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首页> 外文期刊>International Journal of Damage Mechanics >A time-dependent tensile constitutive model for long-fiber-reinforced unidirectional ceramic-matrix minicomposites considering interface and fiber oxidation
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A time-dependent tensile constitutive model for long-fiber-reinforced unidirectional ceramic-matrix minicomposites considering interface and fiber oxidation

机译:考虑界面和纤维氧化的长纤维增强单向陶瓷矩阵微型复合材料的时间依赖性拉伸构型模型

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摘要

In this paper, a time-dependent tensile constitutive model of long-fiber-reinforced unidirectional ceramic-matrix minicomposites is developed considering the interface and fiber oxidation. The relationship between the time-dependent tensile behavior and internal damage is established. The damage mechanisms of time-dependent matrix cracking, fiber/matrix interface debonding, fiber failure, and the oxidation of the interface and fiber are considered in the analysis of the time-dependent tensile stress-strain curve. The fracture mechanic approach, matrix statistical cracking model, and fiber statistical failure model are used to determine the time-dependent interface debonding length, matrix crack spacing, and the fiber failure probability considering the time-dependent interface and fiber oxidation. The effects of the fiber volume, fiber radius, matrix Weibull modulus, matrix cracking characteristic strength, matrix cracking saturation spacing, interface shear stress, interface debonding energy, fiber strength, fiber Weibull modulus, and oxidation time on the time-dependent tensile stress-strain curves, matrix cracking density, interface debonding, and fiber failure are discussed. The experimental time-dependent tensile stress-strain curves, matrix cracking, interface debonding, and fiber failure of four different unidirectional SiC/SiC minicomposites for different oxidation time are predicted. The composite tensile strength and failure strain increase with the fiber volume, fiber strength, and fiber Weibull modulus, and decrease with the oxidation time; the fiber/matrix interface debonding length increases with the fiber radius and oxidation time and decreases with the interfacial shear stress and interface debonding energy; the fiber/matrix interface oxidation ratio increases with the interfacial shear stress, interface debonding energy, and oxidation time and decreases with the saturation matrix crack spacing.
机译:在本文中,考虑界面和纤维氧化,开发了一种长纤维增强单向陶瓷 - 基质微型复合材料的时间依赖性拉伸组织模型。建立了时间依赖性拉伸行为与内部损害之间的关系。在分析时间依赖性拉伸应力 - 应变曲线的分析中考虑了时间依赖性矩阵开裂,纤维/基质界面剥离,纤维失败和界面和纤维氧化的损伤机制。骨折技工方法,矩阵统计裂解模型和纤维统计失效模型用于确定时间依赖性界面剥离长度,矩阵裂缝间距以及考虑时间依赖性界面和纤维氧化的纤维失效概率。纤维体积,纤维半径,基质微泡模量,基质裂解特征强度,基质裂解饱和间距,界面剪切应力,界面剥离能量,纤维强度,纤维纤维模量和氧化时间在时间​​依赖的拉伸应力 - 讨论了应变曲线,矩阵裂解密度,接口剥离和纤维失效。预测了实验时间依赖性拉伸应力 - 应变曲线,基质裂化,界面剥离和四种不同单向SiC / SiC小型复合材料的用于不同氧化时间的纤维失效。复合抗拉强度和失效应变随比纤维体积,纤维强度和纤维模量增加,并随氧化时间降低;光纤/矩阵界面剥离长度随比光纤半径和氧化时间增加,并随着界面剪切应力和界面剥离能量而降低;纤维/基质界面氧化比随着界面剪切应力,界面剥离能量和氧化时间和氧化时间和随着饱和矩阵裂纹间隔的降低而增加。

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