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Preliminary Design Study of the TMT Telescope Structure System: Overview

机译:TMT望远镜结构系统的初步设计研究:概述

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摘要

We present an overview of the preliminary design of the Telescope Structure System (STR) of Thirty Meter Telescope (TMT). NAOJ was given responsibility for the TMT STR in early 2012 and engaged Mitsubishi Electric Corporation (MELCO) to take over the preliminary design work. MELCO performed a comprehensive preliminary design study in 2012 and 2013 and the design successfully passed its Preliminary Design Review (PDR) in November 2013 and April 2014. Design optimizations were pursued to better meet the design requirements and improvements were made in the designs of many of the telescope subsystems as follows: 1. 6-legged Top End configuration to support secondary mirror (M2) in order to reduce deformation of the Top End and to keep the same 4% blockage of the full aperture as the previous STR design. 2. “Double Lower Tube” of the elevation (EL) structure to reduce the required stroke of the primary mirror (M1) actuators to compensate the primary mirror cell (M1 Cell) deformation caused during the EL angle change in accordance with the requirements. 3. M1 Segment Handling System (SHS) to be able to make removing and installing 10 Mirror Segment Assemblies per day safely and with ease over M1 area where access of personnel is extremely difficult. This requires semi-automatic sequence operation and a robotic Segment Lifting Fixture (SLF) designed based on the Compliance Control System, developed for controlling industrial robots, with a mechanism to enable precise control within the six degrees of freedom of position control. 4. CO2 snow cleaning system to clean M1 every few weeks that is similar to the mechanical system that has been used at Subaru Telescope. 5. Seismic isolation and restraint systems with respect to safety; the maximum acceleration allowed for M1, M2, tertiary mirror (M3), LGSF, and science instruments in 1,000 year return period earthquakes are defined in the requirements. The Seismic requirements apply to any EL angle, regardless of the operational status of Hydro Static Bearing (HSB) system and stow lock pins. In order to find a practical solution, design optimization study for seismic risk mitigation was carried out extensively, including the performing of dynamic response analyses of the STR system under the time dependent acceleration profile of seven major earthquakes. The work is now moving to the final design phase from April 2014 for two years.
机译:我们介绍三十米望远镜(TMT)的望远镜结构系统(STR)的初步设计。 NAOJ于2012年初负责TMT STR,并委托三菱电机公司(MELCO)接管了初步设计工作。 MELCO在2012年和2013年进行了全面的初步设计研究,并在2013年11月和2014年4月成功通过了初步设计审查(PDR)。对设计进行了优化以更好地满足设计要求,并且对许多设计进行了改进。望远镜子系统如下:1. 6脚顶端配置以支持辅助反射镜(M2),以减少顶端变形并保持与以前的STR设计相同的4%的全光圈阻挡。 2.高程(EL)结构的“双下管”,以减少主镜(M1)执行器的所需行程,以补偿根据要求在EL角度变化期间引起的主镜单元(M1单元)变形。 3. M1段处理系统(SHS)能够每天安全,轻松地在人员访问极为困难的M1区域轻松拆卸和安装10个镜段组件。这需要半自动序列操作和基于顺应性控制系统设计的机器人分段举升装置(SLF),该系统是为控制工业机器人而开发的,具有能够在位置控制的六个自由度内进行精确控制的机制。 4.与斯巴鲁望远镜使用的机械系统类似,每两周用CO2雪清洁系统清洁M1。 5.关于安全的地震隔离和约束系统;要求中定义了在1000年返回期地震中M1,M2,三级反射镜(M3),LGSF和科学仪器所允许的最大加速度。不管液压静压轴承(HSB)系统和收起锁定销的运行状态如何,抗震要求均适用于任何EL角。为了找到切实可行的解决方案,广泛开展了减轻地震风险的设计优化研究,包括在七个主要地震的时间相关加速度曲线下进行STR系统的动力响应分析。该工作现在从2014年4月开始进入最终设计阶段,为期两年。

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