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A novel approach to enhance the accuracy of vibration control of Frames

机译:一种提高框架振动控制精度的新颖方法

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All structures built within known seismically active regions are typically designed to endure earthquake forces. Despite advances in earthquake resistant structures, it can be inferred from hindsight that no structure is entirely immune to damage from earthquakes. Active vibration control systems, unlike the traditional methods which enlarge beams and columns, are highly effective countermeasures to reduce the effects of earthquake loading on a structure. It requires fast computation of nonlinear structural analysis in near time and has historically demanded advanced programming hosted on powerful computers. This research aims to develop a new approach for active vibration control of frames, which is applicable over both elastic and plastic material behavior. In this study, the Force Analogy Method (FAM), which is based on Hook’s Law is further extended using the Timoshenko element which considers shear deformations to increase the reliability and accuracy of the controller. The proposed algorithm is applied to a 2D portal frame equipped with linear actuator, which is designed based on full state Linear Quadratic Regulator (LQR). For comparison purposes, the portal frame is analysed by both the Euler Bernoulli and Timoshenko element respectively. The results clearly demonstrate the superiority of the Timoshenko element over Euler Bernoulli for application in nonlinear analysis.
机译:通常在已知地震活动区域内建造的所有结构均设计为可承受地震力。尽管抗震结构取得了进步,但从事后的眼光可以推断出,没有任何一种结构可以完全免受地震破坏。主动振动控制系统不同于增加梁和柱的传统方法,是减少地震荷载对结构影响的高效对策。它要求在近时间内快速计算非线性结构分析,并且历史上一直要求在功能强大的计算机上托管的高级编程。这项研究旨在开发一种主动控制框架振动的新方法,该方法适用于弹性和塑性材料行为。在这项研究中,基于霍克定律的力模拟方法(FAM)进一步使用Timoshenko元素进行了扩展,该元素考虑了剪切变形以提高控制器的可靠性和准确性。该算法应用于装备有线性致动器的二维门架,该框架是基于全状态线性二次调节器(LQR)设计的。为了进行比较,分别用Euler Bernoulli和Timoshenko元素分析了门框。结果清楚地证明了Timoshenko元素在非线性分析中的应用优于Euler Bernoulli。

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