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首页> 外文期刊>Journal of Mechanical Science and Technology >Neuro-fuzzy control strategy for an offshore steel jacket platform subjected to wave-induced forces using magnetorheological dampers
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Neuro-fuzzy control strategy for an offshore steel jacket platform subjected to wave-induced forces using magnetorheological dampers

机译:使用磁流变阻尼器的波浪作用力作用下的海上钢套平台的神经模糊控制策略

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摘要

Magnetorheological (MR) damper is a prominent semi-active control device to vibrate mitigation of structures. Due to the inherent non-linear nature of MR damper, an intelligent non-linear neuro-fuzzy control strategy is designed to control wave-induced vibration of an offshore steel jacket platform equipped with MR dampers. In the proposed control system, a dynamic-feedback neural network is adapted to model non-linear dynamic system, and the fuzzy logic controller is used to determine the control forces of MR dampers. By use of two feedforward neural networks required voltages and actual MR damper forces are obtained, in which the first neural network and the second one acts as the inverse dynamics model, and the forward dynamics model of the MR dampers, respectively. The most important characteristic of the proposed intelligent control strategy is its inherent robustness and its ability to handle the non-linear behavior of the system. Besides, no mathematical model needed to calculate forces produced by MR dampers. According to linearized Morison equation, wave-induced forces are determined. The performance of the proposed neuro-fuzzy control system is compared with that of a traditional semi-active control strategy, i.e., clipped optimal control system with LQG-target controller, through computer simulations, while the uncontrolled system response is used as the baseline. It is demonstrated that the design of proposed control system framework is more effective than that of the clipped optimal control scheme with LQG-target controller to reduce the vibration of offshore structure. Furthermore, the control strategy is very important for semi-active control.
机译:磁流变(MR)阻尼器是一种杰出的半主动控制设备,可减轻结构的振动。由于MR阻尼器固有的非线性特性,因此设计了一种智能的非线性神经模糊控制策略来控制装有MR阻尼器的海上钢护套平台的波振动。在所提出的控制系统中,采用动态反馈神经网络对非线性动态系统进行建模,并使用模糊逻辑控制器确定MR阻尼器的控制力。通过使用两个前馈神经网络,获得了所需的电压和实际MR阻尼器力,其中第一个神经网络和第二个神经网络分别用作MR阻尼器的逆动力学模型和正向动力学模型。所提出的智能控制策略的最重要特征是其固有的鲁棒性和处理系统非线性行为的能力。此外,不需要数学模型来计算MR阻尼器产生的力。根据线性莫里森方程,确定了波浪感应力。通过计算机仿真,将拟议的神经模糊控制系统的性能与传统的半主动控制策略(即具有LQG目标控制器的限幅最优控制系统)的性能进行了比较,同时将不受控制的系统响应用作基线。结果表明,所提出的控制系统框架的设计要比带有LQG目标控制器的最优控制方案在减少海上结构振动方面更为有效。此外,控制策略对于半主动控制非常重要。

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