Person: Rycroft, Christopher
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Publication On a boundary layer problem related to the gas flow in shales
(Springer Nature, 2013) Barenblatt, G. I.; Monteiro, P. J. M.; Rycroft, ChristopherThe development of gas deposits in shales has become a significant energy resource. Despite the already active exploitation of such deposits, a mathematical model for gas flow in shales does not exist. Such a model is crucial for optimizing the technology of gas recovery. In the present article, a boundary layer problem is formulated and investigated with respect to gas recovery from porous low-permeability inclusions in shales, which are the basic source of gas. Milton Van Dyke was a great master in the field of boundary layer problems. Dedicating this work to his memory, we want to express our belief that Van Dyke’s profound ideas and fundamental book Perturbation Methods in FluidMechanics (Parabolic Press, 1975) will live on—also in fields very far from the subjects for which they were originally invented.
Publication Rapid disorganization of mechanically interacting systems of mammary acini
(Proceedings of the National Academy of Sciences, 2013) Shi, Qianyun; Ghosh, R. P.; Engelke, H.; Rycroft, Christopher; Cassereau, L.; Sethian, J. A.; Weaver, V. M.; Liphardt, J. T.Cells and multicellular structures can mechanically align and concentrate fibers in their ECM environment and can sense and respond to mechanical cues by differentiating, branching, or disorganizing. Here we show that mammary acini with compromised structural integrity can interconnect by forming long collagen lines. These collagen lines then coordinate and accelerate transition to an invasive phenotype. Interacting acini begin to disorganize within 12.5 ± 4.7 h in a spatially coordinated manner, whereas acini that do not interact mechanically with other acini disorganize more slowly (in 21.8 ± 4.1 h) and to a lesser extent (P < 0.0001). When the directed mechanical connections between acini were cut with a laser, the acini reverted to a slowly disorganizing phenotype. When acini were fully mechanically isolated from other acini and also from the bulk gel by box-cuts with a side length <900 μm, transition to an invasive phenotype was blocked in 20 of 20 experiments, regardless of waiting time. Thus, pairs or groups of mammary acini can interact mechanically over long distances through the collagen matrix, and these directed mechanical interactions facilitate transition to an invasive phenotype.