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Multi-Objective Optimal Control of Vibratory Energy Harvesting Systems

机译:振动能量采集系统的多目标最优控制

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This paper presents a new approach, based on H_2 optimal control theory, for the maximization of power generation in energy harvesting systems. The theory determines the optimal harvested power attainable through the use of power electronics to effect linear feedback control of transducer current. In contrast to most of the prior work in this area, which has assumed harmonic response, the theory proposed here applies to stochastically-excited systems in broadband response, and can be used to harvest power simultaneously from multiple significant vibratory modes. It is also applicable to coupled networks of many transducers. The theory accounts for the impact of energy harvesting on the dynamics of the vibrating system in which the transducers are embedded. It also accounts for resistive and semiconductor dissipation in the power-electronic network interfacing the transducers with energy storage. Thus, losses in the electronics are addressed in the formulation of the optimal control law. Finally, the H_2-optimal control formulation of the problem naturally allows for harvested power to be systematically balanced against other response objectives. Here, this is illustrated by showing how the harvesting objective can be maximized, subject to the constraint that the transducer voltages be maintained below that of the power-electronic bus; a condition which is required for the power-electronic control system to be fully operational. Although the theory is applicable across a broad range of applications, it is presented in the context of a piezoelectric bimorph example.
机译:本文提出了一种基于H_2最优控制理论的新方法,用于最大化能量收集系统中的发电量。该理论确定了通过使用功率电子器件实现换能器电流的线性反馈控制而可获得的最佳采集功率。与该领域中的大多数先前工作已假定为谐波响应相反,此处提出的理论适用于宽带响应中的随机激励系统,并且可用于同时从多个重要的振动模式中收集能量。它也适用于许多换能器的耦合网络。该理论说明了能量收集对嵌入换能器的振动系统动力学的影响。它也考虑了在将换能器与能量存储接口连接的电力电子网络中的电阻和半导体耗散。因此,在最佳控制定律的制定中解决了电子设备中的损耗。最后,问题的H_2最优控制公式自然可以使收集到的能量与其他响应目标进行系统地平衡。在这里,这是通过显示如何最大限度地提高收割目标来说明的,但要遵守以下条件:换能器电压保持在低于电力电子总线的电压以下;电力电子控制系统完全运行所需的条件。尽管该理论适用于广泛的应用,但它是在压电双压电晶片示例的背景下提出的。

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