Crossref Citations
This article has been cited by the following publications. This list is generated based on data provided by
Crossref.
Zimmermann, Walter
Painter, Ben
and
Behringer, Robert
1998.
Evolution of Spontaneous Structures in Dissipative Continuous Systems.
Vol. 55,
Issue. ,
p.
266.
Kim, Eun-Jin
Hughes, David W.
and
Soward, Andrew M.
1999.
An investigation into high conductivity dynamo action driven by rotating convection.
Geophysical & Astrophysical Fluid Dynamics,
Vol. 91,
Issue. 3-4,
p.
303.
Helm, Sabrina
2000.
Kundenempfehlungen als Marketinginstrument.
p.
311.
Pino, D.
Net, M.
Sánchez, J.
and
Mercader, I.
2001.
Thermal Rossby waves in a rotating annulus. Their stability.
Physical Review E,
Vol. 63,
Issue. 5,
Shtern, Vladimir
Zimin, Valery
and
Hussain, Fazle
2001.
Analysis of centrifugal convection in rotating pipes.
Physics of Fluids,
Vol. 13,
Issue. 8,
p.
2296.
Chen, C.X.
and
Zhang, Keke
2002.
Nonlinear Convection in a Rotating Annulus with a Finite Gap.
Geophysical & Astrophysical Fluid Dynamics,
Vol. 96,
Issue. 6,
p.
499.
Revallo, M.
and
Ševčovič, D.
2002.
On the Ginzburg–Landau system of complex modulation equations for a rotating annulus with radial magnetic field.
Physica D: Nonlinear Phenomena,
Vol. 161,
Issue. 1-2,
p.
116.
Busse, F. H.
2002.
Convective flows in rapidly rotating spheres and their dynamo action.
Physics of Fluids,
Vol. 14,
Issue. 4,
p.
1301.
Ramezani, Sepehr
Aniss, Saı̈d
and
Souhar, Mohamed
2002.
Effets des forces de Coriolis sur le seuil convectif stationnaire d'une couche liquide confinée en cellule de Hele–Shaw annulaire en rotation
.
Comptes Rendus. Mécanique,
Vol. 330,
Issue. 9,
p.
633.
NET, MARTA
GARCIA, FERRAN
and
SÁNCHEZ, JUAN
2008.
On the onset of low-Prandtl-number convection in rotating spherical shells: non-slip boundary conditions.
Journal of Fluid Mechanics,
Vol. 601,
Issue. ,
p.
317.
Souhar, K.
and
Aniss, S.
2012.
Effect of Coriolis force on the thermosolutal convection threshold in a rotating annular Hele-Shaw cell.
Heat and Mass Transfer,
Vol. 48,
Issue. 1,
p.
175.
2012.
Rotating Thermal Flows in Natural and Industrial Processes.
p.
473.
Herrada, Miguel
and
Shtern, Vladimir
2014.
Air-water centrifugal convection.
Physics of Fluids,
Vol. 26,
Issue. 7,
Avramenko, A. A.
Tyrinov, A. I.
Shevchuk, I. V.
and
Dmitrenko, N. P.
2016.
Dean instability of nanofluids with radial temperature and concentration non-uniformity.
Physics of Fluids,
Vol. 28,
Issue. 3,
Avramenko, A.A.
Tyrinov, A.I.
Shevchuk, I.V.
and
Dmitrenko, N.P.
2016.
Centrifugal instability of nanofluids with radial temperature and concentration non-uniformity between co-axial rotating cylinders.
European Journal of Mechanics - B/Fluids,
Vol. 60,
Issue. ,
p.
90.
Avramenko, Andriy A.
and
Shevchuk, Igor V.
2022.
Modelling of Convective Heat and Mass Transfer in Nanofluids with and without Boiling and Condensation.
p.
227.
Echchadli, Mourad
and
Aniss, Saïd
2022.
Thermal convection instability of two miscible viscous fluids in a rotating annular Hele–Shaw cell.
Physics of Fluids,
Vol. 34,
Issue. 8,
Andreev, V. K.
Vakhrameev, I. V.
and
Magdenko, E. P.
2022.
Heat Convection in a Rotating Pipe.
Journal of Applied and Industrial Mathematics,
Vol. 16,
Issue. 2,
p.
175.