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Articles

Combustion Simulations under IC Engine-Relevant Conditions Using Dynamic Adaptive Multi-Zone Method

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Pages 2242-2265 | Received 10 Feb 2017, Accepted 17 Aug 2017, Published online: 06 Sep 2017

References

  • Amsden, A.A. 1997. KIVA-3V: A block-structured KIVA program for engines with vertical or canted valves. Los Alamos National Laboratory, Albuquerque, NM.
  • Anderson, E., Bai, Z., Dongarra, J., and Dongarra, J. 1990. A portable linear algebra library for high-performance computers. In A. Greenbaum, A. McKenney, and J. Du Croz (Eds.), LAPACK: Proceedings of the 1990 ACM/IEEE Conference on Supercomputing, IEEE Computer Society Press, Los Alamitos, CA, USA, pp. 2–11.
  • Babajimopoulos, A., Assanis, D.N., Flowers, D.L., Aceves, S.M., and Hessel, R.P. 2005. A fully coupled computational fluid dynamics and multi-zone model with detailed chemical kinetics for the simulation of premixed charge compression ignition engines. Int. J. Engine Res., 6, 497–512.
  • Barths, H., Felsch, C., and Peters, N. 2009. Mixing models for the two-way-couplings of CFD codes and zero-dimensional multi-zone codes to model HCCI combustion. Combust. Flame, 156, 130–139.
  • Chen, Z. 2008. Studies on the initiation, propagation, and extinction of premixed flames. PhD thesis. Princeton University, Princeton, NJ.
  • Coussement, A., Isaac, B.J., and Gicquel, O. 2016. Assessment of different chemistry reduction methods based on principal component analysis: Comparison of the MG-PCA and score-PCA approaches. Combust. Flame, 168, 83–97.
  • Elbahloul, S., and Rigopoulos, S. 2015. Rate-controlled constrained equilibrium (RCCE) simulations of turbulent partially premixed flames (Sandia D/E/F) and comparison with detailed chemistry. Combust. Flame, 162, 2256–2271.
  • Goldin, G., Ren, Z., and Zahirovic, S. 2009. A cell agglomeration algorithm for accelerating detailed chemistry in CFD. Combust. Theor. Model., 13, 721–739.
  • Hajireza, S., Mauss, F., and Sundén, B. 2000. Hot-spot auto-ignition in spark ignition engines. Proc. Combust. Inst., 28, 1169–1175.
  • Hiremath, V., Ren, Z., and Pope, S.B. 2011. Combined dimension reduction and tabulation strategy using ISAT–RCCE–GALI for the efficient implementation of combustion chemistry. Combust. Flame, 158, 2113–2127.
  • Isaac, B.J., Thornock, J.N., and Sutherland, J. 2015. Advanced regression methods for combustion modelling using principal components. Combust. Flame, 162, 2592–2601.
  • Jia, M., Xie, M., and Peng, Z. 2008. A comparative study of multi-zone combustion models for HCCI engines. SAE Paper 2008-01-0064.
  • Kee, R.J., Coltrin, M.E., and Glarborg, P. 2003. Chemically Reacting Flow: Theory and Practice, John Wiley, New York.
  • Kodavasal, J., Keum, S.H., and Babajimopoulos. A. 2011. An extended multi-zone combustion model for PCI simulation. Combust. Theor. Model., 16, 893–910.
  • Liang, L., Stevens, J.G., and Farrell, J.T. 2009. A dynamic multi-zone partitioning scheme for solving detailed chemical kinetics in reactive flow computations. Combust. Sci. Technol., 181, 1345–1371.
  • Locantore, N., Marron, J.S., and Simpson, D.G. 1999. Robust principal component analysis for functional data. Test, 8, 71–73.
  • Lu, L., Najt, P.M., Kuo, T.W., Sankaran, V., and Oefelein, J. 2013. A fully integrated linear eddy and chemistry agglomeration method with detailed chemical kinetics for studying the effect of stratification on HCCI combustion. Fuel, 105, 653–663.
  • Lu, L., and Pope, S.B. 2009. An improved algorithm for in situ adaptive tabulation. J. Comput. Phys., 228, 361–386.
  • Lu, T., and Law, C.K. 2005. A directed relation graph method for mechanism reduction. Proc. Combust. Inst., 30, 1333–1341.
  • Lu, T., and Law, C.K. 2009. Toward accommodating realistic fuel chemistry in large-scale computations. Proc. Combust. Inst., 35, 192–215.
  • Maas, U., and Pope, S.B. 1992. Simplifying chemical kinetics: Intrinsic low-dimensional manifolds in composition space. Combust. Flame, 88, 239–264.
  • Massias, A., Diamantis, D., Mastorakos, E., and Goussis, D.A. 1999. An algorithm for the construction of global reduced mechanisms with CSP data. Combust. Flame, 117, 685–708.
  • Pilling, M.J. 1997. Low-Temperature Combustion and Auto-Ignition, vol. 35, Elsevier, Amsterdam, The Netherlands.
  • Pope, S.B. 1997. Computationally efficient implementation of combustion chemistry using in situ adaptive tabulation. Combust. Theor. Model., 1, 41–63.
  • Ra, Y., and Reitz, R.D. 2008. A reduced chemical kinetic model for IC engine combustion simulations with primary reference fuels. Combust. Flame, 155, 713–738.
  • Ren, Z., Goldin, G.M., Hiremath, V., and Pope, S.B. 2011. Reduced description of reactive flows with tabulation of chemistry. Combust. Theor. Model., 15, 827–848.
  • Ren, Z., Liu, Y., Lu, T., Lu, L., Oluwole, O.O., and Goldin, G.M. 2014. The use of dynamic adaptive chemistry and tabulation in reactive flow simulations. Combust. Flame, 161, 127–137.
  • Shi, Y., Liang, L., Ge, H.W., and Reitz, R.D. 2010. Acceleration of the chemistry solver for modeling DI engine combustion using dynamic adaptive chemistry (DAC) schemes. Combust. Theor. Model., 14, 69–89.
  • Sone, K., and Menon, S. 2001. Implementation of large-eddy simulation into the KIVA code. Part 1. Evaluation of KIVALES. American Institute of Aeronautics & Astronautics Technical Report CCL-2001-008.
  • Sone, K., Patel, N.V., and Menon, S. 2000. Implementations of large-eddy simulation into KIVA code. Part 2. Practicums on implementation. Georgia Institute of Technology Technical Report CCL-00-009.
  • Tomlin, A.S., Agbro, E., Nevrlý, V., Dlabka, J., and Vašinek, M. 2014. Evaluation of Combustion Mechanisms Using Global Uncertainty and Sensitivity Analyses: A Case Study for Low‐Temperature Dimethyl Ether Oxidation. Int. J. Chem. Kinet., 46, 662–682.
  • Wang, Z., Wang, Y., and Reitz, R.D. 2012. Pressure oscillation and chemical kinetics coupling during knock processes in gasoline engine combustion. Energy Fuels, 26, 7107–7119.
  • Wei, H., Chen, C., Zhou, H., Zhao, W., and Ren, Z. 2016. Effect of turbulent mixing on the end gas auto-ignition of n-heptane/air mixtures under IC engine-relevant conditions. Combust. Flame, 174, 25–36.
  • Xie, W., Lu, Z., Ren, Z., and Hou, L. 2016. Dynamic adaptive chemistry via species time-scale and Jacobian-aided rate analysis. Proc. Combust. Inst.
  • Yao, M., Zheng, Z., and Liu, H. 2009. Progress and recent trends in homogeneous charge compression ignition (HCCI) engines. Proc. Combust. Inst., 35, 398–437.
  • Zhou, L., and Wei, H. 2017. An investigation of in situ adaptive tabulation for premixed and nonpremixed combustion engine simulations with primary reference fuel mechanism. Appl. Therm. Eng., 111, 526–536.

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