Mechanical Power Modeling and Energy Efficiency Maximization for Movable Antenna Systems

Fuente: arXiv
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Main Authors: Wei, Xin, Mei, Weidong, Huang, Xuan, Chen, Zhi, Ning, Boyu
Format: Preprint
Published: 2025
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_version_ 1866912367547252736
author Wei, Xin
Mei, Weidong
Huang, Xuan
Chen, Zhi
Ning, Boyu
author_facet Wei, Xin
Mei, Weidong
Huang, Xuan
Chen, Zhi
Ning, Boyu
contents Movable antennas (MAs) have recently garnered significant attention in wireless communications due to their capability to reshape wireless channels via local antenna movement within a confined region. However, to achieve accurate antenna movement, MA drivers introduce non-negligible mechanical power consumption, rendering energy efficiency (EE) optimization more critical compared to conventional fixed-position antenna (FPA) systems. To address this problem, we develop in this paper a fundamental power consumption model for stepper motor-driven MA systems by resorting to basic electric motor theory. Based on this model, we formulate an EE maximization problem by jointly optimizing an MA's position, moving speed, and transmit power. However, this problem is difficult to solve optimally due to the intricate relationship between the mechanical power consumption and the design variables. To tackle this issue, we first uncover a hidden monotonicity of the EE performance with respect to the MA's moving speed. Then, we apply the Dinkelbach algorithm to obtain the optimal transmit power in a semi-closed form for any given MA position, followed by an enumeration to determine the optimal MA position. Numerical results demonstrate that despite the additional mechanical power consumption, the MA system can outperform the conventional FPA system in terms of EE.
format Preprint
id arxiv_https___arxiv_org_abs_2505_05914
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mechanical Power Modeling and Energy Efficiency Maximization for Movable Antenna Systems
Wei, Xin
Mei, Weidong
Huang, Xuan
Chen, Zhi
Ning, Boyu
Information Theory
Signal Processing
Movable antennas (MAs) have recently garnered significant attention in wireless communications due to their capability to reshape wireless channels via local antenna movement within a confined region. However, to achieve accurate antenna movement, MA drivers introduce non-negligible mechanical power consumption, rendering energy efficiency (EE) optimization more critical compared to conventional fixed-position antenna (FPA) systems. To address this problem, we develop in this paper a fundamental power consumption model for stepper motor-driven MA systems by resorting to basic electric motor theory. Based on this model, we formulate an EE maximization problem by jointly optimizing an MA's position, moving speed, and transmit power. However, this problem is difficult to solve optimally due to the intricate relationship between the mechanical power consumption and the design variables. To tackle this issue, we first uncover a hidden monotonicity of the EE performance with respect to the MA's moving speed. Then, we apply the Dinkelbach algorithm to obtain the optimal transmit power in a semi-closed form for any given MA position, followed by an enumeration to determine the optimal MA position. Numerical results demonstrate that despite the additional mechanical power consumption, the MA system can outperform the conventional FPA system in terms of EE.
title Mechanical Power Modeling and Energy Efficiency Maximization for Movable Antenna Systems
topic Information Theory
Signal Processing
url https://arxiv.org/abs/2505.05914