用分子动力学方法研究Mo含量对NiCoMo合金固溶体和晶界强化的影响机制

IF 8.7 Q1 CHEMISTRY, PHYSICAL
Wengang Bu, Jiamao Hao, Xiangyang Wang, Rong Wang, Zhenfeng Hu, Xiubing Liang
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引用次数: 0

摘要

采用分子动力学方法系统研究了不同钼含量对NiCoMo合金固溶强化和晶界强化机制的影响。通过对位错演化、应力分布和相变行为的对比分析,揭示了Mo对提高材料力学性能的关键作用。结果表明:在固溶强化中,Mo含量为12% (NiCoMo12)时,晶格畸变能有效抑制位错滑移,显著提高基体强度;在晶界强化方面,Mo含量为30% (GB-30)时,晶界钉钉效应显著增强,局部应力分布最均匀,剪切应变区域最小,强化效果最佳。增加Mo含量可以加速FCC→HCP相变,但适当的Mo浓度可以有效抑制这一转变,保持晶体结构的稳定性。固溶强化和晶界强化的协同作用实现了材料强度和稳定性的双重提高。该工作为NiCoMo合金的设计和优化提供了理论支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating the influence mechanism of Mo content on solid solution and grain boundary strengthening in NiCoMo alloys using molecular dynamics
This study systematically investigates the effects of varying molybdenum (Mo) content on the solid solution strengthening and grain boundary strengthening mechanisms in NiCoMo alloys using molecular dynamics (MD) simulations. Through comparative analyses of dislocation evolution, stress distribution, and phase transformation behavior, the critical role of Mo in enhancing the mechanical properties of the material is revealed. The results indicate that: In solid solution strengthening, at a Mo content of 12% (NiCoMo12), lattice distortion effectively inhibits dislocation slip, significantly improving the matrix strength. For grain boundary strengthening, at a Mo content of 30% (GB-30), the pinning effect of grain boundaries is markedly enhanced, with the most uniform local stress distribution and the smallest shear strain regions, demonstrating optimal strengthening performance. Additionally, increasing Mo content accelerates the FCC → HCP phase transformation, but an appropriate Mo concentration effectively suppresses this transformation, maintaining the stability of the crystal structure. The synergistic effects of solid solution strengthening and grain boundary strengthening achieve dual improvements in material strength and stability. This work provides theoretical support for the design and optimization of NiCoMo alloys.
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来源期刊
CiteScore
8.10
自引率
1.60%
发文量
128
审稿时长
66 days
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