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Design and analysis of the NFIRAOS Thermal Optics Enclosure

机译:NFIRAOS热光学外壳的设计与分析

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The Narrow Field InfraRed Adaptive Optics System (NFIRAOS) will be the first-light facility adaptive optics system for the Thirty Meter Telescope (TMT). In order to meet the optical performance and stability specifications essential to leveraging the extraordinary capabilities of the TMT, all of the optical components within NFIRAOS will be protected within a large thermally-controlled optics enclosure (ENCL). Among the many functions performed by the ENCL, the most critical functions include providing a highly stable, light-tight, cold, dry environment maintained at 243±0.5 K for the NFIRAOS opto-mechanical sub-systems and supporting TABL structure. Although the performance of the ENCL during the science operation of NFIRAOS is critical, the maximum thermal loading will be defined by the cool-down/warm-up cycle which must be accomplished within a time-frame that will minimize the on-sky operational impact due to daytime maintenance work. This study describes the thermal/mechanical design development and supporting analyses (analytical and finite element analyses (FEA)) completed during the preliminary design phase and through the current progression of the ENCL final design phase. The walls of the ENCL consist of interlocking, multilayered, thermally insulated panels, which are supported by an externally located structural framework which attaches to the NFIRAOS Instrument Support Structure. The regulation of the interior ENCL wall surface temperature to within ±0.5 K requires that the heat flux into the interior of NFIRAOS be eliminated by cooling a thermal conduction plate embedded between multiple layers of insulation. The thermal design of the enclosure was evaluated for both steady-state (SS) performance and transient performance (cool-down and warm-up cycles). The transient analysis utilizes a hybrid of a one-dimensional thermal network approach combined with three-dimensional conjugate heat transfer analyses of explicit opto-mechanical components within the ENCL. Many design-parameter combinations were evaluated to determine the performance impact of cooling power and transient temperature profiles. The results derived from the analyses of these design iterations indicate the multi-layer enclosure wall design will meet all thermal requirements. During SS operation, the interior temperature variation is within ±0.5 K of the target operational temperature, while the heat influx from the exterior TMT environment is 1528 W (extracted by the embedded cold plate). The transient cool-down cycle will take approximately 15 hours to complete and requires the in-situ air handling units to deliver 14KW of cooling power (derated for the TMT site conditions) throughout the interior space of the NFIRAOS ENCL.
机译:窄场红外自适应光学系统(NFIRAOS)将是三十米望远镜(TMT)的第一光源设施自适应光学系统。为了满足利用TMT出色功能所必需的光学性能和稳定性规格,将在大型热控光学外壳(ENCL)中保护NFIRAOS中的所有光学组件。在ENCL执行的众多功能中,最关键的功能包括为NFIRAOS光电子系统提供高度稳定,不透光,寒冷,干燥的环境,维持在243±0.5 K,并支持TABL结构。尽管在NFIRAOS的科学运行过程中ENCL的性能至关重要,但最大的热负荷将由冷却/预热周期定义,必须在一定时间内完成冷却/预热周期,以最大程度地减少对天空的运行影响由于白天的维修工作。这项研究描述了热/机械设计的发展以及在初步设计阶段以及ENCL最终设计阶段的当前进展中完成的支持分析(分析和有限元分析(FEA))。 ENCL的壁由互锁的多层隔热面板组成,这些面板由连接到NFIRAOS仪器支撑结构的外部结构框架支撑。内部ENCL壁表面温度的调节必须在±0.5 K之内,这需要通过冷却嵌入多层绝缘层之间的导热板来消除进入NFIRAOS内部的热通量。对外壳的热设计进行了稳态(SS)性能和瞬态性能(冷却和预热周期)评估。瞬态分析利用了一维热网络方法与ENCL内显式光机械组件的三维共轭传热分析相结合的方法。评估了许多设计参数组合,以确定冷却功率和瞬态温度曲线对性能的影响。从这些设计迭代的分析得出的结果表明,多层机壳壁设计将满足所有散热要求。在SS操作期间,内部温度变化在目标操作温度的±0.5 K以内,而来自外部TMT环境的热量流入为1528 W(由嵌入式冷板提取)。瞬态冷却周期大约需要15个小时才能完成,并且需要现场空气处理单元在NFIRAOS ENCL的整个内部空间中提供14KW的冷却功率(根据TMT现场条件而定)。

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