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An investigation of penetration depth control using parallel opposed ultrasound arrays and a scanning reflector

机译:使用平行对置超声阵列和扫描反射器控制穿透深度的研究

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A theoretical study of penetration depth control in superficial hyperthermia utilizing parallel opposed linear ultrasound arrays and a double-faced (V-shaped) scanning reflector is presented. This is a dual array system (DAS), where one array operates at a low frequency and the other at a high frequency (1 and 5 MHz, respectively in this study). The arrays are positioned facing each other and both are aimed at a double-faced scanning reflector which distributes the energy over the scanned surface. Each reflecting surface is angled at 45° with respect to the sound propagation direction so that both beams are deflected in the same direction toward the treatment volume. The system was designed to be compatible for combined operation with a medical linear accelerator for the delivery of simultaneous thermoradiotherapy. It is demonstrated that by varying the excitation magnitude of one array relative to the other, it is possible to control the magnitude of absorbed energy as a function of depth, and thus improved control of the heating pattern in all three spatial dimensions is obtained. This improvement is demonstrated with bio-heat transfer simulations which show how penetration depth control translates into control of temperature distributions. The simulations also show that the DAS is able to produce more uniform temperature distributions in highly perfused tissue.
机译:提出了利用平行对置线性超声阵列和双面(V形)扫描反射镜控制浅层热疗穿透深度的理论研究。这是一个双阵列系统(DAS),其中一个阵列在低频下运行,另一个在高频下运行(在本研究中分别为1和5 MHz)。阵列彼此面对放置,并且都对准双面扫描反射镜,该双面扫描反射镜将能量分布在扫描表面上。每个反射表面相对于声音传播方向成45°角,从而使两个光束都沿相同的方向朝着治疗空间偏转。该系统设计为与医疗线性加速器组合操作兼容,以同时进行热放射治疗。已经证明,通过改变一个阵列相对于另一个阵列的激发幅度,可以控制吸收能量的幅度作为深度的函数,从而在所有三个空间维度上获得了对加热模式的改进控制。生物传热模拟证明了这种改进,该模拟显示了渗透深度控制如何转化为温度分布的控制。模拟还表明,DAS能够在高度灌注的组织中产生更均匀的温度分布。

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