Wind Tunnel Test Research on the Aerodynamic Behavior of Concrete-Filled Double-Skin Steel (CFDST) Wind Turbine Towers
-
Published:2024-08-01
Issue:8
Volume:14
Page:2372
-
ISSN:2075-5309
-
Container-title:Buildings
-
language:en
-
Short-container-title:Buildings
Author:
Li Dong12, Sang Yuan1, Fang Shijing1, Sun Chuang1, Wang Haicui3
Affiliation:
1. College of Civil Engineering, Fuzhou University, Fuzhou 350116, China 2. Key Laboratory of Fluid and Power Machinery (Xihua University), Ministry of Education, Chengdu 610039, China 3. Faculty of Construction and Environment, The Hong Kong Polytechnic University, Hong Kong 999077, China
Abstract
To explore the potential application of concrete-filled double-skin steel tubular (CFDST) structures in wind turbine towers, this study carried out wind tunnel tests to explore the aerodynamic behavior of CFDST tower-based wind turbine systems. Two scaled models including traditional steel tower-based and CFDST tower-based wind turbine systems were designed and tested in the field of typhoons. Then, the vibration characteristics in both the downwind and crosswind directions were systematically investigated, in terms of acceleration and displacement response, motion trajectory, dynamic characteristics, etc. The findings demonstrate that CFDST structures can have significantly improved performance against both blade harmonic excitation and external environmental excitation. Compared to traditional steel towers, CFDST towers exhibit a substantial reduction in aerodynamic response. In particular, the reduction in the RMS value can be over five times in the resonance case and 457.69% in the non-resonance case. The CFDST towers predominantly exhibited converged motion trajectory and concentrated on lower vibration modes. The energy dissipation capability was remarkably enhanced, with the damping ratio increasing up to 40.98%. Overall, it was experimentally demonstrated that CFDST towers can efficiently address the dynamic problems of large-scale wind turbine towers in engineering.
Funder
National Natural Science Foundation of China Open Research Subject of Key Laboratory of Fluid and Power Machinery (Xihua University), Ministry of Education Tianjin University-Fuzhou University Independent Innovation Project
Reference34 articles.
1. Zhang, M., Liu, B., Gao, C.Q., Hossain, M.N., and Zhao, G.F. (2024). Wind-Induced Response Analysis and Fatigue Reliability Study of a Steel-Concrete Composite Wind Turbine Tower. Buildings, 14. 2. You, F., Shaik, S., Rokonuzzaman, M., Rahman, K.S., and Tan, W.S. (2023). Fire Risk Assessments and Fire Protection Measures for Wind Turbines: A Review. Heliyon, 9. 3. Dynamic Analysis of Horizontal Axis Wind Turbine by Thin-Walled Beam Theory;Wang;J. Sound Vib.,2010 4. Wei, R., Zhou, X.H., Gao, Y., Deng, R., Wang, Y.H., Zhou, X.H., Yu, J., and Chao, Y.Q. (2023). Compressive Behavior of Stiffened Steel Tubes for Wind turbine Towers. Thin Walled Struct., 183. 5. Time-Domain Response-Based Structural Analysis on a Floating Offshore Wind Turbine;Lee;J. Mar. Sci. Appl.,2023
|
|