Performance Analysis of an Improved Gravity Anchor Bolt Expanded Foundation

Author:

Zhang Zhenli1ORCID,Liu Qingyang1,Chu Hongmin1,Lacidogna Giuseppe2ORCID,Xu Jie3ORCID,Cheng Haiyang3,Liu Zhitao3,Jiang Weitao3

Affiliation:

1. Shandong Electric Power Engineering Consulting Institute Corp., Ltd., Jinan 250013, China

2. Department of Structural, Geotechnical and Building Engineering, Politecnico di Torino, 10129 Torino, Italy

3. School of Civil Engineering, Tianjin University, Tianjin 300072, China

Abstract

With the continuous utilization of renewable energy, the number of onshore wind turbines is increasing. Small design improvements can save costs and facilitate the maintenance and repair of the wind turbine foundation. In this paper, an existing gravity expansion foundation with an anchor cage is improved. Our improvements further expand the space inside the foundation and reduce the length of the anchor bolt, which could reduce the costs and facilitate construction. To study the performance of the new foundation, a three-dimensional finite element model of the foundation–soil–anchor bolt was established via a finite element simulation. The damage evolution of the foundation was simulated with the concrete damage plasticity model (CDP). The separation ratio, foundation settlement, inclination ratio, reinforcement stress, foundation stress, and foundation damage of the new foundation under ultimate load conditions were analyzed. The influence of parameters h1 and b3 on the performance of the foundation was further studied. The finite element analysis results show that the tensile stress of concrete can be effectively reduced by appropriately increasing the corbel height and ring beam width of the foundation. The results also show that the improved wind turbine foundation force is reasonable and can meet the use of the actual project requirements on the level of finite element analysis.

Funder

Shandong Electric Power Engineering Consulting Institute Corp

111 Projects

Tianjin University

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

Reference50 articles.

1. (2023). Global Wind Report 2023, Global Wind Energy Council.

2. (2023). Renewable Energy Market Update Outlook for 2023 and 2024, International Energy Agency.

3. Design and verification of the loading system and boundary conditions for wind turbine foundation model experiment;Guo;Renew. Energy,2021

4. Uncertainties in the design of support structures and foundations for offshore wind turbines;Negro;Renew. Energy,2014

5. Deterioration of cracks in onshore wind turbine foundations;McAlorum;Eng. Struct.,2018

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