Tohoku University · 공학
이 교수의 연구실은 적층 제조 기술, 특히 레이저 및 전자빔 분말 베드 퓨전 공정에서의 품질 제어를 핵심으로 삼고 있습니다. 분말의 흐름성, 분포 균일성, 분말 베드 밀도 향상 및 내부 결함 발생 메커니즘 규명을 위한 실험 및 수치 시뮬레이션 통합 연구를 수행합니다. 특히 다재료 복합부품 제작, 공정 매개변수 최적화, 저중력 환경에서의 제조 가능성을 고려한 기초 연구를 진행하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Laser beam powder bed fusion (L-PBF) additive manufacturing offers significant advantages in fabricating multi-material parts with complex geometries and controllable material distributions. In this study, we utilized L-PBF technology to fabricate carbon steel/Al alloy samples with specific bonding strengths by controlling the formation of intermetallic compounds at the liquid/solid interface. Machine learning was employed to optimize the process parameters for the fabrication of carbon steel an
This study was performed to select a preferred seed crystal material for the phosphorus crystallization process through a comparative study of four materials: electron arc furnace, blast furnace and converter slag, and phosphate rock. Leaching and phosphorus removal tests were conducted to evaluate the efficacy of the four materials as seeding agents. Converter slag demonstrated a much larger leaching capacity with respect to calcium and hydroxide ions than did either electron arc furnace or bla
In this study, we proposed alternative spreading techniques aimed at enhancing the powder bed properties in powder bed fusion additive manufacturing, utilizing discrete element simulations. Our findings revealed significant alterations in the powder spreading regime depending on the adopted spreading strategies. In powder spreading with two blades, the climbing regime in the powder pile was eliminated due to the high compressive condition. The powder spreading with two blades can enhance the hom
Understanding powder spreading under low gravity conditions is essential for optimizing final products using additive manufacturing in space. In this study, we investigated the role of gravity on flowability and spreading mechanisms through combined experimental and discrete element method (DEM) studies. Three powders with different theoretical densities were used to reenact low compressive conditions resembling those in a low-gravity environment. The influence of low compressive conditions on f
Controlling internal defects within as-built parts is one of the great interests in the additive manufacturing field. In this study, we explore the powder spreading and defect evolution mechanisms on realistic printing surfaces through a comprehensive multiphysics simulation. The efficacy of a flat surface criterion for internal defect elimination was verified using a machine learning approach. The steady layer thickness in the electron beam melting process was estimated for different printing s
Optimizing powder bed quality is crucial for enhancing the quality of objects manufactured through the powder bed fusion additive manufacturing (PBF-AM) process. In this study, we propose an optimal particle size distribution (PSD) to improve powder bed density and homogeneity during the recoating process. Four PSD types, including unimodal, bimodal, trimodal, and original, were prepared using sieved stainless steel 304 powder for evaluation. The influence of PSDs on flowability and cohesive for