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具有优异力学性能的刚柔结合陶瓷-环氧树脂复合材料的三维打印

Three-Dimensional Printing of Rigid-Flexible Ceramic-Epoxy Composites with Excellent Mechanical Properties.

作者信息

Wang Zhaozhi, Jiang Biao, Liu Yajie, Xin Zhiheng, Jiao Zhibin

机构信息

School of Mechanical Engineering, Shenyang University of Technology, Shenyang 110870, China.

出版信息

Materials (Basel). 2025 Mar 26;18(7):1479. doi: 10.3390/ma18071479.

Abstract

Inspired by the Bouligand structure of the mantis shrimp's dactyl club, in this study, we employed direct ink writing 3D printing technology to fabricate bioinspired gradient ceramic samples with varying gradient spacings and rotation angles. A rigid-flexible coupled bioinspired gradient ceramic-epoxy resin composite was successfully constructed based on epoxy resin infiltration. The effects of gradient variations and rotation angles on mechanical properties were systematically investigated with flexural strength and fracture toughness tests. The experimental results revealed that, at a fixed rotation angle, both the flexural strength and fracture toughness initially increased and then decreased with an increase in gradient spacing. The infiltration of epoxy resin significantly enhanced the mechanical performance of the composite samples. Specifically, the maximum flexural strength of 63.35 MPa was achieved at Δd = 0.08 and a rotation angle of 12°, while the highest fracture toughness of 2 MPa/m was observed at Δd = 0.1 and a rotation angle of 12°. A failure analysis indicated that the introduction of gradient structures and epoxy resin infiltration altered the failure forms of traditional ceramics, with the primary toughening mechanisms including crack deflection, fiber pull-out, and crack branching. In this study, we successfully developed a rigid-flexible coupled bioinspired gradient ceramic-epoxy resin composite with excellent mechanical properties based on bioinspired design and gradient optimization, providing new insights and methodologies for the design and fabrication of high-performance ceramic materials.

摘要

受螳螂虾指节棒的布氏结构启发,在本研究中,我们采用直接墨水书写3D打印技术制备了具有不同梯度间距和旋转角度的仿生梯度陶瓷样品。基于环氧树脂渗透成功构建了刚柔耦合的仿生梯度陶瓷-环氧树脂复合材料。通过弯曲强度和断裂韧性测试系统地研究了梯度变化和旋转角度对力学性能的影响。实验结果表明,在固定旋转角度下,弯曲强度和断裂韧性均随梯度间距的增加先增大后减小。环氧树脂的渗透显著提高了复合材料样品的力学性能。具体而言,在Δd = 0.08且旋转角度为12°时,获得了最大弯曲强度63.35 MPa,而在Δd = 0.1且旋转角度为12°时,观察到最高断裂韧性2 MPa/m。失效分析表明,梯度结构的引入和环氧树脂的渗透改变了传统陶瓷的失效形式,主要增韧机制包括裂纹偏转、纤维拔出和裂纹分支。在本研究中,我们基于仿生设计和梯度优化成功开发了一种具有优异力学性能的刚柔耦合仿生梯度陶瓷-环氧树脂复合材料,为高性能陶瓷材料的设计和制备提供了新的见解和方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5132/11989532/e1b37a9eb65e/materials-18-01479-g001.jpg

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