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Particle selection and beam collimation system for laser-accelerated proton beam therapy.

机译:用于激光加速质子束治疗的粒子选择和束准直系统。

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In a laser-accelerated proton therapy system, the initial protons have broad energy and angular distributions, which are not suitable for direct therapeutic applications. A compact particle selection and collimation device is needed to deliver small pencil beams of protons with desired energy spectra. In this work, we characterize a superconducting magnet system that produces a desired magnetic field configuration to spread the protons with different energies and emitting angles for particle selection. Four magnets are set side by side along the beam axis; each is made of NbTi wires which carry a current density of approximately 10(5) A/cm2 at 4.2 K, and produces a magnetic field of approximately 4.4 T in the corresponding region. Collimation is applied to both the entrance and the exit of the particle selection system to generate a desired proton pencil beam. In the middle of the magnet system, where the magnetic field is close to zero, a particle selection collimator allows only the protons with desired energies to pass through for therapy. Simulations of proton transport in the presence of the magnetic field show that the selected protons have successfully refocused on the beam axis after passing through the magnetic field with the optimal magnet system. The energy spread for any given characteristic proton energy has been obtained. It is shown that the energy spread is a function of the magnetic field strength and collimator size and reaches the full width at half maximum of 25 MeV for 230 MeV protons. Dose distributions have also been calculated with the GEANT3 Monte Carlo code to study the dosimetric properties of the laser-accelerated proton beams for radiation therapy applications.
机译:在激光加速质子治疗系统中,初始质子具有较宽的能量和角度分布,不适合直接治疗应用。需要一种紧凑的粒子选择和准直装置来传递具有所需能谱的小的铅笔质子束。在这项工作中,我们表征了一种超导磁体系统,该系统会产生所需的磁场配置,从而以不同的能量和发射角度散布质子,以进行粒子选择。四个磁铁沿着光束轴并排放置;每个电极均由NbTi线制成,它们在4.2 K时的电流密度约为10(5)A / cm2,并在相应区域产生约4.4 T的磁场。将准直应用于粒子选择系统的入口和出口,以生成所需的质子笔形束。在磁场接近于零的磁体系统的中间,粒子选择准直器仅允许具有所需能量的质子通过以进行治疗。在磁场存在下质子传输的模拟表明,所选质子在以最佳磁体系统通过磁场后已成功地重新聚焦在束轴上。已获得任何给定特征质子能量的能量扩散。结果表明,能量散布是磁场强度和准直仪尺寸的函数,对于230 MeV质子,其能量散布达到25 MeV一半的最大宽度。还已经使用GEANT3蒙特卡罗代码计算了剂量分布,以研究用于放射治疗应用的激光加速质子束的剂量学性质。

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