Laboratoire de Physique Statistique de l'Ecole Normale Supérieure, UPMC Université Paris 6, CNRS, 24 rue Lhomond, 75005 Paris, France.
J Chem Phys. 2010 Nov 7;133(17):174507. doi: 10.1063/1.3495971.
We report on the simultaneous measurements of the speed of sound and the density in liquid water under negative pressure. Application of a focused acoustic wave to the bulk liquid is able to generate negative pressures before nucleation of the vapor phase occurs. A method for time-resolved Brillouin scattering is developed to measure the speed of sound during the passage of a 1 MHz ultrasonic wave. This is coupled with a fiber optic probe hydrophone which allows the determination of the density. Together, these methods give an ambient temperature equation of state of metastable liquid water down to the acoustic cavitation threshold. Empirical equations of state of water are based on experimental data at positive pressure; the validity of their extrapolation to negative pressures had been tested only indirectly or with very weakly metastable liquid. We provide thermodynamic data that prove the fidelity of recent equations of state down to -26 MPa. However, this raises questions regarding the nature of the cavitation threshold observed in acoustic experiments, which is far less negative than expected.
我们报告了在负压下对液态水中的声速和密度的同时测量。应用聚焦声波于液体可以在汽相核化之前产生负压。发展了一种用于测量在 1MHz 超声波传播过程中声速的时间分辨布里渊散射方法。这与光纤探针水听器相结合,允许确定密度。这些方法共同给出了在声空化阈值下亚稳液态水的环境温度状态方程。水的经验状态方程基于正压下的实验数据;它们对负压的外推的有效性仅被间接测试或仅在非常弱的亚稳液体中进行了测试。我们提供的热力学数据证明了最近的状态方程在达到-26MPa 时的准确性。然而,这引发了关于在声学实验中观察到的空化阈值的性质的问题,该阈值远低于预期。