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Email

mitchell.lozier@unimelb.edu.au

Credentials


Position
Research Fellow in Fluid Mechanics
Department of Mechanical Engineering
Education
Bachelors Degree
Rose-Hulman Institute of Technology
Masters (Research)
University of Notre Dame
Doctorate (Research)
University of Notre Dame
ORCID

0000-0002-5150-0289

Dr Mitchell Lozier

Research Fellow in Fluid Mechanics
Department of Mechanical Engineering

19 Scholarly works
0 Projects

HIGHLIGHTS

  • 2026

    Journal article

    The effect of pressure gradient history on inter-scale interactions in high-Reynolds number turbulent boundary layers
    DOI: 10.1088/1742-6596/3173/1/012013
  • 2025

    Journal article

    Defining the mean turbulent boundary layer thickness based on streamwise velocity skewness
    DOI: 10.1017/jfm.2025.10711
  • 2025

    Conference Proceedings

    Turbulent/Non-turbulent Interface in High Reynolds Number Pressure Gradient Boundary Layers
    DOI: 10.1007/978-3-031-78151-3_1
  • 2024

    Journal article

    Response of a Turbulent Boundary Layer to an Imposed Synthetic Large-Scale Structure
    DOI: 10.2514/1.J062916
  • 2024

    Conference Proceedings

    EVOLUTION OF A HIGH REYNOLDS NUMBER ADVERSE-PRESSURE GRADIENT TURBULENT BOUNDARY LAYER FROM A CANONICAL UPSTREAM CONDITION
  • 2024

    Conference Proceedings

    EXPERIMENTAL STUDIES OF SPANWISE CORRELATION IN AN ACTUATED TURBULENT BOUNDARY LAYER
  • 2024

    Journal article

    Revisiting amplitude modulation in non-canonical wall-turbulence through high-Reynolds number experimental data
    DOI: 10.1103/physrevfluids.9.124602
Mitchell Lozier

RECENT SCHOLARLY WORKS

  • 2023

    Journal article

    Experimental investigation of turbulent boundary layer dynamics via active manipulation of large-scale structures
    DOI: 10.1016/j.ijheatfluidflow.2023.109194
  • 2023

    Conference Proceedings

    PIV Investigation of Turbulent Boundary Layer Response to Active Manipulation of Large-Scale Structures
    DOI: 10.2514/6.2023-0467
  • 2022

    Journal article

    Spatial Input–Output Analysis of Actuated Turbulent Boundary Layers
    DOI: 10.2514/1.J061706

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