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Joining of Si-Ti-C-O Fiber Reinforced Ceramic Composite and Fe-Cr-Ni Stainless Steel

机译:Si-Ti-C-O纤维增强陶瓷复合材料与Fe-Cr-Ni不锈钢的连接

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Joining of Si-Ti-C-O fiber reinforced ceramic composite and Fe-Cr-Ni stainless steel with Ag-Cu-Ti brazing alloy was carried out. The joining interfaces were perpendicular to the direction of fibers. For relaxation of thermal stress caused by thermal expansion mismatch between the composite and the stainless steel during cooling, a pure copper thin plate was set between the specimens to be joined. Joining strength was evaluated by bending test at room temperature. The highest strength of composite/metal joint attained in this study was 230 MPa. The scattering of the strength data was narrow. The composite-side fracture surfaces of the high strength joints were divided into many regions by fiber/matrix interfacial cracks. It was inferred that those interfacial cracks, which were perpendicular to the main crack along the joining interface, decreased the stress intensity factor of the main crack and increased the strength of the joints. On the other hand, no fiber/matrix interfacial crack was observed on the fracture surfaces of a weak composite/composite joint. Formation of many holes on the composite surfaces to be joined by etching caused damage to the fibers during joining, and had an adverse effect on the joining strength.
机译:将Si-Ti-C-O纤维增强陶瓷复合材料和Fe-Cr-Ni不锈钢与Ag-Cu-Ti钎焊合金连接在一起。连接界面垂直于纤维的方向。为了缓解由复合材料和不锈钢之间的热膨胀失配引起的热应力,在冷却过程中,将纯铜薄板放置在要连接的样品之间。通过在室温下的弯曲试验评价接合强度。这项研究中获得的复合材料/金属接头的最高强度为230 MPa。强度数据的分散很窄。高强度接头的复合材料侧断裂表面被纤维/基体界面裂纹分为许多区域。可以推断出,沿着连接界面垂直于主裂纹的界面裂纹降低了主裂纹的应力强度因子,增加了接头的强度。另一方面,在薄弱的复合材料/复合材料接头的断裂表面上未观察到纤维/基质界面裂纹。通过蚀刻在要接合的复合材料表面上形成许多孔会在接合过程中损坏纤维,并对接合强度产生不利影响。

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