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Improved microstructure and fracture properties of short carbon fiber-toughened ZrB2-based UHTC composites via colloidal process

机译:通过胶体工艺改善短碳纤维增韧ZrB2基UHTC复合材料的微观结构和断裂性能

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摘要

Ultra-high temperature ceramics are potential materials for a variety of high temperature applications because of excellent thermo-mechanical properties and oxidation resistance. To further improve their fracture properties, a novel colloidal process was proposed to fabricate the short carbon fiber-toughened ZrB2-ZrSi2 composites. Microstructure analysis found that the colloidal processing route could avoid the fibers' agglomeration and alleviate the fibers' damage, which minimizes the structural defects and retains the fibers' strength. The relative density of composites achieves 98.35% and the distribution of fibers in matrix is homogeneous. Mechanical tests indicate that the flexural strength is 458 MPa and the fracture toughness is 6.9 MPa.m(1/2). In comparison to the composite obtained by conventional processing route, the fracture toughness increases by 47%. The main mechanisms for improved fracture properties could be attributed to the crack deflection, fiber sliding and fiber bridging. (C) 2016 Elsevier Ltd. All rights reserved.
机译:超高温陶瓷由于具有出色的热机械性能和抗氧化性,因此是用于各种高温应用的潜在材料。为了进一步改善其断裂性能,提出了一种新颖的胶体工艺来制备短碳纤维增韧的ZrB2-ZrSi2复合材料。微观结构分析发现,胶体加工路线可以避免纤维的团聚并减轻纤维的损伤,从而最大程度地减少结构缺陷并保留纤维的强度。复合材料的相对密度达到98.35%,纤维在基体中的分布均匀。力学测试表明,弯曲强度为458 MPa,断裂韧性为6.9 MPa.m(1/2)。与通过常规加工路线获得的复合材料相比,断裂韧性提高了47%。改善断裂性能的主要机理可以归因于裂纹变形,纤维滑动和纤维桥接。 (C)2016 Elsevier Ltd.保留所有权利。

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