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Design and computation of thermal control in LAMOST enclosure

机译:拉摩器外壳中热控制的设计与计算

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The optical path of LAMOST is 60-meter long with its main optical axis fixed and lying in close to horizontal orientation, that causes much more serious dome seeing problem than the one in conventional 4-meter class telescopes. The temperature gradients generated by many thermal sources in the dome induce the seeing problem. It is necessary to control of thermal distribution inside the enclosure to keep a good dome seeing. In this paper we introduce our computation and experiments. Through analysis we have obtained a method dealing with design of the cooling system to remove the effect of local heat source and reduce temperature gradients. The methods are outlined as follows: Cool the main heat sources with the cooling air with a temperature of 5°C lower than the ambient temperature. Because of the temperature difference between summer and whiter, we have developed two sets of cooling systems to deal with respectively, particularly to keep the system workable in wintertime. We have designed a special structure for removing heat resources inside the enclosure. There is enough ventilation to keep the wind velocity at 0.5~1m/s in the optical path, and special fans generating low velocity wind provide good ventilation and avoid vibration noises. Temperature sensors feeding signals back to the computer, which adjusts the control loop to maintain a good thermal distribution in optical path and to minimize the dome seeing problem.
机译:拉摩片的光路长60米,其主要光轴固定和靠近水平方向,这导致比传统4米级望远镜中的一个更严重的圆顶看到问题。在圆顶中许多热源产生的温度梯度诱导看到问题。有必要控制外壳内的热分布,以保持良好的圆顶。在本文中,我们介绍了我们的计算和实验。通过分析,我们已经获得了处理冷却系统设计的方法,以消除局部热源的效果并降低温度梯度。这些方法如下所述:将主热源与冷却空气冷却,温度低于环境温度。由于夏季和更白之间的温差,我们开发了两组冷却系统,分别处理,特别是保持系统在冬季中可行。我们设计了一种特殊的结构,用于在外壳内移除热量。在光路中保持风速度为0.5〜1M / s的通风,并且产生低速风的特殊风扇提供良好的通风,避免振动噪声。温度传感器将信号送回计算机,调整控制回路以保持光路中的良好热分布,并最大限度地减少圆顶的发现问题。

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