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A magnetic diverter for charged particle background rejection in the SIMBOL-X telescope

机译:用于在SIMBOL-X望远镜中抑制带电粒子背景的磁分流器

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Minimization of charged particle background in X-ray telescopes is a well known issue. Charged particles (chiefly protons and electrons) naturally present in the cosmic environment constitute an important background source when they collide with the X-ray detector. Even worse, a serious degradation of spectroscopic performances of the X-ray detector was observed in Chandra and Newton-XMM, caused by soft protons with kinetic energies ranging between 100 keV and some MeV being collected by the grazing-incidence mirrors and funneled to the detector. For a focusing telescope like SIMBOL-X, the exposure of the soft X-ray detector to the proton flux can increase significantly the instrumental background, with a consequent loss of sensitivity. In the worst case, it can also seriously compromise the detector duration. A well-known countermeasure that can be adopted is the implementation of a properly-designed magnetic diverter, that should prevent high-energy particles from reaching the focal plane instruments of SIMBOL-X. Although Newton-XMM and Swift-XRT are equipped with magnetic diverters for electrons, the magnetic fields used are insufficient to effectively act on protons. In this paper, we simulate the behavior of a magnetic diverter for SIMBOL-X, consisting of commercially-available permanent magnets. The effects of SIMBOL-X optics is simulated through GEANT4 libraries, whereas the effect of the intense required magnetic fields is simulated along with specifically-written numerical codes in IDL.
机译:X射线望远镜中带电粒子背景的最小化是一个众所周知的问题。当它们与X射线探测器碰撞时,自然存在于宇宙环境中的带电粒子(主要是质子和电子)会构成重要的背景源。更糟糕的是,在钱德拉(Chandra)和牛顿-XMM(XMM)中观察到X射线检测器的光谱性能严重下降,这是由动能在100 keV范围内的软质子和掠入射反射镜收集的一些MeV并进入漏斗引起的。探测器。对于像SIMBOL-X这样的聚焦望远镜,软X射线检测器暴露于质子通量会大大增加仪器的背景,从而导致灵敏度降低。在最坏的情况下,它还会严重影响检测器的持续时间。可以采取的众所周知的对策是实施设计合理的磁分流器,该分流器应防止高能粒子到达SIMBOL-X的焦平面仪器。尽管Newton-XMM和Swift-XRT配备了用于电子的磁转向器,但所使用的磁场不足以有效地作用于质子。在本文中,我们模拟了SIMBOL-X的电磁转向器的行为,该转向器由商用永磁体组成。 SIMBOL-X光学器件的效果是通过GEANT4库进行仿真的,而强烈要求的磁场的效果与IDL中专门编写的数字代码一起进行了仿真。

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