I turn battery physics, thermal behavior, and power-system requirements into models, validation evidence, and practical engineering decisions. My work spans lithium-ion battery safety, battery thermal management, real-time state estimation, BESS quality assurance, and smart-grid integration.
Current mission: build inspectable, reproducible energy-system tools that help researchers and engineers move from assumptions to defensible results.
| Research and modeling | Deployment and assurance | Technical leadership |
|---|---|---|
| Electro-thermal models, parameter identification, SOC estimation, multiphysics analysis, and validation design. | BESS QA/QC, commissioning evidence, requirement traceability, risk review, and performance verification. | Cross-functional engineering, research translation, technical roadmaps, open-source stewardship, and decision-ready communication. |
The MATLAB Simulink Energy Lab is an open-source collection of inspectable battery and power-electronics reference models. Each model states its assumptions, validates its behavior, and connects simulation output to an engineering question.
| Model track | What is demonstrated |
|---|---|
| Battery dynamics | 1RC and 2RC equivalent-circuit models with toolbox-free parameter identification and held-out pulse-profile validation. |
| Thermal management | Lumped electro-thermal, six-cell liquid-cooling, and pouch-cell finite-volume models for heat generation, cooling sensitivity, and spatial nonuniformity. |
| State estimation | A two-state extended Kalman filter for real-time state-of-charge estimation. |
| Power conversion | Average-value converter references with deterministic validation tests. |
| Verification | Thirteen base-MATLAB checks and four native Simulink checks verified on MATLAB R2026a. |
| Project | Purpose | Signal |
|---|---|---|
| Battery Thermal Modeling Notes | Research-backed guidance on BTMS assumptions, heat generation, temperature behavior, and model validation. | |
| BESS QA/QC Toolkit | Inspection logic and evidence templates for utility-scale battery energy storage projects. | |
| Smart Grid Storage Playbook | Practical engineering guidance for grid-forming storage, dispatch, and renewable integration. | |
| Battery Power Models | Tested MATLAB and Python references for battery thermal response and DC-link sizing. | |
| VoltRL | Power-system and voltage-control engineering experiments. |
My PhD research at Aalborg University, "Thermal Management of Battery Systems in Electric Vehicle and Smart Grid Application," connects battery thermal management, electrical characterization, and energy-storage control across electric-vehicle and smart-grid applications.
I welcome substantive collaboration around battery models, validation datasets, BESS engineering evidence, and reproducible energy-system research. Good starting points are the Energy Lab roadmap and its open issues.
Battery insight. Engineering evidence. Grid impact.
Website | LinkedIn | ORCID | GitHub Projects







