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LRU Layout Method Using Genetic Algorithm

유전 알고리즘을 이용한 LRU 최적배치 방법

  • Received : 2021.04.23
  • Accepted : 2021.08.18
  • Published : 2021.10.01

Abstract

It is difficult to establish a quantitative standard because there are many factors to consider, such as environmental conditions, airworthiness, and maintainability, in determining the installation location of equipment in an aircraft. In addition, as the number of equipment increases, the design proposal increases exponentially, so the design is proceeding depending on the experience of the designer much in order to review it within a limited time schedule. In this paper, a method of calculating the length and weight of the wiring harness according to the location of the equipment and a method of optimizing the weight of the wiring harness and the CG of the equipment using genetic algorithms are described in order to create a quantitative standard useful by comparing the optimal design and the actual design.

항공기 내 장비의 장착 위치 결정은 환경조건, 감항성, 정비성 등 고려해야 할 사항이 많아 정량적인 기준을 세우기 힘들다. 또한 장비의 숫자 증가에 따라 설계안은 기하급수적으로 늘어나기 때문에 제한된 일정 내에 검토하기 위하여 설계자의 경험에 많이 의존하여 설계가 진행되고 있다. 본 논문에서는 설계안을 비교할 수 있는 정량적인 기준을 만들기 위하여 장비의 위치에 따른 와이어링 하네스 길이 및 중량을 계산하는 방법과 유전 알고리즘을 이용하여 와이어링 하네스의 중량과 장비들의 CG를 최적화하는 방법을 제안하였다. 그리고 최적설계와 실제설계를 비교하여 최적화 결과가 유용함을 확인하였다.

Keywords

Acknowledgement

본 연구를 위한 분석 자료를 제공해 주신 문용석님과 변상기님께 감사드립니다.

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