Experimental Verification of a Novel MEMS Multi-Modal Vibration Energy Harvester for Ultra-Low Power Remote Sensing Nodes

被引:0
|
作者
Iannacci, J. [1 ]
Sordo, G. [1 ]
Serra, E. [1 ]
Kucera, M. [2 ]
Schmid, U. [2 ]
机构
[1] Fdn Bruno Kessler, Ctr Mat & Microsyst, MicroSyst Technol MST Res Unit, I-38123 Trento, Italy
[2] Vienna Univ Technol, Inst Sensor & Actuator Syst, A-1040 Vienna, Austria
关键词
Energy Harvesting (EH); MEMS (MicroElectroMechanical-Systems); Microsystems; Vibrations; Multi-modal resonator; Wideband EH; Internet of Things (IoT); Ultra-low power smart and integrated remote sensing nodes;
D O I
10.1117/12.2177669
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this work, we discuss the verification and preliminary experimental characterization of a MEMS-based vibration Energy Harvester (EH) design. The device, named Four-Leaf Clover (FLC), is based on a circular-shaped mechanical resonator with four petal-like mass-spring cascaded systems. This solution introduces several mechanical Degrees of Freedom (DOFs), and therefore enables multiple resonant modes and deformation shapes in the vibrations frequency range of interest. The target is to realize a wideband multi-modal EH-MEMS device, that overcomes the typical narrowband working characteristics of standard cantilevered EHs, by ensuring flexible and adaptable power source to ultra-low power electronics for integrated remote sensing nodes (e.g. Wireless Sensor Networks - WSNs) in the Internet of Things (IoT) scenario, aiming to self-powered and energy autonomous smart systems. Finite Element Method simulations of the FLC EH-MEMS show the presence of several resonant modes for vibrations up to 4-5 kHz, and level of converted power up to a few mu W at resonance and in closed-loop conditions (i.e. with resistive load). On the other hand, the first experimental tests of FLC fabricated samples, conducted with a Laser Doppler Vibrometer (LDV), proved the presence of several resonant modes, and allowed to validate the accuracy of the FEM modeling method. Such a good accordance holds validity for what concerns the coupled field behavior of the FLC EH-MEMS, as well. Both measurements and simulations performed at 190 Hz (i.e. out of resonance) showed the generation of power in the range of nW (Root Mean Square - RMS values). Further steps of this work will include the experimental characterization in a full range of vibrations, aiming to prove the whole functionality of the FLC EH-MEMS proposed design concept.
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页数:10
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