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      Investigation of interaction effects on dual-frequency driven cavitation dynamics in a two-bubble system

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          Highlights

          • Dual-frequency driven cavitation dynamics is assessed in a two-bubble system.

          • Inter-bubble interactions enhance/suppress cavitation dynamics to different degrees.

          • Large bubble excited on-resonance causes strong interaction effects on the small one.

          • Different frequency/pressure combinations greatly vary interaction effects.

          • Stronger interaction effects are obtained at lower viscosities/certain elasticities.

          Abstract

          The cavitation dynamics of a two-bubble system in viscoelastic media excited by dual-frequency ultrasound is studied numerically with a focus on the effects of inter-bubble interactions. Compared to the isolated bubble cases, the enhancement or suppression effects can be exerted on the amplitude and nonlinearity of the bubble oscillations to different degrees. Moreover, the interaction effects are found to be highly sensitive to multiple paramount parameters related to the two-bubble system, the dual-frequency ultrasound and the medium viscoelasticity. Specifically, the larger bubble of a two-bubble system shows a stronger effect on the smaller one, and this effect becomes more pronounced when the larger bubble undergoes harmonic and/or subharmonic resonances as well as the two bubbles get closer ( e.g., d 0 < 100 μm). For the influences of the dual-frequency excitation, the results show that the bubbles can achieve enhanced harmonic and/or subharmonic oscillations as the frequency combinations with small frequency differences ( e.g., Δ f < 0.2 MHz) close to the corresponding resonance frequencies of bubbles, and the interaction effects are consequently intensified. Similarly, the bubble oscillations and the interaction effects can also be enhanced as the acoustic pressure amplitude of each frequency component is equal and the pressure amplitude p A increases. Above a pressure threshold ( p A  = 215 kPa), a larger bubble undergoes period 2 (P2) oscillations, which can force a smaller bubble to change its oscillation pattern from period 1 (P1) into P2 oscillations. In addition, it is found that the medium viscosity dampens the bubble oscillations while the medium elasticity affects the bubble resonances, accordingly exhibiting stronger interaction effects at smaller viscosities ( e.g., μ < 4 mPa·s) or certain elasticities (approximately G = 70–120 kPa, G = 160–200 kPa and G = 640–780 kPa) at which the bubble resonances occur. The study can contribute to a better understanding of the complex dynamic behaviors of interacting cavitation bubbles in viscoelastic tissues for high efficient cavitation-mediated biomedical applications using dual-frequency ultrasound.

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          Most cited references53

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          Ultrasound-Responsive Cavitation Nuclei for Therapy and Drug Delivery

          Therapeutic ultrasound strategies that harness the mechanical activity of cavitation nuclei for beneficial tissue bio-effects are actively under development. The mechanical oscillations of circulating microbubbles, the most widely investigated cavitation nuclei, which may also encapsulate or shield a therapeutic agent in the bloodstream, trigger and promote localized uptake. Oscillating microbubbles can create stresses either on nearby tissue or in surrounding fluid to enhance drug penetration and efficacy in the brain, spinal cord, vasculature, immune system, biofilm or tumors. This review summarizes recent investigations that have elucidated interactions of ultrasound and cavitation nuclei with cells, the treatment of tumors, immunotherapy, the blood–brain and blood–spinal cord barriers, sonothrombolysis, cardiovascular drug delivery and sonobactericide. In particular, an overview of salient ultrasound features, drug delivery vehicles, therapeutic transport routes and pre-clinical and clinical studies is provided. Successful implementation of ultrasound and cavitation nuclei-mediated drug delivery has the potential to change the way drugs are administered systemically, resulting in more effective therapeutics and less-invasive treatments.
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            • Record: found
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            Nucleation, mapping and control of cavitation for drug delivery

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              • Article: not found

              Bubble dynamics in a viscoelastic medium with nonlinear elasticity

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                Author and article information

                Contributors
                Journal
                Ultrason Sonochem
                Ultrason Sonochem
                Ultrasonics Sonochemistry
                Elsevier
                1350-4177
                1873-2828
                04 September 2023
                October 2023
                04 September 2023
                : 99
                : 106586
                Affiliations
                [a ]Chongqing Engineering Research Center of Medical Electronics and Information Technology, Department of Biomedical Engineering, School of Bioinformatics, Chongqing University of Posts and Telecommunications, Chongqing, People’s Republic of China
                [b ]Postdoctoral Workstation of Chongqing General Hospital, Chongqing, People’s Republic of China
                [c ]Department of Ultrasound, Chongqing General Hospital, Chongqing, People’s Republic of China
                Author notes
                Article
                S1350-4177(23)00298-5 106586
                10.1016/j.ultsonch.2023.106586
                10498094
                37688945
                af7ca36b-a3b4-4767-91a2-d4615b544aac
                © 2023 The Author(s)

                This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

                History
                : 3 July 2023
                : 27 August 2023
                : 3 September 2023
                Categories
                Original Research Article

                acoustic cavitation,dual-frequency excitation,bubble dynamics,inter-bubble interactions,viscoelasticity

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