Title :
Two-Stage Wideband Energy Harvester Driven by Multimode Coupled Vibration
Author :
Qiaochu Tang ; Xinxin Li
Author_Institution :
State Key Lab. of Transducer Technol., Shanghai Inst. of Microsyst. & Inf. Technol., Shanghai, China
Abstract :
This study develops a piezoelectric vibratory energy harvester intended for wideband operation at low frequencies. The harvester features a two-stage vibratory structure. The first stage picks up ambient low-frequency vibration and excites the second stage to vibrate at its resonant frequency, thereby realizing frequency upconversion and improving power-generation capability. The first stage is designed as a multimode resonator to adapt to a wide frequency band by multimode vibration coupling. Finite element simulation and lumped-element modeling indicate that the multimode coupled vibration at the first stage can excite the second stage into wideband resonance that well adapts the electric power generation to the wideband ambient vibrations. The micro harvesters are fabricated, with the testing results validating the design concept. The harvester can operate under acceleration amplitude of 1 g and frequency from 10 to 30 Hz. A peak power of 24.56 μW and a maximum average power of 3.62 μW are achieved at 1 g and 20 Hz. The harvester also exhibits power generating capability under excitation of the vibration from a running bus, where a peak power of 6.89 μW is generated.
Keywords :
energy harvesting; finite element analysis; piezoelectric transducers; vibrations; ambient low-frequency vibration; electric power generation; finite element simulation; frequency upconversion; lumped-element modeling; microharvesters; multimode coupled vibration; multimode resonator; multimode vibration coupling; piezoelectric vibratory energy harvester; resonant frequency; two-stage vibratory structure; two-stage wideband energy harvester; wideband ambient vibrations; Acceleration; Force; Magnetic resonance; Power generation; Vibrations; Wideband; Energy harvesting; frequency band; frequency upconversion; multimode resonator; piezoelectric transducers;
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
DOI :
10.1109/TMECH.2013.2296776