Burtscher Michael, Zhao Mingyue, Kappacher Johann, Leitner Alexander, Wurmshuber Michael, Pfeifenberger Manuel, Maier-Kiener Verena, Kiener Daniel
Department of Materials Science, Chair of Materials Physics, University of Leoben, Jahnstraße 12, 8700 Leoben, Austria.
Department of Materials Science, Chair of Physical Metallurgy and Metallic Materials, University of Leoben, Roseggerstraße 12, 8700 Leoben, Austria.
Nanomaterials (Basel). 2021 Nov 3;11(11):2951. doi: 10.3390/nano11112951.
The applicability of nano-crystalline W/Cu composites is governed by their mechanical properties and microstructural stability at high temperatures. Therefore, mechanical and structural investigations of a high-pressure torsion deformed W/Cu nanocomposite were performed up to a temperature of 600 °C. Furthermore, the material was annealed at several temperatures for 1 h within a high-vacuum furnace to determine microstructural changes and surface effects. No significant increase of grain size, but distinct evaporation of the Cu phase accompanied by Cu pool and faceted Cu particle formation could be identified on the specimen's surface. Additionally, high-temperature nanoindentation and strain rate jump tests were performed to investigate the materials mechanical response at elevated temperatures. Hardness and Young's modulus decrease were noteworthy due to temperature-induced effects and slight grain growth. The strain rate sensitivity in dependent of the temperature remained constant for the investigated W/Cu composite material. Also, the activation volume of the nano-crystalline composite increased with temperature and behaved similar to coarse-grained W. The current study extends the understanding of the high-temperature behavior of nano-crystalline W/Cu composites within vacuum environments such as future fusion reactors.
纳米晶W/Cu复合材料的适用性取决于其机械性能和高温下的微观结构稳定性。因此,对高压扭转变形的W/Cu纳米复合材料进行了高达600°C的力学和结构研究。此外,该材料在高真空炉中于多个温度下退火1小时,以确定微观结构变化和表面效应。在试样表面未发现晶粒尺寸显著增加,但可识别出Cu相的明显蒸发,并伴有Cu池和多面Cu颗粒的形成。此外,还进行了高温纳米压痕和应变速率跳跃试验,以研究材料在高温下的力学响应。由于温度诱导效应和轻微的晶粒生长,硬度和杨氏模量的降低值得注意。对于所研究的W/Cu复合材料,应变速率敏感性与温度无关,保持恒定。此外,纳米晶复合材料的激活体积随温度增加,其行为与粗晶W相似。本研究扩展了对纳米晶W/Cu复合材料在未来聚变反应堆等真空环境中高温行为的理解。