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PERFORMANCE OF LOW-COST 3D PRINTER IN MEDICAL APPLICATION

机译:低成本3D打印机在医学应用中的性能

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Fused Deposition Modelling (FDM) is an additive manufacturing (AM) process that produces a physical object directly from a CAD design using layer-by-layer deposition of the filament material that is extruded via a nozzle. In industry, FDM has become one of the most used AM processes for the production of low batch quantity and functional prototypes, due to its safety, efficiency, reliability, low cost, and ability to process manufacturing-grade engineering thermoplastic. Recently, the market is flooded with the availability of low-cost printers produced by numerous companies. This research aims to investigate the effect of different porosity levels on a scaffold structure produced using a low-cost 3D printer. Comparisons of these porous structures were made in terms of Von-Mises strain, total deformation, as well as compressive stress. Various porosity levels were created by varying printing parameters, including layer height, infill density, and shell thickness by slicing the initial solid CAD file using Repetier Host 3D printing software. Finite Element Analysis (FEA) simulation was then performed on the created scaffold structures by using Ansys Workbench 19.2. The simulation result indicates that the greater porosity level will result in higher total deformation of the structure. Meanwhile, the compression test shows that the minimum strength value obtained was favourable at 22 MPa and had exceeded that of the trabecular femur (15 MPa). However, its porosity level (maximum at 52%) was still below that of the minimum threshold of porosity level of 70 percent. However, the printing parameters currently used can be adjusted in the future. Therefore, it was deduced that the low-cost 3D printer offers promising potential to fabricate different porosity structures with multiple outcomes.
机译:熔融沉积建模(FDM)是一种添加剂制造(AM)工艺,其使用通过喷嘴挤出的长丝材料的层逐层沉积地从CAD设计中产生物理物体。在工业中,FDM由于其安全,效率,可靠性,低成本和工艺制造级工程热塑性的能力,FDM已成为生产低批量数量和功能原型的工艺之一。最近,市场充斥着众多公司生产的低成本打印机的可用性。该研究旨在探讨不同孔隙度水平对使用低成本3D打印机生产的支架结构的影响。这些多孔结构的比较是根据Von-Mises菌株,总变形以及抗压应力进行的。通过使用Repetier Host 3D打印软件切割初始固体CAD文件,通过改变印刷参数,包括层高度,填充密度和壳厚度来产生各种孔隙率水平。然后通过使用ANSYS工作台19.2在产生的支架结构上对有限元分析(FEA)模拟。仿真结果表明,更大的孔隙度水平将导致结构的总变形更高。同时,压缩试验表明所得最小强度值在22MPa下良好,并且超过了小梁股骨(15MPa)的最小强度值。然而,其孔隙率水平(最大52%)仍低于孔隙率水平为70%的最小阈值。但是,目前使用的打印参数可以在将来调整。因此,推出了低成本3D打印机提供了具有多种结果的不同孔隙结构的有希望的潜力。

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