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Acceleration feedback control of human-induced floor vibrations

机译:人为地板振动的加速度反馈控制

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Active vibration control (AVC) via a proof-mass actuator is considered to be a suitable technique for the mitigation of vibrations caused by human motions in floor structures. It has been observed that actuator dynamics strongly influence structure dynamics despite considering collocated actuator/sensor control. The well-known property of the interlacing of poles and zeros of a collocated control system is no longer accomplished. Therefore, velocity-based feedback control, which has been previously used by other researchers, might not be a good solution. This work presents a design process for a control scheme based on acceleration feedback control with a phase-lag compensator, which will generally be different from an integrator circuit. This first-order compensator is applied to the output (acceleration) in such a way that the relative stability and potential damping to be introduced are significantly increased accounting for the interaction between floor and actuator dynamics. Additionally, a high-pass filter designed to avoid stroke saturation is applied to the control signal. The AVC system designed according to this procedure has been assessed in simulation and successfully implemented in an in-service open-plan office floor. The actual vibration reductions achieved have been approximately 60% for walking tests and over 90% for a whole-day vibration monitoring.
机译:通过质量执行器的主动振动控制(AVC)被认为是减轻人体活动在地板结构中引起的振动的合适技术。已经观察到,尽管考虑了并置的致动器/传感器控制,但是致动器动力学强烈地影响结构动力学。并置控制系统的极点和零点交错的众所周知的特性不再实现。因此,其他研究人员先前使用的基于速度的反馈控制可能不是一个好的解决方案。这项工作提出了基于具有相位滞后补偿器的加速度反馈控制的控制方案的设计过程,该过程通常与积分器电路不同。该一阶补偿器以这样的方式应用于输出(加速度),使得考虑到地面和执行器动力学之间的相互作用,要引入的相对稳定性和潜在阻尼大大增加。此外,为避免冲程饱和而设计的高通滤波器被应用于控制信号。根据此程序设计的AVC系统已在仿真中进行了评估,并已在开放式开放式办公室中成功实施。步行测试的实际减振率约为60%,全天振动监控的减振率超过90%。

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