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4 - Modeling and simulation

Published online by Cambridge University Press:  05 July 2014

Frank K. Ko
Affiliation:
University of British Columbia, Vancouver
Yuqin Wan
Affiliation:
University of British Columbia, Vancouver
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Summary

A key objective in electrospinning is generating fibers of nanoscale diameter consistently and reproducibly. Considerable effort has been devoted to understanding how the parameters affect the spinnability and more specifically the diameter of the fibers resulting from the electrospinning process. Many processing parameters that influence the spinnability and the physical properties of nanofibers have been identified. These parameters include process parameters such as electric field strength, flow rate and spinning distance, spinning dope properties including concentration, viscosity and surface tension, etc., the spinning environment factors like humidity and the spinning setup factors such as the diameter of the orifice and the electrospinning angle. Through observation of the electrospinning process and analyzing these parameters, some governing models have been built and simulations of the motion of jet have been carried out. In this chapter, several main existing models and simulation works will be introduced to help readers gain an understanding of the concept of electrospinning.

Electrospinning mechanism

For a long time, the mechanism of electrospinning for forming nanoscaled fibers was believed to be a result of a “split” as seen by the naked eye (Fig. 4.1a). The “splitting” is explained by Doshi and Reneker [1, 2] that, as the jet diameter decreases, the surface charge density increases, resulting in high repulsive forces which split the jet into smaller jets splay. When a high-speed camera was used in the investigation of electrospinning jet, unstable bending, also known as “whipping” of jet, was observed, and the “bending instability” started being widely accepted as the electrospinning mechanism, as shown in Fig. 4.1b. As described [3, 4], the electrospun jet vigorously bent spirally and stretched inside a conical envelope resulting in a huge stretch ratio and a nanoscale diameter.

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Publisher: Cambridge University Press
Print publication year: 2014

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References

Doshi, J., and Reneker, D., “Electrospinning process and applications of electrospun fibers,” Journal of Electrostatics, vol. 35(2), pp. 151–160, 1995.CrossRefGoogle Scholar
Fang, X., and Reneker, D., “DNA fibers by electrospinning,” Journal of Macromolecular Science. Physics, vol. 36(2), pp. 169–173, 1997.CrossRefGoogle Scholar
Reneker, D. H., et al., “Bending instability of electrically charged liquid jets of polymer solutions in electrospinning,” Journal of Applied Physics, vol. 87, p. 4531, 2000.CrossRefGoogle Scholar
Feng, J. J., “The stretching of an electrified non-Newtonian jet: a model for electrospinning,” Physics of Fluids, vol. 14, p. 3912, 2002.CrossRefGoogle Scholar
Taylor, G., “Disintegration of water drops in an electric field,” Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences, vol. 280(1382), pp. 383–397, 1964.CrossRefGoogle Scholar
Taylor, G., “Electrically driven jets,” Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences, vol. 313(1515), pp. 453–475, 1969.CrossRefGoogle Scholar
Hendricks, C., et al., “Photomicrography of electrically sprayed heavy particles,” AIAA J, vol. 2(4), pp. 733–737, 1964.Google Scholar
Hayati, I., Bailey, A. I., and Tadros, T. F., “Investigation into the mechanisms of electrohydrodynamic spraying of liquids,” Journal of Colloid and Interface Science, vol. 117(1), p. 205, 1987.CrossRefGoogle Scholar
Hayati, I., Bailey, A. I., and Tadros, T. F., “Mechanism of stable jet formation in electrohydrodynamic atomization,” Nature, vol. 319(6048), pp. 41–43, 1986.CrossRefGoogle Scholar
Rayleigh, , Philosophical Magazne and Journal, vol. 44, p. 184, 1882.
Rayleigh, , Further Observations Upon Liquid Jets, 1882.
Zeleny, J., “Instability of electrified liquid surfaces,” Physical Review, vol. 10 (Copyright © 2010 The American Physical Society), p. 1, 1917.CrossRefGoogle Scholar
Baumgarten, P., “Electrostatic spinning of acrylic microfibers,” Journal of Colloid and Interface Science, vol. 36(1), 1971.CrossRefGoogle Scholar
Fridrikh, S. V., et al., “Controlling the fiber diameter during electrospinning,” Physical Review Letters, vol. 90 (Copyright © 2010 The American Physical Society), p. 144 502, 2003.CrossRefGoogle ScholarPubMed
Spivak, A. F., and Dzenis, Y. A., “Asymptotic decay of radius of a weakly conductive viscous jet in an external electric field,” Applied Physics Letters, vol. 73(21), pp. 3067–3069, 1998.CrossRefGoogle Scholar
Rutledge, G., et al., “Electrostatic spinning and properties of ultrafine fibers,” National Textile Center Research Briefs-Materials Competency, 2003.
Gañán-Calvo, A. M., “On the theory of electrohydrodynamically driven capillary jets,” Journal of Fluid Mechanics, vol. 335, pp. 165–188, 1997.CrossRefGoogle Scholar
Gañán-Calvo, A. M., “Generation of steady liquid microthreads and micron-sized monodisperse sprays in gas streams,” Physical Review Letters, vol. 80 (Copyright © 2010 The American Physical Society), p. 285, 1998.CrossRefGoogle Scholar
Gañán-Calvo, A. M., Cone-jet analytical extension of Taylor's electrostatic solution and the asymptotic universal scaling laws in electrospraying, Physical Review Letters, vol. 79 (Copyright © 2010 The American Physical Society), p. 217, 1997.CrossRefGoogle Scholar
Feng, J. J., “Stretching of a straight electrically charged viscoelastic jet,” Journal of Non-Newtonian Fluid Mechanics, vol. 116(1), pp. 55–70, 2003.CrossRefGoogle Scholar
Wan, Y. Q., Guo, Q., and Pan, N., “Thermo-electro-hydrodynamic model for electrospinning process,” International Journal of Nonlinear Sciences and Numerical Simulation, vol. 5(1), pp. 5–8, 2004.CrossRefGoogle Scholar
Shin, Y. M., et al., “Experimental characterization of electrospinning: the electrically forced jet and instabilities,” Polymer, vol. 42(25), pp. 09955–09967, 2001.CrossRefGoogle Scholar
He, J. H., Wan, Y. Q., and Yu, J. Y., “Allometric scaling and instability in electrospinning,” International Journal of Nonlinear Sciences and Numerical Simulation, vol. 5, pp. 243–252, 2004.CrossRefGoogle Scholar
Spivak, A. F., Dzenis, Y. A., and Reneker, D. H., “A model of steady state jet in the electrospinning process,” Mechanics Research Communications, vol. 27(1), pp. 37–42, 2000.CrossRefGoogle Scholar
Hohman, M. M., et al., “Electrospinning and electrically forced jets. I. Stability theory,” Physics of Fluids, vol. 13(8), pp. 2201–2220, 2001.CrossRefGoogle Scholar
He, J. H., and Wan, Y. Q., “Allometric scaling for voltage and current in electrospinning,” Polymer, vol. 45(19), pp. 6731–6734, 2004.CrossRefGoogle Scholar
He, J. H., Wan, Y. Q., and Yu, J. Y., “Application of vibration technology to polymer electrospinning,” International Journal of Nonlinear Sciences and Numerical Simulation, vol. 5, pp. 253–262, 2004.CrossRefGoogle Scholar
He, J. H., Wan, Y. Q., and Yu, J. Y., “Scaling law in electrospinning: relationship between electric current and solution flow rate,” Polymer, vol. 46(8), pp. 2799–2801, 2005.CrossRefGoogle Scholar
Reneker, D. H., et al., “Bending instability of electrically charged liquid jets of polymer solutions in electrospinning,” Journal of Applied Physics, vol. 87(9), pp. 4531–4547, 2000.CrossRefGoogle Scholar

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  • Modeling and simulation
  • Frank K. Ko, University of British Columbia, Vancouver, Yuqin Wan, University of British Columbia, Vancouver
  • Book: Introduction to Nanofiber Materials
  • Online publication: 05 July 2014
  • Chapter DOI: https://doi.org/10.1017/CBO9781139021333.005
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  • Modeling and simulation
  • Frank K. Ko, University of British Columbia, Vancouver, Yuqin Wan, University of British Columbia, Vancouver
  • Book: Introduction to Nanofiber Materials
  • Online publication: 05 July 2014
  • Chapter DOI: https://doi.org/10.1017/CBO9781139021333.005
Available formats
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Save book to Google Drive

To save content items to your account, please confirm that you agree to abide by our usage policies. If this is the first time you use this feature, you will be asked to authorise Cambridge Core to connect with your account. Find out more about saving content to Google Drive.

  • Modeling and simulation
  • Frank K. Ko, University of British Columbia, Vancouver, Yuqin Wan, University of British Columbia, Vancouver
  • Book: Introduction to Nanofiber Materials
  • Online publication: 05 July 2014
  • Chapter DOI: https://doi.org/10.1017/CBO9781139021333.005
Available formats
×