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用于热疗的内部冷却组织间超声换能器的理论模型。

Theoretical model of internally cooled interstitial ultrasound applicators for thermal therapy.

作者信息

Tyréus Per Daniel, Diederich Chris J

机构信息

Radiation Oncology Department, Comprehensive Cancer Center, University of California, San Francisco 94143-1708, USA.

出版信息

Phys Med Biol. 2002 Apr 7;47(7):1073-89. doi: 10.1088/0031-9155/47/7/306.

Abstract

Interstitial ultrasound applicators for high-temperature thermal therapy are currently being developed for treating cancerous and benign disease. Internally cooled, direct-coupled (ICDC) applicators, composed of a segmented array of cylindrical ultrasound transducers, have demonstrated capabilities of producing controllable and conformal heating distributions along the applicator length and angular orientation. In this study, 2D transient acoustic and biothermal models of ICDC applicators were developed using a mixed implicit and explicit finite difference solution with variable node spacing in cylindrical coordinates for enhanced speed, stability and accuracy. The model incorporates dynamic behaviour of acoustic parameters and blood perfusion as a function of temperature and thermal dose. Acoustic intensity distributions were modelled as a composite of measured and theoretical intensity distributions. The shape and time evolution of temperature contours and thermal lesions for 90 degrees, 200 and 360 degrees angularly directional applicators and multi-transducer applicators were modelled for heating durations between 1 and 5 min. Model parameters were selected to match previously reported ex vivo and in vivo studies of 2.2 mm diameter ICDC devices in thigh muscle and liver (15-30 W cm(-2) applied power density, 0.5-5 min treatment times, 2.8-3.6 cm diameter thermal lesions). The temperatures and lethal thermal dose (600 EM43 degrees C) contours calculated using the models were in excellent agreement with temperatures and thermal lesion dimensions (visible coagulation) determined experimentally. The differences between maximum radial depths of coagulation calculated using the r-z and r-theta models were small, less than approximately 2 mm for 10-15 mm lesions. There was a strong correlation between the calculated 50 degrees C contour and the radial, angular and axial lesion dimensions obtained for 3-5 min heating protocols. The models developed in this study have significant application in design studies and potential future use in treatment planning of ICDC interstitial ultrasound thermal therapy.

摘要

用于高温热疗的间质超声换能器目前正在研发中,用于治疗癌症和良性疾病。内部冷却的直接耦合(ICDC)换能器由圆柱形超声换能器的分段阵列组成,已证明能够沿换能器长度和角度方向产生可控且适形的热分布。在本研究中,使用混合隐式和显式有限差分法在圆柱坐标系中采用可变节点间距开发了ICDC换能器的二维瞬态声学和生物热模型,以提高速度、稳定性和准确性。该模型纳入了声学参数的动态行为以及作为温度和热剂量函数的血液灌注。声学强度分布被建模为测量强度分布和理论强度分布的组合。对90度、200度和360度角度定向换能器以及多换能器换能器在1至5分钟加热持续时间内的温度轮廓和热损伤的形状及时间演变进行了建模。选择模型参数以匹配先前报道的关于直径2.2毫米的ICDC装置在大腿肌肉和肝脏中的离体和在体研究(施加功率密度为15 - 30 W cm⁻²,治疗时间为0.5 - 5分钟,热损伤直径为2.8 - 3.6厘米)。使用模型计算的温度和致死热剂量(600 EM43℃)轮廓与实验确定的温度和热损伤尺寸(可见凝固)非常吻合。使用r - z模型和r - θ模型计算的最大径向凝固深度之间的差异很小,对于10 - 15毫米的损伤,差异小于约2毫米。在3 - 5分钟加热方案下计算的50℃轮廓与获得的径向、角度和轴向损伤尺寸之间存在很强的相关性。本研究中开发的模型在设计研究中有重要应用,并在ICDC间质超声热疗的治疗规划中具有潜在的未来用途。

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