Kyushu University · 공학
마사키 타나카 교수의 연구실은 주로 나노구조 금속 및 세라믹 재료의 기계적 거동, 고온·저온에서의 연성-취성 전이 거동, 그리고 표면 및 나노미세 구조가 기계적 성질에 미치는 영향을 중심으로 연구를 진행하고 있습니다. 특히, 표면 플라즈몬 폴리톤, 나노인덴테이션, 분자동역학 시뮬레이션을 활용한 재료의 균열 거동과 파손 메커니즘 규명에 초점을 맞추고 있으며, 고강도 철강 및 페어리티틱 스틸의 거친성 제어 기반의 신뢰성 향상 기술 개발도 수행하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
We studied the role of surface-plasmon polaritons (SPPs) in a bandpass transmission property of two-dimensional metal hole arrays (2D-MHAs) by investigating the effect of thin dielectric layers on the 2D-MHA surfaces. We measured zero-order transmission spectra of the 2D-MHAs by changing the thickness of the dielectric layer and found that the bandpass transmission peak shifted to the lower-frequency side with increasing layer thickness, owing to the change of the resonant frequency of the SPP.
In order to elucidate the mechanism behind the decrease in the brittle-to-ductile transition (BDT) temperature with the addition of Ni, impact tests and tensile tests were performed at various test temperatures from 130K to 320K with Ni added ultra-low carbon steels. The dependence of absorbed impact energy on temperature and the Ni content indicates that the BDT temperature was decreased with the increasing Ni content, which suggests that the dislocation mobility at low temperatures was increas
Brittle-ductile transition (BDT) behaviour was investigated in low carbon steel deformed by an accumulative roll-bonding (ARB) process. The temperature dependence of its fracture toughness was measured by conducting four-point bending tests at various temperatures and strain rates. The fracture toughness increased while the BDT temperature decreased in the specimens deformed by the ARB process. Arrhenius plots between the BDT temperatures and the strain rates indicated that the activation energy
Wire-drawn fully pearlitic steel was twisted at room temperature. As a result, a delamination crack propagated along the longitudinal direction of the wire. Backscattered electron and transmission electron microscopy images indicated that the cementite lamellae beneath the delamination crack had vanished. In addition, a fine-grained structure was observed. This indicated that the delamination fracture was not a brittle one but a shear one associated with local severe plastic deformation.
Nanoindentation testing using a Berkovich indenter was conducted to explore the relationships among indentation hardness (<i>H</i>), elastic work energy (<i>W</i><sub>e</sub>), plastic work energy (<i>W</i><sub>p</sub>), and total energy (<i>W</i><sub>t</sub> = <i>W</i><sub>e</sub> + <i>W</i><sub>p</sub>) for deformation among a wide range of pure metal and alloy samples with different hardness, including iron, steel, austenitic stainless steel (<i>H</i> ≈ 2600-9000 MPa), high purity copper, sin
Fracture toughness of silicon crystals has been investigated by indentation methods, and their surface energy has been calculated using molecular dynamics (MD). When a conical indenter was forced into a (001) silicon wafer at room temperature, {110} cracks were mainly introduced from the indent, indicating that fracture occurs most easily along the {110} plane among the crystallographic planes of the 〈001〉 zone. To confirm this orientation dependence, surface energies for those planes were compu
The enhancement of toughness at low temperatures in fine grained low carbon steel was studied, basing on a shielding theory due to dislocations and grain boundaries. Fully annealed low carbon steel was subjected to an accumulative roll bonding (ARB) process for grain refining. The grain size perpendicular to the normal direction was found to be approximately 200 nm after the ARB process. The fracture toughness of low carbon steel ARB applied was measured at 77 K by four-point bending, comparing
Dislocations in a silicon single crystal introduced by three point-bending at a high temperature were observed by electron tomography in annular dark field-scanning transmission electron microscopy (ADF-STEM). Commercially available P type (001) single crystal wafers were employed. An ADF STEM tilt series was acquired from −60° to +60° in tilt range with 2° in tilt step. The diffraction vector was maintained close to g(hkl)=220 during the acquisition by adjusting the [110] direction of the sampl
The temperature dependence of the yield stress, effective stress and activation volume on the Cu content in steel was assessed using polycrystalline ultra-low carbon steels with 0.5, 1 and 2 mass% Cu added. A small hump was seen in the effective stress–temperature curve for ultra-low carbon steel, which has also been reported for high-purity single-crystal iron. The effective stress was found to decrease with increasing the Cu content. The activation volume was found to be linearly related to th