Performance Analysis of Unmanned Aerial Vehicle Enabled Wireless Power Transfer Considering Radio Frequency System Imperfections

被引:9
作者
Lahiry, Archiman [1 ]
Le, Khoa N. [1 ]
Bao, Vo Nguyen Quoc [2 ]
Tam, Vivian W. Y. [1 ]
机构
[1] Western Sydney Univ, Sch Engn Design & Built Environm, Second Ave, Sydney, NSW 2747, Australia
[2] Wireless Commun Lab WCOMM Posts & Telecommun Inst, Ho Chi Minh City Campus,11 Nguyen Dinh Chieu Str,D, Ho Chi Minh City 71007, Vietnam
关键词
Energy management; Unmanned aerial vehicle; Energy transmitters; Power amplifiers; Antenna arrays; Wireless power transfer; ENERGY-CONSUMPTION; TRAJECTORY DESIGN; UAV COMMUNICATION; NETWORKS; OPTIMIZATION; EFFICIENCY; AMPLIFIER; SECURE; ARRAY;
D O I
10.1016/j.energy.2022.126464
中图分类号
O414.1 [热力学];
学科分类号
摘要
A simple and energy-efficient communication system configuration is proposed for Unmanned Aerial Vehicle Energy Transmitters (UAV-ETs) for Wireless Power Transfer (WPT) applications. The results show that the proposed UAV-ET's hardware configuration improves WPT time by 9.305%, and reduces UAV-ET's power consumption by 7.47% compared to the UAV Base Stations (UAV-BSs). Also, in the prior works on UAV-enabled WPT the UAV-ET's communication system configuration was not proposed, and UAV-ET's radio frequency component's real-world imperfections were ignored. Therefore, the work proposes a holistic energy efficiency optimization framework for UAV-ETs and hardware design parameters for qualifying the UAV-ET's hardware components to maximize UAV-ET's WPT time. Additionally, a three-dimensional UAV-ET placement optimization is proposed for maximizing WPT time, and results show that higher UAV-ET heights above the Wireless Energy-Receivers (WERs) decrease the WPT time by 4.75%. Besides, the results suggest that Antenna Array (AA) losses and the power amplifier's power added efficiency variation reduce UAV-ET's WPT time by 16.48%. Finally, a 115 g crossed-slotted waveguide AA for UAV-ET is manufactured using laser cutting, and the experiments confirm that the AA's total loss is 0.72 dB, therefore, the AA qualifies requirements according to the proposed UAV-ET's hardware component design optimization framework.
引用
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页数:22
相关论文
共 60 条
[1]  
Ali M, 2021, Reconfigurable Antenna Design and Analysis
[2]   Toward an Efficient C-RAN Optical Fronthaul for the Future Networks: A Tutorial on Technologies, Requirements, Challenges, and Solutions [J].
Alimi, Isiaka Ajewale ;
Teixeira, Antonio Luis ;
Monteiro, Paulo Pereira .
IEEE COMMUNICATIONS SURVEYS AND TUTORIALS, 2018, 20 (01) :708-769
[3]  
[Anonymous], 1976, U.S. Standard Atmosphere
[4]   Air-to-Ground Wireless Links for High-Speed UAVs [J].
Bai, Lin ;
Han, Rui ;
Liu, Jianwei ;
Yu, Quan ;
Choi, Jinho ;
Zhang, Wei .
IEEE JOURNAL ON SELECTED AREAS IN COMMUNICATIONS, 2020, 38 (12) :2918-2930
[5]   High Power Latching RF MEMS Switches [J].
Bakri-Kassem, Maher ;
Mansour, Raafat R. .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2015, 63 (01) :222-232
[6]  
Bera S. C., 2019, Microwave Active Devices and Circuits for Communication
[7]   Definition and Misuse of Return Loss [J].
Bird, Trevor S. .
IEEE ANTENNAS AND PROPAGATION MAGAZINE, 2009, 51 (02) :166-167
[8]   Efficiency in RF energy harvesting systems: A comprehensive review [J].
Cansiz, Mustafa ;
Altinel, Dogay ;
Kurt, Gunes Karabulut .
ENERGY, 2019, 174 :292-309
[9]   Low-Sidelobe Cavity-Backed Slot Antenna Array With Simplified Feeding Structure for Vehicular Communications [J].
Chen, Rui-Sen ;
Zhu, Lei ;
Wong, Sai-Wai ;
Yu, Xu-Zhou ;
Li, Yin ;
Zhang, Long ;
He, Yejun .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2021, 70 (04) :3652-3660
[10]   Joint Optimization for Secure Intelligent Reflecting Surface Assisted UAV Networks [J].
Fang, Sisai ;
Chen, Gaojie ;
Li, Yonghui .
IEEE WIRELESS COMMUNICATIONS LETTERS, 2021, 10 (02) :276-280