熔融长丝和前驱体渗透热解增材制造连续碳纤维增强碳化硅复合材料

Xiang Nie, Siqi Wu, Lei Yang, Chunze Yan, Yusheng Shi
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引用次数: 0

摘要

连续纤维增强碳化硅复合材料(Cf/SiC)以其高强度、高模量、高导热性和低密度等优点而闻名。在本文中,我们提出了一种集成的Cf/SiC制备和加工工艺。采用熔融长丝法制备连续碳纤维增强树脂基复合材料绿色部件,然后采用前驱体渗透热解工艺进行陶瓷化。研究了绿色部分的工艺参数、绿色部分试样的性能、处理后的相演化以及Cf/SiC试样的性能。填充线距离(ILD)对生坯和Cf/SiC的力学性能影响较大。绿色部分和Cf/SiC试件的抗弯强度随ILD的减小而增大。碳纤维/聚对苯二甲酸乙二醇酯(Cf/PETG)和聚乳酸(Cf/PLA)绿色件的最大弯曲强度分别为169.48 MPa和155.83 MPa。Cf/PLA绿色部件的Cf/SiC材料的最高抗弯强度为47.73 MPa, Cf/PETG绿色部件的Cf/SiC材料的抗弯强度为93.79 MPa。力学性能的提高是由于PETG带来的热解碳和增大喷嘴尺寸后单层内等效纤维密度的增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Additive manufacturing of continuous carbon fiber-reinforced silicon carbide composite by fused filament fabrication and precursor infiltration pyrolysis
Continuous fiber reinforced silicon carbide composites (Cf/SiC) are known for their advantages such as high strength, high modulus, high thermal conductivity, and low density. In this paper, we propose an integrated Cf/SiC preparation and processing process. The continuous carbon fiber-reinforced resin matrix composite green parts were processed by fused filament fabrication, and then ceramicized by precursor infiltration pyrolysis process. The processing parameters of the green parts, the performance of the green-part specimens, the phase evolution in the post treatment, and the performance of Cf/SiC samples were investigated. The infill line distance (ILD) had a huge influence on the mechanical properties of green parts and Cf/SiC. The bending strength of the green parts and the Cf/SiC specimens increased with the decrease in ILD. The maximum bending strength of 169.48 MPa and 155.83 MPa was achieved for the carbon fiber/polyethylene terephthalate glycol (Cf/PETG) and polylactic acid (Cf/PLA) green parts, respectively. The highest bending strength of 47.73 MPa of the Cf/SiC material was obtained with the Cf/PLA green parts, while the bending strength of 93.79 MPa was obtained for the Cf/SiC with Cf/PETG green parts. The increase in mechanical properties was believed to result from the pyrolyzed carbon brought by PETG and the increase of the equivalent fiber density within the single layer after a larger nozzle size was used.
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