Compare the Top CFD Software as of September 2024

What is CFD Software?

CFD software is used to simulate fluid flow through a physical system. It uses numerical methods and algorithms to calculate complex flows involving heat transfer, turbulence and chemical reactions. CFD software is widely used in many industries, such as automotive and aerospace engineering, to identify potential design flaws before the product goes into production. Compare and read user reviews of the best CFD software currently available using the table below. This list is updated regularly.

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    Orbital Stack

    Orbital Stack

    Orbital Stack

    Orbital Stack is an AI and CFD web-based software that provides earlier qualitative guidance, comparing a large number of design options while highlighting any potential wind and thermal comfort red flags. It allows for the realization of a variety of climate-conscious, high-performance developments not previously feasible due to cost and/or time constraints associated with traditional studies. Orbital Stack is the first digital climate-analysis tool built by global leaders in wind and microclimate engineering using real wind tunnel data. It is truly a game-changer for the architecture and building design sector, offering our clients direct access to wind comfort and safety analysis, thermal comfort and shadowing analysis, and cladding pressure simulations. This means architects can run their own wind simulations and quickly understand the climate impacts of their proposed building designs from the start, making decisions that result in higher performing and more resilient projects.
    Starting Price: $0
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  • 2
    SimScale

    SimScale

    SimScale

    SimScale is a cloud-based web application that plays a key part in simulation software for many kinds of industries. The platform allows the use of Computational Fluid Dynamics (CFD), Finite Element Analysis (FEA), and Thermal Simulation. It also offers 3D simulation, continuous modeling, and motion & dynamic modeling.
  • 3
    COMSOL Multiphysics
    Simulate real-world designs, devices, and processes with multiphysics software from COMSOL. General-purpose simulation software based on advanced numerical methods. Fully coupled multiphysics and single-physics modeling capabilities. Complete modeling workflow, from geometry to postprocessing. User-friendly tools for building and deploying simulation apps. The COMSOL Multiphysics® software brings a user interface and experience that is always the same, regardless of engineering application and physics phenomena. Add-on modules provide specialized functionality for electromagnetics, structural mechanics, acoustics, fluid flow, heat transfer, and chemical engineering. Choose from a list of LiveLink™ products to interface directly with CAD and other third-party software. Deploy simulation applications with COMSOL Compiler™ and COMSOL Server™. Create physics-based models and simulation applications with this software platform.
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    alsim

    alsim

    ESS Engineering Software Steyr

    The popularity of ESS is mainly owing to our niche solutions in the automotive market. The success of our solutions in the competitive environment led ESS to set foot into the “on-demand” domain. With the alsim cloud, we are achieving something no one else has pulled off before. We offer simulation tools that can be used by anyone without any CFD knowledge on a pay-per-use basis. This ensures all consumers – students, engineers and businesses alike – can equip themselves with our cutting-edge techniques. Apart from the offline product offerings, we also serve our customers across all industries with solutions & reports based on our simulation results. We work closely with our customers in identifying their requirements and problem areas to provide them with highly accurate simulation results. Equipped with in-depth experience of industrial processes and robust solvers, we have been able to provide service to some of the major OEMs across the world with success.
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    Ingrid Cloud

    Ingrid Cloud

    Ingrid Cloud

    Ingrid Cloud is an online tool that automates the entire process of wind simulations. Our computational model has virtually zero human intervention, making it easy-to-use and accurate. We make CFD simple and affordable. The unique technology is based on research conducted at KTH Royal Institute of Technology for the past 15 years.
    Starting Price: $245 one-time fee
  • 6
    bramble

    bramble

    Bramble CFD

    Part of the TotalSim family, bramble is a platform for CFD simulations that can be accessed from any web-enabled device. It streamlines the pre- and post-simulation process, increasing productivity and creating consistency between simulations. Included within the platform are customised data management and analysis tools, as well as CFD support and because the software uses OpenFOAM there are no license or subscription charges. bramble offers: 1. Increased productivity 2. Reliable results 3. Customized data management 4. Cost effective simulations 5. A user-friendly platform 6. Simulations that are scalable Bramble also leases and sells all the hardware needed to run CFD simulations.
    Starting Price: £0.011 per core hour
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    CF-MESH+

    CF-MESH+

    Creative Fields Holding, Ltd.

    CF-MESH+ is the latest CFD meshing software version developed by Creative Fields. It comprises advanced meshing workflows with an easy-to-use front-end interface allowing for superior user experience and efficiency. It features a powerful set of tools and functionalities for generating quality CFD meshes in arbitrary complex geometries encountered within the industry. The software features a degree of robustness that will help you enhance your productivity and get a competitive advantage in your simulation efforts.
    Starting Price: $500
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    PowerFLOW

    PowerFLOW

    Dassault Systèmes

    By leveraging our unique, inherently transient Lattice Boltzmann-based physics PowerFLOW CFD solution performs simulations that accurately predict real world conditions. Using the PowerFLOW suite, engineers evaluate product performance early in the design process prior to any prototype being built — when the impact of change is most significant for design and budgets. PowerFLOW imports fully complex model geometry and accurately and efficiently performs aerodynamic, aeroacoustic and thermal management simulations. Automated domain discretization and turbulence modeling with wall treatment eliminates the need for manual volume meshing and boundary layer meshing. Confidently run PowerFLOW simulations using large number of compute cores on common High Performance Computing (HPC) platforms.
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    HyperWorks

    HyperWorks

    Altair Engineering

    HyperWorks provides easy-to-learn, effective workflows that leverage domain knowledge and increase team productivity, enabling the efficient development of today’s increasingly complex and connected products. The new HyperWorks experience was created to free engineers to move from physics to physics, domain to domain, and even create reports without ever leaving their model. Create, explore and optimize designs within HyperWorks to produce robust designs that accurately model structures, mechanisms, fluids, electromagnetics, electrical, embedded software, systems design, and manufacturing processes. The solution-specific workflows enhance a growing number of engineering processes including fatigue analysis, concept design optimization, CFD modeling, and design exploration. Each provides a meticulously designed and intuitive user interface, differentiated for each user profile while remaining consistent and easy to learn.
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    SimFlow

    SimFlow

    SIMFLOW Technologies

    SimFlow is a desktop Computational Fluid Dynamics (CFD) analysis software for Windows and Linux OS. It is based on OpenFOAM libraries, acting like an OpenFOAM GUI. It is a professional CAE package for engineers offering fully-featured 3D simulations. SimFlow is a powerful general-purpose CFD software. It combines an intuitive graphical user interface with the advantages of the open-source OpenFOAM® libraries. Download SimFlow and use it for free in an evaluation mode to solve the most complex problems you face as an engineer, scientist or student. Maybe you use CFD software on a daily basis or maybe just want to start your adventure. Install SimFlow, rediscover the CFD world without any time limit and enjoy powerful fluid simulation software.
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    Tecplot 360
    Make Better Decisions with Tecplot 360, the most complete CFD Post processor. More CFD simulations are being run, grid sizes are getting larger, and data sets are being stored remotely. It’s essential that you have the right tools to handle large data sets, automate workflows, and visualize parametric results. Tecplot 360 helps you spend less time waiting and more time discovering. Integrate XY, 2D & 3D plots and get them looking exactly the way you want. Communicate your results with brilliant images and animations. Automate the boring stuff with PyTecplot Python scripting. Never miss a result when analyzing parametric data with Chorus. Securely access large, remote data with SZL-Server client-server. Load Tecplot, FLUENT, PLot3D, CGNS, OpenFOAM, FVCOM, VTU data and 22 other CFD, FEA, structural analysis, and industry-standard data formats. Report and compare solutions in a multi-frame environment with multiple pages.
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    Autodesk CFD
    Autodesk CFD is a computational fluid dynamics simulation software that engineers and analysts use to intelligently predict how liquids and gases will perform. Autodesk CFD helps to minimize the need for physical prototypes while providing deeper insight into fluid flow design performance. Autodesk CFD provides engineers with a range of powerful tools for system design optimization. Fluid flow and free surface movement. Thermal management for electronics cooling. BIM integration for occupant comfort of HVAC in AEC and MEP. The Application Programming Interface (API) and scripting functions expand the base capabilities of Autodesk CFD through the Decision Center’s customization and automation of common tasks. In addition, the Decision Center automates system design comparisons to speed up design-based decision making.
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    SOLIDWORKS Flow Simulation

    SOLIDWORKS Flow Simulation

    Dassault Systèmes

    Simulate the fluid flow, heat transfer, and fluid forces that are critical to the success of your designs. SOLIDWORKS® Flow Simulation is an intuitive Computational Fluid Dynamics (CFD) solution embedded within SOLIDWORKS 3D CAD that enables you to quickly and easily simulate liquid and gas flows through and around your designs to calculate product performance and capabilities. SOLIDWORKS® products are easy to learn and use, and work together to help you design products better, faster, and more cost efficiently. SOLIDWORKS Flow Simulation enables you and your team to simulate fluid flow, heat transfer, and fluid forces that are critical to the success of your product. Companies of all sizes need integrated solutions to help them innovate and grow their business. With integrated CFD tools you can efficiently analyze the effects of fluid flow, heat transfer, and related forces on your projects and process multiple “what if” scenarios to help you optimize designs quickly.
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    Ansys Sherlock
    Ansys Sherlock is the only reliability physics-based electronics design tool that provides fast and accurate life predictions for electronic hardware at the component, board and system levels in early stage design. Ansys Sherlock automated design analysis provides fast and accurate life predictions for electronic hardware at the component, board and system levels in early design stages. Sherlock bypasses the ‘test-fail-fix-repeat’ cycle by empowering designers to accurately model silicon–metal layers, semiconductor packaging, printed circuit boards (PCBs) and assemblies to predict failure risks due to thermal, mechanical and manufacturing stressors--all before prototype. With embedded libraries containing over 500,000 parts, Sherlock rapidly converts electronic computer-aided design (ECAD) files into computational fluid dynamics (CFD) and finite element analysis (FEA) models. Each model contains accurate geometries, material properties and translates stress information.
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    OpenFOAM

    OpenFOAM

    OpenFOAM

    OpenFOAM is the free, open-source CFD software developed primarily by OpenCFD Ltd since 2004. It has a large user base across most areas of engineering and science, from both commercial and academic organizations. OpenFOAM has an extensive range of features to solve anything from complex fluid flows involving chemical reactions, turbulence and heat transfer, to acoustics, solid mechanics and electromagnetics. OpenFOAM is professionally released every six months to include customer-sponsored developments and contributions from the community. It is independently tested by ESI-OpenCFD's application specialists, development partners and selected customers, and supported by ESI's worldwide infrastructure, values and commitment. Quality assurance is based on rigorous testing. The process of code evaluation, verification and validation includes several hundred daily unit tests, a medium-sized test battery run on a weekly basis, and a large industry-based test battery-run.
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    Ansys CFX
    Known for its extreme robustness, CFX is the gold standard CFD software when it comes to turbomachinery applications. Both solver and models are wrapped in a modern, intuitive, and flexible GUI, with extensive capabilities for customization and automation using session files, scripting and a powerful expression language. Highly scalable high-performance computing will help speed up simulations including pumps, fans, compressors and turbines. New manufacturing methods have opened the door to more effective turbine cooling channel geometries. The new geometries will lead to better performance and efficiency but are more complex. To achieve highly accurate results, a team of Purdue engineers turned to Ansys CFX. The engineers executed key computations with little turnaround time. With the extra time, they could perform more in-depth comparisons and run further simulations to fully optimize their product.
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    Ansys Icepak
    Ansys Icepak is a CFD solver for electronics thermal management. It predicts airflow, temperature, and heat transfer in IC packages, PCBs, electronic assemblies/enclosures, and power electronics. Ansys Icepak provides powerful electronic cooling solutions that utilize the industry-leading Ansys Fluent computational fluid dynamics (CFD) solver for thermal and fluid flow analyses of integrated circuits (ICs), packages, printed circuit boards (PCBs), and electronic assemblies. The Ansys Icepak CFD solver uses the Ansys Electronics Desktop (AEDT) graphical user interface (GUI). Perform conduction, convection, and radiation conjugate heat transfer analyses, with many advanced capabilities to model laminar and turbulent flows, and species analysis including radiation and convection. Ansys’ complete PCB design solution enables you to simulate PCBs, ICs, and packages and accurately evaluate an entire system.
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    CAESIM

    CAESIM

    Adaptive Research

    Adaptive Research is pleased to announce the immediate release of the CAESIM 2024 simulation platform, providing advanced computational fluid dynamics modeling with multi-physics capabilities. The new software release provides new tools and capabilities that optimize the modeling process and provide the CFD engineer with fast simulation solutions.
    Starting Price: $1295/annual standard
  • 19
    Azore CFD

    Azore CFD

    Azore CFD

    Azore is a computational fluid dynamics software tool for analyzing fluid flow and heat transfer. CFD provides engineers and scientists a method for analyzing a wide array of fluid mechanics, thermal, and chemical problems numerically on a computer. Many different types of fluid dynamic situations can be simulated using Azore, including air, gas, liquid, or particulate-laden flows. For liquid systems, modeling the flow of water through a piping system or evaluating water velocity profiles around submerged objects are common uses of Azore. The flow of air or gases can also be analyzed such as simulating the ambient air velocity profiles of wind as it passes around buildings or investigating the flow and heat transfer inside a room, duct system, mechanical equipment, or industrial process. Azore CFD can be used to simulate essentially any incompressible, steady-state, or transient fluid flow model, including problems that involve conjugate heat transfer and species transport.
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    6SigmaET

    6SigmaET

    6SigmaET

    6SigmaET is an electronics thermal modeling tool that uses advanced computational fluid dynamics (CFD) to create accurate models of electronic equipment. Designed specifically for the electronics industry, our thermal simulation software ushers in unparalleled intelligence, automation and accuracy to help you meet your requirements and overcome thermal design challenges. Since its inception in 2009, 6SigmaET has become the fastest-growing thermal simulation software in the electronics cooling market. The versatility of 6SigmaET allows you to simulate the thermal performance of electronic components: ranging from the smallest ICs to the largest, most powerful servers. Learn more about 6SigmaET's value to your industry by watching one of our videos or exploring our case studies. The complete CAD geometry of a device and PCB design can be imported into 6SigmaET for thermal analysis, reducing model creation time.
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    GASP

    GASP

    AeroSoft

    GASP is a structured/unstructured, multi-block CFD flow solver which solves the Reynolds Averaged Navier-Stokes (RANS) equations as well as the heat conduction equation for solid bodies. Hierarchical-tree based organization. Pre- and post-processing in one interface. Solves steady and unsteady 3-D, Reynolds-Averaged, Navier-Stokes Equations (RANS) and subsets. Multi-block structured/unstructured grid topology. Unstructured mesh support for tetrahdra, hexahedra, prisms, and pyramids. Integration with portable extensible toolkit for scientific computation library. Uncoupling of systems including turbulence and chemistry for improved computational efficiency. Support for most parallel computers, including clusters. Integrated domain decomposition is transparent to the user.
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    FLOW-3D

    FLOW-3D

    Flow Science

    Optimize product designs and reduce time to market with FLOW-3D, a highly-accurate CFD software that specializes in solving transient, free-surface problems. FLOW-3D‘s complete multiphysics suite includes our state-of-the-art postprocessor, FlowSight. FLOW-3D provides a complete and versatile CFD simulation platform for engineers investigating the dynamic behavior of liquids and gas in a wide range of industrial applications and physical processes. FLOW-3D focuses on free surface and multi-phase applications, serving a broad range of industries including microfluidics, bio-medical devices, water civil infrastructure, aerospace, consumer products, additive manufacturing, inkjet printing, laser welding, automotive, offshore, energy and automotive. A uniquely powerful, multiphysics tool, FLOW-3D provides the functionality, ease-of-use and power that helps engineers advance their modeling objectives.
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    Stallion 3D

    Stallion 3D

    Hanley Innovations

    Stallion 3D quickly generates aerodynamic performance data (lift, drag and moments) for new and existing CAD designs. Get superior RANS results without having to make a single grid. Grid generation in Stallion 3D is fully automatic. This eliminates the most time consuming and painful bottleneck in CFD. Stallion 3D quickly and accurately predicts the aerodynamic performance of your designs using its proprietary CFD algorithm (HIST). The software imports your CAD models and generates the 3D aerodynamic data needed to verify your designs and ensure your success. Reports of lift, drag, yaw, roll, pitch magnitudes and related forces and moments in the coordinates direction. Plots of 2D line graphs of Cp, velocity, mach number, density and temperature at constant coordinates locations long the STL surface (for example, you can plot Cp (x) at any span location along the wing).
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    Ansys Fluent
    Ansys Fluent is the industry-leading fluid simulation software known for its advanced physics modeling capabilities and industry leading accuracy. Ansys Fluent gives you more time to innovate and optimize product performance. Trust your simulation results with a software that has been extensively validated across a wide range of applications. With Ansys Fluent, you can create advanced physics models and analyze a variety of fluids phenomena—all in a customizable and intuitive space. Accelerate your design cycle with this powerful fluid simulation software. Ansys Fluent contains the best-in class physics models and can accurately and efficiently solve large , complex models. Ansys Fluent unlocks new potentials for CFD analysis. A fluid simulation software with fast pre-processing and faster solve times to help you be the fastest to break into the market. Fluent’s industry leading features enable limitless innovation, while never making a compromise on accuracy.
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    Simcenter STAR-CCM+

    Simcenter STAR-CCM+

    Siemens Digital Industries

    Simcenter STAR-CCM+ is a multiphysics computational fluid dynamics (CFD) software for the simulation of products operating under real-world conditions. Simcenter STAR-CCM+ uniquely brings automated design exploration and optimization to the CFD simulation toolkit of every engineer. The single integrated environment includes everything from CAD, automated meshing, multiphysics CFD, sophisticated postprocessing, and design exploration. This allows engineers to efficiently explore the entire design space to make better design decisions faster. The additional insight gained by using Simcenter STAR-CCM+ to guide your design process ultimately leads to more innovative products that exceed customer expectations. Significantly improving a battery design across its whole operating range is a challenging task, and involves the simultaneous optimization of numerous parameters. Simcenter provides a complete simulation environment for the analysis and design of the electrochemical system.
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    Altair Activate
    Altair Activate can be applied to model and simulate a broad range of products as a system-of-systems to discover better designs, faster. Products in every industry are becoming increasingly complex and electrified, as well as smarter and more connected. Multi-disciplinary system-level simulation capabilities help develop smart, complex mechatronic systems holistically while enabling more streamlined product development teamwork and workflows. Altair Activate breaks down silos between mechanical subsystems, electrical subsystems, control subsystems, electronic subsystems, software, hardware-in-the-loop, data analytics, and more. Model thermal-fluid system dynamics using 1D modeling &and simulation (rather than using only 3D CFD) to yield nearly-as-accurate results significantly faster – to enable more design exploration and optimized performance in less time.
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    Kombyne

    Kombyne

    Kombyne

    Kombyne™ is an innovative new SaaS high-performance computing (HPC) workflow tool, initially developed for customers in the defense, automotive, and aerospace industries and academic research. It allows users to subscribe to a range of workflow solutions for HPC CFD jobs, from on-the-fly extract generation and rendering to simulation steering. Interactive monitoring and control are also available, all with minimal simulation disruption and no reliance on VTK. The need for large files is eliminated via extract workflows and real-time visualization. An in-transit workflow uses a separate process that quickly receives data from the solver code and performs visualization and analysis without interfering with the running solver. This process, called an endpoint, can directly output extracts, cutting planes or point samples for data science and can render images as well. The Endpoint can also act as a bridge to popular visualization codes.
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    SpectreUQ

    SpectreUQ

    Intelligent Light

    SpectreUQ™ builds on the mature and sophisticated DAKOTA software from Sandia National Laboratories and adds a wizard to guide the engineer through the UQ process. The details of the disciplined UQ process are handled behind the scenes. It uses a database to store results from experiments and simulations in a structured fashion and provides interactive graphing and visualization tools. Provided via an annual subscription without user count restrictions and in source code form. SpectreUQ™ unlike other methods is non-intrusive to the simulation; it runs alongside the code, not within it. Using your own HPC, you are free to evaluate hundreds of flight conditions to train built-in surrogate models. Easy to learn and use, tuned over hundreds of hours of use on actual UQ studies. The Oberkampf-Roy method is used to guide the process of ingesting experimental data and CFD results. Interactive plots of results are easy to explore and publish.
  • 29
    UrbaWind

    UrbaWind

    Meteodyn

    Wind is a difficult to grasp. In an urbanized environment, its behavior becomes more complex in contact with buildings, and many effects can occur: speed-ups (Venturi effect), vortices, plunging flows, interference, detachments, etc. The built environment thus creates a microclimate that often causes discomfort for users. To achieve sustainable architecture and urban planning, it is essential to study these aerodynamic phenomena and to integrate them as early as possible in urban projects. its study is more and more requested by project owners in many countries. Its consideration is necessary for the proper development of an outdoor public space and the well-being of users. UrbaWind allows you to compute the wind comfort of pedestrians according to the comfort standards of different countries.
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    AKL FlowDesigner
    AKL FlowDesigner is a computational fluid dynamics (CFD) simulation software that enables wind analysis by easily importing 3D models of buildings or urban blocks developed by modeling tools such as Autodesk Revit, GRAPHISOFT ARCHICAD, Rhinoceros and SketchUp. AKL FlowDesigner is BIM capable in IFC format. Architects, designers, engineers and consultants can use AKL FlowDesigner early in the design process to understand and visualize airflow around their projects. Early analysis reduces design time and gives a powerful impression to clients. CFD simulation of AKL FlowDesigner gives you the maximum benefit in the application of AEC (architecture, engineering and construction) industry. Airflow simulation used to be a complex and time-consuming task requiring deep technical knowledge. No more! AKL FlowDesigner allows any user to create simulations and analyze airflow in minutes. No engineering degree or complex calculations are required!
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CFD Software Guide

Computational Fluid Dynamics (CFD) software is a powerful tool used for the numerical simulation of fluid flow for various applications. It is used in a broad range of industries, such as automotive, aerospace, chemical engineering, and architecture. CFD can be used to analyze the performance of new designs before they are constructed or models are tested.

CFD works by breaking down complex equations into simplified versions that can be solved using a computer. These equations describe the physical characteristics of an object and how it interacts with its environment. The computer then uses these equations to simulate the behavior of fluids such as air or water and their effects on objects within a certain environment. This allows engineers to accurately predict how their design will behave under different conditions before actually constructing it.

The CFD software typically consists of three components: the solver, post-processing tools, and visualization tools. The solver processes the data and performs calculations so that engineers can study its results without manually entering any commands. Post-processing tools organize and present the results while visualization tools create images based on what was calculated by the solver. In addition, most programs come with several options to help customize your project specific needs such as grid resolution, time steps and turbulence model type.

CFD Software Features

  • Mesh Generation: Most CFD software packages allow users to create a mesh of their computational geometry using either structured or unstructured grids. This mesh helps divide the domain into small cells where calculations can be performed.
  • Flow Solvers: The flow solver is responsible for solving mathematical equations relating to the motion of fluids. It typically uses numerical methods such as finite difference, finite volume, and finite element methods to calculate velocity, pressure, and other physical properties of a fluid flow.
  • Turbulence Modeling: Turbulence is an important factor in many CFD simulations, so turbulence models are used to predict turbulent flows. These models may be based on empirical data or analytical equations and can describe turbulent characteristics such as eddies and swirls.
  • Heat Transfer Models: Heat transfer models help predict temperature distributions in complex geometries that involve multiple substances with different thermal properties. Models may include convection-diffusion equations, radiation transport equations, and conduction equations.
  • Visualization Tools: Many CFD software packages offer 3D visualization tools to help interpret simulation results more easily. These tools often provide post-processing features such as vector analysis and contour plots that can reveal important information about the simulated flow field.
  • Data I/O: CFD software often provides tools to read and write data in different formats, including a variety of mesh formats, as well as tools to interface with other programs. This helps users integrate their CFD simulations with other applications or simulation packages.

Types of CFD Software

  • Commercial CFD Software: This type of software is designed to meet a variety of engineering needs and employs a range of sophisticated tools and features. It is able to perform complex calculations in order to analyze a wide range of physical phenomena. These types of software are often expensive, but offer users the highest level of accuracy and flexibility.
  • Open-Source CFD Software: This type of software is developed collaboratively by a community of users and developers, and it is distributed without cost or license restrictions. It offers users access to the code and allows them to modify it freely, making this type of software ideal for those who need specialized solutions or have specific requirements that commercial packages do not meet.
  • Numerical Algorithm Based (NAB) CFD Software: This type of software contains numerical algorithms that are used for solving partial differential equations (PDEs). The numerical methods used in NAB CFD software allow for faster calculation times compared to other types, but with some loss in accuracy due to the neglecting certain physical processes during computations.
  • Parallel Processing CFD Software: With this type of software, several processors are used in order to divide tasks across multiple cores simultaneously. This results in faster calculations than if only one processor was being used as well as increased accuracy due to higher resolution grids being employed.
  • Application Specific Solutions: These types of programs are custom written for specific tasks such as simulating flows over aircraft wings or thermal analysis on heating systems. They usually provide better performance than general purpose packages since they only focus on specific applications without having to worry about accounting for factors that may be irrelevant in any given situation.

Advantages of CFD Software

  1. Accurate Results: CFD software provides detailed, accurate results that would otherwise take a significantly longer amount of time to achieve. Through the use of powerful algorithms and numerical methods, it can produce more accurate images than traditional physical models and experiments.
  2. High Speed Simulation: CFD software allows for a fast and realistic simulation of complex phenomena which would be impossible to reproduce in a laboratory setting. This speeds up the design process, providing engineers with better insights into their designs faster and at a lower cost.
  3. Visualization: CFD software offers an interactive visualization of the physical process being simulated. This enables users to better understand the physical processes involved, identify areas where changes could be made to improve performance or efficiency, and gain valuable insight into how their design will react in different scenarios.
  4. Reduced Design Costs: Using CFD software can reduce development costs as it eliminates the need to construct expensive prototypes or perform costly tests in a laboratory environment. This allows companies to develop new products faster and at lower costs than before.
  5. Reduced Risk: By allowing designers to test their designs virtually with fewer associated risks than physical testing, CFD software reduces risk considerably since unexpected outcomes are easier to identify before production begins.
  6. Repeatability: CFD software offers the same results every time a process is simulated, meaning that results are reliable and enabling designers to compare different design configurations quickly and accurately without having to conduct additional experiments.
  7. Comprehensive Analysis: CFD software can provide a comprehensive analysis of a system, including fluid flow, thermal analysis, stress and strain results of components in the system. This allows engineers to make more informed decisions when designing and developing products.

Who Uses CFD Software?

  • Aerospace Engineers: Engineers who use CFD software to design and analyze aeronautical components, including wings, fuselages, engines and more. CFD software can be used for wind simulation.
  • Mechanical Engineers: Engineers who use CFD software for mechanical engineering to analyze the performance of mechanical systems on a macroscopic level, such as buildings or large turbines.
  • Civil Engineers: Engineers who use CFD software for civil engineering to analyze and simulate the flow of water for optimal engineering projects, such as dams and bridges.
  • Environmental Scientists: Scientists who use CFD software to study air pollution and other environmental issues including ocean currents and wind patterns.
  • Automotive Designers: Designers who use CFD software to optimize their designs for better fuel efficiency, cooling systems or other performance aspects of vehicles.
  • HVAC Technicians: Technicians that use CFD software to troubleshoot heating, ventilation and air conditioning (HVAC) systems in commercial or residential buildings.
  • Process Analysts: Analysts that use CFD software to predict process reactions in industrial settings such as chemical plants or oil refineries.
  • Academic Researchers: Researchers that utilize CFD tools in pursuit of advanced scientific research in areas such as hydrodynamics or fluid-structure interactions.
  • Industrial Designers: Designers who use CFD software to optimize their products for better performance and efficiency in industrial processes.

How Much Does CFD Software Cost?

The cost of CFD software can vary greatly depending on the features and capabilities you are looking for. Generally speaking, entry-level CFD software packages can range from a few hundred dollars up to several thousand dollars.

Mid-range CFD software suites can start in the thousands of dollars and reach into the tens or even hundreds of thousands for more advanced versions. These packages typically offer greater customization options when it comes to solver settings, boundary conditions, turbulence models, and other advanced simulation capabilities. Additionally, they may provide access to additional resources such as development libraries or application programming interfaces (APIs).

At the highest end of the market are fully customized corporate solutions which can cost anywhere between a few hundred thousand dollars to well over a million. These will usually come with full technical support and often specialized consulting services as well as dedicated hardware infrastructure. Such solutions are typically highly optimized for specific applications or domains, making them ideal for large companies who need to meet the requirements of a very specific use-case.

Overall, the cost of CFD software can vary greatly depending on the requirements and needs of an individual company or organization.

What Integrates With CFD Software?

CFD (Computational Fluid Dynamics) software can integrate with a range of other types of software tools, including CAD (Computer-Aided Design) programs, pre/post processing visualization solutions and script language interpreters. CAD programs allow for the creation and manipulation of 3D models to be used as input or output within CFD simulations. Pre/post processing visualization solutions enable graphic displays of results generated by the simulations that facilitate analysis and communication to other team members. Script language interpreters provide alternative methods for controlling simulation parameters and automate post-processing tasks. By connecting these different software tools together, engineers are able to create highly integrated workflows that streamline their development processes.

CFD Software Trends

  1. Increased Application: CFD software is being increasingly applied in various industries, such as oil and gas, chemical engineering, aerospace, nuclear power plants, and automotive. This has made it an essential tool for design engineers to simulate realistic fluid flow in complex environments.
  2. User-Friendly Features: With advances in technology, CFD software is becoming more user-friendly and easier to use. It now includes features like interactive tutorials and graphical user interfaces that allow users of all levels of expertise to quickly grasp the fundamentals of CFD applications.
  3. Accelerated Simulation Speeds: The speed and accuracy of CFD simulations has increased due to improvements in computing hardware, numerical methods, and computer algorithms. This allows users to analyze more data points with greater accuracy at a faster rate than ever before.
  4. Improved Visualization Tools: Advanced visualization tools are making it easier for users to gain insight into simulation results by generating high-quality graphics and 3D models. These tools also make it possible to visualize complex phenomena such as turbulent flows or multi-phase flows more accurately.
  5. Automation: Automation has become an important buzzword in the world of CFD software as experts strive to reduce the time taken for long tedious processes within the software. Automation can help improve productivity by automating certain tasks such as meshing or post-processing activities.
  6. Cloud Computing: Cloud computing provides access to remote servers which store large amounts of data on a variety of computers from anywhere with an internet connection. Users can leverage this technology for improved scalability, efficiency, security and performance when running their simulations on cloud-based platforms instead of their own hardware systems.
  7. IoT and Artificial Intelligence (AI) Technologies: As CFD software moves forward, the integration of Internet of Things (IoT) and artificial intelligence (AI) technologies are expected to further enhance the capabilities of the software. This will enable better data analysis, faster processing speeds and more accurate design simulations.

How To Select the Right CFD Software

  1. Determine Your Requirements: Start by assessing what kind of analysis you need to perform and the types of results that must be obtained from the simulation. Consider whether your project requires complex geometries or detailed mesh refinements, as well as whether it requires specialized add-ons or third-party integrations. This will help narrow your search down to the best options available in the market.
  2. Evaluate Potential Solutions: Once you have determined your requirements, begin evaluating potential solutions against these criteria to find out which ones meet all of your needs. Check features such as solvers, interface flexibility, visualization tools, post-processing capabilities, and customer support offered by competing products. Make sure that they are compatible with both current and future projects so that they continue to be useful in the long term. Use the tools on this page to compare CFD software by operating system, integrations, user reviews, pricing, type of project, and more.
  3. Compare Prices and Licensing Options: Finally, compare prices and licensing options among different vendors to determine which ones provide good value for money based on their feature sets and technical requirements for each product. Don’t forget to take into account any ongoing costs associated with operating the software over its lifetime such as maintenance fees or subscription models before making a final decision.