屈曲
结构工程
水准点(测量)
塔楼
非线性系统
有限元法
工程类
计算机科学
计算流体力学
涡轮机
机械工程
航空航天工程
地质学
大地测量学
量子力学
物理
作者
Adam J. Sadowski,Marc Seidel,Hussain Al‐Lawati,Esmaeil Azizi,Hagen Balscheit,Manuela Böhm,Lei Chen,Ingmar van Dijk,Cornelia Doerich,O. Kunle Fajuyitan,Achilleas Filippidis,Astrid Winther Fischer,Claas Fischer,Simos Gerasimidis,Hassan Karampour,Lijithan Kathirkamanathan,Frithjof Marten,Yasuko Mihara,Shashank Mishra,Vołodymyr Sakharov
标识
DOI:10.1016/j.engfailanal.2023.107124
摘要
An assessment of the elastic-plastic buckling limit state for multi-strake wind turbine support towers poses a particular challenge for the modern finite element analyst, who must competently navigate numerous modelling choices related to the tug-of-war between meshing and computational cost, the use of solvers that are robust to highly nonlinear behaviour, the potential for multiple near-simultaneously critical failure locations, the complex issue of imperfection sensitivity and finally the interpretation of the data into a safe and economic design. This paper reports on an international ‘round-robin’ exercise conducted in 2022 aiming to take stock of the computational shell buckling expertise around the world which attracted 29 submissions. Participants were asked to perform analyses of increasing complexity on a standardised benchmark of an 8-MW multi-strake steel wind turbine support tower segment, from a linear elastic stress analysis to a linear bifurcation analysis to a geometrically and materially nonlinear buckling analysis with imperfections. The results are a showcase of the significant shell buckling expertise now available in both industry and academia. This paper is the first of a pair. The second paper presents a detailed reference solution to the benchmark, including an illustration of the Eurocode-compliant calibration of two important imperfection forms.
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