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通过增材制造制备的新型聚己内酯/环氧树脂共混物

Novel Poly(Caprolactone)/Epoxy Blends by Additive Manufacturing.

作者信息

Dorigato Andrea, Rigotti Daniele, Pegoretti Alessandro

机构信息

Department of Industrial Engineering and INSTM research unit, University of Trento, 38123 Trento, Italy.

出版信息

Materials (Basel). 2020 Feb 11;13(4):819. doi: 10.3390/ma13040819.

Abstract

The aim of this work was the development of a thermoplastic/thermosetting combined system with a novel production technique. A poly(caprolactone) (PCL) structure has been designed and produced by fused filament fabrication, and impregnated with an epoxy matrix. The mechanical properties, fracture toughness, and thermal healing capacities of this blend (EP-PCL(3D)) were compared with those of a conventional melt mixed poly(caprolactone)/epoxy blend (EP-PCL). The fine dispersion of the PCL domains within the epoxy in the EP-PCL samples was responsible of a noticeable toughening effect, while in the EP-PCL(3D) structure the two phases showed an independent behavior, and fracture propagation in the epoxy was followed by the progressive yielding of the PCL domains. This peculiar behavior of EP-PCL(3D) system allowed the PCL phase to express its full potential as energy absorber under impact conditions. Optical microscope images on the fracture surfaces of the EP-PCL(3D) samples revealed that during fracture toughness tests the crack mainly propagated within the epoxy phase, while PCL contributed to energy absorption through plastic deformation. Due to the selected PCL concentration in the blends (35 vol %) and to the discrepancy between the mechanical properties of the constituents, the healing efficiency values of the two systems were rather limited.

摘要

这项工作的目的是开发一种采用新型生产技术的热塑性/热固性组合体系。通过熔融沉积成型设计并制备了聚己内酯(PCL)结构,并将其浸渍在环氧基质中。将这种共混物(EP-PCL(3D))的力学性能、断裂韧性和热愈合能力与传统熔融共混的聚己内酯/环氧共混物(EP-PCL)进行了比较。EP-PCL样品中环氧内PCL微区的精细分散导致了显著的增韧效果,而在EP-PCL(3D)结构中,两相表现出独立行为,环氧中的裂纹扩展伴随着PCL微区的逐步屈服。EP-PCL(3D)体系的这种特殊行为使得PCL相在冲击条件下能够充分发挥其作为能量吸收体的潜力。EP-PCL(3D)样品断口表面的光学显微镜图像显示,在断裂韧性测试过程中,裂纹主要在环氧相中扩展,而PCL通过塑性变形有助于能量吸收。由于共混物中所选的PCL浓度(35体积%)以及组分力学性能的差异,两种体系的愈合效率值相当有限。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b2fa/7078803/c17e55f274c5/materials-13-00819-g001.jpg

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