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Manufacturing and alignment tolerance analysis through Montecarlo approach for PLATO

机译:通过Montecarlo柏拉图方法制造与对准公差分析

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The project PLAnetary Transits and Oscillations of stars (PLATO) is one of the selected medium class (M class) missions in the framework of the ESA Cosmic Vision 2015-2025 program. The main scientific goal of PLATO is the discovery and study of extrasolar planetary systems by means of planetary transits detection. According to the current baseline, the scientific payload consists of 34 all refractive telescopes having small aperture (120mm) and wide field of view (diameter greater than 37 degrees) observing over 0.5-1 micron wavelength band. The telescopes are mounted on a common optical bench and are divided in four families of eight telescopes with an overlapping line-of-sight in order to maximize the science return. Remaining two telescopes will be dedicated to support on-board star-tracking system and will be specialized on two different photometric bands for science purposes. The performance requirement, adopted as merit function during the analysis, is specified as 90% enclosed energy contained in a square having size 2 pixels over the whole field of view with a depth of focus of +/-20 micron. Given the complexity of the system, we have followed a Montecarlo analysis approach for manufacturing and alignment tolerances. We will describe here the tolerance method and the preliminary results, speculating on the assumed risks and expected performances.
机译:恒星(柏拉图)的项目行星途转和振荡是ESA Cosmic Vision 2015-2025计划的框架中所选中等级别(M级)任务之一。柏拉图的主要科学目标是通过行星途转检测发现和研究额外的行星系统。根据目前的基线,科学有效载荷由34个具有小孔径(120mm)和宽视野(直径大于37度)的34个,观察到超过0.5-1微米波长带。望远镜安装在普通的光学台上,并分为八个望远镜的四个家庭,具有重叠的视线,以最大化科学返回。剩下的两个望远镜将致力于支持板载星际跟踪系统,并将专门用于两种不同的光度频段进行科学目的。在分析期间采用的性能要求被指定为90%封闭的能量,其包含在整个视野下具有2个像素的正方形,具有+/- 20微米的焦点深度。鉴于系统的复杂性,我们遵循Montecarlo分析方法来制造和对准公差。我们将在此描述公差方法和初步结果,猜测假定的风险和预期的表现。

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