• 제목/요약/키워드: piezoelectric energy harvesting

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압전 바이몰프 액츄에이터의 진동에 따른 자가 발전특성 (Self Power Generation from Vibration using Piezoelectric Bimorph Actuator)

  • 김창일;정영훈;이영진;백종후;남산
    • 한국전기전자재료학회논문지
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    • 제21권12호
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    • pp.1071-1076
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    • 2008
  • This paper presents the self power generation from vibration using the piezoelectric bimorph actuator. The piezoelectric bimorph actuator was well developed with PZT-PNN-Fe piezoelectric ceramics. As the applied voltage was increased, a linear change of displacement was obtained with a relatively high ratio of 12.53 um/V for the bimorph actuator. Moreover, when the motor's rotational speed was 2000 rpm, the bimorph actuator, which has a resonance frequency of 68 Hz, exhibited the most efficient generation voltage of 10.4 V. This bimorph actuator could make the LED, emitting 60 mW, working successfully. Therefore, it is anticipated that the bimorph actuator will be useful as a power source for the next-generation electronic devices.

차세대 태양전지의 활용 동향 및 스마트 텍스타일 하이브리드 에너지 하베스팅 소자의 미래전망에 관한 연구 : 산업 소재와의 융합 중심 (A Study on the Application Trends of Next-Generation Solar Cells and the Future Prospects of Smart Textile Hybrid Energy Harvesting Devices : Focusing on Convergence with Industrial Materials)

  • 박붕익
    • 융합정보논문지
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    • 제11권11호
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    • pp.151-158
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    • 2021
  • 본 논문에서는 차세대 태양전지로 대표되는 유기, 염료 감응형, 페로브스카이트 태양전지의 최신 연구 동향과 건축, 조형예술, 의류패션 등 분야를 막론한 다양한 산업의 소재로의 과제와 활용 가능성을 분석하였다. 더불어, 웨어러블 IoT 장치와 결합하여 자연 및 인공광과 우리 몸의 움직임에 따라 생성되는 크고 작은 진동 에너지를 전기에너지로 공급하는 역할을 하게 될 '스마트 텍스타일 하이브리드 에너지 하베스팅 소자'의 새로운 미래전망과 그 가능성을 제시하였다. 차세대 태양전지와 마찰·압전소자를 융합한 '하이브리드 텍스타일 에너지 하베스팅 디바이스'는 4차 산업혁명 시대의 웨어러블 IoT 기기에 소재 자체로 결합하여 새로운 '융합 일체형 스마트 의류'로 발전할 것이다. 이 연구가 제안한 차세대 나노기술과 소자가 에너지 하베스팅 기능을 갖는 스마트 섬유 소재 분야에 적용되고, 미래 의류 산업에 융합되어 의료, 헬스케어 등 다양한 분야에 AI 서비스 제공하는 창의적인 제품으로 진화하는 패러다임의 전환점이 되길 바란다.

유니모프 압전 벤더를 이용한 진동에너지의 획득 (Energy Harvesting from a Vibrating Piezoelectric Unimorph Bender)

  • 모창기;반갑수
    • 한국산업융합학회 논문집
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    • 제10권3호
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    • pp.157-163
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    • 2007
  • 이 논문에서는 최근 다시 주목을 끌고 있는 압전소자를 이용한 에너지 획득에 대한 개념을 한 진동원에 응용하여 그 에너지의 이용가능성을 분석해 보고자 한다. 에너지 획득기로는 가장 일반적으로 사용되고 있는 유니모프 압전 캔틸레버 벤더를 사용한다. 먼저 압전 에너지 획득기에 대해 base excitation에서의 거동을 이론적으로 분석하고 실험실내에서 수행할 수 있는 압전 에너지 획득기를 제작하여 가진기 상에서 발생하는 전력을 측정한다. 시뮬레이션과 실험결과를 통해 진동에너지로부터 획득한 전기에너지가 각종 센서는 물론 기계부품들의 진단시스템에 필요한 전원을 공급할 수 있음을 알 수 있다.

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유비쿼터스 센서네트워크를 위한 압전효과 기반의 무구속 휴대용 풍력 전원 장치 (Use of Piezoelectric Effect in Portable Loadless Wind-Power Source for Ubiquitous Sensor Networks)

  • 장형관;김대중;박정열
    • 대한기계학회논문집B
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    • 제34권6호
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    • pp.623-628
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    • 2010
  • 본 논문은 풍력에 의해 구동되는 압전효과 기반의 무구속 휴대용 전원 장치를 제안한다. 기계적 에너지를 효율적으로 변환하는 메커니즘의 한가지로 기계적 에너지를 전기적 에너지로 변환하는 압전효과를 이용하는 방법이 있다. 압전효과는 주기적으로 변하는 응력을 필요로 하지만, 자연 바람은 거의 일정한 속도를 보이거나, 변화하더라도 매우 느리고 불규칙적인 주파수를 갖기 때문에, 효과적으로 전기적 에너지를 얻어내기 힘들다. 본 연구에서는 바람을 프로펠러에 통과시켜, 손쉽게 주기적으로 변하는 응력을 만들어내고, 이를 압전외팔보에 전달하여 효율적으로 에너지를 변환하였다. 본 연구결과는 유비쿼터스 센서네트워크 시스템에 대한 에너지 공급의 실질적인 해결책이 되리라고 기대된다.

도로용 압전발전발판 설계 및 발전특성 평가 (Design and Electrical Properties of Piezoelectric Energy Harvester for Roadway)

  • 김창일;이주희;김경범;정영훈;조정호;백종후;이영진;남산
    • 한국전기전자재료학회논문지
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    • 제24권7호
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    • pp.554-558
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    • 2011
  • Piezoelectric energy harvester (PEH) as a box type was fabricated in order to harvest mechanical energy imparted to roadways from passing vehicles and convert it into electricity. The PEH was composed of 72 piezoelectric cantilevers with 9 springs with elasticity stick to a bottom of the PEH. For the single piezoelectric cantilever, when a single push with approximately 5 mm displacement was incident to it, power of 0.355 mW was produced at $100\;k{\Omega}$. It is found that the power from the single piezoelectric cantilever increases when spring constant is high. We investigated power of PEH when the moving vehicle passes in it. Power was increased with increasing vehicle speed. When vehicle speed is 30 km/h, power is 20.6 mW.

1차원 BaTiO3 나노튜브 어레이의 압전발전성능에 수열합성 반응조건이 미치는 영향 (Effect of Hydrothermal Reaction Conditions on Piezoelectric Output Performance of One Dimensional BaTiO3 Nanotube Arrays)

  • 이재훈;현동열;허동훈;박귀일
    • 한국분말재료학회지
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    • 제28권2호
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    • pp.127-133
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    • 2021
  • One-dimensional (1D) piezoelectric nanostructures are attractive candidates for energy generation because of their excellent piezoelectric properties attributed to their high aspect ratios and large surface areas. Vertically grown BaTiO3 nanotube (NT) arrays on conducting substrates are intensively studied because they can be easily synthesized with excellent uniformity and anisotropic orientation. In this study, we demonstrate the synthesis of 1D BaTiO3 NT arrays on a conductive Ti substrate by electrochemical anodization and sequential hydrothermal reactions. Subsequently, we explore the effect of hydrothermal reaction conditions on the piezoelectric energy conversion efficiency of the BaTiO3 NT arrays. Vertically aligned TiO2 NT arrays, which act as the initial template, are converted into BaTiO3 NT arrays using hydrothermal reaction with various concentrations of the Ba source and reaction times. To validate the electrical output performance of the BaTiO3 NT arrays, we measure the electricity generated from each NT array packaged with a conductive metal foil and epoxy under mechanical pushings. The generated output voltage signals from the BaTiO3 NT arrays increase with increasing concentration of the Ba source and reaction time. These results provide a new strategy for fabricating advanced 1D piezoelectric nanostructures by demonstrating the correlation between hydrothermal reaction conditions and piezoelectric output performance.

회전기기 실시간 동작상태 모니터링을 위한 자가발전 기반 센서모듈 (Self-Powered Integrated Sensor Module for Monitoring the Real-Time Operation of Rotating Devices)

  • 김창일;여서영;박범근;정영훈;백종후
    • 센서학회지
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    • 제28권5호
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    • pp.311-317
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    • 2019
  • Rotating devices are commonly installed in power plants and factories. This study proposes a self-powered sensor node that is powered by converting the vibration energy of a rotating device into electrical energy. The self-powered sensor consists of a piezoelectric harvester for self-power generation, a rectifier circuit to rectify the AC signal, a sensor unit for measuring the vibration frequency, and a circuit to control the light emitting diode (LED) lighting. The frequency of the vibration source was measured using a piezoelectric-cantilever-type vibration frequency sensor. A green LED was illuminated when the measured frequency was within the normal range. The power generated by the piezoelectric harvester was determined, and the LED operation was assessed in terms of the vibration frequency. The piezoelectric harvester was found to generate a power of 3.061 mW or greater at a vibration acceleration of 1.2 g ($1g=9.8m/s^2$) and vibration frequencies between 117 and 123 Hz. Notably, the power generated was 4.099 mW at 122 Hz. As such, our self-powered sensor node can be used as a module for monitoring rotating devices, because it can convert vibration energy into electrical energy when installed on rotating devices such as air compressors.

Analytical and experimental investigation of stepped piezoelectric energy harvester

  • Deepesh, Upadrashta;Li, Xiangyang;Yang, Yaowen
    • Smart Structures and Systems
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    • 제26권6호
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    • pp.681-692
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    • 2020
  • Conventional Piezoelectric Energy Harvesters (CPEH) have been extensively studied for maximizing their electrical output through material selection, geometric and structural optimization, and adoption of efficient interface circuits. In this paper, the performance of Stepped Piezoelectric Energy Harvester (SPEH) under harmonic base excitation is studied analytically, numerically and experimentally. The motivation is to compare the energy harvesting performance of CPEH and SPEHs with the same characteristics (resonant frequency). The results of this study challenge the notion of achieving higher voltage and power output through incorporation of geometric discontinuities such as step sections in the harvester beams. A CPEH consists of substrate material with a patch of piezoelectric material bonded over it and a tip mass at the free end to tune the resonant frequency. A SPEH is designed by introducing a step section near the root of substrate beam to induce higher dynamic strain for maximizing the electrical output. The incorporation of step section reduces the stiffness and consequently, a lower tip mass is used with SPEH to match the resonant frequency to that of CPEH. Moreover, the electromechanical coupling coefficient, forcing function and damping are significantly influenced because of the inclusion of step section, which consequently affects harvester's output. Three different configurations of SPEHs characterized by the same resonant frequency as that of CPEH are designed and analyzed using linear electromechanical model and their performances are compared. The variation of strain on the harvester beams is obtained using finite element analysis. The prototypes of CPEH and SPEHs are fabricated and experimentally tested. It is shown that the power output from SPEHs is lower than the CPEH. When the prototypes with resonant frequencies in the range of 56-56.5 Hz are tested at 1 m/s2, three SPEHs generate power output of 482 μW, 424 μW and 228 μW when compared with 674 μW from CPEH. It is concluded that the advantage of increasing dynamic strain using step section is negated by increase in damping and decrease in forcing function. However, SPEHs show slightly better performance in terms of specific power and thus making them suitable for practical scenarios where the ratio of power to system mass is critical.

알칼리계 무연 압전 세라믹과 에폭시 복합소재의 유전 및 압전 특성 (Dielectric and Piezoelectric Properties of Alkaline Lead-free Piezoceramic-epoxy Composites)

  • 윤창호;러득탕;허대준;안경관;이재신
    • 한국전기전자재료학회논문지
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    • 제25권6호
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    • pp.420-425
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    • 2012
  • Lead-free piezoelectric ceramic/epoxy composites with '0-3' connectivity were prepared by cold-pressing with a temperature controlled curing method. A ceramic powder with a composition of $(Na_{0.51}K_{0.47}Li_{0.02})(Nb_{0.8}Ta_{0.2})O_3$ was synthesized by a conventional solid state reaction route. The dielectric and piezoelectric properties of ceramic/epoxy composites were characterized as a function of the volume fraction (${\phi}$) of piezoelectric ceramics, which was varied from 70 to 95 vol%. The results indicated that the piezoelectric properties of composites were significantly affected by the volume fraction of ceramics. In terms of the piezoelectric properties, specimens showed the best performance at ${\phi}$= 85 vol%, resulting in the piezoelectric constant $d_{33}$ of 39 pC/N and the figure of merit as a piezoelectric energy harvester ($d_{33}{\cdot}g_{33}$) of 1.24 $pm^2/N$.

모드 순서 전환된 2자유도계 압전 진동 에너지 수확 장치의 수학적 모델 (Mathematical Model for a Mode-sequence Reversed Two-degrees-of-freedom Piezoelectric Vibration Energy Harvester)

  • 이소원;김윤영;김재은
    • 한국소음진동공학회논문집
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    • 제23권6호
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    • pp.546-552
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    • 2013
  • A cantilevered piezoelectric energy harvester(PEH) and an auxiliary mass-spring unit can be integrated into a novel two-degrees-of-freedom PEH where its lowest eigenmode is not an in-phase modes but an out-of-phase mode. This typical behavior was shown to enhance output power considerably compared with its stand-alone counterpart. The objective of this study is to newly develop a continuum-based mathematical model suitable for efficient analysis of the mode-sequence reversed PEH. Once such a mathematical model is available, various physical behaviors can be analytically investigated for better designs. After a new mathematical model is developed, its validity is checked by using ANSYS results, in terms of resonant frequency, open-circuit voltage, and output power with a specified external resistance.