• Title/Summary/Keyword: 위치 감지 소자

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Multi-Degree-of-Freedom Displacement Measurement of a Rigid Body Using a Diffraction Grating as a Cooperative Target (회절 격자 표식을 이용한 강체의 다자유도 변위 측정)

  • Kim, Jong-Ahn;Bae, Eui-Won;Kim, Kyung-Chan;Kim, Soo-Hyun;Kwak, Yoon-Keun
    • Proceedings of the KSME Conference
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    • 2000.04a
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    • pp.415-419
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    • 2000
  • Multi-degree-of-freedom (MDOF) displacement measurement Is needed In many application fields: precision machine control, precision assembly, vibration analysis, and so on. This paper presents a new MDOF displacement measurement method using a laser diode (LD), two position-sensitive detectors (PSDs), and a conventional diffraction grating. It utilizes typical features of a diffraction grating to obtain the information of MDOF displacement. MDOF displacement is calculated from the independent coordinate values of the diffracted ray spots on the PSDs. Forward and inverse kinematic problems were solved to compute the MDOF displacement of a rigid body. Experimental results show maximum absolute errors of less than ${\pm}10$ micrometers in translation and ${\pm}30$ arcsecs in rotation.

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Sol-Gel법으로 제조한 $TiO_2$ 박막의 전기적 특성

  • 이병수;이덕출
    • Proceedings of the Korean Vacuum Society Conference
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    • 2000.02a
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    • pp.110-110
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    • 2000
  • Sol-Gel법은 산화물 전구체(precursor) 상태인 Sol상태로부터 가수분해, 중, 축합반응을 거쳐 최종적으로 Gel 산화물을 합성하는 방법이며 기존의 세라믹스를 합성할 수 있고 고순도의 균질한 화합물을 용이하게 얻을 수 있는 특징이 있다. 최근 전자부품이 소형, 경량화되는 추세에 따라 전자 세라믹스분야에서도 박막화가 대두되고 있는 가운데 Sol-Gel법은 dipping, spining 및 spray 법등을 이용하여 박막의 제작이 가능하며 CVD, PVD, sputtering 법등과 같은 박막제작에 비하여 장비가 복잡하지 않으면서 제작기법이 간단한 이점을 가지고 있다. 소재면에서 볼 때 TiO2 물질은 물리적, 화학적으로 안정하고 굴절율, 착샐율 및 반사율 등이 우수한 재료로서 세라믹스 콘센서, 압전소자, 습도센서와 가스센서분야등에 있어서 중요한 위치를 점하고 있어서 연구자들에게 많은 관심을 가지게 하였다. 본 연구에서는 Sol-Gel법에 의해 TiO2 Sol을 합성한 후 dipping 법으로 박막을 제작하고 박막의 전기전도 특성 및 습도센서소재로의 개발을 위해 습도감지특성에 주목하였고 경시변화로 인해 생성된 Gel powder의 물성에 대해서도 검토하였다.

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도파로 모드와 결합된 측면연마형 광섬유 SPR 센서

  • An, Jae-Heon;Seong, Tae-Yeon;Kim, Won-Mok;Lee, Gyeong-Seok
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.305-305
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    • 2011
  • 표면 플라즈몬 공진(SPR) 현상을 이용한 광섬유 센서는 SPR 센서의 우수한 표면 민감도, 비표지 검출능 등의 특징은 유지하면서 측정시스템이 단순해지고 저렴하게 제작이 가능하며 원거리 검출에 유리하다는 장점으로 많은 연구가 진행되고 있다. 최근 스택 제어가 용이하고 민감도 또한 우수하다는 이유로 측면 연마형 센서 구조를 적용한 연구가 많이 이루어지고 있다. 본 연구에서는 기존 Kretchman형태의 SPR 센서의 분해능 향상을 위해 사용된 광도파로 구조를 측면 연마형 광파이버에 적용시켰다. 금속 층 / 유전체 층 / 금속 층으로 구성되어 있는 광도파로 구조와 Au 단일 층을 사용한 기존 구조에 대한 이론 전사모사를 진행하고 실물 소자를 제작하여 특성을 평가하였다. WCSPR 센서에서는 두 개의 반사율 dips이 나타난다. 하나는 단파장영역에서 나타나는 폭이 작은 형태이며 또 다른 하나는 장파장영역에서 나타나는 폭이 넓은 형태이다. 단파장에서의 dip은 입사각에 크게 영향을 받지 않기 때문에 Wavelength interrogation mode을 이용하는 광섬유 SPR센서에 적용할 경우 분해능이 향상될 것 이다. WCSPR 센서는 도파로의 유전체층에서 진행되는 모드를 이용하면 Self-referencing을 할 수 있다, 또한 유전체 층의 두께를 변화 시켜 중심파장의 위치를 조절할 수 있는 특징을 갖고 있다. 결과적으로 광도파로 구조를 광파이버에 적용시켜 기존 Au 단일 층 구조의 SPR 센서에 비해 좀 더 정확하고 광범위한 감지를 할 수 있다.

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Local/Global Structural Health Monitoring System Using Piezoelectric Sensors (압전센서를 이용한 구조물 국부/광역 손상 진단 시스템)

  • Kim, Byung-Soo;Kwon, Hyeok-Sang;Kim, Jin-Wook;Roh, Yong-Rae
    • The Journal of the Acoustical Society of Korea
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    • v.28 no.4
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    • pp.308-317
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    • 2009
  • In the present work, a sensor system composed of an oscillator sensor and a Lamb wave sensor is proposed for the purpose of structural health monitoring. The oscillator sensing system detecting the shift of a structural resonant frequency in proportion to the amount of defects in the structure is a pretty sensitive and simple device, but its detectable range is limited to its local zone. The Lamb wave sensor system, however, is applicable to global detection of the defects. This study is aimed at investigating the feasible combination of the two systems to exploits their merits simultaneously. The scheme to use PZT patches as the oscillator sensor as well as the Lamb wave sensor was proposed to identify the position, length and number of cracks by means of TOF and amplitude of signals, and its validity was confirmed through experiments.

Optical Line Monitoring System Using Optical Cable Closure (광케이블 접속함체를 이용한 광선로 감시시스템)

  • Jung, So-Ki;Chae, Woong-Sik
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.38A no.7
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    • pp.592-602
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    • 2013
  • The purpose of this study is to optical cable closure and fiber line monitoring system. The current optical cable closure cases have not had any systems that help the central control station recognize opening as well as closing the cases in real-time when opening B2B and B2C lines. to solve this problem, it is considered to create systems that go off alarms, real-time fault location immediately, set alarms for open and close monitoring optical cable closure, and inspect regularly whether optical cables are deficient when monitoring the optical line in real-time and cutting them, in this paper, the monitoring system whose the central control station finds an optical signal block immediately and goes off the alarms when line workers separate components like a connector or a tray from the optical cable closure through OTDR. this study can contribute to stabilize the network quality through the quick and effective operation of the cables.

Development of Smart Active Layer Sensor (II): Manufacturing and Application (스마트 능동 레이어 센서 개발 (II): 저작 및 적용 연구)

  • Lee, Young-Sup;Lee, Sang-Il;Kwon, Jae-Hwa;Yoon, Dong-Jin
    • Journal of the Korean Society for Nondestructive Testing
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    • v.24 no.5
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    • pp.476-486
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    • 2004
  • This paper is the second part of the study on the development of a smart active layer (SAL) sensor, which consists of two parts. As mentioned in the first paper, structural health monitoring (SHM) is a new technology that is being increasingly applied at the industrial field as a potential approach to improve cost and convenience of structural inspection. Recently, the development of smart sensor is very active for real application. This study has focused on preparation and application study of SAL sensor which is described with regard to the theory and concept of the SAL sensor in the first paper. In order to detect elastic wave, smart piezoelectric sensor, SAL, is fabricated by using a piezoelectric element, shielding layer and protection layer. This protection layer plays an important role in a patched network of distributed piezoelectric sensor and shielding treatment. Four types of SAL sensor are designed/prepared/tested, and these details will be discussed in the paper In this study, SAL sensor ran be feasibly applied to perform structural health monitoring and to detect damage sources which result in elastic waves.

Construction of Current Sensor Using Hall Sensor and Magnetic Core for the Electric and Hybrid Vehicle (홀소자와 자기코어를 이용한 하이브리드 및 전기자동차용 전류센서 제작)

  • Yeon, Kyoheum;Kim, Sidong;Son, Derac
    • Journal of the Korean Magnetics Society
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    • v.23 no.2
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    • pp.49-53
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    • 2013
  • A current sensor is one of important component which is used for the electrical current measurement during charge and discharge of the battery, and monitoring system of the motor controller in the electric and hybrid vehicle. In this study, we have developed an open loop type current sensor using GaAs Hall sensor and magnetic core has an air gap. The Hall sensor detect magnetic field produced by the current to be measured. The 3 mm air gap core was made by HGO electrical steel sheets after slitting, winding, annealing, molding, and cutting. Developed current sensor shows 0.03 % linearity within DC current range from -400 A to +400 A. Operating temperature range was extended to the range of $-40{\sim}105^{\circ}C$ using temperature compensating electronic circuit. To Improve frequency bandwidth limit due to the air flux of PCB (Printed Circuit Board) and Hall sensor, We employed an air flux compensating loop near Hall sensor or on PCB. Frequency bandwidth of the sensor was 100 kHz when we applied sine wave current of $40A{\cdot}turn$ in the frequency range from 100 Hz to 100 kHz. For the dynamic response time measurement, 5 kHz square wave current of $40A{\cdot}turn$ was applied to the sensor. Response time was calculated time reach to 90 % of saturation value and smaller than $2{\mu}s$.