• 제목/요약/키워드: vibration energy harvesting

검색결과 182건 처리시간 0.049초

임플란트 환경에서 TENG 소자를 고려한 효율적인 에너지 저장 모니터링 시스템 개발 (A Development of Energy Storage Monitoring System Architecture for Triboelectric Nanogenerator in the Implant Environment)

  • 박현문;황태호;김동순
    • 한국전자통신학회논문지
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    • 제13권2호
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    • pp.473-480
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    • 2018
  • 2012년에 에너지 하베스팅을 위한 새로운 에너지 획득 방안인 TENG가 제시되었다. 동작에 따라 마찰 혹은 진동으로 전력을 생산하는 TENG는 새로운 에너지 하베스팅의 발전방안으로 소자 측면에서 많은 연구가 되고 있다. 하지만, TENG는 높은 전압(Voltage)과 낮은 전류(Current)의 문제를 지닌다. 이에 따라서 에너지의 저장과 변환을 위한 반도체 소자 혹은 회로적인 다양한 접근방안이 요구된다. 특히 5Hz 이하의 비규칙적인 발전에서의 변환 저장 기술은 이론적 연구보다 많은 경험이 요구된다. 본 연구는 발전 플랫폼을 저장 기술과 함께 대형동물의 움직임에 따른 발전소자의 실시간 발전 정보를 능동적 BLE 제어를 이용하여 송수신하고 이를 검증하였다.

소형 압전 에너지 하베스터 구현을 위한 세라믹 크기 변화 (Investigation of piezoelectric ceramic size effect for miniaturing the piezoelectric energy harvester)

  • 김형찬;정우석;강종윤;윤석진;주병권;정대용
    • 센서학회지
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    • 제17권4호
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    • pp.267-272
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    • 2008
  • Energy harvesting from the vibration through the piezoelectric effect has been studied for powering the small wireless sensor nodes. As piezoelectric uni-morph cantilever structure can transfer low vibration to large displacement, this structure was commonly deployed to harvest electric energy from vibrations. Through our previous results, when stress was applied on the cantilever, stress was concentrated on the certain point of the ceramic of the cantilever. In this study, for miniaturing the energy harvester, we investigated how the size of ceramics and the stress distribution in ceramic affects energy harvester characteristics. Even though the area of ceramic was 28.6 % decreased from $10{\times}35{\times}0.5mm^3$ to $10{\times}25{\times}0.5mm^3$, both samples showed almost same maximum power of 0.45 mW and the electro-mechanical coupling factor ($K_{31}$) of 14 % as well. This result indicated that should be preferentially considered to generate high power with small size energy harvester.

Compact electromagnetic vibration suppressor and energy harvester; an experimental study

  • Aref Afsharfard;Hooman Zoka;Kyung Chun Kim
    • Smart Structures and Systems
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    • 제33권3호
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    • pp.217-225
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    • 2024
  • In this study, an electromagnetic dynamic vibration suppressor and energy harvester is designed and studied. In this system, a gear mechanism is used to convert the linear motion to continuous rotary motion. Governing equations of motion for the system are derived and validated using the experimental results. Effects of changing the main parameters of the presented system, such as mass ratio, stiffness ratio and gear ratio on the electro-mechanical behavior of system are investigated. Moreover, using so-called Weighted Cost Function, the optimum parameters of the system are obtained. Finally, it is shown that the presented electromagnetic dynamic vibration absorber not only can reduce the undesired vibration of the main system but also it can harvest acceptable electrical energy.