The microstructure and rheology of a model, thermoreversible nanoparticle gel under steady shear and large amplitude oscillatory shear (LAOS)
ORAL
Abstract
The microstructure-rheology relationship for a model, thermoreversible nanoparticle gel is investigated using a new technique of time-resolved neutron scattering under steady and time-resolved large amplitude oscillatory shear (LAOS) flows. A 21 vol% gel is tested with varying strength of interparticle attraction. Shear-induced structural anisotropy is observed as butterfly scattering patterns and quantified through an alignment factor. The microstructure-rheology relationship is analyzed through a new type of structure-Lissajous plot that shows how the anisotropic microstructure is responsible for the observed LAOS response, which is beyond a response expected for a purely viscous gel with constant structure. The LAOS shear viscosities are observed to follow the “Delaware-Rutgers” rule. Rheological and microstructural data are successfully compared across a broad range of conditions by scaling the shear rate by the strength of attraction, providing a method to compare behavior between steady shear and LAOS experiments.
*This manuscript was prepared under Cooperative Agreements 70NANB7H6178, 70NANB10H256, and 70NANB12H239, from NIST, U.S. Department of Commerce.
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Presenters
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Norman Wagner
- University of Delaware
- Department of Chemical and Biomolecular Engineering, University of Delaware