首页> 外文会议>World Congress on Integrated Computational Materials Engineering >3D HYBRID ATOMISTIC MODELING OF β' IN Al-Mg-Si: PUTTING THE FULL COHERENCY OF A NEEDLE SHAPED PRECIPITATE TO THE TEST
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3D HYBRID ATOMISTIC MODELING OF β' IN Al-Mg-Si: PUTTING THE FULL COHERENCY OF A NEEDLE SHAPED PRECIPITATE TO THE TEST

机译:β“在Al-Mg-Si中的3D杂交原子模型:将针形沉淀物的完全相干性置于测试中

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A key input of a truly predictive integrated computational materials engineering (ICME) scheme for an age hardenable A1 alloy is the formation enthalpies - including interfacial and strain contributions - for the main hardening precipitate(s). The basic desire to compute these numbers with ab initio methods for essentially all relevant precipitate sizes continues to face limitations in the context of the associated requirements for the model system extensions. These obstacles manifest themselves in particular when considering a density functional theory framework based description of the full precipitate-host lattice interface - needed in order to incorporate accurately electronic interactions as well as the strain evolution along high misfit directions. Recent work within our group has made it possible to carry out this interface modeling for a fully coherent precipitate at a comparatively weak level of approximation. We describe here our first attempts to employ this scheme for 3D hybrid modeling of fully coherent needle-shaped β", the main hardening phase in the Al-Mg-Si alloy system. Examining a physically sized precipitate, we found this structure to fully adapt to the host lattice along its main growth (needle) direction, with the cell dimensions in the precipitate cross-section falling non-negligibly below the experimental values for both compositions (Mg_5Si_6, Mg_5Al_2Si_4) tested. Further, the theoretical value of 107.8° for the P"-Mg_5Si_6 monoclinic angle β_p is markedly off the experimental value of 105.3°±0.5°, potentially supporting the presence of non-negligible amounts of A1 in the β" phase.
机译:用于年龄可硬化A1合金的真正预测的综合计算材料工程(ICME)方案的关键输入是形成焓 - 包括界面和应变贡献 - 用于主淬火沉淀物。使用AB Initio方法计算这些数字的基本愿望基本上所有相关的沉淀尺寸在模型系统扩展的相关要求的上下文中继续面临限制。这些障碍物尤其表现出基于完全沉淀 - 主晶格界面的密度函数理论框架 - 需要准确地电子相互作用以及沿高错配合的应变演变。我们组内的最新工作使得可以在相对较弱的近似水平下进行完全相干沉淀的这种界面建模。我们在此描述我们首次尝试采用该方案进行全相干针形β的3D混合建模,在Al-Mg-Si合金系统中的主要硬化相。检查物理大小的沉淀,我们发现这种结构完全适应沿主生长(针)方向沿主晶格,在沉淀横截面中的细胞尺寸下降,不可忽略于测试的实验值(Mg_5Si_6,Mg_5Al_2Si_4)的实验值。此外,理论值为107.8° P“-mg_5SI_6单斜视β_p显着脱离实验值105.3°±0.5°,可能支持β”相中不可忽略量的A1的存在。

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