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Addressing Thermal Model Run Time Concerns of the Wide Field Infrared Survey Telescope using Astrophysics Focused Telescope Assets (WFIRST-AFTA)

机译:解决宽野红外测量望远镜的热模型运行时间涉及天空物理专注望远镜资产(WFIRST-AFTA)

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The Wide Field Infrared Survey Telescope using Astrophysics Focused Telescope Assets (WFIRST-AFTA) utilizes an existing 2.4 m diameter Hubble sized telescope donated from elsewhere in the federal government for near-infrared sky surveys and Exoplanet searches to answer crucial questions about the universe and dark energy. The WFIRST design continues to increase in maturity, detail, and complexity with each design cycle leading to a Mission Concept Review and entrance to the Mission Formulation Phase. Each cycle has required a Structural-Thermal-Optical-Performance (STOP) analysis to ensure the design can meet the stringent pointing and stability requirements. As such, the models have also grown in size and complexity leading to increased model run time. This paper addresses efforts to reduce the run time while still maintaining sufficient accuracy for STOP analyses. A technique was developed to identify slews between observing orientations that were sufficiently different to warrant recalculation of the environmental fluxes to reduce the total number of radiation calculation points. The inclusion of a cryocooler fluid loop in the model also forced smaller timesteps than desired, which greatly increases the overall run time. The analysis of this fluid model required mitigation to drive the run time down by solving portions of the model at different time scales. Lastly, investigations were made into the impact of the removal of small radiation couplings on run time and accuracy. Use of these techniques allowed the models to produce meaningful results within reasonable run times to meet project schedule deadlines.
机译:宽阔的现场红外测量望远镜采用天空专注望远镜资产(WFIRST-AFTA)利用了从联邦政府其他地方捐赠的现有2.4米直径的哈勃大小的望远镜,用于近红外天空调查和Exoplanet搜索,以回答关于宇宙和黑暗的至关重要的问题活力。 WFIRST设计继续增加成熟,细节和复杂性,与每个设计周期导致使命概念评论和参入任务制定阶段。每个周期都需要结构 - 热 - 光学性能(停止)分析,以确保设计能够满足严格的指向和稳定性要求。因此,模型也在尺寸和复杂性方面发展,导致模型运行时间增加。本文解决了减少运行时间的努力,同时保持足够的准确性来停止分析。开发了一种技术,以识别观察定向之间的回流,以便保证环境通量重新计算环境助量以减少辐射计算点的总数。包含在模型中的低温冷却器流体回路也强制较小的时间步比期望,这大大增加了整个运行时间。对该流体模型的分析要求减轻通过在不同时间尺度下求解模型的部分来驱动运行时间。最后,在运行时间和准确性上,对清除小辐射联轴器的影响进行了调查。使用这些技术允许模型在合理的运行时间内产生有意义的结果,以满足项目进度截止日期。

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