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A novel range-verification method using ionoacoustic wave generated from spherical gold markers for particle-beam therapy: a simulation study

机译:一种使用球形金标记生成的电声波进行粒子束治疗的新型距离验证方法:模拟研究

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This study proposes a novel alternative range-verification method for proton beam with acoustic waves generated from spherical metal markers. When proton beam is incident on metal markers, most of the resulting pressure waves are confined in the markers because of the large difference in acoustic impedance between the metal and tissue. However, acoustic waves with frequency equal to marker's resonant frequency escape this confinement; the marker briefly acts as an acoustic transmitter. Herein, this phenomenon is exploited to measure the range of the proton beam. We test the proposed strategy in 3-D simulations, combining the dose calculations with modelling of acoustic-wave propagation. A spherical gold marker of 2.0?mm diameter was placed in water with a 60?MeV proton beam incident on it. We investigated the dependence of pressure waves on the width of beam pulse and marker position. At short beam pulse, specific high-frequency acoustic waves of 1.62?MHz originating from the marker were observed in wave simulations, whose amplitude correlated with the distance between the marker and Bragg peak. Results indicate that the Bragg peak position can be estimated by measuring the acoustic wave amplitudes from the marker, using a single detector properly designed for the resonance frequency.
机译:这项研究提出了一种新的替代范围验证方法,用于质子束与球形金属标记产生的声波。当质子束入射到金属标记器上时,由于金属和组织之间的声阻抗差异很大,因此大多数产生的压力波都被限制在标记器中。但是,频率等于标记共振频率的声波会逃避这一限制;标记短暂地充当声发射器。在此,利用该现象来测量质子束的范围。我们将剂量计算与声波传播建模相结合,在3-D模拟中测试了所提出的策略。将直径为2.0?mm的球形金标记放置在水中,并入射60?MeV质子束。我们研究了压力波对束脉冲宽度和标记位置的依赖性。在短波束脉冲下,在波模拟中观察到了源自标记的特定高频声波,为1.62?MHz,其振幅与标记与布拉格峰之间的距离相关。结果表明,使用适当设计用于共振频率的单个检测器,可以通过测量来自标记的声波幅度来估计布拉格峰位置。

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