Nematic order condensation and topological defects in inertial active nematics
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Nematic order condensation and topological defects in inertial active nematics. / Saghatchi, Roozbeh; Yildiz, Mehmet; Doostmohammadi, Amin.
In: Physical Review E, Vol. 106, No. 1, 014705, 25.07.2022.Research output: Contribution to journal › Journal article › peer-review
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TY - JOUR
T1 - Nematic order condensation and topological defects in inertial active nematics
AU - Saghatchi, Roozbeh
AU - Yildiz, Mehmet
AU - Doostmohammadi, Amin
PY - 2022/7/25
Y1 - 2022/7/25
N2 - Living materials at different length scales manifest active nematic features such as orientational order, nematic topological defects, and active nematic turbulence. Using numerical simulations we investigate the impact of fluid inertia on the collective pattern formation in active nematics. We show that an incremental increase in inertial effects due to reduced viscosity results in gradual melting of nematic order with an increase in topological defect density before a discontinuous transition to a vortex-condensate state. The emergent vortex-condensate state at low enough viscosities coincides with nematic order condensation within the giant vortices and the drop in the density of topological defects. We further show flow field around topological defects is substantially affected by inertial effects. Moreover, we demonstrate the strong dependence of the kinetic energy spectrum on the inertial effects, recover the Kolmogorov scaling within the vortex-condensate phase, but find no evidence of universal scaling at higher viscosities. The findings reveal complexities in active nematic turbulence and empha-size the important cross-talk between active and inertial effects in setting flow and orientational organization of active particles.
AB - Living materials at different length scales manifest active nematic features such as orientational order, nematic topological defects, and active nematic turbulence. Using numerical simulations we investigate the impact of fluid inertia on the collective pattern formation in active nematics. We show that an incremental increase in inertial effects due to reduced viscosity results in gradual melting of nematic order with an increase in topological defect density before a discontinuous transition to a vortex-condensate state. The emergent vortex-condensate state at low enough viscosities coincides with nematic order condensation within the giant vortices and the drop in the density of topological defects. We further show flow field around topological defects is substantially affected by inertial effects. Moreover, we demonstrate the strong dependence of the kinetic energy spectrum on the inertial effects, recover the Kolmogorov scaling within the vortex-condensate phase, but find no evidence of universal scaling at higher viscosities. The findings reveal complexities in active nematic turbulence and empha-size the important cross-talk between active and inertial effects in setting flow and orientational organization of active particles.
KW - TURBULENCE
KW - STATISTICS
KW - VISCOSITY
KW - MECHANICS
KW - DYNAMICS
U2 - 10.1103/PhysRevE.106.014705
DO - 10.1103/PhysRevE.106.014705
M3 - Journal article
C2 - 35974636
VL - 106
JO - Physical Review E
JF - Physical Review E
SN - 2470-0045
IS - 1
M1 - 014705
ER -
ID: 316746602