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Thermal analysis of the WFI on the ATHENA observatory

机译:雅典娜天文台上WFI的热分析

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The WFI (Wide-Field Imager) instrument is one of two instruments of the ATHENA (Advanced Telescope for High-ENergy Astrophysics) mission. ATHENA is the second L-class mission in ESA's Cosmic Vision plan with launch in 2028 and will address the science theme "The Hot and Energetic Universe" by measuring hot gas in clusters and groups of galaxies as well as matter flow in black holes. A moveable mirror assembly focusses the X-ray light to the focal plane of the WFI. The instrument consists of two separate detectors, one with a large DEPFET array of 512×512 pixels and one small and fast detector with 64×64 DEPFET pixels and a readout time of only 80 μs. The mirror system will achieve an angular resolution of 5" HEW. The rather large field of view of 40'×40' in combination with rather high power consumption is challenging not only for the thermal control system. DEPFET sensors as well as front-end electronics and electronics boxes have to be cooled, where a completely passive cooling system with radiators and heat pipes is highly favored, In order to reduce the necessary radiator area, three separate cooling chains with three different temperature levels have been foreseen. So only the DEPFET sensors are cooled down to the lowest temperature of about 190K, while the front-end electronics is supposed to be operated between 250K and 290K. The electronics boxes can be operated at room temperature, nevertheless the excess heat has to be removed. After first estimations of heat loads and radiator areas, a more detailed model of the camera head has been used to identify gradients between the cooling interfaces and the components to be cooled. This information is used within phase Al of the project to further optimize the design of the instrument, e.g. material selection.
机译:WFI(宽视场成像仪)仪器是ATHENA(高能天体物理学高级望远镜)任务的两种仪器之一。雅典娜是2028年发射的ESA宇宙愿景计划中的第二个L级任务,它将通过测量星系团和星系团中的热气体以及黑洞中的物质流动来解决科学主题“热与能量的宇宙”。可移动镜组件将X射线光聚焦到WFI的焦平面。该仪器包括两个单独的检测器,一个带有512×512像素的大型DEPFET阵列,另一个是带有64×64 DEPFET像素的小型快速检测器,读取时间仅为80μs。反射镜系统将实现5“ HEW的角分辨率。40'×40'的相当大的视野以及相当高的功耗不仅对热控制系统构成挑战。DEPFET传感器以及前端电子设备和电子设备箱必须进行冷却,其中非常需要带有散热器和热管的完全被动式冷却系统,为了减小必要的散热器面积,可以预见三个温度水平不同的三个独立的冷却链,因此只有DEPFET传感器被冷却到最低温度190K,而前端电子设备应该在250K至290K之间工作,电子设备箱可以在室温下工作,但是多余的热量必须去除。对于热负荷和散热器区域,已使用更详细的摄像头模型来识别冷却界面和要冷却的组件之间的梯度。该信息将在项目的A1阶段内使用,以进一步优化仪器的设计,例如材料选择。

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