H-Bn与聚合物陶瓷之间强度控制界面破坏的原位定量研究

Boyu Zhang, Xing Liu, Hua Guo, Kaiqi Yang, G. Gao, B. Sheldon, Huajian Gao, J. Lou
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引用次数: 1

摘要

摘要:为了定量研究二维(2D)材料增强陶瓷的增韧行为,采用拉拔实验研究了多层h-BN纳米片与聚合物衍生陶瓷(PDC)之间的界面特性。利用纳米压痕辅助微机械装置与扫描电镜(SEM)相结合,系统研究了h-BN与PDC之间的界面滑动和破坏行为。利用数字图像相关技术(DIC)对界面上的相对位移进行了精确的定量测量,从而对破坏过程进行了现场监测。建立了解析性内聚剪切滞后模型,测得h-BN/PDC界面模量和强度分别为5.65±1 GPa•µm−1和66.4±16.8 MPa。微观力学分析表明,这些材料的界面破坏主要受界面强度的影响,而不是受界面断裂能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quantitative In-Situ Study of Strength-Governed Interfacial Failure between H-Bn and Polymer-Derived Ceramic
Abstract To quantitatively study the toughening behavior in two-dimensional (2D) material reinforced ceramics, pull-out experiments were conducted to investigate the properties of the interface between multi-layer h-BN nanosheet and polymer-derived ceramic (PDC). By using nanoindentation-assisted micro-mechanical devices integrated with scanning electron microscopy (SEM), the interfacial sliding and failure behaviors between h-BN and PDC were systematically studied. The failure process was monitored in situ with precise quantitative measurements of the relative displacements across the interface that were obtained with digital image correlation (DIC). An analytical cohesive shear-lag model was developed, and the interfacial modulus and strength of the h-BN/PDC interface were measured to be 5.65 ± 1 GPa•µm−1 and 66.4 ± 16.8 MPa, respectively. A micromechanical analysis shows that the interfacial failure in these materials is governed by the interfacial strength at small length scales, rather than the interfacial fracture energy.
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