• 제목/요약/키워드: Low-Band Active Suspension System

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

  • 홍예선;류시복;김영식
    • 한국자동차공학회논문집
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    • 제2권3호
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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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능동제어식 현가계의 유압 구동장치에 대한 단순화 모델 유도 (Deduction of a Simplified Model for the Hydraulic Actuator for a Low-band Type Suspension System)

  • 김동윤;홍예선;박영필
    • 한국자동차공학회논문집
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    • 제2권4호
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    • pp.27-38
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    • 1994
  • In this paper, a simplified model of a hydraulic actuator system for a low-band type active suspension system is derived. To reduce the order of model, time constants of each chamber in hydraulic system are neglected except that of an accumulator. And the dynamics of a spool in the pressure control valve is regarded as a first-order system. The step response and the frequency response of the simplified second-order simulation model exhibit a good agreement with those of the actual system as well as those of the tenth-order simulation model. It is possible to simplify the tenth-order model to the second-order one. The low-band type active suspension model is built up by combining of a quarter car model test rig to testify the validity of the simplified model. The experimental results of suspension characteristics show that the simplified second-order hydraulic actuator model is reasonable to describe the dynamics of the actual hydraulic actuator system for a low-band type active suspension system.

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승용차용 능동제어식 현가시스템의 개발(1) : 실험차량의 구성 (Development of an Active Suspension System for Passenger Cars( I ) : Construction of Prototype Car)

  • 홍예선;황요하;김동윤;김영범;심재진
    • 한국자동차공학회논문집
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    • 제2권2호
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    • pp.73-82
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    • 1994
  • Low-band type active suspension system is implemented on a passenger car. Level. roll, pitch and bouncing motion of body are controlled by a digital controller. Sky-hook damper is applied to control bouncing motion. This paper describes overall construction of the system, design of hydraulic system, sensor system, controller, and control scheme. Performance of prototype car has been evaluated on a test track and reported in the second paper.

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승용차용 능동제어식 현가시스템의 개발(2); 실차 성능실험 및 결과 (Development of an Active Suspension System for Passenger Cars( II ) ; Prototype Car Test Result)

  • 황요하;홍예선;이종민;배준영
    • 한국자동차공학회논문집
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    • 제2권2호
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    • pp.83-94
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    • 1994
  • Performance test result on prototype car equipped with low-band type active suspension system is reported. Control theory is explained first. Simulation for feasibility and parameter tuning, control module test using hydraulic exciter and test run, and performance evaluation of the test car on test track are reported successively. Emphasis was put on modification of control theory which caused many unexpected problems in actual implementation.

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LQG/LTR 설계방법을 이용한 자동차 현가장치 능동제어 (Automotive Active Suspension Design Using LQG/LTR Method)

  • 황재혁;박봉철;백승호
    • 소음진동
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    • 제3권4호
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    • pp.383-394
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    • 1993
  • An automotive suspension system generally behaves like a low frequency band-pass filter(0.5 - 10 Hz). Passengers are very sensitive to this frequency range in terms of ride quality and road holding ability. In this paper, a LQG/ LTR controller is suggested to improve the ride quality and road holding ability in the specified frequency rage. It has been found by numerical simulation that the ride quality and road holding ability can be improved in the frequency ranges of 0.5 - 3.0 Hz and 0.3 - 2.1 Hz respectively. In addition, a new approach using root locus to evaluate the stability robustness of the active suspension system is studied. It is shown that the stability robustness of the LQG/LTR controller designed in this paper is improved, compared to the passive system.

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