Complex aerospace components that once took months to manufacture are now printed in days. Major aerospace companies like GE Aviation and Airbus have revolutionized production through additive manufacturing, achieving 50% weight reductions while exceeding performance standards. This transformation represents the industry's shift to mission-critical 3D printing capabilities.

Aerospace 3D Printing: Additive Manufacturing

Aerospace 3D Printing: Additive Manufacturing


Instructors: Lluis Foreman
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What you'll learn
Apply principles and benefits of additive manufacturing to check compatibility for new aerospace components.
Select appropriate materials and processes to fabricate aerospace-grade 3D printed parts that meet stringent regulatory and structural requirements.
Apply design guidelines and analyze case studies for additive manufacturing in aerospace industry.
Skills you'll gain
- Sustainable Design
- Process Analysis
- Mechanical Design
- Process Engineering
- Sustainable Engineering
- Failure Mode And Effects Analysis
- Finite Element Methods
- Process Development
- Process Validation
- Engineering Design Process
- Aerospace Basic Quality System Standards
- 3D Assets
- Design Specifications
- Equipment Design
- Process Control
- Materials science
- Mechanical Engineering
- Manufacturing Processes
- Design Strategies
- Engineering
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Details to know

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1 assignment
February 2026
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There are 3 modules in this course
The module addresses engineering challenges, such as scalability and quality control, offering tailored solutions for aerospace applications. It evaluates the suitability of aerospace components for AM based on complexity and performance requirements. Additionally, it examines recent trends in AM within the aerospace and automotive industries, emphasizing its role in achieving sustainable development goals through resource-efficient and lightweight designs.
What's included
4 videos2 readings1 peer review
This module investigates the selection and optimization of materials and processes for aerospace additive manufacturing, prioritizing performance-driven material properties. It defines engineering criteria for material compatibility, including strength, thermal resistance, and printability, essential for aerospace demands. The module reviews the use of metals in aerospace AM, highlighting their reliability under extreme conditions. It explores advanced materials specifically developed for AM to enhance component durability and functionality. Process optimization techniques, such as parameter tuning and post-processing, are detailed to improve print quality and performance. The module also analyzes trade-offs between cost, performance, and production speed in material and process selection for aerospace AM.
What's included
3 videos2 readings1 peer review
This module presents practical design strategies for leveraging additive manufacturing to optimize aerospace components. It introduces methods to exploit AM’s capabilities for creating complex, high-performance parts. Advanced topology optimization techniques are explored to reduce weight while maintaining structural integrity. The module discusses selective laser melting (SLM) for producing lightweight, high-strength components through precise material fusion. It introduces tools for automating topology optimization in aerospace design and outlines practical steps for implementing optimized AM designs from concept to production. The suitability of AM for specific aerospace components is evaluated, considering material properties, manufacturing processes, and optimized designs. A concluding video summarizes key learnings and applications of AM in aerospace component design.
What's included
4 videos2 readings1 assignment2 peer reviews
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