The University of Tokyo · 공학
Kazuki Shibanuma 교수의 연구실은 철강 재료의 다공성 거친 파손, 피로 수명 예측 및 균열 메커니즘을 다각도로 분석하는 데 중점을 두고 있습니다. 주로 다중스케일 유한요소 모델링을 활용해 미세구조(예: 석출상, 고립상, 초미세립자)와 거시적 거친 파손 거동 간의 상관관계를 규명하며, 실험과 수치해석을 융합한 정량적 파라미터 식별 전략을 개발하고 있습니다. 특히, 용접 구조물, 고강도 스틸, 이종구조를 가진 복합재료의 피로 수명 및 파손 거동 예측에 응용하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Although various effective models for simulating ductile fracture in metallic materials have been established, the methods to identify the required parameters have scarcely been clarified. The difficulty for parameters identification of ductile fracture models is the actual bottleneck for accurate numerical predictions in ductile fracture simulation. In this paper, a strategy to efficiently identify the post-necking strain behaviour and the ductility diagram parameters is proposed by a hybrid ex
It is known that a cracking of brittle phase such as cementite works as a trigger of cleavage fracture initiation. This study shows a microscopic observation of cracked cementite and its quantitation of the cracking nucleation in ferrite-cementite steels. Seven steels with various sizes of microstructures are produced by laboratory scale vacuum melting and rolling. The cementite particle thickness was measured by a SEM observation and an image analysis. Tensile tests using circumferential notche
• The fatigue performance of welded joints is predicted by multiscale model simulations. • Microstructure distribution, strength distribution in HAZ and 3D weld toe shapes are considered simultaneously in the multiscale model. • The modelling strategy for multiple crack initiation, growth, and coalescence behaviour is proposed. • The proposed strategy for predicting the fatigue performance of welded joints is validated by experimental results. This study predicts the fatigue performance of welde
Multiscale modelling strategy for predicting fatigue lives and limits of steels is proposed based on a generalised method for evaluating grain boundaries’ (GBs) effects on fatigue crack growth. The proposed strategy is a modification of our previous works that extends the applicability from only low-grade ferrite steels to high-grade bainite steels. A microstructure model was developed considering distances between GBs and misorientations between adjacent grains. The strategy was validated by co