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Heat capacity and thermal expansion of metal crystalline materials based on dynamic thermal vibration

机译:基于动态热振动的金属晶体材料热容量和热膨胀

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摘要

A novel approach based on dynamic thermal vibration is proposed to calculate the heat capacity and thermal expansion coefficient (TEC) for metal crystalline materials from 0K to the melting point. The motion of metal atomic clusters is decomposed into structural deformation and thermal vibration. Then thermal vibration equations are established by the fourth-order Taylor expansion of Hamiltonian at the transient structural deformation position (x) over bar. As a result, the thermal vibration frequencies dynamically change with the structural deformation positions and temperatures. A parameter (delta) over bar((x) over bar ,T) is newly introduced to illustrate how the thermal vibration frequencies vary with the temperature T. Besides, the modified temperature-dependent Gruneisen parameter (gamma) over bar((x) over bar ,T) is given. Finally, the formulae of heat capacity and TEC for metal crystalline materials are derived from the dynamic thermal vibration frequencies and (delta) over bar((x) over bar ,T) as well as (gamma) over bar((x) over bar ,T). The numerical results of heat capacity and TEC for metals Cu, Al, Au, Ag, Ni, Pd, Pt and Pb show a temperature dependence and agree well with the experimental data from 0K to the melting point. This work suggests an efficient approach to calculate thermodynamic properties of metal materials for a wide range of temperatures, up to the melting point.
机译:提出了一种基于动态热振动的新方法,以计算0K到熔点的金属晶体材料的热容量和热膨胀系数(TEC)。金属原子簇的运动分解成结构变形和热振动。然后,热振动方程由Hamiltonian的第四阶泰勒膨胀在瞬态结构变形位置(X)上方的条形上建立。结果,热振动频率随着结构变形位置和温度而动态地改变。新引入了一个参数(Δ)上方的杆((x)t)以说明热振动频率如何随温度t的变化。此外,修改的温度依赖的gruneisen参数(γ)上方((x)给出了酒吧t)。最后,用于金属晶体材料的热容和TEC的公式源自动态热振动频率和(Δ)上方((x)上方的杆,t)以及(γ)上方的杆((x)上方,t)。用于金属,Al,Au,Ag,Ni,Pd,Pt和Pb的金属Cu,Al,Au,Ag,Ni,Pd,Pt和Pb的数值结果表明了温度依赖性,并且与0k到熔点的实验数据很好。这项工作表明了一种有效的方法来计算金属材料的热力学性能,以获得各种温度,直至熔点。

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