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High mechanical performance SiC/SiC composites by NITE process with tailoring of appropriate fabrication temperature to fiber volume fraction

机译:采用NITE工艺的高机械性能SiC / SiC复合材料,可根据纤维体积分数调整合适的制造温度

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摘要

Unidirectional SiC/SiC composites are prepared by nano-powder infiltration and transient eutectic-phase (NITE) process, using pyrolytic carbon (PyC)-coated Tyranno-SA SiC fibers as reinforcement and SiC nano-powder with sintering additives for matrix formation. The effects of two kinds of fiber volume fraction incorporating fabrication temperature were characterized on densification, microstructure and mechanical properties. Densification of the composites with low fiber volume fraction (appropriately 30 vol%) was developed even at lower fabrication temperature of 1800℃, and then saturated at 3rd stage of matrix densification corresponding to classic liquid phase sintering. Hence, densification of the composites with high volume fraction (above 50 vol%) became restricted because the many fibers retarded the infiltration of SiC nano-powder at lower fabrication temperature of 1800℃. When fabrication temperature increased by 1900℃, densification of the composites was effectively enhanced in the intra-fiber-bundles and simultaneously the interaction between PyC interface and matrix was strengthened. SEM observation on the fracture surface revealed that fiber pull-out length was accordingly changed with fabrication temperature as well as fiber volume fraction, which dominated tensile fracture behaviors. Through NITE process, SiC/SiC composites with two fracture types were successfully developed by tailoring of appropriate fabrication temperature to fiber volume fraction as follows: (1) high ductility type and (2) high strength type.
机译:通过纳米粉末渗透和瞬态共晶(NITE)工艺制备单向SiC / SiC复合材料,使用热解碳(PyC)涂覆的Tyranno-SA SiC纤维作为增强材料,并使用具有烧结添加剂的SiC纳米粉形成基质。表征了两种纤维体积分数随制造温度的变化对致密化,微观结构和力学性能的影响。即使在较低的制造温度(1800℃)下,纤维体积分数低(约30 vol%)的复合材料也进行了致密化,然后在基体致密化的第三阶段达到饱和,这相当于经典的液相烧结。因此,高体积分数(大于50 vol%)的复合材料的致密化受到限制,因为在1800℃的较低制造温度下,许多纤维阻碍了SiC纳米粉体的渗透。当制造温度提高1900℃时,复合材料在纤维束内的致密化得到有效增强,同时PyC界面与基体之间的相互作用也得到增强。 SEM在断裂面上的观察表明,纤维的拉出长度随制造温度以及纤维体积分数的变化而变化,这主要决定了拉伸断裂行为。通过NITE工艺,通过根据纤维体积分数调整合适的制造温度,成功开发出具有两种断裂类型的SiC / SiC复合材料:(1)高延展性和(2)高强度型。

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