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SUNRISE Chromospheric Infrared spectroPolarimeter (SCIP) for SUNRISE Ⅲ: Opto-mechanical analysis and design

机译:日出Ⅲ:光学分析与设计的日出曲线红外光谱分波脉(SCIP)

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The SUNRISE Chromospheric Infrared spectroPolarimeter (SCIP) is a near-IR spcctro-polarimeter instrument newly designed for SUNRISE Ⅲ, a balloon-borne solar observatory with a 1-m diameter telescope. In order to achieve the strict requirements the SCIP wavefront error, it is necessary to quantify the errors due to environmental effects such as gravity and temperature variation under the observation conditions. We therefore conducted an integrated opto-mechanical analysis incorporating mechanical and thermal disturbances into a finite element model of the entire SCIP structure to acquire the nodal displacements of each optical element, then fed them back to the optical analysis software in the form of rigid body motion and surface deformation fitted by polynomials. This method allowed us to determine the error factors having a significant influence on optical performance. For example, no significant wavefront degradation was associated with the structural mountings because the optical element mounts were well designed based on quasi-kinematic constraints. In contrast, we found that the main factor affecting wavefront degradation was the rigid body motions of the optical elements, which must be minimized within the allowable level. Based on these results, we constructed the optical bench using a sandwich panel as the optical bench consisting of an aluminum-honeycomb core and carbon fiber reinforced plastic skins with a high stiffness and low coefficient of thermal expansion. We then confirmed that the new opto-mechanical model achieved the wavefront error requirement. In this paper, we report the details of this integrated opto-mechanical analysis, including the wavefront error budgeting and the design of the opto-mechanics.
机译:日出的致铬层红外分光波拉米计(SCIP)是一款新设计的近红外SPCCTO-偏振仪仪器,用于日出Ⅲ,一个带有1米直径望远镜的气球传播的太阳天文台。为了实现SCIP波前误差的严格要求,有必要通过在观察条件下的重力和温度变化等环境效应来量化误差。因此,我们进行了一种集成的光机械分析,将机械和热干扰结合到整个刀片结构的有限元模型中,以获取每个光学元件的节点位移,然后以刚体运动的形式将它们送回光学分析软件。和表面变形由多项式装配。该方法允许我们确定对光学性能有显着影响的误差因子。例如,没有显着的波前劣化与结构安装有关,因为光学元件安装件基于准运动约束良好设计。相反,我们发现影响波前劣化的主要因素是光学元件的刚性体图,必须在允许水平内最小化。基于这些结果,我们使用夹层板构造了光学台,作为由铝 - 蜂窝芯和碳纤维增强塑料皮,具有高刚度和低热膨胀系数的光学台。然后,我们确认新的光电模型实现了波前误差要求。在本文中,我们报告了这种集成光机械分析的细节,包括波前误差预算和光学机械设计。

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