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首页> 外文期刊>Archives of Metallurgy and Materials >Characterization of Three-Dimensional Printed Composite Scaffolds Prepared with Different Fabrication Methods
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Characterization of Three-Dimensional Printed Composite Scaffolds Prepared with Different Fabrication Methods

机译:不同制备方法制备的三维印刷复合支架的表征

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An optimal method for composites preparation as an input to rapid prototyping fabrication of scaffolds with potential application in osteochondral tissue engineering is still needed. Scaffolds in tissue engineering applications play a role of constructs providing appropriate mechanical support with defined porosity to assist regeneration of tissue. The aim of the presented study was to analyze the influence of composite fabrication methods on scaffolds mechanical properties. The evaluation was performed on polycaprolactone (PCL) with 5 wt% beta-tricalcium phosphate (TCP) scaffolds fabricated using fused deposition modeling (FDM). Three different methods of PCL-TCP composite preparation: solution casting, particles milling, extrusion and injection were used to provide material for scaffold fabrication. The obtained scaffolds were investigated by means of scanning electron microscope, x-ray micro computed tomography, thermal gravimetric analysis and static material testing machine. All of the scaffolds had the same geometry (cylinder, 4×6 mm) and fiber orientation (0/60/120°). There were some differences in the TCP distribution and formation of the ceramic agglomerates in the scaffolds. They depended on fabrication method. The use of composites prepared by solution casting method resulted in scaffolds with the best combination of compressive strength (5.7±0.2 MPa) and porosity (48.5±2.7 %), both within the range of trabecular bone.
机译:仍然需要一种最佳的复合材料制备方法,以快速构建脚手架的原型,并可能在骨软骨组织工程中应用。组织工程应用中的支架发挥了构建体的作用,该构建体提供了具有定义的孔隙率的适当机械支撑,以帮助组织再生。本研究的目的是分析复合材料制造方法对脚手架力学性能的影响。该评估是在聚己内酯(PCL)上进行的,该聚己内酯(PCL)包含使用熔融沉积建模(FDM)制造的5 wt%的β-磷酸三钙(TCP)支架。 PCL-TCP复合材料的三种不同制备方法:溶液浇铸,颗粒研磨,挤压和注射用于提供支架材料。通过扫描电子显微镜,X射线微计算机断层扫描,热重分析和静态材料测试机研究获得的支架。所有的支架都具有相同的几何形状(圆柱,4×6 mm)和纤维取向(0/60/120°)。支架中的TCP分布和陶瓷团聚体的形成存在一些差异。它们取决于制造方法。通过溶液浇铸法制备的复合材料的使用产生的支架在小梁骨的范围内具有抗压强度(5.7±0.2 MPa)和孔隙率(48.5±2.7%)的最佳组合。

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