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Effect of Hydrostatic Pressure on the Microstructure and Mechanical Properties during and after High Pressure Torsion

机译:高压扭转过程中及之后静水压力对组织和力学性能的影响

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The presence of a hydrostatic pressure as a general feature of SPD methods is essential for achieving the high strains and the introduction of the high amount of lattice defects, which are necessary to establish new grain boundaries. Systematic investigations of High Pressure Torsion (HPT)-deformed Cu under variation of strain and hydrostatic pressure revealed marked differences between the in-situ torsional stress (torque measurement) and the post-HPT strength of the ultrafine-grained materials. These facts let assume the occurrence of relaxation processes (recovery/recrystallisation) of static character with respect to the release of the hydrostatic pressure after straining. In order to gain insight into the processes behind, a special experimental procedure was designed to simulate the hydrostatic pressure release. Investigations by X-ray line profile analysis and hardness measurement show marked influences of the pressure release on microstructure and strength. While the size of the coherently scattering domains is not strongly affected, the dislocation density decreases drastically and the arrangement of the dislocations within the subgrain structure changes to a less stress intensive one, upon the pressure release. In parallel the hardness decreases significantly and confirms the discrepancy between in-situ torque-stress and post-HPT strength.
机译:作为SPD方法的一般特征,静水压力的存在对于获得高应变和引入大量晶格缺陷至关重要,而这是建立新晶界所必需的。在应变和流体静压力变化下对高压扭转(HPT)变形的Cu进行的系统研究表明,原位扭转应力(扭矩测量)与超细颗粒材料的HPT后强度之间存在明显差异。这些事实假设相对于应变后流体静压力的释放发生了静态特性的松弛过程(恢复/再结晶)。为了深入了解后面的过程,设计了一种特殊的实验程序来模拟静水压力释放。通过X射线线轮廓分析和硬度测量进行的研究表明,压力释放对显微组织和强度的显着影响。虽然相干散射域的大小没有受到很大的影响,但随着压力的释放,位错密度急剧降低,并且亚晶粒结构内的位错排列变为应力强度较小的位错排列。平行地,硬度显着降低,并证实了原位扭矩应力与HPT后强度之间的差异。

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