Abaqus Unified FEA
The best suite of non-linear Finite Element Analysis (FEA) and Computational Fluid Dynamics (CFD) solvers.
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What is Dassault Abaqus Software?
The Abaqus Unified FEA product suite offers powerful and complete solutions for both routine and sophisticated engineering problems covering a vast spectrum of industrial applications. 3DS Abaqus offers a powerful platform for simulating real-world physical processes, enabling users to predict how products will perform, reducing the need for physical prototypes and accelerating the development process.
Most popular use cases for the Abaqus program
Developed by Dassault, SIMULIA Abaqus is used to simulate real solutions in the aerospace, automotive and industrial equipment industries.
Abaqus allows teams in these industries to test variations of their technology in a completely safe virtual environment. For example in Automotive design, engineers can deliver comprehensive multi-phyiscs simulations across vehicle systems optimising crash safety, structural integrity, NVH performance and durability

What can you do with Abaqus FEA?
An Abaqus license offers powerful and complete solutions for both routine and sophisticated engineering problems covering a vast spectrum of industrial applications.
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Abaqus provides a comprehensive range of tools for structural, thermal, acoustic, nonlinear, and contact analysis, as well as coupled physics and complex materials modeling. It’s suitable for both static and dynamic analysis.
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Abaqus has a wide range of multiphysics capabilities, such as coupled acoustic-structural, piezoelectric, and geotechnical simulations. These features make it attractive for production-level simulations where multiple fields need to be coupled.
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Abaqus features an extensive range of material models, including elastic, hyperelastic, ductile, and brittle material models. This can be enhanced with custom material models defined with user subroutines. It’s designed to address non-linear physical behavior, making it suitable for a variety of applications. Abaqus features an extensive range of material models, including elastic, hyperelastic, ductile, and brittle material models. This can be enhanced with custom material models defined with user subroutines. It’s designed to address non-linear physical behavior, making it suitable for a variety of applications.
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Abaqus/CAE allows the creation of native geometry, meshing, defining loads and boundary conditions, setup of analysis steps and analysis procedures, and visualizing results. Abaqus/CAE is capable of pre-processing, post-processing, and monitoring the processing stage of the solver as a complete environment for any Abaqus simulation.
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Abaqus offers two solver types: Abaqus/Standard and Abaqus/Explicit. Abaqus/Standard is an implicit finite element solver, while Abaqus/Explicit is a dynamic explicit analysis package. The choice between these solvers depends on the type of problem, with Abaqus/Explicit for the simulation of dynamic events, such as impact studies.
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Create, edit, monitor, diagnose, and visualize complex simulations using both parametric and traditional modeling techniques. Abaqus/CAE offers a robust set of meshing tools that can handle a variety of element types and alogrithms. Additionally, Abaqus/CAE supports geometry creation, import, and editing, as well as advanced assembly tools and a wide range of material models to suit diverse engineering applications.
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Integrate with CAD environments such as CATIA and SOLIDWORKS using associate interfaces to synchronize CAD and FEA workflows defined within Abaqus/CAE. Also includes comprehensive visualization options for interpreting and communicating the results of analyses.
Abaqus provides multiple solver types, including:
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Implicit solver (Abaqus/Standard) – for static, quasi-static, and low-speed dynamic problems
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Explicit solver (Abaqus/Explicit) – for high-speed dynamics, impact, and crash simulations
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Coupled solvers for mixed problems (e.g. thermal-structural, fluid-structure interaction)
Abaqus excels in solving nonlinear problems, which are critical for real-world engineering problems. This includes:
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Material nonlinearity (e.g. plasticity, hyperelasticity, creep, viscoelasticity, damage, fracture)
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Geometric nonlinearity (e.g. large deformations, buckling)
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Contact nonlinearity (e.g. general contact, self-contact, friction, adhesion)
Abaqus provides a wide range of material models suited for various industries, including:
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Metals with plasticity and damage
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Composites and fiber-reinforced materials
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Rubbers and elastomers with hyperelastic models
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Biological tissues (e.g. muscles, bones)
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Concrete with cracking and crushing models
Abaqus has powerful contact algorithms, including:
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General contact algorithms for automatic handling multiple interacting bodies
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Self-contact for applications like metal forming and rubber seals
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Friction for applications like metal forming, sheet rolling, tire traction
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Adhesion for applications like packaging materials
Abaqus can handle high-speed events and transient dynamics, making it useful for:
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Crashworthiness analysis in automotive design
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Projectile and balistics impacts in defense and aerospace industries
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Blast & explosions in defense and aerospace industries
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Earthquake simulation for civil engineering and offshore structures
The explicit solver can be used in combination with the implicit solver in order to handle static events (e.g. prestressing) before the dynamic event.
Abaqus allows users to perform multiphysics simulations, where multiple physical phenomena interact, such as
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Structural-thermal coupling
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Fluid-structure interaction
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Electromagnetic-structural
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Coupling structural-acoustic simulation
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Coupled Eulerian-Lagrangian simulation
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Structural-pore pressure simulation
In addition, Abaqus can be used for co-simulations with other SIMULIA products using the co-simulation engine.
Abaqus provides a Python-based scripting interface, allowing:
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Pre-processing automation (geometric modeling, mesh generation, material assignment, loads, and boundary conditions, etc.)
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Post-processing and data extraction automation (generate custom plots, animations, and reports)
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Integration with external tools and optimization frameworks
Abaqus/Standard and Abaqus/Explicit solvers’ functionality can be extended further with user-defined subroutines written in Fortran or C++.
Among many subroutines, user can extend and add the following capabilities:
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Custom material models with UMAT/VUMAT
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Custom loading and boundary conditions with DLOAD, UDISP and UTEMP
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Load external data via UEXTERNALDB
Abaqus supports parallel computing via MPI protocol and threads, as well as GPU acceleration. Multiple benchmarks highlight Abaqus’ extraordinary capability to parallelize across multiple HPC nodes and CPUs, working equally well for chipsets from different vendors like Intel or AMD.
Abaqus also supports cloud deployment using Azure and AWS.
We offer an Abaqus online course to help you get familiar with the potential of the tool.
Learn from qualified, certified, and experienced engineers whose in-depth knowledge of Abaqus comes from practical, daily use.
Abaqus flexible licencing
A flexible token-based licencing system for concurrent users and speeding up simulations by running on multiple cores
Buy or Lease
Purchase Abaqus outright, or choose a yearly or quarterly lease, and add tokens during the contract to fulfil your simulation needs.
Flexible scalability
Use tokens to run on additional cores. If you are in need of extra simulation power, just order additional tokens.
Pricing model
The Abaqus pricing model is not based on functionality but on using X number of CPU & GPU cores and the concurrent number of users.
Considering Abaqus?
Our Dassault SIMULIA Abaqus team are on-hand to provide tailored guidance and support with a deep knowledge of Abaqus. Reach out to talk to an expert today.