• 제목/요약/키워드: 휠 슬립 제어

검색결과 13건 처리시간 0.02초

고슬립을 이용한 6 륜구동/6 륜조향 차량 고장 안전 주행 제어 (Fault-Tolerant Driving Control of Independent Steer-by-Wire System for 6WD/6WS Vehicles Using High Slip)

  • 나재원;김원균;이경수;이종석;이대옥
    • 대한기계학회논문집A
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    • 제37권6호
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    • pp.731-738
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    • 2013
  • 본 논문은 6 륜 독립구동/독립조향 차량의 독립 스티어-바이-와이어 장치의 고장 안전 주행 제어방법을 제시하였다. 조향부 고장 휠의 횡방향 타이어 힘이 차량 선회 운동에 저항력으로 작용할 수 있으므로, 이를 줄이기 위하여 본 고장 안전 주행 제어 알고리즘은 조향부 고장 휠에 높은 슬립률이 발생하도록 토크 입력을 가한다. 고슬립으로 인한 조향부 고장 휠의 종방향 타이어 힘 증가를 고려하기 위하여 종방향 타이어 힘을 추정하여 고장나지 않은 휠의 구동력 최적 분배에 구속 조건에 포함시킨다. 개루프 조향 및 폐루프 조향 시뮬레이션 결과 조향부 고장이 발생한 차량의 주행시 고장을 고려하지 않은 최적 구동력 분배 제어에 비하여 본 알고리즘 적용시 차량의 주행 성능이 보정됨을 확인하였다.

브레이크 게인 적응 휠 슬립 제어에 관한 연구 (A Study on Brake Gain Adaptive Wheel Slip Control)

  • 조준상;유승진;이교일
    • 유공압시스템학회논문집
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    • 제4권1호
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    • pp.13-17
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    • 2007
  • The brake gain adaptive wheel slip controller for a vehicle is designed in this paper. The brake gain from braking pressure to braking torque defined by friction coefficient, friction area and effective friction radius is estimated by the adaptive law based on the wheel slip dynamics. And the wheel slip controller is designed based on the estimated brake gain. The robustness of the designed controller is analyzed using Lyapunov function and the convergence of brake gain is verified. Proposed wheel slip controller is verified via CarSim simulation with two kinds of desired wheel slip ratio.

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휠 슬립 제어기 및 최적 슬립 결정 알고리즘을 이용한 차량의 최대 제동력 제어 (Maximum Braking Force Control Using Wheel Slip Controller and Optimal Target Slip Assignment Algorithm in Vehicles)

  • 홍대건;황인용;선우명호;허건수
    • 대한기계학회논문집A
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    • 제30권3호
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    • pp.295-301
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    • 2006
  • The wheel slip control systems are able to control the braking force more accurately and can be adapted to different vehicles more easily than conventional ABS systems. In order to achieve the superior braking performance through the wheel-slip control, real-time information such as the tire braking force at each wheel is required. In addition, the optimal target slip values need to be determined depending on the braking objectives such as minimum braking distance, stability enhancement, etc. In this paper, a robust wheel slip controller is developed based on the adaptive sliding mode control method and an optimal target slip assignment algorithm. An adaptive law is formulated to estimate the longitudinal braking force in real-time. The wheel slip controller is designed using the Lyapunov stability theory and considering the error bounds in estimating the braking force and the brake disk-pad friction coefficient. The target slip assignment algorithm is developed for the maximum braking force and searches the optimal target slip value based on the estimated braking force. The performance of the proposed wheel-slip control system is verified In simulations and demonstrates the effectiveness of the wheel slip control in various road conditions.

유도기를 이용한 플라이휠 에너지 저장 및 재생 시스템 제어 기법 (A Control Strategy for Flywheel Energy Storage / Recovery System with Induction Machine)

  • 손장경;이홍희;노의철;김흥근;전태원
    • 전력전자학회논문지
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    • 제10권5호
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    • pp.494-500
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    • 2005
  • 본 논문에서는 플라이휠에너지를 이용한 다이나믹 UPS 시스템에서 유도기를 이용하여 플라이휠의 에너지를 저장 및 재생하는 시스템 제어 기법을 제시하였다. 유도발전기의 슬립주파수 제어와 벡터제어 기법의 특성을 비교하고, 또한 벡터제어 기법을 사용 시 전동 모드에서 발전 모드로의 전환할 때 직류링크 커패시터 전압의 과도 특성을 개선하는 기법을 개발하였다. 32비트 DSP를 사용한 실험을 통하여 이 기법의 성능을 확인하였다.

2개의 인-휠 브러쉬리스 모터로 구동하는 차량의 위치 추종 제어 (Position tracking control of vehicles driven by two in-wheel brushless motors)

  • 배종남;이동희
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 2020년도 전력전자학술대회
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    • pp.58-60
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    • 2020
  • 본 논문에서는 2개의 인-휠 브러쉬리스 모터로 구동하는 차량의 실시간 위치 추종 제어방법을 제안한다. 2개의 모터를 사용하여 구동되는 차량의 경우 방향 및 이동이 각 모터의 제어를 기반으로 결정된다. 하지만 컨트롤러에 의해 지령된 위치까지 모터의 제어가 정확하게 된다 하더라도 차량의 실제 위치는 바퀴와 바닥면사이의 슬립이나 외부 요인에 의해 오차가 발생하게 된다. 따라서 이렇게 발생하는 오차를 보상하기 위해 차량의 실시간 각도 추정이 가능한 IMU(Inertia Measrement Unit) 센서를 기반으로 진행 각도를 보정하며 주행 중 발생하는 위치오차를 보상하기 위해 모터의 홀센서로부터 계산되는 위치와 IMU 센서의 데이터를 조합하여 실시간 위치 추종 제어방법을 제안한다.

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차량 선회 안정성을 위한 휠 슬립 제어시스템 개발 (Development of a Wheel Slip Control System for Vehicle Cornering Stability)

  • 홍대건;허건수;황인용;선우명호
    • 한국자동차공학회논문집
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    • 제14권4호
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    • pp.174-180
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    • 2006
  • The wheel slip control systems are able to control the braking force more accurately and can be adapted to different vehicles more easily than conventional braking control systems. In order to achieve the superior braking performance through the wheel slip control, real-time information such as the tire braking force at each wheel is required. In addition, the optimal target slip values need to be determined depending on the braking objectives such as minimum braking distance, stability enhancement, etc. In this paper, a wheel slip control system is developed for maintaining the vehicle stability based on the braking monitor, wheel slip controller and optimal target slip assignment algorithm. The braking monitor estimates the tire braking force, lateral tire force and brake disk-pad friction coefficient utilizing the extended Kalman filter. The wheel slip controller is designed based on the sliding mode control method. The target slip assignment algorithm is proposed to maintain the vehicle stability based on the direct yaw moment controller and fuzzy logic. The performance of the proposed wheel slip control system is verified in simulations and demonstrates the effectiveness of the wheel slip control in various road conditions.

Brake-by-Wire 시스템을 위한 강인한 휠 슬립 제어 (Robust Wheel Slip Control for Brake-by-Wire System)

  • 홍대건;허건수;강형진;윤팔주;황인용
    • 한국자동차공학회논문집
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    • 제13권3호
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    • pp.102-109
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    • 2005
  • Wheel-slip control systems are able to control the braking force more accurately and can be adapted to different vehicles more easily than conventional ABS systems. But, in order to achieve the superior braking performance through the wheel-slip control, real-time information such as the tire braking force is required. For example, in the case of EHB (Electro-Hydraulic Brake) systems, the tire braking force cannot be measured directly, but can be approximated based on the characteristics of the brake disk-pad friction. The friction characteristics can change significantly depending on aging of the brake, moisture on the contact area, heat etc. In this paper, a wheel slip The proposed wheel slip control system is composed of two subsystems: braking force monitor and robust slip controller In the brake force monitor subsystem, the tire braking forces as well as the brake disk-pad friction coefficient are estimated considering the friction variation between the brake pad and disk. The robust wheel slip control subsystem is designed based on sliding mode control methods and follows the target wheel-slip using the estimated tire braking forces. The proposed sliding mode controller is robust to the uncertainties in estimating the braking force and brake disk-pad friction. The performance of the proposed wheel-slip control system is evaluated in various simulations.

타이어의 최적 노면 마찰력을 고려한 ABS 슬라이딩 모드 제어 (ABS Sliding Mode Control considering Optimum Road Friction Force of Tyre)

  • 김정식
    • 한국자동차공학회논문집
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    • 제21권1호
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    • pp.78-85
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    • 2013
  • This paper presents the sliding mode control methods for anti-lock brake system (ABS) with the friction force observer. Using a simplified quarter car model, the sliding mode controller for ABS is designed to track the desired wheel slip ratio. Here, new method to find the desired wheel slip ratio which produces the maximum friction force between road and tire is suggested. The desired wheel slip ratio is varying according road and tire conditions to produce maximum friction force. In order to find optimum desired wheel slip ratio, the sliding mode observer for friction force is used. The proposed sliding mode controller with observer is evaluated in simulation, and the control design is shown to have high performance on roads with constant and varying adhesion coefficients.

휠 모터 구동 전기 버스의 차량 안정성 및 주행 성능을 고려한 통합 제어 로직 개발 (Development of Integrated Control Logic of Wheel Motor Drive Electric Bus considering Stability and Driving Performance)

  • 정종렬;최종대;신창우;이대흥;임원식;박영일;차석원
    • 한국자동차공학회논문집
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    • 제21권6호
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    • pp.40-48
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    • 2013
  • Recently, many types of electric vehicles including a heavy duty vehicle have been developed and released because of the better fuel economy and less gas products. In this study, research about an electric bus which utilizes the wheel motor drive system was conducted. The wheel motor is a motor connected to the wheel directly only with a simple gear so that the developer can utilize the space efficiently and the whole system efficiency will be better because of simple structure. However, because it is different from former types of vehicles which use the differential gear, the development of the integrated control logic is required in order to meet the vehicle stability and driving performance. The developed control logic is composed with direct yaw moment control, regenerative braking control and slip control logics. It is compared to the control logics which does not consist of direct yaw moment control and slip control when the vehicle is exposed in tough situations. For the unification of the control logic, a few maps were developed and applied to determine the output torque of each motor according to the driving status. As a result, it is shown that the developed control logic is more safe and well follow the target speed than the other control logic applied simulations.

중하중을 받는 이동로붓의 슬라이딩모드 제어 (Sliding Mode Control for a High-Load Wheeled Mobile Robot)

  • 홍대희;정재훈
    • 한국정밀공학회지
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    • 제17권5호
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    • pp.145-153
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    • 2000
  • This paper discusses the dynamic modeling and robust control development for a differentially steered mobile robot subject to wheel slip according to high load. Consideration of wheel slip is crucial for high load applications such as construction automation tasks because wheel slip acts as a severe disturbance to the system. It is shown that the uncertainty terms due to the wheel slip satisfy the matching condition for the sliding mode control design. From the full dynamic model of the mobile robot, a reduced ideal model is extracted to facilitate the control design. The sliding mode control method ensures the dynamic tracking performance for such a mobile robot. Numerical simulation shows the promise of the developed algorithm.

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