HAPS系统中考虑太阳飞机运动的天线波束形成方法研究

Kenji Hoshino, Shoichi Sudo, Y. Ohta
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引用次数: 32

摘要

高空台站(HAPS)作为一种具有超广覆盖和抗灾能力的移动无线通信新平台,受到了广泛的关注。由于其低延迟特性,HAPS可以直接向地面网络中使用的智能手机提供无线服务。在HAPS系统中,需要使用多个小区来适应高通信流量。此外,由其转向飞行或平流层风的变化引起的HAPS运动已知会导致投射在地面上的单元位移。因此,具有多单元配置的HAPS运动导致多次切换和断开连接。一些研究表明,可以通过采用基于平面或平面阵列天线的天线波束形成来解决这一挑战。由于覆盖的目标直径只有60 ~ 80公里,这些简单的天线可以很容易地覆盖整个覆盖区域;因此,它们可以很容易地补偿位移。然而,要实现直径超过80公里的超宽覆盖,需要大幅改变天线设计。因此,本文提出了一种新的天线结构及其波束形成方法,并以直径为200 km的太阳能飞机HAPS为例进行了研究。计算机仿真定量地表明,该天线能够很好地补偿移动单元的影响。
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A Study on Antenna Beamforming Method Considering Movement of Solar Plane in HAPS System
High-altitude platform station (HAPS) has attracted considerable attention as a new promising platform to provide mobile wireless communication services with ultra-wide coverage and resilience against disaster. Because of its low-delay characteristics, HAPS can provide wireless service directly to smartphones used in terrestrial networks. In a HAPS system, it is required to employ multiple cells to accommodate high communication traffic. Furthermore, the HAPS movement caused by its turning flight or variations in the stratospheric wind is known to result in the displacement of cells projected on the ground. Therefore, the HAPS movement with multicells configuration results in several handovers and disconnections. Some research has shown that this challenge can be addressed by employing antenna beamforming based on a planar or flat-shaped array antenna. Because the target diameters of coverages are only 60 to 80 km, these simple antennas can easily cover the whole coverage area; thus, they can compensate for the displacement easily. However, to achieve ultra-wide coverage over 80-km diameter, drastic change of its antenna design is needed. Therefore, this paper proposes a new antenna structure and its beamforming methods assuming a solar-plane- based HAPS with a 200-km diameter. Computer simulation quantitatively reveals that the proposed antenna can well compensate for the effect of a displaced cell.
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