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Understanding of head-on coalescence of binary drops onto a cylindrical target.

Authors :
Sahoo, Prakasha Chandra
Senapati, Jnana Ranjan
Rana, Basanta Kumar
Source :
Chemical Engineering Science. May2024, Vol. 290, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

• A numerical work of head-on coalescence of binary drops onto a cylindrical target. • Temporal deformation factor is predicted during the entire droplet collision cycle. • Maximum deformation factor is estimated just after the collision of drops. • Ring drop is observed to be pinched off from the parent merged drop. • A correlation for maximum deformation factor is developed using computational data. In this paper, a numerical exercise in understanding the binary head-on collision of equal-sized vertically aligned drops on the cylindrical substrate is reported. Subsequently, radial spreading of the liquid bridge, impact, and detachment of merged drop from the solid target. Different dimensionless relevant factors, namely Weber number (W e) , contact angle θ , Ohnesorge number (O h) , Bond number (B o) , and diameter ratio D c / D o are used to characterize the coalescence, and subsequent impingement onto the cylindrical substrate. Temporal deformation factor β f is predicted throughout the entire droplet cycle, and the maximum deformation factor β f , m a x is obtained just after the collision of drops because of the significant radial expansion of merged drop. A larger value of β f , m a x is achieved at a higher We for a constant θ , D c / D o , and Oh. Interestingly, the ring drop is pinched off from the parent merged drop when the value of D c / D o is lower at a higher value of We. Again, the possibility of the appearance of the ring is significantly higher when the target surface becomes non-wetting. A correlation for the maximum deformation factor is developed using computational data points, which fits well with the simulated data within ± 6 %. Lastly, a theoretical framework is also predicted to determine the maximum deformation factor. [ABSTRACT FROM AUTHOR]

Subjects

Subjects :
*CONTACT angle

Details

Language :
English
ISSN :
00092509
Volume :
290
Database :
Academic Search Index
Journal :
Chemical Engineering Science
Publication Type :
Academic Journal
Accession number :
175938105
Full Text :
https://doi.org/10.1016/j.ces.2024.119886