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通过分子动力学模拟探索CoCrFeNiCu高熵合金的热物理性质。

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

作者信息

Liu Fan, Liu Yuqing, Jiang Xi Zhuo, Xia Jun

机构信息

School of Mechanical Engineering and Automation, Northeastern University, Shenyang, Liaoning, 110819, China.

Department of Mechanical and Aerospace Engineering, Brunel University London, Uxbridge, UB8 3PH, United Kingdom.

出版信息

Heliyon. 2024 Aug 9;10(16):e36064. doi: 10.1016/j.heliyon.2024.e36064. eCollection 2024 Aug 30.

Abstract

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 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 were investigated quantitively, and a power-law relationship of with was suggested, which agrees with previous findings. The effects of temperature and the content of individual elements on volumetric specific heat capacity were also studied: as the temperature increases, the of all HEAs slightly decreases and then increases. The effects of atomic content on 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.

摘要

高熵合金(HEAs)是由五种或更多种主要元素组成的合金,这些元素的原子比例相等或近乎相等。在本研究中,采用分子动力学(MD)方法在纳米尺度上研究了CoCrFeNiCu高熵合金(HEA)的热物理性质。揭示了各元素含量对晶格热导率的影响,结果表明调整原子含量是控制高熵合金晶格热导率的一种方法。定量研究了温度对晶格热导率的影响,并提出了晶格热导率与温度的幂律关系,这与先前的研究结果一致。还研究了温度和各元素含量对体积比热容的影响:随着温度升高,所有高熵合金的体积比热容先略有下降然后上升。原子含量对体积比热容的影响因组成元素而异。为了进一步了解高熵合金中的传热机制,计算了不同温度和不同原子组成下的声子态密度(PDOS):Co和Ni元素促进了声子的高频振动,而Cu环境通过光子的低频振动削弱了热传递。随着温度升高,等原子比的CoCrFeNiCu高熵合金中的声子平均自由程(MFP)减小,这可能归因于原子动量的加速和声子碰撞的加剧。本研究为合金设计提供了理论基础,并对高性能合金熔炼具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbd2/11369437/c0cc28a2c913/gr1.jpg

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