Vibration measurement and mount design for cryocoolers on GMT and large telescopes

D. Adams, A. Vaccarella, W. Schofield, R. Sharp, J. Gilbert, G. Gausachs
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引用次数: 1

Abstract

Cryocoolers have long been demonstrated to be a dominant source of vibration that have caused significant problems with AO systems on large telescopes. Existing large telescopes have already imposed strict vibration requirements on instruments in response to existing problems, and have often struggled to achieve them. As the field moves into the next generation telescopes with GMT, TMT and eELT, vibration requirements continue to get ever tighter. Instrument teams must respond to these more demanding requirements by careful selection of cryocoolers and thoughtful design of cryocooler mounts that are matched closely with the specific requirements of the telescope. As we will demonstrate in this paper there is not a one-size-fits-all solution for every instrument and every telescope. In this paper we demonstrate a general method of deriving the required performance for an anti-vibration mounts for cryocoolers. First we characterize a linear Stirling-type cryocooler as a source of vibration, and determine what compliant mounts would be required to make them acceptable for use on the VLT, GMT and TMT. Measurements are taken of vibration from a Cryotel GT linear Stirling cooler (with active vibration cancellation enabled). By comparing the measured vibration against the requirements of each telescope, we are able to determine the required transfer function and therefore the required spring rate for compliant mounts. The results indicate that while some simple rubber mounts may be sufficient for use with the VLT and TMT, but a compliant mount with natural frequency below 14 Hz must be used for GMT.
振动测量和安装在GMT和大型望远镜上的制冷机设计
低温冷却器长期以来一直被证明是引起大型望远镜AO系统重大问题的主要振动源。为了应对现有的问题,现有的大型望远镜已经对仪器提出了严格的振动要求,而且常常难以实现这些要求。随着该领域进入下一代望远镜,包括GMT、TMT和eELT,对振动的要求越来越严格。仪器团队必须通过仔细选择冷冻冷却器和精心设计与望远镜的具体要求密切匹配的冷冻冷却器支架来应对这些更苛刻的要求。正如我们将在本文中展示的那样,没有一种适合所有仪器和望远镜的万能解决方案。在本文中,我们展示了一种一般的方法,推导出所需的性能,防震支架的冷冻冷却器。首先,我们将线性斯特林型制冷机描述为振动源,并确定需要哪些符合要求的安装,使其可用于VLT, GMT和TMT。测量振动从Cryotel GT线性斯特林冷却器(主动振动消除启用)。通过将测量的振动与每个望远镜的要求进行比较,我们能够确定所需的传递函数,从而确定柔性支架所需的弹簧速率。结果表明,虽然一些简单的橡胶支架可能足以与VLT和TMT一起使用,但必须使用固有频率低于14 Hz的兼容支架用于GMT。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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