Title :
Unconventional wearable energy harvesting from human horizontal foot motion
Author :
Zeng, Peng ; Chen, Hao ; Yang, Zhi ; Khaligh, Alireza
Author_Institution :
Electr. & Comput. Eng. Dept., Illinois Inst. of Technol., Chicago, IL, USA
Abstract :
This paper presents an unconventional flat-type linear permanent magnetic generator based energy harvesting system which employs a cascaded boost-buck two-stage converter, with a maximum power control algorithm optimized for low frequency human horizontal foot motion, for Li-Ion battery charging. The dynamic model of the linear generator is built and the analytical equations for maximum power generation of non-resonant applications like human foot motion are derived. A double-sided stator linear machine with moving permanent magnet and soft magnetic spacer is designed. The Finite Element Analysis (FEA) is carried out on the designed geometric model to estimate the real-time voltage of energy harvester. A cascaded boost-buck converter with appropriate control is proposed to abstract maximum power from the linear generator and charge the Li-Ion battery with constant current at the same time. Under the typical human horizontal foot motion velocity of 4.5 m/s, the proposed energy harvester with the designed power conditioning circuit has power density as high as 8.5 mW/cm3.
Keywords :
energy harvesting; finite element analysis; frequency control; linear machines; lithium; machine control; machine theory; motion control; permanent magnet generators; power control; power convertors; secondary cells; FEA; Li; Li-Ion battery charging; cascaded boost-buck two-stage converter; double-sided stator linear machine; dynamic model; finite element analysis; geometric model; low frequency human horizontal foot motion; maximum power control algorithm; moving permanent magnet; power conditioning circuit; power density; soft magnetic spacer; unconventional flat-type linear permanent magnetic generator; unconventional wearable energy harvesting; velocity 4.5 m/s; Electromagnetics; Energy harvesting; Foot; Generators; Humans; Mathematical model; Power generation; Energy harvesting; Permanent magnet linear machine; electromagnetic generator; human foot motion;
Conference_Titel :
Applied Power Electronics Conference and Exposition (APEC), 2011 Twenty-Sixth Annual IEEE
Conference_Location :
Fort Worth, TX
Print_ISBN :
978-1-4244-8084-5
DOI :
10.1109/APEC.2011.5744606