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首页> 外文期刊>Medical Devices & Sensors >Investigation of 3D-printed PLA-stainless-steel polymeric composite through fused deposition modelling-based additive manufacturing process for biomedical applications
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Investigation of 3D-printed PLA-stainless-steel polymeric composite through fused deposition modelling-based additive manufacturing process for biomedical applications

机译:调查的3 d打印PLA-stainless-steel通过熔融沉积聚合物复合材料modelling-based添加剂生产过程为生物医学应用

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Among the several 3D printing technologies, fused deposition modelling (FDM) is gaining popularity because it can fabricate geometrically complex shapes of polymeric bio-implants at reasonable quality and cost mainly due to lower cost of FDM based 3D printers as well as the filament form of feedstock material. Particularly, to cater the need of cost-effective biomedical applications, both poly(lactic) acid (PLA) and stainless-steel materials individually displayed the biocompatibility for various biomedical applications. The pure polymeric components are generally lower in mechanical strength, but these limitations can be resolved by developing a polymer-metallic composite; therefore, the recently developed PLA-stainless-steel composite was selected for the present work. This is new material and the current literature lacks in providing the necessary FDM processing parameters to obtain desired functional properties of PLA-stainless-steel components with unaltered biocompatibility. Therefore, the objective here is to obtain the optimized processing parameters through the design of experiments that shows the desired functional properties of PLA-stainless-steel specimens manufactured by FDM and later validate the structural strength through the tensile and impact tests. It was observed that the PLA-stainless-steel composite has a toughness of 18 kJ/m~2 and has an ultimate tensile strength of ~69 MPa at 45° and ~23 MPa at 90° raster orientation of the print. Biocompatibility of the PLA-stainless-steel polymeric composite was assessed using pre-osteoblast cells, and materials were found to have biocompatibility unchanged from pure PLA. Overall, it was proved from this work that the low-cost desktop FDM printer can be numerically optimized using statistical analyses to fabricate the next-generation biomaterials for biomedical implants with tailored dimensions and surface finish with required mechanical strength and biocompatibility.
机译:在一些3 d打印技术,融合沉积造型(FDM)是越来越受欢迎因为它能制造几何复杂形状的高分子bio-implants合理质量和成本主要是由于FDM的成本较低基于3 d打印机的灯丝形式原料材料。需要有效的生物医学应用程序,聚(乳酸)酸(PLA)和不锈钢材料单独显示生物相容性为各种生物医学应用程序。通常在机械强度较低,但这些限制可以通过发展来解决polymer-metallic复合;最近发达PLA-stainless-steel复合被选为当前的工作。材料和当前文学缺乏提供必要的FDM工艺参数获得所需的功能属性PLA-stainless-steel组件与不变的生物相容性。获得优化的工艺参数是什么通过设计实验,显示了所需的功能属性PLA-stainless-steel标本由FDM制造后来验证结构强度通过拉伸和冲击测试。观察到PLA-stainless-steel复合有韧性的18 kJ / m ~ 2和终极抗拉强度在45°~ 69 MPa ~ 23 MPa90°光栅取向的打印。生物相容性的PLA-stainless-steel聚合物复合材料是评估使用pre-osteoblast细胞,和材料被发现从纯PLA生物相容性不变。总的来说,它从这个工作证明低成本的桌面FDM打印机可以数值使用统计分析制造优化生物医学的新一代生物材料植入物与定制尺寸和表面完成所需的机械强度和生物相容性。

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