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Dubai 5 October 2026
Training Programme

Training Course in Wind Turbine Blade Engineering and Production

1Summary

A turbine's blades do more work than any other component on the machine — they're what actually pulls energy out of moving air, and their shape, material, and manufacturing quality set the ceiling on everything the turbine can ever produce. Get blade design wrong and no amount of clever control software downstream can fully make up the difference.

This training course by the Arab British Fellowship Training Academy takes participants from the aerodynamic theory behind blade shape through material selection, manufacturing processes, and quality testing, closing with the cost and market factors that determine which blade designs actually make it to production. The goal is a practical grasp of how a blade moves from concept to a finished, certified product.

2Objectives and target group

Who Should Attend?

  • Mechanical engineers working on the design and analysis of wind turbine components.
  • Manufacturing engineers involved in production processes and large-scale manufacturing techniques.
  • Renewable energy specialists focused on advancing and implementing wind energy solutions.

Course Objectives

By the end of the course, participants will be able to:

  • Apply the principles governing wind turbine blade design, including aerodynamics and materials science.
  • Compare manufacturing processes used to produce wind turbine blades and their implications for performance and sustainability.
  • Evaluate the challenges of blade design and manufacturing, including material selection, structural integrity, and cost.

3Course Content

Module 1: Why Blades Matter — Role, History, and Current Trends

  • The function of blades in capturing energy and their interaction with wind flow.
  • How blade design shapes overall turbine performance.
  • The evolution of blade design and the key milestones in the technology.
  • Current innovations driving efficiency improvements, including larger rotor diameters and new materials.

Module 2: The Aerodynamics and Engineering Theory Behind Blade Design

  • Lift and drag forces, airfoil shape, and the role of angle of attack in efficiency.
  • Blade element momentum (BEM) theory and its application in design optimization.
  • Computational Fluid Dynamics (CFD) techniques for blade analysis and design validation.

Module 3: Materials and Structural Loads

  • Materials used in blade manufacturing — composites, metals, wood — and their trade-offs.
  • Factors influencing material choice based on performance criteria.
  • Forces acting on blades during operation and methods for calculating bending and torsional loads.
  • The importance of structural integrity in design.

Module 4: Designing for the Long Haul — Fatigue and Reliability

  • Assessing fatigue factors and their effect on blade life expectancy.
  • Design strategies to enhance durability.
  • The role of reliability testing in blade design.

Module 5: From Raw Material to Blade — Manufacturing Techniques

  • Common methods for fabricating wind turbine blades and their advantages and limitations.
  • The importance of precision throughout production.
  • Resin infusion processes and the benefits of prepreg materials in blade construction.
  • Challenges in handling and curing composite materials.

Module 6: Quality, Optimization, and Prototyping

  • Quality assurance techniques, testing, and inspection standards in manufacturing.
  • Methods for optimizing blade geometry, including parametric design and software tools.
  • Creating and iterating on prototypes, and scaling designs from prototype to production.

Module 7: Testing, Sustainability, and Cost

  • Testing methodologies, including field tests and wind tunnel experiments, and analyzing results for design improvement.
  • Eco-friendly materials, life cycle analysis, and end-of-life recycling considerations.
  • Breaking down the costs of design and manufacturing, and strategies for reducing costs without sacrificing quality.

Module 8: Market Outlook and Blade-Turbine Interaction

  • Global market trends in blade manufacturing and the impact of policy and regulation.
  • How blade design affects overall turbine performance, efficiency, and reliability.
  • Future directions for innovation in blade technology.

Module 9: Teamwork and Compliance

  • The importance of interdisciplinary collaboration across aerodynamics, materials science, and mechanical engineering.
  • Building effective teams for blade development projects.
  • Regulations affecting blade design and manufacturing, and the certification process for new designs.

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Training Course in Wind Turbine Blade Engineering and Production