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Manufacture of aspherical molding dies for X-ray telescopes after ASTRO-H

机译:ASTRO-H之后制造用于X射线望远镜的非球面模具

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Producing X-ray imaging space telescopes is a very expensive endeavor, due in great part to the difficulty of fabricating thin mirrors for Wolter type-Ⅰ optical assemblies. To meet this challenge, replication from optical molding dies (also called mandrels) has become the preferred method, as it is reliable and economical. Several replication methods exist: in the case of the ASTRO-H mission, DC magnetron sputtering was used to deposit Pt/C multilayer coating on glass molding dies. The multilayer coating was then bonded with epoxy to aluminum shells and then separated from the die. Another mirror replication method consists of slumping thin glass sheets over a full (or a section of) revolution molding die under high temperature. This method was demonstrated in the case of the NuSTAR mission. But the challenge of fabricating truly aspheric Wolter type molding dies, which are capable of highly accurate angular resolution (below 5 arcs), remains very expensive and time consuming. In this paper, three methods for producing X-ray optic molding dies are presented. Each method uses a different substrate material and process chain, as follows: electroless nickel plated aluminum (first diamond turned then correctively polished), fused silica (first precision ground then correctively polished), and CVD silicon carbide (which can be finished entirely with a newly developed Shape Adaptive Grinding process). The process chains employed for each method are explained in details, and their relative merits discussed. A way forward for the next generation of X-ray telescopes after ASTRO-H is then drawn out.
机译:生产X射线成像太空望远镜是一项非常昂贵的工作,这在很大程度上是因为难以为WolterⅠ型光学组件制造薄镜。为了应对这一挑战,从光学成型模具(也称为心轴)进行复制已成为首选方法,因为它既可靠又经济。存在几种复制方法:在执行ASTRO-H任务的情况下,使用直流磁控溅射在玻璃成型模具上沉积Pt / C多层涂层。然后将多层涂层用环氧树脂粘合到铝壳上,然后从模具中分离出来。另一种镜面复制方法包括在高温下将薄玻璃板塌落在整个(或一部分)旋转模塑模具上。在NuSTAR任务中演示了此方法。但是,制造真正的非球面Wolter型成型模具的挑战仍然非常昂贵且耗时,该模具能够实现高精度的角分辨率(5弧以下)。本文介绍了三种生产X射线光学成型模具的方法。每种方法都使用不同的基材材料和工艺链,如下所示:化学镀镍的铝(先将金刚石先磨然后进行校正抛光),熔融石英(先进行精密研磨然后再进行校正抛光)和CVD碳化硅(可以完全通过抛光处理)新开发的形状自适应磨削工艺)。详细介绍了每种方法所使用的过程链,并讨论了它们的相对优点。然后绘制出ASTRO-H之后的下一代X射线望远镜的前进方向。

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