• Title/Summary/Keyword: Piezoelectric Harvester

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Study for increasing property of piezoelectric energy harvester using multi-layer ceramic (적층형 압전세라믹을 이용한 에너지 하베스터의 특성 향상)

  • Kim, Hyung-Chan;Song, Hyun-Cheol;Kang, Chong-Yon;Kang, Jin-Kyu;Ju, Byeong-Kwon;Yoon, Seok-Jin
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2008.06a
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    • pp.51-51
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    • 2008
  • 최근 센서, 전자기술의 발달은 소형 센서 기기의 구동에 필요한 파워를 줄여 주변의 진동이나 온도차등에서의 작은 에너지로도 센서 등의 소형 전자기기의 구동을 가능하게 했다. 이에 따라 전자기기의 구동에너지로써 에너지 하베스팅이 많은 관심을 받고 있다. 압전 효과를 이용하여 주변의 진동에너지를 전기에너지로 변화 시키는 압전에너지 하베스터는 온도차이나 태양광, 바람등과는 달리 날씨나 구동조건에 큰 영항을 받지 않는 장점과 그 크기가 비교적 소형이라는 장점이 있어 많은 연구가 진행되고 있다. 에너지 하베스터에서 생산된 에너지를 사용하기 위해서는 생산된 에너지를 저장장치에 저장해야 한다. 저장장치에 저장하기 위해서는 일정 이상의 전압과 많은 양의 전류가 있는 것이 효과적이다. 하지만 압전 세라믹의 출력 특성은 전압이 크고, 출력 전류가 작은 특성을 지지고 있어 충전 속도가 느리다는 문제점이 있다. 압전세라믹에서 발생되는 에너지는 세라믹의 두께와 세라믹의 전극면적에 비례하는데 각각 세라믹의 두께는 출력 전압에 영향을 주며, 세라믹의 전극면적은 발생하는 전하량에 영항을 준다. 이러한 압전체의 특징을 이용하여 본 연구에서는 압전체의 출력특성의 향상을 위하여 $10\times35mm^2$ 크기의 적층 세라믹을 제작하여 압전에너지 하베스터를 제작하였다. 적층 압전세라믹을 이용한 에너지 하베스터에서 3.5m/$s^2$ 24.6 ${\mu}m$의 진동에서 발생전압 2.14 V 에 발생전류 252 ${\mu}A$의 특성을 얻을 수 있었다.

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A High-sensitivity Passive Magnetic Transducer Based on PZT Plates and a Fe-Ni Fork Substrate

  • Li, Ping;Wen, Yumei;Jia, Chaobo;Li, Xinshen
    • Journal of Magnetics
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    • v.16 no.3
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    • pp.271-275
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    • 2011
  • This paper proposes a magnetoelectric (ME) composite transducer structure consisting of a magnetostrictive H-type Fe-Ni fork substrate and piezoelectric PZT plates. The fork composite structure has a higher ME voltage coefficient compared to other ME composite structures due to the higher quality (Q) factor. The ME sensitivity of the fork structure reaches 12 V/Oe (i.e., 150 V/cm Oe). The fork composite with two PZT plates electrically connected in series exhibits over 5 times higher ME voltage coefficient than the output of the rectangle structure in the same size. The experiment shows the composite of a Fe-Ni fork substrate and PZT plates has a significantly enhanced ME voltage coefficient and a higher ME sensitivity relative to the prior sandwiched composite laminates. By the use of a lock-in amplifier with 10 nV resolution, this transducer can detect a weak magnetic field of less than $10^{-12}$ T. This transducer can also be designed for a magnetoelectric energy harvester due to its passive high-efficiency ME energy conversion.

Development of Hybrid Energy Harvesting Block and Evaluation on Power Generation Performance (하이브리드 에너지하베스팅 블록 개발 및 발전성능 평가)

  • Kim, Hyo-Jin;Park, Ji-Young;Jin, Kyu-Nam;Noh, Myung-Hyun
    • Land and Housing Review
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    • v.5 no.2
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    • pp.99-106
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    • 2014
  • The purpose of this study is to develop hybrid energy blocks with piezoelectric and electromagnetic induction method. The developed energy block is able to be applied to the housing and facilities in the city and is suitable to adjust the characteristics of facilities. To develop the hybrid energy block, we analyzed the characteristics and requirements of various energy block types and drew improvement and application method to develop energy blocks. We compared and analyzed the characteristics and performance of the prototype energy blocks and the developed hybrid energy blocks. According to result of the comparison and analysis, the developed energy block shows higher performance of 12.7 times for adding one vibration and 28.9 times for five consecutive vibrations than that of a existing prototype energy block. This is consistent with research purposes for W-level electrical energy production. Thus, the new energy block will likely be possible to apply to the housing and urban facility.

Fabrication and Characteristics of Micro PZT Cantilever Energy Harvester Using MEMS Technologies (MEMS 공정을 이용한 마이크로 PZT 외팔보 에너지 수확소자의 제작 및 특성)

  • Kim, Moon-Keun;Hwang, Beom-Seok;Jeong, Jae-Hwa;Min, Nam-Ki;Kwon, Kwang-Ho
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.24 no.6
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    • pp.515-518
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    • 2011
  • In this work, we designed and fabricated a multilayer thin film Pb(Zr,Ti)$O_3$ cantilever with a Si proof mass for low frequency vibration energy harvesting applications. A mathematical model of a mu lti-layer composite beam was derived and applied in a parametric analysis of the piezoelectric cantilever. Finally, the dimensions of the cantilever were determined for the resonant frequency of the cantilever. W e fabricated a device with beam dimensions of about 4,930 ${\mu}M$ ${\times}$ 450 ${\mu}M$ ${\times}$ 12 ${\mu}M$, and an integrated Si proof mass with dimensions of about 1,410 ${\mu}M$ ${\times}$ 450 ${\mu}M$ ${\times}$ 450 ${\mu}M$. The resonant frequency, maximum peak voltage, and highest average power of the cantilever device were 84.5 Hz, 88 mV, and 0.166 ${\mu}Wat$ 1.0 g and 23.7 ${\Omega}$, respectively. The dimensions of the cantilever were determined for the resonance frequency of the cantilever.

Nanostructured energy harvesting devices and their applications for IoT sensor networks (나노구조체 에너지 하베스팅 소자와 IoT 센서 네트워크의 융합 연구)

  • Yoon, Chongsei;Jeon, Buil;Yoon, Giwan
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.25 no.5
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    • pp.719-730
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    • 2021
  • We have demonstrated a sandwich-type ZnO-based piezoelectric energy harvesting nanogenerator, namely ZCZ-NG device, composed of symmetrically stacked layers of ZnO/carbon tape/ZnO structure. Especially, we have adopted a conductive double-sided adhesive carbon tape in an effort to fabricate a high-quality ZCZ-NG device, leading to its superior output performance in terms of the peak-to-peak output voltage. Effects of the device size, ZnO layer thickness, and bending strain rate on the device performance have been investigated by measuring the output voltage. Moreover, to evaluate the effectiveness of the fabricated ZCZ-NG devices, we have experimentally implemented a sensor network testbed which can utilize the output voltages of ZCZ-NG devices. This sensor network testbed consists of several components such as Arduino-based transmitter and receiver nodes, wirelessly transmitting the sensed information of each node. We hope that this research combining the ZnO-based energy harvesting devices and IoT sensor networks will contribute to the development of more advanced energy harvester-driven IoT sensor networks in the future.