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Magnetic quadrupole simulations for focusing the electron beams emitted by a plasma focus device

机译:用于聚焦通过等离子体聚焦装置发射的电子束的磁性四极轴模拟

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A Plasma Focus (PF) device allows for production of electron beams that, through a suitable target interaction, can be converted in X-ray pulses that have been considered for radiobiology or medical applications such as imaging or radiotherapy, in dependence from the working parameters and setup. The Plasma Focus Device for Medical Applications #3 (PFMA-3), hosted at the Montecuccolino Laboratory of the University of Bologna, has been designed for these purposes. In the device, electron pulses are generated during the pinch phase in the order of 1.0 E+15 particles in few tens of ns. One of the main advantages in dealing with the beams emitted by a PF is their self-collimated behavior at the emission time. Unfortunately, during the traveling distance from pinch to target, that collimation can be partially lost due to the repulsive interactions. One solution is to implement a magnetic device based on a quadrupoles triplet able to confine the beam in spots with a few mm diameter. This kind of focusing allows for using the PF as a source for generating extremely short X-ray pulses that could be more easily further managed for specific applications. A computational model of the PFMA-3 has been set using COMSOL (c) Multiphysics and the Monte Carlo MCNP6 code. The electron spectra used as source for simulations were acquired experimentally using a magnetic spectrometer, while the beam shape entering the magnetic system to be designed has been detected using Gafchromic (c) HDV2 film dosimeters and used as a benchmark for the numerical models. The magnetic field generated by the quadrupoles has been carefully designed through a parametric study with COMSOL (c) Multiphysics and the focusing effectiveness verified. The designed geometry has been then modeled in MCNP6 to perform coupled electron-photon transport simulations for estimating electron fluxes, spectra and X-ray doses as modified by the quadrupoles triplet application.
机译:等离子体焦点(PF)装置允许通过合适的靶相互作用生产电子束,可以在X射线脉冲中转换,该X射线脉冲已经考虑用于放射生物学或医疗应用,例如成像或放射治疗,其依赖于工作参数并设置。在博洛尼亚大学的Montecuccolino实验室举办的医疗应用程序#3(PFMA-3)的等离子体聚焦装置已经为这些目的而设计。在该装置中,在几十个NS中的1.0 e + 15颗粒的夹紧相位期间产生电子脉冲。处理PF发射的光束的主要优点之一是它们在发射时间处的自我准直行为。遗憾的是,在从夹紧到目标的行驶距离期间,由于排斥相互作用,准直可以部分地丢失。一种解决方案是基于四倍体的磁性装置三重态,能够将光束限制在具有少毫米直径的斑点中。这种焦点允许使用PF作为用于产生极短X射线脉冲的源,这可以更容易地进一步管理特定应用。使用COMSOL(C)多发性和Monte Carlo MCNP6代码设置了PFMA-3的计算模型。用作模拟源的电子光谱使用磁光谱仪进行实验获取,同时使用Grafchromic(C)HDV2薄膜剂量计检测进入待设计的磁性系统的光束形状,并用作数值模型的基准。通过使用COMSOL(C)多发性的参数研究和验证的聚焦效果精心设计,已经精心设计了由Quadrupoles产生的磁场。然后,设计的几何形状在MCNP6中进行了建模,以进行耦合的电子 - 光子传输模拟,用于估计由四倍胶囊应用的改变的电子助熔剂,光谱和X射线剂量。

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