研究目的
Investigating the design and performance of a wireless backhaul transceiver operating on the 26.5–29.5-GHz band for 5G mobile networks.
研究成果
The designed 5G mmW mobile backhaul transceiver demonstrated the capability to receive wideband digitally modulated signals and provide coherence gain when using multiple Rx channels. Despite large gain imbalances between Rx channels, the main receiving lobe of the antenna array was not significantly affected. The study highlights the potential of wireless backhaul solutions for 5G networks but also identifies areas for improvement in future designs.
研究不足
The study faced limitations such as a stability problem with one of the PAs on the common amplifier path, preventing conclusive measurement of the Tx chain's performance. Additionally, the phase shifters caused larger amplitude imbalances than expected due to manufacturing defects.
1:Experimental Design and Method Selection:
The study involved designing and implementing a wireless backhaul transceiver for 5G networks, focusing on the
2:5–5-GHz band. The methodology included system-level calculations, link budget analysis, and simulations using 5D and 3D EM simulators. Sample Selection and Data Sources:
The prototype transceiver was built based on the design, and its performance was measured using conductive measurements with continuous wave (CW) and digitally modulated signals.
3:List of Experimental Equipment and Materials:
The transceiver included commercial components such as AlGaAs P-I-N diode switches, power amplifiers (PA), low-noise amplifiers (LNA), phase shifters, and a frequency synthesizer.
4:Experimental Procedures and Operational Workflow:
The performance of the receiver array was measured, including coherence gain, dynamic range, and error vector magnitude (EVM). Over-the-air antenna array measurements were also conducted.
5:Data Analysis Methods:
The data was analyzed to evaluate the transceiver's performance, including the effect of gain imbalances on the antenna array's radiation pattern.
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