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A coupled biomechanical/discrete element crowd model of crowd-bridge dynamic interaction and application to the Clifton Suspension Bridge

机译:桥-桥动力相互作用的生物力学/离散元耦合模型及其在克利夫顿吊桥中的应用

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Much of the guidance available to engineers regarding human-induced bridge vibration and the lateral instability phenomenon that can occur has resulted from experience of 'one-off bridge loading events such as the London Millennium and Paris Solferino bridges. This has resulted in restrictive design criteria for pedestrian numbers and acceleration limits. However, this area has been the subject of extensive research over more than a decade. As a consequence, improved understanding of the problem has enabled the development of better modelling and simulation tools. In this paper, human-induced vibration is considered from two viewpoints, (ⅰ) the interaction that takes place between individual walking pedestrians and the vibrating bridge, and (ⅱ) the wider crowd behaviour that results from the interactions between pedestrians. The current state of the art is identified in each area and a modelling framework is presented that couples both. A discrete element crowd model is coupled with a dynamical system. The dynamical system models interaction between multiple inverted pendulum (IP) biomechan-ical models and a SDoF system representing a bridge vibration mode. Both the crowd model and dynamical system are coupled in a time-stepping framework with crowd model output used to update the dynamical system at each time-step. The model is then used to simulate the multi-modal response of the Clifton Suspension Bridge (CSB), previously documented in the literature. Model predictions show good agreement with observations from the CSB. Most notably, lateral instability develops in a mode at 0.52 Hz followed by instability in a second at 0.75 Hz, without step frequency tuning among the crowd, in line with observations. Furthermore, the model suggests that instability in mode L2 may have lead directly to development of instability in mode L3. The existence of a feedback mechanism has been confirmed and is identified as resulting from amplitude modulation of the lateral ground reaction force. This mechanism results from alteration of the lateral position of the foot in successive steps in response to base oscillations.
机译:工程师可获得的有关人为桥振动和可能发生的横向不稳定性现象的许多指导,都是源于“一次性桥梁荷载事件”的经验,例如伦敦千禧桥和巴黎索尔费里诺桥。这导致了行人人数和加速度限制的严格设计标准。然而,十多年来,这一领域一直是广泛研究的主题。结果,对问题的更好理解使得能够开发更好的建模和仿真工具。在本文中,从两个角度考虑了人为引起的振动:(ⅰ)各个步行行人与振动桥之间发生的相互作用,以及(ⅱ)由行人之间的相互作用导致的更广泛的人群行为。在每个领域都确定了当前的技术水平,并提出了将两者结合的建模框架。离散元素人群模型与动力学系统耦合。动力学系统对多个倒立摆(IP)生物力学模型和代表桥梁振动模式的sF系统之间的相互作用进行建模。人群模型和动力学系统都在时间步框架中耦合,人群模型输出用于在每个时间步更新动力学系统。然后,该模型用于模拟先前在文献中记录的克利夫顿吊桥(CSB)的多模式响应。模型预测表明与CSB的观察结果吻合良好。最值得注意的是,横向不稳定性会以0.52 Hz的模式发展,然后在0.75 Hz的情况下在一秒内会出现不稳定性,这与人群的观察结果相符,而无需在人群中进行步进频率调整。此外,该模型表明,模式L2中的不稳定性可能直接导致了模式L3中的不稳定性的发展。反馈机制的存在已得到确认,并被确定为横向地面反作用力的幅度调制所导致。该机制是由于脚的横向位置响应于基础振动而在连续的步骤中改变而产生的。

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