柔性石墨基平纹编织陶瓷纺织复合材料的应力集中系数

D. Dedkov, A. Zaitsev, Vitaliy Koksharov, A. Tashkinov
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引用次数: 1

摘要

本文旨在解决平方(1/1斜纹,即经纬等次)编织复合材料层由于织构复杂几何形状和局部工艺缺陷(内部孔隙和局部纤维断裂)造成的应力集中系数的确定问题。此外,基于先前开发的增强系数为0.14的机织复合材料、弯曲陶瓷纤维和FG基体的两级模型,研究了预确定主要损伤情景的机制。平纹织物具有这样的优点,如最短的重叠,最大的强度,密度和增加的硬度均匀的纺织品表面(从正面和背面几何上都是相同的),但造成内部的工艺孔。利用开放可积平台SALOME-MECA,在边值问题数值解的基础上,对编织复合材料层在其平面内的宏观均质变形进行了有限元模拟。假定陶瓷纤维和FG基体具有各向同性、线弹性,在载荷作用下不改变其几何形状、相对位置和弹性对称类型。在编织复合材料层宏观均质纯形态变化的情况下,测定了在增强框架陶瓷纤维周围存在有保证的FG基体中间层以及它们之间存在摩擦接触的情况下,局部工艺缺陷引起的应力集中系数的值。因此,为了增加编织复合材料抵抗外部作用的能力(当封闭的内部孔隙暴露时),我们需要进行将FG基质渗透到局部技术洞穴的操作。否则,FG基体会受到剪切和断裂机制的破坏。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Stress concentration factors in a plain woven ceramic textile composite with the flexible graphite matrix
The paper aims at solving a problem of determining the stress concentration factor in the plain square (1/1 twill, i.e. equal warp and weft orders) woven composite layer caused by the texture complex geometry and local technological defects (internal pores and local fiber breakages). Also, the paper examines the mechanisms that predetermine the main damage scenario based on the earlier developed two-level model of the woven textile composite with reinforcement coefficients equal to 0.14, curved ceramic fibers and FG matrix. Plain weaves provide such benefits as the shortest overlaps, maximum strength, density and increased stiffness of a homogeneous textile surface (geometrically identical both from the front and back sides), but cause internal technological pores. Modeling macrohomogeneous deformations of a woven composite layer in its plane was carried out on the basis of numerical solutions of the boundary-value problems by FEM using an open integrable platform SALOME-MECA. Ceramic fibers and FG matrix were assumed to be isotropic, linearly elastic, not changing their geometry, relative position and type of elastic symmetry under loading. Under the macroscopically homogeneous pure shape change of the woven composite layer, we determined values of the stress concentration factors caused by local technological defects in the presence of a guaranteed FG matrix interlayer around the ceramic fiber of the reinforcing frame, as well as in the presence of a friction contact between them. So, to increase of a woven composite capability to oppose the external action (when closed internal pores are revealed), we need to carry out operations that provide the FG matrix penetration into the local technological caverns. Otherwise, the FG matrix can be damaged by shear and breaking mechanisms.
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