Microstructural smoothed particle hydrodynamics model and simulations of discontinuous shear-thickening fluids

Author:

Angerman Peter12ORCID,Prasanna Kumar Sagaya S.2ORCID,Seto Ryohei345ORCID,Sandnes Bjornar1ORCID,Ellero Marco267ORCID

Affiliation:

1. Complex Fluids Research Group, Department of Chemical Engineering, Swansea University 1 , Swansea SA1 8EN, United Kingdom

2. Basque Center for Applied Mathematics (BCAM) 2 , Alameda de Mazarredo 14, 48009 Bilbao, Spain

3. Wenzhou Key Laboratory of Biomaterials and Engineering, Wenzhou Institute, University of Chinese Academy of Sciences 3 , Wenzhou 325000, China

4. Oujiang Laboratory (Zhejiang Lab for Regenerative Medicine, Vision and Brain Health) 4 , Wenzhou 325000, China

5. Graduate School of Information Science, University of Hyogo 5 , Kobe 650-0047, Japan

6. IKERBASQUE, Basque Foundation for Science 6 , Calle de María Díaz de Haro 3, 48013 Bilbao, Spain

7. Zienkiewicz Centre for Computational Engineering (ZCCE), Swansea University 7 , Bay Campus, Swansea SA1 8EN, United Kingdom

Abstract

Despite the recent interest in the discontinuous shear-thickening (DST) behavior, few computational works tackle the rich hydrodynamics of these fluids. In this work, we present the first implementation of a microstructural DST model in smoothed particle hydrodynamic (SPH) simulation. The scalar model was implemented in an SPH scheme and tested in two flow geometries. Three distinct ratios of local to non-local microstructural effects were probed: zero, moderate, and strong non-locality. Strong and moderate cases yielded excellent agreement with flow curves constructed via the Wyart–Cates (WC) model, with the moderate case exhibiting banding patterns. We demonstrate that a local model is prone to a stress-splitting instability, resulting in discontinuous stress fields and poor agreement with the WC model. The mechanism of stress splitting has been explored and contextualized by the interaction of local microstructure evolution and the stress-control scheme. Analytic solutions for a body-force-driven DST channel flow have been derived and used to validate the SPH simulations with excellent agreement in velocity profiles. Simulations carried out at increasing driving forces exhibited a decrease in flow. We showed that even the simple scalar model can capture some of the key properties of DST materials, laying the foundation for further SPH study of instabilities and pattern formation.

Publisher

AIP Publishing

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