A Novel Non-Resonant Energy Harvester for Ultra-Low-Frequency Energy Harvesting from Human Walking
Abstract
1. Introduction
2. Device Design and Working Mechanism Analysis
3. Prototype and Experimental Setup
4. Experimental Results and Discussion
4.1. The Optimal Load Resistance
4.2. Effect of Input Energy on Output Performance of NR-EH
4.3. Effect of Mechanical Energy Harvesting Structure on Output Performance of NR-EH
5. Applications
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Component | Structural Parameter | Value |
|---|---|---|
| Twist bar | (°) | |
| ; (mm) | 22; 2 | |
| Face gear | (mm) | |
| (mm) | 2.1; 1.1 | |
| Number of teeth | 10 | |
| Mass (g) | ||
| Rotor | (mm) | 15; 11.1; 1.1 |
| Number of teeth | 10 | |
| Mass (g) | ||
| Permanent Magnet | Radius; Thickness (mm) | 4; 5 |
| Distance from the Magnet to the Rotor Center (mm) | 15 | |
| Coil | In/Outer diameter/Thickness (mm) | 1; 4.4; 3 |
| Number of turns | 1850 | |
| Distance from the Coil to the Rotor Center (mm) | 16.5 | |
| The top cover | Cross-sectional area (mm2) | 1605.12 |
| Height (mm) | 5 | |
| Guide Rod | Diameter, Length (mm) | 2; 22 |
| Spring | Diameter, Wire Diameter, Length (mm) | 3; 0.3; 30 |
| The base | Height (mm) | 19 |
| Cross-sectional area (mm2) | 1605.12 | |
| Bearing | In/Outer diameter; Thickness (mm) | 3; 5; 3 |
| Compression amplitude (mm) |
| Cadence (Steps per Second) | Load Voltage (V) | Power Output (mW) | Power Density (mW/cm3) |
|---|---|---|---|
| 1 | 9.3 | 66.53 | 1.06 |
| 2 | 18.5 | 263.27 | 4.21 |
| 3 | 27.2 | 569.11 | 9.11 |
| Reference | Excitation | Power Output (mW) | Volume (cm3) | Power Density (mW/cm3) |
|---|---|---|---|---|
| [15] | Hand pressing | 12.4 | 30 | 0.413 |
| [16] | Walking at 4 Hz | 0.98 | 75.25 | 0.013 |
| [18] | Walking at 5.6 km/h (84 kg person) | 20 | 6.27 | 3.19 |
| [20] | Walking at 1 Hz | 1.29 | 76.56 | 0.017 |
| [21] | Walking at 5.6 km/h | 10 | 22.61 | 0.44 |
| [24] | Walking at 4 km/h | 97 | 82.8 | 1.17 |
| [23] | Walking at 9 km/h | 85 | 46.2 | 1.84 |
| This work | Stepping at 2 Hz (60 kg person) | 263.27 | 62.5 | 4.212 |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Dong, G.; Yu, Y.; Wu, W.; Zhang, Z.; Zhou, Y.; Yi, X.; Zhang, H.; Deng, L. A Novel Non-Resonant Energy Harvester for Ultra-Low-Frequency Energy Harvesting from Human Walking. Sensors 2026, 26, 1466. https://doi.org/10.3390/s26051466
Dong G, Yu Y, Wu W, Zhang Z, Zhou Y, Yi X, Zhang H, Deng L. A Novel Non-Resonant Energy Harvester for Ultra-Low-Frequency Energy Harvesting from Human Walking. Sensors. 2026; 26(5):1466. https://doi.org/10.3390/s26051466
Chicago/Turabian StyleDong, Guangxian, Yanxi Yu, Weixin Wu, Zhentao Zhang, Yangzi Zhou, Xin Yi, Hongchuan Zhang, and Licheng Deng. 2026. "A Novel Non-Resonant Energy Harvester for Ultra-Low-Frequency Energy Harvesting from Human Walking" Sensors 26, no. 5: 1466. https://doi.org/10.3390/s26051466
APA StyleDong, G., Yu, Y., Wu, W., Zhang, Z., Zhou, Y., Yi, X., Zhang, H., & Deng, L. (2026). A Novel Non-Resonant Energy Harvester for Ultra-Low-Frequency Energy Harvesting from Human Walking. Sensors, 26(5), 1466. https://doi.org/10.3390/s26051466

