Turnover generates outward flows from defect cores that overcome elastic attraction, stabilizing topological defects in compressible active polar fluids and producing lattices, foams, and vortex glasses.
Active Turbulence
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
Active fluids exhibit spontaneous flows with complex spatiotemporal structure, which have been observed in bacterial suspensions, sperm cells, cytoskeletal suspensions, self-propelled colloids, and cell tissues. Despite occurring in the absence of inertia, chaotic active flows are reminiscent of inertial turbulence, and hence they are known as active turbulence. Here, we survey the field, providing a unified perspective over different classes of active turbulence. To this end, we divide our review in sections for systems with either polar or nematic order, and with or without momentum conservation (wet/dry). Comparing to inertial turbulence, we highlight the emergence of power-law scaling with either universal or non-universal exponents. We also contrast scenarios for the transition from steady to chaotic flows, and we discuss the absence of energy cascades. We link this feature to both the existence of intrinsic length scales and the self-organized nature of energy injection in active turbulence, which are fundamental differences with inertial turbulence. We close by outlining the emerging picture, remaining challenges, and future directions.
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fields
physics.bio-ph 1years
2025 1verdicts
CONDITIONAL 1roles
background 1polarities
unclear 1representative citing papers
citing papers explorer
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Defect states in compressible active polar fluids with turnover
Turnover generates outward flows from defect cores that overcome elastic attraction, stabilizing topological defects in compressible active polar fluids and producing lattices, foams, and vortex glasses.