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cellsim

Design and optimise the next generation of energy storage systems.

Use Cases

Built for real-world problems

Simulate electrochemical reactions, ion transport, and mechanical stress at the electrode level. Optimise electrode architecture, porosity, and active material loading to maximise energy density and cycle life.

Multiscale + HPC

Multiscale simulation for energy storage

Battery performance is determined by physics at every scale, from electron transfer at electrode interfaces to thermal management across the pack. Separate tools at each scale mean separate assumptions and separate errors. newtsim unifies the entire stack.

  • Quantum chemistry for electrode-electrolyte interface reactions
  • Molecular dynamics for ion transport and SEI layer formation
  • Continuum electrochemistry for cell-level performance prediction
  • Thermal-mechanical coupling for pack design and safety analysis

GPU-native architecture means parametric sweeps across thousands of electrode designs run in hours, not weeks. Cut the design cycle from months to days by iterating on real physics rather than approximations.

Workflow + AI

From material to gigafactory in one workflow

Design a battery from first principles to manufacturing in a single visual workflow. Start with electrode materials, simulate cell electrochemistry, model pack thermal behaviour, and optimise the production line. Everything stays connected. AI handles solver configuration so you focus on the design.

Define electrode materials and cell geometry

Connect electrochemistry and thermal simulation nodes

AI configures multiscale solver parameters

Visualise performance across operating conditions

Questions about cellsim?

Reach out to discuss how cellsim fits your workflows.

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