Topology Optimization of a Parallel-Leg Jacket Substructure for a 10 MW Offshore Wind Turbine

This study proposes a parallel-leg jacket concept for a 10 MW offshore wind turbine and employs density-based topology optimization as a concept-stage load-path guidance tool to develop a lightweight tubular jacket configuration. In contrast to conventional battered-leg jacket designs, the proposed configuration adopts vertical parallel legs to provide a more regular geometric arrangement. A SIMP-based topology-optimization approach is applied to the proposed parallel-leg design domain to identify efficient material distribution and dominant load-transfer paths while eliminating low-stress regions. The topology-optimization-guided layout is subsequently reconstructed into a tubular jacket substructure for structural evaluation. Compared with the reference jacket design, the reconstructed parallel-leg jacket exhibits a 5.8% reduction in structural mass and a 34.8% reduction in maximum global displacement, from 135.85 mm to 88.62 mm, under the configuration-specific system-level assessment. The reduction in peak von Mises stress is comparatively modest, at approximately 2.3%, from 149.99 MPa to 146.6 MPa and slightly improved low-order modal characteristics. The comparison is conducted at the system level using configuration-specific IEC-based extreme loading conditions generated in DNV Bladed™. Overall, the topology-optimization-guided reconstructed parallel-leg jacket shows the feasibility of applying topology-based load path identification for developing a concept-stage alternative for offshore wind turbine support structures.

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Publication Details

Journal
Journal of Marine Science and Engineering
Published
2026-09-15
DOI
https://doi.org/10.3390/jmse14181716
Primary Topic
Topology Optimization in Engineering
Type
article
Field-Weighted Citation Impact
0.00

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article

Topology Optimization of a Parallel-Leg Jacket Substructure for a 10 MW Offshore Wind Turbine

Nouman Saeed, Ling Wan, Shuijin Li, Ayesha Saeed et al.
Journal of Marine Science and Engineering
Topology Optimization in Engineering
article

Topology Optimization of a Parallel-Leg Jacket Substructure for a 10 MW Offshore Wind Turbine

Nouman Saeed, Ling Wan, Shuijin Li, Ayesha Saeed, Ben He
article en

Abstract

This study proposes a parallel-leg jacket concept for a 10 MW offshore wind turbine and employs density-based topology optimization as a concept-stage load-path guidance tool to develop a lightweight tubular jacket configuration. In contrast to conventional battered-leg jacket designs, the proposed configuration adopts vertical parallel legs to provide a more regular geometric arrangement. A SIMP-based topology-optimization approach is applied to the proposed parallel-leg design domain to identify efficient material distribution and dominant load-transfer paths while eliminating low-stress regions. The topology-optimization-guided layout is subsequently reconstructed into a tubular jacket substructure for structural evaluation. Compared with the reference jacket design, the reconstructed parallel-leg jacket exhibits a 5.8% reduction in structural mass and a 34.8% reduction in maximum global displacement, from 135.85 mm to 88.62 mm, under the configuration-specific system-level assessment. The reduction in peak von Mises stress is comparatively modest, at approximately 2.3%, from 149.99 MPa to 146.6 MPa and slightly improved low-order modal characteristics. The comparison is conducted at the system level using configuration-specific IEC-based extreme loading conditions generated in DNV Bladed™. Overall, the topology-optimization-guided reconstructed parallel-leg jacket shows the feasibility of applying topology-based load path identification for developing a concept-stage alternative for offshore wind turbine support structures.

Journal of Marine Science and EngineeringVol. 14(18)
Ningbo University (CN), North China Electric Power University (CN), Powerchina Huadong Engineering Corporation (China) (CN)
Natural Science Foundation of Zhejiang Province
Affordable and clean energy
Openalex Percentile: Top 18%
Topology Optimization in Engineering
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