• 제목/요약/키워드: Fatigue Modulus Concept

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복합재료의 피로수명 해석 (Fatigue Life Analysis of Composite Materials)

  • 이창수;황운봉;박현철;한경섭
    • 한국복합재료학회:학술대회논문집
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    • 한국복합재료학회 1999년도 추계학술발표대회 논문집
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    • pp.268-271
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    • 1999
  • Fatigue life Prediction is investigated analytically based on the fatigue modulus concept. Fatigue modulus degradation rate at any fatigue cycle was assumed as a power function of number of fatigue cycles. New stress function describing the relation of initial fatigue modulus and elastic modulus was used to account for material non-linearity at the first cycle. It was assumed that fatigue modulus at failure is proportional to applied stress level. A new fatigue life prediction equation as a function of applied stress is proposed. The prediction was verified experimentally using cross-ply carbon/epoxy laminate (CFRP) tube.

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비선형 변형 거동을 갖는 섬유강화 복합재료의 피로수명 예측 (Fatigue Life Prediction of Fiber-Reinforced Composite Materials having Nonlinear Stress/Strain Behavior)

  • 이창수;황운봉
    • Composites Research
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    • 제12권4호
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    • pp.1-7
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    • 1999
  • 비선형 하중/변위 거동을 나타내는 모재 지배 복합재료의 피로수명 예측을 이론과 실험에 의해 연구하였다. 재료의 비선형성을 고려하기 위해 초기 피로계수와 탄성계수의 관계를 나타내는 응력함수를 도입하였다. 피로계수와 참고계수 개념을 기반으로 하여 새로운 피로수명 예측식이 가한 하중 수위의 함수로 유도되었다. 예측 결과는 직교이방성 탄소섬유/에폭시 적층판을 사용한 원통형 시편의 비틀림 피로 실험과 비교되었으며, 제안된 식은 실험치와 잘 일치하였다.

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탄소섬유강화 복합적층판의 피로특성에 관한 연구 (Study on Fatigue Behavior of Carbon Fiber Reinforced Polyimide Composites)

  • 이창수;황운봉;한경섭;윤병일
    • 대한기계학회논문집
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    • 제15권1호
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    • pp.49-60
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    • 1991
  • 본 연구에서는 "피로계수" (Fig.1)라는 새로운 개념을 도입하여 피로수명을 예측하였다. 먼저, 임의의 피로주기에서 피로계수 감소율은 피로주기의 지수함수를 따른다는 가정을 사용하고, 이를 적분하여 피로계수의 함수로 표현되는 피로수명식을 얻었다. 그리고 이 식에 변형률 파괴기준을 적용하여 최종적인 피로수명 예측식을 유도하였다. 이렇게 유도된 식은 재료상수가 결정되었을 때 임의의 응력상태하에서 의 피로수명을 예측할 수 있게 된다. 제안된 식을 탄소섬유 복합적층판에 적용하여 단일 응력에서의 피로 수명을 예측한 결과, 본 연구에서 제안한 피로수명 예측식(H '||'&'||' H curve)이 기존의 식보다 실험치와 더 잘 일치함을 알 수 있었다. 아울러 탄소섬유 강화 복합재료의 제반 피로특성을 살펴보았다.다.

Studies on the Performance of Self Healing of Plastic Cracks Using Natural Fibers in Concrete

  • Saraswathy, Velu;Kwon, Seung-Jun;Karthick, Subbiah
    • 한국건설순환자원학회논문집
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    • 제2권2호
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    • pp.115-127
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    • 2014
  • Addition of fibers in cement or cement concrete may be of current interest, but this is not a new idea or concept. Fibers of any material and shape play an important role in improving the strength and deformation characteristics of the cement matrix in which they are incorporated. The new concept and technology reveal that the engineering advantages of adding fibers in concrete may improve the fracture toughness, fatigue resistance, impact resistance, flexural strength, compressive strength, thermal crack resistance, rebound loss, and so on. The magnitude of the improvement depends upon both the amount and the type of fibers used. In this paper, locally available waste fibers such as coir fibers, sisal fibers and polypropylene fibers have incorporated in concrete with varying percentages and l/d ratio and their effect on compressive, split, flexural, bond and impact resistance have been reported.

Ultra-low cycle fatigue tests of Class 1 H-shaped steel beams under cyclic pure bending

  • Zhao, Xianzhong;Tian, Yafeng;Jia, Liang-Jiu;Zhang, Tao
    • Steel and Composite Structures
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    • 제26권4호
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    • pp.439-452
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    • 2018
  • This paper presents experimental and numerical study on buckling behaviors and hysteretic performance of Class 1 H-shaped steel beam subjected to cyclic pure bending within the scope of ultra-low cycle fatigue (ULCF). A loading device was designed to achieve the pure bending loading condition and 4 H-shaped specimens with a small width-to-thickness ratio were tested under 4 different loading histories. The emphasis of this work is on the impacts induced by local buckling and subsequent ductile fracture. The experimental and numerical results indicate that the specimen failure is mainly induced by elasto-plastic local buckling, and is closely correlated with the plastic straining history. Compared with monotonic loading, the elasto-plastic local buckling can occur at a much smaller displacement amplitude due to a number of preceding plastic reversals with relative small strain amplitudes, which is mainly correlated with decreasing tangent modulus of the material under cyclic straining. Ductile fracture is found to be a secondary factor leading to deterioration of the load-carrying capacity. In addition, a new ULCF life evaluation method is proposed for the specimens using the concept of energy decomposition, where the cumulative plastic energy is classified into two categories as isotropic hardening and kinematic hardening correlated. A linear correlation between the two energies is found and formulated, which compares well with the experimental results.