Nonlinear mechanics of colloidal gels: creep, fatigue and shear-induced yielding
arXiv:2011.06921 · doi:10.1007/978-3-642-27737-5_743-1
Abstract
Colloidal gels are formed through the aggregation of attractive particles, whose size ranges from 10~nm to a few micrometers, suspended in a liquid. Such gels are ubiquitous in everyday life applications, from food products to paints or construction materials, in particular thanks to their ability to easily "yield", i.e., to turn from a solid to a liquid under the application of a weak external load. Understanding and controlling the mechanical response of colloidal gels is therefore of prime importance. Depending on the details of the system, however, the resulting gel networks present different microstructural organisations that may lead to widely different mechanical responses. This raises important challenges in fully characterizing yielding and in uncovering the mechanisms of nonlinear response in colloidal gels. In this paper, we distinguish between two classes of colloidal gels showing respectively reversible yielding, where the gel network reforms upon load release, and irreversible yielding, where the network is fully destroyed through fractures and phase separation. This broad, empirical distinction is achieved through rheology and local experiments at a mesoscopic scale, intermediate between the network characteristic size and the sample size. We further discuss how the observables derived from creep and fatigue experiments may be modelled to predict yielding and highlight open questions and future research directions in the domain.
References in corpus (11)
- Fingerprinting Soft Materials: A Framework for Characterizing Nonlinear Viscoelasticity
- Statistical Models of Fracture
- Colloidal Gels: Equilibrium and Non-Equilibrium Routes
- Structure and dynamics of colloidal depletion gels: coincidence of transitions and heterogeneity
- Time Resolved Correlation measurements of temporally heterogeneous dynamics
- Arrested phase separation in a short-ranged attractive colloidal system: A numerical study
- Shear Thickening and Scaling of the Elastic Modulus in a Fractal Colloidal System with Attractive Interactions
- Differential Dynamic Microscopy microrheology of soft materials: a tracking-free determination of the frequency-dependent loss and storage moduli
- Fluctuations and scaling in creep deformation
- Irreversible hardening of a colloidal gel under shear: the smart response of natural rubber latex gels
- Predicting and assessing rupture in protein gels under oscillatory shear