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On the relationships between electron spot size, focal spot size, and virtual source position in Monte Carlo simulations.

机译:关于蒙特卡罗模拟中电子点尺寸,焦点尺寸和虚拟源位置之间的关系。

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PURPOSE: Every year, new radiotherapy techniques including stereotactic radiosurgery using linear accelerators give rise to new applications of Monte Carlo (MC) modeling. Accurate modeling requires knowing the size of the electron spot, one of the few parameters to tune in MC models. The resolution of integrated megavoltage imaging systems, such as the tomotherapy system, strongly depends on the photon spot size which is closely related to the electron spot. The aim of this article is to clarify the relationship between the electron spot size and the photon spot size (i.e., the focal spot size) for typical incident electron beam energies and target thicknesses. METHODS: Three electron energies (3, 5.5, and 18 MeV), four electron spot sizes (FWHM = 0, 0.5, 1, and 1.5 mm), and two tungsten target thicknesses (0.15 and 1 cm) were considered. The formation of the photon beam within the target was analyzed through electron energy deposition with depth, as well as photon production at several phase-space planes placed perpendicular to the beam axis, where only photons recorded for the first time were accounted for. Photon production was considered for "newborn" photons intersecting a 45 x 45 cm2 plane at the isocenter (85 cm from source). Finally, virtual source position and "effective" focal spot size were computed by back-projecting all the photons from the bottom of the target intersecting a 45 x 45 cm2 plane. The virtual source position and focal spot size were estimated at the plane position where the latter is minimal. RESULTS: In the relevant case of considering only photons intersecting the 45 x 45 cm2 plane, the results unambiguously showed that the effective photon spot is created within the first 0.25 mm of the target and that electron and focal spots may be assumed to be equal within 3-4%. CONCLUSIONS: In a good approximation photon spot size equals electron spot size for high energy X-ray treatments delivered by linear accelerators.
机译:目的:每年,包括使用线性加速器的立体定向放射外科在内的新放射疗法技术都在蒙特卡洛(MC)建模中得到了新的应用。准确的建模需要了解电子点的大小,这是在MC模型中需要调整的少数几个参数之一。集成的兆电压成像系统(例如断层扫描系统)的分辨率在很大程度上取决于与电子点密切相关的光子点大小。本文的目的是阐明典型入射电子束能量和目标厚度的电子光斑尺寸与光子光斑尺寸(即焦点尺寸)之间的关系。方法:考虑了三个电子能量(3、5.5和18 MeV),四个电子点尺寸(FWHM = 0、0.5、1和1.5 mm)和两个钨靶厚度(0.15和1 cm)。通过具有一定深度的电子能量沉积以及垂直于电子束轴放置的几个相空间平面上的光子生成,分析了目标内光子束的形成,其中仅考虑了首次记录的光子。在等中心点(距源头85 cm)与45 x 45 cm2平面相交的“新生”光子被认为是光子产生的。最后,通过从与45 x 45 cm2平面相交的目标底部反投影所有光子来计算虚拟源位置和“有效”焦点尺寸。虚拟源位置和焦点大小是在平面位置最小的平面位置估计的。结果:在仅考虑与45 x 45 cm2平面相交的光子的相关情况下,结果清楚地表明,有效光子点在目标的前0.25 mm内产生,并且电子和焦点可以假定为在同一范围内相等。 3-4%。结论:对于线性加速器提供的高能X射线治疗,光子的光斑尺寸近似等于电子的光斑尺寸。

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