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Mechanical characterization of 3D printed, non-planar lattice structures under quasi-static cyclic loading

机译:准静态循环载荷下3D印刷非平面晶格结构的机械表征

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Purpose - While additive manufacturing via melt-extrusion of plastics has been around for more than several decades, its application to complex geometries has been hampered by the discretization of parts into planar layers. This requires wasted support material and introduces anisotropic weaknesses due to poor layer-to-layer adhesion. Curved-layer manufacturing has been gaining attention recently, with increasing potential to fabricate complex, low-weight structures, such as mechanical metamaterials. This paper aims to study the fabrication and mechanical characterization of non-planar lattice structures under cyclic loading. Design/methodology/approach - A mathematical approach to parametrize lattices onto Bezier surfaces is validated and applied here to fabricate non-planar lattice samples via curved-layer fused deposition modeling. The lattice chirality, amplitude and unit cell size were varied, and the properties of the samples under cyclic-loading were studied experimentally. Findings - Overall, lattices with higher auxeticity showed less energy dissipation, attributed to their bending-deformation mechanism. Additionally, bistability was eliminated with increasing auxeticity, reinforcing the conclusion of bending-dominated behavior. The analysis presented here demonstrates that mechanical metamaterial lattices such as auxetics can be explored experimentally for complex geometries where traditional methods of comparing simple geometry to end-use designs are not applicable. Research limitations/implications - The mechanics of non-planar lattice structures fabricated using curved-layer additive manufacturing have not been studied thoroughly. Furthermore, traditional approaches do not apply due to parameterization deformations, requiring novel approaches to their study. Here the properties of such structures under cyclic-loading are studied experimentally for the first time. Applications for this type of structures can be found in areas like biomedical scaffolds and stents, sandwich-panel packaging, aerospace structures and architecture of lattice domes. Originality/value - This work presents an experimental approach to study the mechanical properties of non-planar lattice structures via quasi-static cyclic loading, comparing variations across several lattice patterns including auxetic sinusoids, disrupted sinusoids and their equivalent-density quadratic patterns.
机译:目的 - 虽然通过熔融挤出的添加剂制造已经存在超过几十年的措施,但它在复杂的几何形状中的应用被零件的离散化分成了平面层。这需要浪费的支撑材料并引起各向异性弱点由于层到层粘附差。弯曲层制造最近一直在升高,随着制造复杂,低重量的结构,例如机械超材料的潜力而增加。本文旨在研究环状载荷下非平面晶格结构的制造和力学表征。设计/方法/方法 - 验证了对贝尔表面上的参数化格的数学方法,并应用了通过曲线层融合沉积建模制造非平面晶格样品。改变晶格手性,振幅和单位细胞尺寸,实验研究了环状载荷下样品的性质。结果 - 总体而言,具有较高辅助性的格子显示出较少的能量耗散,归因于其弯曲变形机制。另外,随着辅助性的增加,消除了双稳态,增强了弯曲主导的行为的结论。这里提出的分析表明,可以通过实验探索诸如辅助的机械超材料格子,以便复杂几何图格,其中传统的方法与最终使用设计进行了比较的简单几何设计。研究限制/影响 - 使用曲线层添加剂制造的非平面晶格结构的机制尚未彻底研究。此外,由于参数化变形,传统方法不适用,需要新的他们的研究方法。这里首次通过实验研究这种结构下的这种结构的性质。这种类型的结构的应用可以在生物医学支架和支架等领域找到,夹层面板包装,航空航天结构和格子圆顶的结构。原创性/值 - 该工作提出了一种通过准静态循环加载研究非平面晶格结构的力学性能的实验方法,比较多个晶格图案的变化,包括辅助正弦曲线,破坏正弦波和它们的等效密度二次图案。

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