首页> 外文会议>All-Russian Scientific Conference of Young Scientists "Advanced Materials in Technology and Construction" >Microtwins and Their Effect on Accumulation of Excess Dislocation Density in Grains with Different Types of Crystal Lattice Bending in Deformed Austenitic Steel
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Microtwins and Their Effect on Accumulation of Excess Dislocation Density in Grains with Different Types of Crystal Lattice Bending in Deformed Austenitic Steel

机译:微曲线及其对多种型奥氏体钢中不同类型的晶格弯曲的晶粒过量脱位密度积累的影响

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The investigation of excess dislocation density accumulation in the deformed polycrystalline austenitic steel was carried out using transmission electron microscopy (TEM). The distributions of the excess dislocation density in the grains of the deformed austenitic steel with different bending types were obtained and plotted. It was established that in the austenitic polycrystalline steel at the deformation degrees ε= 14 and 25 % the distributions of the excess dislocation density are multimodal. In both cases the grain with compound bending is more stressed. The values of the average excess dislocation density in the grains with the compound and simple bending are less at ε= 25 % than that at ε= 14 %. This is explained by a significant relaxation of the internal stresses in steel with the increase of the deformation degree from 14 % to 25 %. The increase of the number of twinning systems and the material volume fraction covered by twinning leads to the internal stress relaxation and consequently to the increase of the excess dislocation density. The presence of microtwins in the deformed material has an influence on the distribution of the excess dislocation density. In the deformed polycrystalline austenitic steel the number of grains with compound bending is increased with the increase of the plastic deformation degree.
机译:使用透射电子显微镜(TEM)进行变形多晶奥氏体钢中过量位错密度积累的研究。获得了具有不同弯曲类型的变形奥氏体钢的晶粒中过量位错密度的分布并绘制。建立在奥氏体多晶钢中的变形度ε= 14和25%,过量位错密度的分布是多峰的。在两种情况下,具有化合物弯曲的谷物更加应力。具有化合物和简单弯曲的晶粒中平均过量位错密度的值较小,ε= 25%而不是ε= 14%。这通过钢中的内部应力显着松弛,随着14%至25%的变形程度的增加。孪生系统数量的增加和孪生覆盖的材料体积分数导致内应力松弛,从而增加了多孔脱位密度的增加。在变形材料中存在微量曲线对过分脱位密度的分布产生影响。在变形的多晶奥氏体钢中,随着塑性变形程度的增加,具有化合物弯曲的晶粒的数量增加。

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