Theme 01
Thermodynamics-coupled multiphysics
Developing methods that connect chemistry, transport, corrosion, and material behavior instead of treating them as isolated pieces.
Computational Scientist at Idaho National Laboratory
I develop thermodynamically informed multiphysics methods for nuclear fuels, materials, and reactor systems. My work sits at the intersection of scientific computing, physics-based modeling, and research software development.
Research
The site is organized around the work itself: computational thermochemistry, multiphysics coupling, advanced reactor analysis, and the software needed to make those models usable at scale.
Theme 01
Developing methods that connect chemistry, transport, corrosion, and material behavior instead of treating them as isolated pieces.
Theme 02
Modeling chemically evolving reactor environments across microstructural and engineering scales, with particular attention to species tracking and safety.
Theme 03
Building surrogate strategies that preserve physical meaning while cutting the cost of high-fidelity thermodynamics-informed simulations.
Selected work
During his doctoral work, Parikshit led development of a MOOSE-based Gibbs-energy minimizer for thermochemical equilibrium calculations.
Contributing to full-loop molten-salt reactor chemistry and corrosion modeling with coupled species accounting across multiphysics workflows.
Working on material-property and mechanistic models for advanced nuclear-grade graphite, including uncertainty-aware calibration at high temperature.
Leading work on computational methods that accelerate thermodynamically informed reactor and materials simulations without discarding the governing physics.
Software
The software layer is not secondary here. It is how the methods become testable, reusable, and useful to other researchers and engineering teams.
Framework
Multiphysics environment used across several strands of this work, from thermodynamics coupling to reactor chemistry applications.
Thermochemistry tooling
Computational thermodynamics infrastructure for chemical state estimation, phase equilibrium, and constitutive-property workflows.
Public profile
Public code, contributions, and technical trail across scientific computing and open research software.
Publications
For the complete and up-to-date publication record, visit Google Scholar.
Trajectory
Canada
Doctoral research at Ontario Tech University focused on algorithms for thermochemical-equilibrium and MOOSE-based solver Yellowjacket.
Italy
Research at Politecnico di Milano included computational modeling of helium bubble reactivity feedback in molten-salt fast reactor systems.
India
Undergraduate training at Dr. A.P.J. Abdul Kalam Technical Univeristy with capstone project on CFD modeling of exhaust manifold to improve internal combustion engine efficiency.
United States
Current work spans reactor chemistry, advanced materials, surrogate methods, and multiphysics software for nuclear applications.
Connect
The clearest routes in are public: research profile, code, and professional network.