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通过熔融沉积成型法进行自愈合热塑性聚氨酯的3D打印:从聚合物板材到力学评估

3D Printing of a Self-Healing Thermoplastic Polyurethane through FDM: From Polymer Slab to Mechanical Assessment.

作者信息

Ritzen Linda, Montano Vincenzo, Garcia Santiago J

机构信息

Novel Aerospace Materials Group, Faculty of Aerospace Engineering, Delft University of Technology, Kluyverweg 1, 2629 HS Delft, The Netherlands.

出版信息

Polymers (Basel). 2021 Jan 19;13(2):305. doi: 10.3390/polym13020305.

Abstract

The use of self-healing (SH) polymers to make 3D-printed polymeric parts offers the potential to increase the quality of 3D-printed parts and to increase their durability and damage tolerance due to their (on-demand) dynamic nature. Nevertheless, 3D-printing of such dynamic polymers is not a straightforward process due to their polymer architecture and rheological complexity and the limited quantities produced at lab-scale. This limits the exploration of the full potential of self-healing polymers. In this paper, we present the complete process for fused deposition modelling of a room temperature self-healing polyurethane. Starting from the synthesis and polymer slab manufacturing, we processed the polymer into a continuous filament and 3D printed parts. For the characterization of the 3D printed parts, we used a compression cut test, which proved useful when limited amount of material is available. The test was able to quasi-quantitatively assess both bulk and 3D printed samples and their self-healing behavior. The mechanical and healing behavior of the 3D printed self-healing polyurethane was highly similar to that of the bulk SH polymer. This indicates that the self-healing property of the polymer was retained even after multiple processing steps and printing. Compared to a commercial 3D-printing thermoplastic polyurethane, the self-healing polymer displayed a smaller mechanical dependency on the printing conditions with the added value of healing cuts at room temperature.

摘要

使用自修复(SH)聚合物制造3D打印聚合物部件,由于其(按需)动态特性,具有提高3D打印部件质量、增加其耐用性和损伤容限的潜力。然而,由于这类动态聚合物的聚合物结构和流变复杂性,以及在实验室规模下的产量有限,对其进行3D打印并非易事。这限制了对自修复聚合物全部潜力的探索。在本文中,我们展示了室温自修复聚氨酯熔融沉积建模的完整过程。从合成和聚合物板制造开始,我们将聚合物加工成连续长丝并3D打印部件。对于3D打印部件的表征,我们使用了压缩切割测试,当可用材料量有限时,该测试证明很有用。该测试能够准定量评估块状样品和3D打印样品及其自修复行为。3D打印的自修复聚氨酯的力学和愈合行为与块状SH聚合物非常相似。这表明即使经过多个加工步骤和打印,聚合物的自修复性能仍得以保留。与商用3D打印热塑性聚氨酯相比,自修复聚合物对打印条件的力学依赖性较小,且具有室温下愈合切口的附加值。

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