Finite Element Software
- General
- Electrical
- Mechanical
- Fluid
- Chemical
- What Is Mass Transfer?
- What Is Diffusion?
- Fluid Flow, Heat Transfer, and Mass Transport
- Finite Element Software Open Source
- Finite Element Software Ansys
- Ansys
- Finite Element Software Engineer
- Cosmos Finite Element Software
It is increasingly being adopted by other commercial finite element software, with a few plugins and actual core implementations available (ANSYS, SAMCEF, OOFELIE, etc.). Scaled boundary finite element method (SBFEM) The introduction of the scaled boundary finite element method (SBFEM) came from Song and Wolf (1997). Finite element analysis software (FEA software) Image courtesy of Briggs Automotive Company Ltd. Finite element analysis (FEA) is a computerized method for predicting how a product reacts to real-world forces, vibration, heat, fluid flow, and other physical effects.
General FEA SoftwareWhat Does Finite Element Analysis Software Bring?
The purpose of finite element analysis (FEA) software is to reduce the number of prototypes and experiments that have to be run when designing, optimizing, or controlling a device or process. This does not necessarily mean that companies and research institutes save money by adopting FEA. They do, however, get more development for their dollar, which may result in gaining a competitive edge against the competition. For this reason, it may be reasonable to increase research and development resources for FEA.
Once an FEA model is established and has been found useful in predicting real-life properties, it may generate the understanding and intuition to significantly improve a design and operation of a device or process. At this stage, optimization methods and automatic control may provide the last degree of improvements that can be difficult to obtain with intuition only. Most modern FEA software features methods for describing automatic control and incorporating such descriptions in mathematical and numerical models. Optimization methods are usually included in the solution process, which is further described in detail below.
The introduction of high-fidelity models have also contributed to an accelerated understanding. This has sparked new ideas and completely new designs and operation schemes that would have been hidden or otherwise impossible without modeling. Therefore, FEA is an integral tool for research and development departments in companies and institutions that operate in highly competitive markets. Over time, the use of FEA software has expanded from larger companies and institutions that support educating engineers to smaller companies in many different industries and institutions with a wide variety of disciplines.
Inside FEA Software
The foundation of FEA software is formed by the laws of physics expressed in mathematical models. In the case of FEA, these laws consist of different conservation laws, laws of classical mechanics, and laws of electromagnetism.
The mathematical models are discretized by the Finite Element Method (FEM), resulting in corresponding numerical models. The discretized equations are solved and the results are analyzed, hence the term finite element analysis.
The language of mathematics is required to describe the laws of physics, which – for space and time-dependent descriptions – result in partial differential equations (PDEs). The solution to the PDEs is represented by dependent variables, such as structural displacements, velocity fields, temperature fields, and electric potential fields. The solution is described in space and time, along the independent variables x, y, z, and t.
The purpose of these descriptions is found in the study of the solution to the PDEs for a given system, which results in understanding a studied system and the ability to make predictions about it. FEA is used to understand, predict, optimize, and control the design or operation of a device or process.
For structural mechanics, the physical descriptions are based on the laws for the balance of forces and the constitutive relations that relate the stresses to strains. An example of such a constitutive relation is Hooke’s law. Traditional FEA often refers to structural analysis only.
In fluid flow, heat transfer, and mass transfer, the descriptions are based on the laws for conservation of momentum, mass, and energy. The fluxes in these conservation laws are typically composed of advection and dissipation or diffusion. The precise form of the dissipation and diffusion is given by a constitutive relation, such as the viscous stress for Newtonian fluids, Fourier’s law of thermal conduction, and Fick’s law of diffusion.
A MEMS actuator uses the joule heating effect to create thermal expansion of the two hot arms (white and yellow colors) that carry an electric current. The thermal expansion creates a structural displacement that moves the actuator. This is a typical case of multiphysics in FEA. You can follow this model being built from scratch in the following video: How to Set Up and Run a Simulation with COMSOL Multiphysics.'>A MEMS actuator uses the joule heating effect to create thermal expansion of the two hot arms (white and yellow colors) that carry an electric current. The thermal expansion creates a structural displacement that moves the actuator. This is a typical case of multiphysics in FEA. You can follow this model being built from scratch in the following video: How to Set Up and Run a Simulation with COMSOL Multiphysics.
A MEMS actuator uses the joule heating effect to create thermal expansion of the two hot arms (white and yellow colors) that carry an electric current. The thermal expansion creates a structural displacement that moves the actuator. This is a typical case of multiphysics in FEA. You can follow this model being built from scratch in the following video: How to Set Up and Run a Simulation with COMSOL Multiphysics.
Mathematical Model and Numerical Model
Well-Posed Mathematical Models
Finite Element Software Open Source
In the example here, the approximation for the temperature is written as:
where denotes the shape functions and denotes the unknown weights.
Finite Element Software Ansys
The Processes Involved in Finite Element Analysis
Below is a summary of the main workflow, from geometry to model documentation.
Geometry
Materials
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Domain Settings, Boundary Conditions, Loads, and Constraints
Mesh
Solution
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Results

Automatic Model Documentation
FEA Development Trends
Published: January 13, 2015Last modified: February 21, 2017
There are lots of fea softwares like ansys, abaqus, nastran, cosmos etc.
I need to know the best fea software
1.based on user interface
2.based on performance
3.based on academic and industrial usage
12 Answers
actually, what exactly do you want to do and find?
if you are new to the FE world, and just want to know what the weakest area of a link, or beam, then COSMOS is your best friend. it is easy to use and gives you pretty pictures where if its red, its bad, blue, good.
I cannot answer your question. The first thing that you should be known is ' what do you want to do with FEA and then choose a suitable software for your job. I agree with serVando diaz that COSMOS is your best friend for starting in FEA and its cost is affordable.The another software such as ADINA is good ones. However If you want to analysis more advance such as nonlinear , I choose MARC.
To compare functionality, there's a good summary at http://feacompare.com It doesn't say much about academic or industrial usage but has lots of details.
A good way to start is following our ANSYS step-by-step tutorials at :
http://www.engineerpedia.com
Best regards,
The EngineerPedia Team
For general use, I recommend Mecway (http://mecway.com). It has a very visual user interface and can solve large (million node) models over all common types of analysis such as elasticity, heat flow, buckling, vibration, transient, etc. You can also import CAD files quite easily or construct a mesh with its modeler.
It's based on code which mostly used in industry but also by some universities for teaching.
If you are not sure what software is good for you, you can simply test it. I just found one nice software that allows to test the software directly online for 4 different application: structural, thermal, optimization and CFD ! You can visit this page to check it out: www.midasNFX.com/FEA
I can strongly recommend SimScale (www.simscale.com). It is a cloud-based tool where simulations can be set up on a browser and the simulation runs on the cloud. It does not need the hassle of licenses or installations. It allows structural, fluid and particle simulations.
SimScale offers a free version where one can get up to 3000 hours for computing. For the free version, the projects created are publicly available. However, if one would like to keep your project private, a professional version is also available. There is also a two-week free trial for the professional version of the platform.
Ansys
The SimScale tutorials and materials provide easy to understand materials to help with usage of SimScale platform. In addition, you can explore the public projects database, where there are loads of projects already available. You can also write on their forum for help and assistance and they are quite active there too.
WELSIM is a new simulation software program that enables you to conduct 3D finite element analyses with more confidence and less cost. You can visit this page to check it out https://welsim.com. A screen capture of WELSIM is attached here.
WaveFEA (http://www.wavefea.com) is the best tool for analysis. It combines Solidworks with Autodesk Nastran into one powerful FEA solution.
We can create our models, assign the material properties, mesh the model and apply the boundary conditions in an easy to use interface. After solving in Nastran you have wide range of advanced post processing options to see the results. If you need to change the design of the model based on the FEA results, you can quickly get back to your design and modify it. Once the cad modification is done, we can update the mesh with the same boundary condition and run again.
WaveFEA solves models meshed with high density of elements easily. You can also open multiple windows to carry out the multiple analysis.
Finite Element Software Engineer
Click here the link below for more details:
http://www.wavefea.com/
The FEATool Multiphysics Matlab FEM Toolbox (www.featool.com) is very easy to use with the GUI design. Also you can save GUI models as script files in both Matlab m-file format and export to other FEA solvers such as FEniCS.
melhor software. funcional e otimo preço APMWinMachine(russo). Comprei, nao me arrependo, otimo investimento para meu negocio. visite www.apm.ru
Cosmos Finite Element Software
FEA software MEANS V11 with a windows ribbon interface and DirectX11 engine
visit: www.fem-infos.com or www.femcad.de
here a bearing contact-analysis in 5 minutes:
https://grabcad.com/library?page=1&time=all_time&sort=recent&query=bearing%20fem