REVIEW 3 major objections 3 minor 47 references
Orientation Dynamics of Rigid Fibers in a Microfluidic Burgers-like Vortex
T0 review · 3 major / 3 minor · reviewed 2026-08-04 · deepseek-v4-flash
Pith's one-line read In a stretched vortex, rigid fibers exponentially align with the vortex axis while precessing at the local fluid rotation rate, a decoupled pair of motions captured by Jeffery's equations.
desk verdict Clean analytic result for fiber alignment in a Burgers vortex, with experimental evidence that is suggestive but less precise than the paper's inertial claims. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The central machinery is the combination of Jeffery's equation for the tumbling of an axisymmetric particle with the Burgers vortex velocity field, which superposes an axisymmetric extensional strain (u_r = −γr, u_x = 2γx) and a rotational component with Gaussian vorticity concentrated near the axis. Projecting Jeffery's equation onto the polar angle β yields an autonomous ODE that is independent of vorticity and radius, producing the exact exponential relaxation; projecting onto the azimuthal angle gives φ̇ = ω. This separation of strain-driven alignment and vorticity-driven precession is the load-bearing structural insight, and the appendix shows that breaking axisymmetry (elliptic vortex)
What would settle it
Measure the alignment relaxation rate for fibers of several aspect ratios in a microfluidic Burgers-like vortex whose strain rate γ is measured independently by PIV or by tracer trajectories; if tanβ does not decay exponentially with rate 3κγ, or if fibers with different initial β0 do not collapse onto the same exponential curve, the central claim is falsified. A second check: confirm that the fiber precession rate exactly equals the local fluid vorticity once the fiber is in the core; any systematic lag beyond finite-size corrections would contradict the decoupling.
Extended reading notes
Core claim
Proceeding from the Jeffery equation for a prolate particle and the analytical Burgers vortex velocity field, the authors show that the polar angle β obeys dβ/dt = −(3κγ/2) sin 2β, independent of vorticity and radial position, so tanβ(t) = tanβ0 exp(−3κγt). The azimuthal angle φ instead follows φ̇ = ω, the local fluid rotation rate. Strain alone drives alignment toward the vortex axis on a timescale (3κγ)^{-1}; vorticity alone drives precession around it; the two are fully decoupled. The same exponential decay of tanβ and the same fiber rotation rate (matching the fluid rotation) are observed in microfluidic experiments and in simulations, and the fitted alignment rates agree with independen
Load-bearing premise
The Jeffery description assumes the fiber experiences the undisturbed velocity gradient evaluated at its center of mass, with the flow locally uniform over the fiber length; if this local uniformity fails—for fibers whose length approaches the vortex core size—the exponential alignment law and precession rate would break down.
Editorial extensions
If this is right
- In any flow that locally resembles a Burgers vortex, rigid fibers will exponentially align with the vortex axis on a timescale (3κγ)^{-1}, independent of their initial orientation or how far they entered the core.
- Because alignment and precession are decoupled, the full orientation state of a fiber is specified by two scalar quantities: the strain rate γ and the vorticity ω it samples along its trajectory.
- The measured alignment rate provides a direct experimental estimate of the local strain rate in the vortex core, a quantity otherwise hard to obtain in microfluidic flows.
- Finite fiber length and particle inertia only weakly perturb the orientational dynamics: longer fibers rotate slightly slower and align slightly faster than the local Jeffery prediction, but the robust orientational attractor is preserved.
- The vortex axis acts as a stable orientational attractor, in contrast to the marginally stable closed Jeffery orbits of simple shear, making the orientation dynamics robust to weak perturbations from inertia, shape, and flow imperfections.
Reading between the lines
- Because the alignment rate is independent of initial conditions and local vorticity, fibers could serve as microrheological probes of strain rate in vortical regions of turbulence or in industrial mixers, simply by imaging their relaxation toward the local axis.
- The robust attractor suggests that in turbulent flows, fibers may spend significantly more time aligned with vortex tubes than in strain-dominated regions; a statistical model of fiber orientation could treat vortex tubes as absorbing orientational states rather than evolving through full Jeffery dynamics.
- A natural testable extension: flexible fibers should retain the same precession rate but exhibit a modified alignment rate that depends on bending stiffness; the paper's discussion of flexibility points to this but does not derive it.
- The decoupling could simplify subgrid models of fiber-laden turbulence: advect the fiber orientation with the local vorticity and apply a scalar relaxation toward the vorticity axis at rate 3κγ, bypassing the full orientation tensor evolution.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper investigates the orientation dynamics of rigid neutrally buoyant fibers in a microfluidic cross-slot geometry that produces a stationary Burgers-like vortex. Combining Jeffery's equation for a slender body with the analytical Burgers vortex velocity field, the authors derive an exponential alignment law tan β(t) = tan β₀ e^{−3κγt} (Eq. 3.10) and a uniform azimuthal precession φ̇ = ω (Eq. 3.11), showing that alignment and precession are decoupled. They compare these predictions with bead-spring simulations (with Re_p ≪ 1) and microfluidic experiments spanning Re_p ≈ 0.05–12, claiming that the orientation dynamics are accurately captured by the Jeffery description despite finite size, finite inertia, and deviations from an ideal Burgers vortex. The paper also proposes an elliptic stretched-vortex model in Appendix A to explain residual oscillations in the alignment angle.
Significance. The central analytical prediction is simple, falsifiable, and parameter-free given the Burgers velocity field and the fiber aspect ratio: the alignment time scale is (3κγ)^{−1} and the precession rate equals the local fluid vorticity. This is a valuable benchmark for understanding fiber orientation in stretched vortices, which are building blocks of turbulent flows. The combination of an exact derivation, numerical simulation, and microfluidic experimentation is appropriate, and the independent estimation of γ from base-flow PIV and simulations partially anchors the comparison. However, the strength of the claims about robustness to inertia and finite-size effects currently exceeds what the experimental and numerical evidence supports.
major comments (3)
- [§2.2, §2.3, §4] The treatment of particle Reynolds number is internally inconsistent. §2.2 states Re_p ranges from 0.05 to 12; §2.3 assumes Re_p ≪ 1 in the simulations and acknowledges this 'may appear restrictive'; yet §4 states 'the particle Reynolds number remains small in the present experiments.' Since Eq. (3.10) is derived for a point particle in Stokes flow, its validity at Re_p ≈ 12 is not supported by the simulations, which exclude inertia. The authors should either restrict the main claim to Re_p ≪ 1 or provide a quantitative inertial correction or dedicated high-Re_p simulations.
- [§3.3, Fig. 3(c)] The experimental validation of Eq. (3.10) uses the projected angle θ rather than β, with tan θ = tan β cos φ. The exponential envelope of |tan θ| is modulated by the precession φ, so the fitted slope of the envelope is not a direct test of Eq. (3.10). Moreover, the fit yields γ ≈ 100 s^{-1} against independently measured PIV values of 115–150 s^{-1}, and no error bars or confidence intervals are given. This quantitative mismatch weakens the claim of 'excellent agreement.' Please provide the β reconstruction with uncertainties, or fit the full θ(t) model to the data.
- [§4, Fig. 4] The simulations themselves show systematic finite-size effects: Fig. 4(b,c) display L/r_γ-dependent alignment rates and rotation periods, and Fig. 4(a) shows trajectory deviations from the Burgers streamline r ~ x^{−1/2}. The paper attributes these to finite-size effects but then concludes that Jeffery equations 'provide an accurate description... over the range of particle Reynolds numbers and fiber lengths investigated.' For the longest fibers L/r_γ ≈ 3.3, the local velocity-gradient assumption is questionable. The conclusion should be tempered, and the quantitative range of validity of Eq. (3.10) should be stated explicitly.
minor comments (3)
- [§3.1] The reconstruction of β from the apparent fiber length is mentioned but not described; please provide a brief description or a reference, as the noise level is later used to justify switching to θ.
- [§3.2, Eq. (3.11)] In Eq. (3.4), ω is defined as half the core vorticity, but the text says 'the fluid vorticity tends towards ω'. Clarify the factor 1/2 to avoid confusion.
- [Appendix A] The asymmetry parameter ε is introduced in Eq. (A 3) but the sign convention is not explained. Please state how ε relates to the axisymmetric limit and to the cross-slot geometry.
Circularity Check
No significant circularity: the Jeffery–Burgers derivation is self-contained and independently benchmarked.
full rationale
The central predictive chain is a direct derivation, not a re-labeling of inputs. Equations (3.1) and (3.2) (Jeffery’s equation and the Burgers velocity field) are combined through the angular parametrization (3.5) to obtain dβ/dt = −3κγ sinβ cosβ, whose integral is tanβ(t) = tanβ₀ e^{−3κγt}; the azimuthal result φ̇ = ω follows from the same projection. No fitted parameter is inserted into this derivation. The strain rate γ used in the comparison is obtained independently from base-flow vorticity profiles (Fig. 1d, μ-PIV and single-phase DNS), while the exponential decay slope is measured from orientation trajectories in §3.3; the agreement tests the functional form and the factor 3κ rather than assuming them. The self-citations (Aulnette et al. 2025 for the cross-slot flow field and experimental setup; Delmotte et al. 2015, Li et al. 2024 for the bead model) provide reproducible simulation infrastructure and are not used as an unverified uniqueness theorem or as the sole justification of the central claim. The paper’s own stated limitations—Re_p up to 12 while simulations assume Re_p ≪ 1, the local-velocity-gradient approximation for long fibers, and a ~15–30% discrepancy between fitted and PIV γ—weaken the strength of the validation but do not constitute circular reasoning: these are concerns about applicability and uncertainty, not about a prediction reducing to a fit by construction.
Assumptions & free parameters
free parameters (2)
- strain rate γ (via Burgers core radius r_γ) =
≈ 100–150 s⁻¹ (experiments/PIV ≈100 s⁻¹, simulations ≈120 s⁻¹, base-flow 115–150 s⁻¹)
- core vorticity magnitude ω₀ =
36 (dimensionless)
assumptions (5)
- domain assumption Jeffery's equation (3.1) governs the orientation of an inertialess neutrally buoyant spheroid in a viscous flow
- domain assumption The base flow is a stationary axisymmetric Burgers vortex with velocity field (3.2)
- domain assumption Near-core approximation r ≪ r_γ (Eq. 3.4) so u_φ ≈ (Γγ/4πν) r and ω ≈ Γγ/4πν
- domain assumption Bead-spring model with Rotne-Prager-Yamakawa mobility correctly captures the fiber-fluid hydrodynamic interactions and the flow around the fiber is viscous (Re_p ≪ 1)
- domain assumption The apparent projected angle θ can stand in for β in the experimental analysis because tanθ = tanβ cosφ and the envelope of |tanθ| decays like |tanβ|
Cite this review
Pith. "Pith review of Orientation Dynamics of Rigid Fibers in a Microfluidic Burgers-like Vortex." pith.science (2026). https://pith.science/paper/4TLJGK3D
@misc{pith2026260714298,
author = {Pith},
title = {Pith review of: Orientation Dynamics of Rigid Fibers in a Microfluidic Burgers-like Vortex},
year = {2026},
howpublished = {\url{https://pith.science/paper/4TLJGK3D}},
note = {Machine review of arXiv:2607.14298}
}
read the original abstract
Fiber suspensions are common in biological and environmental flows and are widely used in industrial applications. Fiber transport and orientation dynamics are affected by interactions with the surrounding fluid and strongly depend on the nature of the flow. The complexity of realistic flows, which are often heterogeneous or time-dependent, hinders a full understanding of fiber dynamics. In this study, we combine microfluidic experiments, theory and numerical simulations to investigate the orientation dynamics of rigid neutrally buoyant fibers in a well-controlled model system, a streamwise stationary vortex at moderate Reynolds number. Despite the three-dimensional nature of the flow, the orientation dynamics are remarkably simple: the fiber orientation is accurately described by Jeffery equations coupled with the Burgers-vortex model. We show that fibers undergo uniform precession about the vortex axis driven by fluid vorticity while simultaneously aligning with the latter due to strain in the vortex core. These two motions are decoupled, with the alignment timescale determined by the local strain rate and the fiber aspect ratio. Finite particle size and inertia induce weak deviations from the base flow streamlines while leaving the orientational dynamics largely unaffected. These results establish a simple framework for understanding the behavior of elongated particles in stretched vortex flows, which constitute key building blocks of turbulence
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Works this paper leans on
-
[1]
Langmuir 22 (2), 765--774
Alargova, Rossitza G , Paunov, Vesselin N & Velev, Orlin D 2006 Formation of polymer microrods in shear flow by emulsification- solvent attrition mechanism . Langmuir 22 (2), 765--774
2006
-
[2]
, Shen, Amy Q
Aulnette, Marine , Burshtein, Noa , Banaei, Arash Alizad , Brandt, Luca , Haward, Simon J. , Shen, Amy Q. , Delmotte, Blaise & Lindner, Anke 2025 Transport of spherical microparticles in a three-dimensional vortex flow . Phys. Rev. Fluids 10 , 124201
2025
-
[3]
, Chan, S.T
Burshtein, N. , Chan, S.T. , Toda-Peters, K. , Shen, A.Q. & Haward, S.J. 2019 3 D -printed glass microfluidics for fluid dynamics and rheology . Current Opinion in Colloid & Interface Science 43 , 1--14
2019
-
[4]
, Zografos, K
Burshtein, N. , Zografos, K. , Shen, A.Q. , Poole, R.J. & Haward, S.J. 2017 Inertioelastic flow instability at a stagnation point . Physical Review X 7 (4), 041039
2017
-
[5]
, Zografos, K
Burshtein, N. , Zografos, K. , Shen, A.Q. , Poole, R.J. & Haward, S.J. 2021 Periodic fluctuations of streamwise vortices in inertia-dominated intersecting flows . Physics of Fluids 33 (1)
2021
-
[6]
Journal of Fluid Mechanics 954 , A3
Clark, Laura K , DiBenedetto, Michelle H , Ouellette, Nicholas T & Koseff, Jeffrey R 2023 Dispersion of finite-size, non-spherical particles by waves and currents . Journal of Fluid Mechanics 954 , A3
2023
-
[7]
Journal of Computational Physics 286 , 14--37
Delmotte, Blaise , Climent, Eric & Plourabou \'e , Franck 2015 A general formulation of bead models applied to flexible fibers and active filaments at low reynolds number . Journal of Computational Physics 286 , 14--37
2015
-
[8]
Journal of Fluid Mechanics 979 , A42
Di Giusto, Davide , Bergougnoux, Laurence , Marchioli, Cristian & Guazzelli, \'E lisabeth 2024 Influence of small inertia on J effery orbits . Journal of Fluid Mechanics 979 , A42
2024
Show all 47 references
-
[9]
Annual Review of Fluid Mechanics 58
DiBenedetto, Michelle H 2025 The fluid mechanics of ocean microplastics . Annual Review of Fluid Mechanics 58
2025
-
[10]
Annual Review of Fluid Mechanics 51 (1), 539--572
Du Roure, Olivia , Lindner, Anke , Nazockdast, Ehssan N & Shelley, Michael J 2019 Dynamics of flexible fibers in viscous flows and fluids . Annual Review of Fluid Mechanics 51 (1), 539--572
2019
-
[11]
Physical Review E 91 (4), 041002
Einarsson, Jonas , Candelier, F , Lundell, Fredrik , Angilella, JR & Mehlig, B 2015 Effect of weak fluid inertia upon J effery orbits . Physical Review E 91 (4), 041002
2015
-
[12]
Physics of Fluids 28 (1)
Einarsson, J , Mihiretie, BM , Laas, A , Ankardal, S , Angilella, JR , Hanstorp, D & Mehlig, B 2016 Tumbling of asymmetric microrods in a microchannel flow . Physics of Fluids 28 (1)
2016
-
[13]
Guazzelli, Elisabeth & Morris, Jeffrey F 2011 A physical introduction to suspension dynamics\/ , , vol. 45 . Cambridge University Press
2011
-
[14]
Physical Review E 93 (3), 031101
Haward, Simon J , Poole, Robert J , Alves, Manuel A , Oliveira, Paulo J , Goldenfeld, Nigel & Shen, Amy Q 2016 Tricritical spiral vortex instability in cross-slot flow . Physical Review E 93 (3), 031101
2016
-
[15]
, Choi, S-E
Hur, S.C. , Choi, S-E. , Kwon, S. & Carlo, D. Di 2011 Inertial focusing of non-spherical microparticles . Applied Physics Letters 99 (4), 044101
2011
-
[16]
, Candelier, F
Ibarra, E. , Candelier, F. & Verhille, G. 2026 Trapping of a flexible disk in a vortical flow: Reconstruction process, measurements, and theory . Physical Review Fluids 11 (4), 044302
2026
-
[17]
Journal of Fluid Mechanics 1032 , A7
Islam, Rubaiyat Bin , Morshed, Adnan , Cortez, Ricardo & Fauci, Lisa 2026 Dancing fibres in a microscale burgers-like vortex . Journal of Fluid Mechanics 1032 , A7
2026
-
[18]
Proceedings of the Royal Society of London
Jeffery, George Barker 1922 The motion of ellipsoidal particles immersed in a viscous fluid . Proceedings of the Royal Society of London. Series A, Containing papers of a mathematical and physical character 102 (715), 161--179
1922
-
[19]
, Trowbridge, John H
Jumars, Peter A. , Trowbridge, John H. , Boss, Emmanuel & Karp-Boss, Lee 2009 Turbulence-plankton interactions: A new cartoon . Marine Ecology 30 , 133--150
2009
-
[20]
Europhysics Letters 126 (4), 44003
Junot, Gaspard , Figueroa-Morales, Nuris , Darnige, Thierry , Lindner, Anke , Soto, Rodrigo , Auradou, Harold & Cl \'e ment, Eric 2019 Swimming bacteria in poiseuille flow: The quest for active B retherton- J effery trajectories . Europhysics Letters 126 (4), 44003
2019
-
[21]
Journal of fluid mechanics 819 , 540--561
Lashgari, Iman , Ardekani, Mehdi Niazi , Banerjee, Indradumna , Russom, Aman & Brandt, Luca 2017 Inertial migration of spherical and oblate particles in straight ducts . Journal of fluid mechanics 819 , 540--561
2017
-
[22]
Proceedings of the National Academy of Sciences 123 (6), e2520537123
Li, Zhibo , Bielinski, Cl \'e ment , Lindner, Anke , Delmotte, Blaise & Du Roure, Olivia 2026 A microfluidic band-pass filter for flexible fiber separation . Proceedings of the National Academy of Sciences 123 (6), e2520537123
2026
-
[23]
Physical Review Fluids 9 (4), 044302
Li, Zhibo , Bielinski, Cl \'e ment , Lindner, Anke , Du Roure, Olivia & Delmotte, Blaise 2024 Dynamics of rigid fibers interacting with triangular obstacles in microchannel flows . Physical Review Fluids 9 (4), 044302
2024
-
[24]
Proceedings of the National Academy of Sciences 115 (38), 9438--9443
Liu, Yanan , Chakrabarti, Brato , Saintillan, David , Lindner, Anke & Du Roure, Olivia 2018 Morphological transitions of elastic filaments in shear flow . Proceedings of the National Academy of Sciences 115 (38), 9438--9443
2018
-
[25]
Annual Review of Fluid Mechanics 43 (1), 195--217
Lundell, Fredrik , S \"o derberg, L Daniel & Alfredsson, P Henrik 2011 Fluid mechanics of papermaking . Annual Review of Fluid Mechanics 43 (1), 195--217
2011
-
[26]
Physical Review Fluids 3 (10), 104102
Marchetti, Benjamin , Raspa, Veronica , Lindner, Anke , Du Roure, Olivia , Bergougnoux, Laurence , Guazzelli, \'E lisabeth & Duprat, Camille 2018 Deformation of a flexible fiber settling in a quiescent viscous fluid . Physical Review Fluids 3 (10), 104102
2018
-
[27]
Annual Review of Fluid Mechanics 58
Marchioli, Cristian , Rosti, Marco Edoardo & Verhille, Gautier 2025 Flexible fibers in turbulence . Annual Review of Fluid Mechanics 58
2025
-
[28]
, Hermans, M
Meineke, G. , Hermans, M. , Klos, J. , Lenenbach, A. & Noll, R. 2016 A microfluidic opto-caloric switch for sorting of particles by using 3d-hydrodynamic focusing based on sle fabrication capabilities . Lab on a Chip 16 (5), 820--828
2016
-
[29]
& Voth, Greg A
Ni, Rui , Kramel, Stefan , Ouellette, Nicholas T. & Voth, Greg A. 2015 Measurements of the coupling between the tumbling of rods and the velocity gradient tensor in turbulence . Journal of Fluid Mechanics 766 , 202--225
2015
-
[30]
& Voth, Greg A
Ni, Rui , Ouellette, Nicholas T. & Voth, Greg A. 2014 Alignment of vorticity and rods with lagrangian fluid stretching in turbulence . Journal of Fluid Mechanics 743
2014
-
[31]
Physical Review Fluids 6 (4), 044610
Oehmke, Theresa B , Bordoloi, Ankur D , Variano, Evan & Verhille, Gautier 2021 Spinning and tumbling of long fibers in isotropic turbulence . Physical Review Fluids 6 (4), 044610
2021
-
[32]
Physical review letters 109 (13), 134501
Parsa, Shima , Calzavarini, Enrico , Toschi, Federico & Voth, Greg A 2012 Rotation rate of rods in turbulent fluid flow . Physical review letters 109 (13), 134501
2012
-
[33]
Annual Review of Fluid Mechanics 24 (1), 313--358
Pedley, TJ & Kessler, John O 1992 Hydrodynamic phenomena in suspensions of swimming microorganisms . Annual Review of Fluid Mechanics 24 (1), 313--358
1992
-
[34]
New journal of physics 13 (9), 093030
Pumir, Alain & Wilkinson, Michael 2011 Orientation statistics of small particles in turbulence . New journal of physics 13 (9), 093030
2011
-
[35]
Studies in applied mathematics 70 (2), 163--181
Robinson, AC & Saffman, PG 1984 Stability and structure of stretched vortices . Studies in applied mathematics 70 (2), 163--181
1984
-
[36]
Nature communications 12 (1), 106
Ross, Peter S , Chastain, Stephen , Vassilenko, Ekaterina , Etemadifar, Anahita , Zimmermann, Sarah , Quesnel, Sarah-Ann , Eert, Jane , Solomon, Eric , Patankar, Shreyas , Posacka, Anna M & others 2021 Pervasive distribution of polyester fibres in the arctic ocean is driven by...
2021
-
[37]
Journal of Computational Physics 424 , 109846
Schoeller, Simon F , Townsend, Adam K , Westwood, Timothy A & Keaveny, Eric E 2021 Methods for suspensions of passive and active filaments . Journal of Computational Physics 424 , 109846
2021
-
[38]
New Journal of Physics 24 (1), 013013
S owicka, Agnieszka M , Xue, Nan , Sznajder, Pawe , Nunes, Janine K , Stone, Howard A & Ekiel-Je \.z ewska, Maria L 2022 Buckling of elastic fibers in a shear flow . New Journal of Physics 24 (1), 013013
2022
-
[39]
Soft Matter 18 (47), 8931--8944
Tanasijevi \'c , Ivan & Lauga, Eric 2022 Microswimmers in vortices: dynamics and trapping . Soft Matter 18 (47), 8931--8944
2022
-
[40]
Environmental Science & Technology
Testa, Giovanni , Suaria, Giuseppe , Paluselli, Andrea , La Ragione, Salom \'e , Gambale, Michela , Berta, Maristella , Rivera, Lorena A , Mahadevan, Amala , Middleton, Leo , Falcieri, Francesco M & others 2026 Microfibers accumulation within a mediterranean submesoscale cyclo...
2026
-
[41]
Advanced Materials p
Thouvenot, Elliot , Charnay, Laura , Burshtein, Noa , Guigner, Jean-Michel , Dec, L \'e onie , Loew, Damarys , Silva, Amanda KA , Lindner, Anke & Wilhelm, Claire 2024 High-yield bioproduction of extracellular vesicles from stem cell spheroids via millifluidic vortex transport ...
2024
-
[42]
Micromachines 12 (3), 277
Tohme, Tohme , Magaud, Pascale & Baldas, Lucien 2021 Transport of non-spherical particles in square microchannel flows: A review . Micromachines 12 (3), 277
2021
-
[43]
Voth, Greg A & Soldati, Alfredo 2017 Anisotropic particles in turbulence . Annu. Rev. Fluid Mech 49 (1), 249--276
2017
-
[44]
, Zuk, Pawel J
Wajnryb, Eligiusz , Mizerski, Krzysztof A. , Zuk, Pawel J. & Szymczak, Piotr 2013 Generalization of the R otne– P rager– Y amakawa mobility and shear disturbance tensors . Journal of Fluid Mechanics 731 , R3
2013
-
[45]
Proceedings of the National Academy of Sciences 121 (38), e2405459121
Wang, Ziqi , de Wit, Xander M & Toschi, Federico 2024 Localization--delocalization transition for light particles in turbulence . Proceedings of the National Academy of Sciences 121 (38), e2405459121
2024
-
[46]
Integrative and comparative biology 55 (4), 706--718
Webster, DR , Young, DL & Yen, J 2015 Copepods' response to B urgers' vortex: deconstructing interactions of copepods with turbulence . Integrative and comparative biology 55 (4), 706--718
2015
-
[47]
Soft Matter 15 (29), 5810--5814
Z \"o ttl, Andreas , Klop, Kira E , Balin, Andrew K , Gao, Yongxiang , Yeomans, Julia M & Aarts, Dirk GAL 2019 Dynamics of individual B rownian rods in a microchannel flow . Soft Matter 15 (29), 5810--5814
2019
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