首页> 外文OA文献 >In-Plane Cracking Behavior and Ultimate Strength for 2D Woven and Braided Melt-Infiltrated SiC/SiC Composites Tensile Loaded in Off-Axis Fiber Directions
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In-Plane Cracking Behavior and Ultimate Strength for 2D Woven and Braided Melt-Infiltrated SiC/SiC Composites Tensile Loaded in Off-Axis Fiber Directions

机译:轴外纤维方向拉伸拉伸的二维编织和编织熔渗SiC / SiC复合材料的面内开裂行为和极限强度

摘要

The tensile mechanical properties of ceramic matrix composites (CMC) in directions off the primary axes of the reinforcing fibers are important for architectural design of CMC components that are subjected to multi-axial stress states. In this study, 2D-woven melt-infiltrated (MI) SiC/SiC composite panels with balanced fiber content in the 0 degree and 90 degree directions were tensile loaded in-plane in the 0 degree direction and at 45 degree to this direction. In addition, a 2D triaxially-braided MI composite panel with balanced fiber content in the plus or minus 67 degree bias directions and reduced fiber content in the axial direction was tensile loaded perpendicular to the axial direction tows (i.e., 23 degrees from the bias fibers). Stress-strain behavior, acoustic emission, and optical microscopy were used to quantify stress-dependent matrix cracking and ultimate strength in the panels. It was observed that both off-axis loaded panels displayed higher composite onset stresses for through-thickness matrix cracking than the 2D-woven 0/90 panels loaded in the primary 0 degree direction. These improvements for off-axis cracking strength can in part be attributed to higher effective fiber fractions in the loading direction, which in turn reduces internal stresses on critical matrix flaws for a given composite stress. Also for the 0/90 panel loaded in the 45 degree direction, an improved distribution of matrix flaws existed due to the absence of fiber tows perpendicular to the loading direction. In addition, for the +67/0/-67 braided panel, the axial tows perpendicular to the loading direction were not only low in volume fraction, but were also were well separated from one another. Both off-axis oriented panels also showed relatively good ultimate tensile strength when compared to other off-axis oriented composites in the literature, both on an absolute strength basis as well as when normalized by the average fiber strength within the composites. Initial implications are discussed for constituent and architecture design to improve the directional cracking of SiC/SiC CMC components with MI matrices.
机译:陶瓷基复合材料(CMC)沿偏离增强纤维主轴方向的拉伸机械性能对于承受多轴应力状态的CMC组件的建筑设计非常重要。在这项研究中,在0度和90度方向上纤维含量均衡的2D编织熔渗(MI)SiC / SiC复合板在0度方向和该方向45度的平面内被拉伸加载。此外,垂直于轴向丝束(即,与偏置纤维成23度)的拉伸载荷是在正负67度偏向方向上纤维含量平衡且轴向上纤维含量减少的2D三轴编织MI复合板)。应力应变行为,声发射和光学显微镜用于量化面板中应力相关的基体开裂和极限强度。观察到,与沿主0度方向加载的2D编织0/90面板相比,两个轴外加载的面板在通过厚度的基体开裂时均显示出更高的复合起始应力。轴向开裂强度的这些提高部分可以归因于在加载方向上具有更高的有效纤维分数,从而在给定的复合应力下减少了关键基体缺陷上的内部应力。同样对于以45度方向加载的0/90面板,由于不存在垂直于加载方向的纤维束,因此存在改善的基质缺陷分布。另外,对于+ 67/0 / -67编织板,垂直于装载方向的轴向丝束不仅体积分数低,而且彼此间隔良好。与文献中的其他偏轴取向复合材料相比,两种偏轴取向面板都显示出相对较好的极限拉伸强度,无论是在绝对强度基础上还是通过复合材料中的平均纤维强度进行归一化。讨论了用于改进MI矩阵的SiC / SiC CMC组件的定向开裂的成分和体系结构设计的初步含义。

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