首页> 外文会议>SPIE Astronomical Telescopes + Instrumentation Conference >Ultra-Thin Large-Aperture Vacuum Windows for Millimeter Wavelengths Receivers
【24h】

Ultra-Thin Large-Aperture Vacuum Windows for Millimeter Wavelengths Receivers

机译:超薄大口径真空窗口,用于毫米波波长接收器

获取原文
获取外文期刊封面目录资料

摘要

Targeting faint polarization patterns arising from Primordial Gravitational Waves in the Cosmic Microwave Background requires excellent observational sensitivity. Optical elements in small aperture experiments such as BICEP3 and Keck Array are designed to optimize throughput and minimize losses from transmission, reflection and scattering at millimeter wavelengths. As aperture size increases, cryostat vacuum windows must withstand larger forces from atmospheric pressure and the solution has often led to a thicker window at the expense of larger transmission loss. We have identified a new candidate material for the fabrication of vacuum windows: with a tensile strength two orders of magnitude larger than previously used materials, woven high-modulus polyethylene could allow for dramatically thinner windows, and therefore significantly reduced losses and higher sensitivity. In these proceedings we investigate the suitability of high-modulus polyethylene windows for ground-based CMB experiments, such as current and future receivers in the Bicep/Keck Array program. This includes characterizing their optical transmission as well as their mechanical behavior under atmospheric pressure. We find that such ultra-thin materials are promising candidates to improve the performance of large-aperture instruments at millimeter wavelengths, and outline a plan for further tests ahead of a possible upcoming field deployment of such a science-grade window.
机译:针对宇宙微波背景中原始引力波产生的微弱偏振模式,需要出色的观测灵敏度。小孔径实验中的光学元件(例如BICEP3和Keck Array)旨在优化吞吐量,并最大程度地减少毫米波波长下的透射,反射和散射造成的损耗。随着孔尺寸的增加,低温恒温器真空窗口必须承受来自大气压力的更大作用力,并且解决方案通常导致窗口变厚,但代价是传输损耗更大。我们已经确定了一种用于制造真空窗户的新候选材料:与以前使用的材料相比,拉伸强度比以前使用的材料大两个数量级,编织的高模量聚乙烯可以大大减少窗户的厚度,从而显着减少损耗并提高灵敏度。在这些程序中,我们调查了高模量聚乙烯窗户是否适合地面CMB实验,例如Bicep / Keck Array计划中的当前和将来的接收器。这包括表征其在大气压下的光传输以及机械性能。我们发现,这种超薄材料是有望在毫米波长下提高大口径仪器性能的有前途的候选材料,并概述了可能在这种科学级窗口即将进行现场部署之前进行进一步测试的计划。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号