A. Corrado, L. Leonetti, D. Magisano, G. Garcea

2026.5.1THIN-WALLED STRUCTURES

DOI: 10.1016/j.tws.2026.115046

Abstract

This work presents an isogeometric solid-shell framework for transient thermo-mechanical analysis of homogeneous and multilayered thin-walled structures under large deformations and thermally induced buckling. The main contribution is a generalized shell model for both heat conduction and thermoelasticity: by introducing a piecewise-linear through-thickness representation within each layer, the governing equations are reformulated in terms of generalized through-thickness quantities that depend only on the in-plane coordinates of a reference surface. As a result, the discrete problem requires a purely two-dimensional spatial discretization, implemented here with bivariate NURBS basis functions, while the effects of three-dimensional temperature gradients and temperature-dependent constitutive behavior are captured through efficient layer-wise thickness pre-integration. Time integration of the thermal problem is performed via a modified Crank–Nicolson scheme. Nonlinear time/temperature–displacement equilibrium paths are computed using a generalized arc-length continuation method capable of traversing limit and turning points in transient simulations. This is a major novelty, as conventional Riks analyses are restricted to proportional temperature fields and cannot account for the transient thermal history. A staggered strategy is adopted to eliminate the thermal degrees of freedom by explicit condensation, yielding a reduced mechanical system at each iteration, and robustness is enhanced by the mixed integration-point (MIP) technique and deriving algorithmically consistent tangent operators. Benchmark problems on plates and shells subjected to transient thermal loads and fire exposure demonstrate accuracy and efficiency against fully three-dimensional ABAQUS solutions, with a drastic reduction in degrees of freedom and computational time. • Isogeometric solid-shell model for thermo-mechanical analysis. • Generalized shell model using layer-wise piecewise-linear temperature fields. • 2D spatial discretization for transient 3D heat conduction in layered shells. • Arc-length continuation for thermally-induced large deformations and buckling. • Significant reduction in DOFs and CPU time compared to full 3D FEM models.

Citation format

CORRADO, A., et al. An isogeometric solid-shell framework for transient thermal and thermo-mechanical large-deformation analysis of homogeneous and multilayered shells. THIN-WALLED STRUCTURES, 2026.