• Title/Summary/Keyword: Linear Motor Damper

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동흡진기를 이용한 유연 구조물의 강건제어 (Robust Control of Flexible Structure Using Dynamic Vibration Absorber)

  • 심상덕;강호식;정남희;장강석;김두훈;송오섭
    • 대한기계학회논문집A
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    • 제29권8호
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    • pp.1093-1101
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    • 2005
  • Hybrid mass damper systems have recently been introduced as a dynamic vibration absorber to exploit the benefits of both the conventional tuned mass damper system and the active control system. A hybrid system is programmed to function as either a conventional TMD or as an active system according to the wind conditions and the resultant building and damper mass vibration characteristics. This paper deals with the design of the robust controller for the control of the flexible box structure. The control algorithm was devised based on $H_2$(LQG) robust control logic with acceleration feedback and to improve the capability of the controller Kalman Filter was accepted for the system. To test the ability of the robust controller using the linear motor damper system, performance tests and simulations were carried out on the full-scale steel frame structure. Through the performance tests, it was confirmed that acceleration levels are reduced down.

Experimental verification of leverage-type stiffness-controllable tuned mass damper using direct output feedback LQR control with time-delay compensation

  • Chu, Shih-Yu;Yeh, Shih-Wei;Lu, Lyan-Ywan;Peng, Chih-Hua
    • Earthquakes and Structures
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    • 제12권4호
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    • pp.425-436
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    • 2017
  • Vibration control using a tuned mass damper (TMD) is an effective technique that has been verified using analytical methods and experiments. It has been applied in mechanical, automotive, and structural applications. However, the damping of a TMD cannot be adjusted in real time. An excessive mass damper stroke may be introduced when the mass damper is subjected to a seismic excitation whose frequency content is within its operation range. The semi-active tuned mass damper (SATMD) has been proposed to solve this problem. The parameters of an SATMD can be adjusted in real time based on the measured structural responses and an appropriate control law. In this study, a stiffness-controllable TMD, called a leverage-type stiffness-controllable mass damper (LSCMD), is proposed and fabricated to verify its feasibility. The LSCMD contains a simple leverage mechanism and its stiffness can be altered by adjusting the pivot position. To determine the pivot position of the LSCMD in real time, a discrete-time direct output-feedback active control law that considers delay time is implemented. Moreover, an identification test for the transfer function of the pivot driving and control systems is proposed. The identification results demonstrate the target displacement can be achieved by the pivot displacement in 0-2 Hz range and the control delay time is about 0.1 s. A shaking-table test has been conducted to verify the theory and feasibility of the LSCMD. The comparisons of experimental and theoretical results of the LSCMD system show good consistency. It is shown that dynamic behavior of the LSCMD can be simulated correctly by the theoretical model and that the stiffness can be properly adjusted by the pivot position. Comparisons of experimental results of the LSCMD and passive TMD show the LSCMD with less demand on the mass damper stroke than that for the passive TMD.

300마력급 초고속 전동기의 스러스트 자기 베어링/댐퍼 설계 및 특성해석 (Design and Analysis of Thrust Magnetic Bearing/Damper for 300HP Class High Speed Motor)

  • 장석명;최장영;박지훈;이용복;이희섭
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2007년도 춘계학술대회 논문집 전기기기 및 에너지변환시스템부문
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    • pp.5-7
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    • 2007
  • This paper deals with design and analysis of thrust magnetic bearing for 300HP class high speed motor. Using the solutions obtained from equivalent magnetic circuits, we predicts the electromagnetic characteristics such as thrust, time constant and power loss according to design parameters. And then, using non-linear finite element analysis, a detailed design is performed considering saturation in order to meet requirements.

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진동제어용 리니어 모터 탬퍼의 설계 및 특성 (Design and Characteristics of Linear Motor Damper for Vibration Control)

  • 장석명;정상섭;박해동;함상용;김병인
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2001년도 하계학술대회 논문집 B
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    • pp.880-882
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    • 2001
  • A moving-coil-type linear oscillatory actuator is consisted of the NdFeB permanent magnets with high specific energy as the stator, a coil-wrapped nonmagnetic hollow rectangular structure and an iron core as a pathway for magnetic flux. The inductance of moving coil and the push/pull effect is obtained from the permeance model of LOA with the open magnetic circuit. The analytical method are verified using the 2D finite element method.

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구조물 진동제어용 리니어 모터 탬퍼의 제작 및 특성 실험

  • 장석명;정상섭;이성호;함상용;김병인;박해동;정태영
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2001년도 추계학술대회 논문집 전기기기 및 에너지변환시스템부문
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    • pp.85-87
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    • 2001
  • Linear motor damper(LMD) for vibration control of structure is consisted of the NdFeB permanent magnets with high specific energy as the stator, a coil-wrapped nonmagnetic hollow rectangular structure and an iron core as a pathway for magnetic flux. The active mass of LMD is 1.5 ton and consisted of permanent magnet and iron yoke. In this paper, LMD system is manufactured and tested for dynamic characteristics and frequency response.

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제조공정용 Fast Back 이송장치 진동·소음 저감에 관한 연구 (A Study on Vibration & Noise Reduction of Fast Back Feeding Device for Manufacturing Process)

  • 한두희;이승훈;손영득
    • 한국산학기술학회논문지
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    • 제20권8호
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    • pp.642-648
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    • 2019
  • 본 논문은 스낵식품 가공 공정라인에서 사용하는 설비 중 하나로 이송물의 관성을 이용한 제조공정용 Fast Back 이송장치이다. 기존의 이송 장치는 벨트 컨베이어와 기계식 크랭크를 적용한 구동 장치로써 소음과 진동이 크고 환경 공해 발생하며 주기적인 유지보수가 필요하다. 이로 인해 본 논문에서는 제안하는 Fast Back 이송 장치는 크랭크식 구동장치 부분을 리니어 서보모터로 대체하고 가속에 따른 힘의 평형을 맞추기 위한 평형추 장치를 적용하여 안정된 동작을 확보하였다. 평형추 장치는 주기적으로 발생하는 충격형태의 가진력을 상쇄 시키는 것으로 진동해석을 통해 진동의 주요 원인을 파악하고 저감대책을 수립하였다. 시제품 제작을 통한 진동시험에서 약 10배 정도의 진동 저감에 대한 유효성을 검증하였다. 또한, PLC제어를 통한 전진과 후진에서의 속도, 가속도 조정을 가능하게 설계함으로써 직선형 구동력을 직접 발생시켜 별도의 기계적 변환장치가 필요하지 않아 에너지 손실이나 소음 및 진동을 발생시키지 않고 운전 속도에도 제한을 받지 않음을 증명하였다.