Stress gradient versus strain gradient in polycrystalline high entropy alloy revealed by crystal plasticity finite element simulation

IF 3.8 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Libo Yu  (, ), Weipeng Li  (, ), Weizheng Lu  (, ), Hui Feng  (, ), Qihong Fang  (, )
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Abstract

Gradient structures (GS) play a crucial role in achieving a balance between strength and plasticity in metals and alloys. However, there is still a lack of understanding of the mechanisms that maintain a plasticity gradient to prevent the premature failure of fine grains in GS materials. In this work, by incorporating experimental data and the Hall-Petch relationship, we develop a size-dependent crystal plasticity model to investigate the deformation mechanisms for enhancing the strength and plasticity in polycrystalline high entropy alloys. The simulations of the GS model align well with the experimental results, exhibiting strong strain and stress gradients to improve the mechanical properties. Under the conditions of significant deformation incompatibility, the strain gradient predominantly drives the enhancement of plasticity mechanisms. As the deformation incompatibility decreases, the stress gradient begins to play a significant role in comparison with the strain gradient. This shift is attributed to the regular variations in dislocation density within different domains. As the grain size gradients and loads decrease, the dislocation density becomes more uniform across the domains, hindering the formation of strong domain boundaries. While this may impede the activation of strain gradients, it facilitates the activation of stress gradients as a supplementary measure. By designing multilayered GS structures to alter the distribution of dislocation density, we can control the activation levels of stress and strain gradients, thereby influencing the plasticity mechanisms and mechanical properties of the material.

晶体塑性有限元模拟揭示了多晶高熵合金的应力梯度与应变梯度
梯度结构(GS)在实现金属和合金的强度和塑性平衡方面起着至关重要的作用。然而,对于维持塑性梯度以防止GS材料中细晶粒过早破坏的机制仍然缺乏了解。在这项工作中,通过结合实验数据和Hall-Petch关系,我们建立了一个尺寸依赖的晶体塑性模型,以研究提高多晶高熵合金强度和塑性的变形机制。GS模型的模拟结果与实验结果吻合较好,表现出较强的应变和应力梯度,提高了材料的力学性能。在变形不相容显著的条件下,应变梯度主要驱动塑性机制的增强。随着变形不相容的减小,应力梯度开始比应变梯度起重要作用。这种变化是由于不同畴内位错密度的规律变化。随着晶粒尺寸梯度和载荷的减小,位错密度在畴内变得更加均匀,阻碍了强畴边界的形成。虽然这可能会阻碍应变梯度的激活,但作为一种补充措施,它有利于应力梯度的激活。通过设计多层GS结构改变位错密度分布,可以控制应力应变梯度的激活水平,从而影响材料的塑性机理和力学性能。
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来源期刊
Acta Mechanica Sinica
Acta Mechanica Sinica 物理-工程:机械
CiteScore
5.60
自引率
20.00%
发文量
1807
审稿时长
4 months
期刊介绍: Acta Mechanica Sinica, sponsored by the Chinese Society of Theoretical and Applied Mechanics, promotes scientific exchanges and collaboration among Chinese scientists in China and abroad. It features high quality, original papers in all aspects of mechanics and mechanical sciences. Not only does the journal explore the classical subdivisions of theoretical and applied mechanics such as solid and fluid mechanics, it also explores recently emerging areas such as biomechanics and nanomechanics. In addition, the journal investigates analytical, computational, and experimental progresses in all areas of mechanics. Lastly, it encourages research in interdisciplinary subjects, serving as a bridge between mechanics and other branches of engineering and the sciences. In addition to research papers, Acta Mechanica Sinica publishes reviews, notes, experimental techniques, scientific events, and other special topics of interest. Related subjects » Classical Continuum Physics - Computational Intelligence and Complexity - Mechanics
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