Detail publikačního výsledku

A Generalized Protocol for Computational Simulation of Spray Flows Including Primary Atomization

LEE, T.; GREENLEE, B.; PARK, J.; BELLEROVÁ, H.; RAUDENSKÝ, M.

Originální název

A Generalized Protocol for Computational Simulation of Spray Flows Including Primary Atomization

Anglický název

A Generalized Protocol for Computational Simulation of Spray Flows Including Primary Atomization

Druh

Stať ve sborníku mimo WoS a Scopus

Originální abstrakt

Using the theoretical result for primary atomization, we have developed a computational protocol for compact and efficient simulations of spray flows. Volume-of-fluid (VOF) is used to map out the pre-atomization liquid flow field. The velocity and liquid contour from VOF is input in the “quadratic formula” to determine the initial drop size, to furnish the initial conditions for the post-atomization discrete-particle simulations (DPS). This approach has worked quite well in pressure-atomized sprays with and without swirl, and in liquid jets in cross flows, as presented in previous ILASS papers and journals. It constitutes a general simulation framework, based on fundamental and validated fluid physics of spray atomization, and leads to a very efficient and compact computational scheme to simulate spray flows in complex geometries. In this paper, we will present application examples in various other spray geometries and discuss potential uses in practical devices and systems, so that the generalizability of the method is established. This approach is easy to implement, generalizable, and thus can be used in complex injection systems by first analysing the internal fluid motion and using it to advance the scheme to atomization and post-atomization states.

Anglický abstrakt

Using the theoretical result for primary atomization, we have developed a computational protocol for compact and efficient simulations of spray flows. Volume-of-fluid (VOF) is used to map out the pre-atomization liquid flow field. The velocity and liquid contour from VOF is input in the “quadratic formula” to determine the initial drop size, to furnish the initial conditions for the post-atomization discrete-particle simulations (DPS). This approach has worked quite well in pressure-atomized sprays with and without swirl, and in liquid jets in cross flows, as presented in previous ILASS papers and journals. It constitutes a general simulation framework, based on fundamental and validated fluid physics of spray atomization, and leads to a very efficient and compact computational scheme to simulate spray flows in complex geometries. In this paper, we will present application examples in various other spray geometries and discuss potential uses in practical devices and systems, so that the generalizability of the method is established. This approach is easy to implement, generalizable, and thus can be used in complex injection systems by first analysing the internal fluid motion and using it to advance the scheme to atomization and post-atomization states.

Klíčová slova

Computational; primary atomization; spray flow simulations

Klíčová slova v angličtině

Computational; primary atomization; spray flow simulations

Autoři

LEE, T.; GREENLEE, B.; PARK, J.; BELLEROVÁ, H.; RAUDENSKÝ, M.

Rok RIV

2024

Vydáno

30.08.2021

Kniha

Sborník z konference

Strany od

1

Strany do

8

Strany počet

8

URL

BibTex

@inproceedings{BUT187866,
  author="Tae-Woo {Lee} and Benjamin {Greenlee} and Jung Eun {Park} and Hana {Bellerová} and Miroslav {Raudenský}",
  title="A Generalized Protocol for Computational Simulation of Spray Flows Including Primary Atomization",
  booktitle="Sborník z konference",
  year="2021",
  pages="1--8",
  doi="10.2218/iclass.2021.5905",
  url="https://www.scopus.com/record/display.uri?eid=2-s2.0-85175208217&origin=resultslist&sort=plf-f&src=s&sid=1ed956d33aa41f20b0b84267c009c3d8&sot=b&sdt=b&s=TITLE-ABS-KEY%28A+Generalized+Protocol+for+Computational+Simulation+of+Spray+Flows+Including+Primary+Atomization%29&sl=111&sessionSearchId=1ed956d33aa41f20b0b84267c009c3d8&relpos=0"
}