DocumentCode :
51576
Title :
A 12-μW to 1.1-mW AIM Piezoelectric Energy Harvester for Time-Varying Vibrations With 450-nA I_{bm Q}
Author :
Sankman, Joseph ; Dongsheng Ma
Author_Institution :
Dept. of Electr. Eng., Univ. of Texas at Dallas, Richardson, TX, USA
Volume :
30
Issue :
2
fYear :
2015
fDate :
Feb. 2015
Firstpage :
632
Lastpage :
643
Abstract :
Continuing advancements in low power VLSI systems have enabled the use of self-powered wireless sensor nodes (WSNs) for many industrial applications. To alleviate WSN battery maintenance requirements, piezoelectric devices are implemented to harvest vibration energy. However, significant challenges remain unresolved with regard to harvesting from time-varying vibrations in environments where harvestable energy is unpredictable. This paper presents a new integrated piezoelectric energy harvesting system. An adaptive impedance matching maximum power point tracking technique is proposed to improve harvesting efficiency. An adaptive on-time dc-dc controller with pulse skipping modulation is also employed. To retain reasonable efficiency in such low power applications, the controller is designed with ultralow power analog circuits and zero bias current dynamic circuits, with a total quiescent current of only 450 nA. The design is fabricated and verified on a 0.25-μm CMOS process. It is capable of harvesting time-varying piezoelectric energy ranging of 12 μW to 1.1 mW. In comparison with quasi-resistive impedance matching, a harvesting improvement of more than two times is achieved. Thanks to the low power design effort, it achieves greater than 70% efficiency from 80 μW to 1.1 mW.
Keywords :
energy harvesting; impedance matching; maximum power point trackers; piezoelectric devices; time-varying systems; vibrations; adaptive impedance matching maximum power point tracking technique; adaptive on time dc dc controller; current 450 nA; piezoelectric devices; piezoelectric energy harvester; power 12 muW to 1.1 mW; power 80 muW to 1.1 mW; pulse skipping modulation; quasiresistive impedance matching; size 0.25 mum; time varying vibrations; ultralow power analog circuits; vibration energy; zero bias current dynamic circuits; Energy harvesting; Impedance; Impedance matching; Piezoelectric devices; Transistors; Vibrations; Wireless sensor networks; Energy harvesting; maximum power point (MPP) tracking; piezoelectric; ultralow power;
fLanguage :
English
Journal_Title :
Power Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8993
Type :
jour
DOI :
10.1109/TPEL.2014.2313738
Filename :
6778073
Link To Document :
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