论文标题

优化的分级超材料通过增强学习进行机械能限制和扩增

Optimised graded metamaterials for mechanical energy confinement and amplification via reinforcement learning

论文作者

Rosafalco, Luca, De Ponti, Jacopo Maria, Iorio, Luca, Ardito, Raffaele, Corigliano, Alberto

论文摘要

描述了一种设计优化的分级超材料的增强学习方法,以进行机械能限制和扩增。通过近端策略优化算法,训练增强剂以最佳设置谐振器数组的长度和间距。设计优化问题通过将优化程序分为离散的决策数量,在马尔可夫决策问题中形式化。作为由局部共振的空间分布控制的分级超材料的物理学,通过使用连续函数进行谐振器排列来限制可能的配置空间。已经进行了初步分析研究,以通过将其视为局部共振系统来表征分析系统的分散性能。优化程序的结果证实了先前研究的结果,强调了拟议方法的有效性以及用于机械能限制和放大的分级谐振器系统的鲁棒性。相对于谐振器长度或换句话说,相对于谐振器的振荡频率,谐振器间距的作用被证明是次要的。但是,还证明减少谐振器的数量可能是有利的。还要归功于分析持续时间的适应性控制,与谐振器长度和间距的联合优化相关的结果,通过几乎唯一地扩大了收割机振荡的时间而在没有放大这些振荡的情况下,通过扩大收割机振荡的时间来极大地克服了先前已知系统的性能。所提出的程序适用于广泛的设计优化问题,其中可以通过数值模拟评估设计选择的效果。

A reinforcement learning approach to design optimised graded metamaterials for mechanical energy confinement and amplification is described. Through the proximal policy optimisation algorithm, the reinforcement agent is trained to optimally set the lengths and the spacing of an array of resonators. The design optimisation problem is formalised in a Markov decision problem by splitting the optimisation procedure into a discrete number of decisions. Being the physics of graded metamaterials governed by the spatial distribution of local resonances, the space of possible configurations is constrained by using a continuous function for the resonators arrangement. A preliminary analytical investigation has been performed to characterise the dispersive properties of the analysed system by treating it as a locally resonant system. The outcomes of the optimisation procedure confirms the results of previous investigations, highlighting both the validity of the proposed approach and the robustness of the systems of graded resonators when employed for mechanical energy confinement and amplification. The role of the resonator spacing is shown to be secondary with respect to the resonator lengths or, in other words, with respect to the oscillation frequencies of the resonators. However, it is also demonstrated that reducing the number of resonators can be advantageous. The outcomes related to the joint optimisation of the resonator lengths and spacing, thanks also to the adaptive control of the analysis duration, overcome significantly the performance of previously known systems by working almost uniquely on enlarging the time in which the harvester oscillations take place without amplifying these oscillations. The proposed procedure is suitable to be applied to a wide range of design optimisation problems in which the effect of the design choices can be assessed through numerical simulations.

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