Zhang Yuhang, Zhou Hongjian, Liu Xiuming
Hubei Digital Manufacturing Key Laboratory, School of Mechanical and Electronic Engineering, Wuhan University of Technology, Wuhan 430070, China.
School of Mechanical & Electrical Engineering, Wuhan Institute of Technology, Wuhan 430205, China.
Materials (Basel). 2025 Jul 21;18(14):3423. doi: 10.3390/ma18143423.
Metallic nanofoams with amorphous structures demonstrate exceptional properties and significant potential for diverse applications. However, their mechanical properties at different temperatures are still unclear. By using molecular dynamics simulation, this study investigates the mechanical responses of representative CuZr amorphous metallic nanofoam (AMNF) under uniaxial tension and compression at various temperatures. Our results reveal that the mechanical properties, such as Young's modulus, yield stress, and maximum stress, exhibit notable temperature sensitivity and tension-compression asymmetry. Under tensile loading, the Young's modulus, yield strength, and peak stress exhibit significant reductions of approximately 30.5%, 33.3%, and 32.9%, respectively, as the temperature increases from 100 K to 600 K. Similarly, under compressive loading, these mechanical properties experience even greater declines, with the Young's modulus, yield strength, and peak stress decreasing by about 34.5%, 38.0%, and 41.7% over the same temperature range. The tension-compression asymmetry in yield strength is temperature independent. Interestingly, the tension-compression asymmetry in elastic modulus becomes more pronounced at elevated temperatures, which is attributed to the influence of surface energy effects. This phenomenon is further amplified by the increased disparity in surface-area-to-volume ratio variations between tensile and compressive loading at higher temperatures. Additionally, as the temperature rises, despite material softening, the structural resistance under large tensile strains improves due to delayed ligament degradation and more uniform deformation distribution, delaying global failure.
具有非晶结构的金属纳米泡沫展现出卓越的性能以及在多种应用中的巨大潜力。然而,它们在不同温度下的力学性能仍不明确。通过分子动力学模拟,本研究探究了代表性的CuZr非晶金属纳米泡沫(AMNF)在不同温度下单轴拉伸和压缩时的力学响应。我们的结果表明,诸如杨氏模量、屈服应力和最大应力等力学性能表现出显著的温度敏感性和拉伸 - 压缩不对称性。在拉伸载荷下,随着温度从100 K升高到600 K,杨氏模量、屈服强度和峰值应力分别显著降低约30.5%、33.3%和32.9%。同样,在压缩载荷下,这些力学性能下降得更为明显,在相同温度范围内,杨氏模量、屈服强度和峰值应力分别下降约34.5%、38.0%和41.7%。屈服强度的拉伸 - 压缩不对称性与温度无关。有趣的是,弹性模量的拉伸 - 压缩不对称性在高温下变得更加明显,这归因于表面能效应的影响。在较高温度下,拉伸和压缩载荷下表面积与体积比变化的差异增大,进一步放大了这一现象。此外,随着温度升高,尽管材料软化,但由于韧带降解延迟和变形分布更均匀,大拉伸应变下的结构抗力提高,从而延迟了整体失效。