Diploma in EMC Design: Shielding, GND and Filtering
About us Diploma in EMC Design: Shielding, GND and Filtering
The Diploma in EMC Design: Shielding, GND, and Filtering focuses on the application of essential electromagnetic compatibility (EMC) principles, covering shielding techniques to minimize emissions and susceptibility, the effective design of ground planes (GND) to ensure signal integrity, and the use of filtering to mitigate interference. The course focuses on the practical application of these methodologies to the design of electronic products, considering standards such as CISPR and IEC, and EMC simulation tools. The program covers everything from theoretical foundations to system design and EMC problem-solving, preparing professionals to ensure compliance with current legislation. The diploma provides specialized knowledge in electromagnetic interference mitigation, including the design of shielded enclosures, the selection and design of filters, and the analysis of signal integrity in electronic circuits and systems. It focuses on the application of precise methodologies for the evaluation and optimization of EMC performance, through practical laboratories that include the use of spectrum analyzers and anechoic chambers, essential for validating product design and ensuring regulatory compliance.
Target keywords (natural in the text): EMC design, shielding, GND, filtering, electromagnetic compatibility, electromagnetic interference, CISPR, IEC, EMC simulation, EMC standards, electronic design.
Diploma in EMC Design: Shielding, GND and Filtering
- Format:
- Duration:
- Hours: 900 H
- Language:
- Credits:
- Registration date: 08-09-2026
- Strat date: 19-10-2026
- Available places: 11
1,499 $
Competencies and results
What you will learn
Who this program is for:
Diploma in EMC Design: Shielding, GND and Filtering
9.9 Introduction to EMC issues in electronic systems
9.9 Shielding principles: materials, types, and effectiveness
9.3 Basic concepts of grounding: single-point vs. Multi-point
9.4 Shielding Design: Selection and Application
9.5 Best Practices for Grounding: Design Considerations
9.6 Shielding Measurement and Analysis
9.7 Practical Examples of Shielding and Grounding
9.8 Design Guidelines for Component Integration
9.9 Fundamental EMC Concepts: Electromagnetic Noise, Interference, Susceptibility
9.9 Principles of Electromagnetic Compatibility
9.3 EMC Regulations: International (CISPR, IEC, EN) and National Standards
9.4 Interpreting and Applying Regulatory Requirements
9.5 Component Selection and its Impact on EMC Design
9.6 Documentation and Regulatory Compliance
9.7 Designing for Compliance
9.8 Non-Compliance Case Studies and Troubleshooting
3.9 Types of Filters: Passive, Active, Line Filters
3.9 Selecting Filtering Components: Capacitors, Inductors, Ferrites
3.3 Designing and Calculating Filters for Different Applications
3.4 Filter Positioning and Connection in Circuit Design
3.5 Filtering Techniques for Power Supplies
3.6 Filtering Techniques for Signal Lines
3.7 Filter Validation and Testing
3.8 Analysis of the Effects of Filtering on Signal Integrity
4.9 Shielding Design for Different Enclosure Types
4.9 Shielding Materials: Selection and Properties
4.3 Design of Gaskets and Seals for Effective Shielding
4.4 Shielding Techniques for Cables and Connectors
4.5 Design Considerations for High-Frequency Shielding
4.6 Implementing Shielding on Printed Circuit Boards
4.7 Failure Analysis and Shielding Optimization
4.8 Implementing Practical Designs
5.9 Shielding Strategies for Multilayer PCBs
5.9 Coupling and Propagation Analysis in PCBs
5.3 Advanced Grounding Techniques in PCBs
5.4 Optimizing Component Layout to Reduce Interference
5.5 Shielding Design to Reduce Radiated Emissions
5.6 Shielding Design to Improve Interference Immunity
5.7 Integrating Shielding into Complex Systems
5.8 Case Studies in Advanced Shielding
6.9 EMC Simulation Tools: Software, Models, and Techniques
6.9 Component and Circuit Modeling
6.3 Emission and Susceptibility Analysis
6.4 Validating EMC Designs Through Simulation
6.5 Simulation Techniques for Complex Environments
6.6 Comparing Simulation with Real-World Testing
6.7 Interpreting Simulation Results
6.8 Optimizing Designs Based on Simulation
7.9 EMC Design in Environments with Multiple Noise Sources
7.9 Design Considerations in Systems with High Component Density
7.3 EMC Design in Mixed Digital and Analog Systems
7.4 EMC Design for Low-Power Systems
7.5 EMC Design for High-Power Systems
7.6 EMC Design in Harsh Environments
7.7 Design Considerations for Functional Safety
7.8 Design for complex electromagnetic environments
8.9 EMC certification process: stages and requirements
8.9 Certification bodies and testing laboratories
8.3 EMC standards applicable to different industries
8.4 Interpreting test reports and certificates
8.5 Adapting the design to meet certification requirements
8.6 The pre-certification process and self-assessment
8.7 Regulatory updates and their impact
8.8 EMC certification management
9.9 Practical applications of EMC design in the aerospace industry
9.9 Case studies in the automotive and marine industries
9.3 Applications in medical and communication devices
9.4 Implementing EMC solutions in industrial systems
9.5 Applications in integrated circuit design
9.6 Current and future trends in EMC design
9.7 Analysis of best design practices
9.8 Challenges and solutions in EMC design
9.9 Practical case studies in EMC design
9.90 Design for the improvement of electromagnetic integrity
Capstone-type projects
- Naval EMC Integration: Design of shielding, grounding, and filtering for critical navigation systems, complying with regulations.
- EMI Analysis on Ships: Simulation and measurement of electromagnetic interference, optimization of wiring and components.
- EMC Filter Design: Implementation of line and signal filters to mitigate noise in marine electronic equipment.
- EMC Certification: Preparation and execution of DO-160 tests, ensuring electromagnetic compatibility.
Admissions, fees and scholarships
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