We report a combined rheology and x-ray photon correlation spectroscopy (XPCS) study of the structural and mechanical relaxation of a ductile, nanocolloidal glass following the cessation of shear flow. After the glass is sheared to 300% strain at various shear rates and then held at fixed strain, the stress undergoes a protracted, quasi-logarithmic decay with hold time that depends weakly on the initial strain rate. Recovery rheology measurements reveal that this stress relaxation is accompanied by a logarithmic decrease in the elastic component of the recoverable strain; hence, the rates of decrease of the stress and recoverable strain are proportional. XPCS measurements during the stress relaxation reveal dynamics dominated by a convection-like backflow that is divided into two dynamically distinct regions indicative of banded motion. In one region, the flow can be modeled by an affine strain, while in the other region the glass moves as a plug while undergoing slow, glassy relaxation. The rates of these dynamics approximately track the rate of loss of recoverable strain, indicating this motion is the predominant microscopic mechanism driving the conversion of recoverable to unrecoverable strain during stress relaxation. In contrast, XPCS measurements during strain recovery reveal purely affine flow with no evidence of heterogeneity and with strain rates that agree quantitatively with the rheometry measurements. Together, these results provide a unified microscopic picture connecting the evolving internal dynamics of a ductile glass to its macroscopic mechanical relaxation following flow cessation.
Soft materials store, dissipate and release mechanical stresses through relaxation processes that often span many orders of magnitude in time. Such relaxation spectra are widely used to infer internal material dynamics and are usually regarded as fingerprints of microscopic complexity, disorder, or heterogeneity. Here...
Niloyendu Roy, Rupayan Saha, Debankur Das et al.· 0 citations
Plastic-bonded explosives derive their performance and safety in part from the mesoscale mechanics of particle contacts formed during pressing. Using large-scale molecular dynamics simulations of cyclotrimethylene trinitramine particle assemblies, this study examines compaction, heating, and post-unloading retained sta...
Hengyi Gong, Wen-Xu Sun, Xin-Ran Zheng et al.· Journal of Applied Physics· 0 citations
Physical aging in glasses is often described using the concept of material time, which assumes the underlying relaxation mechanism to remain the same as in equilibrium, but with a rate that changes during aging. Whether material time also captures the microscopic dynamics of metallic glasses, which differ qualitatively...
Till Böhmer, Jie Shen, J. Gabriel et al.· 0 citations
Viscoelastic phase separation governs the nonequilibrium demixing dynamics of soft-matter systems. Here, we introduce an efficient continuum framework that couples the Cahn-Hilliard phase-field model with the Oldroyd-B constitutive equation. By treating the mixture as a single incompressible fluid, our model captures m...
Di-Xi Yang, Jia-Xing Yuan· Journal of Chemical Physics· 0 citations
The yielding transition marks the onset of irreversible plastic deformation in amorphous solids and plays a central role in determining the mechanical stability and failure of metallic glasses, colloidal suspensions, and biological assemblies. Despite extensive research, the microscopic factors governing the nature of...
A. Mandal, Roni Chatterjee, Smarajit Karmakar· 0 citations
Flow-induced crystallization (FIC) typically governs the performance of semicrystalline polymers through accelerated crystallization and produces shish-kebab-like structures (typically under steady or strong shear flow conditions; shear rate < 102 s−1). However, FIC behavior under realistic and extreme shear flow con...
Jie Zhang, Jin Yin, Dan‐Yang Zhao et al.· Macromolecules· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.