i-Rheo: Measuring the materials' linear viscoelastic properties “in a step”!
Author(s) -
Manlio Tassieri,
Marco Laurati,
Daniel J. Curtis,
Dietmar Auhl,
Salvatore Coppola,
Andrea Scalfati,
Karl Hawkins,
P. R. Williams,
Jonathan M. Cooper
Publication year - 2016
Publication title -
journal of rheology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.098
H-Index - 107
eISSN - 1520-8516
pISSN - 0148-6055
DOI - 10.1122/1.4953443
Subject(s) - viscoelasticity , rheology , materials science , dispersity , natural rubber , composite material , suspension (topology) , polymer , rheometry , colloid , standard linear solid model , polymer science , chemical engineering , polymer chemistry , mathematics , homotopy , pure mathematics , engineering
We present a simple new analytical method for educing the materials' linear viscoelastic properties, over the widest range of experimentally accessible frequencies, from a simple step-strain measurement, without the need of preconceived models nor the idealization of real measurements. This is achieved by evaluating the Fourier transforms of raw experimental data describing both the time-dependent stress and strain functions. The novel method has been implemented into an open access executable “i-Rheo,” enabling its use to a broad scientific community. The effectiveness of the new rheological tool has been corroborated by direct comparison with conventional linear oscillatory measurements for a series of complex materials as diverse as a monodisperse linear polymer melt, a bimodal blend of linear polymer melts, an industrial styrene-butadiene rubber, an aqueous gelatin solution at the gel point and a highly concentrated suspension of colloidal particles. The broadband nature of the new method and its gene...
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