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首页> 外文期刊>Publications of the Astronomical Society of the Pacific >A Detailed Thermal Analysis of the Binospec Spectrograph
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A Detailed Thermal Analysis of the Binospec Spectrograph

机译:Binospec光谱仪的详细热分析

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摘要

Refractive optics in astronomical instruments are potentially sensitive to temperature gradients and temperature transients. This sensitivity arises from thermally dependent refractive indices, lens spacings, and lens dimensions. In addition, thermal gradients in the instrument structure can cause undesirable image shifts at the detector that degrade instrument calibration. We have therefore undertaken a detailed thermal analysis of Binospec, a wide-field optical spectrograph under development for the converted Multiple Mirror Telescope (MMT). Our goals are to predict the temperature gradients that will be present in the Binospec optics and structure under realistic operating conditions and to determine how design choices affect these gradients. We begin our analysis by deriving thermal time constants for instrument subassemblies to estimate the magnitude of temperature gradients in the instrument and to determine where detailed thermal models are required. We then generate a low-resolution finite-difference model of the entire instrument and high-resolution models of sensitive subassemblies. This approach to thermal analysis is applicable to a variety of other instruments. We use measurements of the ambient temperature in the converted MMT's dome to model Binospec's thermal environment. In moderate conditions, the external temperature changes by up to 8℃ over 48 hr, while in extreme conditions the external temperature changes by up to 17℃ in 24 hr. During moderate conditions, we find that the Binospec lens groups develop ~0.14℃ axial and radial temperature gradients and that lens groups of different mass develop ~0.5 ℃ temperature differences; these numbers are doubled for the extreme conditions. Internal heat sources do not significantly affect these results; heat flow from the environment dominates. The instrument must be periodically opened to insert new aperture masks, but we find that the resulting temperature gradients and thermal stresses in the optics are small. Image shifts at the detector caused by thermal deflections of the Binospec optical bench structure are ~0.1 pixel hr~(-1). we conclude that the proposed Binospec design has acceptable thermal properties, and we briefly discuss design changes to further reduce temperature gradient.
机译:天文仪器中的折射光学器件可能对温度梯度和温度瞬变敏感。这种灵敏度来自与温度相关的折射率,透镜间距和透镜尺寸。另外,仪器结构中的热梯度会在检测器上引起不良的图像偏移,从而降低仪器的校准水平。因此,我们对Binospec进行了详细的热分析,Binospec是为转换后的多镜望远镜(MMT)开发的一种广谱光学光谱仪。我们的目标是预测在实际操作条件下Binospec光学器件和结构中将出现的温度梯度,并确定设计选择如何影响这些梯度。我们通过得出仪器子组件的热时间常数来开始分析,以估算仪器中温度梯度的大小并确定需要详细热模型的位置。然后,我们生成整个仪器的低分辨率有限差分模型和敏感部件的高分辨率模型。这种热分析方法适用于多种其他仪器。我们使用转换后的MMT球罩中环境温度的测量值来模拟Binospec的热环境。在中等条件下,外部温度在48个小时内最多变化8℃,而在极端条件下,外部温度在24小时内最多变化17℃。在中等条件下,我们发现Binospec镜片组的轴向和径向温度梯度为〜0.14℃,而不同质量的镜片组的温度差为〜0.5℃。在极端条件下,这些数字增加了一倍。内部热源不会显着影响这些结果。来自环境的热流占主导地位。必须定期打开仪器以插入新的光圈罩,但是我们发现光学器件中产生的温度梯度和热应力很小。 Binospec光学平台结构的热变形在检测器上产生的图像偏移为〜0.1像素hr〜(-1)。我们得出的结论是,建议的Binospec设计具有可接受的热特性,并且我们简要讨论了设计更改以进一步降低温度梯度。

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