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Energy compensation of slow extracted beams with RF acceleration

机译:具有射频加速的慢速提取光束的能量补偿

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In a conventional carbon-ion radiotherapy facility, a carbon-ion beam is typically accelerated up to an optimum energy, slowly extracted from a synchrotron ring by a resonant slow extraction method, and ultimately delivered to a patient through a beam-delivery system. At Japan's Gunma University, a method employing slow-beam extraction along with beam-acceleration has been adopted. This method slightly alters the extracted-beam's energy owing to the acceleration component of the process, which subsequently results in a residual-range variation of approximately 2 mm in water-equivalent length. However, this range variation does not disturb a distal dose distribution with broad-beam methods such as the single beam-wobbling method. With the pencil-beam 3D scanning method, however, such a range variation disturbs a distal dose distribution because the variation is comparable to slice thickness. Therefore, for pencil-beam 3D scanning, an energy compensation method for a slow extracted beam is proposed in this paper. This method can compensate for the aforementioned energy variances by controlling net energy losses through a rotatable energy absorber set fixed between the synchrotron exit channel and the isocenter. Experimental results demonstrate that beam energies can be maintained constant, as originally hypothesized. Moreover, energy-absorber positions were found to be significantly enhanced by optimizing beam optics for reducing beam-size growth by implementation of the multiple-scattering effect option.
机译:在常规的碳离子放射治疗设备中,碳离子束通常被加速到最佳能量,通过共振慢速提取方法从同步加速器环中缓慢提取,并最终通过束传输系统传输给患者。在日本群马大学,采用了一种采用慢光束提取和光束加速的方法。由于该过程的加速分量,该方法会稍微改变提取光束的能量,这随后导致水等效长度的残差范围变化约为2 mm。但是,这种范围变化不会干扰诸如单波束摆动方法之类的宽波束方法的远端剂量分布。但是,对于笔形3D扫描方法,这种范围变化会干扰远端剂量分布,因为这种变化与切片厚度相当。因此,针对笔形3D扫描,提出了一种慢速提取光束的能量补偿方法。该方法可以通过控制固定在同步加速器出口通道和等中心点之间的可旋转能量吸收器装置来控制净能量损失,从而补偿上述能量差异。实验结果表明,按照最初的假设,光束能量可以保持恒定。此外,发现通过实施多重散射效应选项,通过优化光束光学器件以减少光束尺寸的增长,可以显着提高能量吸收器的位置。

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