Title :
An Energy Harvesting System using 3-stage voltage multiplier and MPVD Charge Pump for wireless sensor networks
Author :
Shrivastava, R.D. ; Deshpande, D. ; Changzhi Li ; Gale, R.
Author_Institution :
RF & Analog Res. Group, Texas Tech Univ., Lubbock, TX, USA
Abstract :
Power management and charging of batteries for wireless sensors becomes a problem when using them in field applications. We propose a Wireless Energy Harvesting System which can be used to charge the batteries of the sensors whenever required. We are able to harvest energy from a RF source, which is mostly a Master Transceiver Unit, with input power as low as -9dBm. Also the Energy Harvester can be used to charge batteries when the input power is as low as -27dBm. Also the power management part of the system includes a Charge Pump which can handle large variation in load conditions. This charge pump can be used not only to boost the battery voltage but also to provide a regulated output independent of load conditions. Link variations can be an issue in a Wireless Sensors Network but our system introduces a low power data acquisition system that helps us monitor the link. Adjustments can be made accordingly for maximum energy transfer to take place between the TX and RX coils.
Keywords :
charge pump circuits; coils; data acquisition; energy harvesting; power system management; radio transceivers; secondary cells; voltage multipliers; wireless sensor networks; 3-stage voltage multiplier; MPVD charge pump; RF source; RX coil; TX coil; battery voltage charging; low power data acquisition system; master transceiver unit; maximum energy transfer; multiphase voltage doubler; power management; wireless energy harvesting system; wireless sensor network; Batteries; Charge pumps; Coils; Energy harvesting; Sensors; Voltage control; Wireless sensor networks; 3-Stage Voltage Multiplier; Charge Pump; Link Monitoring; Multi-Phase Voltage Doubler;
Conference_Titel :
Wireless Sensors and Sensor Networks (WiSNet), 2013 IEEE Topical Conference on
Conference_Location :
Austin, TX
Print_ISBN :
978-1-4673-3104-3
Electronic_ISBN :
978-1-4673-2931-6
DOI :
10.1109/WiSNet.2013.6488627