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Comparison of Mechanical Properties and Energy Absorption of Sheet-Based and Strut-Based Gyroid Cellular Structures with Graded Densities

机译:基于片材和支柱的陀螺腺细胞结构力学性能和能量吸收的比较与分级密度

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摘要

Bio-inspired functionally graded cellular materials (FGCM) have improved performance in energy absorption compared with a uniform cellular material (UCM). In this work, sheet-based and strut-based gyroid cellular structures with graded densities are designed and manufactured by stereo-lithography (SLA). For comparison, uniform structures are also designed and manufactured, and the graded structures are generated with different gradients. The mechanical behaviors of these structures under compressive loads are investigated. Furthermore, the anisotropy and effective elastic modulus of sheet-based and strut-based unit gyroid cellular structures are estimated by a numerical homogenization method. On the one hand, it is found from the numerical results that the sheet-based gyroid tends to be isotropic, and the elastic modulus of sheet-based gyroid is larger than the strut-based gyroid at the same volume fraction. On the other hand, the graded cellular structure has novel deformation and mechanical behavior. The uniform structure exhibits overall deformation and collapse behavior, whereas the graded cellular structure shows layer-by-layer deformation and collapse behavior. Furthermore, the uniform sheet-based gyroid is not only stiffer but also better in energy absorption capacity than the uniform strut-based gyroid structure. Moreover, the graded cellular structures have better energy absorption capacity than the uniform structures. These significant findings indicate that sheet-based gyroid cellular structure with graded densities have potential applications in various industrial applications, such as in crashworthiness.
机译:与均匀的细胞材料(UCM)相比,生物启发功能梯度细胞材料(FGCM)具有改善的能量吸收性能。在这项工作中,通过立体光刻(SLA)设计和制造具有梯度密度的基于板的基于支柱的陀螺蜂窝结构。为了比较,还设计和制造了均匀的结构,并用不同的梯度产生分级结构。研究了这些结构在压缩载荷下的机械行为。此外,通过数值均化方法估计了基于片材和基于支柱的单位陀螺腺细胞结构的各向异性和有效弹性模量。一方面,从数值结果中发现基于片材的陀螺腺体趋于各向同性,并且基于片材的陀螺锭的弹性模量大于相同体积级分的基于支柱的锭剂。另一方面,分级蜂窝结构具有新的变形和机械行为。均匀的结构表现出整体变形和塌陷行为,而分级蜂窝结构示出了逐层变形和塌陷行为。此外,均匀的基于片的陀螺锭剂不仅更易于更易于更易于能量吸收能力,而不是均匀的基于支柱的陀螺胶结构。此外,分级蜂窝结构具有比均匀结构更好的能量吸收能力。这些重要发现表明,具有分级密度的基于片材的陀螺蜂窝结构具有各种工业应用中的潜在应用,例如在持续性上。

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