Multiscale characterization of additively manufactured PMMA: the influence of sterilization

Celia Rufo-Martín, Ramiro Mantecón, Geroge Youssef, Henar Miguelez, José Díaz-Álvarez
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Abstract

Purpose Polymethyl methacrylate (PMMA) is a remarkable biocompatible material for bone cement and regeneration. It is also considered 3D printable but requires in-depth process–structure–properties studies. This study aims to elucidate the mechanistic effects of processing parameters and sterilization on PMMA-based implants. Design/methodology/approach The approach comprised manufacturing samples with different raster angle orientations to capitalize on the influence of the filament alignment with the loading direction. One sample set was sterilized using an autoclave, while another was kept as a reference. The samples underwent a comprehensive characterization regimen of mechanical tension, compression and flexural testing. Thermal and microscale mechanical properties were also analyzed to explore the extent of the appreciated modifications as a function of processing conditions. Findings Thermal and microscale mechanical properties remained almost unaltered, whereas the mesoscale mechanical behavior varied from the as-printed to the after-autoclaving specimens. Although the mechanical behavior reported a pronounced dependence on the printing orientation, sterilization had minimal effects on the properties of 3D printed PMMA structures. Nonetheless, notable changes in appearance were attributed, and heat reversed as a response to thermally driven conformational rearrangements of the molecules. Originality/value This research further deepens the viability of 3D printed PMMA for biomedical applications, contributing to the overall comprehension of the polymer and the thermal processes associated with its implementation in biomedical applications, including personalized implants.
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增材制造 PMMA 的多尺度表征:灭菌的影响
目的 甲基丙烯酸甲酯(PMMA)是一种用于骨水泥和再生的出色的生物相容性材料。它也被认为是可三维打印的,但需要对其工艺-结构-性能进行深入研究。本研究旨在阐明加工参数和灭菌对基于 PMMA 的植入物的机理影响。设计/方法/途径该方法包括制造具有不同光栅角方向的样品,以充分利用长丝排列与加载方向的影响。一组样品用高压灭菌器灭菌,另一组样品作为参考。样品经过了机械拉伸、压缩和弯曲测试等综合表征程序。研究结果热和微观机械性能几乎保持不变,而中观机械性能则从印刷前到高压灭菌后的试样各不相同。虽然机械性能明显取决于打印方向,但灭菌对三维打印 PMMA 结构的性能影响甚微。不过,由于分子在热驱动下发生了构象重排,因此外观发生了显著变化,热量也发生了逆转。原创性/价值这项研究进一步深化了三维打印 PMMA 在生物医学应用中的可行性,有助于全面了解聚合物及其在生物医学应用(包括个性化植入物)中的相关热处理过程。
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