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author = {de Gennes, Pierre‐Gilles},
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@inbook{Dhont2006,
title = {{Rod-like Brownian particles in shear flow}},
booktitle = {Soft matter volume 2: Complex colloidal suspensions},
author = {Dhont, Jan and Briels, Wim J.},
editors = {Gompper, Gerhard and Schick, Michael},
chapter = {3},
pages = {147-283},
year = {2006},
publisher = {Wiley-VCH},
isbn = {978-3-527-31369-3},
doi = {10.1002/9783527617067},
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@article{Doi2020,
author = {Doi, Masao},
doi = {10.1016/j.progpolymsci.2020.101339},
journal = {Prog. Polym. Sci.},
keywords = {Capillary flow,Diffusio-mechanical coupling,Droplet motion,Filament of polymer solutio,Gel dynamics,Rayleighian,Solvent evaporation,Variational principle,Viscoelastic fluid},
pages = {101339},
publisher = {Elsevier B.V.},
title = {{Onsager principle in polymer dynamics}},
url = {https://doi.org/10.1016/j.progpolymsci.2020.101339},
volume = {112},
year = {2020}
}
@article{Dommersnes2002,
author = {Dommersnes, Paul G. and Fournier, Jean-Baptiste},
title = {{The many-body problem for anisotropic membrane inclusions and the self-assembly of ``saddle'' defects into an ``egg carton''}},
journal = {Biophys. J.},
volume = {83},
number = {6},
pages = {2898-2905},
year = {2002},
month = {Dec},
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author = {Einstein, Albert},
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number = {8},
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title = {{{\"{U}}ber die von der molekularkinetischen Theorie der W{\"{a}}rme geforderte Bewegung von in ruhenden Fl{\"{u}}ssigkeiten suspendierten Teilchen}},
volume = {322},
year = {1905}
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title = {Entropy-driven tension and bending elasticity in condensed-fluid membranes},
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title = {Hidden dynamics in rapid changes of bilayer shape},
author = {Evans, E. and Yeung, A.},
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pages = {39--56},
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year = {1994},
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doi = {10.1016/0009-3084(94)90173-2},
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@Article{evans96,
title = {Biomembrane templates for nanoscale conduits and networks},
author = {Evans, Evan and Bowman, Howard and Leung, Andrew and Needham, David and Tirrel, David},
journal = {Science},
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abstract = {Turbulence is one of the most fascinating phenomena in nature and one of the biggest challenges for modern physics. It is common knowledge that a flow of a simple, Newtonian fluid is likely to be turbulent, when velocity is high, viscosity is low and size of the tank is large. Solutions of flexible long-chain polymers are known as visco-elastic fluids. In our experiments we show, that flow of a polymer solution with large enough elasticity can become quite irregular even at low velocity, high viscosity and in a small tank. The fluid motion is excited in a broad range of spatial and temporal scales. The flow resistance increases by a factor of about twenty. So, while the Reynolds number, Re, may be arbitrary low, the observed flow has all main features of developed turbulence, and can be compared to turbulent flow in a pipe at Re {\~{}} 10{\^{}}5. This elastic turbulence is accompanied by significant stretching of the polymer molecules, and the resulting increase of the elastic stresses can reach two orders of magnitude.},
archivePrefix = {arXiv},
arxivId = {nlin/0104052},
author = {Groisman, Alexander and Steinberg, Victor},
doi = {10.1038/35011019},
eprint = {0104052},
file = {:Users/timonidema/Documents/Artikelen/Viscoelastic fluids/GroismanNature00 - Elastic turbulence in a polymer solution flow.pdf:pdf},
isbn = {0028-0836},
issn = {00280836},
journal = {Nature},
keywords = {parallel-plate rheometer,turbulence,viscolasticity},
mendeley-tags = {parallel-plate rheometer,turbulence,viscolasticity},
month = {may},
number = {6782},
pages = {53--55},
pmid = {10811214},
primaryClass = {nlin},
title = {{Elastic turbulence in a polymer solution flow}},
url = {http://arxiv.org/abs/nlin/0104052{\%}0Ahttp://dx.doi.org/10.1038/35011019 http://www.nature.com/doifinder/10.1038/35011019},
volume = {405},
year = {2000}
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author = {Landau, L. D. and Lifshitz, E. M.},