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Additive Manufacturing of Prostheses Using Forest-Based Composites

机译:使用林基复合材料的假体的添加剂制造

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摘要

A custom-made prosthetic product is unique for each patient. Fossil-based thermoplastics are the dominant raw materials in both prosthetic and industrial applications; there is a general demand for reducing their use and replacing them with renewable, biobased materials. A transtibial prosthesis sets strict demands on mechanical strength, durability, reliability, etc., which depend on the biocomposite used and also the additive manufacturing (AM) process. The aim of this project was to develop systematic solutions for prosthetic products and services by combining biocomposites using forestry-based derivatives with AM techniques. Composite materials made of polypropylene (PP) reinforced with microfibrillated cellulose (MFC) were developed. The MFC contents (20, 30 and 40 wt%) were uniformly dispersed in the polymer PP matrix, and the MFC addition significantly enhanced the mechanical performance of the materials. With 30 wt% MFC, the tensile strength and Young´s modulus was about twice that of the PP when injection molding was performed. The composite material was successfully applied with an AM process, i.e., fused deposition modeling (FDM), and a transtibial prosthesis was created based on the end-user’s data. A clinical trial of the prosthesis was conducted with successful outcomes in terms of wearing experience, appearance (color), and acceptance towards the materials and the technique. Given the layer-by-layer nature of AM processes, structural and process optimizations are needed to maximize the reinforcement effects of MFC to eliminate variations in the binding area between adjacent layers and to improve the adhesion between layers.
机译:定制的假肢产品对每位患者都是独一无二的。化石的热塑性塑料是假肢和工业应用中的主要原材料;有一般性需求减少它们的使用,并用可再生的生物化材料取代它们。宁静的假体对机械强度,耐久性,可靠性等来规定严格要求,这取决于使用的生物复合材料以及添加剂制造(AM)过程。该项目的目的是通过使用基于林业的衍生物与AM技术组合生物复合材料来开发用于假肢产品和服务的系统解决方案。开发了用微纤维化纤维素(MFC)加强的聚丙烯(PP)制成的复合材料。 MFC含量(20,30和40wt%)均匀地分散在聚合物PP基质中,并且MFC添加显着提高了材料的机械性能。通过30wt%MFC,当进行注射成型时,拉伸强度和杨氏模量约为PP的两倍。用AM工艺成功地应用复合材料,即融合沉积建模(FDM),并基于最终用户的数据创建进行谐波假体。在穿着经验,外观(颜色)和对材料的接受和技术的验收方面进行假体的临床试验以成功的结果进行了成功的结果。鉴于AM工艺的逐层性质,需要结构和过程优化来最大化MFC的增强效果,以消除相邻层之间的粘合区域的变化并改善层之间的粘附性。

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