• 제목/요약/키워드: 조향 통합운동제어

검색결과 7건 처리시간 0.02초

능동전륜조향장치를 채택한 사륜조향차량의 횡방향 안정성 강화에 대한 연구 (A Study on Lateral Stability Enhancement of 4WS Vehicle with Active Front Wheel Steer System)

  • 송정훈
    • 한국자동차공학회논문집
    • /
    • 제20권2호
    • /
    • pp.15-20
    • /
    • 2012
  • This study is to propose and develop an integrated dynamics control system to improve and enhance the lateral stability and handling performance. To achieve this target, we integrate an AFS and a 4WS systems with a fuzzy logic controller. The IDCS determines active additional steering angle of front wheel and controls the steering angle of rear wheel. The results show that the IDCS improves the lateral stability and controllability on dry asphalt and snow paved road when double lane change and step steering inputs are applied. Yaw rate of the IDCS vehicle tracks reference yaw rate very well and body slip angle is reduced about by 50%. Response time of the IDCS vehicle is also decreased.

제동 장치를 이용한 차량통합운동제어시스템 개발 (Development of Vehicle Integrated Dynamics Control System with Brake System Control)

  • 송정훈
    • 대한기계학회논문집A
    • /
    • 제41권7호
    • /
    • pp.591-597
    • /
    • 2017
  • 이 논문은 횡방향 안정성 및 조향성능 개선을 위한 차량 통합운동제어시스템(IDCB)의 개발에 관한 것이다. IDCB의 개발을 위하여 8자유도의 차량 모델 및 비선형 관측기를 설계하였다. 퍼지 로직 제어 방법 및 슬라이딩 모드 제어 방법을 이용하여 전륜 및 후륜의 제동압력을 독립적으로 제어하여 차량의 요 속도 및 횡방향 미끄러짐 각이 목표값을 추종하도록 하였다. 결과를 살펴보면 비선형 관측기는 만족할 만한 수준의 관측 결과를 보여주었다. 개발된 IDBC는 다양한 노면 조건 및 운전 조건에서 요속도 및 횡방향 미끄러짐 각이 목표값을 잘 추종하도록 하여 차량의 횡방향 안정성 및 조향성을 개선시키는 것을 확인할 수 있다.

SUV 차량의 전륜 및 후륜 조향 장치를 이용한 통합운동제어시스템 설계 (Development of Integrated Dynamics Control System of SUV Vehicle with Front and Rear Steering System)

  • 송정훈
    • 한국기계가공학회지
    • /
    • 제17권6호
    • /
    • pp.31-37
    • /
    • 2018
  • In order to improve stability and controllability of SUV vehicle, Integrated Dynamics Control system with Steering system (IDCS) was developed. Eight degree of freedom vehicle model and front and rear steering system model were used to design IDCS system. It also employs Fuzzy logic control method to design integrate control system. The performance of IDCS was evaluated with two road conditions and several driving conditions. The result shows that SUV vehicle with IDCS tracked the reference yaw rate under all tested conditions. IDCS reduced the body slip angle also. It represents IDCS improves vehicle stability and steerability.

능동전륜조향장치 및 능동후륜제동장치의 통합제어기 개발 (Development of an Integrated Control System between Active Front Wheel System and Active Rear Brake System)

  • 송정훈
    • 한국자동차공학회논문집
    • /
    • 제20권6호
    • /
    • pp.17-23
    • /
    • 2012
  • An integrated dynamic control (IDCF) with an active front steering system and an active rear braking system is proposed and developed in this study. A fuzzy logic controller is applied to calculate the desired additional steering angle and desired slip of the rear inner wheel. To validate IDCF system, an eight degree of freedom, nonlinear vehicle model and a sliding mode wheel slip controller are also designed. Various road conditions are used to test the performance. The results show that the yaw rate of IDCF vehicle followed the reference yaw rate and reduced the body slip angle, compared with uncontrolled vehicle. Thus, the IDCF vehicle had enhanced lateral stability and controllability.

전륜 제동력 및 전륜 조향각을 이용한 SUV 차량의 통합운동제어시스템 개발 (Integrated Dynamics Control System for SUV with Front Brake Force and Front Steering Angle)

  • 송정훈
    • 한국기계가공학회지
    • /
    • 제21권5호
    • /
    • pp.22-27
    • /
    • 2022
  • An integrated front steering system and front brake system (FSFB) is developed to improve the stability and controllability of an SUV. The FSFB simultaneously controls the additional steering angle and front brake pressure. An active front steering system (AFS) and an active front brake system (AFB) are designed for comparison. The results show that the FSFB enhances the lateral stability and controllability regardless of road and running conditions compared to the AFS and AFB. As a result, the yaw rate of the SUV tracks the reference yaw rate, and the side slip angle decreases. In addition, brake pressure control is more effective than steering angle control in improving the stability and steerability of the SUV on a slippery road. However, this deteriorates comfort on dry or wet asphalt.

AFS 시스템의 새로운 수학적 모델 및 제어기 개발 (Development of New Numerical Model and Controller of AFS System)

  • 송정훈
    • 한국자동차공학회논문집
    • /
    • 제22권6호
    • /
    • pp.59-67
    • /
    • 2014
  • A numerical model and a controller of Active Front wheel Steer (AFS) system are designed in this study. The AFS model consists of four sub models, and the AFS controller uses sliding mode control and PID control methods. To test this model and controller an Integrated Dynamics Control with Steering (IDCS) system is also designed. The IDCS system integrates an AFS system and an ARS (Active Rear wheel Steering) system. The AFS controller and IDCS controller are compared under several driving and road conditions. An 8 degree of freedom vehicle model is also employed to test the controllers. The results show that the model of AFS system shows good kinematic steering assistance function. Steering ratio varies depends on vehicle velocity between 12 and 24. Kinematic stabilization function also shows good performance because yaw rate of AFS vehicle tracks the reference yaw rate. IDCS shows improved responses compared to AFS because body side slip angle is also reduced. This result also proves that AFS system shows satisfactory result when it is integrated with another chassis system. On a split-m road, two controllers forced the vehicle to proceed straight ahead.

6WD/6WS 차량의 통합운동제어에 관한 기초적 연구 (A Fundamental Study on Integrated Dynamic Control of 6WD/6WS Vehicle)

  • 김영렬;박영원
    • 한국군사과학기술학회지
    • /
    • 제13권6호
    • /
    • pp.958-966
    • /
    • 2010
  • In this paper, we have proposed a integrated dynamic control architecture in 6WD(wheel drive)/6WS(wheel steering) vehicle for military applications. Since 6WD/6WS vehicle has inherent redundancy, the input variables to make any desired vehicle motion can not be determined uniquely. Therefore, optimal distribution method of tire forces is introduced, which is based on workload of each tire. Simulation result shows that this is effective for the energy minimization and dynamic performance enhancement. We also suggest how the integrated control with any failure mode should be reconstructed.