UCL Discovery
UCL home » Library Services » Electronic resources » UCL Discovery

Energy-Efficient Trajectory Design of a Multi-IRS Assisted Portable Access Point

Babu, Nithin; Virgili, Marco; Al-jarrah, Mohammad; Jing, Xiaoye; Alsusa, Emad; Popovski, Petar; Forsyth, Andrew; ... Papadias, Constantinos B; + view all (2022) Energy-Efficient Trajectory Design of a Multi-IRS Assisted Portable Access Point. IEEE Transactions on Vehicular Technology 10.1109/tvt.2022.3202953. (In press). Green open access

[thumbnail of Energy-Efficient_Trajectory_Design_of_a_Multi-IRS_Assisted_Portable_Access_Point.pdf]
Preview
Text
Energy-Efficient_Trajectory_Design_of_a_Multi-IRS_Assisted_Portable_Access_Point.pdf - Accepted Version

Download (1MB) | Preview

Abstract

In this work, we propose a framework for energy efficient trajectory design of an unmanned aerial vehicle (UAV)-based portable access point (PAP) deployed to serve a set of ground nodes (GNs). In addition to the PAP and GNs, the system consists of a set of intelligent reflecting surfaces (IRSs) mounted on man-made structures to increase the number of bits transmitted per Joule of energy consumed measured as the global energy efficiency (GEE). The GEE trajectory for the PAP is designed by considering the UAV propulsion energy consumption and the Peukert effect of the PAP battery, which represents an accurate battery discharge profile as a non-linear function of the UAV power consumption profile. The GEE trajectory design problem is solved in two phases: in the first, a path for the PAP and feasible positions for the IRS modules are found using a multi-tier circle packing method, and the required IRS phase shift values are calculated using an alternate optimization method that considers the interdependence between the amplitude and phase responses of an IRS element; in the second phase, the PAP flying velocity and user scheduling are calculated using a novel multi-lap trajectory design algorithm. Numerical evaluations show that: neglecting the Peukert effect overestimates the available flight time of the PAP; after a certain threshold, increasing the battery size reduces the available flight time of the PAP; the presence of IRS modules improves the GEE of the system compared to other baseline scenarios; the multi-lap trajectory saves more energy compared to a single-lap trajectory developed using a combination of sequential convex programming and Dinkelbach algorithm.

Type: Article
Title: Energy-Efficient Trajectory Design of a Multi-IRS Assisted Portable Access Point
Open access status: An open access version is available from UCL Discovery
DOI: 10.1109/tvt.2022.3202953
Publisher version: https://doi.org/10.1109/TVT.2022.3202953
Language: English
Additional information: This version is the author accepted manuscript. For information on re-use, please refer to the publisher’s terms and conditions.
Keywords: Trajectory , Batteries , Autonomous aerial vehicles , Lead acid batteries , Energy consumption , Discharges (electric) , Receivers
UCL classification: UCL > Provost and Vice Provost Offices > UCL BEAMS > Faculty of Engineering Science
UCL > Provost and Vice Provost Offices > UCL BEAMS > Faculty of Engineering Science > Dept of Electronic and Electrical Eng
UCL > Provost and Vice Provost Offices > UCL BEAMS
UCL
URI: https://discovery.ucl.ac.uk/id/eprint/10155178
Downloads since deposit
78Downloads
Download activity - last month
Download activity - last 12 months
Downloads by country - last 12 months

Archive Staff Only

View Item View Item