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    진동 각도에 따른 유니몰프 압전 캔틸레버의 발전특성연구 = Power Generation Characteristics of Uni-morph Piezoelectric Cantilever with Different Vibration Angle

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    https://www.riss.kr/link?id=A103660556

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Energy source of a piezo-electric harvester is vibration. Sources of vibration are machineries operated with high frequencies, con- structions and people operated with low frequencies and etc. In this study, we tried to figure out power generation properties over vibra-tions upon angles of a piezo-cantilever for applying them to movements of the construction and/or people, which are vibration sourcesat low frequencies. A uni-morph cantilever with a 59 mm × 29 mm × 0.2 mm piezo-electric element attached on a 71 mm × 46 mm × 0.25 mm copperplate was used. A spring was attached to the lower side of the cantilever and a mass was attached on the oppositeside. Also, a structure with a specific angle which is an angle in between the ground and the cantilever was prepared and then, connectedto a spring or the cantilever. Then, this structure was divided into the A-type and B-type and excited in the direction of z- axis. After that, the angle between the ground and the cantilever was changed and excited by 1 to 10 Hz upon the existence of a spring and/or a mass to compare power generation properties.
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    Energy source of a piezo-electric harvester is vibration. Sources of vibration are machineries operated with high frequencies, con- structions and people operated with low frequencies and etc. In this study, we tried to figure out power generation pro...

    Energy source of a piezo-electric harvester is vibration. Sources of vibration are machineries operated with high frequencies, con- structions and people operated with low frequencies and etc. In this study, we tried to figure out power generation properties over vibra-tions upon angles of a piezo-cantilever for applying them to movements of the construction and/or people, which are vibration sourcesat low frequencies. A uni-morph cantilever with a 59 mm × 29 mm × 0.2 mm piezo-electric element attached on a 71 mm × 46 mm × 0.25 mm copperplate was used. A spring was attached to the lower side of the cantilever and a mass was attached on the oppositeside. Also, a structure with a specific angle which is an angle in between the ground and the cantilever was prepared and then, connectedto a spring or the cantilever. Then, this structure was divided into the A-type and B-type and excited in the direction of z- axis. After that, the angle between the ground and the cantilever was changed and excited by 1 to 10 Hz upon the existence of a spring and/or a mass to compare power generation properties.

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    참고문헌 (Reference)

    1 김창일, "압전 캔틸레버 구조와 차량하중 전달방법에 따른 도로용 에너지 하베스터의 설계 및 평가" 한국전기전자재료학회 25 (25): 773-778, 2012

    2 김창일, "압전 캔틸레버 구조를 이용한 도로용 에너지 하베스터의 개발 및 평가" 한국전기전자재료학회 25 (25): 511-515, 2012

    3 백종후, "매설방법과 차량하중에 따른 벤더형 압전에너지 하베스터의 설계 및 평가" 한국전기전자재료학회 29 (29): 274-278, 2016

    4 김창일, "도로용 압전발전발판 설계 및 발전특성 평가" 한국전기전자재료학회 24 (24): 554-558, 2011

    5 J. H. Ryu, "Ubiquitous magneto-mechano-electric generator" 8 : 2402-2408, 2015

    6 J. Kymissis, "Power Harvesting in Shoes" 132 (132): 1998-,

    7 S. Roundy, "On the effectiveness of vibration based energy harvesting" 16 : 2005

    8 V. Annapureddy, "Low-loss piezoelectric single-crystal fibers for enhanced magnetic energy harvesting with magnetoelectric composite" 2016

    9 T. Starner, "Human-powered Wearable Computing" 35 : 618-629, 1996

    10 A. Romero, "Energy scavenging sources for biomedical sensors" 30 : 35-36, 2009

    1 김창일, "압전 캔틸레버 구조와 차량하중 전달방법에 따른 도로용 에너지 하베스터의 설계 및 평가" 한국전기전자재료학회 25 (25): 773-778, 2012

    2 김창일, "압전 캔틸레버 구조를 이용한 도로용 에너지 하베스터의 개발 및 평가" 한국전기전자재료학회 25 (25): 511-515, 2012

    3 백종후, "매설방법과 차량하중에 따른 벤더형 압전에너지 하베스터의 설계 및 평가" 한국전기전자재료학회 29 (29): 274-278, 2016

    4 김창일, "도로용 압전발전발판 설계 및 발전특성 평가" 한국전기전자재료학회 24 (24): 554-558, 2011

    5 J. H. Ryu, "Ubiquitous magneto-mechano-electric generator" 8 : 2402-2408, 2015

    6 J. Kymissis, "Power Harvesting in Shoes" 132 (132): 1998-,

    7 S. Roundy, "On the effectiveness of vibration based energy harvesting" 16 : 2005

    8 V. Annapureddy, "Low-loss piezoelectric single-crystal fibers for enhanced magnetic energy harvesting with magnetoelectric composite" 2016

    9 T. Starner, "Human-powered Wearable Computing" 35 : 618-629, 1996

    10 A. Romero, "Energy scavenging sources for biomedical sensors" 30 : 35-36, 2009

    11 N. S. Shenck, "Energy Scavenging with Shoe-mounted Piezoelectrics. Micro" 21 (21): 30-42, 2001

    12 S. Priya, "Energy Harvesting Technologies" Springer 3-39, 2009

    13 P. D. Mitcheson, "Energy Harvesting From Human and Machine Motion for Wireless Electronic Devices" 96 (96): 1457-1486, 2008

    14 C. I. Kim, "Development and evaluation of self-powered energh harvester in wireless sensor node for diagnosis of electric power system" 25 (25): 371-376, 2016

    15 J. A. Paradiso, "A Compact, Wireless, Self-Powered Pushbutton Controller" 299 (299): 2001-,

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    연월일 이력구분 이력상세 등재구분
    2022 평가 계속평가 신청대상 (계속평가)
    2021-12-01 등재 등재후보로 하락 (재인증) KCI등재후보
    2018-01-01 등재 등재학술지 선정 (계속평가) KCI등재
    2017-12-01 등재 등재후보로 하락 (계속평가) KCI등재후보
    2013-01-01 등재 등재 1차 FAIL (등재유지) KCI등재
    2010-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2008-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2005-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    2004-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2002-07-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
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    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.22 0.22 0.16
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
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