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Light-weight/defect-tolerant topologically self-interlocking polymeric structure by fused deposition modeling

机译:通过融合沉积建模的轻量/耐缺陷拓扑自锁聚合物结构

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Open-cell structures such as self-interlocking (SIL) assemblies show advantages in weight reduction, insulation, energy dissipation, and impact energy absorption. However, there are few studies investigating the tensile property and energy absorption performance of SIL structures. Here, topological SIL polymeric structures were 3D printed by fused deposition modeling with constant and proportional strut thickness, to study the scaling laws relating strength and toughness of the structure to its dimensions. Relative density (rho) over bar changes from 0.03 to 0.31 with the number of tetrahedron elements in X/Y directions for structures which have constant strut thickness; but the (rho) over bar is fixed at 0.13 regarding the number of tetrahedron elements changes for those with proportional strut thickness. According to tensile and in-plane/out-of-plane compression tests, as well as FEA analysis, there is a clear relative density dependence in the defect-tolerant structure performance. The maximum tensile stresses for samples C-77 ((rho) over bar = 0.31) and P-77 ((rho) over bar = 0.13) are 4.68 MPa and 1.15 MPa, respectively. And the absorbed kinetic energy is about 2.7 J/cm(3) for sample C-77 but 0.6 J/cm(3) for sample P-77. It is envisioned that such structure can be reinforced within a host for impact mitigation and damage-induced crack on-demand healing for future endeavors.
机译:诸如自锁(SIL)组件之类的开孔结构在减轻重量,绝缘,耗能和冲击能量吸收方面显示出优势。但是,很少有研究研究SIL结构的拉伸性能和能量吸收性能。在这里,通过熔融沉积建模以恒定和成比例的支杆厚度3D打印拓扑SIL聚合物结构,以研究将结构的强度和韧性与其尺寸相关的缩放定律。对于具有恒定支柱厚度的结构,随着X / Y方向上四面体元素数量的增加,棒上的相对密度(rho)从0.03变为0.31;但是,对于具有成比例的支柱厚度的四面体元素,其四面体元素的数量变化会导致(rho)over bar固定为0.13。根据拉伸和平面/平面外压缩测试以及FEA分析,在耐缺陷的结构性能中存在明显的相对密度依赖性。样品C-77(在bar上的ρ= 0.31)和P-77(在bar上的ρ= 0.13)的最大拉应力分别为4.68 MPa和1.15 MPa。 C-77样品的吸收动能约为2.7 J / cm(3),而P-77样品的吸收动能约为0.6 J / cm(3)。可以预见的是,这种结构可以在主体内得到加强,以减轻冲击和按需修复裂纹引起的裂纹,从而为将来的工作做出贡献。

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