Modeling Acoustic Effects on shear-Coaxial Jet Flow Utilizing Molecular Dynamic Simulation

Abstract

The purpose of this research is to determine if acoustical effects on a coaxial shear injection jet flow can be modeled through the use of molecular dynamic simulation. Molecular dynamic simulations model flows as a group of interacting particles. The flow in this research was simulated using nitrogen molecules. The initial task involved achieving effective geometry for a simulated coaxial jet. The coaxial jet geometry was driven by the desire for simulations to operate in the continuum regime, which requires very low Knudsen numbers. Three outer to inner jet ratios of 0.0, 1.0, and 6.0 were examined with the inner jet velocity maintained constant at 50 m/s. Velocity profiles in the coaxial component need to be controlled in order to validate the continuum flow. Acoustic interference is introduced into the simulation, and mixing and density profiles provide valuable information into the how the flow is affected by the acoustic interference. Radial density profiles also provide information about the shape the jet with and without acoustic interference as it exits the injector. The affects of acoustic interference for most cases showed good agreement with the previous experimental data. Results showed good validation of the simulation and warrants more in-depth study.

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Document Details

Document Type
Technical Report
Publication Date
Mar 01, 2007
Accession Number
ADA469233

Entities

People

  • Jermaine S. Sailsman

Organizations

  • Air Force Institute of Technology

Tags

Communities of Interest

  • Air Platforms
  • Energy and Power Technologies
  • Materials and Manufacturing Processes

DTIC Thesaurus Topics

  • Acoustics
  • Air Force
  • Boundary Layer
  • Differential Equations
  • Equations Of Motion
  • Experimental Data
  • Flow
  • Fluid Dynamics
  • Fluid Flow
  • Geometry
  • Jet Flow
  • Knudsen Number
  • Molecular Dynamics
  • Parallel Computing
  • Physics
  • Simulations
  • Standing Waves

Fields of Study

  • Physics

Readers

  • Computational Fluid Dynamics (CFD)
  • Fluid Mechanics and Fluid Dynamics.