• 제목/요약/키워드: Vehicle Collision

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보행자 충돌 회피를 위한 자율주행 차량의 종방향 거동 계획 (Longitudinal Motion Planning of Autonomous Vehicle for Pedestrian Collision Avoidance)

  • 김유진;문종식;정용환;이경수
    • 자동차안전학회지
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    • 제11권3호
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    • pp.37-42
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    • 2019
  • This paper presents an autonomous acceleration planning algorithm for pedestrian collision avoidance at urban. Various scenarios between pedestrians and a vehicle are designed to maneuver the planning algorithm. To simulate the scenarios, we analyze pedestrian's behavior and identify limitations of fusion sensors, lidar and vision camera. Acceleration is optimally determined by considering TTC (Time To Collision) and pedestrian's intention. Pedestrian's crossing intention is estimated for quick control decision to minimize full-braking situation, based on their velocity and position change. Feasibility of the proposed algorithm is verified by simulations using Carsim and Simulink, and comparisons with actual driving data.

전구간 주행 및 충돌회피 제어 알고리즘 설계 (Design of a Full-range Adaptive Cruise Control Algorithm with Collision Avoidance)

  • 문승욱;이경수
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회A
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    • pp.849-854
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    • 2007
  • This paper describes design and tuning of a full-range Adaptive Cruise Control (ACC) with collision avoidance. The control scheme is designed to control the vehicle so that it would feel natural to the human driver and passengers during normal safe driving situations and to avoid rear-end collision in vehicle following situations. In this study, driving situations are determined using a non-dimensional warning index and time-to-collision (TTC). A confusion matrix method based on natural driving data sets was used to tune control parameters in the proposed ACC System. An ECU-Brake Hardware-in-the-loop Simulation (HiLS) was developed and used for an evaluation of ACC System. The ECU-Brake HiLS results for alternative driving situation are compared to manual driving data measured on actual traffic way. The ACC/CA control logic implemented in an ECU was tested using the ECU-Brake HiLS in a real vehicle environment.

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센서 범위를 고려한 자율주행자동차 교차로 충돌 상황 시뮬레이션 (Intersection Collision Situation Simulation of Automated Vehicle Considering Sensor Range)

  • 이장우;이명수;정재일
    • 자동차안전학회지
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    • 제13권4호
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    • pp.114-122
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    • 2021
  • In this paper, an automated vehicle intersection collision accident was analyzed through simulation. Recently, the more automated vehicles are distributed, the more accidents related to automated vehicles occur. Accidents may show different trends depending on the sensor characteristics of the automated vehicle and the performance of the accident prevention system. Based on NASS-CDS (National Automotive Sampling System-Crashworthiness Data System) and TAAS (Traffic Accident Analysis System), four scenarios are derived and simulations are performed. Automated vehicles are applied with a virtual system consisting of an autonomous emergency braking system and algorithms that predict the route and avoid collisions. The simulations are conducted by changing the sensor angle, vehicle speed, the range of the sensor and vehicle speed range. A range of variables considered vehicle collision were derived from the simulation.

측후방 충돌 회피를 위한 조향 보조 토크 및 차등 제동 분배 제어 알고리즘 개발 (Development of a coordinated control algorithm using steering torque overlay and differential braking for rear-side collision avoidance)

  • 이준영;김동욱;이경수;유현재;정혁진;고봉철
    • 자동차안전학회지
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    • 제5권2호
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    • pp.24-31
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    • 2013
  • This paper describes a coordinated control algorithm for rear-side collision avoidance. In order to assist driver actively and increase driver's safety, the proposed coordinated control algorithm is designed to combine lateral control using a steering torque overlay by Motor Driven Power Steering (MDPS) and differential braking by Vehicle Stability Control (VSC). The main objective of a combined control strategy is twofold. The one is to prevent the collision between the subject vehicle and approaching vehicle in the adjacent lanes. The other is to limit actuator's control inputs and vehicle dynamics to safe values for the assurance of the driver's comfort. In order to achieve these goals, the Lyapunov theory and LMI optimization methods has been employed. The proposed coordinated control algorithm for rear-side collision avoidance has been evaluated via simulation using CarSim and MATLAB/Simulink.

연료전지자동차의 고압수소저장시스템 신뢰성 평가 (The Evaluation of Reliability for the High Pressure Hydrogen Storage System of Fuel Cell Vehicle)

  • 장규진;최영민;안병기;임태원
    • 한국수소및신에너지학회논문집
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    • 제19권4호
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    • pp.266-275
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    • 2008
  • The performance improvement of each part for durability, safety and cost of high pressure storage system for fuel cell vehicle has been focused so far. However, for the mass production of fuel cell vehicle, it is necessary to evaluate durability and safety in system module and vehicle level. The test procedure to evaluate vibration and collision safety of high pressure hydrogen storage system for the fuel cell vehicle is established and its reliability is verified.

Research and Calculate 29/34-Seat Passenger Cars to Ensure Safety for Occupants in the Event of a Collision According to ECE R94 Standards

  • Vu Hoang, Phuong;Nguyen Cong, Thanh;Nguyen Quoc, Tuan;Ta Hong Thanh, Tu
    • International Journal of Internet, Broadcasting and Communication
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    • 제15권1호
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    • pp.140-144
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    • 2023
  • In recent years, there are so many serious crashes involving coaches, especially the frontal collision occupies 40% of the front of the vehicle, Frontal collisions account for 100% of the front of the vehicle affecting the driver and side-impact collisions that injure the person in the vehicle. Therefore, the research into improving and optimizing the structure is necessary for risk of injury for passengers in frontal accidents. In this paper, we have designed a Shock absorber that can absorb collision energy. Research using HYPERMESH software. to build the finite element model and calculate the meshing to suit the mesh size of 5mm. apply LS-DYNA software to calculate structural strength. In the study, for a vehicle to collide with a hard obstacle occupying 100% of the head of the vehicle. Then, the experimental design method, Minitab is used for find the structural parameters in the design. Improvement results showed that the acceleration of the impact on passengers and the driver is decreased by 55,17%. The mass of texture improvements is reduced by 11%, according to the requirements of European Standards ECE R94.

측면 충돌 시 센터에어백이 승객의 거동 및 머리상해에 미치는 영향 (The Effectiveness of Center Airbag on Passenger Kinematics and Head Injury in Side Collisions)

  • 박지양;김동섭;곽영찬;손창기;윤영한
    • 자동차안전학회지
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    • 제10권3호
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    • pp.7-12
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    • 2018
  • The Korean New Car Assessment Program (KNCAP) is a program to evaluate the safety of automobiles. In the safety assessment method, there are frontal collision, partial frontal collision, side collision, pillar collision, and left stability in the collision safety category. Among them, Korean in-depth analysis data shows that there are a lot of side collision accidents and it is necessary to protect them. This study will analyze the side collision accident that occurred in actual traffic accident based on Korea In-Depth Accident Study (KIDAS) and investigate the effect of center airbag on passenger in under side collision. In addition, with simulated side collision scenarios in the various side impact directions, it was investigated how the center airbag affects the driver and passenger in terms of kinematic and injury levels.

충돌회피를 위한 가속도를 고려한 차선 변경 시스템 개발 (Development of Lane Change System considering Acceleration for Collision Avoidance)

  • 강현구;이동휘;허건수
    • 한국자동차공학회논문집
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    • 제21권2호
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    • pp.81-86
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    • 2013
  • This paper presents the lane change system for collision avoidance. The proposed algorithm for the collision avoidance consists of path generation and path following. Using a calculated TTC (Time to Collision), partial braking is operated and collision avoidance path is generated considering relative distance, velocity and acceleration. Based on the collision avoidance path, desired yaw angle and yaw rate are calculated for the automated path following. The lateral controller is designed by a Lyapunov function approach using 3 D.O.F vehicle model and vehicle parameters. The required steering angle is determined from wheel velocity, longitudinal and lateral velocity in order to follow the desired yaw angle and yaw rate. This system is developed MATLAB/Simulink and its performance is evaluated using the commercial software CarSim.

자율주행 차량의 차량 대 차량 통신에 기반한 충돌방지 활용 시나리오 개발 (Development of Collision Prevention Usage Scenario based on Vehicle-to-Vehicle Communication of Autonomous Vehicles)

  • 서현덕;권도영;신재민;최은혁;임헌국
    • 한국정보통신학회논문지
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    • 제26권2호
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    • pp.251-257
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    • 2022
  • 자율주행 차량은 ICT 기술의 도움으로, 운전자의 개입 없이 운행되는 차량을 의미하며 스마트 차량의 한 종류이다. 차량 안전 통신 기술(V2X)이 적용된 차량은 다양한 센서 혹은 타 차량/인프라에서 감지된 정보를 이용하여 운전자의 잠재적 위험 상황을 스마트 차량 스스로가 확실하고 빠르게 예측하도록 하여 보다 안정한 자율주행이 가능하도록 하는데 기여한다. 본 논문에서는 이러한 V2X 통신 기술 중 차량 대 차량 통신(V2V) 모사 통신 기술을 이용하여 자율주행 차량의 충돌 방지 활용 시나리오를 제시하고자 한다. V2V 모사 통신 기반 차량 충돌방지 시스템을 구현하였고 이를 이용하여 제시한 충돌 방지 활용 시나리오를 시연하였다. 제시된 충돌 방지 활용 시나리오는 현재에도 개발/적용을 위해 노력 중인 V2V 통신 기술의 하나의 응용 사례로 고려될 수 있을 것이다.

컴퓨터 시뮬레이션(PC-CRASH)을 이용한 터널 내 피추돌 차량의 충돌 속도 추정에 관한 연구 (A study on the estimation of impact velocity of crashed vehicles in tunnel using computer simulation(PC-CRASH))

  • 한창평;최홍주
    • Design & Manufacturing
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    • 제14권4호
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    • pp.40-45
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    • 2020
  • In a vehicle-to-vehicle accident, the impact posture, braking status, final stopping position, collision point and collision speed are important factors for accident reconstruction. In particular, the speed of collision is the most important issue. In this study, the collision speed and the final stopping position in the tunnel were estimated using PC-CRASH, a vehicle crash analysis program used for traffic accident analysis, and the final stopping position of the simulation and the final stopping position of the traffic accident report were compared. When the Pride speed was 0km/h or 30km/h and the Sorento speed was 100m/h, the simulation results and reports matched the final stopping positions and posture of the two vehicles. As a result of the simulation, it can be estimated that Pride was collided in an almost stationary state.