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Ambient and Cryogenic, Decade Bandwidth, Low Noise Receiving System for Radio Astronomy Using Sinuous Antenna.

机译:使用弯曲天线的射电天文环境和低温,十年带宽,低噪声接收系统。

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摘要

Traditionally, radio astronomy receivers have been limited to bandwidths less than an octave, and as a result multiple feeds and receivers are necessary to observe over a wide bandwidth. Next generation of instruments for radio astronomy will benefit greatly from reflector antenna feeds that demonstrate very wide instantaneous bandwidth, and exhibit low noise behavior. There is an increasing interest in wideband systems from both the cost and science point of view. A wideband feed will allow simultaneous observations or sweeps over a decade or more bandwidth. Instantaneous wide bandwidth is necessary for detection of short duration pulses. Future telescopes like square kilometer array (SKA), consisting of 2000 to 3000 coherently connected antennas and covering a frequency range of 70 MHz to 30 GHz, will need decade bandwidth single pixel feeds (SPFs) along with integrated LNAs to achieve the scientific objectives in a cost effective way.;This dissertation focuses on the design and measurement of a novel decade bandwidth sinuous-type, dual linear polarized, fixed phase center, low loss feed with an integrated LNA. A decade bandwidth, low noise amplifier is specially designed for noise match to the higher terminal impedance encountered by this antenna yielding an improved sensitivity over what is possible with conventional 50 O amplifiers.;The self-complementary, frequency independent nature of the planar sinuous geometry results in a nearly constant beam pattern and fixed phase center over more than a 10:1 operating frequency range. In order to eliminate the back-lobe response over such a wide frequency range, we have projected the sinuous pattern onto a cone, and a ground plane is placed directly behind the cone's apex. This inverted, conical geometry assures wide bandwidth operation by locating each sinuous resonator a quarter wavelength above the ground plane. The presence of a ground plane near a self complementary antenna destroys the self complementary nature of the composite structure resulting in frequency dependent impedance variations. We demonstrate, using simulations and measurements, how the return loss can be improved by modifying the sinuous geometry.;The feed-LNA combination is characterized for important properties such as return loss, system noise, far field beam patterns including cross-polarization over a wide frequency range. The system is developed as a feed for a parabolic reflector. The overall system performance is calculated in terms of the A/Tsys ratio.;A cryogenic version would have a direct impact on specialized observing applications requiring large instantaneous bandwidths with high sensitivity. A novel cryogenic implementation of this system is demonstrated using a Stirling cycle, one-stage refrigerator. The cryocooler offers advantages like low cost, light weight, small size, low power consumption, and does not require routine maintenance. The higher antenna input impedance and a balanced feeding method for the sinuous antenna offers a unique set of challenges when developing a cryogenic system.
机译:传统上,射电天文接收机限于小于八度的带宽,结果,需要多个馈源和接收机来观察较宽的带宽。下一代射电天文仪器将受益于反射器天线馈源,该馈源具有非常宽的瞬时带宽,并具有低噪声性能。从成本和科学的角度来看,人们对宽带系统越来越感兴趣。宽带馈送将允许同时观察或扫描超过十年或更长时间的带宽。短时脉冲的检测需要瞬时宽带宽。未来的望远镜,例如平方公里阵列(SKA),由2000到3000个相干连接的天线组成,并且覆盖70 MHz到30 GHz的频率范围,将需要数十个带宽的单像素馈电(SPF)以及集成的LNA来实现科学的目标。本文主要研究一种新型的十倍带宽正弦型,双线性极化,固定相中心,集成了低噪声放大器的低损耗馈电的设计和测量。带宽十倍的低噪声放大器专门设计用于与该天线遇到的更高的终端阻抗进行噪声匹配,从而比传统的50 O放大器具有更高的灵敏度。平面正弦几何的自互补,与频率无关的特性会在超过10:1的工作频率范围内产生几乎恒定的光束方向图和固定的相位中心。为了消除在如此宽的频率范围内的后瓣响应,我们将正弦图样投影到了圆锥体上,并将接地层直接放置在圆锥体顶点的后面。这种倒置的圆锥形几何形状通过将每个弯曲谐振器放置在地平面上方四分之一波长处,确保了宽带宽操作。在自互补天线附近存在接地平面会破坏复合结构的自互补特性,从而导致频率相关的阻抗变化。通过仿真和测量,我们演示了如何通过修改正弦波的几何形状来改善回波损耗;馈电-LNA组合具有重要特性,例如回波损耗,系统噪声,远场光束方向图,包括交叉极化频率范围宽。该系统被开发为抛物面反射器的馈电。整个系统性能是根据A / Tsys比率来计算的。低温版本将直接影响需要高瞬时带宽和高灵敏度的专业观测应用。使用斯特林循环,一级制冷机演示了该系统的新型低温实现方式。低温制冷器具有成本低,重量轻,体积小,功耗低等优点,并且不需要日常维护。在开发低温系统时,较高的天线输入阻抗和弯曲天线的均衡馈电方法带来了一系列独特的挑战。

著录项

  • 作者

    Gawande, Rohit Sudhir.;

  • 作者单位

    University of Virginia.;

  • 授予单位 University of Virginia.;
  • 学科 Engineering Electronics and Electrical.;Physics Astronomy and Astrophysics.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 175 p.
  • 总页数 175
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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