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Effects of interface coating and nitride enhancing additive on properties of Hi-Nicalon SiC Fiber reinforced reaction-bonded silicon nitride composites

机译:界面涂层和氮化物增强添加剂对Hi-Nicalon SiC纤维增强反应粘结氮化硅复合材料性能的影响

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摘要

Strong and tough Hi-Nicalon SiC fiber reinforced reaction-bonded silicon nitride matrix composites (SiC/RBSN) have been fabricated by the fiber lay-up approach. Commercially available uncoated and PBN, PBN/Si-rich PBN, and BN/SiC coated SiC Hi-Nicalon fiber tows were used as reinforcement. The composites contained similar to 24 vol% of aligned 14 mum diameter SiC fibers in a porous RBSN matrix. Both one- and two-dimensional composites were characterized. The effects of interface coating composition, and the nitridation enhancing additive, NiO, on the room temperature physical, tensile, and interfacial shear strength properties of SiC/RBSN matrix composites were evaluated. Results indicate that for all three coated fibers, the thickness of the coatings decreased from the outer periphery to the interior of the tows, and that from 10 to 30 percent of the fibers were not covered with the interface coating. In the uncoated regions, chemical reaction between the NiO additive and the SiC fiber occurs causing degradation of tensile properties of the composites. Among the three interface coating combinations investigated, the BN/SiC coated Hi-Nicalon SiC fiber reinforced RBSN matrix composite showed the least amount of uncoated regions and reasonably uniform interface coating thickness. The matrix cracking stress in SiC/RBSN composites was predicted using a fracture mechanics based crack bridging model. (C) 2002 Kluwer Academic Publishers. [References: 17]
机译:通过纤维铺层法制备了强韧的Hi-Nicalon SiC纤维增强反应粘结氮化硅基复合材料(SiC / RBSN)。使用市售的未涂层和PBN,PBN /富含Si的PBN和BN / SiC涂层的SiC Hi-Nicalon纤维束作为增强材料。该复合材料在多孔RBSN基质中包含约24体积%的对齐的14微米直径SiC纤维。一维和二维复合材料都进行了表征。评估了界面涂层组成和氮化增强添加剂NiO对SiC / RBSN基复合材料室温物理,拉伸和界面剪切强度性能的影响。结果表明,对于所有三种涂覆的纤维,涂层的厚度从丝束的外周到内部减小,并且有10%至30%的纤维没有被界面涂层覆盖。在未涂覆的区域中,NiO添加剂与SiC纤维之间发生化学反应,导致复合材料的拉伸性能下降。在所研究的三种界面涂层组合中,BN / SiC涂层的Hi-Nicalon SiC纤维增强RBSN基体复合材料的未涂层区域最少,界面涂层厚度合理。使用基于断裂力学的裂纹桥接模型预测了SiC / RBSN复合材料的基体裂纹应力。 (C)2002 Kluwer学术出版社。 [参考:17]

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