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Structural Analysis of Composite Partition Panel according to Weaving Methods

직조 방법에 따른 복합재 파티션 패널의 구조 해석

  • Received : 2020.03.27
  • Accepted : 2020.05.29
  • Published : 2020.06.30

Abstract

The purpose of this paper is to examine the possibility of weight reduction by changing the partition panel of vehicle from an existing aluminum material to carbon fiber reinforced plastics. Three weaving methods (plain, twill and satin) were used in the manufacture of composite materials, and they were produced and tested to derive their material properties. The analysis model of composite partition panel for torsional conditions was developed and the structural stability and system stiffness were evaluated according to Tsai-Hill failure criteria. With design variables for fiber orientation angles and stacking sequence, evolutional optimal algorithm was performed and as the results, the optimal composite partition panel was designed. In addition, the structural analysis results for strength and specific stiffness were compared with aluminum partition panels and composite partition panels to verify the possibility of weight reduction.

본 논문은 차량에 사용되는 파티션 패널을 기존의 알루미늄 소재에서 Carbon Fiber Reinforced Plastics(CFRP)로 소재를 변경하여 경량화 가능성을 확인하는 것을 목적으로 한다. 복합재 제작에는 3가지 방법의 직조 방법(평직, 능직, 주자직)이 사용되었고, 복합재 시편을 제작하고 시험을 수행하여 물성을 도출하였다. 이를 통해 비틀림 조건에 대한 복합재 파티션 패널 해석 모델을 구성하고, Tsai-Hill 파손 기준에 따라 구조적 안정성과 시스템 강성을 평가하였다. 섬유 배향 각도와 적층 순서에 대한 설계변수를 통해, 진화론적 알고리즘을 수행하였고, 그 결과로 최적의 복합재 파티션 패널을 설계하였다. 또한, 강도 및 비강성에 대한 구조해석 결과를 기존의 알루미늄 파티션 패널과 복합재 파티션 패널를 비교하여, 경량화 가능성을 검증하였다.

Keywords

References

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