Energy-aware approaches for energy harvesting powered wireless sensor nodes T Ruan, ZJ Chew, M Zhu IEEE Sensors Journal 17 (7), 2165-2173, 2017 | 253 | 2017 |
Plucked piezoelectric bimorphs for knee-joint energy harvesting: modelling andexperimental validation M Pozzi, M Zhu Smart Materials and Structures 20 (5), 055007, 2011 | 218 | 2011 |
Analyses of power output of piezoelectric energy-harvesting devices directly connected to a load resistor using a coupled piezoelectric-circuit finite element method M Zhu, E Worthington, J Njuguna IEEE transactions on ultrasonics, ferroelectrics, and frequency control 56 …, 2009 | 182 | 2009 |
Energy harvesting during human walking to power a wireless sensor node Y Kuang, T Ruan, ZJ Chew, M Zhu Sensors and Actuators A: Physical 254, 69-77, 2017 | 133 | 2017 |
Design and characterisation of a piezoelectric knee-joint energy harvester with frequency up-conversion through magnetic plucking Y Kuang, Z Yang, M Zhu Smart Materials and Structures 25 (8), 085029, 2016 | 132 | 2016 |
Auxetic piezoelectric energy harvesters for increased electric power output Q Li, Y Kuang, M Zhu Aip Advances 7 (1), 2017 | 119 | 2017 |
The pizzicato knee-joint energy harvester: characterization with biomechanical data and the effect of backpack load M Pozzi, MSH Aung, M Zhu, RK Jones, JY Goulermas Smart Materials and Structures 21 (7), 075023, 2012 | 113 | 2012 |
Auxetic structure for increased power output of strain vibration energy harvester WJG Ferguson, Y Kuang, KE Evans, CW Smith, M Zhu Sensors and Actuators A: Physical 282, 90-96, 2018 | 103 | 2018 |
Design study of piezoelectric energy-harvesting devices for generation of higher electrical power using a coupled piezoelectric-circuit finite element method M Zhu, E Worthington, A Tiwari IEEE transactions on ultrasonics, ferroelectrics, and frequency control 57 …, 2010 | 103 | 2010 |
Characterization of a rotary piezoelectric energy harvester based on plucking excitation for knee-joint wearable applications M Pozzi, M Zhu Smart Materials and Structures 21 (5), 055004, 2012 | 91 | 2012 |
Contact analysis and mathematical modeling of traveling wave ultrasonic motors M Zhu ieee transactions on ultrasonics, ferroelectrics, and frequency control 51 …, 2004 | 91 | 2004 |
Characterisation of a knee-joint energy harvester powering a wireless communication sensing node Y Kuang, M Zhu Smart Materials and Structures 25 (5), 055013, 2016 | 82 | 2016 |
Design study of a mechanically plucked piezoelectric energy harvester using validated finite element modelling Y Kuang, M Zhu Sensors and Actuators A: Physical 263, 510-520, 2017 | 75 | 2017 |
Adaptive Maximum Power Point Finding Using Direct VOC/2 Tracking Method With Microwatt Power Consumption for Energy Harvesting ZJ Chew, M Zhu IEEE Transactions on Power Electronics 33 (9), 8164-8173, 2017 | 72 | 2017 |
A sandwiched piezoelectric transducer with flex end-caps for energy harvesting in large force environments Y Kuang, A Daniels, M Zhu Journal of Physics D: Applied Physics 50 (34), 345501, 2017 | 64 | 2017 |
Kirigami-inspired triboelectric nanogenerator as ultra-wide-band vibrational energy harvester and self-powered acceleration sensor Y Qi, Y Kuang, Y Liu, G Liu, J Zeng, J Zhao, L Wang, M Zhu, C Zhang Applied Energy 327, 120092, 2022 | 61 | 2022 |
Power management circuit for wireless sensor nodes powered by energy harvesting: On the synergy of harvester and load ZJ Chew, T Ruan, M Zhu IEEE Transactions on Power Electronics 34 (9), 8671-8681, 2018 | 58 | 2018 |
Evaluation and validation of equivalent properties of macro fibre composites for piezoelectric transducer modelling Y Kuang, M Zhu Composites Part B: Engineering 158, 189-197, 2019 | 54 | 2019 |
Scalable pendulum energy harvester for unmanned surface vehicles J Graves, Y Kuang, M Zhu Sensors and Actuators A: Physical 315, 112356, 2020 | 50 | 2020 |
Counterweight-pendulum energy harvester with reduced resonance frequency for unmanned surface vehicles J Graves, Y Kuang, M Zhu Sensors and Actuators A: Physical 321, 112577, 2021 | 46 | 2021 |