Modelling of heat transfer in internal combustion engines with variable density effect

Author:

Keum S1,Park H2,Babajimopoulos A1,Assanis D N1,Jung D3

Affiliation:

1. Department of Mechanical Engineering, University of Michigan, Ann Arbor, Michigan, USA

2. Samsung Heavy Industry, Geoje-Si, Gyeongsangnam-Do, Republic of Korea

3. Department of Mechanical Engineering, University of Michigan–Dearborn, Dearborn, Michigan, USA

Abstract

Heat transfer is one of the major factors affecting the performance, efficiency, and emissions of internal combustion engines. As convection heat transfer is dominant in engine heat transfer, accurate modelling of the boundary layer heat transfer is required. In engine computational fluid dynamics (CFD) simulations, the wall function approach has been widely used to model the near-wall flow and temperature field. The present paper suggests a modified wall function approach to model heat transfer in internal combustion engines. Special emphasis has been placed on introducing the effect of variable density and variable viscosity in the model formulation. A non-dimensional temperature corrector is suggested to incorporate the variable density effect on the wall function approach. The suggested model is applied in KIVA-3V and is validated against experimental data of a homogeneous charge compression-ignition engine, showing improved predictions for pressure and emissions compared with the standard wall function model.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Ocean Engineering,Aerospace Engineering,Automotive Engineering

Reference14 articles.

1. Chang J. Thermal characterization and heat transfer study of a gasoline homogeneous charge compression ignition engine via measurement of instantaneous wall temperature and heat flux in the combustion chamber. Dissertation. Department of Mechanical Engineering, The University of Michigan, 2004.

2. Near-wall turbulence models for complex flows including separation

3. Turbulence models for near-wall and low Reynolds number flows - A review

4. Internal-combustion engine heat transfer

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