• Title/Summary/Keyword: 횡방향 제어

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Safe Driving Evaluation System based on Drivers' Behaviors (운전 행동정보 기반 안전운전 평가시스템)

  • Yoon, Daesub;Hwang, Yoonsook;Kim, Hyunsuk;Kim, Kyungho
    • Proceedings of the Korea Information Processing Society Conference
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    • 2010.04a
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    • pp.1115-1117
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    • 2010
  • 안전운전 지원 시스템 개발을 위해서 고려되어야 할 요소는 차량정보, 운전자정보, 외부 환경정보가 있다. 기존의 안전운전 지원 시스템 개발은 주로 차량의 종방향 제어, 횡방향 제어, 조향각 제어 등 차량으로부터 직접 추출한 주행정보를 이용하여 운전자의 안전유무를 평가하였다. 그러나 최근의 조사결과에 따르면 교통사고의 90%이상이 운전자 실수에 의해서 발생한다는 것을 알 수 있다. 이와 관련하여 차량의 주행 정보뿐만 아니라 실제 운전자가 주행 중에 행하게 되는 행동정보기반의 안전운전지원시스템 개발이 활발히 연구되어 지고 있다. 본 논문에서는 운전자의 행동정보를 이용한 안전운전 평가시스템의 설계 개념과 안전운전 평가시스템의 핵심 요소인 표준모델 구축 방법에 대해서 논의하고자 한다.

Assessment of Uncertainty for Discharge Measurement using Velocity-Area method (유속-면적법으로 측정된 유량에 대한 측정 불확도 평가)

  • Kim, Jongmin;Kim, Dongsu;Kim, Seojun
    • Proceedings of the Korea Water Resources Association Conference
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    • 2016.05a
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    • pp.104-104
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    • 2016
  • 소규모 하천에서의 평수기 유량 측정은 일반적으로 지점식 초음파 유속계, 프로펠러 유속계 등을 활용해 도섭법으로 측정된 유속 측정성과를 기반하여 유속-면적법으로 산정된다. 유속-면적법으로 측정된 유량 측정 성과는 횡방향 측선의 수, 수심방향 측점의 수, 측정 시간, 수심 등 제반 측정 인자에 의해 영향을 받고 유량 불확도는 각 인자 별 오차에 영향을 받는다. ISO 748 (2007)과 ISO 1088 (2007)은 유속-면적법 적용방법, 현장 측정 가이드라인, 불확도 인자 별 적용 요건에 따른 오차, 최종 유량 불확도 산정 기법을 제시하였다. 따라서, 국내외 유량조사 기관에서는 유속면적법을 적용할 경우, ISO에서 제시된 인자 별 오차 및 유량 불확도 산정 기법을 기반으로 유량 불확도를 산정해왔다. ISO 748과 1088은 다양한 규모의 실제 하천에서 관측된 자료를 기반으로 횡방향 측선 수, 수심방향 측점 수 (2점법, 3점법 등), 측정 시간 등과 관련된 인자 별 오차를 표로 상세하게 제시하였고 실무에서는 별도 추가 검증없이 사용해 왔다. 그러나, ISO에서 유속-면적법 유량 측정 불확도를 평가하기 위해 사용된 측정자료는 유량을 제어하기 힘들고 유속 측정 상황이 유출 조건 별로 상이한 현장 자료를 기반으로 하였고, 상대적으로 정확도가 낮은 프로펠러유속계를 기반으로 1960년대에 관측된 자료들을 주로 활용하여 도출되었다. 따라서, 본 연구에서는 기존 ISO에서 제시한 유속-면적법에 필요한 인자들의 오차를 정밀 실규모 실험을 통해 재산정하여 기존 ISO 748과 1088에서 제시한 인자별 오차의 적정성을 검증하고자 하였다. 이를 위해 흐름을 안정적으로 통제할 수 있는 건설기술연구원 안동 하천실험센터의 완경사수로(A2)에서 정상상태의 폭 7m, 수심 1m, 유속 약 1m/s의 흐름을 유지한 후, 유속 측정 정확도가 우수한 micro-ADV를 활용하여 공간적으로 매우 정밀하게 유속을 측정하고, 수심은 Total Station을 기반으로 흐름 발생 전에 정밀 측정하였다. 오차 분석 결과, ISO 규정에서 제시한 오차와 본 실험의 결과로 도출된 인자들의 오차는 상당한 차이를 보였다. 따라서, 본 연구 결과로 도출된 유속-면적법의 인자 별 오차는 실험이 수행된 소하천 규모의 하천에서 도섭법으로 산정된 유량의 불확도를 평가할 경우에 활용될 것으로 기대된다.

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Unmanned Ground Vehicle Control and Modeling for Lane Tracking and Obstacle Avoidance (충돌회피 및 차선추적을 위한 무인자동차의 제어 및 모델링)

  • Yu, Hwan-Shin;Kim, Sang-Gyum
    • Journal of Advanced Navigation Technology
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    • v.11 no.4
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    • pp.359-370
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    • 2007
  • Lane tracking and obstacle avoidance are considered two of the key technologies on an unmanned ground vehicle system. In this paper, we propose a method of lane tracking and obstacle avoidance, which can be expressed as vehicle control, modeling, and sensor experiments. First, obstacle avoidance consists of two parts: a longitudinal control system for acceleration and deceleration and a lateral control system for steering control. Each system is used for unmanned ground vehicle control, which notes the vehicle's location, recognizes obstacles surrounding it, and makes a decision how fast to proceed according to circumstances. During the operation, the control strategy of the vehicle can detect obstacle and perform obstacle avoidance on the road, which involves vehicle velocity. Second, we explain a method of lane tracking by means of a vision system, which consists of two parts: First, vehicle control is included in the road model through lateral and longitudinal control. Second, the image processing method deals with the lane tracking method, the image processing algorithm, and the filtering method. Finally, in this paper, we propose a method for vehicle control, modeling, lane tracking, and obstacle avoidance, which are confirmed through vehicles tests.

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Development of Hovering AUV 'NOAH' Test-bed for Underwater Explorations (수중탐사용 호버링 무인잠수정 NOAH의 테스트베드 개발)

  • Byun, Seung-Woo;Kim, Joon-Young
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.11 no.2
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    • pp.414-419
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    • 2010
  • This paper describes the design and performance of a hovering AUV 'NOAH' constructed at Jeju National University. We analyse the dynamic performance of NOAH using simulation program and carry out depth control test at small basin. The main purpose of NOAH is to carry out fundamental tests on its attitude control and position control. Its configuration is similar to general ROV appearance for underwater works and dimension is $0.75m{\times}0.5m{\times}0.5m$. It has 4 thrusters of 450watt for longitudinal/lateral/vertical propulsion and is equipped with a pressure sensor for measuring water depth and a magnetic compass for measuring heading angle. The navigation of the vehicle is controlled by an on-board Pentium III-class computer, which runs with the help of the Windows XP operating system. These give us an ideal environment for developing various algorithm which are needed for developing and advanced hovering AUV.

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

  • Nah, Jae Won;Kim, Won Gun;Yi, Kyongsu;Lee, Jongseok;Lee, Daeok
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.37 no.6
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    • pp.731-738
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    • 2013
  • This paper describes a fault-tolerant driving control strategy for an independent steer-by-wire system in sixwheel-drive/six-wheel-steering vehicles. An algorithm has been designed to realize vehicle maneuverability that is as close as possible to that of non-faulty vehicles by inducing high slip ratio of the wheel through a faulty steer-by-wire system in order to reduce the lateral tire force, which is resistant to the yaw motion. Considering the transition of the longitudinal tire force of a wheel with a faulty steer-by-wire component, the longitudinal tire forces are optimally distributed to the other wheels. Fault-tolerant driving performance has been investigated via computer simulations. Simulation studies show that the proposed algorithm can significantly improve the maneuverability of a vehicle with a faulty steer-by-wire system as compared to the optimal traction distribution method.

A Misalignment Compensation Algorithm for Flexible Parts Assembly (유연 부품 조립을 위한 횡방향 오차의 보정 알고리즘)

  • 김진영;조형석
    • Journal of Institute of Control, Robotics and Systems
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    • v.5 no.7
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    • pp.841-847
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    • 1999
  • For successful assembly of flexible parts, informations about their deformation as well as possible misalignments between the holes and their mating parts are essential. Such informations can be acquired from visual sensors. For robotic assembly, the corrective assembly motion to compensate for such misalignments has to be determined from the measured informations. However, this may not be simply derived from the measured misalignment alone because the part deformation progressively occurs during misalignment compensation. Based on the analysis of flexible parts assembly process, this paper presents a neural net-based inference system that can infer the complex relationship between the corrective motion and the measured information of parts deformation and misalignments. And it verifies the performance of the implemented inference system. The results show that the proposed neural net-based misalignment compensation algorithm Is effective in compensating for the lateral misalignment, and that it can be extended to the assembly tasks under more general conditions.

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Control of Vehicle Lateral Dynamics using Sliding Mode with Time-Varying Switching Surface (시변 절환면을 갖는 슬라이딩 모드에 의한 차량의 횡방향 운동제어)

  • Lee, Chang-Ro;Yang, Hyun-Seok;Park, Young-Pil
    • Proceedings of the KSME Conference
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    • 2000.04a
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    • pp.458-463
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    • 2000
  • This paper presents a design of the controller for vehicle lateral dynamics using active yaw moment. Vehicle lateral motion is incorporated with directional controllability and stability. These are conflicting each other from the view of vehicle handling performance. To compromise the trade-off between these two aspects, we suggest a new control algorithm based on the sliding mode with time-varying switching surface according to the body side slip angle. The controller can deal with the nonlinear region in vehicle driving and be robust to the parameter uncertainties in the plant model. Control performance was evaluated from the simulation.

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

  • Song, Jeong-Hoon
    • Transactions of the Korean Society of Automotive Engineers
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    • v.20 no.2
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    • pp.15-20
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    • 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.

Control Performance Comparison of Model-referenced and Map-based Control Method for Vehicle Lateral Stability Enhancement (차량 횡방향 안정성 향상을 위한 모델 참조 제어와 맵기반 제어 방법의 제어 성능 비교)

  • Yoon, Moonyoon;Baek, Seunghwan;Choi, Jungkwang;Boo, Kwangsuck;Kim, Heungseob
    • Journal of the Korean Society for Precision Engineering
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    • v.31 no.3
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    • pp.253-259
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    • 2014
  • This study proposes a map-based control method to improve a vehicle's lateral stability, and the performance of the proposed method is compared with that of the conventional model-referenced control method. Model-referenced control uses the sliding mode method to determine the compensated yaw moment; in contrast, the proposed map-based control uses the compensated yaw moment map acquired by vehicle stability analysis. The vehicle stability region is calculated by a topological method based on the trajectory reversal method. The performances of model-referenced control and map-based control are compared under various road conditions and driving inputs. Model-referenced control uses a control input to satisfy the linear reference model, and it generates unnecessary tire lateral forces that may lead to worse performance than an uncontrolled vehicle with step steering input on a road with low friction coefficient. The simulation results show that map-based control provides better stability than model-referenced control.

Reduction of Computing Time in Aircraft Control by Delta Operating Singular Perturbation Technique (델타연산자 섭동방법에 의한 항공기 동력학의 연산시간 감소)

  • Sim, Gyu Hong;Sa, Wan
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.31 no.3
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    • pp.39-49
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    • 2003
  • The delta operator approach and the singular perturbation technique are introduced. The former reduces the round-off error in the numerical computation. The latter reduces computing time by decoupling the original system into the fast and slow sub-systems. The aircraft dynamics consists of the Phugoid and short-period motions whether its model is longitudinal or lateral. In this paper, an approximated solutions of lateral dynamic model of Beaver obtained by using those two methods in compared with the exact solution. For open-loop system and closed-loop system, and approximated solution gets identical to the exact solution with only one iteration and without iteration, respectively. Therefore, it is shown that implementing those approaches is very effective in the flight dynamic and control.