新型低成本无传感器风力涡轮机模拟器的设计、实施和实验验证:小型涡轮机的应用

IF 1.5 Q4 ENERGY & FUELS Wind Engineering Pub Date : 2024-01-21 DOI:10.1177/0309524x231225776
Hashim Alnami, Sid Ahmed El Mehdi Ardjoun, Mohamed Metwally Mahmoud
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引用次数: 0

摘要

由于对电力的需求急剧增加、化石燃料成本上升以及对环境的日益担忧,人们开始对可再生能源进行研究和调查。近年来,风能(WE)的使用大幅增加。人们对如何有效利用风能发电进行了深入研究。然而,由于空间和维护等方面的限制,将风力涡轮机(WT)用于研究和教学用途具有极大的挑战性和危险性。实验室规模的风力涡轮机仿真器(WTE)有许多好处,如不受空间限制、提高控制水平以及不受现有天气条件的影响。本研究的重点是低功耗实验室规模 WTE 的设计和实施。所研究的实验配置旨在精确模拟真实 WT 的机械行为。例如,空气动力学、叶片、慢速轴、齿轮箱和控制器元件都是在 MATLAB/Simulink 中建模的,然后在 dSPACE 1104 电路板上组装和实施。在降压转换器控制下运行的直流电机用于替代快轴。在各种风速条件下对 WTE 的功能进行了评估。将 WTE 的动态效果与制造商提供的动态效果进行比较的结果充分显示了所建议的 WTE 的功效及其取代实际 WT 位置的能力。本文将成为研究人员的有用资源,帮助他们选择最适合其目的的 WTE 方法。
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Design, implementation, and experimental validation of a new low-cost sensorless wind turbine emulator: Applications for small-scale turbines
Research and investigation into renewable energy sources is being sparked by the rapidly rising need for electricity, higher costs of fossil fuels, and increasing worries about the environment. Recent years have seen a tremendous increase in the use of wind energy (WE). In-depth study has been done to effectively produce power from WE. Nevertheless, it is exceedingly challenging and dangerous to set up wind turbines (WTs) for research and teaching uses due to constraints like space and upkeep. Numerous benefits come with a lab-scale WT emulator (WTE), such as freedom from space restrictions, an improved level of control, and independence from existing weather conditions. The design and execution of a low-power, lab-scale WTE are the focus of this study. The investigated experimental configuration is intended to precisely mimic the mechanical behavior of a real WT. Aerodynamics, blades, slow shafts, gearboxes, and controller elements, for example, are modeled in MATLAB/Simulink before they are assembled and implemented on a dSPACE 1104 board. A DC motor running under buck converter control is used to substitute the quick shaft. The WTE’s functionality is evaluated in various wind speed conditions. The findings of comparing the WTE’s dynamics with those offered by the manufacturer amply show the efficacy of the proposed WTE and its capacity to take the position of an actual WT. This paper will be a useful resource for investigators in helping them select the best WTE approach for their purposes.
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来源期刊
Wind Engineering
Wind Engineering ENERGY & FUELS-
CiteScore
4.00
自引率
13.30%
发文量
81
期刊介绍: Having been in continuous publication since 1977, Wind Engineering is the oldest and most authoritative English language journal devoted entirely to the technology of wind energy. Under the direction of a distinguished editor and editorial board, Wind Engineering appears bimonthly with fully refereed contributions from active figures in the field, book notices, and summaries of the more interesting papers from other sources. Papers are published in Wind Engineering on: the aerodynamics of rotors and blades; machine subsystems and components; design; test programmes; power generation and transmission; measuring and recording techniques; installations and applications; and economic, environmental and legal aspects.
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