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Proton range verification in homogeneous materials through acoustic measurements

机译:通过声学测量验证均质材料中的质子范围

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摘要

Clinical proton beam quality assurance (QA) requires a simple and accurate method to measure the proton beam Bragg peak (BP) depth. Protoacoustics, the measurement of the pressure waves emitted by thermal expansion resulting from proton dose deposition, may be used to obtain the depth of the BP in a phantom by measuring the time-of-flight (TOF) of the pressure wave. Rectangular and cylindrical phantoms of different materials (aluminum, lead, and polyethylene) were used for protoacoustic studies. Four different methods for analyzing the protoacoustic signals are compared. Data analysis shows that, for Methods 1 & 2, plastic phantoms have better accuracy than metallic ones because of the lower speed of sound. Method 3 does not require characterizing the speed of sound in the material, but it results in the largest error. Method 4 exhibits minimal error, less than 3 mm (with an uncertainty ≤1.5 mm) for all the materials and geometries. Psuedospectral wave-equation simulations (k-Wave MATLAB toolbox) are used to understand the origin of acoustic reflections within the phantom. The presented simulations and experiments show that protoacoustic measurements may provide a low cost and simple QA procedure for proton beam range verification as long as the proper phantoms and calculation methods are used.
机译:临床质子束质量保证(QA)需要一种简单而准确的方法来测量质子束布拉格峰(BP)深度。通过测量质子剂量沉积产生的热膨胀而产生的压力波,原声的测量可用于通过测量压力波的飞行时间(TOF)来获得体模中BP的深度。不同材料(铝,铅和聚乙烯)的矩形和圆柱体模型用于原声研究。比较了四种分析原声信号的方法。数据分析表明,对于方法1和方法2,由于声音速度较低,塑料体模的准确性优于金属体模。方法3不需要表征材料中的声音速度,但是会导致最大的误差。对于所有材料和几何形状,方法4的最小误差均小于3 mm(不确定度≤1.5 mm)。伪光谱波方程仿真(k-Wave MATLAB工具箱)用于了解幻像内声反射的起源。提出的仿真和实验表明,只要使用正确的体模和计算方法,原声测量可以为质子束范围验证提供低成本和简单的QA程序。

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