D. Spiga, B. Salmaso, M. Bavdaz, C. Pelliciari, S. Basso, V. Burwitz, I. Ferreira, M. Ghigo, E. Giro, G. Pareschi, M. Rio, G. Tagliaferri, G. Vecchi, E. Wille
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引用次数: 12
摘要
BEaTriX,波束扩展测试x射线设备,正在INAF-OAB(西班牙天文天文台)进行建设。该实验室x射线源设计用于在1.49 keV和4.51 keV下产生宽(170 mm x 60 mm)、均匀和准直的x射线束,剩余散度为1.5弧秒HEW。BEaTriX的主要科学驱动力是基于硅孔光学(SPO)技术对ATHENA (ESA) x射线望远镜的模块元件进行常规校准。然而,BEaTriX的应用领域可能更广泛(例如,x射线断层扫描)。BEaTriX包括一个微聚焦的x射线源,随后是一个光学链,包括一个准直镜、晶体单色器和一个不对称光束扩展器。最终的光束准直和均匀性取决于光学元件的光学质量(x射线源尺寸、镜面抛光、晶格规则性)和它们的相互对准。为了确定最关键的参数,集中开发工作,并建立规范,建立了一套光学模拟。本文描述了我们为此特定目标开发的仿真工具,并讨论了在制造和对准公差方面取得的结果。
Optical simulations for the laboratory-based expanded and collimated x-ray beam facility BEaTriX
The construction of BEaTriX, the Beam Expander Testing X-ray facility, is underway at INAF-OAB (Osservatorio Astronomico di Brera). This laboratory-based X-ray source was designed to generate a broad (170 mm x 60 mm), uniform, and collimated X-ray beam, with a residual divergence of 1.5 arcsec HEW at either 1.49 keV and 4.51 keV. The main scientific driver for BEaTriX is represented by the opportunity to routinely calibrate the modular elements of the ATHENA (ESA) X-ray telescope, based on the silicon pore optics (SPO) technology. Nevertheless, the application domain of BEaTriX is potentially much wider (e.g., X-ray tomography). BEaTriX comprises a microfocus source of X-rays, followed by an optical chain including a collimating mirror, crystal monochromators, and an asymmetric beam expander. The final beam collimation and homogeneity relies on the optical quality of the optical components (X-ray source dimension, mirror polishing, crystal lattice regularity) and on their mutual alignment. In order to determine the most critical parameters, focus the development efforts, and establish specifications, a set of optical simulations has been built. Our paper describes the simulation tool we developed to this specific aim, and discusses the results achieved in terms of manufacturing and alignment tolerances.