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Insensitivity to Flaws Leads to Damage Tolerance in Brittle Architected Meta-Materials

机译:对缺陷的不敏感导致脆性批评元材料的损伤耐受性

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Cellular solids are instrumental in creating lightweight, strong, and damage-tolerant engineering materials. By extending feature size down to the nanoscale, we simultaneously exploit the architecture and material size effects to substantially enhance structural integrity of architected meta-materials. We discovered that hollow-tube alumina nanolattices with 3D kagome geometry that contained pre-fabricated flaws always failed at the same load as the pristine specimens when the ratio of notch length (a) to sample width (w) is no greater than 1/3, with no correlation between failure occurring at or away from the notch. Samples with (a/w)??0.3, and notch length-to-unit cell size ratios of (a/l)??5.2, failed at a lower peak loads because of the higher sample compliance when fewer unit cells span the intact region. Finite element simulations show that the failure is governed by purely tensile loading for (a/w)??0.3 for the same (a/l); bending begins to play a significant role in failure as (a/w) increases. This experimental and computational work demonstrates that the discrete-continuum duality of architected structural meta-materials may give rise to their damage tolerance and insensitivity of failure to the presence of flaws even when made entirely of intrinsically brittle materials.
机译:细胞固体是仪器制造轻质,强,耐损害的工程材料。通过将特征尺寸延伸到纳米级,我们同时利用架构和材料尺寸效应,从而大大提高了架构元材料的结构完整性。我们发现,当凹​​口长度(a)与样品宽度(w)的比率不大于1/3时,含有预制漏洞的3D kagome几何形状的空心管氧化铝纳米图案始终在与原始标本相同的载荷中失效。 ,在从凹口处发生故障之间的故障之间没有相关性。 (A / W)的样品?>?0.3和Notch长度到单位细胞尺寸比(A / L)?5.2,由于单位细胞跨度较少的样品顺应性而失败,在较低的峰值负载下完整的区域。有限元模拟表明,失败是通过纯粹拉伸载荷(A / W)的管辖(a / w)的管辖(相同(a / l);弯曲开始在失败中发挥重要作用(A / W)增加。这种实验和计算工作表明,即使在完全是本质上脆性材料的情况下,也可能导致其归属结构元材料的离散连续性的抗损伤性和不敏感性。

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