• 제목/요약/키워드: PVDF vibration sensor

검색결과 44건 처리시간 0.032초

Force identification by using specific forms of PVDF patches

  • Chesne, Simon;Pezerat, Charles
    • Smart Structures and Systems
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    • 제15권5호
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    • pp.1203-1214
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    • 2015
  • This paper deals with the experimental validation of the use of PVDF Patches for the assessment of spatial derivatives of displacement field. It focuses more exactly on the shear Force Identification by using Specific forms of PVDF patcHes (FISH) on beams. An overview of the theoretical approach is exposed. The principle is based on the use of the weak form of the equation of motion of the beam which allows the shear forces to be extracted at one edge of the sensor when this last has a specific form. The experimental validation is carried out with a cantilever steel beam, excited by a shaker at its free boundary. The validation consists in comparing the shear force measured by the designed sensor glued at the free edge and the directly measured force applied by the shaker. The sensor is made of two patches, called the "stiffness" patch and the "mass" patch. The use of both patches allows one to identify correctly the shear force on a large frequency domain. The use of only the stiffness patch is valid in the low frequency domain and has the advantage to have a frequency-independent gain that allows its use in real time.

부분적으로 유체가 채워진 원통형 관내의 외팔보 진동해석 (Vibration Analysis of an Cantilever Beam in Partially Liquid-Filled Cylindrical Pipe)

  • 권대규;유계형;방두열;이성철
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2003년도 춘계학술대회논문집
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    • pp.1073-1078
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    • 2003
  • This paper presents the vibration characteristics of a cantilever beam in contact with a fluid using a PZT actuator and PVDF film. dynamic behaviors of a flexible beam-water interaction system are examined. The effect of the liquid level on free vibration of the composite beam in a partially liquid-filled circular cylinder is investigated. The coupled system is subject to an undisturbed boundary condition un the fluid domain. In the vibration analysis of a wetted beam. the decoupled analyses between beam and fluid have been conventionally employed by considering first the composite beam vibration in the all and secondly Performing the correction taking account for surrounding fluid effects. That is, this investigation was to look at how natural frequencies, mode shapes. and damping are affected by liquid level variations. The signals from the sensor according to the applied input voltage are digitalized and filtered in order to obtain the dynamic characteristics of the composite beam in contact with fluid. It was found that the coupled natural frequencies decreased with the fluid level for the identical composite beam due to added mass effect. In case of the free-free boundary condition, the natural frequency gently decreased at fluid water level between 20% and 80% in the first tending mode and we found out the bends of stair shape for added mass effect of the fluid.

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Vibration Correlation Technique을 이용한 내부 압력을 받는 금속재 단순 원통 구조의 비파괴적 전역 좌굴 하중 예측 (Nondestructive Buckling Load Prediction of Pressurized Unstiffened Metallic Cylinder Using Vibration Correlation Technique)

  • 전민혁;공승택;조현준;김인걸;박재상;유준태;윤영하
    • 한국항공우주학회지
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    • 제50권2호
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    • pp.75-82
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    • 2022
  • 내부 압력과 압축하중을 받는 발사체 추진제 탱크 구조의 좌굴 하중을 비파괴적으로 예측할 수 있는 기법이 필요하다. 기하학적 초기 결함이 존재하는 단순 원통 구조의 전역 좌굴 하중은 좌굴이 발생하지 않는 범위에서의 고유진동수-압축하중의 상관관계를 이용한 Vibration correlation technique (VCT)을 사용하여 비파괴적으로 예측 가능하다. 본 연구에서는 내부 압력과 압축하중을 동시에 받는 추진제 탱크 구조 형태인 얇은 금속재 단순 원통 구조의 진동 및 좌굴 시험을 수행하였고 VCT를 이용하여 전역 좌굴 하중을 예측하였다. 두께가 얇은 구조의 진동 시험을 위해 스피커를 이용한 비접촉식 가진 방법을 이용하였고 응답은 고분자 압전 센서(PVDF)로 측정하였다. VCT로 예측된 전역 좌굴 하중을 좌굴 시험에서 측정된 좌굴 하중과 비교하여 비파괴적 전역 좌굴 하중 예측 기법을 검증하였다.

지능판에 동위치화된 압전 센서-액추에이터의 응답특성 연구 (Response between Collocated Sensor and Actuator Bonded on a Smart Panel)

  • 이영섭
    • 한국소음진동공학회논문집
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    • 제17권3호
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    • pp.264-273
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    • 2007
  • A smart panel with structural sensors and actuators for minimizing noise radiation or transmission is described in the paper with the concept of active structural acoustical control. The sensors and actuators are both quadratically shaped piezoelectric polyvinylidene fluoride(PVDF) Polymer films to implement a volume velocity sensor and uniform force actuator respectively. They are collocated on either side of the panel to take advantage of direct velocity feedback(DVFB) strategy, which can guarantee a robust stability and high performance as long as the sensor-actuator response is strictly positive real(SPR). However, the measured sensor-actuator response of the panel showed unexpected result with non-SPR property. In the paper, the reason of the non-SPR property is investigated by theoretical analysis, computer simulation and experimental verification. The investigation reveals that the arrangement of collocated piezoelectric PVDF sensor and actuator pair on a panel is not relevant to get a high feedback gain and good performance with DVFB strategy.

In-vitro 유동장에서 진동형 폐 보조장치를 이용한 산소전달 효율의 향상 (Enhancement of Oxygen Transfer Efficiency Using Vibrating lung Assist Device in In-Vitro Fluid Flow)

  • 권대규;김기범;이삼철;정경락;이성철
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2003년도 춘계학술대회 논문집
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    • pp.1332-1335
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    • 2003
  • This paper presents the enhancement of oxygen transfer efficiency using the vibrating intravascular lung assist device (VIVLAD) in in-vitro experiments for patients having chronic respiratory problems. The test section was a cylinder duct with the inner diameter of 30 mm. The flow rate was controlled by the pump and monitored by a built-in flow meter. The vibration apparatus was composed of a piezo-vibrator, a function generator. and a power amplifier. The direction of vibration was radial to the fluid flow. Gas flow rates of up to 6 l/min through the 120-cm-Jong hollow fibers have been achieved by exciting a piezo-vibrator. The output of PVDF sensor were investigated by various frequencies in VIVLAD. The experimental results showed that VIVLAD would be enhance oxygen transfer efficiency.

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Vibration Control of a Intelligent Cantilevered Beam with a Distributed PVDF Sensor and PZT Actuator

  • Yun, Yeo-Hung;Kwon, Tae-Kyu;Lee, Seong-Cheol;Yu, Kee-Ho
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2001년도 ICCAS
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    • pp.22.5-22
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    • 2001
  • Robust control of a GFR composite beam with a distributed PVDF sensor and piezo-ceramic actuator is presented En this paper. Modal analysis method and modal coordinates are introduced to obtain the state educations of the structural system. 1st and 2nd natural frequencies are considered In the modeling, because robust control theory which is robustness to structured uncertainty is adopted to suppress the vibration. If the controllers designed by H$\^$$\infty$/ theory do not satisfy control performance, it is improved by ${\mu}$-synthesis method with D-K Iteration so that the ${\mu}$-controller based on the structured singular value satisfies the nominal performance and robust performance.

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압전 감지기/작동기를 포함하는 셀 요소의 개발 (Development of Shell Element to Analyze an Intelligent Structure with Piezoelectric Sensor/Actuator)

  • 황우석;고성현;박현철
    • 한국소음진동공학회논문집
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    • 제13권3호
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    • pp.225-231
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    • 2003
  • A new three-dimensional thin shell element for a structure containing an integrated distributed piezoelectric sensor and actuator is Proposed. The assumed strain formulation and the bubble function are introduced to improve the performance of the shell element. A finite element formulation gives a general tool that can predict the static or dynamic responses of the shell with piezoelectric sensor/actuator. The verification through the calculation of the static response for the piezoelectric bimorph beam shows that the results agree with those from the theoretical analysis very well. Dynamic response of a shell shows that the reduction of vibration is possible with the introduction of the piezoelectric shell sensor and actuator. However. the curvature of sensor/actuator is an obstacle for application, since the flexible PVDF is not strong enough and the PZT with curvature should be made specially.

Active Vibration Control of Composite Shell Structure using Modal Sensor/Actuator System

  • Kim, Seung-Jo;Hwang, Joon-Seok;Mok, Ji-Won
    • International Journal of Aeronautical and Space Sciences
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    • 제7권1호
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    • pp.106-117
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    • 2006
  • The active vibration control of composite shell structure has been performed with the optimized sensor/actuator system. For the design of sensor/actuator system, a method based on finite element technique is developed. The nine-node Mindlin shell element has been used for modeling the integrated system of laminated composite shell with PVDF sensor/actuator. The distributed selective modal sensor/actuator system is established to prevent the effect of spillover. Electrode patterns and lamination angles of sensor/actuator are optimized using genetic algorithm. Continuous electrode patterns are discretized according to finite element mesh, and orientation angle is encoded into discrete values using binary string. Sensor is designed to minimize the observation spillover, and actuator is designed to minimize the system energy of the control modes under a given initial condition. Modal sensor/actuator for the first and the second mode vibration control of singly curved cantilevered composite shell structure are designed with the method developed on the finite element method and optimization. For verification, the experimental test of the active vibration control is performed for the composite shell structure. Discrete LQG method is used as a control law.

Polyvinylidene Fluoride 진동센서를 이용한 코골이 검출 (Snoring Detection using Polyvinylidene Fluoride Vibration Sensors)

  • 지덕근;위연;김희선;임재중
    • 감성과학
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    • 제14권3호
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    • pp.459-466
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    • 2011
  • 코골이 및 수면 무호흡증 등의 수면 질환은 정신적, 육체적 피로감을 유발하고 정상적인 활동에 심각한 영향을 미치고 있다. 코골이는 공기가 좁아진 기도를 통과할 때 진동에 의해서 일어나는 호흡잡음이고, 수면 무호흡은 기도 주변의 조직이 이완됨에 따라 기도가 일시적으로 막히게 될 때 일어나는 현상이다. 이러한 문제를 해결하기 위해 수면 중 코골이를 검출하고 이를 경감하려는 많은 시도가 이루어져왔다. 본 연구에서는 수면 중 코골이 신호의 검출에 있어서 오류가 발생되는 원인인 주변 잡음이나 기타 영향을 제거하기 위한 새로운 센싱 시스템과 분석 알고리즘의 개발을 수행하였다. 센싱 시스템은 베개 내부에 내장되는 두 개의 polyvinylidene fluoride (PVDF) 진동 센서를 포함하고 있으며 검출되는 신호를 수집, 저장하는 하드웨어부와 코골이 신호를 판단하는 신호처리부로 이루어졌다. 베개에 내장되는 PVDF 센서 중 제 1센서는 코골이 신호를 검출하고 제 2센서는 코골이 신호 및 주변의 잡음을 검출한다. 본 실험에는 10명의 피험자가 참여하였으며 수면 중 잡음이 발생할 수 있는 다양한 환경 조건 하에서 신호를 검출하여 분석하였다. 그 결과 다양한 잡음환경 하에서 코골이 신호가 코골이가 아닌 잡음에 비해 약 70% 이상의 에너지 값을 가지는 것을 확인하였고 이를 통해 잡음으로부터 코골이 신호를 정확하게 검출하는 것을 확인하였다. 본 연구의 결과는 수면 중 발생하는 코골이의 경감을 위한 베개의 개발과 정량적인 수면상태 평가를 통해 건강한 수면 환경을 제시할 수 있는 숙면 유도 시스템의 개발에도 활용될 것이다.

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PVDF 압전소자를 이용한 심장박동 및 호흡수 동시측정센서개발 (Development of New Stacked Element Piezoelectric Polyvinylidene Fluoride Pressure Sensor for Simultaneous Heartbeat and Respiration Measurements)

  • 박창용;권현규;이소진;롱원만
    • 한국기계가공학회지
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    • 제18권4호
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    • pp.100-108
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    • 2019
  • In this paper, a new stacked element pressure sensor has proposed for heartbeat and respiration measurement. This device can be directly attached to an individual's chest; heartbeat and respiration are detected by the pulsatile vibration and deformation of the chest. A key feature of the device is the simultaneous measurement of heart rate and respiration. The structure of the sensor consists of two stacked elements, in which one element includes one polyvinylidene fluoride (PVDF) thin film bonded on polydimethylsiloxane (PDMS) substrate. In addition, for the measurement and signal processing, the electric circuit and the filter are simply constructed with an OP-amp, resistance, and a capacitor. One element (element1, PDMS) maximizes the respiration signal; the other (element2, PVDF) is used to measure heartbeat. Element1 and element2 had sensitivity of 0.163V/N and 0.209V/N, respectively, and element2 showed improved characteristics compared with element1 in response to force. Thus, element1 and element2 were optimized for measuring respiration heart rate, respectively. Through mechanical and vivo human tests, this sensor shows the great potential to optimize the signals of heartbeat and respiration compared with commercial devices. Moreover, the proposed sensor is flexible, light weight, and low cost. All of these characteristics illustrate an effective piezoelectric pressure sensor for heartbeat and respiration measurements.