The stretching of an electrified non-Newtonian jet: A model for electrospinning

被引:290
作者
Feng, JJ [1 ]
机构
[1] CUNY City Coll, Levich Inst Physicochem Hydrodynam, New York, NY 10031 USA
关键词
D O I
10.1063/1.1510664
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Electrospinning uses an external electrostatic field to accelerate and stretch a charged polymer jet, and may produce ultrafine "nanofibers." Many polymers have been successfully electrospun in the laboratory. Recently Hohman [Phys. Fluids, 13, 2201 (2001)] proposed an electrohydrodynamic model for electrospinning Newtonian jets. A problem arises, however, with the boundary condition at the nozzle. Unless the initial surface charge density is zero or very small, the jet bulges out upon exiting the nozzle in a "ballooning instability," which never occurs in reality. In this paper, we will first describe a slightly different Newtonian model that avoids the instability. Well-behaved solutions are produced that are insensitive to the initial charge density, except inside a tiny "boundary layer" at the nozzle. Then a non-Newtonian viscosity function is introduced into the model and the effects of extension thinning and thickening are explored. Results show two distinct regimes of stretching. For a "mildly stretched" jet, the axial tensile force in the fiber resists stretching, so that extension thinning promotes stretching and thickening hinders stretching. For a "severely stretched" jet, on the other hand, the tensile force enhances stretching at the beginning of the jet and suppresses it farther downstream. The effects of extensional viscosity then depend on the competition between the upstream and downstream dynamics. Finally, we use an empirical correlation to simulate strain hardening typical of polymeric liquids. This generally steepens the axial gradient of the tensile stress. Stretching is more pronounced at the beginning but weakens later, and ultimately thicker fibers are produced because of strain hardening. (C) 2002 American Institute of Physics.
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页码:3912 / 3926
页数:15
相关论文
共 38 条
[21]   Electrospinning and electrically forced jets. I. Stability theory [J].
Hohman, MM ;
Shin, M ;
Rutledge, G ;
Brenner, MP .
PHYSICS OF FLUIDS, 2001, 13 (08) :2201-2220
[22]   Electrospinning and electrically forced jets. II. Applications [J].
Hohman, MM ;
Shin, M ;
Rutledge, G ;
Brenner, MP .
PHYSICS OF FLUIDS, 2001, 13 (08) :2221-2236
[23]   Electrospinning of ultra-thin polymer fibers [J].
Jaeger, R ;
Bergshoef, MM ;
Batlle, CMI ;
Schonherr, H ;
Vancso, GJ .
MACROMOLECULAR SYMPOSIA, 1998, 127 :141-150
[24]  
JAMES DF, 1993, TECHNIQUES RHEOLOGIC
[25]   PROFILE DEVELOPMENT IN CONTINUOUS DRAWING OF VISCOELASTIC LIQUIDS [J].
KEUNINGS, R ;
CROCHET, MJ ;
DENN, MM .
INDUSTRIAL & ENGINEERING CHEMISTRY FUNDAMENTALS, 1983, 22 (03) :347-355
[26]  
Kirichenko V. N., 1986, Soviet Physics - Doklady, V31, P611
[27]  
KORTUM G, 1951, TXB ELECTROCHEMISTRY, P618
[29]  
Press W.H., 1992, NUMERICAL RECIPES FO
[30]   Bending instability of electrically charged liquid jets of polymer solutions in electrospinning [J].
Reneker, DH ;
Yarin, AL ;
Fong, H ;
Koombhongse, S .
JOURNAL OF APPLIED PHYSICS, 2000, 87 (09) :4531-4547