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- W3216142010 abstract "The globular-stretch transition of a collapsed polymer in low strain rate elongational flow is studied using polymeric protrusion kinetics scaling laws and numerical simulation. Results demonstrate the influence of fluid flow on the occurrence probability of long-length thermally nucleated polymeric protrusions, which regulate collapsed polymer unfolding in low strain rate flows. Further, we estimate that the globular-stretch transition rate $({k}_{mathrm{s}})$ in low strain rate $(stackrel{ifmmode dot{}else .{}fi{}}{ensuremath{in}})$ elongational flows varies as ${k}_{mathrm{s}}ensuremath{sim}{e}^{ensuremath{-}ensuremath{alpha}{stackrel{ifmmode dot{}else .{}fi{}}{ensuremath{in}}}^{ensuremath{-}1}}.$ Results here reveal that the existing approach of neglecting the effects of fluid flow on thermally nucleated protrusions distribution is not valid for analyzing polymer unfolding behavior in low strain rate flows. Neglecting such an effect overestimates the constant $ensuremath{alpha}$ in the scaling law of transition rate $({k}_{mathrm{s}}ensuremath{sim}{e}^{ensuremath{-}ensuremath{alpha}{stackrel{ifmmode dot{}else .{}fi{}}{ensuremath{in}}}^{ensuremath{-}1}})$ by a factor of 2." @default.
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- W3216142010 date "2021-11-22" @default.
- W3216142010 modified "2023-10-17" @default.
- W3216142010 title "Flow-regulated nucleation protrusion theory for collapsed polymers" @default.
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- W3216142010 doi "https://doi.org/10.1103/physreve.104.054504" @default.
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