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Minimal formulation of the linear spatial analysis of capillary jets: Validity of the two-mode approach

  • H. González
    ,
  • P. A. Vazquez
    ,
  • F. J. García
    ,
Scholary Output:
Contribution to journal
Article
Peer-review

Open access

Abstract

A rigorous and complete formulation of the linear evolution of harmonically stimulated capillary jets should include infinitely many spatial modes to account for arbitrary exit conditions [J. Guerrero, J. Fluid Mech. 702, 354 (2012)JFLSA70022-112010.1017/jfm.2012.182]. However, it is not rare to find works in which only the downstream capillary dominant mode, the sole unstable one, is retained, with amplitude determined by the jet deformation at the exit. This procedure constitutes an oversimplification, unable to handle a flow rate perturbation without jet deformation at the exit (the most usual conditions). In spite of its decaying behavior, the other capillary mode (subdominant) must be included in what can be called a "minimal linear formulation." Deformation and mean axial velocity amplitudes at the jet exit are the two relevant parameters to simultaneously find the amplitudes of both capillary modes. Only once these amplitudes are found, the calculation of the breakup length may be eventually simplified by disregarding the subdominant mode. Simple recipes are provided for predicting the breakup length, which are checked against our own numerical simulations. The agreement is better than in previous attempts in the literature. Besides, the limits of validity of the linear formulation are explored in terms of the exit velocity amplitude, the wave number, the Weber number, and the Ohnesorge number. Including the subdominant mode extends the range of amplitudes for which the linear model gives accurate predictions, the criterion for keeping this mode being that the breakup time must be shorter than a given formula. It has been generally assumed that the shortest intact length happens for the stimulation frequency with the highest growth rate. However, we show that this correlation is not strict because the amplitude of the dominant mode has a role in the breakup process and it depends on the stimulation frequency.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Article number

044802

Journal (Volume, Issue Number)

Physical Review Fluids (Volume 3, Issue 4)

Publication milestones

  • Published - 04/18/2018

Publication status

Published - 04/18/2018

Publication IDs

  • Scopus: 85047070035

Publication metrics

Metrics

Scopus
citations
SciVal
FWCI
0.42
SciVal
Author count
4
SciVal
citations
3
SciVal
Paper percentile
56
Fractional count
1
Fractional count
0.25
Fractional count
3
Fractional count
0.75
Fractional count
1
Fractional count
1

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Citation count
4
Captures
4

Funding Details

This work was supported by two Spanish public organizations: by the Ministerio de Economía, Industria y Competitividad, under Contract No. FIS2014-25161 and by the Junta de Andalucía under Contract No. P11-FQM-7919.