Turbulence Anisotropy Investigations in an Internal Combustion Engine

Author:

MacDonald James R.1,Fajardo Claudia M.1

Affiliation:

1. Department of Mechanical and Aerospace Engineering, Western Michigan University, 4601 Campus Drive, Kalamazoo, MI 49008-5343

Abstract

Abstract The assumption of isotropic turbulence is commonly incorporated into models of the internal combustion engine (ICE) in-cylinder flows. While preliminary analysis with two-dimensional (2D) velocity data indicates that the turbulence may tend to isotropy as the piston approaches top-dead-center (TDC), the validity of this assumption has not been fully investigated, partially due to the lack of three-component velocity data in ICEs. In this work, the velocity was measured using two-dimensional, three-component (2D-3C) particle image velocimetry in a single-cylinder, motored, research engine to investigate the evolution of turbulence anisotropy throughout the compression stroke. Invariants of the Reynolds stress anisotropy tensor were calculated and visualized, through the Lumley triangle, to investigate turbulence states. Results showed the turbulence to be mostly anisotropic, with preferential tendency toward 2D axisymmetry at the beginning of the compression stroke and approaching-isotropy near top-dead-center. Findings provide new insights into turbulence in dynamic, bounded flows to assist with the development of physics-based, quantitative models.

Funder

National Science Foundation

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference19 articles.

1. Stereoscopic Multi-Planar PIV Measurements of in-Cylinder Tumbling Flow;Exp. Fluids,2012

2. Two-Point Spatial Velocity Correlations in the Near-Wall Region of a Reciprocating Internal Combustion Engine,2017

3. Development of a High-Speed UV Particle Image Velocimetry Technique and Application for Measurements in Internal Combustion Engines;Exp. Fluids,2009

4. Modeling of Non-Equilibrium Homogeneous Turbulence in Rapidly Compressed Flows;Flow, Turbul. Combust.,2014

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