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Enhancing heat transfer at the micro-scale using elastic turbulence 被引量:1

Enhancing heat transfer at the micro-scale using elastic turbulence
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摘要 Small concentrations of a high-molecular-weight polymer have been used to create so-called "elastic tur- bulence" in a micro-scale serpentine channel geometry. It is known that the interaction of large elastic stresses created by the shearing motion within the fluid flow with streamline curvature of the serpentine geometry leads initially to a purely-elastic instability and then the generation of elastic turbulence. We show that this elastic turbulence enhances the heat transfer at the micro-scale in this geometry by up to 300% under creeping flow conditions in comparison to that achieved by the equivalent Newtonian fluid flow. Small concentrations of a high-molecular-weight polymer have been used to create so-called "elastic tur- bulence" in a micro-scale serpentine channel geometry. It is known that the interaction of large elastic stresses created by the shearing motion within the fluid flow with streamline curvature of the serpentine geometry leads initially to a purely-elastic instability and then the generation of elastic turbulence. We show that this elastic turbulence enhances the heat transfer at the micro-scale in this geometry by up to 300% under creeping flow conditions in comparison to that achieved by the equivalent Newtonian fluid flow.
出处 《Theoretical & Applied Mechanics Letters》 CAS CSCD 2015年第3期103-106,共4页 力学快报(英文版)
基金 financial support from The Higher Committee for Education Development in Iraq and The Iraqi Ministry of Higher Education and Scientific Research
关键词 Elastic turbulence Viscoelasticity Serpentine channel Micro-mixing Heat transfer Elastic turbulence Viscoelasticity Serpentine channel Micro-mixing Heat transfer
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  • 1Groisman, V. Steinberg, Elastic turbulence in a polymer solution flow Nature 405 (2000) 53-55, http://dx.doi.org/10.1038/35011019.
  • 2A. Groisman, V. Steinberg, Efficient mixing at low Reynolds number using polymer additives, Nature 410 (2001) 905-908, http://dx.doi.org/10.1038/ 35073524.
  • 3T. Burghelea, E. Segre, 1. Bar-Yosef, A. Groisman, V. Steinberg, Chaotic flow and efficient mixing in microchannel with a polymer solution, Phys. Rev. E 69 (2004) 066305, http://dx.doi.org/10.1103/PhysRevE.69.066305.
  • 4A. Groisman, V. Steinberg, Elastic turbulence in curvilinear flows of polymer solutions, New J. Phys. 6 (2004) 1-48, http://dx.doi.org/10.1088/1367- 2630/6/1/029.
  • 5B.A. Schiamberg, L.T. Shereda, H. Hu, R.G. Larson, Transitional pathway to elastic turbulence in torsional, parallel-plate flow of a polymer solution,J. Fluid Mech. 2006 (2006) 191-216, http://dx.doi.org/10.1017/S0022112006009426.
  • 6F.C. Li, H. Kinoshita, X.B. Li, M. Oishi, T. Fujii, M. Oshima, Creation of very-low-Reynolds-number chaotic fluid motions in microchannels using viscoelastic surfactant solution, Exp. Thermodyn. Fluid Sci. 34 (2010) 20-27, http : //dx.doi.org/ l O. l O l 6 /j.expthermflusci.2009.08.007.
  • 7J. Beaumont, N. Louvet, T. Divoux, M.A. Fardin, H. Bodiguel, S. Lerouge, S. Manneville, A. Colin, Turbulent flows in highly elastic wormlike micelles, Soft Matter 3 (2013) ?35-?49, bttp://dx.doi.org/10.1039/c2sm26760h.
  • 8T. Burghelea, E. Segre, V. Steinberg, Mixing by polymers: Experimental test of decay regime of mixing, Phys. Rev. Lett. 92 (2004) 164501, h ttp : / / dx.doi.org/10.110 3 /PhysRevLett92.164501.
  • 9Y. Jun, V. Steinberg, Mixing of passive tracers in the decay Batchelor regime of a channel flow, Phys. Fluids 22 (2010) 123101, http:fldx.doi.org/lOA063/l. 3522400.
  • 10R.J. Poole, B. Budhiraja, A.R. Cain, P.A. Scott, Emulsification using elastic turhulence,. Non-Newton. Fluid Mech, 177-178 (2012) 15-18, http://dxdoi. orgJlO.lO16/j.jnnfm.2012.03,012.

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