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Matrix Cracking in 3D Orthogonal Melt-Infiltrated SiC/SiC Composites with Various Z-Fiber Types

机译:各种Z纤维类型的3D正交熔渗SiC / SiC复合材料的基体开裂

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摘要

The occurrence of matrix cracks in melt-infiltrated SiC/SiC composites with a 3D orthogonal architecture was determined at room temperature for specimens tested in tension oriented in the X-direction (parallel to Z-bundle weave direction) and Y-direction (perpendicular to Z-bundle weave direction) and Y-direction (perpendicular to Z-bundle weave direction). The fiber-types were Sylramic and Sylramic-IBN in the X and Y-directions and lower modulus ZMI, T300, and rayon in the Z-direction. Acoustic emission (AE) was used to monitor the matrix cracking activity. For Y-direction composites, the AE data was used to determine the exact (+/- 0.25 mm) location where matrix cracks occurred in the 3D orthogonal architecture. This enabled the determination of the stress-dependent matrix crack distributions for small but repeatable matrix rich 'unidirectional' and the matrix poor 'cross-ply' regions within the architecture. It was found that matrix cracking initiated at very low stresses (approx. 40 MPa) in the 'unidirectional' regions for the largest z-direction fiber tow composites. Decreasing the size of the z-fiber bundle, increased the stress for matrix cracking in the 'unidirectional' regions. Matrix cracking in the 'cross-ply' regions always occurred at higher stresses than in 'unidirectional' regions, and the stress-dependent matrix crack distribution of the 'cross-ply' regions was always over a wider stress-range than the 'unidirectional' regions. For composites tested in the X-direction, a lower elastic modulus and a narrower and lower stress-range for matrix cracking were observed compared to composites tested in the Y-direction.
机译:在室温下,对于在X方向(平行于Z束编织方向)和Y方向(垂直于D方向)上拉伸的试样进行了测试,确定了具有3D正交结构的熔体渗透SiC / SiC复合材料中基体裂纹的出现。 Z束编织方向)和Y方向(垂直于Z束编织方向)。纤维类型在X和Y方向上为Sylramic和Sylramic-IBN,在Z方向上的模量为ZMI,T300和人造丝。声发射(AE)用于监测基体的裂解活性。对于Y方向复合材料,AE数据用于确定3D正交结构中发生基质裂纹的确切位置(+/- 0.25 mm)。这使得能够确定体系结构中小的但可重复的富矩阵“单向”区域和穷矩阵“跨层”区域的应力相关矩阵裂缝分布。已发现,对于最大的z方向纤维丝束复合材料,在“单向”区域中的应力非常低(约40 MPa)时,开始出现基体开裂。减小z纤维束的尺寸会增加“单向”区域中基体开裂的应力。与“单向”区域相比,“交叉”区域的基体开裂总是在较高的应力下发生,“交叉”区域的应力相关基体裂纹分布始终比“单向”区域的应力范围大。 '地区。对于在X方向上测试的复合材料,与在Y方向上测试的复合材料相比,观察到较低的弹性模量以及较窄的应力范围和较低的基体开裂范围。

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