Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/118020
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Title: Generative inverse design of steel gridshell joints with multi-objective optimisation
Authors: Chen, MT
Pan, Y
Zuo, W 
Zhao, O
Gardner, L
Issue Date: May-2026
Source: Advanced engineering informatics, May 2026, v. 72, 104483
Abstract: The design of steel gridshell joints, simultaneously minimising weight, maximising stiffness and ensuring a uniform stress distribution, is a challenging multi-objective problem. This paper presents a generative inverse design framework integrating topology optimisation (TO), data-driven surrogate modelling and multi-objective optimisation to automatically generate high-performance steel joint designs. A parametric workflow links a BESO-based TO module with a Bayesian-optimised XGBoost surrogate model for predicting joint compliance and stress variation. An NSGA-II parametric evolutionary optimiser then explores trade-offs among competing objectives, while K-means clustering extracts representative Pareto-optimal solutions. The effectiveness of the framework is validated by a case study, with the generated joints achieving up to 40% weight reduction and improved stiffness and stress uniformity relative to a conventional hollow joint. One selected design was successfully fabricated via selective laser melting 3D printing, demonstrating practical manufacturability. The proposed framework is also adaptive to other steel gridshell joint forms.
Keywords: Generativedesign
Machine learning
Multi-objective optimisation
Steel joint
Publisher: Elsevier Ltd
Journal: Advanced engineering informatics 
ISSN: 1474-0346
EISSN: 1873-5320
DOI: 10.1016/j.aei.2026.104483
Rights: © 2026 The Author(s). Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license ( http://creativecommons.org/licenses/by-nc-nd/4.0/ ).
The following publication Chen, M.-T., Pan, Y., Zuo, W., Zhao, O., & Gardner, L. (2026). Generative inverse design of steel gridshell joints with multi-objective optimisation. Advanced Engineering Informatics, 72, 104483 is available at https://doi.org/10.1016/j.aei.2026.104483.
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