3D Printing and Mechanical Behavior of Anisogrid Composite Lattice Cylindrical Structures

F. Stan, I. Sandu, C. Fetecau
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引用次数: 1

Abstract

Anisogrid cylindrical lattice (ACL) structures have been successfully used in space applications, demonstrating high mechanical performance and weight efficiency. However, the manufacturing process for the composite ACL structures is very complex and, traditionally, involves different technologies, including winding of filaments or prepregs and curing. Tacking the advantage of the fused deposition modeling (FDM) to manufacture completely integral composite parts with complex shape, in this paper, the FDM-3D printing of ACL structures using carbon fiber (CF) and glass fiber (GF) reinforced polyamide 12 (PA12) composites has been investigated. The mechanical behavior of 3D printed ACL structures has been analyzed in terms of the static stiffness, specific load, and failure mode through axial and transverse compression tests, as a function of the geometrical parameters of the lattice structure. It was observed that, under transverse compression, after the initial linear elastic response, the applied load changed its slope and continued to increase with increasing displacement up to a specified displacement (inner radius of the ACL structures) without visible fracture or delamination between layers, demonstrating that the 3D printed composite ACL structures are robust and highly efficient in the nodes. Under axial compression, the applied load increased with displacement up to a maximum load and then decreased until fracture, mainly, due to local buckling and material failure of the helical ribs. The 3D printed CF/PA12 ACL structures were found to be more efficient than either the GF/PA12 or PA12 ACL structures taking into account both the axial and transverse specific load and stiffness. The increase in the shell thickness, helical rib width or number of helical ribs resulted in a remarkable increase in the stiffness and load-bearing capacity of the 3D printed composite ACL structures. From the manufacturing perspective, it was shown that the FDM-3D printing technology holds promise for the development of mechanically robust composite ACL structures with excellent reliability.
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三维打印及各向异性网格复合材料点阵圆柱结构的力学性能
异网格圆柱晶格(ACL)结构已成功地应用于空间应用,展示了高机械性能和重量效率。然而,复合ACL结构的制造过程非常复杂,传统上涉及不同的技术,包括长丝或预浸料的缠绕和固化。利用熔融沉积建模技术(FDM)制造复杂形状的完整整体复合材料零件的优势,研究了碳纤维(CF)和玻璃纤维(GF)增强聚酰胺12 (PA12)复合材料的FDM- 3d打印ACL结构。通过轴向和横向压缩试验,分析了3D打印ACL结构的静刚度、比载荷和破坏模式随晶格结构几何参数的变化规律。观察到,在横向压缩作用下,初始线弹性响应后,外加载荷的斜率发生变化,并随着位移的增加而继续增加,直至指定位移(ACL结构的内半径),而未出现明显的断裂或层间分层,说明3D打印的复合ACL结构在节点上具有鲁棒性和高效率。轴向压缩作用下,载荷随位移增大,达到最大载荷后逐渐减小,直至断裂,主要是由于螺旋肋的局部屈曲和材料破坏。考虑轴向和横向比载荷和刚度,3D打印的CF/PA12 ACL结构比GF/PA12或PA12 ACL结构更有效。增加壳体厚度、螺旋肋宽度或螺旋肋数量,3D打印复合ACL结构的刚度和承载能力都有显著提高。从制造的角度来看,FDM-3D打印技术有望开发具有优异可靠性的机械坚固复合ACL结构。
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