Rathinam Panneer Selvam
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
University Professor
Faculty Researcher
Research Areas
Links
Biography and Research Information
OverviewAI-generated summary
Rathinam Panneer Selvam's research focuses on computational fluid dynamics (CFD) modeling and analytical validation of fluid flow within hemodialysis modules. Their work investigates counter-current flow in square channels separated by a membrane, a critical aspect of dialysis system efficiency. Selvam has published on the computational modeling of this flow and the experimental validation of analytical results derived from these models. Their recent publications are from 2026, indicating recent activity in this area. Selvam has collaborated with Akram Abdullah at the University of Arkansas at Fayetteville on these research endeavors, with two shared publications.
Metrics
- Publications: 2
Selected Publications
-
Validation of Analytical Results for Counter-Current Flow in Square Channels Separated by a Membrane in a Hemodialysis Module Using Experimental Module Results (2026)
-
Computational Fluid Dynamics Modeling of Counter-Current Flow in Channels Separated by a Membrane (2026)
-
Effect of Swirl Ratio on Simulated VorTECH Chamber Vortex Parameters (2025)
-
Determining Tornado Velocity for Tornado Force Coefficients for a Thin-Cylinder Structure and Comparison to ASCE 7 (2024)
-
Turbulence Generators and Turbulence Structure (2024)
-
Fourier Modes in Fluid Flow and Energy Cascade (2024)
-
Implementation of a Simple CFD Tornado Simulator in Open-Source Software OpenFOAM (2023)
-
Comparative heat transfer analysis of electroconductive Fe3O4–MWCNT– water and Fe3O4–MWCNT– kerosene hybrid nanofluids in a square porous cavity using the non-Fourier heat flux model (2022)
-
Performance of different inflow turbulence methods for wind engineering applications (2022)
-
Introduction to Wind Engineering (2022)
-
Advanced Topics (2022)
-
Introduction (2022)
-
Index (2022)
-
CFD for Turbulent Flow (2022)
-
Appendix B: Random Process for Wind Engineering (2022)
Collaboration Network
Top Collaborators
- Comparison of Tornado-induced pressures on building from CFD model with TTU experimental measurements
- Teaching Modeling Turbulent Flow Around Building Using LES Turbulence Method and Open-source Software OpenFOAM
- Incorporating Two Weeks Open Source Software Lab Module in CFD and Fluids Courses
- Implementation of a Simple CFD Tornado Simulator in Open-Source Software OpenFOAM
- Performance of different inflow turbulence methods for wind engineering applications
- Maximum grid spacing effect on peak pressure computation using inflow turbulence generators
- Teaching Modeling Turbulent Flow Around Building Using LES Turbulence Method and Open-source Software OpenFOAM
- Incorporating Two Weeks Open Source Software Lab Module in CFD and Fluids Courses
- Performance of different inflow turbulence methods for wind engineering applications
- Maximum grid spacing effect on peak pressure computation using inflow turbulence generators
- Computational Fluid Dynamics Modeling of Counter-Current Flow in Channels Separated by a Membrane
- Validation of Analytical Results for Counter-Current Flow in Square Channels Separated by a Membrane in a Hemodialysis Module Using Experimental Module Results
- Numerical Study of Two-Phase Peristaltic MHD Nanofluid Flows in a Flexible Tube with a Porous Peripheral Layer and Thermal Radiation
- Numerical Study of Two-Phase Peristaltic MHD Nanofluid Flows in a Flexible Tube with a Porous Peripheral Layer and Thermal Radiation
- Numerical Study of Two-Phase Peristaltic MHD Nanofluid Flows in a Flexible Tube with a Porous Peripheral Layer and Thermal Radiation
- Numerical Study of Two-Phase Peristaltic MHD Nanofluid Flows in a Flexible Tube with a Porous Peripheral Layer and Thermal Radiation
- Comparison of Tornado-induced pressures on building from CFD model with TTU experimental measurements
- Comparison of Tornado-induced pressures on building from CFD model with TTU experimental measurements
- Comparative heat transfer analysis of electroconductive Fe3O4–MWCNT– water and Fe3O4–MWCNT– kerosene hybrid nanofluids in a square porous cavity using the non-Fourier heat flux model
- Comparative heat transfer analysis of electroconductive Fe3O4–MWCNT– water and Fe3O4–MWCNT– kerosene hybrid nanofluids in a square porous cavity using the non-Fourier heat flux model
- Comparative heat transfer analysis of electroconductive Fe3O4–MWCNT– water and Fe3O4–MWCNT– kerosene hybrid nanofluids in a square porous cavity using the non-Fourier heat flux model
- Comparative heat transfer analysis of electroconductive Fe3O4–MWCNT– water and Fe3O4–MWCNT– kerosene hybrid nanofluids in a square porous cavity using the non-Fourier heat flux model
- Comparative heat transfer analysis of electroconductive Fe3O4–MWCNT– water and Fe3O4–MWCNT– kerosene hybrid nanofluids in a square porous cavity using the non-Fourier heat flux model
Similar Researchers
Based on overlapping research topics