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Capacitive Energy Conversion With Circuits Implementing a Rectangular Charge-Voltage Cycle—Part 1: Analysis of the Electrical Domain

handle: 10197/8761
Capacitive kinetic energy harvesters (KEH) employ conditioning circuits which achieve a dynamic biasing of the transducer's variable capacitor. This paper, composed of two articles Part 1 and Part 2, proposes a unified theory describing electrical and electromechanical properties of an important and wide class of conditioning circuits: those implementing a rectangular charge-voltage cycle. The article Part 1 introduces a basic configuration of conditioning circuit implementing an ideal rectangular QV cycle, and discusses its known practical implementations: the Roundy charge pump with different flyback mechanisms, and configurations based on the Bennet's doubler. In Part 1, the analysis is done in the electrical domain, without accounting for electromechanical coupling, while in Part 2, the full electromechanical system is analyzed. An optimization approach common to all configurations is proposed. A comparison is made between different topologies and operation modes, based on the maximal energy converted in one cycle under similar electrical and mechanical conditions. The last section discusses practical implementation of circuits with smart and adaptive behavior, and presents experimental results obtained with state-of-the art MEMS capacitive KEH devices.
- University College Dublin Ireland
- Paris-Est Sup France
- Conservatoire national des arts et métiers France
- University of Paris France
- Paris-Est Sup France
energy harvesting, [SPI] Engineering Sciences [physics], [SPI.NANO] Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics, Capacitance, circuit analysis, Power systems, [SPI]Engineering Sciences [physics], power systems, [ SPI.NRJ ] Engineering Sciences [physics]/Electric power, [ SPI ] Engineering Sciences [physics], [SPI.NANO]Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics, Switched systems, Energy harvesting, [SPI.NRJ]Engineering Sciences [physics]/Electric power, Circuit analyisis, 621, [SPI.TRON] Engineering Sciences [physics]/Electronics, [SPI.TRON]Engineering Sciences [physics]/Electronics, [ SPI.TRON ] Engineering Sciences [physics]/Electronics, DC-DC power conversion, [ SPI.NANO ] Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics, switched systems, [SPI.NRJ] Engineering Sciences [physics]/Electric power
energy harvesting, [SPI] Engineering Sciences [physics], [SPI.NANO] Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics, Capacitance, circuit analysis, Power systems, [SPI]Engineering Sciences [physics], power systems, [ SPI.NRJ ] Engineering Sciences [physics]/Electric power, [ SPI ] Engineering Sciences [physics], [SPI.NANO]Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics, Switched systems, Energy harvesting, [SPI.NRJ]Engineering Sciences [physics]/Electric power, Circuit analyisis, 621, [SPI.TRON] Engineering Sciences [physics]/Electronics, [SPI.TRON]Engineering Sciences [physics]/Electronics, [ SPI.TRON ] Engineering Sciences [physics]/Electronics, DC-DC power conversion, [ SPI.NANO ] Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics, switched systems, [SPI.NRJ] Engineering Sciences [physics]/Electric power
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