Kyushu University · 공학
토모노리 기타시마 교수의 연구실은 레이저 기반 Additive Manufacturing(적층 제조) 기술을 중심으로, 특히 희토계 금속 및 니켈 기반 합금의 고온에서의 미세구조 제어와 단일결정 구조 형성에 중점을 두고 있습니다. 고성능 터보기계 부품을 위한 내열성 합금 개발과 함께, 레이저 프로파일 최적화, 열처리 조건 제어, 미세구조의 거시적·미세적 거동 분석을 통해 기계적 성질을 극대화하는 데 연구를 집중하고 있습니다. 특히, 선택적 레이저 용융(SLM) 공정에서의 열장 및 응력 분포 제어, 고온 산화 거동 시뮬레이션 등 다학제적 접근을 통해 항공우주 분야의 핵심 소재 기술을 선도하고 있습니다.
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The development of an effective microstructure design method for multicomponent alloys is of considerable importance for improving both the design of alloys and the design of processes for producing alloys with unique properties. The coupling of the phase-field method and the calculation of phase diagrams (CALPHAD) method can be used for predicting the evolution of microstructures in multicomponent alloys. Such predictions make use of CALPHAD thermodynamic information with the chemical free ener
The exploration of flat-top laser profile in fabricating a single crystal (SX) structure using selective laser melting (SLM) in pure Ni was investigated. Optimization of the parameters led to the formation of a planar melt pool. A homogeneous near-{001}<100> texture with suppressed high-angle grain boundary (HAGB) in high building heights of >20 mm was achieved without an SX seed. In addition, the planar melt pool suppressed the geometrically necessary dislocation accumulation and prevented stra
The effects of annealing on the microstructure of pure Ni fabricated by laser powder bed fusion (LPBF) were investigated using two different beam profiles: Gaussian and flat-top. The dislocations in the as-fabricated samples were predominantly arranged as statistically stored dislocations, and the low driving force resulting from the insufficient accumulation of geometrically necessary dislocations (GNDs) in the as-fabricated specimens caused minimal static recrystallization in the as-annealed s
Oxygen dissolution in titanium during oxidation is simulated with oxide/metal interface migration using a finite volume method. In this simulation, the oxidation rate resulting from both oxide growth and oxygen penetration into a metal are taken into account. The results show the temperature dependency of oxygen concentration at the oxide/metal interface in the metal, which is about 21 at% up to 600°C, and increases drastically to the oxygen solubility limit at temperatures above 600°C. This sug