用神经网络势模拟钨铜合金,揭示成分对力学性能的影响
Structural and mechanical properties of W-Cu compounds characterized by a neural-network-based potential
- 构建覆盖0-3000K、0-10GPa的神经网络势模型
- 铜含量升至37.5%时出现脆性到延性的转变
- 贫铜区可抑制剪切带扩展,适合优化梯度结构
由于优异的力学性能,钨铜(W-Cu)复合材料广泛应用于多个工业领域。本研究开发了一种基于神经网络的深度势(DP)模型,覆盖0至3000 K的温度范围和0至10 GPa的压力范围。该模型基于密度泛函理论数据,针对全浓度CuxW100-x化合物进行训练。通过该模型,系统研究了W-Cu合金的结构与力学性能,发现:第一,随着铜含量增加,体模量(B)和杨氏模量(E)呈线性下降,表明合金整体软化;第二,铜含量越高,临界应变越大,临界应力越低,预测在约37.5 at.% Cu处发生脆性到延性的转变;第三,拉伸测试显示,在梯度结构中,贫铜区域可阻碍剪切带传播,并促进富铜区域形成新的剪切带。这些结果有助于理解W-Cu体系复杂行为的物理机制,并推动材料模拟方法的发展。
原文摘要 · Abstract (English)
Tungsten-copper (W-Cu) compounds are widely utilized in various industrial fields due to their exceptional mechanical properties. In this study, we have developed a neural-network-based deep potential (DP) model that covers a wide range of temperatures, ranging from 0 to 3,000 K, and pressures, varying from 0 to 10 GPa. This study presents a model trained using density functional theory data for full concentration CuxW100-x compounds. Through this model, we systematically investigate the structural and mechanical properties of W-Cu alloys and have the following findings. First, the bulk modulus (B) and Young's modulus (E) of W-Cu alloys exhibit a linear decline as the Cu content increases, indicating a softening trend in the CuxW100-x compounds as the Cu concentration rises. Second, a higher Cu content results in higher critical strain and lower critical stress for these compounds. A brittle-to-ductile transition in the deformation mode predicted is predicted at around 37.5 at. % Cu content. Third, tensile loading tests in the W-Cu gradient structure reveal that Cu-poor region serves as a barrier, hindering shear band propagation while promoting new shear band formation in the Cu-rich region. The above results from the DP model are anticipated to aid in exploring the physical mechanisms underlying the complex phenomena of W-Cu systems and contribute to the advancement of methodologies for materials simulation.
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