Miniature free-piston homogeneous charge compression ignition engine-compressor concept—Part II: modeling HCCI combustion in small scales with detailed homogeneous gas phase chemical kinetics

Author:

T. Aichlmayr H.,B. Kittelson D.,R. Zachariah M.

Publisher

Elsevier BV

Subject

Applied Mathematics,Industrial and Manufacturing Engineering,General Chemical Engineering,General Chemistry

Reference29 articles.

1. Aceves, S. M., Flowers, D. L., Martinez-Frias, J., Smith, J.R., Westbrook, Charles, K., Pitz, W. J., Dibble, R., Wright, J. F., Akinyemi, W. C., & Hessel, R. P. (2001). A sequential fluid-mechanic chemical-kinetic model of propane HCCI combustion. In: J. Rey Agama & J. D. Hiltner (Eds.), Homogeneous charge compression ignition (HCCI) combustion, SP-1623 (pp. 51–61). Warrendale, PA: Society of Automotive Engineers.

2. Aceves, S. M., Flowers, D. L., Westbrook, C. K., Smith, J. R., Pitz, W., Dibble, R., Christensen, M., & Johansson, B. (2000). A multi-zone model for prediction of HCCI combustion and emissions. SAE Technical Paper 2000-01-0327.

3. Compression ratio effect on methane HCCI combustion;Aceves;Journal of Engineering for Gas Turbines and Power,1999

4. Amano, T., Morimoto, S., & Kawabata, Y. (2001). Modeling the effect of air/fuel ratio and temperature distribution on HCCI engines. In: J. Rey Agama & J. D. Hiltner (Eds.), Homogeneous charge compression ignition (HCCI) combustion, SP-1623 (pp. 23–29). Warrendale, PA: Society of Automotive Engineers.

5. Amsden, A. A. (1993). KIVA-3: A KIVA program with block-structured mesh for complex geometries. Report LA-12503-MS, Los Alamos National Laboratory, Los Alamos, NM.

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