• Title/Summary/Keyword: 댐핑 피스톤

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가변댐퍼의 성능해석

  • 최용빈;박우철;최승복;정재천
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 1992.04a
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    • pp.227-231
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    • 1992
  • 본 연구에서는 ER(electro-rheological) 유체을 이용한 가변댐퍼(variable damper)를 제안했다. 전기장(electric field) 부하시 Bingham특성을 갖는 ER유체는 전기장에따라 항복전단응력이 변하기 때문에이를 이용하여 댐핑력을 제어할 수 있다. 피스톤의 상하압력차가 전기장의 함수이기 때문에 기존의 비능동 혹은 능동형 댐퍼에서 필요로하는 복잡한 밸브시스템이 필요없으며, 따라서 구조면에서 매우 간단하게 설계될 수 있고, 반응시간 또한 매우 빠르다. 간단한 현가정치 모델을 설정 하여제안된 ER 댐퍼의 효율성과 우수성을 주파수 및 시간 영역에서 해석하였다.

Development of a Direct-Operated Proportional Pressure Reducing Valve for Low-Band Type Active Suspension Control (Low-Band Type 능동형 현가제어를 위한 직동식 전자비례 감압밸브의 개발)

  • 홍예선;류시복;김영식
    • Transactions of the Korean Society of Automotive Engineers
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    • v.2 no.3
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    • pp.75-84
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    • 1994
  • In general direct-operated pressure reducing valves have been gardly applied to a dynamic control system such as active suspension control because of their poor control stability. But they are more robust than pilot-operated type and do not need pilot control flow. In this paper development of a new direct-operated proportional pressure reducing valve for low-band type active suspension control is reported. By means of a special damper directly linked to the valve spool, the control stability could be effectively improved without drawback in response time. The linearity error was less than $\pm$3.5%. Applied to an experimental active suspension system the new valve showed the $-90^{\circ}$ phase delay at 4Hz with 20% sinusoidal signal input and could control the suspension system with almost same performance as that with a pilot-operated type valve.

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Optimal Design of New Magnetorheological Mount for Diesel Engines of Ships (선박용 디젤엔진을 위한 새로운 MR 마운트의 최적설계)

  • Do, Xuan-Phu;Park, Joon-Hee;Woo, Jae-Kwan;Choi, Seung-Bok
    • Transactions of the Korean Society for Noise and Vibration Engineering
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    • v.23 no.3
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    • pp.209-217
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    • 2013
  • This paper presents an optimal design of a magnetorheological(MR) fluid-based mount(MR mount) that can be used for to vibration control in diesel engines of ships. In this work, a mount that uses mixed-modes(squeeze mode, flow mode, and shear mode) is proposed and designed. To determine the actuating damping force of the MR mount required for efficient vibration control, the excitation force from a diesel engine is analyzed. In this analysis, a model of a V-type engine is considered. The relationship between the velocity and pressure of gas in terms of the torque acting on the piston is derived. Subsequently, by integrating the field-dependent rheological properties of commercially available MR fluid with the excitation force, the appropriate size of the MR mount is designed. In addition, to achieve the maximum actuating force under geometric constraints, design optimization is undertaken using the ANSYS parametric design language software. Through magnetic density analysis, optimal design parameters such as the bottom gap and radius of coil are determined.

Optimal Design of New MR Mount for Diesel Engine of Ship (선박디젤엔진을 위한 새로운 MR 마운트의 최적설계)

  • Do, Xuan-Phu;Park, Joon-Hee;Woo, Jae-Kwan;Choi, Seung-Bok
    • Proceedings of the Korean Society for Noise and Vibration Engineering Conference
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    • 2012.10a
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    • pp.93-99
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    • 2012
  • This paper presents an optimal design of magnetorheological (MR) fluid based mount (MR mount in short) which can be applicable to vibration control of diesel engine of ship. In this work, a mixed - mode including squeeze mode, flow mode and shear mode is proposed and designed. In order to determine actuating damping force of MR mount required for efficient vibration control, excitation force from diesel engine is analyzed. In this analysis, a model of V-type engine is considered and the relationship between velocity and pressure of gas in torque of the piston is derived. Subsequently, by integrating the field-dependent rheological properties of commercially available MR fluid with the excitation force an appropriate size of MR mount is designed. In addition, in order to achieve maximum actuating force with geometric constraints design optimization is undertaken using ANSYS software. Through the magnetic density analysis, optimal design parameters such as bottom gap and radius of coil are determined.

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