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Thermoelastic model of minerals: application to Al_2O_3

机译:矿物的热弹性模型:在Al_2O_3中的应用

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A thermoelastic model for calculating the high-pressure and high-temperature properties of isotropic solids is presented by extending the formalism by Thomsen and combining the resulting one with the Vinet model for static lattice and the Debye model for lattice vibration. Applying it to polycrystalline corundum, we have shown that the calculated values of entropy and heat capacity at constant pressure are in agreement with literature values to 2325 K at zero pressure and that the calculated values of thermal expansivity agree reasonably with experimental data to 1100 K at zero pressure. The model reproduces experimental data of sound velocities ν_p and ν_s of compressional and shear waves to 1825 K at zero pressure and those to 62 GPa at room temperature, and it reproduces also experimental shock-wave equation of state to 150 GPa. The velocity correlation (partial deriv ln ν_s/partial deriv ln ν_p)_S was found to have weak pressure and temperature dependences and the results under lower mantle conditions are compared with those of magnesian and calcium silicate perovskites and magnesiowustite, and the PREM values of the Earth's lower mantle.
机译:通过扩展Thomsen的形式主义,并将所得结果与用于静态晶格的Vinet模型和用于晶格振动的Debye模型相结合,提出了一种用于计算各向同性固体高压和高温特性的热弹性模型。将其应用于多晶刚玉,我们发现在恒定压力下熵和热容的计算值与零压力下2325 K的文献值相符,并且在1100 K下热膨胀率的计算值与实验数据合理地吻合。零压力。该模型再现了零压力下至1825 K的压缩和剪切波声速ν_p和ν_s的实验数据以及室温下至62 GPa的声速实验数据,并且还再现了状态振动至150 GPa的实验冲击波方程。发现速度相关性(偏导数lnν_s/偏导数lnν_p)_S具有弱的压力和温度依赖性,并将在较低地幔条件下的结果与镁质和硅酸钙钙钛矿和菱镁矿的结果进行了比较,并且地球的下地幔。

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