Exploring thermophysical properties of CoCrFeNiCu high entropy alloy via molecular dynamics simulations

合金 声子 热导率 材料科学 热容 高熵合金 热力学 分子动力学 传热 纳米尺度 电导率 凝聚态物理 化学 冶金 纳米技术 复合材料 物理 物理化学 计算化学
作者
Fan Liu,Yuqing Liu,Xi Zhuo Jiang,Jun Xia
出处
期刊:Heliyon [Elsevier]
卷期号:10 (16): e36064-e36064 被引量:5
标识
DOI:10.1016/j.heliyon.2024.e36064
摘要

High entropy alloys (HEAs) are alloys composed of five or more primary elements in equal or nearly equal proportions of atoms. In the present study, the thermophysical properties of the CoCrFeNiCu high entropy alloy (HEA) were investigated by a molecular dynamics (MD) method at nanoscale. The effects of the content of individual elements on lattice thermal conductivity k p were revealed, and the results suggested that adjusting the atomic content can be a way to control the lattice thermal conductivity of HEAs. The effects of temperature on k p were investigated quantitively, and a power-law relationship of k p with T -0.419 was suggested, which agrees with previous findings. The effects of temperature and the content of individual elements on volumetric specific heat capacity C v were also studied: as the temperature increases, the C v of all HEAs slightly decreases and then increases. The effects of atomic content on C v varied with the comprising elements. To further understand heat transfer mechanisms in the HEAs, the phonon density of states (PDOS) at different temperatures and varying atomic composition was calculated: Co and Ni elements facilitate the high-frequency vibration of phonons and the Cu environment weakens the heat transfer via low-frequency vibration of photons. As the temperature increases, the phonon mean free path (MFP) in the equiatomic CoCrFeNiCu HEA decreases, which may be attributed to the accelerated momentum of atoms and intensified collisions of phonons. The present research provides theoretical foundations for alloy design and have implications for high-performance alloy smelting.
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