三维连续纤维增强零件的增材制造

I. Torubarov, A. Drobotov, I. Gushchin, D. Vdovin, A. Plotnikov, A. Yakovlev
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引用次数: 0

摘要

使用熔融长丝制造(FFF)技术进行塑料制品增材制造的关键挑战之一是确保其强度。聚合物材料的低强度及其机械性能的明显各向异性限制了3D打印作为传统小规模生产技术的替代品的使用。为了达到提高印刷品强度的目标,最有希望的解决方案是应用连续纤维增强。几种增材制造设备和软件产品允许准备带有增强的3D打印控制程序,然而,它们具有所有优点,它们像传统打印产品一样,在各个方向(在层的平面上和垂直于层的方向上,在生长方向上)具有广泛的强度分布。在本文中,作者建议沿三维轨迹使用连续纤维增强,以平滑FFF技术中产品性能的各向异性,并确保在最终产品生产中使用它们的更广泛可能性。在工作过程中,升级了具有五自由度打印能力的3D打印机和用于编写控制程序的软件,用于铺设连续纤维的打印过程;开发了增强打印模式;制作了用于标准静态弯曲试验的样品。实验结果表明,增强增强可以提高打印试件的强度,并且与单轴铺设纤维的标准平面增强相比,本文提出的三维增强技术可以保证较低的抗弯强度,但三维增强后试件的破坏没有明显的分层现象。
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Additive manufacturing of parts with three-dimensional continuous fiber reinforcement
One of the key challenges in additive manufacturing of plastic goods using the Fused Filament Fabrication (FFF) technology is to ensure their strength. The low strength of polymer materials and the distinct anisotropy of their mechanical properties limit the use of 3D printing as an alternative to the traditional small-scale production technologies. The most promising solution to the goal of increasing the strength of printed goods is the application of continuous fiber reinforcement. Several additive manufacturing devices and software products that allow preparing a control program for 3D printing with reinforcement are known, however, having all their advantages, they, like conventional printed products, have a wide spread in strength in various directions (in the plane of a layer and perpendicularly to it, in the direction of growing). In this paper, the authors propose using the continuous fiber reinforcement along the three-dimensional trajectories to smooth out the anisotropy of the products’ properties in the FFF technology and ensure wider possibilities for using them in the production of final goods. In the course of work, a 3D printer with the ability to print using five degrees of freedom and software for preparation of control programs were upgraded for the printing process with laying continuous fiber; printing modes with reinforcement were developed; samples were produced for standard static bending tests. The experiments show that reinforcement improves the printed specimen’s strength, and the proposed three-dimensional reinforcement technique ensures the lower flexing strength compared to standard flat reinforcement with uniaxial laying of fibers, though, the destruction of 3D reinforced specimens occurred without evident delamination.
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