English

Robotic Wireless Energy Transfer in Dynamic Environments: System Design and Experimental Validation

Robotics 2022-02-11 v2 Information Theory Systems and Control Systems and Control math.IT

Abstract

Wireless energy transfer (WET) is a ground-breaking technology for cutting the last wire between mobile sensors and power grids in smart cities. Yet, WET only offers effective transmission of energy over a short distance. Robotic WET is an emerging paradigm that mounts the energy transmitter on a mobile robot and navigates the robot through different regions in a large area to charge remote energy harvesters. However, it is challenging to determine the robotic charging strategy in an unknown and dynamic environment due to the uncertainty of obstacles. This paper proposes a hardware-in-the-loop joint optimization framework that offers three distinctive features: 1) efficient model updates and re-optimization based on the last-round experimental data; 2) iterative refinement of the anchor list for adaptation to different environments; 3) verification of algorithms in a high-fidelity Gazebo simulator and a multi-robot testbed. Experimental results show that the proposed framework significantly saves the WET mission completion time while satisfying collision avoidance and energy harvesting constraints.

Keywords

Cite

@article{arxiv.2201.12702,
  title  = {Robotic Wireless Energy Transfer in Dynamic Environments: System Design and Experimental Validation},
  author = {Shuai Wang and Ruihua Han and Yuncong Hong and Qi Hao and Miaowen Wen and Leila Musavian and Shahid Mumtaz and Derrick Wing Kwan Ng},
  journal= {arXiv preprint arXiv:2201.12702},
  year   = {2022}
}

Comments

single column, 18 pages, 6 figures, to appear in IEEE Communications Magazine

R2 v1 2026-06-24T09:09:03.258Z