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Neural network-based structural optimization of tow-steered composite panels accounting for polymorphic uncertainty

Fina, Marc ORCID iD icon 1; Bisagni, Chiara
1 Institut für Baustatik (IBS), Karlsruher Institut für Technologie (KIT)

Abstract:

This paper introduces polymorphic uncertainty modeling in the context of structural optimization for tow-steered composite panels. The approach combines random, interval, and fuzzy variables, into advanced models that simultaneously account for both aleatory (inherent variability) and epistemic (lack of knowledge) uncertainty, allowing for more realistic design. Geometric imperfections are represented using random fields, while uncertainty in the fiber path is modeled with fuzzy functions. To reduce the high computational cost in multi-objective design optimization under polymorphic uncertainty, a hierarchical surrogate modeling strategy based on artificial neural networks (ANNs) is presented. Two interconnected ANNs are constructed: the first predicts the buckling load of random imperfect panels, and the second estimates the stochastic output quantities. Fuzzy cumulative distribution functions and a Pareto front are computed to visualize the results. Structural performance and robustness measures are evaluated for a flat and curved tow-steered panel example within a multi-objective buckling design framework under polymorphic uncertainties. ... mehr


Verlagsausgabe §
DOI: 10.5445/IR/1000192508
Veröffentlicht am 20.05.2026
Originalveröffentlichung
DOI: 10.1016/j.compstruct.2026.120323
Cover der Publikation
Zugehörige Institution(en) am KIT Institut für Baustatik (IBS)
Publikationstyp Zeitschriftenaufsatz
Publikationsmonat/-jahr 05.2026
Sprache Englisch
Identifikator ISSN: 0263-8223, 1879-1085
KITopen-ID: 1000192508
Erschienen in Composite Structures
Verlag Elsevier
Band 387
Seiten 120323
Bemerkung zur Veröffentlichung Part of special issue: Honoring Prof. Raimund Rolfes' 65th Birthday
Vorab online veröffentlicht am 02.04.2026
Externe Relationen Siehe auch
Schlagwörter Buckling, Polymorphic uncertainties, Tow-steered composites, Random imperfections, Monte Carlo simulation, Artificial neural network
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