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Novel Approach to Modelling Electromechanical Coupling and Testing its Self-Consistency in Micro-Scale Kinetic Electromagnetic Energy Harvesters

机译:微型动力学电磁能量收集器中机电耦合建模和测试其自洽性的新方法

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The electromagnetic transduction mechanism is very common in kinetic (vibration) energy harvesters, and even miniaturised implementations of electromagnetic harvesters employing microtechnologies have been reported in the literature. The key task in the design and modelling of energy harvesting devices is to incorporate electromechanical coupling correctly as it is responsible for the efficiency of the device and the amount of energy that can be converted. Despite the clear physical nature of interaction between electrical and mechanical domains in the case of the electromagnetic transduction mechanism, a detailed description and accurate modelling are challenging. Today, there exist a number of methods for modelling of magnetic fields and flux appearing in these devices in three dimensions, all of them requiring computation efforts. At the same time, the engineering community prefers compact (or lumped) models of such devices because it eases the analysis, circuit design and cosimulation of electronics and resonators in the same simulation environment. In this paper, we discuss a new self-consistent model of electromagnetic energy harvesters based on first principles of electromagnetics and mechanics that results in a lumped model that is convenient for analysis and design.
机译:电磁换能机制在动能(振动)能量收集器中非常普遍,甚至已有文献报道采用微技术的电磁收集器的小型化实现。能量收集设备的设计和建模中的关键任务是正确合并机电耦合,因为它负责设备的效率和可转换的能量。尽管在电磁换能机制的情况下,电气域和机械域之间相互作用的物理性质很明确,但是详细的描述和准确的建模仍然具有挑战性。如今,存在许多用于对这些设备中出现的磁场和磁通量进行三维建模的方法,所有这些方法都需要进行计算。同时,工程界更喜欢这种设备的紧凑(或集总)模型,因为它简化了在相同仿真环境中电子,谐振器的分析,电路设计以及协同仿真的过程。在本文中,我们基于电磁学和力学的第一原理,讨论了一种新的自洽电磁能量收集器模型,该模型产生了便于分析和设计的集总模型。

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