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Influence of composition and grain size on the damage evolution in MAX phases investigated by acoustic emission

机译:声发射研究了成分和晶粒尺寸对MAX相中损伤演化的影响

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摘要

In this study, the influence of the grain size and phase composition on damage mechanisms of Ti3SiC2-based materials are investigated. Commercially available and self-propagating high-temperature synthesized powders were sintered via spark plasma sintering and hot pressing methods. Materials with different amounts of Ti3SiC2 (from 52 to 72 wt%) and various mean grain sizes (from 8 to 20 mu m) were characterized by performing bending tests coupled with acoustic emission measurements. It permits to distinguish the involved damage mechanisms and their chronology in MAX phase-based materials. With the increase of the applied stress, damage begins with the onset of delaminations within MAX phase grains, then friction processes occur within previously formed microcracks, and finally (before rupture) new microcracks are generated due to the elasticity mismatch between phases. Increasing Ti3SiC2 content and grain size emphasizes the two first damage stages, and finally leads to a more pronounced nonlinear behavior.
机译:在这项研究中,研究了晶粒尺寸和相组成对Ti3SiC2基材料损伤机理的影响。通过火花等离子体烧结和热压法烧结可商购的且自蔓延的高温合成粉末。通过执行弯曲测试和声发射测量,对具有不同Ti3SiC2(52至72 wt%)和各种平均晶粒尺寸(8至20μm)的材料进行了表征。它可以区分涉及的损伤机理及其在MAX相基材料中的时间顺序。随着施加应力的增加,破坏开始于MAX相晶粒内的分层,然后在先前形成的微裂纹内发生摩擦过程,最后(由于破裂)相之间的弹性失配会产生新的微裂纹。 Ti3SiC2含量和晶粒尺寸的增加会突出两个损伤阶段,并最终导致更明显的非线性行为。

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