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Analytical computation of the off-axis effective area of grazing incidence X-ray mirrors

机译:掠入射X射线镜离轴有效面积的解析计算

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Aims. Focusing mirrors for X-ray telescopes in grazing incidence, introduced in the 70s, are characterized in terms of their performance by their imaging quality and effective area, which in turn determines their sensitivity. Even though the on-axis effective area is assumed in general to characterize the collecting power of an X-ray optic, the telescope capability of imaging extended X-ray sources is also determined by the variation in its effective area with the off-axis angle. The effective area, in general, decreases as the X-ray source moves off-axis, causing a loss of sensitivity in the peripheral regions of the telescope's field of view. Methods. The complex task of designing optics for future X-ray telescopes entails detailed computations of both imaging quality and effective area on- and off-axis. Because of their apparent complexity, both aspects have been, so far, treated by using ray-tracing routines aimed at simulating the interaction of X-ray photons with the reflecting surfaces of a given focusing system. Although this approach has been widely exploited and proven to be effective, it would also be attractive to regard the same problem from an analytical viewpoint, to assess an optical design of an X-ray optical module with a simpler calculation than a ray-tracing routine. This would also improve the efficiency of optimization tasks when designing the X-ray optical modules. In this paper, we thereby focused on developing analytical solutions to compute the off-axis effective area of double-reflection X-ray mirrors. Results. We have developed useful analytical formulae for the off-axis effective area of a double-reflection mirror in the double cone approximation, requiring only an integration and the standard routines to calculate the X-ray coating reflectivity for a given incidence angle. The computation is easily applicable also to Wolter-I mirrors (such as those of NeXT, NuSTAR, HEXIT-SAT, IXO) and the approximation improves as the f-number of the mirror increases. Algebraic expressions are provided for the mirror geometric area, as a function of the off-axis angle. Finally, the results of the analytical computations presented here are validated by comparison with the corresponding predictions of a ray-tracing code. Key words: telescopes - methods: analytical - space vehicles: instruments - X-rays: general
机译:目的在20世纪70年代引入的用于掠入射的X射线望远镜的聚焦镜在其性能方面以成像质量和有效面积为特征,而反过来又决定了它们的灵敏度。即使通常假定轴上有效区域是表征X射线光学器件的收集能力,但成像扩展X射线源的望远镜能力也取决于其有效区域随轴外角度的变化。 。通常,有效区域会随着X射线源的轴外移动而减小,从而导致望远镜视场周围区域的灵敏度下降。方法。为未来的X射线望远镜设计光学装置的复杂任务需要对成像质量以及轴上和轴外有效面积进行详细计算。由于其表面上的复杂性,到目前为止,这两个方面都已通过使用旨在模拟X射线光子与给定聚焦系统的反射表面的交互作用的光线跟踪例程进行了处理。尽管此方法已被广泛开发并被证明是有效的,但从分析的角度考虑相同的问题,以比射线追踪程序更简单的计算来评估X射线光学模块的光学设计,也将很有吸引力。 。在设计X射线光学模块时,这还将提高优化任务的效率。因此,在本文中,我们将重点放在开发分析解决方案以计算双反射X射线镜的轴外有效面积。结果。我们为双锥近似中的双反射镜的轴外有效面积开发了有用的解析公式,仅需要积分和标准例程即可计算给定入射角的X射线涂层反射率。该计算也很容易适用于Wolter-I反射镜(例如NeXT,NuSTAR,HEXIT-SAT,IXO的反射镜),并且随着反射镜f数的增加,近似值也会提高。根据离轴角,为镜面几何区域提供了代数表达式。最后,通过与射线追踪代码的相应预测进行比较,可以验证此处介绍的分析计算结果。关键词:望远镜-方法:分析-航天器:仪器-X射线:一般

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