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복합재 코일스프링 개발을 위한 수치해석 및 실험적 연구
오성하(Sung Ha Oh),최복록(Bok Lok Choi) 대한기계학회 2014 大韓機械學會論文集A Vol.38 No.1
본 연구에서는 자동차 코일스프링을 대상으로 CFRP 복합재 재료의 적용가능성을 제시하였다. 기존 강재료를 복합재로 대체해서 대폭적인 경량화를 추구하기 위해서는 재료특성 뿐만 아니라 스프링의 설계인자들도 함께 최적화를 해야 할 것이다. 따라서 먼저 복합재 코일스프링의 전단특성을 고려해서 최대 비틀림강성을 나타내도록 45도로 와인딩한 봉 구조물을 구성하였으며, 예측된 전단탄성계수를 시험결과와 비교한 결과 매우 근사한 값을 나타내었다. 다음으로 45도로 와인딩된 CFRP 복합재 스프링의 소선직경을 결정하기 위해서 비틀림 강성을 강재와 복합재 두 재료에 대해서 동일하게 하였으며, 그 결과, 소선직경은 11.0 mm에서 17.5mm로 재료가 복합재로 변경됨에 따라서 증가되어야 한다. 마지막으로 이 같이 구성된 복합재 코일스프링의 유한요소모델을 구성해서 스프링상수를 계산하였으며, 시험결과와 비교·평가하였다. This paper shows the feasibility of using carbon-fiber-reinforced polymer (CFRP) composite materials for manufacturing automotive coil springs. For achieving weight reduction by replacing steel with composite materials, it is essential to optimize the material parameters and design variables of the coil spring. First, the shear modulus of a CFRP beam model, which has 45° ply angles for maximum torsional stiffness, was calculated and compared with the test results. The diameter of the composite spring was predicted to be 17.5 mm for ensuring a spring rate equal to that when using steel material. Finally, a finite element model of the composite coil spring with 45° ply angles and 17.5 mm wire diameter was constructed and analyzed for obtaining the static spring rate, which was then compared with experimental results.
복합재 판스프링의 재료특성에 따른 스프링 강성변화와 초기 파단하중 예측
오성하(Sung Ha Oh),최복록(Bok Lok Choi) 대한기계학회 2014 大韓機械學會論文集A Vol.38 No.12
본 연구에서는 자동차 판스프링을 대상으로 유리섬유 복합재의 적용을 위한 해석적 방법들을 제시하였다. 즉, 판스프링의 정적거동에 영향을 미치는 복합재 재료의 구성 성분비와 섬유각의 변화 등을 고려한 해석을 수행하였다. GFRP 복합재의 기계적 성질들은 ASTM 표준시험 방법을 따라서 직접 측정하였으며, 역해석 방법을 통해서 섬유와 수지 각각의 직교이방성과 등방성 성질들을 시험결과들로부터 재구성하였다. 다음으로 섬유의 방향과 섬유와 수지의 함유량 비와 같은 주요 재료변수들의 변화에 따른 스프링 계수들의 변화를 분석하였다. 마지막으로 초기 파괴하중을 예측하기 위해서 선형 탄성해석과 파손조건식을 이용해서 점진적 파괴해석을 수행하였으며, 그 결과 최초의 손상부위는 전단응력에 의해 판스프링의 모서리 부위에서 발생하였다. This paper presented analysis methods for adapting E-glass fiber/epoxy composite (GFRP) materials to an automotive leaf spring. It focused on the static behaviors of the leaf spring due to the material composition and its fiber orientation. The material properties of the GFRP composite were directly measured based on the ASTM standard test. A reverse implementation was performed to obtain the complete set of in-situ fiber and matrix properties from the ply test results. Next, the spring rates of the composite leaf spring were examined according to the variation of material parameters such as the fiber angles and resin contents of the composite material. Finally, progressive failure analysis was conducted to identify the initial failure load by means of an elastic stress analysis and specific damage criteria. As a result, it was found that damage first occurred along the edge of the leaf spring owing to the shear stresses.
승용차 복합재 코일스프링 개발을 위한 설계변수들의 결정
오성하(Sung-Ha Oh),최복록(Bok-Lok Choi) 한국기계가공학회 2013 한국기계가공학회지 Vol.12 No.1
This paper presents the feasibility on the application of composite coil spring, which has great interest in the automobile industry. In order to obtain much lighter weight of the composite spring, it will be necessary to optimize the design variables such as fiber angles and diameter of coil, etc. First of all, mechanical properties were measured to consider the effects of FVR and ply angles for carbon fiber composite material. And the shear modulus with respect to ply angles were derived based on twisting angles calculated by torsional beam model. Next we determined the design parameters of composite coil spring, which has equivalent spring rate to the steel coil spring. In order to assess the proposed method, finite element model of the composite spring was developed and analysed to obtain the spring constant. The results showed that static spring rate of the composite spring was in a good agreement with that of steel spring.
3점 굽힘 하중 해석을 통한 복합재 도어 임팩트 빔 단면형상 설계개선
하중찬(Jung-Chan Ha),오성하(Sung Ha Oh),백인석(In-Seok Baek),이석순(Seok-Soon Lee) 한국기계가공학회 2020 한국기계가공학회지 Vol.19 No.6
The currently observed trend in car manufacturing is to increase energy-efficiency by producing lighter cars. This study examines the replacement of particular parts, specifically around the impact beam, with material composites 30% lighter than conventional steel currently used. The shape of the impact beam was determined as the trapezoidal cross-sectional area with central reinforcement, using three-point bending analysis. A prototype was fabricated based on the findings of our study and its performance was evaluated by the three-point bending analysis; 2 ply of aramid applied for its displacement. The performance of the final prototype for the door assembly was evaluated using a side-door strength test, which resulted to measured initial strength of 10.5 KN and intermediate strength of 15.6 KN. This research provides a promising solution for better impact beam manufacturing.