Department of Biomedical Engineering, School of Bioinformatics, Chongqing University of Posts and Telecommunications, Chongqing, People's Republic of China; Postdoctoral Workstation of Chongqing General Hospital, Chongqing, People's Republic of China.
Department of Biomedical Engineering, School of Bioinformatics, Chongqing University of Posts and Telecommunications, Chongqing, People's Republic of China.
Ultrason Sonochem. 2023 Jul;97:106456. doi: 10.1016/j.ultsonch.2023.106456. Epub 2023 May 27.
The cavitation dynamics of an air-vapor mixture bubble with ultrasonic excitation can be greatly affected by the equation of state (EOS) for the interior gases. To simulate the cavitation dynamics, the Gilmore-Akulichev equation was coupled with the Peng-Robinson (PR) EOS or the Van der Waals (vdW) EOS. In this study, the thermodynamic properties of air and water vapor predicted by the PR and vdW EOS were first compared, and the results showed that the PR EOS gives a more accurate estimation of the gases within the bubble due to the less deviation from the experimental values. Moreover, the acoustic cavitation characteristics predicted by the Gilmore-PR model were compared to the Gilmore-vdW model, including the bubble collapse strength, the temperature, pressure and number of water molecules within the bubble. The results indicated that a stronger bubble collapse was predicted by the Gilmore-PR model rather than the Gilmore-vdW model, with higher temperature and pressure, as well as more water molecules within the collapsing bubble. More importantly, it was found that the differences between both models increase at higher ultrasound amplitudes or lower ultrasound frequencies while decreasing as the initial bubble radius and the liquid parameters (e.g., surface tension, viscosity and temperature of the surrounding liquid) increase. This study might offer important insights into the effects of the EOS for interior gases on the cavitation bubble dynamics and the resultant acoustic cavitation-associated effects, contributing to further optimization of its applications in sonochemistry and biomedicine.
超声激励下的气液混合物气泡空化动力学会受到内部气体状态方程(EOS)的极大影响。为了模拟空化动力学,将吉尔莫-阿库利切夫方程与彭-罗宾逊(PR)EOS 或范德华(vdW)EOS 相结合。在本研究中,首先比较了 PR 和 vdW EOS 预测的空气和水蒸气的热力学性质,结果表明 PR EOS 由于与实验值的偏差较小,因此能更准确地估计气泡内的气体。此外,还比较了吉尔莫-PR 模型和吉尔莫-vdW 模型预测的声学空化特性,包括气泡坍塌强度、温度、压力和气泡内的水分子数量。结果表明,吉尔莫-PR 模型预测的气泡坍塌强度比吉尔莫-vdW 模型更强,且具有更高的温度、压力和气泡内的水分子数量。更重要的是,发现这两个模型之间的差异随着超声幅度的增加或超声频率的降低而增加,随着初始气泡半径和液体参数(如周围液体的表面张力、粘度和温度)的增加而减小。本研究可能有助于深入了解内部气体的 EOS 对空化气泡动力学及由此产生的声空化相关效应的影响,从而进一步优化其在声化学和生物医学中的应用。