JPALS可控接收方向GPS天线的精确相位标定

U. Kim, D. De Lorenzo, D. Akos, J. Gautier, P. Enge, J. Orr
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引用次数: 30

摘要

联合精确进近和着陆系统(JPALS)正在开发中,为美军提供导航以支持飞机着陆。JPALS的一个改型是舰载相对GPS (SRGPS),将在一艘航空母舰上实施。为了在敌对干扰和恶劣多径环境下满足严格的精度、完整性、连续性和可用性目标,需要先进的技术。其中一个正在研究的是具有波束导向/自适应零形成能力的可控接收方向天线(CRPA)阵列。斯坦福大学GPS实验室开发了一个软件工具来研究CRPA算法及其对GPS信号和跟踪特性的影响。搭建了一个实验平台,对天线单元的相位中心偏移和相互耦合效应等硬件问题进行了研究。该试验台由一个基线为1m的3元天线阵列组成,采用高质量的测量级或低质量的贴片天线。利用该阵列与足够的卫星星座和天线阵列运动相结合来获取数据,以确保完整的方位和仰角信号覆盖。采用基于载波相位的姿态确定算法生成天线间偏置残差,从而表征阵列的虚拟相位中心。在测量级天线(相位中心特性众所周知)和具有未知相位中心特性的贴片天线(patch antenna)上重复测试过程,可以表征贴片天线相位中心的方位和仰角相关特性。此外,通过在有源贴片天线周围添加无源贴片元件,研究了相互耦合效应。所有结果都与使用EM建模软件包对贴片天线进行详细模拟的预测进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Precise phase calibration of a controlled reception pattern GPS antenna for JPALS
The Joint Precision Approach and Landing System (JPALS) is being developed to provide navigation to support aircraft landings for the U.S. military. One variant of JPALS is the Shipboard Relative GPS (SRGPS), which will be implemented on an aircraft carrier. In order to meet strict accuracy, integrity, continuity, and availability goals in the presence of hostile jamming and in a harsh multipath environment, advanced technologies are required. One of those being studied is a controlled reception pattern antenna (CRPA) array with beam steering/adaptive null forming capabilities. The Stanford University GPS Laboratory has developed a software tool to study CRPA algorithms and their effects on GPS signal and tracking characteristics. A testbed has been constructed to investigate hardware issues including the phase center offset of the antenna elements and mutual coupling effects. This testbed consists of a 3 element antenna array with a baseline of 1m, using high-quality survey-grade or lower-quality patch antennas. Data has been taken using this array in conjunction with sufficient satellite constellation and antenna array motion to ensure complete azimuth and elevation signal coverage. A carrier phase-based attitude determination algorithm was used to generate inter-antenna bias residuals, allowing characterization of the virtual phase center of the array. Repeating the testing procedure both with survey-grade antennas, for which the phase center characteristics are well known, and with a patch antenna possessing unknown phase center behavior, allows characterization of the azimuth- and elevation-dependent properties of the patch antenna phase center. In addition, mutual coupling effects have been investigated by adding inactive patch elements around the active patch antenna. All results are compared to predictions from detailed simulation of the patch antenna used using an EM modeling software package.
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