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首页> 外文期刊>Journal of Infrared, Millimeter and Terahertz Waves >ALMA Band 1 Optics (35-50 GHz): Tolerance Analysis, Effect of Cryostat Infrared Filters and Cold Beam Measurements
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ALMA Band 1 Optics (35-50 GHz): Tolerance Analysis, Effect of Cryostat Infrared Filters and Cold Beam Measurements

机译:ALMA带1光学(35-50 GHz):耐受性分析,低温恒温器红外滤波器和冷光束测量的影响

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摘要

The Atacama Large Millimeter/Sub-millimeter Array (ALMA) is currently the largest (sub-)mm wave telescope in the world and will be used for astronomical observations in all atmospheric windows from 35 to 950 GHz when completed. The ALMA band 1 (35-50 GHz) receiver will be used for the longest wavelength observations with ALMA. Because of the longer wavelength, the size of optics and waveguide components will be larger than for other ALMA bands. In addition, all components will be placed inside the ALMA cryostat in each antenna, which will impose severe mechanical constraints on the size and position of receiver optics components. Due to these constraints, the designs of the corrugated feed horn and lens optics are highly optimized to comply with the stringent ALMA optical requirements. In this paper, we perform several tolerance analyses to check the impact of fabrication errors in such an optimized design. Secondly, we analyze the effects of operating this optics inside the ALMA cryostat, in particular the effects of having the cryostat IR filters placed next to the band 1 feed horn aperture, with the consequent near-field effects. Finally, we report on beam measurements performed on the first three ALMA band 1 receivers inside test cryostats, which satisfy ALMA specifications. In these measurements, we can clearly observe the effects of fabrication tolerances and IR filter effects on prototype receiver performance.
机译:Atacama大毫米/亚毫米阵列(ALMA)目前是世界上最大的(子)MM波望远镜,在完成后,所有大气窗口的天文观测将用于35到950 GHz。 ALMA带1(35-50GHz)接收器将用于与ALMA的最长波长观测。由于波长越长,光学和波导部件的尺寸将大于其他ALMA带。此外,所有组件将放置在每个天线中的ALMA低温仪器内,这将对接收器光学元件的尺寸和位置施加严重的机械限制。由于这些约束,波纹状进喇叭和透镜光学器件的设计高度优化,以符合严格的ALMA光学要求。在本文中,我们执行多种公差分析,以检查在这种优化设计中的制造误差的影响。其次,我们分析了在ALMA低温恒温器内操作该光学器件的影响,特别是使沿频带1馈电孔旁边的低温恒温器IR过滤器的效果,随后的近场效果。最后,我们报告了在测试低温仪内部的前三个ALMA带1接收器上执行的光束测量,这满足ALMA规范。在这些测量中,我们可以清楚地观察制造公差和红外滤波器对原型接收器性能的影响。

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