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Connecting the macro and microstrain responses in technical porous ceramics. Part II: Microcracking

机译:连接多孔陶瓷中的宏观和微观应变响应。第二部分:微裂纹

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Following previous study on non-microcracked porous ceramics (SiC and alumina), we studied the micro and macrostrain response of honeycomb porous microcracked ceramics under applied uniaxial compressive stress. Cordierites of different porosities were compared. Both macroscopic and microscopic strains were measured, by extensometry and neutron diffraction, respectively. Lattice strains were determined using a single diffraction peak (steady-state neutron source) in both the axial and the transverse sample directions. Complementarily, we measured the macroscopic Young's modulus of these materials as a function of temperature, at zero load, using high-temperature laser ultrasound spectroscopy. This allowed having a non-microcracked reference state for all the materials investigated. Confirming our previous study, we observed that macrostrain relaxation occurs at constant load, which is not observed in non-microcracked compounds, such as SiC. This relaxation effect increases as a function of porosity. Moreover, we generally observed a linear dependence of the diffraction modulus on porosity. However, for low and very high applied stress, the lattice strain behavior versus stress seems to be influenced by microcracking and shows considerable strain release, as already observed in other porous microcracked ceramics. We extended to microcracked porous ceramics (cordierite) the macro to microstrain and stress relations previously developed for non-microcracked ceramics, making use of the integrity factor (IF) model. Using the whole set of data available, the IF could also be calculated as a function of applied stress. It was confirmed that highly porous microcracked materials have great potential to become stiffer and more connected.
机译:在先前对非微裂纹多孔陶瓷(SiC和氧化铝)的研究之后,我们研究了在施加单轴压缩应力下蜂窝状微裂纹陶瓷的微观和宏观应变响应。比较了不同孔隙度的堇青石。宏观和微观应变分别通过引伸法和中子衍射法测量。使用单个衍射峰(稳态中子源)在轴向和横向样品方向上确定晶格应变。作为补充,我们使用高温激光超声光谱法在零负载下测量了这些材料的宏观杨氏模量与温度的关系。这使得所研究的所有材料都具有非微裂纹的参考状态。证实我们先前的研究,我们观察到大应变松弛发生在恒定载荷下,而在非微裂纹化合物(如SiC)中则未观察到。该松弛效果根据孔隙率而增加。此外,我们通常观察到衍射模量对孔隙率的线性依赖性。但是,对于低应力和非常高的外加应力,微裂纹影响了晶格应变特性与应力的关系,并显示出相当大的应变释放,正如在其他多孔微裂纹陶瓷中已经观察到的那样。利用完整性因子(IF)模型,我们将微裂纹多孔陶瓷(堇青石)的宏扩展到以前为非微裂纹陶瓷开发的微应变和应力关系。使用整个可用数据集,IF也可以作为施加应力的函数进行计算。已经证实,高度多孔的微裂纹材料具有变得更硬和更紧密连接的巨大潜力。

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