Zilonova E, Solovchuk M, Sheu T W H
Department of Engineering Science and Ocean Engineering, National Taiwan University, No. 1, Sec. 4, Roosevelt Road, Taipei 10617, Taiwan, ROC.
Department of Engineering Science and Ocean Engineering, National Taiwan University, No. 1, Sec. 4, Roosevelt Road, Taipei 10617, Taiwan, ROC; Institute of Biomedical Engineering and Nanomedicine, National Health Research Institutes, No. 35, Keyan Road, Zhunan 35053, Taiwan, ROC.
Ultrason Sonochem. 2018 Jan;40(Pt A):900-911. doi: 10.1016/j.ultsonch.2017.08.017. Epub 2017 Aug 19.
The present study is aimed to investigate bubble dynamics in a soft tissue, to which HIFU's continuous harmonic pulse is applied by introducing a viscoelastic cavitation model. After a comparison of some existing cavitation models, we decided to employ Gilmore-Akulichev model. This chosen cavitation model should be coupled with the Zener viscoelastic model in order to be able to simulate soft tissue features such as elasticity and relaxation time. The proposed Gilmore-Akulichev-Zener model was investigated for exploring cavitation dynamics. The parametric study led us to the conclusion that the elasticity and viscosity both damp bubble oscillations, whereas the relaxation effect depends mainly on the period of the ultrasound wave. The similar influence of elasticity, viscosity and relaxation time on the temperature inside the bubble can be observed. Cavitation heat source terms (corresponding to viscous damping and pressure wave radiated by bubble collapse) were obtained based on the proposed model to examine the cavitation significance during the treatment process. Their maximum values both overdominate the acoustic ultrasound term in HIFU applications. Elasticity was revealed to damp a certain amount of deposited heat for both cavitation terms.
本研究旨在通过引入粘弹性空化模型来研究高强度聚焦超声(HIFU)连续谐波脉冲作用于软组织时的气泡动力学。在比较了一些现有的空化模型后,我们决定采用吉尔摩 - 阿库利切夫模型。所选的空化模型应与齐纳粘弹性模型耦合,以便能够模拟软组织的弹性和弛豫时间等特征。为了探索空化动力学,对所提出的吉尔摩 - 阿库利切夫 - 齐纳模型进行了研究。参数研究使我们得出结论,弹性和粘性都会抑制气泡振荡,而弛豫效应主要取决于超声波的周期。可以观察到弹性、粘性和弛豫时间对气泡内部温度有类似的影响。基于所提出的模型获得了空化热源项(对应于粘性阻尼和气泡崩溃辐射的压力波),以研究治疗过程中的空化意义。在HIFU应用中,它们的最大值均超过了声学超声项。结果表明,弹性对两种空化项都会消耗一定量的沉积热。