论文标题
基于医疗回旋子的辐射硬度研究的设施
A facility for radiation hardness studies based on a medical cyclotron
论文作者
论文摘要
在高辐射环境中进行操作的仪器的开发代表了各个研究领域的挑战,尤其是在粒子物理实验和太空任务中,并且推动了对辐射硬度研究的辐射设施的不断增长的需求。根据应用的不同,在粒子类型,能量和剂量速率方面出现了不同的需求。在本文中,我们介绍了基于位于伯尔尼大学医院(Inselspital)的医疗回旋子(Inselspital)的多功能装置,该装置用作受控的18-MEV质子来源。该加速器用于医疗放射性病以及多学科研究的日常生产,这要归功于6.5米长的长束传输线终止于独立的掩体中,仅专用于科学活动。该设施提供了广泛的质子通量,这是由于可调节的光束电流从大约10 pa到微型室范围,以及一系列沿光束线的转向和聚焦磁铁,从而使光束斑点可将光束斑点焦点移至几毫米^2。梁线可以用各种光束监测探测器,准直仪和光束电流测量设备进行仪器,以精确控制辐射条件。该设施还设有一个设备齐全的实验室,该实验室专门用于辐照后样品的表征。辐射设置的实验验证,其质子通量从$ 5 \ times10^9 $ cm $^{ - 2} $ s $ s $^{ - 1} $到$ 4 \ times10^{11} $ cm $ cm $^{ - 2} $ s $ s $ s $ s $ s $^{ - 1} $,在本文中报道。
The development of instrumentation for operation in high-radiation environments represents a challenge in various research fields, particularly in particle physics experiments and space missions, and drives an ever-increasing demand for irradiation facilities dedicated to radiation hardness studies. Depending on the application, different needs arise in terms of particle type, energy and dose rate. In this article, we present a versatile installation based on a medical cyclotron located at the Bern University Hospital (Inselspital), which is used as a controlled 18-MeV proton source. This accelerator is used for daily production of medical radioisotopes, as well as for multidisciplinary research, thanks to a 6.5-meter long beam transfer line that terminates in an independent bunker, dedicated only to scientific activities. The facility offers a wide range of proton fluxes, due to an adjustable beam current from approximately 10 pA to the micro-ampere range, together with a series of steering and focusing magnets along the beamline that allow for the beam spot to be focused down to a few mm^2. The beamline can be instrumented with a variety of beam monitoring detectors, collimators, and beam current measurement devices to precisely control the irradiation conditions. The facility also hosts a well equipped laboratory dedicated to the characterisation of samples after irradiation. An experimental validation of the irradiation setup, with proton fluxes ranging from $5\times10^9$ cm$^{-2}$s$^{-1}$ to $4\times10^{11}$ cm$^{-2}$s$^{-1}$, is reported in this article.