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首页> 外文期刊>Journal of biomechanical engineering. >Numerical Study of Bubble Area Evolution During Acoustic Droplet Vaporization-Enhanced HIFU Treatment
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Numerical Study of Bubble Area Evolution During Acoustic Droplet Vaporization-Enhanced HIFU Treatment

机译:声学液滴汽化期间气泡区演化的数值研究 - 增强HIFU治疗

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摘要

Acoustic droplet vaporization has the potential to shorten treatment time of high-intensity focused ultrasound (HIFU) while minimizing the possible effects of microbubbles along the propagation path. Distribution of the bubbles formed from the droplets during the treatment is the major factor shaping the therapeutic region. A numerical model was proposed to simulate the bubble area evolution during this treatment. Using a linear acoustic equation to describe the ultrasound field, a threshold range was defined that determines the amount of bubbles vaporized in the treated area. Acoustic parameters, such as sound speed, acoustic attenuation coefficient, and density, were treated as a function of the bubble size distribution and the gas void fraction, which were related to the vaporized bubbles in the medium. An effective pressure factor was proposed to account for the influence of the existing bubbles on the vaporization of the nearby droplets. The factor was obtained by fitting one experimental result and was then used to calculate bubble clouds in other experimental cases. Comparing the simulation results to these other experiments validated the model. The dynamic change of the pressure and the bubble distribution after exposure to over 20 pulses of HIFU are obtained. It is found that the bubble area grows from a grainlike shape to a "tadpole," with comparable dimensions and shape to those observed in experiments. The process was highly dynamic with the shape of the bubble area changing with successive HIFU pulses and the focal pressure. The model was further used to predict the shape of the bubble region triggered by HIFU when a bubble wall pre-exists. The results showed that the bubble wall helps prevent droplet vaporization on the distal side of the wall and forms a particularly shaped region with bubbles. This simulation model has predictive potential that could be beneficial in applications, such as cancer treatment, by parametrically studying conditions associated with these treatments and designing treatment protocols.
机译:声学液滴蒸发有可能缩短高强度聚焦超声(HIFU)的处理时间,同时最小化沿着传播路径的微泡可能的影响。在处理期间由液滴形成的气泡的分布是塑造治疗区域的主要因素。提出了一种数值模型来模拟这种治疗过程中的气泡区域演变。使用线性声学方程来描述超声场,定义阈值范围,其确定在处理区域中蒸发的气泡量。声速,声速,声学衰减系数和密度等声学参数被视为气泡尺寸分布和气体空隙部分的函数,其与介质中的蒸发气泡有关。提出了有效的压力因子来解释现有气泡对附近液滴蒸发的影响。通过拟合一个实验结果获得的因素,然后用于在其他实验案例中计算泡沫云。将模拟结果与这些其他实验进行比较验证了该模型。获得了在暴露于超过20个HIFU脉冲后的压力和气泡分布的动态变化。发现气泡面积从谷物状形状生长到“蝌蚪”,其具有比较尺寸和形状的实验中观察到的那些。该过程具有高度动态的气泡面积与连续的HIFU脉冲和焦压变化的形状。该模型进一步用于预测HIFU当泡壁预先存在时由HIFU引发的气泡区域的形状。结果表明,气泡壁有助于防止在壁的远侧侧上的液滴蒸发,并形成具有气泡的特别形状的区域。该仿真模型具有可预测的潜力,可通过参数研究与这些治疗相关的条件和设计治疗方案,例如癌症治疗。

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  • 作者单位

    Shanghai Jiao Tong Univ Sch Biomed Engn Shanghai 200030 Peoples R China;

    Shanghai Jiao Tong Univ Sch Biomed Engn Shanghai 200030 Peoples R China;

    Shanghai Jiao Tong Univ Sch Biomed Engn Shanghai 200030 Peoples R China;

    Univ Michigan Hlth Syst Dept Radiol 3226C Med Sci Bldg 1 1301 Catherine St Ann Arbor MI 48109 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
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