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A space Fresnel imager concept assessment study led by CNES for astrophysical applications

机译:由CNES领导的天体菲涅耳成像仪概念评估研究

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In 2009, the Centre National d’Etudes Spatiales (CNES) carried out an assessment study on a “Fresnel telescope” concept based on a two-spacecraftformation flying configuration. This concept uses a binary Fresnel zone plate, and the principle of diffraction focusing, which allows high resolution optical imaging for astrophysics. In addition to CNES, the Laboratoire d’Astrophysique de Toulouse Tarbes (LATT) was deeply involved at two levels: through Research & Technology (R&T) studies to simulate and validate on a test bench the Fresnel concept performance, and through active participation in the CNES team for the optical aspects and to define the astrophysical fields of Fresnel-based space missions. The study was conducted within the technical limitations that resulted from a compromise between the R&T state of the art and the potential scientific domains of interest. The main technical limitations are linked to the size of the primary Fresnel array and to its usable spectral bandwidth. In this framework, the study covers ambitious architectures, correlating the technology readiness of the main critical components with the time-scale and programmatic horizons. The possible scientific topics arise from this range of missions. In this paper, I present a mission launched by a Soyuz, dedicated to astrophysics in the Ultra Violet (UV) band: 120 to 300 nm using a 4-m Fresnel array. It could be competitive in the next fifteen years, whereas a 10-m aperture mission in different bands; UV, visible or Infra Red (IR) (up to 6 μm) could be achievable in the future. Larger missions, using a primary array larger than 20 m, request technologies not yet available but that will probably be based on new inflatable structures with membranes, as already tested in the USA for other ends.
机译:2009年,国立空间研究中心(CNES)对基于“两个航天器”飞行形态的“菲涅尔望远镜”概念进行了评估研究。这个概念使用了二元菲涅耳波带片和衍射聚焦原理,从而可以为天体物理学提供高分辨率的光学成像。除了CNES之外,图卢兹塔布天体实验室(LATT)还深深地参与了两个层次:通过研究与技术(R&T)研究在模拟工作台上模拟和验证菲涅尔概念的性能,以及通过积极参与CNES团队负责光学方面的工作,并定义基于菲涅耳的太空任务的天体领域。这项研究是在R&T技术水平与潜在的潜在科学领域之间折衷的技术限制内进行的。主要技术限制与主菲涅耳阵列的大小及其可用频谱带宽有关。在此框架下,研究涵盖了雄心勃勃的体系结构,将主要关键组件的技术就绪程度与时间尺度和程序性视野联系在一起。可能的科学课题源于这一任务范围。在本文中,我介绍了联盟号(Soyuz)发起的一项任务,该任务致力于使用4-m菲涅耳阵列在120至300 nm的紫外线(UV)波段进行天体物理学。在接下来的十五年中,它可能具有竞争力,而在不同频段进行10米的光圈任务;将来可能会实现紫外线,可见光或红外(IR)(最大6μm)。大型任务使用的主要阵列大于20 m,它要求的技术尚不可用,但可能会基于带有膜的新型可充气结构,这已经在美国进行了其他方面的测试。

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