Maximizing onboard power generation of large-scale railway vibration energy harvesters with intricate vehicle-harvester-circuit coupling relationships

能量收集 振动 工程类 功率(物理) 汽车工程 联轴节(管道) 最大功率原理 最大功率点跟踪 控制理论(社会学) 电压 能量(信号处理) 计算机科学 电气工程 机械工程 控制(管理) 物理 量子力学 统计 数学 逆变器 人工智能
作者
Liwei Dong,Guobiao Hu,Jie Yu,Chaoyang Zhao,Shuai Qu,Yaowen Yang
出处
期刊:Applied Energy [Elsevier BV]
卷期号:347: 121388-121388 被引量:8
标识
DOI:10.1016/j.apenergy.2023.121388
摘要

Large-scale vibration energy harvesters (VEHs) have the potential to produce power of tens of watts and offer a distributed and flexible power supply for onboard devices in unpowered freight wagons. However, research on railway vibration energy harvesting systems (VEHSs) is often limited to individual points and lacks systematic exploration and optimization. This paper proposes a systematic modeling approach for VEHS that considers the intricate interaction and coupling in the vehicle-harvester-circuit system. Firstly, a model is established for a rotary electromagnetic VEH using the equivalent circuit method, with mechanical friction considered and identified via the Equilibrium Optimizer (EO) to improve prediction accuracy. The energy harvesting circuit (EHC) incorporating a bridge rectifier, a DC/DC converter, and a power management module with a speed-driven maximum power point tracking (MPPT) algorithm is designed for efficient energy extraction and storage under stochastic vehicle suspension vibrations. In addition, the freight wagon is modeled spatially based on railway vehicle-track dynamics, accounting for the nonlinearities of primary and secondary suspensions to obtain more accurate vibration response and mechanical interaction with the harvester-circuit module for the coupling of the whole system. Finally, a performance-enhanced control strategy is proposed with the dynamic tuning of voltage coefficient to maximize onboard harvestable energy based on the developed system model. The results indicate that the harvester power can be increased by up to 60%, and the force decreased by up to 11% at various vehicle speeds and loads. The prototype of the whole railway VEHS with MPPT closed-loop control is implemented in the embedded environment, and its engineering-oriented design will significantly improve the system robustness and practicality in onboard environments.
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