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Design and modeling of an additive manufactured thin shell for x-ray astronomy

机译:X射线天文学添加剂制造薄壳的设计与建模

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Future X-ray astronomy missions require light-weight thin shells to provide large collecting areas within the weight limits of launch vehicles, whilst still delivering angular resolutions close to that of Chandra (0.5 arc seconds). Additive manufacturing (AM), also known as 3D printing, is a well-established technology with the ability to construct or 'print' intricate support structures, which can be both integral and light-weight, and is therefore a candidate technique for producing shells for space-based X-ray telescopes. The work described here is a feasibility study into this technology for precision X-ray optics for astronomy and has been sponsored by the UK Space Agency's National Space Technology Programme. The goal of the project is to use a series of test samples to trial different materials and processes with the aim of developing a viable path for the production of an X-ray reflecting prototype for astronomical applications. The initial design of an AM prototype X-ray shell is presented with ray-trace modelling and analysis of the X-ray performance. The polishing process may cause print-through from the light-weight support structure on to the reflecting surface. Investigations in to the effect of the print-through on the X-ray performance of the shell are also presented.
机译:未来的X射线天文任务需要轻量级薄壳,以在发动车辆的重量限制内提供大的收集区域,同时仍然靠近Chandra(0.5秒)的角度分辨率。添加剂制造(AM),也称为3D打印,是一种良好的技术,具有构造或“打印”复杂的支撑结构的能力,这可以是整体和重量的能力,因此是用于生产壳的候选技术用于基于空间的X射线望远镜。这里描述的工作是对天文学精密X射线光学技术的这种技术的可行性研究,并由英国航天局的国家空间技术计划赞助。该项目的目标是使用一系列测试样本来试验不同的材料和过程,目的是开发用于生产用于天文应用的X射线原型的可行路径。 AM原型X射线外壳的初始设计具有射线跟踪建模和X射线性能分析。抛光过程可能导致从轻型支撑结构上的印刷到反射表面。还提出了对印刷对壳体X射线性能的影响。

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