TY - JOUR
T1 - Scalable effective electrorheological simulation based on ensembles
AU - Li, Zuyang
AU - Wei, Hua
AU - Liu, Shi
AU - Xia, Menghan
AU - Guo, Bo
AU - Huang, Yingzhou
AU - Yu, Hua
AU - Qian, Xiaofeng
AU - Wen, Weijia
N1 - Publisher Copyright:
© 2025 American Physical Society.
PY - 2025/3
Y1 - 2025/3
N2 - A method for simulating electrorheological (ER) fluids is developed using LAMMPS (large-scale atomic, molecular massively parallel simulator) molecular dynamics simulations, aiming to model and analyze the microstructure and rheological behavior of ER fluids under an electric field. The results demonstrate that our simulation accurately captures the microstructural changes in ER fluids, and the simulation data show an impressively high level of consistency when compared directly with experimental data. The main innovation lies in our simultaneous consideration of dipole interactions, harmonic effects of ER particles, and the contact effect of electrode plates. The contact effect model is demonstrated in detail in our simulations of the chain formation process and the shear process of ER particles in ER fluids, accompanied by corresponding experimental comparisons. Our simulations provide insights into the microscopic mechanisms of ER fluids and establish a theoretical foundation for the development of smart materials and rheological devices.
AB - A method for simulating electrorheological (ER) fluids is developed using LAMMPS (large-scale atomic, molecular massively parallel simulator) molecular dynamics simulations, aiming to model and analyze the microstructure and rheological behavior of ER fluids under an electric field. The results demonstrate that our simulation accurately captures the microstructural changes in ER fluids, and the simulation data show an impressively high level of consistency when compared directly with experimental data. The main innovation lies in our simultaneous consideration of dipole interactions, harmonic effects of ER particles, and the contact effect of electrode plates. The contact effect model is demonstrated in detail in our simulations of the chain formation process and the shear process of ER particles in ER fluids, accompanied by corresponding experimental comparisons. Our simulations provide insights into the microscopic mechanisms of ER fluids and establish a theoretical foundation for the development of smart materials and rheological devices.
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U2 - 10.1103/PhysRevE.111.035408
DO - 10.1103/PhysRevE.111.035408
M3 - Article
C2 - 40247484
AN - SCOPUS:105000611085
SN - 2470-0045
VL - 111
JO - Physical Review E - Statistical, Nonlinear, and Soft Matter Physics
JF - Physical Review E - Statistical, Nonlinear, and Soft Matter Physics
IS - 3
M1 - 035408
ER -