Multiple transient memories in sheared suspensions: Robustness, structure, and routes to plasticity

Multiple transient memories, originally discovered in charge-density-wave conductors, are a remarkable and initially counterintuitive example of how a system can store information about its driving. In this class of memories, a system can learn multiple driving inputs, nearly all of which are eventually forgotten despite their continual input. If sufficient noise is present, the system regains plasticity so that it can continue to learn new memories indefinitely. Recently, Keim and Nagel showed how multiple transient memories could be generalized to a generic driven disordered system with noise, giving as an example simulations of a simple model of a sheared non-Brownian suspension. Here, we further explore simulation models of suspensions under cyclic shear, focusing on three main themes: robustness, structure, and overdriving. We show that multiple transient memories are a robust feature independent of many details of the model. The steady-state spatial distribution of the particles is sensitive to the driving algorithm; nonetheless, the memory formation is independent of such a change in particle correlations. Finally, we demonstrate that overdriving provides another means for controlling memory formation and retention.

© American Physical Society (APS) [Multiple transient memories in sheared suspensions: Robustness, structure, and routes to plasticity. Physical Review E 88, 3 (2013)]

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Work Title Multiple transient memories in sheared suspensions: Robustness, structure, and routes to plasticity
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Open Access
Creators
  1. Nathan C. Keim
  2. Joseph D. Paulsen
  3. Sidney R. Nagel
License In Copyright (Rights Reserved)
Work Type Article
Publisher
  1. Physical Review E
Publication Date September 20, 2013
Publisher Identifier (DOI)
  1. https://doi.org/10.1103/PhysRevE.88.032306
Deposited February 03, 2024

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Version 1
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  • Created
  • Added 1307.1184-2.pdf
  • Added Creator Nathan C. Keim
  • Added Creator Joseph D. Paulsen
  • Added Creator Sidney R. Nagel
  • Published
  • Updated