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搭载于“朱雀”三号上的X射线望远镜。三、射线追踪模拟器性能提升与优化指南。

X-ray telescope onboard Astro-E. III. Guidelines to performance improvements and optimization of the ray-tracing simulator.

作者信息

Misaki Kazutami, Hidaka Yasuhiro, Ishida Manabu, Shibata Ryo, Furuzawa Akihiro, Haba Yoshito, Itoh Kei, Mori Hideyuki, Kunieda Hideyo

机构信息

Institute of Space and Astronomical Science, Sagamihara, Kanagawa 229-8510, Japan.

出版信息

Appl Opt. 2005 Feb 20;44(6):916-40. doi: 10.1364/ao.44.000916.

DOI:10.1364/ao.44.000916
PMID:15751683
Abstract

We present a detailed study of the performance of the Astro-E x-ray telescope (XRT) onboard the Astro-E satellite. As described in preceding papers the ground-based calibrations of the Astro-E XRT revealed that its image quality and effective area are somewhat worse than that expected from the original design. Conceivable causes for such performance degradation are examined by x-ray and optical microscopic measurements at various levels, such as individual reflectors, sectors, and quadrants of the XRT and their alignments. We can attribute, based on detailed measurements, the degradation of the image quality to a slope error in the individual reflectors and the positioning error of reflectors. As for the deficit of the effective area, the shadowing of x rays within the XRT body is the dominant factor. Error budgets for the performance degradation of the Astro-E XRT are summarized. The ray-tracing simulator, which is needed to construct the response function for arbitrary off-axis angles and spatial distributions of any celestial x-ray sources, has been developed and tuned based on the results of detailed measurements. The ray-tracing simulation provides results that are consistent within 3% with the real measurement except for large off-axis angles and higher energies. We propose, based on knowledge obtained from all the measurements and simulations, several plans for future developments to improve the performance of the nested thin-foil mirrors.

摘要

我们对Astro-E卫星上搭载的Astro-E X射线望远镜(XRT)的性能进行了详细研究。如前文所述,Astro-E XRT的地面校准显示,其图像质量和有效面积比原设计预期的要稍差一些。通过对XRT的各个反射镜、扇区和象限及其对准情况等不同层面进行X射线和光学显微镜测量,研究了导致这种性能下降的可能原因。基于详细测量,我们可以将图像质量的下降归因于单个反射镜的斜率误差和反射镜的定位误差。至于有效面积不足,XRT主体内部X射线的遮挡是主要因素。总结了Astro-E XRT性能下降的误差预算。基于详细测量结果,开发并调整了用于构建任意离轴角度和任何天体X射线源空间分布的响应函数所需的光线追踪模拟器。除了大离轴角度和较高能量外,光线追踪模拟提供的结果与实际测量结果的一致性在3%以内。基于从所有测量和模拟中获得的知识,我们提出了几个未来发展计划,以提高嵌套薄箔镜的性能。

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