
Lightning Protection Training
Master every phase of lightning protection engineering, from risk assessment and system design to surge protection and compliance testing. This training covers the full scope of IEC-aligned standards, giving electrical engineers, protection designers, and safety professionals the technical depth to design and verify compliant systems. Build the skills that protect lives, equipment, and critical infrastructure.
What you will learn:
This course covers the physics of lightning discharge, structured risk assessment methodology, and the design of air termination, down conductor, and earthing systems for a wide range of structure types. You will learn how to select and coordinate surge protective devices for electrical and electronic systems, calculate separation distances, and specify soil treatment for low-resistance earth electrodes. The curriculum also addresses special structures including data centers, renewable energy installations, and explosive hazard sites. You will finish with the inspection, testing, and maintenance procedures required to verify and sustain system performance over time.
How you study in a practical way Lightning Protection Training
How you practise Lightning Protection Training
For companies looking to train their teams
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Lightning Physics
Fundamentals of Lightning Physics
Lesson 1 • Lightning Discharge Mechanisms
Examines the sequence from leader attachment to return stroke. Connects discharge physics to the energy levels protection systems must handle.
Lesson 2 • Strike Point Selection and Attachment
Explains why lightning attaches to specific points based on geometry and conductivity. Informs air terminal placement decisions covered in later chapters.
Lesson 3 • Types of Lightning Events
Distinguishes cloud-to-ground, intracloud, and cloud-to-cloud discharges. Clarifies which event types pose direct structural and personnel hazards.
Lesson 4 • Atmospheric Electricity Basics
Covers charge buildup in storm clouds and the role of electric fields. Grounds all subsequent protection concepts in physical reality.
Lesson 5 • Lightning Parameters for System Design
Quantifies peak current, rise time, and energy parameters used in engineering calculations. Provides the numerical inputs required for protection level selection.
Chapter 2HideHide detailsSee detailsRisk Assessment and Protection Levels
Risk Assessment and Protection Levels
Lesson 1 • Protection Level Selection
Maps calculated risk values to standardised protection levels I through IV. Guides the design parameters used in all subsequent system design chapters.
Lesson 2 • Consequence and Vulnerability Factors
Evaluates occupancy type, fire risk, and system sensitivity to determine vulnerability. Links consequence severity to protection level selection.
Lesson 3 • Risk Assessment Methodology
Introduces the structured process for identifying loss sources and risk components. Establishes the analytical framework applied throughout the chapter.
Lesson 4 • Lightning Threat Parameters
Quantifies ground flash density, collection area, and location factors. These inputs feed directly into risk calculation formulas.
Lesson 5 • Risk Assessment Case Studies
Applies the full methodology to residential, industrial, and critical infrastructure scenarios. Reinforces calculation accuracy and documentation completeness.
Chapter 3HideHide detailsSee detailsAir Termination System Design
Air Termination System Design
Lesson 1 • Roof Edge and Parapet Protection
Addresses the elevated strike probability at roof edges, ridges, and parapets. Ensures no unprotected zone exists at structurally vulnerable perimeter locations.
Lesson 2 • Air Termination Design Methods
Presents the rolling sphere, mesh, and protective angle methods and their applicability. Students select the correct method based on structure geometry and protection level.
Lesson 3 • Rooftop Equipment and Protrusions
Integrates HVAC units, antennas, and mechanical plant into the air termination zone. Prevents side-flash risk from unprotected metallic protrusions.
Lesson 4 • Air Termination Layout Documentation
Produces scaled drawings and specification sheets for air termination systems. Prepares students for the submittal and approval process in professional practice.
Lesson 5 • Air Terminal Types and Selection
Compares rods, catenary wires, and meshed conductors for different roof profiles. Connects terminal type to interception efficiency and installation practicality.
Chapter 4HideHide detailsSee detailsDown Conductor System Design
Down Conductor System Design
Lesson 1 • Down Conductor Installation Details
Covers fixing methods, test joints, and surface penetration details for various wall types. Ensures mechanical integrity and future inspection access.
Lesson 2 • Separation Distance Calculation
Calculates the required air gap between down conductors and internal metalwork to prevent side-flash. This calculation directly determines bonding or isolation requirements.
Lesson 3 • Conductor Material and Sizing
Specifies cross-sectional area, material type, and corrosion resistance for each protection level. Ensures conductors survive repeated lightning current without degradation.
Lesson 4 • Down Conductor Routing Principles
Establishes rules for the shortest, most direct path and minimum bend radii. Correct routing minimises side-flash risk and inductive voltage rise.
Lesson 5 • Bonding and Equipotential Measures
Connects metallic building elements to the down conductor network to eliminate dangerous potential differences. Integrates with earthing and surge protection design.
Chapter 5HideHide detailsSee detailsEarthing and Grounding System Design
Earthing and Grounding System Design
Lesson 1 • Earth Resistance Calculation
Calculates resistance to earth for single and combined electrode configurations. Verifies that the system meets the target resistance for the selected protection level.
Lesson 2 • Soil Treatment and Enhancement
Applies chemical backfill and conductive concrete to reduce high-resistivity soil impedance. Extends electrode life and maintains low resistance over time.
Lesson 3 • Earth Termination System Types
Compares ring electrodes, vertical rods, radial conductors, and foundation electrodes. Guides selection based on soil conditions and available installation space.
Lesson 4 • Earth System Integration and Testing
Connects the lightning protection earth to power system and signal grounds using equipotential bonding. Validates the completed system with fall-of-potential testing.
Lesson 5 • Soil Resistivity Measurement
Applies the Wenner four-pin method to characterise site soil resistivity. Accurate measurement is the prerequisite for all electrode resistance calculations.
Chapter 6HideHide detailsSee detailsSurge Protection Device Application
Surge Protection Device Application
Lesson 1 • Coordinated SPD Scheme Design
Designs a cascaded SPD installation from service entrance to equipment level. Coordination between stages ensures energy is shared and clamping is effective.
Lesson 2 • SPD Selection Parameters
Applies impulse current, voltage protection level, and follow current ratings to device selection. Ensures devices survive the design lightning current without failure.
Lesson 3 • SPD Types and Technologies
Compares Type 1, Type 2, and Type 3 SPDs and their underlying clamping technologies. Matches device type to installation location and expected surge energy.
Lesson 4 • Surge Origins and Propagation Paths
Identifies conducted and induced surge entry points through power, data, and signal lines. Establishes why SPDs are essential even with a complete external protection system.
Lesson 5 • SPD Installation and Maintenance
Specifies lead length, conductor sizing, and connection topology for SPD installations. Includes inspection intervals and end-of-life replacement criteria.
Chapter 7HideHide detailsSee detailsInspection, Testing, and Maintenance
Inspection, Testing, and Maintenance
Lesson 1 • Inspection Programme Structure
Defines inspection frequency, scope, and documentation requirements for new and existing systems. Establishes the regulatory and contractual basis for ongoing inspection obligations.
Lesson 2 • Electrical Testing Methods
Applies continuity, earth resistance, and insulation tests to verify system electrical performance. Connects test results to acceptance criteria and remedial action thresholds.
Lesson 3 • Defect Classification and Remediation
Categorises defects by severity and prescribes corrective action timelines. Ensures inspectors communicate risk clearly to building owners and maintenance teams.
Lesson 4 • Visual Inspection Procedures
Provides a systematic checklist for examining air terminals, conductors, bonds, and earth electrodes. Identifies common defects and their safety implications.
Lesson 5 • Maintenance Records and Asset Management
Establishes a records system linking inspection findings, test data, and repair history. Supports lifecycle cost management and regulatory compliance demonstration.
Chapter 8HideHide detailsSee detailsSpecial Structures and Advanced Applications
Special Structures and Advanced Applications
Lesson 1 • Historic and Architecturally Sensitive Buildings
Balances protection performance with minimal visual and structural impact on heritage structures. Applies concealed and low-profile installation techniques.
Lesson 2 • Renewable Energy Installations
Designs protection for wind turbines and photovoltaic arrays subject to elevated strike exposure. Addresses DC surge protection and rotating equipment bonding challenges.
Lesson 3 • Critical Infrastructure and Data Centres
Integrates external protection, shielding, and multi-stage SPD schemes for mission-critical facilities. Addresses electromagnetic pulse effects and system availability requirements.
Lesson 4 • Explosive and Flammable Hazard Sites
Applies enhanced protection requirements for fuel storage, munitions, and chemical process facilities. Focuses on ignition prevention through strict bonding and zone classification.
Lesson 5 • Tall and Slender Structures
Addresses upward leader initiation and side-flash risk unique to towers, masts, and chimneys. Adapts standard design methods to structures exceeding typical height limits.
Your valid completion certificate
This course is for you:
Electrical engineer: needs formal grounding in lightning protection system design methods.
Protection designer: wants to extend expertise into external lightning and surge coordination.
Health and safety officer: responsible for personnel protection plans at high-exposure sites.
Building services consultant: specifying compliant systems for commercial and industrial clients.
Renewable energy technician: managing strike exposure on wind and photovoltaic installations.
Career changer from general electrical work: moving into specialist protection engineering roles.
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