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First-principles calculations to investigate the anisotropic elasticity and thermodynamic properties of FeAl 3 under pressure effect

机译:第一原理计算,以研究FEAL的各向异性弹性和热力学性质 3 在压力效应下

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We have employed the first-principles calculations and quasi-harmonic Debye model to investigate the effect of the pressure on anisotropic elasticity and thermodynamic properties of FeAl3. According to Christoffel’s equation, the wave velocity anisotropy of FeAl3as a function of pressure was also studied. Based on 3D surfaces and 2D projection contours, the anisotropy of shear modulus for FeAl3changes significantly with the increasing pressure, and increases more obviously on [001] direction than that on [100] direction under high pressure. The thermodynamic properties calculations show that the volume of FeAl3decreases with the increasing temperature and pressure. The bulk modulus decreases with the increasing temperature, and increases with the increasing pressure. Onthecontrary, the thermal expansion coefficient, the heat capacities, and Grüneisen constant increase with the increasing temperature, and decrease as pressure increases. It is found that the bulk modulus and Grüneisen constant display strong pressure dependence, while the heat capacities are sensitive to the temperature. And the thermal expansion coefficient is affected simultaneously by the pressure and temperature.
机译:我们采用了第一原理计算和准谐波去脱模模型来研究压力对FEAL3的各向异性弹性和热力学性能的影响。根据Christoffel的等式,还研究了FEAL3A的波速各向异性,还研究了压力的函数。基于3D表面和2D投影轮廓,随着压力的增加,对FEAL3变化的剪切模量的各向异性,并且在高压下的[100]方向上更明显地增加。热力学特性计算表明FEAL3Decres的体积随着温度和压力的增加。随着温度的增加,体积模量减小,随着压力的增加而增加。坐在地区,热膨胀系数,热能和Grüneisen恒定的温度恒定增加,随着压力的增加而降低。发现散装模量和Grüneisen恒定显示强大的压力依赖性,而热容量对温度敏感。并且热膨胀系数通过压力和温度同时受到影响。

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