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Modeling Human-Structure Interaction Using Control Models When Bobbing on a Flexible Structure

机译:用控制模型建模人体结构相互作用在柔性结构上蹦蹦时使用

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High performance materials has enabled engineers to design civil structures with smaller dead loads than in the past. However, lower dead loads results in a higher live to dead load ratio and the possibility of excessive vibrations due to human loading. This paper extends a controller theory based model to model the human-structure-interaction (HSI) problem. Prior work focused on modeling a standing individual with bent knees using a proportional, integrative and derivative (PID) controller model. This work extends this idea to a person bobbing or performing short movement up and down by bending his or her knees at the frequency provided by a metronome. Prior work considered the input to the human-structure system was a force applied to the structure. This work consider the bit produced by a metronome as the input to the overall human-structure system. The force applied to the structure is modeled as the output of the human, while the structure's acceleration is fed back into the control human system. Experiments performed at the University of South Carolina using a flexible platform that behaves as a single degree of freedom system are used to test the model. A force plate is installed in the platform to measure the forces exerted by the person on the platform as he or she moves. Model parameters and their corresponding uncertainty are quantified in a probabilistic fashion using Bayesian inference with the force plate forces as well as the acceleration measurements of the structure as observations. The model performance is evaluated by comparing probabilistic predictions with force and acceleration measurements found experimentally.
机译:高性能材料使工程师能够设计具有比过去更小的死载的民用结构。然而,降低载荷导致最高的活载比率和由于人类负载而过度振动的可能性。本文扩展了一种基于控制器理论的模型来模拟人类结构 - 交互(HSI)问题。在使用比例,一体化和衍生物(PID)控制器模型的情况下专注于使用弯曲膝盖建模站立的个人。这项工作将这个想法扩展到一个人横向或通过膝盖以节拍器提供的频率弯曲他或她的膝盖来向上和下降。在考虑对人结构系统的输入的事先工作是施加到结构上的力。这项工作考虑通过节拍器产生的位作为整体人体结构系统的输入。施加到结构的力被建模为人的输出,而结构的加速度被反馈回控制人体系统。使用灵活平台在南卡罗来纳大学进行的实验,该平台表现为单一自由度系统来测试模型。在平台中安装了力板以测量平台上的人施加的力量,因为他或她移动。模型参数及其相应的不确定度以概率的方式使用贝叶斯推动与力板力以及结构的加速度测量来量化。通过对实验发现的力量和加速度测量比较概率预测来评估模型性能。

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