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  • A study and analysis showed that the increase in production and the quantity of nanofibers obtained from electrospinning may be provided not only by increased potential gradient between the electrodes, but also by the suitable distribution of the intensity of the electrostatic field. Through numerical simulation using finite element method was found that the intensity distribution of the electrostatic field is influenced not only by a potential gradient, type and shape of the electrodes, polymer properties and its concentration, humidity, ambient temperature, but also by other parameters, such as relative permittivity of the material and shape of the construction geometry. Experiments have been done with the functional baths for polymer solution deposition with a different geometry and various relative permittivities. In experiment where polymer PVP with TiO2 at 23.2 ± 3 °C and humidity of 14.4 ± 3 % and potential gradient 60 kV was determined that proposed changes in design and relative permittivity can be achieved the increasing of nanofiber production about 50 ± 3%.
  • A study and analysis showed that the increase in production and the quantity of nanofibers obtained from electrospinning may be provided not only by increased potential gradient between the electrodes, but also by the suitable distribution of the intensity of the electrostatic field. Through numerical simulation using finite element method was found that the intensity distribution of the electrostatic field is influenced not only by a potential gradient, type and shape of the electrodes, polymer properties and its concentration, humidity, ambient temperature, but also by other parameters, such as relative permittivity of the material and shape of the construction geometry. Experiments have been done with the functional baths for polymer solution deposition with a different geometry and various relative permittivities. In experiment where polymer PVP with TiO2 at 23.2 ± 3 °C and humidity of 14.4 ± 3 % and potential gradient 60 kV was determined that proposed changes in design and relative permittivity can be achieved the increasing of nanofiber production about 50 ± 3%. (en)
Title
  • Numerical And Experimental Research Of Design Optimization Of Baths For The Production Of Nanofibers By The Electrospinning
  • Numerical And Experimental Research Of Design Optimization Of Baths For The Production Of Nanofibers By The Electrospinning (en)
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  • Numerical And Experimental Research Of Design Optimization Of Baths For The Production Of Nanofibers By The Electrospinning
  • Numerical And Experimental Research Of Design Optimization Of Baths For The Production Of Nanofibers By The Electrospinning (en)
skos:notation
  • RIV/46747885:24410/13:#0001746!RIV14-MPO-24410___
http://linked.open...avai/riv/aktivita
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  • I, P(ED0005/01/01), P(EE2.3.30.0024), P(FR-TI1/451), P(FR-TI3/845)
http://linked.open...vai/riv/dodaniDat
http://linked.open...aciTvurceVysledku
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  • 92521
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  • RIV/46747885:24410/13:#0001746
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  • Electrospinning, optimization, nanofibers, FEM, reservoir (en)
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  • [168FFD3FFA1A]
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  • Litoměřice
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  • Ústí nad Labem
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  • 51th International Conference experimental stress analysis (EAN 51)
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  • Novák, Ondřej
  • Petrů, Michal
  • Ševčík, Ladislav
  • Lepšík, Petr
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number of pages
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  • Univerzita Jana Evangelisty Purkyně v Ústí nad Labem
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  • 978-80-7414-579-7
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  • 24410
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