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热塑性复合材料回收利用对增材制造过程及作为可穿戴设备应用候选材料的使用阶段的影响。

The Influence of Thermoplastic Composite Recycling on the Additive Manufacturing Process and In-Use Phase as Candidate Materials for Wearable Devices Applications.

作者信息

Papatheodorou Alexandra, Gavalas Iakovos, Ntenekou Despoina, Karatza Anna

机构信息

BioG3D P.C., 1 Lavriou Ave., Technological & Cultural Park of Lavrion, 19500 Lavrion, Greece.

出版信息

Polymers (Basel). 2023 Sep 15;15(18):3775. doi: 10.3390/polym15183775.

Abstract

Fused filament fabrication (FFF) is a popular additive manufacturing (AM) method for creating thermoplastic parts with intricate geometrical designs. Pure thermoplastic materials utilized in FFF, whose polymeric matrix is reinforced with other materials, such as carbon fibers (CFs), introduce products with advanced mechanical properties. However, since not all of these materials are biodegradable, the need for recycling and reuse immediately emerges to address the significant problem of how to dispose of their waste. The proposed study evaluates the printability, surface morphology and in vitro toxicity of two thermoplastic-based composite materials commonly used in wearable device manufacturing to provide enhanced properties and functionalities, making them suitable for various applications in the field of wearable devices. Tritan Copolyester TX1501 with 7.3% chopped CFs (cCFs) and Polyamide 12 (PA12) with 8.6%cCFs and 7.5% iron Magnetic Nanoparticles (MNPs)-FeO were used in the discrete ascending cycles of recycling, focusing on the surface quality performance optimization of the printed parts. Through stereoscopy evaluation, under-extrusion, and over-extrusion defects, as well as non-uniform material flow, are assessed in order to first investigate the influence of various process parameters' application on the printing quality of each material and, second, to analyze the optimal value fluctuation of the printing parameters throughout the recycling cycles of the materials. The results indicate that after applying certain adjustments to the main printing parameter values, the examined recycled reinforced materials are still effectively 3D printed even after multiple cycles of recycling. A morphology examination using scanning electron microscope (SEM) revealed surface alterations, while a cytotoxicity assessment revealed the adverse effects of both materials in the form of cell viability and the release of proinflammatory cytokines in the cell culture medium.

摘要

熔融丝材制造(FFF)是一种流行的增材制造(AM)方法,用于制造具有复杂几何设计的热塑性零件。FFF中使用的纯热塑性材料,其聚合物基体用其他材料(如碳纤维(CFs))增强,可生产出具有先进机械性能的产品。然而,由于并非所有这些材料都是可生物降解的,因此立即出现了回收和再利用的需求,以解决如何处理其废料这一重大问题。本研究评估了两种常用于可穿戴设备制造的热塑性基复合材料的可打印性、表面形态和体外毒性,以提供增强的性能和功能,使其适用于可穿戴设备领域的各种应用。含7.3%短切CFs(cCFs)的Tritan共聚酯TX1501以及含8.6%cCFs和7.5%铁磁性纳米颗粒(MNPs)-FeO的聚酰胺12(PA12)被用于回收的离散上升循环中,重点是优化打印部件的表面质量性能。通过立体显微镜评估,对欠挤出、过挤出缺陷以及材料流动不均匀性进行评估,以便首先研究各种工艺参数的应用对每种材料打印质量的影响,其次分析材料在整个回收循环中打印参数的最佳值波动情况。结果表明,在对主要打印参数值进行一定调整后,即使经过多次回收循环,所检测的回收增强材料仍能有效地进行3D打印。使用扫描电子显微镜(SEM)进行的形态学检查揭示了表面变化,而细胞毒性评估则揭示了两种材料在细胞活力形式以及细胞培养基中促炎细胞因子释放方面的不利影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bd0/10535287/26987fa6f7de/polymers-15-03775-g0A1.jpg

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