Affiliation:
1. Department of Mechanical Engineering, Indian Institute of Science Bangalore, Karnataka 560012, India
2. Department of Aerospace Engineering, Indian Institute of Science Bangalore, Karnataka 560012, India
Abstract
We present volume of fluid based numerical simulations of secondary breakup of a drop with high density ratio (approx. 1000) and also perform experiments by injecting monodisperse water droplets in a continuous jet of air and capture the breakup regimes, namely, bag formation, bag-stamen, multibag and shear breakup, observed in the moderate Weber number range (20–120). We observe an interesting transition regime between bag and shear breakup for
We
=80, in both simulations as well as experiments, where the formation of multiple lobes, is observed, instead of a single bag, which are connected to each other via thicker rim-like threads that hold them. We show that the transition from bag to shear breakup occurs owing to the rim dynamics which shows retraction under capillary forces at
We
=80, whereas the rim is sheared away with flow at
We
=120 thus resulting in a backward facing bag. The drop characteristics and timescales obtained in simulations are in good agreement with experiments. The drop size distribution after the breakup shows bimodal nature for the single-bag breakup mode and a unimodal nature following lognormal distribution for higher Weber numbers.
Subject
General Physics and Astronomy,General Engineering,General Mathematics
Reference66 articles.
1. Single-drop fragmentation determines size distribution of raindrops
2. The shape and acceleration of a drop in a high speed air stream;Taylor G;The Scientific Papers of G.I. Taylor,1963
3. Atomization and Sprays
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