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Chang-hyun Ji

Ewha Womans University

About the Lab

Professor Chang-hyun Ji's research lab specializes in microelectromechanical systems (MEMS) and piezoelectric energy harvesting, focusing on innovative designs for vibration energy harvesters and gyroscopes. The lab develops advanced equivalent circuit models to accurately predict the dynamic behavior of impact-based energy harvesters under real-world, unpredictable vibrational conditions. Key research directions include frequency-up-conversion mechanisms, dual-mass vibratory gyroscopes for wideband stability, and the integration of macro-fiber composites (MFCs) for efficient power generation from low-frequency ambient vibrations. The lab emphasizes both theoretical modeling and experimental validation to advance energy harvesting and sensing technologies for portable and wearable electronics.

vibration energy harvestingMEMS gyroscopespiezoelectric transducersimpact-based energy harvestingequivalent circuit modeling

Research Overview

Papers
3
Total Citations
1
Papers (5y)
3
Primary Field

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
3total
2011
2015
2017
Citations per year (5y)
1total
201120152017

Selected Papers

3
1
Article|1 citations·2015
Realistic Circuit Model of an Impact-Based Piezoelectric Energy Harvester
김선희, 주선아, 지창현, 이승준
JOURNAL OF SEMICONDUCTOR TECHNOLOGY AND SCIENCE

A vibration-based energy harvester and its equivalent circuit models have been reported. Most models predict voltage signals at harmonic excitation. However, vibrations in a natural environment are unpredictable in frequency and amplitude. In this paper, we propose a realistic equivalent circuit model of a frequency-up-converting impact-based piezoelectric energy harvester. It can describe the behavior of the harvester in a real environment where the frequency and the amplitude of the excitation

2
Article|0 citations·2011
이중 질량체를 사용한 진동형 자이로스코프의 검출부 대역폭 개선
황영석, 김용권, 지창현

In this research, a MEMS vibratory gyroscope with dual-mass system in the sensing mode has been proposed to increase the stability of the device using wide bandwidth. A wide flat region between the two resonance peaks of the dual-mass system removes the need for a frequency matching typically required for single mass vibratory gyroscopes. Bandwidth, mass ratio, spring constant, and frequency response of the dual-mass system have been analyzed with MATLAB and ANSYS simulation. Designed first and

3
Article|0 citations·2017
간접 충격을 이용한 압전 방식 진동형 에너지 하베스터
주선아, 지창현

This paper presents an impact-based piezoelectric vibration energy harvester using a freely movable metal sphere and a piezoceramic fiber-based MFC (Macro Fiber Composite) as piezoelectric cantilever. The free motion of the metal sphere, which impacts both ends of the cavity in an aluminum housing, generates power across a cantilever-type MFC beam in response to low frequency vibration such as human-body-induced motion. Impacting force of the spherical proof mass is transformed into the vibratio

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