COMSOL Day Stuttgart
See what is possible with multiphysics modeling
Join us in person at COMSOL Day Stuttgart to learn how modeling and simulation can be applied across a wide range of industries.
Keynote speakers from leading organizations will present real-world examples of multiphysics modeling in research, development, and product design. COMSOL-led sessions will highlight AI-assisted workflows, simulation apps, and digital twins, alongside selected COMSOL Multiphysics capabilities in structural mechanics, electromagnetics, heat transfer, and more.
This free one-day event will include live demonstrations, Q&A, and opportunities to connect with COMSOL engineers and other simulation professionals.

Schedule
Learn the fundamental workflow of COMSOL Multiphysics®. This introductory demonstration will show you all of the key modeling steps, including geometry creation, setting up physics, meshing, solving, and evaluating and visualizing results.
AI creates new possibilities for simulation automation, model development, and engineering productivity. In this session, we will look at how AI agents can ease your workflow in COMSOL Multiphysics® and automate various actions. This session will also include a live demonstration in the software and show you how to use AI agents with COMSOL®.
Modeling and simulation is no longer limited to the expertise of a few individuals within an organization. The availability of simulation tools throughout the product or process design workflow — from R&D to the factory floor — allows for a more collaborative and innovative approach to problem solving. Now, even those without prior modeling knowledge can contribute to the process, leveraging the expertise of modeling experts and advanced techniques like digital twins and surrogate models.
To facilitate this collaboration, the Application Builder in the COMSOL Multiphysics® software enables modeling experts to create custom apps with user-friendly interfaces that can be used by scientists and engineers with no modeling experience. Taking it a step further, COMSOL Compiler™ enables organization-wide use of standalone simulation apps without licensing restrictions.
By using the Application Builder and COMSOL Compiler™ together with the COMSOL Multiphysics® platform's built-in Model Builder and Model Manager, engineering organizations can establish an efficient, collaborative, simulation-based environment, supported by the realistic and predictive capabilities of digital twins and surrogate models.
Join this session to learn how the Application Builder and COMSOL Compiler™ can transform your organization's approach to simulation, making advanced tools accessible and fostering a culture of collaborative innovation.
The COMSOL Multiphysics® software and the Heat Transfer Module add-on are widely used for thermal analysis in devices and processes. Their simulation capabilities enable users to combine all three modes of heat transfer — conduction, convection, and radiation — and calculate temperature fields and heat fluxes in everything from small-scale components to larger assemblies and built environments.
COMSOL Multiphysics® is designed to capture how thermal effects interact with other physics through multiphysics coupling, enabling realistic studies of conjugate heat transfer and nonisothermal flow; heat generation from various sources, including electromagnetic and chemical effects; and temperature-dependent material behavior.
This session will provide an overview of the functionality in COMSOL Multiphysics® that supports the design, optimization, and validation of thermal management solutions.
The COMSOL Multiphysics® platform provides a comprehensive environment for modeling electromagnetics across a wide frequency range and application space. This includes low-frequency field and electromagnetic interference–electromagnetic compatibility (EMI/EMC) analysis, high-frequency RF and microwave device design, wave optics, ray tracing, and electric discharge phenomena. COMSOL Multiphysics®, along with its add-on modules for electromagnetics, is designed to capture the interaction of electromagnetic fields with other physical effects, including thermal, mechanical, fluid, and material behavior, through multiphysics coupling.
This session will provide an overview of the capabilities for modeling electromagnetics using COMSOL Multiphysics® and highlight how simulation supports the design, optimization, and validation of electromagnetic devices and systems.
COMSOL Multiphysics® is widely used for the modeling and simulation of electrochemical systems. The software includes specialized modeling features for analyzing a wide range of applications, such as battery design, corrosion and corrosion protection, electrodeposition, water electrolysis, and fuel cells. In addition, generic electrochemistry interfaces provide the flexibility to describe systems with arbitrary electrolyte compositions and custom electrode kinetics.
Join us in this session to learn about the add-on products to COMSOL Multiphysics® for electrochemical modeling: the Battery Design Module, Corrosion Module, Electrodeposition Module, Fuel Cell & Electrolyzer Module, and Electrochemistry Module.
COMSOL Multiphysics® and its add-on modules for structural mechanics contain all of the components and features necessary for analyzing phenomena based on solid mechanics, composite materials, geomechanics, rotordynamics, and multibody dynamics. This session will briefly summarize the fundamental features within the different modules to analyze these and other phenomena. Questions will be taken from attendees and addressed by applications engineers conversant in this field.
Register for COMSOL Day Stuttgart
To register for the event, please create a new account or log into your existing account.
For registration questions or more information, contact info@comsol.de.
