Abstract

AbstractAn alternative approach for the analysis of arbitrarily curved shells is developed in this paper based on the idea of initial deformations. By ‘alternative’ we mean that neither differential geometry nor the concept of degeneration is invoked here to describe the shell surface. We begin with a flat reference configuration for the shell mid‐surface, after which the initial (curved) geometry is mapped as a stress‐free deformation from the plane position. The actual motion of the shell takes place only after this initial mapping. In contrast to classical works in the literature, this strategy enables the use of only orthogonal frames within the theory and therefore objects such as Christoffel symbols, the second fundamental form or three‐dimensional degenerated solids do not enter the formulation. Furthermore, the issue of physical components of tensors does not appear. Another important aspect (but not exclusive of our scheme) is the possibility to describe exactly the initial geometry. The model is kinematically exact, encompasses finite strains in a totally consistent manner and is here discretized under the light of the finite element method (although implementation via mesh‐free techniques is also possible). Assessment is made by means of several numerical simulations. Copyright © 2009 John Wiley & Sons, Ltd.

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