TY - JOUR
T1 - A compact dual-rotor wrist-worn energy harvester based on axial-flux topology for self-powered wearable devices
AU - Gu, Meilin
AU - Kong, Ziyue
AU - Xie, Haopeng
AU - Zhang, Zixuan
AU - Deng, Fang
AU - Fu, Hailing
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/8
Y1 - 2026/8
N2 - Human biomechanical energy is increasingly recognized as an ideal power source for wearable devices. To address the challenge of harvesting low-frequency kinetic energy from arm swing within the constrained space of the wrist, this paper proposes a compact, direct-drive electromagnetic energy harvester (EMEH) utilizing an axial-flux topology. Incorporating a dual-rotor, single-stator “sandwich” magnetic circuit structure and an eccentric inertia modulation strategy implemented by tungsten alloy, the device significantly enhances electromechanical conversion performance, achieving a 2.5-fold higher peak magnetic flux density and an approximate 2-fold increase in output power. An electromechanically-coupled theoretical model was established to explore the system behaviors and elucidate the mechanisms underlying large-amplitude nonlinear oscillations induced by higher-frequency excitations. Experimental results demonstrate that the device achieves an average power of 1.93 mW (273μW/cm3) at 1.5 Hz, and an instantaneous peak power of approximately 6 mW during running (7km/h). Furthermore, this energy harvester successfully powered a wireless sensing node, validating its potential as a sustainable power source for wearable Internet of Things (IoT) applications.
AB - Human biomechanical energy is increasingly recognized as an ideal power source for wearable devices. To address the challenge of harvesting low-frequency kinetic energy from arm swing within the constrained space of the wrist, this paper proposes a compact, direct-drive electromagnetic energy harvester (EMEH) utilizing an axial-flux topology. Incorporating a dual-rotor, single-stator “sandwich” magnetic circuit structure and an eccentric inertia modulation strategy implemented by tungsten alloy, the device significantly enhances electromechanical conversion performance, achieving a 2.5-fold higher peak magnetic flux density and an approximate 2-fold increase in output power. An electromechanically-coupled theoretical model was established to explore the system behaviors and elucidate the mechanisms underlying large-amplitude nonlinear oscillations induced by higher-frequency excitations. Experimental results demonstrate that the device achieves an average power of 1.93 mW (273μW/cm3) at 1.5 Hz, and an instantaneous peak power of approximately 6 mW during running (7km/h). Furthermore, this energy harvester successfully powered a wireless sensing node, validating its potential as a sustainable power source for wearable Internet of Things (IoT) applications.
KW - Dual-rotor axial-flux topology
KW - Self-powered sensing
KW - Wrist-worn energy harvester
UR - https://www.scopus.com/pages/publications/105043072956
U2 - 10.1016/j.seta.2026.105134
DO - 10.1016/j.seta.2026.105134
M3 - Article
AN - SCOPUS:105043072956
SN - 2213-1388
VL - 92
JO - Sustainable Energy Technologies and Assessments
JF - Sustainable Energy Technologies and Assessments
M1 - 105134
ER -