Design of SOI MEMS-based Bennet’s doubler kinetic energy harvester

IF 1.5 2区 物理与天体物理 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Micro/Nanolithography, MEMS, and MOEMS Pub Date : 2020-01-01 DOI:10.1117/1.JMM.19.1.015001
Mithlesh Kumar, G. Krishna, B. Mukherjee, S. Sen
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引用次数: 1

Abstract

Abstract. Background: Design of microelectromechanical system based Bennet’s doubler kinetic energy harvester (KEH) is tricky as it has to satisfy the operating criteria of doubler circuit along with the harvester’s design constraints for its operation. Aim: Design guidelines for an electrostatic KEH using Bennet’s doubler circuit along with its experimental validation are presented. Approach: Bennet’s doubler circuit can work as a KEH only for a specific range of capacitance ratio across interdigitated electrodes of the harvester. The constraints on the resonant frequency of Bennet’s doubler harvester have been deduced to achieve operational capacitance ratio at both low and high vibrational frequencies. Finally, a test structure is fabricated, using silicon-on-insulator multiuser MEMS processes, and tested for capacitance ratio η greater than 1.366, a prerequisite for the operation of Bennet’s doubler circuit. Results: Resonant operation of the test structure achieves capacitance ratio of 1.39 with a capability of harvesting energy density of 4.63  μJ/cm3. Further, an improved harvester design is also presented for η  =  1.5, based on the discussed guidelines that increase the energy density to 19.6  μJ/cm3. Conclusions: We will present an insight into the design of Bennet’s doubler harvester for different vibrational frequencies, which is being widely explored for electrostatic energy harvesting.
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基于SOI mems的bennett倍频动能采集器的设计
摘要背景:基于贝内特倍频动能收割机(KEH)的微机电系统设计是一个棘手的问题,因为它既要满足倍频回路的运行标准,又要满足收割机运行的设计约束。目的:介绍了采用班纳特倍频电路的静电KEH的设计准则,并对其进行了实验验证。方法:bennett的倍频电路只能在收割机的交叉电极的特定电容比范围内作为KEH工作。推导出了班纳特倍频收割机谐振频率的约束条件,以实现高、低振动频率下的工作电容比。最后,采用绝缘体上硅多用户MEMS工艺制作了一个测试结构,并测试了电容比η大于1.366,这是Bennet倍频电路运行的先决条件。结果:测试结构的谐振工作电容比为1.39,能量收集能力为4.63 μJ/cm3。此外,在η = 1.5时,基于所讨论的将能量密度提高到19.6 μJ/cm3的准则,提出了一种改进的收割机设计。结论:我们将介绍不同振动频率的bennett倍频收割机的设计,该收割机正在广泛探索用于静电能量收集。
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来源期刊
CiteScore
3.40
自引率
30.40%
发文量
0
审稿时长
6-12 weeks
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