可用性要求被施加为设计约束。将获得的TMD参数与由ASAMI提出的公式获得的那些进行比较,确定作为其质量的函数的刚度和阻尼恒定。发现与根据ASAMI的经典设计相比,当彼此独立调谐时,可以进一步降低TMD质量,但是需要更高的计算成本。此外,通过增加TMD质量和阻尼来获得抵抗模态参数的变化的增加程度。

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