Dong Ruohan, Zhao Ning, Tong Shenghui, Zhang Zeen, Li Gang, You Zesheng
Herbert Gleiter Institute of Nanoscience, School of Materials Science and Engineering, Nanjing University of Science Technology, Nanjing 210094, China.
National Key Laboratory of Nuclear Reactor Technology, Nuclear Power Institute of China, Chengdu 610041, China.
Materials (Basel). 2025 Feb 3;18(3):666. doi: 10.3390/ma18030666.
The accuracy and reliability of small-scale mechanical tests remain doubtful due to significant dependence of the obtained mechanical properties on specimen size. Mesoscale tensile tests with specimen sizes ranging from 10 μm to 1 mm are capable of obtaining bulk-like properties but are rarely applied to hexagonal close-packed metals. In this study, well-designed comparative tensile tests were carried out on a Zircaloy-4 alloy with a grain size of 4 μm using femtosecond laser-machined mesoscale specimens with a thickness of about 60 μm, sub-sized specimens with a thickness of about 1.3 mm, and standard specimens with a thickness of 4 mm. The quantitative results revealed that irrespective of the small specimen dimensions, the yield strength, tensile strength, and tensile ductility are only approximately 10.4%, 5.2%, and 13% lower than those of the standard specimens, respectively. This clearly demonstrates that the mechanical properties can be assessed with satisfactory accuracy by mesoscale tensile tests. The comparatively greater deviation of the yield strength at the mesoscale arises from the disappearance of yield point behavior, while the reduced tensile ductility is associated with the larger volume fraction of surface grains. The surface grains are characterized by more surface dislocation sources and deform with weaker constraints from neighboring grains, leading to smooth plastic yielding and slightly reduced strain hardening at the mesoscale.
由于所获得的力学性能对试样尺寸有显著依赖性,小规模力学试验的准确性和可靠性仍然存疑。试样尺寸范围为10μm至1mm的中尺度拉伸试验能够获得类似体材料的性能,但很少应用于六方密堆积金属。在本研究中,使用飞秒激光加工的厚度约为60μm的中尺度试样、厚度约为1.3mm的小尺寸试样以及厚度为4mm的标准试样,对晶粒尺寸为4μm的锆合金-4进行了精心设计的对比拉伸试验。定量结果表明,无论试样尺寸多小,屈服强度、抗拉强度和拉伸延性分别仅比标准试样低约10.4%、5.2%和13%。这清楚地表明,通过中尺度拉伸试验可以以令人满意的精度评估力学性能。中尺度下屈服强度相对较大的偏差源于屈服点行为的消失,而拉伸延性的降低与表面晶粒的体积分数较大有关。表面晶粒的特征是有更多的表面位错源,并且在相邻晶粒的较弱约束下变形,导致在中尺度下塑性屈服平滑且应变硬化略有降低。