Loading [MathJax]/extensions/MathMenu.js
Design of Autonomous Battery Swapping for UAVs | IEEE Conference Publication | IEEE Xplore

Design of Autonomous Battery Swapping for UAVs


Abstract:

This paper dives into the design of the complete autonomous system for replacing lithium-polymer batteries of small-scale UAVs improving extended flight times and prevent...Show More

Abstract:

This paper dives into the design of the complete autonomous system for replacing lithium-polymer batteries of small-scale UAVs improving extended flight times and preventing battery damages for aerial safety. The Robotic Ground System’s (RGS) development consisting of three sub-systems, focuses on a quick-charge power station to provide extensive flight time and eliminate long charging disturbances during ongoing missions. Accompanied by solar panels, its power comes from the sun’s renewable energy, providing power to the entire system.
Date of Conference: 15-19 July 2024
Date Added to IEEE Xplore: 22 August 2024
ISBN Information:

ISSN Information:

Conference Location: Boston, MA, USA
References is not available for this document.

Introduction

As new technology emerges, individuals continue to innovate creations aimed at enhancing the quality of human life. Small-scale unmanned aerial vehicles (UAVs) begin buzzing the skies with the ability to monitor remote areas and deliver vital supplies, requiring long-haul missions. In response to the burgeoning demand for these UAVs, a challenge arises concerning mission length due to the UAV’s power source. Lithium polymer (LiPo) batteries stand out for their impressive energy density and substantial discharging rates, enabling UAVs to consume power for optimal operational performance. With such powerful electrical consumption and discharge, it impedes the UAV’s ability to undertake prolonged flight missions due to the LiPo battery’s limited lifespan. Additionally, LiPo batteries require extensive recharging periods, averaging 2 hours until full capacity. While this correlation could be addressed by increasing the number of batteries powering the UAV, a notable paradox emerges as the increase in weight subsequently elevates the energy demand for long-distance traveling. A major challenge lies in devising a direct solution to the enhancement of LiPo batteries. For this reason, we developed an approach that augments the flight endurance of UAVs while ensuring sustainable power through the flight mission.

Select All
1.
K. Kudebeh et al., "SINCHUAV Technology Demonstration UAV Hybrid Incorporating Power Regeneration Technologies & Weight Minimization", 2023 IEEE Conference on Technologies for Sustainability (SusTech), 2023.
2.
A. Staff, "How Amazon is building its UAV delivery system", [online] Available: https://www.aboutamazon.com/news/transportation/how-amazon-is-building-its-UAV-delivery-system.
3.
C. Lai et al., "’Methods of Automating Power Swapping Mechanisms for Extending UAV Flight Missions", 2023 Wireless Telecommunications Symposium (WTS).
4.
"OpenMANIPULATOR-X", [online] Available: https://emanual.robotis.com/docs/en/platform/openmanipulator.
5.
A. Lo and J. Rico, "Technology Demonstrator for the Research of High Endurance and Regenerative UAVs", 2023, [online] Available: https://research.sdsu.edu/csucompetition.
6.
B. Michini, T. Toksoz, J. Redding, M. Michini, J. How, M. Vavrina, et al., "Automated Battery Swap and recharge to enable persistent UAV missions", Infotech@ Aerospace 2011, 2011.
Contact IEEE to Subscribe

References

References is not available for this document.