COMSOL Day: Battery Design
See what is possible with multiphysics modeling
Battery design involves balancing performance, lifetime, safety, and cost across a wide range of operating conditions. Modeling and simulation help engineers investigate these factors early in the development process, compare design alternatives, and gain insight into processes that can be difficult to observe experimentally.
Accurate battery models may need to account for electrochemical reactions, transport of ions and electrons, heat generation, fluid flow, structural deformation, and degradation over time. Multiphysics simulation makes it possible to study how these phenomena interact, from the behavior of individual electrode materials and cells to the thermal management of complete battery packs.
Join us for COMSOL Day: Battery Design, a full-day, online event covering the fundamentals and practical applications of battery modeling. Sessions will introduce battery design and modeling in the COMSOL Multiphysics® software and address topics such as battery degradation and thermal management. The event will also demonstrate how surrogate models can be used to accelerate simulation applications, enabling complex battery models to deliver results more quickly. Through technical presentations and practical examples, we will share insights into how multiphysics simulation can support the design, analysis, and optimization of battery systems.

Schedule
Understanding the coupled physical phenomena that govern battery performance is essential when using modeling and simulation for battery research and design. Electrochemical reactions, species transport, heat generation, fluid flow, and mechanical effects can all influence battery capacity, power, lifetime, and safety. To account for these interactions, scientists and engineers rely on the multiphysics modeling capabilities of the COMSOL Multiphysics® software.
Battery models can be used at different levels of detail, from studying processes within porous electrodes and individual cells to analyzing thermal management at the module and pack levels. Modeling can also provide insight into degradation mechanisms and support the evaluation of operating strategies and design alternatives. In addition, surrogate models can accelerate computationally intensive analyses and make detailed battery models available through fast and easy-to-use simulation apps.
In this session, we will provide an overview of how multiphysics modeling, simulation apps, and surrogate models can support battery design and analysis. We will also introduce the specific topics covered throughout this COMSOL Day, including the fundamentals of battery design, battery modeling in COMSOL Multiphysics®, degradation, thermal management, and the acceleration of simulation apps using surrogate models.
Pierre Hugon, Grenoble Institute of Technology's Laboratory of Electrochemistry and Physical Chemistry of Materials and Interfaces (LEPMI)
Predicting lithiation processes in porous graphite electrodes requires models that capture both electrochemical behavior and the influence of electrode microstructure. In this keynote talk, Pierre Hugon will explore two complementary modeling approaches: a modified pseudo-2D, or Doyle–Fuller–Newman (DFN), model and a fully 3D approach based on reconstructed electrode microstructures.
Hugon will discuss the respective predictive capabilities of these approaches, along with their computational requirements in terms of computation time and number of degrees of freedom. Selected results will illustrate how these approaches can provide complementary insights into the behavior and performance of graphite electrodes.
In this session, we will introduce the Battery Design Module, an add-on to COMSOL Multiphysics® that provides functionality for simulating operational aspects of battery systems ranging from single cells to packs of hundreds.
We will demonstrate this functionality by simulating a lithium-ion battery, using the COMSOL® software's unique multiphysics capabilities to take electrochemistry, heat transfer, and fluid flow into account. We will then show how easy it is to simplify the model using lumped modeling to ultimately create a pack model with hundreds of batteries.
We will also explain how battery systems can be modeled using time-dependent studies to incorporate transient effects like charge–discharge cycles, as well as how to model electrochemical impedance spectroscopy with a frequency-domain formulation.
Simulation-data-driven surrogate models in COMSOL Multiphysics® significantly increase computational speed while maintaining the same accuracy as high-fidelity multiphysics models within their applicable data ranges, making them useful for efficiently approximating simulation results.
COMSOL Multiphysics® provides an ideal environment for generating the physics-based training data used by surrogate models. These models can be incorporated into simulation apps, leading to a more interactive user experience and encouraging broader use of simulation within organizations. Surrogate models can also be used to accelerate uncertainty quantification analyses and multiphysics modeling.
Join this session to learn more about creating surrogate models. We will present techniques for effective data generation using design of experiments methods and walk through the subsequent steps for training a surrogate model. We will also demonstrate how to incorporate surrogate models into simulation apps.
A battery's performance is often limited by degradation mechanisms and parasitic reactions at the electrodes. To help designers address these limitations, the Battery Design Module provides functionality for modeling battery aging and capacity fade. The module's flexibility makes it possible to include arbitrary side reactions, such as hydrogen and oxygen evolution, solid electrolyte interphase (SEI) growth, lithium plating, metal corrosion, and graphite oxidation. Mechanical degradation associated with electrode expansion and contraction can also be incorporated into battery models.
This session will provide an overview of the Battery Design Module's capabilities for modeling battery degradation and will demonstrate how to build and simulate a capacity fade model.
Thermal management is a key aspect of battery design, from individual cells to complete battery packs. At the cell level, current-density distributions influence heat generation, hotspot formation, and the risk of thermal runaway. At the pack level, busbar design, electrical load distribution, and active or passive cooling determine the thermal performance of the battery system.
The Battery Design Module provides functionality for coupled electrochemical and thermal modeling at both the cell and pack levels. Electrochemical heat generation can be included in detailed cell models, while battery packs containing hundreds of cells can be modeled using reduced-order electrochemical models coupled to anisotropic heat transfer modeling.
This session will provide an overview of the Battery Design Module's capabilities for coupled electrochemical and thermal analysis, including thermal management of battery cells and packs, thermal runaway, and mitigation strategies.
Register for COMSOL Day: Battery Design
To register for the event, please create a new account or log into your existing account.
You will need a COMSOL Access account to attend COMSOL Day: Battery Design.
COMSOL Day Details
October 1, 2026 | 10:00 a.m. CEST (UTC+02:00)
Keynote Speakers
Pierre Hugon is a third-year PhD student at the Grenoble Institute of Technology's Laboratory of Electrochemistry and Physical Chemistry of Materials and Interfaces (LEPMI), where he is working on the development of models to predict the lithiation process in porous graphite electrodes, with a focus on phase-field approaches. Hugon is also investigating the impact of electrode microstructure on electrochemical performance using both a modified pseudo-2D, or Doyle–Fuller–Newman (DFN), model and a fully 3D approach based on reconstructed electrode microstructures.
Dr. Gabriela Horwitz is the simulation team lead at CMBlu Energy, where she leads a multidisciplinary team developing models to address research and design questions across scales for the company's solid-flow battery system. Her background is in electrochemistry, and she combined experimental and modeling approaches throughout her PhD at the University of Buenos Aires and her postdoctoral research at the University of Cambridge with Professor Clare Grey, studying lithium-ion and lithium-air battery materials. She joined CMBlu in 2025 as a simulation specialist before taking on team leadership in 2026.
