- Advanced machining processes and optimization
- Advanced Surface Polishing Techniques
- Advanced Machining and Optimization Techniques
- Mechanical stress and fatigue analysis
- Tunneling and Rock Mechanics
- Manufacturing Process and Optimization
- Adhesion, Friction, and Surface Interactions
- Advanced Measurement and Metrology Techniques
- Metal Alloys Wear and Properties
- Electrical Contact Performance and Analysis
- Advanced Numerical Analysis Techniques
- Vibration and Dynamic Analysis
- Additive Manufacturing Materials and Processes
- Advanced Sensor Technologies Research
- Heat Transfer and Optimization
- Metal and Thin Film Mechanics
- Gear and Bearing Dynamics Analysis
- Tribology and Wear Analysis
- Titanium Alloys Microstructure and Properties
- Drilling and Well Engineering
- Advanced materials and composites
- Erosion and Abrasive Machining
- Injection Molding Process and Properties
- Aluminum Alloys Composites Properties
- Metallurgy and Material Forming
McGill University
2016-2025
National Research Council Canada
2015-2024
Polytechnique Montréal
2019-2022
Edinburgh Napier University
2021
Newcastle University
2021
National Academies of Sciences, Engineering, and Medicine
2012-2015
University of South Australia
2010
Université de Montréal
2009
American Society of Mechanical Engineers
2003-2008
Concordia University
1998-2004
To achieve high performance machining, modeling of the cutting process is necessary to predict forces, residual stresses, tool wear, and burr formation. A major difficulty in description material constitutive law reflect severe plastic deformation encountered primary secondary zones under strains, strain rates, temperatures. critical literature review shows that available methods identify equation for may lead significant errors due their limitations. overcome these limitations, a novel...