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Timber Grid-shell Structures: form-finding, analysis and optimisation (2015)
Thesis
D'Amico, B. Timber Grid-shell Structures: form-finding, analysis and optimisation. (Thesis). Edinburgh Napier University. http://researchrepository.napier.ac.uk/id/eprint/9833

This thesis aims to provide a set of tools for analysis and design of free-form timber grid-shells. It provides a brief introduction on the relationship between shape and structural behaviour of grid-shells, followed by an introduction to actively-be... Read More about Timber Grid-shell Structures: form-finding, analysis and optimisation.

Timber gridshells: Numerical simulation, design and construction of a full scale structure (2015)
Journal Article
D'Amico, B., Kermani, A., Zhang, H., Pugnale, A., Colabella, S., & Pone, S. (2015). Timber gridshells: Numerical simulation, design and construction of a full scale structure. Structures, 3, 227-235. https://doi.org/10.1016/j.istruc.2015.05.002

Timber gridshell structures, such as the Multihalle for the federal garden festival in Mannheim or the Downland Museum, have been the result of a creative–generative process that indissolubly ‘welded’ the structural contribution to that of form exp... Read More about Timber gridshells: Numerical simulation, design and construction of a full scale structure.

Optimization of cross-section of actively bent grid shells with strength and geometric compatibility constraints (2015)
Journal Article
D’Amico, B., Kermani, A., Zhang, H., Shepherd, P., & Williams, C. (2015). Optimization of cross-section of actively bent grid shells with strength and geometric compatibility constraints. Computers and Structures, 154, 163-176. https://doi.org/10.1016/j

The use of bending as self forming process allows the realization of shape-resistant systems, such as grid shell structures. Here, a numerical method for optimisation of the cross-section of actively bent structures is introduced. For a given load di... Read More about Optimization of cross-section of actively bent grid shells with strength and geometric compatibility constraints.