广义一维五束开关矩阵的最优相邻输出相位差分配

IF 6.9 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Shengjia Wu;Jiro Hirokawa;Takashi Tomura;Nelson J. G. Fonseca
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引用次数: 0

摘要

本文通过考虑比较矩阵的射频性能,包括反射系数的带宽、相邻输出相位差的频率依赖性等,讨论了最近提出的广义一维五波束正交开关矩阵中相邻输出端口相位差的最佳分配问题。为了证明最优分配的优点,使用最差分配进行比较。两种分配使用相同的耦合器,但相移值不同,因此由相邻输出相位差决定的波束方向由移相器决定。最佳和最差分配是使用参考直波导的相位差的绝对总和来确定的,定义为一层长度的直波导的传输相位与一层长度的移相器的实际所需值之间的差。最优分配的相位差绝对值最小,最差分配的相位差绝对值最大。这种建议的分配选择技术是通用的,适用于具有大组件计数的矩阵,这阻止了使用全波分析来确定首选配置。这两种分配使用后壁波导技术实现,设计在20 GHz至24 GHz的频带上工作,使用厚度为3.2 mm,介电常数为2.17的聚四氟乙烯基板。通过在输入端口和输出端口添加过渡并连接标准波导WR42,模拟、制造和测量了这两种矩阵。仿真和实测结果均证实,在传输系数和反射系数、相邻输出端口之间的相位差以及阵列因子方面,相位差绝对值和较小的分配比相位差绝对值和最大的分配具有更好的性能,从而证实所选度量是衡量广义正交开关矩阵性能的良好指标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Adjacent Output Phase Difference Assignments in Generalized One-Dimensional Five-Beam Switching Matrices
This paper discusses the optimal assignment of phase differences between adjacent output ports in a recently proposed generalized one-dimensional orthogonal switching matrix with five beams by considering the RF performance of the compared matrices, including bandwidth of reflection coefficients, frequency dependence of adjacent output phase differences, etc. To demonstrate the advantages of the optimal assignment, the worst assignment is used for comparison. Both assignments use the same couplers but have different values of phase shift, so the beam directions determined by adjacent output phase differences are decided by the phase shifters. The best and worst assignments are identified using the absolute sum of phase differences with reference to a straight waveguide, defined as the difference between the transmission phase of a one-layer-length straight waveguide and the actual required values of one-layer-length phase shifters. The optimal assignment has the smallest absolute sum of phase differences, while the worst assignment has the largest value. This proposed assignment selection technique is general and suitable for matrices with a large component count, which prevents using full-wave analyses to identify preferred configurations. The two assignments are realized using post-wall waveguide technology and designed to operate over the frequency band from 20 GHz to 24 GHz, using PTFE substrates having a thickness of 3.2 mm and a dielectric constant of 2.17. Both matrices are simulated, manufactured and measured by adding transitions to input ports and output ports and connecting with standard waveguide WR42. Both simulated and measured results confirm that the assignment resulting in the smaller absolute sum of phase differences has better performance than the one with the largest sum in terms of transmission and reflection coefficients, phase differences between adjacent output ports, and array factor, confirming the selected metric as a good indicator of the performance of the generalized orthogonal switching matrix.
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CiteScore
10.70
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