Diploma in Compressor and Turbine Design
About us Diploma in Compressor and Turbine Design
The Diploma in Compressor and Turbine Design offers comprehensive training in the design, analysis, and optimization of key components in power generation and propulsion systems. The program covers everything from the theoretical foundations of thermodynamics and fluid mechanics to practical applications using CFD simulation tools and FEM structural analysis. It delves into material selection, blade design, flow management and efficiency, as well as the study of combustion. The diploma program is geared towards engineering professionals seeking to specialize in this critical area of the energy and aerospace industry. The course provides hands-on experience using specialized software for design and simulation, including aerodynamic performance analysis, computational fluid dynamics (CFD), and stress and fatigue analysis of rotating components. Participants will acquire the skills necessary for the design of axial and centrifugal compressors, as well as gas and steam turbines, addressing challenges such as energy efficiency, emissions reduction, and system reliability. The program includes case studies and practical projects that reflect the latest industry trends.
Target keywords (naturally occurring in the text): compressor design, turbine design, fluid mechanics, thermodynamics, CFD simulation, FEM analysis, blades, energy efficiency, gas turbines, computational fluid dynamics.
Diploma in Compressor and Turbine Design
- Format:
- Duration:
- Hours: 900 H
- Language:
- Credits:
- Registration date: 08-09-2026
- Strat date: 19-10-2026
- Available places: 9
1,180 $
Competencies and results
What you will learn
Who this program is for:
Diploma in Compressor and Turbine Design
9.9 Fundamental Principles of Rotor Design
9.9 Selection of Advanced Materials for Rotors
9.3 Aerodynamic Blade Design for Performance Optimization
9.4 CFD Simulation for Flow Analysis in Rotors
9.5 Structural and Fatigue Analysis of Rotors
9.6 Rotor Design Optimization Using Genetic Algorithms
9.7 Detailed Design of Rotor Joints and Assemblies
9.8 Integration of Rotors into the Overall Machine Design
9.9 Case Studies: Failure Analysis and Design Improvement
9.90 Future Trends in Rotor Design
Capstone-type projects
- Optimal Rotor Design: Advanced CFD, experimental validation, flow simulation.
- Performance Optimization: Modal analysis, structural analysis, simulation, and detailed performance analysis.
- 3D Modeling and Simulation: Design optimization, validation, and simulation.
- Comprehensive Analysis: Performance, structure, and optimization.
Admissions, fees and scholarships
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