Zobrazeno 1 - 9
of 9
pro vyhledávání: '"Jourdain H. Piette"'
Publikováno v:
Physics of Fluids. 34:093104
In this paper, the behavior of Kaolinite suspensions is explored in the presence of two ionic surfactants, namely, cetyl trimethyl ammonium bromide (CTAB) and sodium dodecyl sulfate (SDS). The steady-shear behavior of these suspensions is explored ab
Using general rigid bead–rod theory, we explore the effect of twisting a macromolecule on its rheological properties in suspensions. We thus focus on macromolecules having the form of Möbius bands so that the number of twists can be incremented. W
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::ed5de7b9dbfbde0b09d31574ee4cbbe7
https://hdl.handle.net/20.500.11824/1579
https://hdl.handle.net/20.500.11824/1579
Publikováno v:
Physics of Fluids
Just 11 weeks after the confirmation of first infection, one team had already discovered and published [D. Wrapp et al., "Cryo-EM structure of the 2019-nCoV spike in the prefusion conformation," Science 367(6483), 1260-1263 (2020)] in exquisite detai
Publikováno v:
International Journal of Modern Physics B. 34:2040110
General rigid bead-rod theory [O. Hassager, J. Chem. Phys. 60, 4001 (1974)] explains polymer viscoelasticity from macromolecular orientation. By means of general rigid bead-rod theory, we relate the complex viscosity of polymeric liquids to the archi
Publikováno v:
Physics of Fluids. 32:063103
Whereas rigid dumbbell suspensions predict, at least qualitatively, most of the viscoelastic material functions measured in the laboratory, Hookean dumbbells predict few of these. For instance, whereas rigid dumbbells predict a shear-thinning viscosi
Complex viscosity of helical and doubly helical polymeric liquids from general rigid bead-rod theory
Autor:
M. A. Kanso, Jourdain H. Piette
Publikováno v:
Physics of Fluids. 31:111904
With general rigid bead-rod modeling, we recreate shapes of complex macromolecular structures with beads, by rigidly fixing bead positions relative to one another. General rigid-bead rod theory then attributes the elasticity of polymeric liquids to t
Publikováno v:
Physics of Fluids. 31:087107
General rigid bead-rod theory [O. Hassager, “Kinetic theory and rheology of bead-rod models for macromolecular solutions. II. Linear unsteady flow properties,” J. Chem. Phys. 60(10), 4001–4008 (1974)] explains polymer viscoelasticity from macro
Publikováno v:
Physics of Fluids. 31:053103
From kinetic molecular theory, we can attribute the rheological behaviors of polymeric liquids to macromolecular orientation. The simplest model to capture the orientation of macromolecules is the rigid dumbbell. For a suspension of rigid dumbbells,
Exact coefficients for rigid dumbbell suspensions for steady shear flow material function expansions
Publikováno v:
Physics of Fluids. 31:021212
From kinetic molecular theory, we can attribute the elasticity of polymeric liquids to macromolecular orientation. For a suspension of rigid dumbbells, subject to a particular flow field, we must first solve the diffusion equation for the orientation