Shinji Nimura, S. Ishimura, Kazuki Tanaka, K. Nishimura, R. Inohara
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However, since millimeter waves have a large propagation loss, a propagation distance is shorter than that of low frequencies. Therefore, in order to extend the propagation distance, it is necessary to increase an equivalent isotropic radiated power by beamforming with phased array antenna. In this paper, a phased antenna array module in combined with analog radio over fiber (A-RoF) technology for 40-GHz millimeter wave is developed and evaluated for the first time. An 8 × 8 phased array antenna for 40-GHz millimeter wave with integrated photodiodes and RF chains has been developed, and end-to-end transmission experiment including 20km A-RoF transmission and 3-m over-the-air transmission from the developed phased array antenna has been conducted. 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引用次数: 0
摘要
在第五代(5G)及5G以上移动通信系统中,预计将密集部署众多天线,实现超宽带通信和均匀覆盖。但是,随着天线数量的增加,所有天线的总功耗也会增加,这将对环境和电信运营商的运营成本产生负面影响。因此,有必要简化天线结构,以抑制每个天线的功耗。另一方面,作为实现超宽带通信的方式,毫米波比低频率传输的信号带宽更宽,因此将被利用。但由于毫米波的传播损耗大,传播距离比低频短。因此,为了延长传输距离,需要采用相控阵天线波束形成的方法来增加等效各向同性辐射功率。本文首次开发了一种结合光纤模拟无线电(a - rof)技术的40 ghz毫米波相控阵天线模块,并对其性能进行了评价。研制了集成光电二极管和射频链的40 ghz毫米波8×8相控阵天线,并对所研制的相控阵天线进行了端到端传输实验,包括20 km A-RoF传输和3 m空中传输。结果表明,端到端传输后的40 ghz射频信号在主波束方向±50度范围内满足3GPP信号质量要求标准。
40-GHz band photodiode-integrated phased array antenna module for analog-radio over fiber toward Beyond 5G
SUMMARY In 5th generation (5G) and Beyond 5G mobile communication systems, it is expected that numerous antennas will be densely deployed to realize ultra-broadband communication and uniform coverage. However, as the number of antennas increases, total power consumption of all antennas will also increase, which leads to a negative impact on the environment and operating costs of telecommunication operators. Thus, it is necessary to simplify an antenna structure to suppress the power consumption of each antenna. On the other hand, as a way to realize ultra-broadband communication, millimeter waves will be utilized because they can transmit signals with a broader bandwidth than lower frequencies. However, since millimeter waves have a large propagation loss, a propagation distance is shorter than that of low frequencies. Therefore, in order to extend the propagation distance, it is necessary to increase an equivalent isotropic radiated power by beamforming with phased array antenna. In this paper, a phased antenna array module in combined with analog radio over fiber (A-RoF) technology for 40-GHz millimeter wave is developed and evaluated for the first time. An 8 × 8 phased array antenna for 40-GHz millimeter wave with integrated photodiodes and RF chains has been developed, and end-to-end transmission experiment including 20km A-RoF transmission and 3-m over-the-air transmission from the developed phased array antenna has been conducted. The results showed that the 40-GHz RF signal after the end-to-end transmission satisfied the criteria of 3GPP signal quality requirements within ± 50 degrees of main beam direction.
期刊介绍:
The IEICE Transactions on Communications is an all-electronic journal published occasionally by the Institute of Electronics, Information and Communication Engineers (IEICE) and edited by the Communications Society in IEICE. The IEICE Transactions on Communications publishes original, peer-reviewed papers that embrace the entire field of communications, including:
- Fundamental Theories for Communications
- Energy in Electronics Communications
- Transmission Systems and Transmission Equipment for Communications
- Optical Fiber for Communications
- Fiber-Optic Transmission for Communications
- Network System
- Network
- Internet
- Network Management/Operation
- Antennas and Propagation
- Electromagnetic Compatibility (EMC)
- Wireless Communication Technologies
- Terrestrial Wireless Communication/Broadcasting Technologies
- Satellite Communications
- Sensing
- Navigation, Guidance and Control Systems
- Space Utilization Systems for Communications
- Multimedia Systems for Communication