What does the Design for Manufacturability course cover?
Design for Manufacturability is covered here in 10 modules: Introduction to Design for Manufacturability, Design for Manufacturability Principles: Design for inspection and testing, Material Selection and Properties: Material selection criteria and 7 more. The outline lists 33 specific topics, opening with definition and importance of design for manufacturability and closing with lessons learned and future directions for design for manufacturability.
How do you approach Design for Manufacturability step by step?
The work is sequenced in 10 stages. It starts with Introduction to Design for Manufacturability, moves through Design for Manufacturability Principles: Design for inspection and testing and Material Selection and Properties: Material selection criteria, and ends at Case Studies and Best Practices. Each stage carries its own topic list, so the sequence is followed rather than summarised.
What is in Module 1 of the Design for Manufacturability course?
Module 1 is Introduction to Design for Manufacturability. It works through definition and importance of design for manufacturability, history and evolution of design for manufacturability and key principles and concepts of design for manufacturability. It sets the vocabulary the remaining 9 modules build on.
How is the Design for Manufacturability course delivered?
The Design for Manufacturability course is fully self-paced with immediate online access after enrolment. Access does not expire and future updates are included at no cost. It can be taken on any device, and a certificate of completion is issued by The Art of Service when you finish.
How much does the Design for Manufacturability course cost?
The Design for Manufacturability course is $199 as a one time payment. There is no subscription, no per seat licence and no hidden fee. Enrolment carries a 30 day satisfied or refunded guarantee, so it can be assessed in full before you commit.
Closely related courses: Design for Manufacturability (DFM) Mastery, Manufacturing Execution Systems (MES), Manufacturing Readiness.
More answers: what you get with every course, refund policy, all help answers.
Comprehensive Design for Manufacturability: Ensuring Seamless Production
Course Overview
This comprehensive course provides a detailed understanding of design for manufacturability principles, ensuring seamless production. Participants will learn how to design products that are efficient to manufacture, reducing production costs and improving product quality.Course Features
- Interactive and Engaging: The course includes interactive lessons, quizzes, and hands-on projects to keep participants engaged.
- Comprehensive and Personalized: The course covers all aspects of design for manufacturability and provides personalized feedback to participants.
- Up-to-date and Practical: The course content is up-to-date and practical, with real-world applications and examples.
- High-quality Content and Expert Instructors: The course content is of high quality, and the instructors are experts in the field of design for manufacturability.
- Certification: Participants receive a certificate upon completion, issued by The Art of Service.
- Flexible Learning and User-friendly: The course is flexible and user-friendly, allowing participants to learn at their own pace.
- Mobile-accessible and Community-driven: The course is mobile-accessible and community-driven, allowing participants to interact with each other and the instructors.
- Actionable Insights and Hands-on Projects: The course provides actionable insights and hands-on projects to help participants apply the concepts learned.
- Bite-sized Lessons and Lifetime Access: The course includes bite-sized lessons, and participants have lifetime access to the course content.
- Gamification and Progress Tracking: The course includes gamification elements and progress tracking to keep participants motivated.
Course Outline
Module 1: Introduction to Design for Manufacturability
- Definition and importance of design for manufacturability
- History and evolution of design for manufacturability
- Key principles and concepts of design for manufacturability
Module 2. Design for Manufacturability Principles: Design for inspection and testing
- Simplification and standardization
- Design for assembly and disassembly
- Design for inspection and testing
- Design for maintenance and repair
Module 3. Material Selection and Properties: Material selection criteria
- Material selection criteria
- Material properties and characteristics
- Material testing and inspection methods
Module 4. Manufacturing Processes: Casting and molding processes, Forming and shaping processes
- Machining processes
- Casting and molding processes
- Forming and shaping processes
- Joining and assembly processes
Module 5. Tolerance and Dimensional Control: Tolerance analysis and simulation methods
- Tolerance and dimensional control principles
- Geometric dimensioning and tolerancing (GD&T)
- Tolerance analysis and simulation methods
Module 6: Surface Finish and Texture
- Surface finish and texture principles
- Surface roughness and waviness measurement methods
- Surface finish and texture specification methods
Module 7. Corrosion and Wear Resistance: Wear testing and evaluation methods
- Corrosion and wear resistance principles
- Corrosion testing and evaluation methods
- Wear testing and evaluation methods
Module 8. Environmental and Regulatory Considerations: Environmental regulations and standards
- Environmental regulations and standards
- Regulatory compliance and certification methods
- Sustainable design and manufacturing practices
Module 9. Design for Manufacturability Tools and Software: Computer-aided design (CAD) software
- Computer-aided design (CAD) software
- Computer-aided manufacturing (CAM) software
- Computer-aided engineering (CAE) software
- Design for manufacturability analysis and simulation software
Module 10: Case Studies and Best Practices
- Real-world case studies of design for manufacturability applications
- Best practices for design for manufacturability implementation
- Lessons learned and future directions for design for manufacturability