论文标题
机器人:evryscope的自动镜头 / CCD对齐系统
The Robotilter: An Automated Lens / CCD Alignment System for the Evryscope
论文作者
论文摘要
摄像机镜头越来越多地用于广阔的天文调查中,因为它们的高性能,广泛的视野(FOV)无法从传统的望远镜光学器件中获得,并且成本适中。市售光学系统的加工和组装公差会导致镜头和CCD之间的轻微错位(倾斜),从而导致PSF降解。我们已经建立了一个自动对准系统(机器人)来解决这一挑战,优化了4度的自由度 - 2个倾斜轴,一个分离轴,一个分离轴(CCD和镜头之间的距离)和镜头的焦点(通过将光学元素转向镜头相对于另一个和低计的镜头,将镜头的内置焦点转向镜头焦点,将其移动到另一个和下方。机器人在10微米级别上删除倾斜度并优化焦点,完全自动化,需要2个小时才能运行,并在对齐后保持稳定多年。机器人是为Evryscope望远镜(780 MPIX 22摄像机阵列,具有8150平方英尺的视野和连续2分钟的节奏)而设计的,该阵列旨在检测跨极大天空区域的短时间活动。在整个图像领域的质量方面,尤其是与中心相比的角落和边缘,在诸如EVRyscope之类的宽场天文学调查中是一个重大挑战。在这种情况下,单个Star PSF(通常仅扩展了几个像素)极易受到光学畸变的略有增加。机器人滤器的溶液在图像中心的限制幅度提高了.5 mag的幅度改善,而在拐角处的1.0 mag用于典型的evryscope摄像机,其扭曲和较小的PSF(在许多情况下是拐角和边缘的一半)。在本文中,我们描述了机器人机械和软件设计,摄像头对齐结果,长期稳定性和图像改进。
Camera lenses are increasingly used in wide-field astronomical surveys due to their high performance, wide field-of-view (FOV) unreachable from traditional telescope optics, and modest cost. The machining and assembly tolerances for commercially available optical systems cause a slight misalignment (tilt) between the lens and CCD, resulting in PSF degradation. We have built an automated alignment system (Robotilters) to solve this challenge, optimizing 4 degrees of freedom - 2 tilt axes, a separation axis (the distance between the CCD and lens), and the lens focus (the built-in focus of the lens by turning the lens focusing ring which moves the optical elements relative to one another) in a compact and low-cost package. The Robotilters remove tilt and optimize focus at the sub 10 micron level, are completely automated, take 2 hours to run, and remain stable for multiple years once aligned. The Robotilters were built for the Evryscope telescope (a 780 MPix 22-camera array with an 8150 sq.deg. field of view and continuous 2-minute cadence) designed to detect short timescale events across extremely large sky areas simultaneously. Variance in quality across the image field, especially the corners and edges compared to the center, is a significant challenge in wide-field astronomical surveys like the Evryscope. The individual star PSFs (which typically extend only a few pixels) are highly susceptible to slight increases in optical aberrations in this situation. The Robotilter solution resulted in a limiting magnitude improvement of .5 mag in the center of the image and 1.0 mag in the corners for typical Evryscope cameras, with less distorted and smaller PSFs (half the extent in the corners and edges in many cases). In this paper we describe the Robotilter mechanical and software design, camera alignment results, long term stability, and image improvement.