首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >Sound velocity measurement in liquid water up to 25 GPa and 900 K: Implications for densities of water at lower mantle conditions
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Sound velocity measurement in liquid water up to 25 GPa and 900 K: Implications for densities of water at lower mantle conditions

机译:在高达25 GPa和900 K的液态水中进行声速测量:在较低地幔条件下对水密度的影响

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摘要

We extended the pressure range of sound velocity measurements for liquid water to 25 GPa and 900 K along the melting curve using a laser heated diamond anvil cell with a combined system of Brillouin scattering and synchrotron X-ray diffraction. Experimental pressure and temperature were obtained by solving simultaneous equations: the melting curve of ice and the equation of state for gold. The sound velocities obtained in liquid water at high pressures and melting temperatures were converted to density using Murnaghan's equation of state by fitting a parameter of the pressure derivative of bulk modulus at I GPa. The results are in good agreement with the values predicted by a previously reported equation of state for water based on sound velocity measurements. The equation of state for water obtained in this study could be applicable to water released by dehydration reactions of dense hydrous magnesium silicate phases in cold subducting slabs at lower mantle conditions, although the validity of Murnaghan's equation of state for water should be evaluated in a wider pressure and temperature ranges. The present velocity data provides the basis for future improvement of the accurate thermodynamic model for water at high pressures.
机译:我们使用结合了布里渊散射和同步加速器X射线衍射的激光加热金刚石砧盒,沿着熔融曲线将液态水的声速测量压力范围扩展至25 GPa和900K。实验压力和温度是通过求解联立方程获得的:冰的融解曲线和金的状态方程。通过拟合I GPa的体积模量压力导数的参数,使用Murnaghan状态方程将在高压和熔融温度下在液态水中获得的声速转换为密度。结果与基于声速测量的先前报告的水状态方程预测的值非常吻合。本研究中获得的水的状态方程可适用于在较低地幔条件下在冷俯冲板中致密的含水硅酸镁相的脱水反应所释放的水,尽管穆尔纳汗状态方程对水的有效性应在更大范围内进行评估。压力和温度范围。当前的速度数据为将来改进高压水的精确热力学模型提供了基础。

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