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Optimal control design for reducing vertical acceleration of a motor yacht form

机译:减少机动游艇型式垂直加速度的最佳控制设计

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Ship motions and their adverse effects have always been studied with the aim of reducing motions and accelerations using whatsoever plausible ways during both the ship design process and operating lifetime. In the present work, a simulation study is carried out by taking into consideration the passengers in several locations of the selected motor yacht in an intermediate sea state with Hs = 1 m. Irregular head wave scenario at Fn = 0.25 is investigated and a controller design is implemented to ensure that the calculated RMS vertical acceleration values are decreased to tolerated levels in terms of motion sickness index. First, wave loads are obtained in the time domain by using strip theory, linear superposition technique, and the most common realization technique. Then, using a linear two-degree-of-freedom mathematical model, in which pitch and heave motions are considered together with the direct solution of convolution integrals, the uncontrolled motions and accelerations are obtained. Then, the linear matrix inequalities based on robust static output feedback controller are designed to mitigate the vertical acceleration of the ship. Finally, the results obtained with the robust static output feedback control design are presented in numerical simulation studies to demonstrate the effectiveness of the proposed control approach.
机译:一直以来,都对船舶运动及其不利影响进行了研究,目的是在船舶设计过程和使用寿命期间,采用任何可能的方式减少运动和加速度。在当前工作中,通过考虑选定的机动游艇在Hs = 1 m的中间海况下几个位置的乘客来进行模拟研究。研究了Fn = 0.25时的不规则头波情况,并采用了控制器设计,以确保将所计算出的RMS垂直加速度值降低到运动病指数方面的允许水平。首先,利用带状理论,线性叠加技术和最常用的实现技术在时域中获得波浪载荷。然后,使用线性两自由度数学模型,其中考虑俯仰和升沉运动以及卷积积分的直接解,获得不受控制的运动和加速度。然后,设计基于鲁棒静态输出反馈控制器的线性矩阵不等式,以减轻船舶的垂直加速度。最后,在数值模拟研究中介绍了鲁棒静态输出反馈控制设计获得的结果,以证明所提出的控制方法的有效性。

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