Influences of heat treatment on mechanical properties of SCF/PEEK composites in FDM3D printing process with UV laser assistance

Author:

Huang Chuanhao12,Lv Dongxi2,Zhu Yingdan2ORCID,Chen Gang2,Chen Mingda2,Zhang Yi3,Han Yu3,Wu Huaping1

Affiliation:

1. College of Mechanical Engineering Zhejiang University of Technology Hangzhou China

2. Zhejiang Provincial Key Laboratory of Robotics and Intelligent Manufacturing Equipment Technology Ningbo Institute of Material Technology and Engineering, Chinese Academy of Sciences Ningbo China

3. Tianjin Istar Advanced Materials Technology Co., Ltd. Tianjin China

Abstract

AbstractFused deposition modeling (FDM) process with laser assistance can effectively enhance the interfacial strength of short carbon fiber/poly‐ether‐ether‐ketone (SCF/PEEK) composites. However, excessive crystallization of the semi‐crystalline matrix generally results in irregular shrinkage, which seriously deteriorates dimensional accuracy of composite specimens. To overcome this issue, we establish a novel heat treatment technique by the combinations of laser assistance and post‐treatment to improve the interlayer properties and dimensional accuracy simultaneously. It is found that lateral cracks at the interlayer interfaces can be completely eliminated at laser pre‐heating temperature , due to the reduction of temperature gradient and residual stresses. The further increased evidently promotes molecular diffusion and crystallization behaviors, thus increasing the interlaminar shear strength of FDM‐printed specimens. The post‐treatment temperature visibly promotes mutual diffusions of the molecules and formations of the perfect crystals, strengthening the interlayer adhesion of specimens. The proposed combination technique can increase the interlayer strengths of composite specimens by approximately 22.5%, while their warpage deformations are suppressed simultaneously.Highlights Pre‐heated temperature was a threshold for eliminating lateral cracks at interlayer interfaces. Post‐treatment significantly promoted molecular diffusion and crystallization behaviors. A novel technique was established to improve interlayer strength while suppressing warpage. The combination technique could increase the interlayer shear strength by approximately 22.5%.

Funder

National Key Research and Development Program of China

Natural Science Foundation of Zhejiang Province

National Natural Science Foundation of China

Publisher

Wiley

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