Advanced Research Institute of Multidisciplinary Science, Beijing Institute of Technology, Beijing 100081, China.
School of Medical Technology, Beijing Institute of Technology, Beijing 100081, China.
Ultrason Sonochem. 2024 Dec;111:107061. doi: 10.1016/j.ultsonch.2024.107061. Epub 2024 Sep 10.
The viscoelastic tissue under dual-frequency ultrasound excitation affects the acoustic cavitation of a single gas-vapor bubble. To investigate the effect of the cavitation dynamics, the Gilmore-Akulichev-Zener (GAZ) model is coupled with the Peng-Robinson equation of state (PR EOS). Results indicate that the GAZ-PR EOS model can accurately estimate the bubble dynamics by comparing with the Gilmore PR EOS and GAZ-Van der Waals (VDW) EOS model. Furthermore, the acoustic cavitation effect in different viscoelastic tissues is investigated, including the radial stress at the bubble wall, the temperature, pressure, and the number of water molecules inside the bubble. Results show that the creep recovery and the relaxation of the stress caused by viscoelasticity can affect the acoustic cavitation of the bubble, which could inhibit the bubble's expansion and reduce the internal temperature and pressure within the bubble. Moreover, the effect of dual-frequency ultrasound on the cavitation of single gas-vapor bubbles is studied. Results suggest that dual-frequency ultrasound could increase the internal temperature of bubbles, the internal pressure of bubbles, and the radial stress at the bubble wall. More importantly, there is a specific optimal combination of frequencies for particular viscoelasticity by exploring the impact of different dual-frequency ultrasound combinations and tissue viscoelasticity on the acoustic cavitation of a single gas-vapor bubble. In conclusion, this study helps to provide theoretical guidance for dual-frequency ultrasound to improve acoustic chemical and mechanical effects, and further optimize its application in acoustic sonochemistry and ultrasound therapy.
双频超声激发下黏弹性组织对单个气核空化的影响。为了研究空化动力学的影响,将吉尔摩-阿库利切夫-泽纳(GAZ)模型与 Peng-Robinson 状态方程(PR EOS)耦合。结果表明,与吉尔摩 PR EOS 和 GAZ-范德华(VDW)EOS 模型相比,GAZ-PR EOS 模型可以更准确地预测气泡动力学。此外,还研究了不同黏弹性组织中的声空化效应,包括气泡壁上的径向应力、温度、压力以及气泡内水分子的数量。结果表明,黏弹性的蠕变恢复和应力松弛会影响气泡的声空化,从而抑制气泡的膨胀,降低气泡内部的温度和压力。此外,还研究了双频超声对单个气核空化的影响。结果表明,双频超声可以提高气泡内部的温度、压力和气泡壁上的径向应力。更重要的是,通过探索不同双频超声组合和组织黏弹性对单个气核空化的影响,发现了特定黏弹性下特定双频超声组合的最佳组合。总之,本研究有助于为双频超声提高声化学和力学效应提供理论指导,并进一步优化其在声化学和超声治疗中的应用。