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An explicit linearized state-space technique for accelerated simulation of electromagnetic vibration energy harvesters

机译:一种用于电磁振动能量采集器加速仿真的显式线性化状态空间技术

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摘要

Vibration energy harvesting systems pose significant modeling and design challenges due to their mixed-technology nature, extremely low levels of available energy and disparate time scales between different parts of a complete harvester. An energy harvester is a complex system of tightly coupled components modeled in the mechanical, magnetic as well as electrical analog and digital domains. Currently available design tools are inadequate for simulating such systems due to prohibitive CPU times. This paper proposes a new technique to accelerate simulations of complete vibration energy harvesters by approximately two orders of magnitude. The proposed technique is to linearize the state equations of the system's analog components to obtain a fast estimate of the maximum step-size to guarantee the numerical stability of explicit integration based on the Adams-Bashforth formula. We show that the energy harvester's analog electronics can be efficiently and reliably simulated in this way with CPU times two orders of magnitude lower than those obtained from two state-of-the art tools, VHDL-AMS and SystemC-A. As a case study, a practical, complex microgenerator with magnetic tuning and two types of power processing circuits have been simulated using the proposed technique and verified experimentally.
机译:振动能量收集系统由于其混合技术的特性,可利用能量的极低水平以及整个收集器的不同部分之间的时间尺度不同,因此对建模和设计提出了重大挑战。能量收集器是由紧密耦合的组件组成的复杂系统,在机械,磁以及电的模拟和数字域中进行建模。由于CPU时间过长,当前可用的设计工具不足以模拟此类系统。本文提出了一种新技术,可以将完整的振动能量采集器的仿真加速大约两个数量级。提出的技术是线性化系统的模拟分量的状态方程,以获得最大步长的快速估计,以保证基于Adams-Bashforth公式的显式积分的数值稳定性。我们证明,以这种方式可以高效,可靠地模拟能量收集器的模拟电子设备,其CPU时间要比从两个最新工具VHDL-AMS和SystemC-A获得的CPU时间低两个数量级。作为案例研究,使用该技术对具有磁调谐功能和两种类型的功率处理电路的实用,复杂的微型发电机进行了仿真,并进行了实验验证。

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