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Energy Storage · Simulation Study

Design cells that work at scale without building a hundred prototypes to get there.

Simulation studies for battery cell design, electrolyte screening, thermal management, and manufacturing yield, from electrode chemistry to gigafactory.

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104 days
Boeing 787 fleet grounding: cell-to-cell propagation detectable at qualification stage
USD 800M
Direct grounding cost to Boeing ($600M compensation + $200M re-cert engineering)
±5%
Capacity fade prediction accuracy (Newman P2D + SEI kinetics, calibrated to cycling data)
Applications

What we can study for you

  • SEI formation prediction and electrolyte interface stability
  • Thermal runaway propagation modelling in pack geometries
  • Electrolyte screening for stability and ionic conductivity
  • Capacity fade forecasting over thousands of cycles
  • Manufacturing yield sensitivity to coating and calendering parameters
  • Cell-to-pack thermal design and hotspot identification
Our Approach

Simulate from electrode interface to pack-level thermal behaviour

We run simulation studies that connect electrochemical reactions at the electrode surface to thermal and mechanical behaviour at the cell and pack level. No separate tools, no disconnected assumptions. You get cell designs that account for manufacturing variability and real operating conditions from the start.

  • Quantum chemistry for electrode-electrolyte interface reactions, SEI layer formation, and electrolyte stability screening
  • Electrode microstructure simulation for porosity, tortuosity, and ion transport optimisation
  • Cell-level electrochemical-thermal coupling for performance prediction under real cycling profiles
  • Manufacturing process simulation for coating uniformity, calendering effects, and defect sensitivity analysis
Studies We Offer

Specific studies, fixed scope.

3–4 week study
Adaptive Process Optimisation

Predicting exact hydrometallurgical yields for specific mixed-chemistry black mass blends to minimise reagent waste.

4–6 week engagement
Thermal Runaway Propagation Modelling

Coupled electrochemical-thermal simulations to predict cascading failures in pack geometries before they occur in hardware.

3–5 week study
Cell Degradation & SEI Formation

Predicting capacity fade trajectories and solid-electrolyte interphase formation over hundreds of cycles.

Describe your Energy Storage challenge.

We'll scope a study within 48 hours and tell you whether our platform can help. No commitment required.

Grab a scoping call

or email [email protected]