The Design and Implementation of the Collision Avoidance Warning Function in the Air Traffic Control System

항공관제 시스템에서 항공기 공중충돌 경고기능의 설계 및 구현

  • Published : 2009.04.05

Abstract

An aircraft collision accident is a disaster that causes great losses of inventories and lives. Though a collision avoidance warning function is provided automatically to pilots in the aircrafts by the enhancement of the aircraft capability, achieving fast decision-making to escape a collision situation is a complex and dangerous work for pilots. If an in-flight collision situation is controlled by the air traffic control system which monitors all airplanes in the air, it would be more efficient to prevent in-flight collisions because it can handle the emergency before the pilot's action. In this paper, we develop the collision avoidance warning function in the air traffic control system. Specifically, we design and implement the five stages of the collision avoidance function, and propose a visualization method which could effectively provide the operators with the trajectories and altitudes of the aircrafts in a collision situation. By developing an in-flight collision warning function in the air traffic control system that visualizes flight patterns through the state transition data of in-flight aircrafts on the flight path lines, it can effectively prevent in-flight collisions with traffic alerts. The developed function allows operators to effectively select and control the aircraft in a collision situation by providing the operators with the expected collision time, the relative distance, and the relative altitude while assessing the level of alert, and visualizing the alert information which includes the Attention-Warning-Alert phase via embodying the TCAS standard. With the developed function the air traffic control system could sense an in-flight collision situation before the pilot's decision-making moment.

Keywords

References

  1. 한수철, '비례항법을 이용한 무인 항공기의 최적 충돌 회피 기동', 한국과학기술원 기계공학과, 2004년 12월
  2. 최주원, '민간 무인기의 충돌회피 기술개발 동향', 항공우주산업기술동향, 제2권, 제1호, pp. 142-151, 2004년
  3. Woods, D. D., 'The Cognitive Engineering of Problem Representations, In : Weir GR, Alty JL, Editors, Human-computer Interaction and Complex Systems', New York : Academic Press, pp. 169-188, 1991
  4. Bennett, K. B., et al. 'Visual display in : Salvendy G, Editor, Handbook of Human Factors and Ergonomics', New York : Wiley, pp. 659-696, 1997
  5. Burns, C. M. and Vicente K. J., 'Physical and Functional Displays in Process Supervision and Control(CEL 95-11), Technical Report', Cognitive Engineering Group, University of Toronto, Department of Industrial Engineering, 1995
  6. 고승문, 명노해, '항공기 관제 디스플레이의 생태학적 인터페이스 디자인에 관한 연구', 대한인간 공학회, 제25권, 제4호, pp. 103-113, 2006년 11월 https://doi.org/10.5143/JESK.2006.25.4.103
  7. 송진오, '항공기 상태전이정보를 이용한 비행경로 시각화 기법 연구', 연세대학교 대학원 컴퓨터과학과, 2008년 1월
  8. UVS TECH 2003, 'Conference presentation', 2003
  9. 이지연, '이용자 인터페이스 설계 원칙에 의한 정보시각화 시스템 평가 및 문제점 분석', 정보관리연구, 제34권, 제2호, pp. 67-88, 2003년 https://doi.org/10.1633/JIM.2003.34.2.067