The Effect of Innovative Internet of Things Communication Networks on the Management of Wireless Power Transmission

Document Type : Original Article

Authors
1 PhD student, Department of Management, Ghaemshahr Branch, Islamic Azad University, Ghaemshahr, Iran.
2 Assistant Professor, Department of Management, Qaemshahr Branch, Islamic Azad University, Qaemshahr, Iran
10.22034/jmek.2024.495477.1156
Abstract
Today, wireless power transmission (WPT) systems have attracted significant attention due to their high efficiency, clean energy, and extensive applications. However, monitoring the operational states of WPT systems requires advanced infrastructure. The Internet of Things (IoT) offers a promising solution by providing extensive connectivity, advanced sensing, real-time information processing, and high flexibility. Generally, WPT inductive circuits connected to smart grids continuously generate massive amounts of data from various locations. Traditional power line communications often struggle with bandwidth limitations and low transmission rates. To address this challenge, this study proposes an innovative IoT-based communication infrastructure for remote data transmission in WPT systems. Furthermore, a linear state-space model of the WPT system, incorporating IoT network dynamics, is developed for accurate state estimation. To estimate the system states, the Kalman Filter (KF) algorithm is employed, and an optimal feedback controller is designed to stabilize the system states effectively. Simulation results demonstrate that the proposed approach significantly reduces estimation errors and convergence time compared to conventional methods, such as the recursive least squares approach. Additionally, the proposed IoT infrastructure utilizes appropriate bandwidth and high transmission rates, enabling the effective handling of massive data volumes and enhancing the overall efficiency of the WPT system. Ultimately, this framework provides a robust foundation for smart control centers in future WPT applications.
Keywords
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Volume 6, Issue 1
Spring 2025
Pages 12-25

  • Receive Date 02 December 2024
  • Revise Date 28 December 2024
  • Accept Date 27 February 2025