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Inverse-Leidenfrost phenomenon on nanofiber mats on hot surfaces
Christina M. Weickgenannt
*
, Yiyun Zhang
, Suman Sinha-Ray
, Ilia V. Roisman
, Tatiana Gambaryan-Roisman
, Cameron Tropea
, Alexander L. Yarin
*
Corresponding author for this work
Research output
:
Contribution to journal
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Article
›
peer-review
94
Citations (Scopus)
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Keyphrases
Nanofiber Mat
100%
Hot Surface
100%
Leidenfrost Phenomenon
100%
Leidenfrost Effect
100%
Polymer Nanofibers
66%
Heat Removal
66%
Electrospinning
33%
Heater
33%
Observed Behavior
33%
Electrospun
33%
Complementary Metal Oxide Semiconductor
33%
Liquid Drop
33%
Thermocouple
33%
Single Drop Impact
33%
Stainless Steel Surface
33%
High Heat Flux
33%
Flux Surface
33%
Cooling Efficiency
33%
Coolant Temperature
33%
Hydrodynamic Efficiency
33%
Semiconductor Compton Camera
33%
Inverse Leidenfrost Effect
33%
Engineering
Nanofiber Mat
100%
Leidenfrost Effect
100%
Hot Surface
100%
Leidenfrost Phenomenon
100%
Heat Removal
50%
Electrospinning
25%
Metal Oxide Semiconductor
25%
Stainless Steel
25%
Hydrodynamics
25%
Steel Surface
25%
Liquid Drop
25%
Polymer Nanofibers
25%
Electrospun Polymer Nanofibers
25%
Thermocouple
25%
Single Drop
25%
Heater Surface
25%
Heat Flux
25%
Material Science
Nanofiber
100%
Surface (Surface Science)
100%
Electrospinning
16%
Oxide Semiconductor
16%
Metal Oxide
16%
Hydrodynamics
16%
Stainless Steel
16%
Chemical Engineering
Heat Flux
100%
Oxide Semiconductors
100%