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Acadlore takes over the publication of IJCMEM from 2025 Vol. 13, No. 3. The preceding volumes were published under a CC BY 4.0 license by the previous owner, and displayed here as agreed between Acadlore and the previous owner. ✯ : This issue/volume is not published by Acadlore.

Open Access
Research article

Coupling Method for Internal Nozzle Flow and the Spray Formation for Viscous Liquids

Rathesan Ravendran1*,
Benny Endelt2,
Jesper De Claville Christiansen2,
Peter Jensen3,
Martin Theile3,
Ibrahim Najjar4
1
Hans Jensen Lubricators, 9560 Hadsund, Denmark
2
Materials and Production, Aalborg University, 9220 Aalborg, Denmark
3
FVTR GmbH, 18057 Rostock, Denmark
4
University of Rostock, 18057 Rostock, Denmark
International Journal of Computational Methods and Experimental Measurements
|
Volume 7, Issue 2, 2019
|
Pages 130-141
Received: N/A,
Revised: N/A,
Accepted: N/A,
Available online: N/A
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Abstract:

Understanding the disturbances introduced by cavitation inside spray nozzles is important, when simulating the spray formation of highly viscous liquids. In this paper, a new model for cavitation-induced primary break-up is proposed, which is able to map the influence of cavitating nozzle flow on spray formation. Detailed experimental and numerical investigations of the viscous nozzle flow have been performed in order to develop an improved primary break-up model [1]. The proposed model describes the transition from the flow inside the nozzle, modelled using a homogeneous equilibrium model (HEM) method, to the first primary droplets modelled using a Eulerian–Lagrangian method. Thus, providing the boundary conditions for the calculation of the secondary break-up and spray formation. The nozzle exit is divided into a definite number of patches. Liquid momentum and vapor volume fraction from each patch are used to initialize the primary droplets. The model has been implemented in the open-source CFD software package OpenFOAM and validation has been done using high-speed shadow graphic imaging. The simulated spray tip penetration and spray cone angle at the near-nozzle region show a good agreement with the experiment results.

Keywords: cavitation, numerical simulation, OpenFOAM, primary break-up, Spray formation, viscous liquids.


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Ravendran, R., Endelt, B., Christiansen, J. D. C., Jensen, P., Theile, M., & Najjar, I. (2019). Coupling Method for Internal Nozzle Flow and the Spray Formation for Viscous Liquids. Int. J. Comput. Methods Exp. Meas., 7(2), 130-141. https://doi.org/10.2495/CMEM-V7-N2-130-141
R. Ravendran, B. Endelt, J. D. C. Christiansen, P. Jensen, M. Theile, and I. Najjar, "Coupling Method for Internal Nozzle Flow and the Spray Formation for Viscous Liquids," Int. J. Comput. Methods Exp. Meas., vol. 7, no. 2, pp. 130-141, 2019. https://doi.org/10.2495/CMEM-V7-N2-130-141
@research-article{Ravendran2019CouplingMF,
title={Coupling Method for Internal Nozzle Flow and the Spray Formation for Viscous Liquids},
author={Rathesan Ravendran and Benny Endelt and Jesper De Claville Christiansen and Peter Jensen and Martin Theile and Ibrahim Najjar},
journal={International Journal of Computational Methods and Experimental Measurements},
year={2019},
page={130-141},
doi={https://doi.org/10.2495/CMEM-V7-N2-130-141}
}
Rathesan Ravendran, et al. "Coupling Method for Internal Nozzle Flow and the Spray Formation for Viscous Liquids." International Journal of Computational Methods and Experimental Measurements, v 7, pp 130-141. doi: https://doi.org/10.2495/CMEM-V7-N2-130-141
Rathesan Ravendran, Benny Endelt, Jesper De Claville Christiansen, Peter Jensen, Martin Theile and Ibrahim Najjar. "Coupling Method for Internal Nozzle Flow and the Spray Formation for Viscous Liquids." International Journal of Computational Methods and Experimental Measurements, 7, (2019): 130-141. doi: https://doi.org/10.2495/CMEM-V7-N2-130-141
RAVENDRAN R, ENDELT B, CHRISTIANSEN J D C, et al. Coupling Method for Internal Nozzle Flow and the Spray Formation for Viscous Liquids[J]. International Journal of Computational Methods and Experimental Measurements, 2019, 7(2): 130-141. https://doi.org/10.2495/CMEM-V7-N2-130-141