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Numerical simulations of heating patterns and tissue temperature response due to high-intensity focused ultrasound

机译:高强度聚焦超声对加热模式和组织温度响应的数值模拟

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The results of this paper show-for an existing high intensity, focused ultrasound (HIFU) transducer-the importance of nonlinear effects on the space/time properties of wave propagation and heat generation in perfused liver models when a blood vessel also might be present. These simulations are based on the nonlinear parabolic equation for sound propagation and the bio-heat equation for temperature generation. The use of high initial pressure in HIFU transducers in combination with the physical characteristics of biological tissue induces shock formation during the propagation of a therapeutic ultrasound wave. The induced shock directly affects the rate at which heat is absorbed by tissue at the focus without significant influence on the magnitude and spatial distribution of the energy being delivered. When shocks form close to the focus, nonlinear enhancement of heating is confined in a small region around the focus and generates a higher localized thermal impact on the tissue than that predicted by linear theory. The presence of a blood vessel changes the spatial distribution of both the heating rate and temperature.
机译:本文的结果表明,对于现有的高强度聚焦超声(HIFU)换能器,当可能还存在血管时,非线性效应对灌注肝脏模型中波传播和生热的时空特性的重要性。这些模拟基于用于声音传播的非线性抛物线方程和用于温度生成的生物热方程。 HIFU换能器中高初始压力的使用与生物组织的物理特征相结合,会在治疗性超声波的传播过程中引起电击的形成。诱发的冲击直接影响焦点处组织吸收热量的速率,而对传递的能量的大小和空间分布没有明显影响。当震动在焦点附近形成时,加热的非线性增强将被限制在焦点周围的一小部分,并且对组织的局部热影响要比线性理论所预测的高。血管的存在改变了加热速率和温度的空间分布。

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