Abstract
AbstractBased on the conceptual design of an advanced wind turbine tower system, use of ultra-high-performance cementitious composites material with compressive strength of 200 MPa (UHPC-200) is proposed to ensure high durability and ductility of the UHPC hybrid wind turbine tower. Key design parameters are proposed for the structural design of a 3-MW wind turbine. The material properties, mixing compositions, simplified constitutive relationship, and model parameters are outlined. Using nonlinear finite element analysis, the effects of wall thickness, wall thickness ratio, and prestressing tendon on the structural performance including the longitudinal stress field, lateral displacement, stress concentration at the transition zone between the middle and bottom segments are evaluated. Based on the stress-field analysis, the design limitation of the segmental wall thickness and its ratio is recommended. The numerical results show that the tower with the wall thickness ratio of 2:3 (i.e., thickness 200–300 mm) with prestressing tendons is an optimal design for the UHPC hybrid tower. The results of this study can be used as a reference for the engineering design of a new type of UHPC hybrid wind turbine tower.
Funder
National Natural Science Foundation of China
Xiamen Municipal Bureau of Science and Technology
Fujian Provincial Key Laboratory of Multi-disasters Prevention and Mitigation in Civil Engineerings
Korea Agency for Infrastructure Technology Advancement
Publisher
Springer Science and Business Media LLC
Subject
Ocean Engineering,Civil and Structural Engineering
Reference31 articles.
1. Bernuzzi, C., et al. (2021). Resonance of steel wind turbines: problems and solutions. Structures, 32(March), 65–75. https://doi.org/10.1016/j.istruc.2021.02.053
2. Blanco, M. I. (2009). The economics of wind energy. Renewable and Sustainable Energy Reviews, 13(6–7), 1372–1382. https://doi.org/10.1016/j.rser.2008.09.004
3. Chen, W., Wang, S. Y., Cao, L., Wang, H. M., & Yao, J. (2014). The finite element analysis of the large horizontal axis wind turbine generator tower. Applied Mechanics and Materials, 444–445, 836–840. https://doi.org/10.4028/www.scientific.net/AMM.444-445.836
4. China electricity council T / CEC 5008-2018, Code of prestressed precast concrete tower for wind turbine. 2018.
5. GB 50135-2019, Standard for design of high-rising structures. 2019.
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