Stability analysis of an electrospinning jet of polymeric fluids

被引:43
|
作者
Deshawar, Dharmansh [1 ]
Chokshi, Paresh [1 ]
机构
[1] Indian Inst Technol Delhi, Dept Chem Engn, New Delhi 110016, India
关键词
Electrospinning; Hydrodynamic stability; Rheology; ELECTRICALLY FORCED JETS; VISCOELASTIC LIQUID JET; ELECTROHYDRODYNAMIC STABILITY; CONDUCTING LIQUIDS; CAPILLARY JETS; VISCOUS JET; FIBERS; NANOFIBERS; MODEL; INSTABILITY;
D O I
10.1016/j.polymer.2017.10.019
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The axisymmetric instability, which has a potential to cause bead formation along the fibers produced by electrospinning technique, is examined with the help of linear stability theory. The stability of a straight jet is analyzed under conditions corresponding to the electrospinning of two types of polymeric fluids, the PIB-based Boger fluid with low electrical conductivity and the highly conductive PEO solution in ethanol/water. For the former, the rheology is described by the Oldroyd-B model, suitable for unentangled polymers under weak elongational flow. On the other hand, the highly conductive polymer solution experiences a strong elongational flow due to very high axial electric force, for which the viscoelasticity is appropriately described using the extended Pom-Pom (XPP) model, the nonlinear rheological model for entangled polymeric systems. Contrary to previous studies, which oversimplifies the electrified jet as a cylindrical jet with uniform radius and other jet variables, we analyze the stability of the realistic non-uniform thinning jet as observed in electrospinning experiments. The stability of the thinning jet profile, obtained using the 1D slender body model, is examined by imposing non-periodic axisymmetric disturbances and constructing the spectrum of disturbance growth rate. The thinning jet is found to be relatively less unstable than the uniform jet, which is attributed to the stabilizing role of extensional stresses, in addition to the axial variation in surface charge density and electric field, present in the non-uniform deforming jet, but ignored in the analysis of the uniform jet. For both the reference fluids considered, the polymer addition renders the jet stable and thus, suppresses the bead formation during straight jet path of electrospinning. Also, the enhancement in fluid elasticity, characterized by the flow Deborah number, plays a stabilizing role for the thinning jet of Oldroyd-B fluid. However, for the XPP fluid, the fluid elasticity shows a rich behavior with a stabilizing effect for moderate values of Deborah number, attributed to stretching of polymer chain between the branch points, and a destabilizing effect for highly elastic fluids, due to strain rate softening. Increasing the strain hardening effect in the polymer solution, achieved by increasing number of arms at the branch point in the XPP molecule, tends to stabilize the electrospinning jet against axisymmetric disturbances potentially producing smooth bead-less fibers. While the instability in low conductivity fluid is driven by capillary forces, the instability in highly conductive fluid is an oscillatory conducting mode driven by the coupling of the surface charges and the axial electric field. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:34 / 49
页数:16
相关论文
共 50 条
  • [41] Suppression of the Rayleigh instability in an electrospinning jet
    Yu, Jian H.
    Fridrikh, Sergey V.
    Rutledge, Gregory C.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2006, 231
  • [42] Hypercrosslinked polymeric restricted access materials for analysis of biological fluids
    Popov, Alekxander
    Blinnikova, Zinaida K.
    Tsyurupa, Maria P.
    Davankov, Vadim A.
    JOURNAL OF SEPARATION SCIENCE, 2018, 41 (16) : 3302 - 3309
  • [43] COMMENTS ON GENERAL ANALYSIS OF STABILITY OF SUPERPOSED FLUIDS
    MILES, JW
    PHYSICS OF FLUIDS, 1965, 8 (09) : 1754 - &
  • [44] ON THE STABILITY OF MULTILAYERED FLUIDS .1. ANALYSIS
    KNOESTER, H
    VANDERZANDEN, J
    APPLIED SCIENTIFIC RESEARCH, 1992, 49 (04): : 307 - 334
  • [45] Tunable, superhydrophobically stable polymeric surfaces by electrospinning
    Acatay, K
    Simsek, E
    Ow-Yang, C
    Menceloglu, YZ
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2004, 43 (39) : 5210 - 5213
  • [46] Electrospinning of polymeric nanofibers for drug delivery applications
    Hu, Xiuli
    Liu, Shi
    Zhou, Guangyuan
    Huang, Yubin
    Xie, Zhigang
    Jing, Xiabin
    JOURNAL OF CONTROLLED RELEASE, 2014, 185 : 12 - 21
  • [47] Preparation of polymeric nanofibers via immersion electrospinning
    Wang, Xushan
    Nakane, Koji
    EUROPEAN POLYMER JOURNAL, 2020, 134
  • [48] Fragrance encapsulation in polymeric matrices by emulsion electrospinning
    Camerlo, Agathe
    Vebert-Nardin, Corinne
    Rossi, Rene M.
    Popa, Ana-M
    EUROPEAN POLYMER JOURNAL, 2013, 49 (12) : 3806 - 3813
  • [49] Electrospinning of electrochromic conductive polymeric nanofibers.
    Jang, SY
    Khil, MS
    Seshadri, V
    Marquez, M
    Mather, PT
    Sotzing, GA
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2005, 229 : U972 - U972
  • [50] Polymeric Nanofibers via Flat Spinneret Electrospinning
    Zhou, Feng-Lei
    Gong, Rong-Hua
    Porat, Isaac
    POLYMER ENGINEERING AND SCIENCE, 2009, 49 (12): : 2475 - 2481