Application: Brake Design
This unique page has been specifically created to make it easier for you to obtain information that is pertinent to your particular application needs. The links provided here will help to focus your search and to eliminate unnecessary navigation through our entire web site. We recommend that you bookmark this page, as it will be regularly updated, when applicable, with the most current information available on our site.
Recommended products
Based on your application, we recommend the following products and simulation capabilities:
Features of these products:
- Geometric Modeler
Easy to use Extrusion-Based and Solid Modeling tools make even the most complicated designs quick and painless to draw. - Material Library and Modeler
Standard and customizable user library for creating materials with desired behavior and properties. - Circuit Modeler (MagNet only)
Connect your device to external drives and loads. - Meshing & Adaption
Automatic or user-defined mesh generation with adaption tools for refinements. - Boundary Conditions
Specify the behavior of the unknown fields on the outer surfaces of the model.
- Parameterization
Parameterize any system and user defined variables for powerful "what-if" analysis. - Customization & Automation
Find out more on how Infolytica's powerful scripting engine allows our products to work with any programming environment that implements ActiveX scripting and OLE Automation, such as Visual Basic Script, Java Script, Perl, etc.
Gallery Spotlight -- Brake Design
![]() |
This example analyzes the forces generated by the induced eddy-currents in a ring, using MagNet's Transient 2D with Motion solver. |
| more... » | |
Other "Brake Design" examples of our software in action :
Floating Ring
This example analyzes the forces generated by the induced eddy-currents in a
ring, using MagNet's Transient 2D with Motion solver.
Case Studies
Example(s) of how you can develop real-life solutions using Infolytica software:
Note All Case Studies are in PDF format.
3D Case Studies Time Harmonic Problems:
- AC Induction Levitator
This case study examines the resulting induced current density in an aluminum channel above an array of U-core electromagnets energized from a low-frequency AC supply.



