Selektive katalytische Reduktion von Stickoxiden in Kraftfahrzeugen ...

Selektive katalytische Reduktion von Stickoxiden in Kraftfahrzeugen ... Selektive katalytische Reduktion von Stickoxiden in Kraftfahrzeugen ...

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Literaturverzeichnis<br />

[23] Burger, M., Schmehl, R., Prommersberger, P., Schaefer, O., Koch, R. und Wittig,<br />

S. A Multi-Component Droplet Evaporation Model for Real Aviation Fuels at<br />

Elevated Pressures. InProc. ILASS-2002. ILASS-Europe, 2002.<br />

[24] Burger, M., Schmehl, R., Prommersberger, P., Schaefer, O., Koch, R. und Wittig,<br />

S. Droplet evaporation model<strong>in</strong>g by the distillation curve model: account<strong>in</strong>g for<br />

keros<strong>in</strong>e fuel and elevated pressures. Int. J. Heat Mass Transfer, 46:4403–4412,<br />

2003.<br />

[25] Campolo, M., Salvetti, M. V. und Soldati, A. Mechanisms for Microparticle<br />

Dispersion <strong>in</strong> a Jet <strong>in</strong> Crossflow. AIChE Journal, 51 (1):28–43, 2005.<br />

[26] Chaves, H., Kubitzek, A. M. und Obermeier, F. Dynamic process occurr<strong>in</strong>g<br />

dur<strong>in</strong>g the spread<strong>in</strong>g of th<strong>in</strong> liquid films produced by drop impact on hot walls.<br />

Int. J. Heat and Fluid Flow, 20:470–476, 1999.<br />

[27] Chen, M. und Williams, S. Modell<strong>in</strong>g and Optimization of SCR-Exhaust Aftertreatment<br />

Systems. SAE, 2005-01-0969, 2005.<br />

[28] Ch<strong>in</strong>, J. S. An Eng<strong>in</strong>eer<strong>in</strong>g Calculation Method for Multi-Component Stagnant<br />

Droplet Evaporation with F<strong>in</strong>ite Diffusivity. ASME 94-GT-440, 1994.<br />

[29] Coghe, A., Cossali, G. E. und Marengo, M. A First Study about S<strong>in</strong>gle Drop<br />

Imp<strong>in</strong>gement on Th<strong>in</strong> Liquid Film <strong>in</strong> a Low Laplace Number Range. In Proc.<br />

11th European Conf. of ILASS Europe’1995, Nürnberg, Germany, Seiten 285–<br />

293. ILASS, 1995.<br />

[30] Cremer, M. A., Edd<strong>in</strong>gs, E., Martz, T., Muzio, L. J., Quartucy, Q., Hardman,<br />

R., Cox, J. und Stall<strong>in</strong>gs, J. Assessment of SNCR Performance on Large Coal-<br />

Fired Utility Boilers. 1998 U.S. DOE Conference on SCR and SNCR for NOx<br />

Control, Pittsburg, PA, 1998.<br />

[31] Daubert, T. E. und Danner, R. P. Physical and thermodynamic properties of pure<br />

chemicals: data compilation. Hemisphere Publish<strong>in</strong>g Corporation, New York,<br />

1989.<br />

[32] Deur, J. M., Jonnavithula, S., Dhanapalan, S., Schulz, K., Raghunathan, B., Nakla,<br />

H., Meeks, E. und Chou, C. P. Simulation of Eng<strong>in</strong>e Exhaust Aftertreatment<br />

with CFD us<strong>in</strong>g Detailed Chemistry. InProc. 12th International Multidimensional<br />

Eng<strong>in</strong>e Model<strong>in</strong>g User’s Group, Eng<strong>in</strong>e Research Center, Detroit, MI, USA.<br />

2002.<br />

139

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