
Electrical Installation Design Course
Master the complete electrical installation design process, from load estimation and cable selection to protection coordination and earthing systems. This course gives working engineers and aspiring designers the technical depth to produce code-compliant, contractor-ready design packages. Build the skills that move you from the field to the design office.
What you will learn:
You will learn how to classify loads, estimate demand, and select cables using current-carrying capacity and voltage drop calculations. The course covers overcurrent protection, RCD application, and discrimination techniques that keep installations safe under fault conditions. You will design earthing and bonding systems, specify distribution boards and switchgear, and produce complete single-line diagrams. Lighting layouts, power factor correction, and harmonic mitigation are also covered in full. By the end, you will be able to assemble a coordinated design package ready for contractor use.
How you study in practice Electrical Installation Design Course
How you practise Electrical Installation Design Course
For companies looking to train their team
With Dedika for Business, 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 detailsFoundations of Electrical Installation Design
Foundations of Electrical Installation Design
Lesson 1 • Electrical System Architectures
Introduces low-voltage, medium-voltage, and distribution system layouts. Connects system topology choices to load requirements and safety constraints.
Lesson 2 • Core Electrical Theory Review
Covers voltage, current, resistance, and power relationships essential to design decisions. Establishes the quantitative foundation used throughout all subsequent chapters.
Lesson 3 • Regulatory and Standards Framework
Explains how wiring regulations, safety standards, and inspection codes govern design. Students learn to navigate regulatory documents and apply requirements to design tasks.
Lesson 4 • Design Process and Documentation
Maps the end-to-end design workflow from client brief to as-built drawings. Establishes professional documentation habits required in all practical exercises.
Lesson 5 • Load Classification and Demand Estimation
Defines load types, diversity factors, and demand factors used in preliminary sizing. Provides the analytical tools needed for all load-based calculations ahead.
Chapter 2HideHide detailsSee detailsWiring Systems and Cable Selection
Wiring Systems and Cable Selection
Lesson 1 • Voltage Drop Assessment
Calculates permissible voltage drop across circuits to ensure equipment operates within tolerance. Links conductor cross-section selection to end-use performance requirements.
Lesson 2 • Environmental and Hazardous Area Wiring
Addresses wiring in wet, corrosive, high-temperature, and explosive-atmosphere zones. Ensures students can specify appropriate protection methods for non-standard environments.
Lesson 3 • Wiring Installation Methods
Covers conduit, trunking, cable tray, and direct-burial methods with their applicable environments. Prepares students to select installation methods that satisfy mechanical and fire protection needs.
Lesson 4 • Cable Construction and Types
Examines conductor materials, insulation types, and sheathing options for various environments. Connects material properties to performance and regulatory compliance requirements.
Lesson 5 • Current-Carrying Capacity Calculations
Applies tabulated ratings and correction factors to determine safe conductor sizing. Directly supports the cable selection decisions made in every design project.
Chapter 3HideHide detailsSee detailsCircuit Design and Protective Device Coordination
Circuit Design and Protective Device Coordination
Lesson 1 • Residual Current Device Application
Explains RCD operating principles, sensitivity levels, and mandatory application zones. Connects shock protection requirements to device selection and circuit arrangement.
Lesson 2 • Overcurrent Protection Devices
Compares fuses, miniature circuit breakers, and molded-case circuit breakers by characteristic curves. Students select devices that protect cables while allowing normal load operation.
Lesson 3 • Discrimination and Selectivity
Applies time-current grading and energy-based discrimination to achieve selective fault clearance. Students verify that upstream devices do not trip unnecessarily during downstream faults.
Lesson 4 • Final Circuit Design Principles
Defines circuit grouping strategies, socket outlet circuits, and lighting circuit layouts. Establishes the circuit-level design logic that underpins all protective device selections.
Lesson 5 • Fault Current Calculations
Calculates prospective short-circuit and earth fault currents at each point in the system. Provides the numerical basis for verifying protective device performance and cable withstand.
Chapter 4HideHide detailsSee detailsEarthing, Bonding, and Shock Protection
Earthing, Bonding, and Shock Protection
Lesson 1 • Protective Conductor Sizing
Applies adiabatic and tabulated methods to size protective conductors for fault energy withstand. Ensures conductors survive fault currents long enough for protective devices to operate.
Lesson 2 • Main and Supplementary Bonding
Specifies main equipotential bonding to extraneous conductive parts and supplementary bonding in special locations. Reduces touch voltage risk in bathrooms, kitchens, and outdoor areas.
Lesson 3 • Touch and Step Voltage Verification
Calculates touch and step voltages under fault conditions and compares them to safety thresholds. Confirms that the earthing design achieves acceptable shock risk levels.
Lesson 4 • Earthing System Fundamentals
Distinguishes TN-S, TN-C-S, TT, and IT earthing arrangements and their design implications. Establishes the earthing topology that governs all subsequent bonding and protection decisions.
Lesson 5 • Earth Electrode Design
Covers rod, plate, and tape electrode types with soil resistivity measurement and electrode sizing. Supports TT and IT system designs where utility earth is unavailable or unreliable.
Chapter 5HideHide detailsSee detailsSwitchgear, Distribution Boards, and Busbar Systems
Switchgear, Distribution Boards, and Busbar Systems
Lesson 1 • Busbar Trunking Systems
Sizes busbar trunking for rising mains and horizontal distribution in commercial and industrial buildings. Addresses tap-off unit placement, voltage drop, and short-circuit rating verification.
Lesson 2 • Metering and Monitoring Integration
Specifies current transformers, energy meters, and power quality monitors within switchgear assemblies. Supports energy management and billing requirements introduced in later chapters.
Lesson 3 • Switchgear Types and Ratings
Compares air-insulated, gas-insulated, and vacuum switchgear by voltage class and application. Connects equipment ratings to the fault levels and load currents calculated in earlier chapters.
Lesson 4 • Distribution Board Design
Covers board layout, busbar sizing, incoming device selection, and outgoing circuit arrangement. Produces a complete distribution board schedule as a core design deliverable.
Lesson 5 • Enclosure Selection and Installation
Applies IP rating, material, and form-of-separation criteria to switchgear enclosure specification. Ensures equipment is protected against environmental ingress and provides safe access for maintenance.
Chapter 6HideHide detailsSee detailsLighting and Power System Design
Lighting and Power System Design
Lesson 1 • Illuminance Calculation Methods
Applies the lumen method and point-by-point calculation to determine luminaire quantity and placement. Connects photometric data to circuit loading and energy performance targets.
Lesson 2 • Lighting Control Systems
Specifies occupancy sensors, daylight harvesting, and scene control strategies for energy efficiency. Prepares students to integrate control wiring into the overall installation design.
Lesson 3 • General Power Circuit Layout
Plans socket outlet, fixed equipment, and small power circuit distribution across floor plans. Applies load density and circuit length limits to produce balanced, code-compliant layouts.
Lesson 4 • Emergency Lighting Design
Designs escape route and standby emergency lighting systems to meet safety duration requirements. Integrates emergency lighting into the main circuit design and testing regime.
Lesson 5 • Luminaire and Lamp Selection
Compares LED, fluorescent, and HID sources by efficacy, color rendering, and control compatibility. Enables students to match light source characteristics to application requirements.
Chapter 7HideHide detailsSee detailsPower Factor Correction and Harmonic Mitigation
Power Factor Correction and Harmonic Mitigation
Lesson 1 • Harmonic Measurement and Limits
Applies power quality standards to measure total harmonic distortion and compare against emission limits. Provides the measurement methodology needed to justify mitigation investment.
Lesson 2 • Harmonic Sources and Effects
Identifies variable speed drives, UPS units, and switched-mode supplies as harmonic sources. Explains voltage distortion, overheating, and metering errors caused by harmonic currents.
Lesson 3 • Capacitor Bank Design
Sizes fixed and automatic capacitor banks to achieve target power factor at the point of supply. Addresses switching transients, resonance risk, and protection requirements for capacitor banks.
Lesson 4 • Reactive Power and Power Factor Fundamentals
Explains active, reactive, and apparent power relationships and their effect on system efficiency. Establishes the analytical basis for all correction and mitigation work in this chapter.
Lesson 5 • Harmonic Mitigation Techniques
Compares passive filters, active filters, and multi-pulse rectifier arrangements as mitigation strategies. Students select cost-effective solutions matched to the harmonic profile of the installation.
Chapter 8HideHide detailsSee detailsAdvanced Design Integration and Project Delivery
Advanced Design Integration and Project Delivery
Lesson 1 • As-Built Documentation and Handover
Specifies requirements for as-built drawings, operation and maintenance manuals, and training deliverables. Completes the design lifecycle by ensuring end users can safely operate and maintain the installation.
Lesson 2 • Load Flow and System Analysis
Performs load flow analysis to verify voltage profiles and equipment loading across the full system. Identifies overloaded branches and under-voltage nodes before construction begins.
Lesson 3 • Coordinated Design Documentation
Assembles single-line diagrams, cable schedules, equipment data sheets, and protection settings into one package. Demonstrates how individual design outputs combine into a coherent, contractor-ready set.
Lesson 4 • Commissioning and Testing Planning
Develops inspection, testing, and commissioning plans aligned with regulatory and manufacturer requirements. Ensures the design team specifies measurable acceptance criteria for every system.
Lesson 5 • Design Review and Value Engineering
Applies structured design review techniques to identify errors, omissions, and cost reduction opportunities. Builds quality assurance habits that reduce costly site changes during construction.
Your valid completion certificate
This course is for you:
Electrician: ready to transition from installation work into design roles.
Electrical engineering graduate: seeking practical design skills beyond academic theory.
Mechanical engineer: expanding scope to cover building electrical systems on projects.
Facilities manager: wanting to evaluate and challenge electrical design submissions confidently.
Construction project manager: needing technical fluency to oversee electrical design deliverables.
Career changer: entering the electrical field with a strong technical background already.
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