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Hydrostatic High-Pressure Post-Processing of Specimens Fabricated by DLP, SLA, and FDM: An Alternative for the Sterilization of Polymer-Based Biomedical Devices

机译:DLP,SLA和FDM制造的样品的静水高压后处理:替代聚合物基生物医学装置的灭菌

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摘要

In this work, we assess the effects of sterilization in materials manufactured using additive manufacturing by employing a sterilization technique used in the food industry. To estimate the feasibility of the hydrostatic high-pressure (HHP) sterilization of biomedical devices, we have evaluated the mechanical properties of specimens produced by commercial 3D printers. Evaluations of the potential advantages and drawbacks of Fused Deposition Modeling (FDM), Digital Light Processing (DLP) technology, and Stereolithography (SLA) were considered for this study due to their widespread availability. Changes in mechanical properties due to the proposed sterilization technique were compared to values derived from the standardized autoclaving methodology. Enhancement of the mechanical properties of samples treated with Hydrostatic high-pressure processing enhanced mechanical properties, with a 30.30% increase in the tensile modulus and a 26.36% increase in the ultimate tensile strength. While traditional autoclaving was shown to systematically reduce the mechanical properties of the materials employed and damages and deformation on the surfaces were observed, HHP offered an alternative for sterilization without employing heat. These results suggest that while forgoing high-temperature for sanitization, HHP processing can be employed to take advantage of the flexibility of additive manufacturing technologies for manufacturing implants, instruments, and other devices.
机译:在这项工作中,我们通过采用食品工业中使用的灭菌技术,评估使用添加剂制造制造的材料的灭菌效果。为了估算静水压高压(HHP)灭菌的可行性生物医学装置的可行性,我们已经评估了商业3D打印机产生的标本的机械性能。由于其广泛的可用性,考虑了融合沉积建模(FDM),数字光处理(DLP)技术和立体光刻(SLA)的潜在优点和缺点的评估。与所提出的灭菌技术导致的机械性能变化与标准化的自动灭菌方法源自衍生的值。提高用静压高压加工处理的样品的力学性能增强的机械性能,拉伸模量增加30.30%,最终拉伸强度的增加26.36%。虽然传统的高压灭菌被显示为系统地降低所用材料的机械性能,但观察到表面的损坏和变形,但HHP在不采用热量的情况下提供灭菌的替代方案。这些结果表明,同时对消毒的高温,HHP处理可用于利用添加剂制造技术对制造植入物,仪器和其他装置的灵活性。

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