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Non-Newtonian Drops Spreading on a Flat Surface.

Authors :
Dechelette, A.
Sojka, P. E.
Wassgren, C. R.
Source :
Journal of Fluids Engineering; Oct2010, Vol. 132 Issue 10, p101302.1-101302.7, 7p, 2 Diagrams, 2 Charts, 8 Graphs
Publication Year :
2010

Abstract

The objective of this study is to develop a computational model that accurately describes the dynamic behavior of a non-Newtonian power-law film formed after a drop impinges on a flat surface. The non-Newtonian drop deposition and spreading process is described by a model based on one developed for Newtonian liquids. The effects of variations in non-Newtonian liquid rheological parameters, such as Re<subscript>n</subscript> (the non-Newtonian Reynolds number), n (the flow behavior index), and We (the Weber number), are studied in detail. Results show that a reduction in the viscous forces results in enhanced spreading of the film followed by a more rapid recession. An increase in surface tension results in reduced spreading of the film, followed by a more rapid recession. Model predictions of film diameter as a function of time were larger than corresponding experimental values obtained as part of this study However the discrepancy never exceeded 21%, demonstrating that the model accurately predicts the phenomena of interest. This comparison also shows that the results are in best agreement for large non-Newtonian Reynolds numbers and small non-Newtonian Ohnesorge numbers (√We/Re<subscript>n</subscript>). [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00982202
Volume :
132
Issue :
10
Database :
Supplemental Index
Journal :
Journal of Fluids Engineering
Publication Type :
Academic Journal
Accession number :
57932968
Full Text :
https://doi.org/10.1115/1.4002281