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Optimizing Ultrasonic Intensity for High Intensity Focused Ultrasound Therapy

机译:优化超声强度以进行高强度聚焦超声治疗

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摘要

Every year as many as one million individuals worldwide are diagnosed withhepatocellular carcinoma (HCC), the most common form of liver cancer. Caused bycirrhosis, HCC is typically treated with surgery or chemotherapy. High intensity focused ultrasound (HIFU) therapy, an emerging treatment option, is a noninvasive alternative to these methods. HIFU targets a cancerous tumor and induces necrosis while reducing damage to surrounding tissue. Acoustic pressure waves propagate from a curved transducer head into the tissue medium. The curved nature of the transducer surface focuses the pressure waves into a selected region and the energy of the beam is converted into heat. HIFU allows for precise targeting of tumor regions and reduced necrosis of healthy tissue. It iseasier to control the depth and position of interstitial ultrasound than it is for otherinterstitial heating methods, such as percutaneous ethanol injection and radiofrequency. This project models the treatment of liver cancer using HIFU therapy. We model the thermal necrosis of a liver tumor caused by an ultrasonic ransducer, and we optimize the process to maximize tumor ablation and minimize tissue damage. The process is modeled in COMSOL Multiphysics using 2-D axisymmetric oordinates which simplifies the tumor geometry as symmetric and includes the HIFU probe and surrounding tissue. Transducer size and parameters are that of the JC-model HIFU transducer from Haifutech, Inc. Relevant tumor and tissue parameters are taken from the literature. Pressure waves are modeled using the Helmholtz equation and heat transfer utilizes the Bioheat Equation. Tumor and tissue ablation are evaluated with a thermal dose equation. Our results show pressure wave propagation focused at the center of the liver tumor. Maximum heating occurs at the tumor center where pressures were the highest and lower temperatures are seen in healthy tissue regions, indicating a proper coupling of the ultrasound and heat transfer physics. A transducer frequency of 1 MHz with a power of 200W and a sonication time of 3.2 seconds maximizes tumor ablation while minimizing healthy tissue damage in a 0.8 cm diameter tumor. This model demonstrates the effective heating of HCC tumors by HIFU, and can be used as a reference for optimizing a heating dose for tumors of known sizes.
机译:全世界每年有多达一百万的人被诊断出肝细胞癌(HCC),这是最常见的肝癌形式。肝硬化引起的肝癌通常通过手术或化学疗法进行治疗。高强度聚焦超声(HIFU)治疗是一种新兴的治疗选择,是这些方法的无创替代方案。 HIFU靶向癌性肿瘤并诱导坏死,同时减少对周围组织的损害。声压波从弯曲的换能器头传播到组织介质中。换能器表面的弯曲特性将压力波聚焦到选定的区域,并且束的能量转换为热量。 HIFU可以精确靶向肿瘤区域并减少健康组织的坏死。与其他间质加热方法(例如经皮乙醇注射和射频)相比,控制间质超声的深度和位置更加容易。该项目模拟了使用HIFU治疗肝癌的方法。我们对由超声换能器引起的肝肿瘤的热坏死进行建模,并优化过程以最大程度地消融肿瘤并使组织损伤最小化。该过程在COMSOL Multiphysics中使用2-D轴对称坐标建模,简化了对称的肿瘤几何形状,并包括HIFU探针和周围组织。换能器的大小和参数与Haifutech,Inc.的JC型HIFU换能器相同。相关的肿瘤和组织参数取自文献。使用Helmholtz方程对压力波进行建模,而利用Bioheat方程进行热传递。用热剂量方程评估肿瘤和组织消融。我们的结果表明压力波的传播集中在肝脏肿瘤的中心。最大的发热发生在肿瘤中心,那里的压力最高,而在健康的组织区域则看到较低的温度,这表明超声和传热物理学的正确结合。 1 MHz的换能器频率具有200W的功率和3.2秒的超声处理时间,可以最大程度地消融肿瘤,同时将直径为0.8 cm的肿瘤对健康组织的损害最小化。该模型证明了HIFU可有效加热HCC肿瘤,并可作为优化已知大小肿瘤加热剂量的参考。

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