材料分散的脆性金刚石晶格结构的拉伸强度

Xiaoyu Zhang, Zeang Zhao, Shengyu Duan, H. Lei, Daining Fang
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摘要

这项研究探讨了材料分散对脆性金刚石晶格结构拉伸强度的影响。在增材制造的实际晶格结构中,强度的分散来自微尺度缺陷、几何偏差和制造引起的各向异性。现有的大多数理论模型都无法预测材料分散导致的极限破坏强度减弱,因为它们都假定晶格结构具有均匀且确定的力学性能。本文以脆性材料制成的金刚石晶格结构为典型实例,结合支柱强度的高斯分布对其拉伸行为进行了数值研究。受模拟结果的启发,我们建立了一个随机理论模型来预测具有材料分散性的金刚石晶格结构的变形和破坏。该模型捕捉到了这样一个事实:即使整个结构仍能承受载荷,但较弱的支柱会首先断裂。随着应力的不断增加,这些断裂的支柱会累积成连续的裂缝,当初始裂缝的能量释放率超过晶格结构的固有断裂韧性时,就会发生最终破坏。这项研究为经典理论补充了随机特征,并提高了人们对格构结构潜在加固和增韧设计的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The tensile strength of brittle diamond lattice structure with material dispersion
This work investigates the effect of material dispersion on the tensile strength of brittle diamond lattice structure. In actual lattice structures fabricated by additive manufacturing, the dispersion of strength comes from microscale defect, geometric deviation and manufacture-induced anisotropy. The weakening of ultimate failure strength due to material dispersion cannot be predicted by most existing theoretical models, because they assume homogeneous and determinate mechanical properties of the lattice structure. In this paper, we employ diamond lattice structure made from brittle material as a typical example, and its tensile behavior is numerically investigated by incorporating the Gaussian distribution of strut strength. Inspired by the simulation results, a stochastic theoretical model is developed to predict the deformation and failure of diamond lattice structure with material dispersion. This model captures the fact that weaker struts break first even if the whole structure can still bear load. With the continuous increase of stress, these broken struts accumulate into continuous cracks, and ultimate failure occurs when the energy release rate of the initiated crack surpasses the intrinsic fracture toughness of the lattice structure. This research supplements stochastic feature into classical theories, and improves the understanding of potential strengthening and toughening designs for lattice structures.
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