Optimization of Wideband Piezoelectric Energy Harvester
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Abstract
In condition surveillance applications, mechanical vibration monitoring is becoming
newlineincreasingly popular. Wireless sensor nodes enabled with IoT are suitable for monitoring
newlinevibrations. These nodes are used to gather and communicate the information regarding
newlinestate of machine or system. Wireless sensor nodes are generally powered by batteries,
newlinewhich, depending on the application, gets exhausted in a relatively small time. This
newlineleads to enormous labor cost for battery substitutions, particularly where thousand
newlinenodes in network are located remotely or are extensively spread. Piezoelectric vibration
newlineenergy harvesting provides a potential solution to concerns of battery life and its heavy
newlinemaintenance, particularly in industrial environments where vibration is omnipresent.
newlineOwing to the time varying, random and multi-frequency nature of environmental vibration
newlinesources, the operational bandwidth of Vibration Energy Harvester (VEH) is gaining lot
newlineof interest. Most VEH have narrower bandwidth with usable output power at certain
newlinefrequencies. Time-varying vibration source activity renders harvesting difficult. There
newlineis a need for tunable or wideband vibration energy harvesters. Efforts to increase the
newlineoperational frequency range have been made by introducing nonlinear structures and
newlinetechniques. The main motive of this research is to optimize wideband piezoelectric
newlineenergy harvester for low frequency applications.
newlineThe research mainly focused on a novel cantilever structure that provides dual band
newlineoutput using two distinct modes of operations. Resonant frequency of the device changes
newlinewith change in Centre of Gravity (CoG) of proof-mass resulting into first band of the
newlinedevice. Without any external force, CoG of the proof-mass gets auto-tuned. Cylinders
newlinerotational and vibrational motion creates impact on beam s surface as well as on walls of
newlineproof mass that leads to generate second band of the device output. The optimal power is
newlineanalyzed by changing the resistive load during experimentation.
newlineThough multi-band output device provide