Kyoto University · Materials Science
Yan Chong 교수의 연구실은 티타늄 기반 합금의 기계적 거동과 미세구조 제어를 핵심으로 하며, 산소 및 알루미늄과 같은 불순물이 미치는 영향을 기계적 메커니즘 차원에서 규명하고 있습니다. 특히, 산소로 인한 취성 증가 문제를 해결하기 위해 나노구조화, 균일한 미세구조 설계, 그리고 고압 가공 기법을 활용한 강도- ductility 상호보완적 향상 전략을 개발하고 있습니다. 이는 고온·저온 환경에서의 응용 가능성을 고려한 첨단 티타늄 합금의 설계 원리를 제시합니다.
Figures are computed from collected data and may differ slightly.
One of the most potent examples of interstitial solute strengthening in metal alloys is the extreme sensitivity of titanium to small amounts of oxygen. Unfortunately, these small amounts of oxygen also lead to a markedly decreased ductility, which in turn drives the increased cost to purify titanium to avoid this oxygen poisoning effect. Here, we report a systematic study on the oxygen sensitivity of titanium that provides a clear mechanistic view of how oxygen impurities affect the mechanical p
Individually, increasing the concentration of either oxygen or aluminum has a deleterious effect on the ductility of titanium alloys. For example, extremely small amounts of interstitial oxygen can severely deteriorate the tensile ductility of titanium, particularly at cryogenic temperatures. Likewise, substitutional aluminum will decrease the ductility of titanium at low-oxygen concentrations. Here, we demonstrate that, counter-intuitively, significant additions of both Al and O substantially i
Interstitial oxygen embrittles titanium, particularly at cryogenic temperatures, which necessitates a stringent control of oxygen content in fabricating titanium and its alloys. Here, we propose a structural strategy, via grain refinement, to alleviate this problem. Compared to a coarse-grained counterpart that is extremely brittle at 77 K, the uniform elongation of an ultrafine-grained (UFG) microstructure (grain size ~ 2.0 µm) in Ti-0.3wt.%O is successfully increased by an order of magnitude,
Caprolactam (CPL) is a widely used chemical intermediate for the production of Nylon-6. However, existing synthetic routes in industry have severe drawbacks. The development on the synthesis of CPL from 6-aminocapronitrile (ACN), using near- and supercritical water as the solvent, reactant and catalyst, is described in this paper. The two-step reaction (hydrolysis and cyclization) to produce CPL is combined in a single process, by using a continuous-flow system. Effects of pressure, temperature,
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