Bogusz Paweł, Nasiłowska Barbara, Sławiński Grzegorz
Faculty of Mechanical Engineering, Military University of Technology, Gen. S. Kaliskiego 2, 00-908 Warsaw, Poland.
Institute of Optoelectronics, Military University of Technology, Gen. S. Kaliskiego 2, 00-908 Warsaw, Poland.
Materials (Basel). 2022 Dec 12;15(24):8875. doi: 10.3390/ma15248875.
A material strength investigation along with a detailed microfractography analysis of fractures formed during static tensile tests of steel Armstal 550 was performed. The tests in this research were conducted in a temperature range of 298 to 973 K. In addition, during tensile tests at ambient temperature, optical measurements of strain maps and the curvature of the neck were performed. The minimum cross-sectional diameter and the radius of the neck curvature during tensile tests were obtained. The data can be directly used to obtain the true stress-strain curve. The material property analysis confirmed the high strength of the Armstal 550 alloy. The ultimate strength at room temperature equals 2.14 GPa, whereas the yield point equals 1.65 GPa. A decrease in the strength parameters along with an increase in temperature was noted. This is a typical phenomenon related to a change in the density and thermal expansion of steel under the influence of the temperature increase. For example, at a temperature of 500 °C, the ultimate strength is more than 50% less than at room temperature. An in-depth analysis of the metallography and microfractography of fractures resulting from static tensile tests showed the formation of atypical nano- and microstructures with an elongated shape. Local nano- and microstructures were observed at different levels of intensity for different temperatures. The largest clusters of nanoparticles were present on the surfaces of the specimens examined at a temperature of 973 K. Scanning microscopy analysis confirmed the presence of molybdenum oxides.
对Armstal 550钢在静态拉伸试验过程中形成的断裂进行了材料强度研究,并进行了详细的微观断口分析。本研究中的试验在298至973 K的温度范围内进行。此外,在室温下的拉伸试验过程中,对应变图和颈缩曲率进行了光学测量。获得了拉伸试验过程中的最小横截面直径和颈缩曲率半径。这些数据可直接用于获得真应力-应变曲线。材料性能分析证实了Armstal 550合金的高强度。室温下的极限强度等于2.14 GPa,而屈服点等于1.65 GPa。注意到强度参数随温度升高而降低。这是一种与温度升高影响下钢的密度和热膨胀变化相关的典型现象。例如,在500℃的温度下,极限强度比室温下降低了50%以上。对静态拉伸试验产生的断裂的金相和微观断口进行深入分析,发现形成了具有细长形状的非典型纳米和微观结构。在不同温度下观察到不同强度水平的局部纳米和微观结构。在973 K温度下检查的试样表面存在最大的纳米颗粒簇。扫描显微镜分析证实了氧化钼的存在。