Report cover image

Europe Computational Fluid Dynamics Market Size, Share & Industry Analysis Report By Deployment Mode (On-premises and Cloud), By Component (Software and Services), By End User (Aerospace, Automotive, Energy, Manufacturing, Material & Chemical Processing,

Published Jul 18, 2025
Length 179 Pages
SKU # KBV20295607

Description

The Europe Computational Fluid Dynamics Market would witness market growth of 7.1% CAGR during the forecast period (2025-2032).

The Germany market dominated the Europe Computational Fluid Dynamics Market by Country in 2024, and would continue to be a dominant market till 2032; thereby, achieving a market value of $308.4 million by 2032. The UK market is experiencing a CAGR of 6% during (2025 - 2032). Additionally, The France market would exhibit a CAGR of 7.9% during (2025 - 2032).

In the global market for computational fluid dynamics (CFD), Europe is one of the most developed and technologically sophisticated regions. Major industrial companies in the area include those in the automotive, aerospace, energy, electronics, and processing materials sectors; all these industries depend on CFD to improve performance, streamline design, and maintain regulatory compliance. Well-established R&D infrastructure and academic institutions in nations like Germany, France, the UK, Italy, and the Netherlands support CFD research and innovation. High-fidelity simulation tools are being adopted by a variety of verticals due to the European Union's strong emphasis on sustainability, digitization, and industrial modernization. CFD is still a vital tool in Europe's engineering and industrial landscape as manufacturers strive for faster, greener, and more intelligent product development.

Important Trends Fueling Europe's CFD Growth
  • Designing Greener Products with CFD: Creating Greener Products with CFD Europe is employing CFD to create buildings and automobiles that use less energy. It assists in enhancing airflow, cooling, and fuel consumption to comply with stringent environmental regulations.
  • Digital Twins Provide Real-Time Insights: Digital twins, or virtual representations of actual systems, heavily rely on CFD. It aids in problem prediction and enhances daily performance in power plants and smart buildings.
  • AI-Powered Smarter Simulations with Open-Source Tools: European industries and researchers are using open-source CFD tools like OpenFOAM for flexible, low-cost simulations. AI is also helping to improve the accuracy of models and speed up simulations.
Country Outlook

Germany's dominance in engineering, automotive, aerospace, and industrial manufacturing has made its computational fluid dynamics (CFD) market one of the most developed and technologically sophisticated in Europe. German businesses and institutions, which are renowned for their accuracy and inventiveness, have successfully incorporated CFD tools into their R&D and product lifecycle procedures, facilitating effective design, testing, and optimization across challenging fluid dynamics problems.

UK: Using Innovation to Advance CFD
  • Strong Industrial Backbone: To address design issues and improve product efficiency, the UK makes extensive use of CFD in industries like aerospace, automotive, and energy.
  • Emphasis on High-Performance Engineering: CFD assists UK industries in developing smarter technologies, reducing expenses, and improving performance through an emphasis on cutting-edge engineering.
  • Driving Digital Transformation: By facilitating virtual testing and optimization and minimizing the need for physical prototypes, CFD is a major factor in the UK's digital transformation.
The UK leverages CFD across aerospace, automotive, and energy sectors to solve design challenges, boost efficiency, drive high-performance engineering, and support digital transformation through virtual testing and smart technology development.

France: Precision and Progress in CFD
  • Deep Roots in Core Industries: To improve performance and guarantee accuracy in challenging engineering tasks, France uses CFD in the energy, defense, and aerospace sectors.
  • Strong Government and Academic Support: CFD is deeply ingrained in French innovation and development, with the backing of the public and prestigious research institutions.
  • A tool for modern industrial design, CFD has become indispensable in French industry for virtually modeling, testing, and perfecting products, which saves time, money, and improves quality.
France uses CFD to improve precision engineering in the fields of energy, defense, and aerospace. CFD is crucial for virtual design, testing, and enhancing the effectiveness and quality of products because of the strong backing from the government and academia.

Based on Deployment Mode, the market is segmented into On-premises and Cloud. Based on Component, the market is segmented into Software and Services. Based on End User, the market is segmented into Aerospace, Automotive, Energy, Manufacturing, Material & Chemical Processing, and Other End User. Based on countries, the market is segmented into Germany, UK, France, Russia, Spain, Italy, and Rest of Europe.

List of Key Companies Profiled
  • ANSYS, Inc.
  • Siemens AG
  • Dassault Systemes SE
  • Altair Engineering Inc.
  • Hexagon AB
  • ESI Group (Keysight Technologies, Inc.)
  • PTC, Inc.
  • The MathWorks, Inc.
  • Autodesk, Inc.
  • Cadence Design Systems, Inc.
Europe Computational Fluid Dynamics Market Report Segmentation

By Deployment Mode
  • On-premises
  • Cloud
By Component
  • Software
  • Services
By End User
  • Aerospace
  • Automotive
  • Energy
  • Manufacturing
  • Material & Chemical Processing
  • Other End User
By Country
  • Germany
  • UK
  • France
  • Russia
  • Spain
  • Italy
  • Rest of Europe

Table of Contents

179 Pages
Chapter 1. Market Scope & Methodology
1.1 Market Definition
1.2 Objectives
1.3 Market Scope
1.4 Segmentation
1.4.1 Europe Computational Fluid Dynamics Market, by Deployment Mode
1.4.2 Europe Computational Fluid Dynamics Market, by Component
1.4.3 Europe Computational Fluid Dynamics Market, by End User
1.4.4 Europe Computational Fluid Dynamics Market, by Country
1.5 Methodology for the research
Chapter 2. Market at a Glance
2.1 Key Highlights
Chapter 3. Market Overview
3.1 Introduction
3.1.1 Overview
3.1.1.1 Market Composition and Scenario
3.2 Key Factors Impacting the Market
3.2.1 Market Drivers
3.2.2 Market Restraints
3.2.3 Market Opportunities
3.2.4 Market Challenges
Chapter 4. Competition Analysis - Global
4.1 KBV Cardinal Matrix
4.2 Recent Industry Wide Strategic Developments
4.2.1 Partnerships, Collaborations and Agreements
4.2.2 Product Launches and Product Expansions
4.2.3 Acquisition and Mergers
4.3 Market Share Analysis, 2024
4.4 Top Winning Strategies
4.4.1 Key Leading Strategies: Percentage Distribution (2021-2025)
4.4.2 Key Strategic Move: (Partnerships, Collaborations & Agreements: 2024, Jun – 2025, Jun) Leading Players
4.5 Porter Five Forces Analysis
Chapter 5. Value Chain Analysis of Computational Fluid Dynamics Market
5.1 Research & Algorithm Development
5.2 Software Engineering & Platform Development
5.3 Preprocessing & Mesh Generation Tools
5.4 Hardware Infrastructure & Cloud Computing
5.5 Solver Execution & Simulation Monitoring
5.6 Postprocessing & Visualization
5.7 Deployment, Training & Customer Support
Chapter 6. Key Costumer Criteria - Computational Fluid Dynamics Market
Chapter 7. Europe Computational Fluid Dynamics Market by Deployment Mode
7.1 Europe On-premises Market by Country
7.2 Europe Cloud Market by Country
Chapter 8. Europe Computational Fluid Dynamics Market by Component
8.1 Europe Software Market by Country
8.2 Europe Services Market by Country
Chapter 9. Europe Computational Fluid Dynamics Market by End User
9.1 Europe Aerospace Market by Country
9.2 Europe Automotive Market by Country
9.3 Europe Energy Market by Country
9.4 Europe Manufacturing Market by Country
9.5 Europe Material & Chemical Processing Market by Country
9.6 Europe Other End User Market by Country
Chapter 10. Europe Computational Fluid Dynamics Market by Country
10.1 Germany Computational Fluid Dynamics Market
10.1.1 Germany Computational Fluid Dynamics Market by Deployment Mode
10.1.2 Germany Computational Fluid Dynamics Market by Component
10.1.3 Germany Computational Fluid Dynamics Market by End User
10.2 UK Computational Fluid Dynamics Market
10.2.1 UK Computational Fluid Dynamics Market by Deployment Mode
10.2.2 UK Computational Fluid Dynamics Market by Component
10.2.3 UK Computational Fluid Dynamics Market by End User
10.3 France Computational Fluid Dynamics Market
10.3.1 France Computational Fluid Dynamics Market by Deployment Mode
10.3.2 France Computational Fluid Dynamics Market by Component
10.3.3 France Computational Fluid Dynamics Market by End User
10.4 Russia Computational Fluid Dynamics Market
10.4.1 Russia Computational Fluid Dynamics Market by Deployment Mode
10.4.2 Russia Computational Fluid Dynamics Market by Component
10.4.3 Russia Computational Fluid Dynamics Market by End User
10.5 Spain Computational Fluid Dynamics Market
10.5.1 Spain Computational Fluid Dynamics Market by Deployment Mode
10.5.2 Spain Computational Fluid Dynamics Market by Component
10.5.3 Spain Computational Fluid Dynamics Market by End User
10.6 Italy Computational Fluid Dynamics Market
10.6.1 Italy Computational Fluid Dynamics Market by Deployment Mode
10.6.2 Italy Computational Fluid Dynamics Market by Component
10.6.3 Italy Computational Fluid Dynamics Market by End User
10.7 Rest of Europe Computational Fluid Dynamics Market
10.7.1 Rest of Europe Computational Fluid Dynamics Market by Deployment Mode
10.7.2 Rest of Europe Computational Fluid Dynamics Market by Component
10.7.3 Rest of Europe Computational Fluid Dynamics Market by End User
Chapter 11. Company Profiles
11.1 ANSYS, Inc.
11.1.1 Company Overview
11.1.2 Financial Analysis
11.1.3 Regional Analysis
11.1.4 Research & Development Expenses
11.1.5 Recent strategies and developments:
11.1.5.1 Partnerships, Collaborations, and Agreements:
11.1.6 SWOT Analysis
11.2 Siemens AG
11.2.1 Company Overview
11.2.2 Financial Analysis
11.2.3 Segmental and Regional Analysis
11.2.4 Research & Development Expense
11.2.5 Recent strategies and developments:
11.2.5.1 Partnerships, Collaborations, and Agreements:
11.2.5.2 Acquisition and Mergers:
11.2.6 SWOT Analysis
11.3 Dassault Systemes SE
11.3.1 Company Overview
11.3.2 Financial Analysis
11.3.3 Regional Analysis
11.3.4 Research & Development Expense
11.4 ALTAIR ENGINEERING INC.
11.4.1 Company Overview
11.4.2 Financial Analysis
11.4.3 Segmental and Regional Analysis
11.4.4 Research & Development Expenses
11.4.5 Recent strategies and developments:
11.4.5.1 Partnerships, Collaborations, and Agreements:
11.4.5.2 Product Launches and Product Expansions:
11.5 Hexagon AB
11.5.1 Company Overview
11.5.2 Financial Analysis
11.5.3 Regional & Segmental Analysis
11.5.4 Research & Development Expenses
11.5.5 SWOT Analysis
11.6 ESI Group (Keysight Technologies, Inc.)
11.6.1 Company Overview
11.6.2 Financial Analysis
11.6.3 Segmental and Regional Analysis
11.6.4 Research & Development Expenses
11.6.5 SWOT Analysis
11.7 PTC, Inc.
11.7.1 Company Overview
11.7.2 Financial Analysis
11.7.3 Regional Analysis
11.7.4 Research & Development Expenses
11.7.5 Recent strategies and developments:
11.7.5.1 Partnerships, Collaborations, and Agreements:
11.7.5.2 Product Launches and Product Expansions:
11.7.6 SWOT Analysis
11.8 The MathWorks, Inc.
11.8.1 Company Overview
11.8.2 SWOT Analysis
11.9 Autodesk, Inc.
11.9.1 Company Overview
11.9.2 Financial Analysis
11.9.3 Regional Analysis
11.9.4 Research & Development Expenses
11.9.5 SWOT Analysis
11.10. Cadence Design Systems, Inc.
11.10.1 Company Overview
11.10.2 Financial Analysis
11.10.3 Regional Analysis
11.10.4 Research & Development Expense
11.10.5 SWOT Analysis
How Do Licenses Work?
Head shot

Questions or Comments?

Our team has the ability to search within reports to verify it suits your needs. We can also help maximize your budget by finding sections of reports you can purchase.