B.P. Russell
University of Cambridge
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Publication
Featured researches published by B.P. Russell.
Journal of Applied Mechanics | 2009
F. Côté; B.P. Russell; Vikram Deshpande; N.A. Fleck
Sandwich panels with aluminum alloy face sheets and a hierarchical composite square honeycomb core have been manufactured and tested in out-of-plane compression. The prismatic direction of the square honeycomb is aligned with the normal of the overall sandwich panel. The cell walls of the honeycomb comprise sandwich plates made from glass fiber/epoxy composite faces and a polymethacrylimide foam core. Analytical models are presented for the compressive strength based on three possible collapse mechanisms: elastic buckling of the sandwich walls of the honeycomb, elastic wrinkling, and plastic microbuckling of the faces of the honeycomb. Finite element calculations confirm the validity of the analytical expressions for the perfect structure, but in order for the finite element simulations to achieve close agreement with the measured strengths it is necessary to include geometric imperfections in the simulations. Comparison of the compressive strength of the hierarchical honeycombs with that of monolithic composite cores shows a substantial increase in performance by using the hierarchical topology. DOI: 10.1115/1.3086436
Journal of Applied Mechanics | 2011
B.P. Russell; Tao Liu; N.A. Fleck; Vikram Deshpande
Sandwich beams comprising identical face sheets and a square honeycomb core were manufactured from carbon fiber composite sheets. Analytical expressions were derived for four competing collapse mechanisms of simply supported and clamped sandwich beams in three-point bending: core shear, face microbuckling, face wrinkling, and indentation. Selected geometries of sandwich beams were tested to illustrate these collapse modes, with good agreement between analytic predictions and measurements of the failure load. Finite element (FE) simulations of the three-point bending responses of these beams were also conducted by constructing a FE model by laying up unidirectional plies in appropriate orientations. The initiation and growth of damage in the laminates were included in the FE calculations. With this embellishment, the FE model was able to predict the measured load versus displacement response and the failure sequence in each of the composite beams.
Archive | 2007
B.P. Russell; Vikram Deshpande; N.A. Fleck
The superiority of metallic square honeycomb cores over competing metallic topological designs for uses as structural elements in sandwich panels has been established by research done by [1].
International Journal of Impact Engineering | 2013
B.P. Russell; K. Karthikeyan; Vikram Deshpande; N.A. Fleck
European Journal of Mechanics A-solids | 2013
K. Karthikeyan; B.P. Russell; N.A. Fleck; Haydn N. G. Wadley; Vikram Deshpande
Journal of Mechanics of Materials and Structures | 2008
B.P. Russell; Vikram Deshpande; Haydn N. G. Wadley
International Journal of Impact Engineering | 2013
K. Karthikeyan; B.P. Russell; N.A. Fleck; M.R. O’Masta; Haydn N. G. Wadley; Vikram Deshpande
Materials & Design | 2014
K. Karthikeyan; B.P. Russell
International Journal of Impact Engineering | 2012
B.P. Russell; Tao Liu; N.A. Fleck; Vikram Deshpande
Journal of Mechanics of Materials and Structures | 2010
B.P. Russell; Adam Malcom; Haydn N. G. Wadley; Vikram Deshpande