具有任意方向圆极化元件的阵列天线的相位补偿和模式转换方法

IF 1.1 4区 计算机科学 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC Iet Microwaves Antennas & Propagation Pub Date : 2023-10-20 DOI:10.1049/mia2.12429
Zhongtian Jing, Yubing Han
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引用次数: 0

摘要

在分析和模拟大型圆极化共形阵列时,需要考虑不一致的极化方向和元素的辐射模式转换。在不依赖全阵列全波仿真的情况下,我们提出了一种极化相位补偿和图案变换方法来解决这些问题。当保形阵元件的位置和方向已知时,极化相位补偿方法可以提供一种解决方案,使每个圆极化天线元件的初始相位方向在全局坐标系中保持一致。然后,提出一种模式转换方法,以获得全局坐标系中每个天线的辐射模式。在该方法中,通过本地坐标系和全局坐标系之间的相互转换关系,在全局坐标系中表达出带有振幅和相位信息的本地天线极化辐射模式。这些方法可为阵列设计和性能仿真提供指导,尤其在理论上适用于任意共形阵列。
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Method of phase compensation and pattern transformation for array antennas with arbitrarily oriented circularly polarised elements

The inconsistent polarised directions and the radiation pattern transformation of the elements need to be considered in the analysis and simulation of large circularly polarised conformal arrays. Without relying on full-wave simulations of the full array, a polarisation phase compensation and a pattern transformation method are proposed to solve these problems. When the position and orientation of the conformal array elements are known, the polarisation phase compensation method can provide a solution to keep the initial phase direction of each circularly polarised antenna element consistent in the global coordinate system. Then, a pattern transformation method is proposed to obtain the radiation pattern of each antenna in the global coordinate system. In this method, the local antenna polarised radiation patterns with amplitude and phase information are expressed in the global coordinate system through the mutual conversion relationship between the local and global coordinate systems. These methods can provide a guidance for array design and performance simulation, especially theoretically applicable to the arbitrary conformal arrays.

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来源期刊
Iet Microwaves Antennas & Propagation
Iet Microwaves Antennas & Propagation 工程技术-电信学
CiteScore
4.30
自引率
5.90%
发文量
109
审稿时长
7 months
期刊介绍: Topics include, but are not limited to: Microwave circuits including RF, microwave and millimetre-wave amplifiers, oscillators, switches, mixers and other components implemented in monolithic, hybrid, multi-chip module and other technologies. Papers on passive components may describe transmission-line and waveguide components, including filters, multiplexers, resonators, ferrite and garnet devices. For applications, papers can describe microwave sub-systems for use in communications, radar, aerospace, instrumentation, industrial and medical applications. Microwave linear and non-linear measurement techniques. Antenna topics including designed and prototyped antennas for operation at all frequencies; multiband antennas, antenna measurement techniques and systems, antenna analysis and design, aperture antenna arrays, adaptive antennas, printed and wire antennas, microstrip, reconfigurable, conformal and integrated antennas. Computational electromagnetics and synthesis of antenna structures including phased arrays and antenna design algorithms. Radiowave propagation at all frequencies and environments. Current Special Issue. Call for papers: Metrology for 5G Technologies - https://digital-library.theiet.org/files/IET_MAP_CFP_M5GT_SI2.pdf
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