• 제목/요약/키워드: Two-Axes Driving System

검색결과 23건 처리시간 0.021초

퍼지제어를 이용한 태양광 추적시스템의 고효율 제어 (High Efficiency Control of Solar Tracking System using Fuzzy Control)

  • 정병진;고재섭;최정식;김도연;정동화
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2008년도 학술대회 논문집 정보 및 제어부문
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    • pp.243-244
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    • 2008
  • In this paper proposed the solar tracking system to use a fuzzy based on PC in order to increase an output of the PV array. The solar tracking system operated two DC motors driving by signal of photo sensor. The control of dual axes is not an easy task due to nonlinear dynamics and unavailability of the parameters. The fuzzy control made a nonlinear dynamics to well perform and had a robust and highly efficient characteristic about a parameter variable as well as a nonlinear characteristic. In this paper designed a fuzzy controller for improving output of PV array and evaluated comparison with efficient of conventional PI controller. The data which were obtained by experiment were able to show a validity of the proposed controller.

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태양 추적시스템을 위한 PC 기반의 퍼지제어기 설계 (Fuzzy Controller Design of PC Based for Solar Tracking System)

  • 정동화;최정식;고재섭
    • 조명전기설비학회논문지
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    • 제22권5호
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    • pp.86-94
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    • 2008
  • 본 논문은 PV(Photovoltaic) 어레이의 출력을 높이기 위해 PC 기반의 퍼지제어를 이용한 태양추적 시스템을 제안한다. 태양 추적시스템은 광센서의 신호에 의해 구동하는 두 개의 DC 모터로 동작한다. 두 축의 제어는 파라미터의 불확실성 및 비선형 특성 때문에 쉽지 않다. 최근 퍼지제어, 신경회로망 및 유전자 알고리즘 등의 인공지능 제어에 대한 연구가 많이 이루어지고 있다. 그 중 퍼지제어는 비선형 제어를 원활하게 수행할 수 있으며 파라미터 변동 및 비선형 특성에 대한 강인성 및 고성능의 특징을 가지고 있다. 따라서 퍼지제어는 설정된 오차 값과 비선형의 고도각 및 방위각 오차 값을 비교하여 추적 시스템 구동을 위해 사용된다. 본 논문에서는 PV 어레이의 출력 향상을 위해 퍼지제어기를 설계하고 종래의 Pl 제어기와 성능을 비교하며 평가한다. 실험을 통한 데이터는 제시한 제어기의 타당성을 입증한다.

호흡기류 계측모듈의 교정과 성능 비교를 위한 실용적인 표준기류 생성 시스템 (A Practical standard Air Flow Generator System to Calibrate and Compare Performance of Two Different Respiratory Air Flow Measurement Modules)

  • 이인광;박미정;이상봉;김경옥;차은종;김경아
    • 대한의용생체공학회:의공학회지
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    • 제36권4호
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    • pp.115-122
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    • 2015
  • A standard air flow generator system was developed to generate air flows of various levels simultaneously applied to two different air flow transducer modules. Axes of two identical standard syringes for spirometer calibration were connected with each other and driven by a servo-motor. Linear displacement transducer was also connected to the syringe axis to accurately acquire the volume change signal. The user can select either sinusoidal or square waveform of volume change and manually input any volume as well as maximal flow rate levels ranging 0~3 l and 0~15 l/s, respectively. Various volume and flow levels were input to operate the system, then the volume signal was acquired followed by numerical differentiation to obtain the air flow signal. The measured volumes and maximal air flow rates were compared with the user input data. The relative errors between the user-input and the measured stroke volumes were all within 0.5%, demonstrating very accurate driving of the system. In case of the maximal flow rate, relatively large error was observed when the syringe was driven very fast within a very short time duration. However, except for these few data, most measured flow rates revealed relative errors of approximately 2%. When the measure and user-input stroke volume and maximal flow rate data were analyzed by linear regression analysis, respectively, the correlation coefficients were satisfactorily higher than 0.99 (p < 0.0001). These results demonstrate that the servo-motor controls the syringes with enough accuracy to generate standard air flows. Therefore, the present system would be very much practical for calibration process as well as performance evaluation and comparison of two different air flow transducer modules.