论文标题
天文镜的3D打印
3D printing for astronomical mirrors
论文作者
论文摘要
3D打印(也称为添加剂制造)在可实现的光学质量以及减轻重量和成本方面为光学制造提供了新的愿景。在本文中,我们描述了在制造过程中使用此技术的两种不同方法。第一种方法利用3D打印在制造翘曲线束进行压力抛光时,我们将其应用于轴心抛物线的wfirst coronagraph的制造。第二种方法考虑了针对下一代X射线望远镜的3D打印3D打印的概念证明。压力抛光非常适合于冠状动脉形象以形象外部行星所需的高质量偏离轴抛物线。在这里,我们描述了一种新的翘曲线束设计设计,该设计只能通过一个执行器产生散光和昏迷。这个想法是将3D打印纳入翘曲线束的制造中。本文描述的方法表明,我们达到镜面所需的紧密精度。此外,由3D打印制造的翘曲线束引入的错误不会影响最终错误预算。关于概念项目的证明,我们研究了3D打印对轻质X射线镜。我们介绍了通过立体光刻(SLA)制造的测试样品的表面计量学和具有不同材料的选择性激光烧结(SLS)。样品的轻巧由一系列拱门组成。通过使用有限元分析拓扑优化补充3D打印,我们可以为给定的输入参数和外部边界条件模拟特定的最佳形状。下一组原型设计用于说明拓扑优化的计算。
3D printing, also called additive manufacturing, offers a new vision for optical fabrication in term of achievable optical quality and reduction of weight and cost. In this paper we describe two different ways to use this technique in the fabrication process. The first method makes use of 3D printing in the fabrication of warping harnesses for stress polishing, and we apply that to the fabrication of the WFIRST coronagraph off axis parabolas. The second method considers a proof of concept for 3D printing of lightweight X-Ray mirrors, targeting the next generation of X-rays telescopes. Stress polishing is well suited for the fabrication of the high quality off axis parabolas required by the coronagraph to image exoplanets.. Here we describe a new design of warping harness which can generate astigmatism and coma with only one actuator. The idea is to incorporate 3D printing in the manufacturing of the warping harness. The method depicted in this paper demonstrates that we reach the tight precision required at the mirrors surface. Moreover the error introduced by the warping harness fabricated by 3D printing does not impact the final error budget. Concerning the proof of concept project, we investigate 3D printing towards lightweight X-ray mirrors. We present the surface metrology of test samples fabricated by stereo lithography (SLA) and Selective Laser Sintering (SLS) with different materials. The lightweighting of the samples is composed of a series of arches. By complementing 3D printing with finite element analysis topology optimization we can simulate a specific optimum shape for the given input parameters and external boundary conditions. The next set of prototypes is designed taking to account the calculation of topology optimisation.