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Cavitation!
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Analysis of Transient Cavitating Flows in Diesel Injectors Using Diesel and Biodiesel Fuels
Number: 2010-01-2245
Published: 2010-10-25
Content Type: Technical Paper
Publisher: SAE International
Language: English
DOI: 10.4271/2010-01-2245
Author(s): Michele Battistoni - Universita degli Studi di Perugia; Carlo Nazareno Grimaldi - Universita degli Studi di Perugia
Citation:
Battistoni, M. and Grimaldi, C., "Analysis of Transient Cavitating Flows in Diesel Injectors Using Diesel and Biodiesel Fuels," SAE Int. J. Fuels Lubr. 3(2):879-900, 2010, doi:10.4271/2010-01-2245.
Citation
Abstract:
The aim of the paper is the comparison of the injection process with different fuels , i.e. a standard diesel fuel and a pure biodiesel. Multiphase cavitating flows inside diesel nozzles are analyzed by means of unsteady CFD simulations using a two- fluid approach with consideration of bubble dynamics, on moving grids from needle opening to closure. Two five-hole nozzles with cylindrical and conical holes are studied and their behaviors are discussed taking into account the different properties of the two fuels . Extent of cavitation regions is not much affected by the fuel type. Biodiesel leads to significantly higher mass flow only if the nozzle design induces significant cavitation which extends up to the outlet section and if the injector needle is at high lift. If the internal hole shaping is able to suppress cavitation, the stabilized mass flows are very similar with both fuels . On the contrary, as long as the lifts are small and the flow is turbulent, diesel fuel gives higher mass flows due to lower frictions along the needle seat and the nozzle walls. Detailed analyses of the injection processes are presented, including flow pattern development inside the nozzles.
References:
Grimaldi, C.N., Postrioti, L., Battistoni, M., Millo, F., “Common-Rail HSDI Diesel Engine Combustion and Emissions With Fossil/Bio-Derived Fuel Blends,” SAE Technical Paper 2002-01-0865, 2002, doi:10.4271/2002-01-0865.
Priesching, P., Pavlovic, Z., Ertl, P., Del Giacomo, N., Beatrice, C., Mancaruso, E., Vaglieco, B.M., “Numerical and Experimental Investigation of the Influence of Bio-Diesel Blends on the Mixture Formation, Combustion and Emission Behavior of a Modern HSDI Diesel Engine,” SAE Technical Paper 2009-24-0041, 2009, doi:10.4271/2009-24-0041.
Patterson, J., Hassan, M.G., Clarke, A., Shama, G., Helgardt, K. and Chen, R., “Experimental Study of DI Diesel Engine Performance using Three Different Biodiesel Fuels,” SAE Technical Paper 2006-01-0234, 2006, doi:10.4271/2006-01-0234.
Lujan, J.M., Tormos, B., Salvador, F.J., and Gardar, K., Comparative analysis of a DI Diesel engine fuelled wth biodiesel blends during the European MVEG-A cycle: preliminary study (I), Biomass and Energy, 33(6-7) pp. 941-947.
Lujan, J.M., Bermúdez, V., Tormos, B., Pla, B., Comparative analysis of a DI Diesel engine fuelled wth biodiesel blends during the European MVEG-A cycle: performances and emissions (II), Biomass and Energy, 33(6-7) pp. 948-956.
Postrioti, L., Battistoni, M., Grimaldi, C.N., Millo, F., “Injection Strategies Tuning for the use of Bio-Derived Fuels in a Common Rail HSDI Diesel Engine,” SAE Technical Paper 2003-01-0768, 2003, doi:10.4271/2003-01-0768.
Battistoni, M., Experimental Analysis of a Common-Rail DI Diesel Engine Fuelled with Bio-Derived Alternative Fuels, Ph.D. Thesis, University of Perugia, XVI ciclo, 2004.
Desantes, J., Payri, R., Salvador, F.J., De la Morena, J., “Cavitation Effects On Spray Characteristics In The Near-Nozzle Field,” SAE Technical Paper 2009-24-0037, 2009, doi:10.4271/2009-24-0037.
Gavaises, M., Andriotis, A., “Cavitation Inside Multi-hole Injectors for Large Diesel Engines and Its Effect on the Near-nozzle Spray Structure,” SAE Technical Paper 2006-01-1114, 2006, doi:10.4271/2006-01-1114.
Payri, R., Desantes, J.M., Salvador, F.J., Manin, J., “Influence on Diesel Injection Characteristics and Behavior using Biodiesel Fuels,” SAE Technical Paper 2009-01-0851, 2009, doi:10.4271/2009-01-0851.
Grimaldi, C.N., Postrioti, L., “Experimental Comparison Between Conventional and Bio-derived Fuels Sprays from a Commn Rail Injection System,” SAE Technical Paper 2000-01-1252, 2000, doi:10.4271/2000-01-1252.
Postrioti, L., Grimaldi, C.N., Ceccobello, M., Di Gioia, R., “Diesel Common Rail Injection System Behavior with Different Fuels,” SAE Technical Paper 2004-01-0029, 2004, doi:10.4271/2004-01-0029.
Brennen, C.E., Fundamentals of Multiphase Flows, Cambridge University Press, 2005.
Giannadakis, E., Papoulias, D., Gavaises, M., Arcoumanis, C., Soteriou, C., Tang, W., “Evaluation of the Predictive Capability of Diesel Nozzle Cavitation Models,” SAE Technical Paper 2007-01-0245, 2007, doi:10.4271/2007-01-0245.
Ning, W, Reitz, R.D, Diwakar, R., Lippert, A.M., “A Numerical Investigatin of Nozzle Geometry and Injection Condition Effects on Diesel Fuel Injector Flow Physics,” SAE Technical Paper 2008-01-0936, 2008, doi:10.4271/2008-01-0936.
Wang, X., Su, W., “Influence of Injection Pressure Fluctuations on Cavitation inside a Nozzle Hole at Diesel Engine Conditions,” SAE Technical Paper 2008-01-0935, 2008, doi:10.4271/2008-01-0935.
Chiatti, G., Chiavola, O., Palmieri, F., “Flow Features in Reduced Dwell Time Diesel Injector,” SAE Technical Paper 2008-01-0927, 2008, doi:10.4271/2008-01-0927.
Chiatti, G., Chiavola, O., Palmieri, F., “Injector Dynamic and Nozzle Flow Features in Multiple Injection Modeling,” SAE Technical Paper 2007-24-0038, 2007, doi:10.4271/2007-24-0038.
Avl List GmbH, AVL Fire v.2009 - Eulerian Multiphase, 2009.
Drew, D.A. and Passman, S.L. Theory of Multicomponent Fluids, Springer, New York, 1998.
Alajbegovic, A., Grogger, H.A., Philipp, H., Calculation of Transient Cavitation in Nozzle Using the Two-Fluid Model, ILASS-Americas 99, Conference Proceedings, 1999.
Alajbegovic, A., Meister, G., Greif, D., Basara, B., Three phase cavitating flows in high-pressure swirl injectors, Experimental Thermal and Fluid Science 26(6-7), pp. 677-681, 2002.
Sato, Y. and Sekoguchi, K., Liquid velocity distribution in two-phase bubble flow, Int. J. Multiphase Flow, 2 (79), 1975.
Hanjalic, K., Popovac, M. and Hadziabdic, M., A robust near-wall elliptic relaxation eddy-viscosity turbulence model for CFD, Int. J. of Heat and Fluid Flow, 25(6), pp. 1360-1378, 2004.
Popovac, M., Hanjalic, K., Compound Wall Treatment for RANS Computation of Complex Turbulent Flows and Heat Transfer, Int. J. of Heat and Fluid Flow, 78(2), pp. 177-202, 2007.
Avl List GmbH, AVL Fire v.2009 - CFD Solver, 2009.
Hinze, J.O., Turbulence, McGraw-Hill, New York, 1975.
Payri, F., Margot, X., Patouna, S., Ravet, F., Funk, M., “A CFD Study of the Effect of the Needle Movement on the Cavitation Pattern of Diesel Injectors,” SAE Technical Paper 2009-24-0025, 2009,” doi:10.4271/2009-24-0025.
Ishii, M., Sun, X. and Kim, S., Modeling strategy of the source and sink terms in the two-group interfacial area transport equation, Annals of Nuclear Energy, 30 (13), pp. 1309-1331, 2003.
Perry, R.H., Green, D.W., Perry's Chemical Engineers' Handbook, McGraw-Hill, 1997.
Yuan, W., Hansen, A.C., Zhang, Q., Vapor pressure and normal boiling point predictions for pure methyl esters and biodiesel fuels, Fuel, 84(7-8), pp. 943-950, 2005.
Yuan, W., Hansen, A.C., Zhang, Q., Predicting the temperature dependent viscosity of biodiesel fuels, Fuel, 88(6), pp. 1120-1126, 2009.
Goodrum, J.W., Volatility and boiling points of biodiesel from vegetable oils and tallow, Biomass and Bioenergy 22, pp. 205 - 211, 2002.
Soteriou, C., Andrews, R., Smith, M., “Direct Injection Diesel Sprays and the Effect of Cavitation and Hydraulic Flip on Atomization,” SAE Technical Paper 950080, 1995, doi:10.4271/950080.
Nurick, W.H., Orifice Cavitation and its Effects on Spray Mixing, ASME Journal of Fluids Engineering, 98, pp. 681-687, 1976.
Chaves, H., Knapp, M., Kubitzek, A., Obermeier, F., Schneider, T., “Experimental Study of Cavitation in the Nozzle Hole of Diesel Injectors Using Transparent Nozzles,” SAE Technical Paper 950290, 1995, doi:10.4271/950290.
Lichtarowicz, A.K., Duggins, R.K., Markland, E., Discharge coefficients for incompressible no-cavitating flow through long orifices, J. Mech. Engineering Science, 7(2), pp. 210-219, 1965.
Von Kuensberg Sarre, C., Kong, S.C., Reitz, R.D., “Modeling the Effects of Injector Nozzle Geometry on Diesel Sprays,” SAE Technical Paper 1999-01-0912, 1999, doi:10.4271/1999-01-0912.
Ramamurthi, K., Nandakumar, K., Characteristics of flow through small sharp-edged cylindrical orifices, Flow Measurement and Instrumentation, 10, pp. 133-143, 1999.
Payri, R., García, J.M., Salvador, F.J., Gimeno, J., Using spray momentum flux measurements to understand the influence of diesel nozzle geometry on spray characteristics, Fuel, 84, pp. 551-561, 2005.
Postrioti, L., Grimaldi, C.N., Ubertini, S., Bella, G., “Study of the Influence of the Injection System in a Multi-dimensional Spray Simulation,” SAE Technical Paper 2005-24-088, 2005, doi:10.4271/2005-24-088.
Foschini, L., Analisi numerica 1D di un sistema di iniezione Common Rail Bosch, MS Thesis, University of Perugia, 2004.
Gatti, L., Analisi CFD-3D in regime transitorio della cavitazione in un iniettore diesel, MS Thesis, University of Perugia, 2009.
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