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Civil and Environmental Engineering

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Civil Engineering Faculty Publications and Presentations

2021

Piezoelectric energy harvester

Articles 1 - 2 of 2

Full-Text Articles in Engineering

A Magneto-Mechanical Piezoelectric Energy Harvester Designed To Scavenge Ac Magnetic Field From Thermal Power Plant With Power-Line Cables, Quan Wang, Kyung-Bum Kim, Sang-Bum Woo, Yooseob Song, Tae-Hyun Sang Apr 2021

A Magneto-Mechanical Piezoelectric Energy Harvester Designed To Scavenge Ac Magnetic Field From Thermal Power Plant With Power-Line Cables, Quan Wang, Kyung-Bum Kim, Sang-Bum Woo, Yooseob Song, Tae-Hyun Sang

Civil Engineering Faculty Publications and Presentations

Piezoelectric energy harvesters have attracted much attention because they are crucial in portable industrial applications. Here, we report on a high-power device based on a magneto-mechanical piezoelectric energy harvester to scavenge the AC magnetic field from a power-line cable for industrial applications. The electrical output performance of the harvester (×4 layers) reached an output voltage of 60.8 Vmax, an output power of 215 mWmax (98 mWrms), and a power density of 94.5 mWmax/cm3 (43.5 mWrms/cm3) at an impedance matching of 5 kΩ under a magnetic field of 80 …


A Flexible Piezoelectric Energy Harvester-Based Single-Layer Ws2 Nanometer 2d Material For Self-Powered Sensors, Quan Wang, Kyung-Bum Kim, Sang Bum Woo, Yooseob Song, Tae Hyun Sung Apr 2021

A Flexible Piezoelectric Energy Harvester-Based Single-Layer Ws2 Nanometer 2d Material For Self-Powered Sensors, Quan Wang, Kyung-Bum Kim, Sang Bum Woo, Yooseob Song, Tae Hyun Sung

Civil Engineering Faculty Publications and Presentations

A piezoelectric sensor is a typical self-powered sensor. With the advantages of a high sensitivity, high frequency band, high signal-to-noise ratio, simple structure, light weight, and reliable operation, it has gradually been applied to the field of smart wearable devices. Here, we first report a flexible piezoelectric sensor (FPS) based on tungsten disulfide (WS2) monolayers that generate electricity when subjected to human movement. The generator maximum voltage was 2.26 V, and the produced energy was 55.45 μJ of the electrical charge on the capacitor (capacity: 220 μF) when applying periodic pressing by 13 kg. The generator demonstrated here …