Skip to main content
Top

2011 | OriginalPaper | Chapter

22. Interacting Sprays

Author : J. B. Greenberg

Published in: Handbook of Atomization and Sprays

Publisher: Springer US

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

In many disparate engineering systems, ranging from cooling systems for microelectronics to jet engines, multiple sprays are utilized and the way they interact with one another is the subject matter of this chapter. A general overview of published research on interacting sprays is presented. Both experimental and theoretical or numerical investigations of combusting or noncombusting systems are covered. The nature of the interactions may be either direct (with actual contact between the sprays) or indirect (with no contact between the sprays). It is found that, despite the underlying common physics which reflects the mutual interaction between the sprays and their surroundings and between themselves, with few exceptions the material in the literature tends to relate to the impact of spray interactions in specific systems rather than on the fundamentals of the interaction. The question that is addressed is: is the use of multiple sprays more effective than the use of a single spray, or is it possibly detrimental? And, if the latter is true, can the situation be ameliorated by manipulation of the physics through geometric and other factors that relate to the sprays? Surveying the sparse literature on this subject gives some inkling of the important features that are relevant at a basic level. But much remains to be done, both experimentally and theoretically, in order to fully elucidate the complexities of spray interactions.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
1.
go back to reference H. Fujimoto, H. Tanabe, H. Kuniyoshi, G.T. Sato: Investigation on the characteristics of diesel spray (shape of multiple diesel sprays and air movement between neighbouring sprays), Bulletin of the JSME, 25(200), 249–256 (1982). H. Fujimoto, H. Tanabe, H. Kuniyoshi, G.T. Sato: Investigation on the characteristics of diesel spray (shape of multiple diesel sprays and air movement between neighbouring sprays), Bulletin of the JSME, 25(200), 249–256 (1982).
2.
go back to reference C. Bourque, B.G. Newman: Reattachment of a two-dimensional, incompressible jet to an adjacent flat plate, The Aeronautical Quarterly, XI, 201–232 (1960). C. Bourque, B.G. Newman: Reattachment of a two-dimensional, incompressible jet to an adjacent flat plate, The Aeronautical Quarterly, XI, 201–232 (1960).
3.
go back to reference S.R. Snarski, P.F. Dunn: Experiments characterizing the interaction between two sprays of electrically charged liquid droplets, Experiments in Fluids, 11, 268–278 (1991).CrossRef S.R. Snarski, P.F. Dunn: Experiments characterizing the interaction between two sprays of electrically charged liquid droplets, Experiments in Fluids, 11, 268–278 (1991).CrossRef
4.
go back to reference N. Dombrowski, J. Singh: Ducted air flow induced by multiple spray nozzles, Atomization and Sprays, 5, 123–135 (1995). N. Dombrowski, J. Singh: Ducted air flow induced by multiple spray nozzles, Atomization and Sprays, 5, 123–135 (1995).
5.
go back to reference Y. Hardalupas, J.H. Whitelaw: Interaction between sprays from multiple coaxial airblast atomizers, Journal of Fluids Engineering, Transactions of the ASME, 118, 762–771 (1996).CrossRef Y. Hardalupas, J.H. Whitelaw: Interaction between sprays from multiple coaxial airblast atomizers, Journal of Fluids Engineering, Transactions of the ASME, 118, 762–771 (1996).CrossRef
6.
go back to reference G. Brenn, A. Selbach: Experimental investigation of polydisperse spray interaction, International Journal of Fluid Mechanics Research, 24, 534–543 (1997). G. Brenn, A. Selbach: Experimental investigation of polydisperse spray interaction, International Journal of Fluid Mechanics Research, 24, 534–543 (1997).
7.
go back to reference G. Brenn, F. Durst, A. Selbach: Experimental investigations of the binary interaction of polydisperse sprays, Particle and Particle Systems Characterization, 15, 263–273 (1998).CrossRef G. Brenn, F. Durst, A. Selbach: Experimental investigations of the binary interaction of polydisperse sprays, Particle and Particle Systems Characterization, 15, 263–273 (1998).CrossRef
8.
go back to reference M. Valencia-Bejarano, J.J. Nijdam, T.A.G. Langrish: Experimental investigation of coalescence and droplet trajectories between two polydisperse sprays, Atomization and Sprays, 16, 265–278 (2006).CrossRef M. Valencia-Bejarano, J.J. Nijdam, T.A.G. Langrish: Experimental investigation of coalescence and droplet trajectories between two polydisperse sprays, Atomization and Sprays, 16, 265–278 (2006).CrossRef
9.
go back to reference K. Sinko, D. Pushka, B. Chehroudi: Visualization of interacting pilot and main diesel-type sprays in an engine, Journal of Flow Visualization and Image Processing, 2, 93–112 (1995). K. Sinko, D. Pushka, B. Chehroudi: Visualization of interacting pilot and main diesel-type sprays in an engine, Journal of Flow Visualization and Image Processing, 2, 93–112 (1995).
10.
go back to reference B. Chehroudi, K.M. Sinko, W.J. Minkowycz, S. Shih: Interacting-spray injection: a new concept for NOx and smoke reduction in diesel engines, Atomization and Sprays, 8, 673–690 (1998). B. Chehroudi, K.M. Sinko, W.J. Minkowycz, S. Shih: Interacting-spray injection: a new concept for NOx and smoke reduction in diesel engines, Atomization and Sprays, 8, 673–690 (1998).
11.
go back to reference T.C. Tow, D.A. Pierpont, R.D. Reitz: Reducing particulate and \(N{O_x}\) emissions by using multiple injections in a heavy duty D.I. Diesel engine, SAE Paper 940897, 1994. T.C. Tow, D.A. Pierpont, R.D. Reitz: Reducing particulate and \(N{O_x}\) emissions by using multiple injections in a heavy duty D.I. Diesel engine, SAE Paper 940897, 1994.
12.
go back to reference J.B. Heywood: Internal Combustion Engine Fundamentals, McGraw-Hill, New York, 1988. J.B. Heywood: Internal Combustion Engine Fundamentals, McGraw-Hill, New York, 1988.
13.
go back to reference K. Parvez, Studies on interacting multiple burning liquid sprays, PhD dissertation, School of Aerospace and Mechanical Engineering, University of Oklahoma, Norman, April 1995. K. Parvez, Studies on interacting multiple burning liquid sprays, PhD dissertation, School of Aerospace and Mechanical Engineering, University of Oklahoma, Norman, April 1995.
14.
go back to reference K. Parvez, S.R. Gollahalli: Effects of interjet spacing on burning multiple sprays, AIAA Journal of Propulsion and Power, 17(1), 169–174 (2001); also appeared as AIAA Paper No. 99-0460, 1999.CrossRef K. Parvez, S.R. Gollahalli: Effects of interjet spacing on burning multiple sprays, AIAA Journal of Propulsion and Power, 17(1), 169–174 (2001); also appeared as AIAA Paper No. 99-0460, 1999.CrossRef
15.
go back to reference B. Glassman, S. Kuravi, J. Du, Y. Lin, G. Zhao, L. Chow: A fluid management system for a multiple nozzle array spray cooler, AIAA Paper No. 2004-2574, 37th AIAA Thermophysics Conference, Portland, June 28–July 1, 2004. B. Glassman, S. Kuravi, J. Du, Y. Lin, G. Zhao, L. Chow: A fluid management system for a multiple nozzle array spray cooler, AIAA Paper No. 2004-2574, 37th AIAA Thermophysics Conference, Portland, June 28–July 1, 2004.
16.
go back to reference A.G. Pautsch, T.A. Shedd: Spray impingement cooling with single- and multiple-nozzle arrays. Part 1: Heat transfer data using FC-72, International Journal of heat and Mass Transfer, 48, 3167–3175 (2005).CrossRef A.G. Pautsch, T.A. Shedd: Spray impingement cooling with single- and multiple-nozzle arrays. Part 1: Heat transfer data using FC-72, International Journal of heat and Mass Transfer, 48, 3167–3175 (2005).CrossRef
17.
go back to reference H. Tokudo, S. Itoh, M. Kinugawa: Denso common rail technology to successfully meet future emission regulation, Proceedings of the 26th Vienna Motor Symposium, Vienna, 2005. H. Tokudo, S. Itoh, M. Kinugawa: Denso common rail technology to successfully meet future emission regulation, Proceedings of the 26th Vienna Motor Symposium, Vienna, 2005.
18.
go back to reference Y.Y. Zhang, K. Nishida, S. Nomura, T. Ito: Spray characteristics of a group-hole nozzle for direct injection diesel engines, Atomization and Sprays, 16, 35–49 (2006).CrossRef Y.Y. Zhang, K. Nishida, S. Nomura, T. Ito: Spray characteristics of a group-hole nozzle for direct injection diesel engines, Atomization and Sprays, 16, 35–49 (2006).CrossRef
19.
go back to reference K. Nishida, S. Nomura, Y. Matsumoto: Spray and mixture properties of group-hole nozzle for D.I. diesel engine, Proceedings of ICLASS 2006, ICLASS06-171, Kyoto, 2006. K. Nishida, S. Nomura, Y. Matsumoto: Spray and mixture properties of group-hole nozzle for D.I. diesel engine, Proceedings of ICLASS 2006, ICLASS06-171, Kyoto, 2006.
20.
go back to reference J. Gao, S. Moon, Y.Y. Zhang, K. Nishida, Y. Matsumoto: Flame structure of wall impinging diesel fuel sprays injected by group-hole nozzles, Combustion and Flame, 156(6), 1263–1277 (2009).CrossRef J. Gao, S. Moon, Y.Y. Zhang, K. Nishida, Y. Matsumoto: Flame structure of wall impinging diesel fuel sprays injected by group-hole nozzles, Combustion and Flame, 156(6), 1263–1277 (2009).CrossRef
21.
go back to reference A. A. Pawlowski, R. Kneer, A.M. Lippert, S.E. Parrish: Investigation of the interaction of sprays from clustered orifices under ambient conditions relevant for diesel engines, SAE International Journal of Engines, 1(1), 514–527, (2008). A. A. Pawlowski, R. Kneer, A.M. Lippert, S.E. Parrish: Investigation of the interaction of sprays from clustered orifices under ambient conditions relevant for diesel engines, SAE International Journal of Engines, 1(1), 514–527, (2008).
22.
go back to reference Y. Tambour, D. Portnoy: Spray characteristics of two combined jet atomizers, International Journal of Turbo- and Jet Engines, 2, 263–271 (1985). Y. Tambour, D. Portnoy: Spray characteristics of two combined jet atomizers, International Journal of Turbo- and Jet Engines, 2, 263–271 (1985).
23.
go back to reference J.B. Greenberg, I. Silverman, Y. Tambour: On the origins of spray sectional conservation equations, Combustion and Flame, 93, 90–96 (1993).CrossRef J.B. Greenberg, I. Silverman, Y. Tambour: On the origins of spray sectional conservation equations, Combustion and Flame, 93, 90–96 (1993).CrossRef
24.
go back to reference F. Laurent, M. Massot: Multi-fluid modeling of laminar polydispersed spray flames: origin, assumptions and comparison of the sectional and sampling methods, Combustion Theory and Modelling, 5, 537–572 (2001).MATHCrossRef F. Laurent, M. Massot: Multi-fluid modeling of laminar polydispersed spray flames: origin, assumptions and comparison of the sectional and sampling methods, Combustion Theory and Modelling, 5, 537–572 (2001).MATHCrossRef
25.
go back to reference A.J. Yule, Ah. Seng, P.G. Felton, A. Ungut, N.A. Chigier: A study of vaporizing fuel sprays by laser techniques, Combustion and Flame, 44, 71–84 (1982).CrossRef A.J. Yule, Ah. Seng, P.G. Felton, A. Ungut, N.A. Chigier: A study of vaporizing fuel sprays by laser techniques, Combustion and Flame, 44, 71–84 (1982).CrossRef
26.
go back to reference J.B. Greenberg: Characteristics of arrays of spray diffusion flames, AIAA Paper No.1997-3184 33rd AIAA/ASME/SAE/ASEE Joint Propulsion Conference and Exhibit, Seattle, July 6–9, 1997. J.B. Greenberg: Characteristics of arrays of spray diffusion flames, AIAA Paper No.1997-3184 33rd AIAA/ASME/SAE/ASEE Joint Propulsion Conference and Exhibit, Seattle, July 6–9, 1997.
27.
go back to reference J. Ortman, A.H. Lefevbre: Fuel distributions from pressure-swirl atomizers, AIAA Journal of Propulsion and Power, 1, 11–15 (1985).CrossRef J. Ortman, A.H. Lefevbre: Fuel distributions from pressure-swirl atomizers, AIAA Journal of Propulsion and Power, 1, 11–15 (1985).CrossRef
28.
go back to reference T.J. Rosfjord, S. Russell: Nozzle design and manufacturing influences on fuel spray circumferential uniformity, AIAA Journal of Propulsion and Power, 5(2),144–150 (1989). T.J. Rosfjord, S. Russell: Nozzle design and manufacturing influences on fuel spray circumferential uniformity, AIAA Journal of Propulsion and Power, 5(2),144–150 (1989).
29.
go back to reference T.J. Rosfjord, W.A. Eckerle: Nozzle airflow influences on fuel patternation, AIAA/ASME/ASEE 24th Joint Propulsion Conference, Boston, AIAA Paper AIAA-88-3140, 1988. T.J. Rosfjord, W.A. Eckerle: Nozzle airflow influences on fuel patternation, AIAA/ASME/ASEE 24th Joint Propulsion Conference, Boston, AIAA Paper AIAA-88-3140, 1988.
30.
go back to reference L. Hamelnick, J.B. Greenberg: Influence of inlet asymmetries on the characteristics of multiple spray flames, 49th Israel Annual Conference on Aerospace Sciences, Tel-Aviv, March 2009. L. Hamelnick, J.B. Greenberg: Influence of inlet asymmetries on the characteristics of multiple spray flames, 49th Israel Annual Conference on Aerospace Sciences, Tel-Aviv, March 2009.
31.
go back to reference L. Hamelnick, J.B. Greenberg: Multiple spray diffusion flames – effects of dissimilar fuel feed patterns, 23rd Israel Combustion Symposium, Haifa, December 2008 L. Hamelnick, J.B. Greenberg: Multiple spray diffusion flames – effects of dissimilar fuel feed patterns, 23rd Israel Combustion Symposium, Haifa, December 2008
32.
go back to reference R. Kaesemann, H. Fahlenkamp: The meaning of droplet-droplet interaction for the wet flue-gas cleaning process, Chemical Engineering Technology, 25(7), 739–742 (2002).CrossRef R. Kaesemann, H. Fahlenkamp: The meaning of droplet-droplet interaction for the wet flue-gas cleaning process, Chemical Engineering Technology, 25(7), 739–742 (2002).CrossRef
33.
go back to reference S.E. Gant: CFD modeling of water spray barriers, Report HSL/2006/79, Health and Safety Laboratory, Harper Hill, Buxton, Derbyshire, 2006. S.E. Gant: CFD modeling of water spray barriers, Report HSL/2006/79, Health and Safety Laboratory, Harper Hill, Buxton, Derbyshire, 2006.
34.
go back to reference A. Dvorjetski, J.B. Greenberg: Analysis of extinction of counterflow polydisperse spray diffusion flames by a polydisperse water spray, Proceedings of the Combustion Institute, 29, 385–392 (2002).CrossRef A. Dvorjetski, J.B. Greenberg: Analysis of extinction of counterflow polydisperse spray diffusion flames by a polydisperse water spray, Proceedings of the Combustion Institute, 29, 385–392 (2002).CrossRef
35.
go back to reference A. Dvorjetski, J.B. Greenberg: Lewis number and droplet slip effects in water spray suppression of opposed flow diffusion flames, 19th Annual Symposium of the Israeli Section of the Combustion Institute, Haifa, December 2003. A. Dvorjetski, J.B. Greenberg: Lewis number and droplet slip effects in water spray suppression of opposed flow diffusion flames, 19th Annual Symposium of the Israeli Section of the Combustion Institute, Haifa, December 2003.
36.
go back to reference A. Dvorjetski, J.B. Greenberg: Effects of water-mist dynamics and droplet size in suppression of counterflow diffusion flames, Seventh Asian-Pacific Conference on Combustion (ASPACC 09), Tapei, May 2009. A. Dvorjetski, J.B. Greenberg: Effects of water-mist dynamics and droplet size in suppression of counterflow diffusion flames, Seventh Asian-Pacific Conference on Combustion (ASPACC 09), Tapei, May 2009.
37.
go back to reference G. Grant, J. Brenton, D. Drysdale: Fire suppression by water sprays, Progress in Energy and Combustion Science, 26, 70–130 (2000).CrossRef G. Grant, J. Brenton, D. Drysdale: Fire suppression by water sprays, Progress in Energy and Combustion Science, 26, 70–130 (2000).CrossRef
38.
go back to reference J.R. Mawhinney, R. Solomon: Section 6/chapter 15, in Fire Protection Handbook, 18th edition, A.E. Cote (ed.), National Fire Protection Association, Quincy, pp. 6/216–6/248, 1997. J.R. Mawhinney, R. Solomon: Section 6/chapter 15, in Fire Protection Handbook, 18th edition, A.E. Cote (ed.), National Fire Protection Association, Quincy, pp. 6/216–6/248, 1997.
39.
go back to reference A.M. Lentati, H.K. Chelliah: Dynamics of water droplets in a counterflow field and their effect on flame extinction, Combustion and Flame, 115, 158–179 (1998).CrossRef A.M. Lentati, H.K. Chelliah: Dynamics of water droplets in a counterflow field and their effect on flame extinction, Combustion and Flame, 115, 158–179 (1998).CrossRef
40.
go back to reference E.J.P. Zegers, B.A. Williams, E.M. Fisher, J.W. Fleming, R.S. Sheinson: Suppression of non-premixed flames by fluorinated ethanes and propanes, Combustion and Flame, 121, 471–487 (2000).CrossRef E.J.P. Zegers, B.A. Williams, E.M. Fisher, J.W. Fleming, R.S. Sheinson: Suppression of non-premixed flames by fluorinated ethanes and propanes, Combustion and Flame, 121, 471–487 (2000).CrossRef
41.
go back to reference S.W. Park, H.K. Suh, C.S. Lee, N. Abani, R.D. Reitz: Modeling of group-hole-nozzle sprays using grid-size-, hole location- and time-step-independent models, Atomization and Sprays, 19(6), 567–582 (2009).CrossRef S.W. Park, H.K. Suh, C.S. Lee, N. Abani, R.D. Reitz: Modeling of group-hole-nozzle sprays using grid-size-, hole location- and time-step-independent models, Atomization and Sprays, 19(6), 567–582 (2009).CrossRef
42.
go back to reference A.A. Amsden: KIVA-3V Release 2, Improvement to KIVA-3V, Los Alamos National Laboratory, LA-UR-99-915, Los Alamos, 1999. A.A. Amsden: KIVA-3V Release 2, Improvement to KIVA-3V, Los Alamos National Laboratory, LA-UR-99-915, Los Alamos, 1999.
43.
go back to reference Y.J. Jiang, A. Umemura, C.K. Law: An experimental investigation on the collision behaviour of hydrocarbon droplets, Journal of Fluid Mechanics, 234, 171–190 (1992).CrossRef Y.J. Jiang, A. Umemura, C.K. Law: An experimental investigation on the collision behaviour of hydrocarbon droplets, Journal of Fluid Mechanics, 234, 171–190 (1992).CrossRef
44.
go back to reference J. Qian, C.K. Law: Regimes of coalescence and separation in droplet collision, Journal of Fluid Mechanics, 331, 59–80 (1997).CrossRef J. Qian, C.K. Law: Regimes of coalescence and separation in droplet collision, Journal of Fluid Mechanics, 331, 59–80 (1997).CrossRef
45.
go back to reference P. Zhang, C.K. Law: Theory of bouncing and coalescence in droplet collision, Paper # G16, 5th US Combustion Meeting, University of California at San Diego, San Diego, March, 2007. P. Zhang, C.K. Law: Theory of bouncing and coalescence in droplet collision, Paper # G16, 5th US Combustion Meeting, University of California at San Diego, San Diego, March, 2007.
46.
go back to reference P.J. O’Rourke: Collective drop effects on vaporizing liquid sprays, PhD thesis, Princeton University, Princeton, 1981. P.J. O’Rourke: Collective drop effects on vaporizing liquid sprays, PhD thesis, Princeton University, Princeton, 1981.
47.
go back to reference F.A. Williams: Combustion Theory, The Benjamin/Cummings Publishing Company, Menlo Park, 1985. F.A. Williams: Combustion Theory, The Benjamin/Cummings Publishing Company, Menlo Park, 1985.
48.
go back to reference J.C. Beck: Computational modeling of polydisperse sprays without segregation into droplet size classes, PhD thesis, Department of Mechanical Engineering, University of Manchester Institute of Science and Technology, Manchester, September 2000. J.C. Beck: Computational modeling of polydisperse sprays without segregation into droplet size classes, PhD thesis, Department of Mechanical Engineering, University of Manchester Institute of Science and Technology, Manchester, September 2000.
49.
go back to reference R.O. Fox, F. Laurent, M. Massot: Numerical simulation of spray coalescence in an Eulerian framework: direct quadrature method of moments and multi-fluid method, Journal of Computational Physics, 227, 3058–3088 (2008).MATHCrossRefMathSciNet R.O. Fox, F. Laurent, M. Massot: Numerical simulation of spray coalescence in an Eulerian framework: direct quadrature method of moments and multi-fluid method, Journal of Computational Physics, 227, 3058–3088 (2008).MATHCrossRefMathSciNet
50.
go back to reference M. Massot: Eulerian multi-fluid models for polydisperse evaporating sprays, in multiphase reacting flows: modeling and simulations, in CISM – International Centre for Mechanical Sciences – Courses and Lecture Series, vol. 492, D.L. Marchisio and R.O. Fox (eds), Springer, Wien, 2007. M. Massot: Eulerian multi-fluid models for polydisperse evaporating sprays, in multiphase reacting flows: modeling and simulations, in CISM – International Centre for Mechanical Sciences – Courses and Lecture Series, vol. 492, D.L. Marchisio and R.O. Fox (eds), Springer, Wien, 2007.
51.
go back to reference J. Reveillon, L. Vervisch: Analysis of weakly turbulent diluted-spray flames and spray combustion regimes, Journal of Fluid Mechanics, 537, 317–347 (2005).MATHCrossRef J. Reveillon, L. Vervisch: Analysis of weakly turbulent diluted-spray flames and spray combustion regimes, Journal of Fluid Mechanics, 537, 317–347 (2005).MATHCrossRef
52.
go back to reference M.A. Gorokhovski: The stochastic Lagrangian model of drops breakup in the computation of liquid sprays, Atomization and Sprays, 11, 505–520 (2001). M.A. Gorokhovski: The stochastic Lagrangian model of drops breakup in the computation of liquid sprays, Atomization and Sprays, 11, 505–520 (2001).
53.
go back to reference S.V. Apte, M.A. Gorokhovski, P. Moin: LES of atomizing spray with stochastic modeling of secondary breakup, International Journal of Multiphase Flow, 29, 1502–1522 (2003). S.V. Apte, M.A. Gorokhovski, P. Moin: LES of atomizing spray with stochastic modeling of secondary breakup, International Journal of Multiphase Flow, 29, 1502–1522 (2003).
Metadata
Title
Interacting Sprays
Author
J. B. Greenberg
Copyright Year
2011
Publisher
Springer US
DOI
https://doi.org/10.1007/978-1-4419-7264-4_22

Premium Partners