Utilizing WFSim to Investigate the Impact of Optimal Wind Farm Layout and Inter-Field Wake on Average Power

Author:

Li Guohao12ORCID,Zhang Lidong1,Zhang Duanmei3,Yang Shiyu1,Zhao Yuze1,Tao Yongzheng4,Han Jie1,Wang Yanwei56,Zhang Tengyu7

Affiliation:

1. School of Energy and Power Engineering, Northeast Electric Power University, Jilin City 132011, China

2. Heilongjiang Provincial Key Laboratory of Technology and Equipment for Utilization of Agricultural Renewable Resources in Cold Region, Harbin 150030, China

3. College of Jilin Emergency Management, Changchun Institute of Technology, Changchun 130021, China

4. School of Electrical Engineering, Xi’an Jiaotong University, Xi’an 710049, China

5. School of Economics and Management, Northeast Electric Power University, Jilin City 132011, China

6. Guangdong ATV College of Performing Arts, Dongguan 523710, China

7. Datang Northeast Electric Power Test & Research Institute Co., Ltd., Changchun 130102, China

Abstract

This paper presents a comprehensive study on optimizing wind farm efficiency by controlling wake effects using the WFSim dynamic simulation model. Focusing on five key factors—yaw wind turbine position, yaw angle, wind farm spacing, longitudinal wind turbine spacing, and yaw rate—we qualitatively analyze their individual and combined impact on the wind farm’s wake behavior and mechanical load. Through a quantitative approach using the orthogonal test method, we assess each factor’s influence on the farm’s overall power output. The findings prioritize the following factors in terms of their effect on power output: yaw wind turbine position, yaw angle, wind farm spacing, longitudinal spacing, and yaw rate. Most significantly, this study identifies optimal working conditions for maximizing the wind farm’s average power output. These conditions include a wind turbine longitudinal spacing of 7.0D, a wind farm spacing of 15.0D, a yaw angle of 30°, and a yaw rate of 0.0122 rad/s, with the first and second rows of turbines in a yaw state. Under these optimized conditions, the wind farm’s average power output is enhanced to 35.19 MW, marking an increase of 2.86 MW compared to the farm’s original configuration. Additionally, this paper offers an analysis of wake deflection under these optimal conditions, providing valuable insights for the design and management of more efficient wind farms.

Funder

Key R&D projects of Jilin Provincial Science

Opening Project of Key Laboratory of Agricultural Renewable Resource Utilization Technology

Publisher

MDPI AG

Reference51 articles.

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