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Damage development and lifetime prediction of fiber-reinforced ceramic-matrix composites subjected to cyclic loading at 1300℃ in vacuum, inert and oxidative atmospheres

机译:真空,惰性和氧化气氛中1300℃循环载荷下纤维增强陶瓷基复合材料的损伤发展和寿命预测

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摘要

In this paper, the fatigue damage development and lifetime of C/SiC and SiC/SiC ceramic-matrix composites (CMCs) under cyclic loading at an elevated temperature of 1300 degrees C in vacuum, in inert, in air and in steam atmospheres are investigated. The damage evolution versus applied cycles of C/SiC and SiC/SiC composites are analyzed through fatigue hysteresis-based damage parameters and fiber/matrix interface shear stress. The Global Load Sharing (GLS) criterion is used to determine the stress distribution between intact and broken fibers. The fibers failure probability of oxidized and unoxidized fibers in the oxidation region, fibers in the interface debonded region and interface bonded region are determined considering the damage mechanisms of interface wear, interface oxidation and fiber oxidation. The effects of fatigue peak stress, testing condition and fiber preforms on the damage evolution and lifetime are discussed. The fatigue life S-N curves and fatigue limit stresses of C/SiC and SiC/SiC composites at 1300 degrees C under different testing conditions are predicted. In the inert atmosphere, the fatigue limit stress is about 92% tensile strength for 3D C/SiC in vacuum atmosphere, 82% tensile strength for 2D C/SiC in argon atmosphere, 37% tensile strength for 2D SiC/SiC in N-2 atmosphere, and 32% tensile strength for 2D SiC/SiC in argon atmosphere, the fatigue limit stress of C/SiC is much higher than that of SiC/SiC; however, in air and in steam atmospheres, the fatigue limit stress of SiC/SiC composite is higher than that of C/SiC. (C) 2019 Elsevier Masson SAS. All rights reserved.
机译:本文研究了C / SiC和SiC / SiC陶瓷基复合材料(CMCs)在1300℃,真空,惰性,空气和蒸汽气氛中循环载荷下的疲劳损伤发展和寿命。 。通过基于疲劳磁滞的损伤参数和纤维/基体界面剪切应力,分析了C / SiC和SiC / SiC复合材料的损伤演化与应用循环的关系。全局负载分担(GLS)准则用于确定完整纤维和断裂纤维之间的应力分布。考虑到界面磨损,界面氧化和纤维氧化的破坏机理,确定了氧化区,未结合区和界面结合区中氧化和未氧化纤维的失效概率。讨论了疲劳峰值应力,测试条件和纤维预制棒对损伤演变和寿命的影响。预测了C / SiC和SiC / SiC复合材料在1300°C下的疲劳寿命S-N曲线和疲劳极限应力。在惰性气氛中,疲劳极限应力在真空气氛中约为3D C / SiC的抗拉强度的92%,在氩气气氛中约为2D C / SiC的抗拉强度的82%,在N-2中二维SiC / SiC的抗疲劳强度为37%大气中,二维SiC / SiC在氩气中的拉伸强度为32%,因此C / SiC的疲劳极限应力远高于SiC / SiC。然而,在空气和蒸汽气氛中,SiC / SiC复合材料的疲劳极限应力高于C / SiC。 (C)2019 Elsevier Masson SAS。版权所有。

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