
Electrical Design Course
Master the full scope of electrical design — from load calculations and conductor sizing to power distribution and construction documents. This course gives you the technical skills and code knowledge to produce professional, permit-ready electrical designs for residential, commercial, and industrial projects. If you're serious about advancing your career in electrical design, this is where you start.
What you will learn:
You will build a solid foundation in electrical theory, SANS code requirements, and real-world design methods used by working engineers and designers every day. The course covers load calculations for residential, commercial, and industrial facilities, conductor sizing with ampacity tables and voltage drop formulas, and overcurrent protection coordination. You will learn to design complete power distribution systems, lighting layouts, and motor control circuits. Documentation skills are built throughout, so you finish knowing how to produce a full set of electrical construction documents ready for permit submission.
How you study in practice Electrical Design Course
How you practise Electrical Design Course
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 detailsFoundations of Electrical Design
Foundations of Electrical Design
Lesson 1 • Ohm's Law and Circuit Fundamentals
Applies Ohm's Law to series, parallel, and series-parallel circuits. Provides the analytical foundation for load calculations and conductor sizing.
Lesson 2 • Electrical Quantities and Units
Covers voltage, current, resistance, and power with SI units. Establishes the measurement language used in every subsequent design calculation.
Lesson 3 • AC vs. DC Systems Overview
Distinguishes alternating and direct current characteristics and waveforms. Prepares students to select the correct system type for a given design application.
Lesson 4 • Reading Electrical Symbols and Diagrams
Teaches standard schematic symbols and diagram conventions used in industry. Students gain the visual literacy needed to interpret and produce design drawings.
Lesson 5 • Electrical Safety Principles
Introduces shock hazards, arc flash risks, and personal protective equipment. Safety awareness is integrated into every design decision covered in later chapters.
Chapter 2HideHide detailsSee detailsElectrical Codes and Standards
Electrical Codes and Standards
Lesson 1 • Wiring Methods and Installation Rules
Covers permitted wiring methods, conduit fill limits, and installation requirements. These rules directly govern conductor routing decisions in building designs.
Lesson 2 • Grounding and Bonding Requirements
Details grounding electrode systems, equipment grounding, and bonding jumpers. Proper grounding design is mandatory for personnel safety and equipment protection.
Lesson 3 • Structure of Electrical Codes
Explains how electrical codes are organised, adopted, and enforced. Understanding code hierarchy prevents compliance gaps in design submissions.
Lesson 4 • Special Occupancy and Location Rules
Examines code requirements for hazardous locations, wet areas, and high-density occupancies. Designers must recognise when special rules override general installation methods.
Lesson 5 • Overcurrent Protection Requirements
Addresses fuse and breaker ratings, coordination rules, and protection placement. Correct overcurrent device selection is a core code-compliance requirement.
Chapter 3HideHide detailsSee detailsLoad Calculations and Demand Analysis
Load Calculations and Demand Analysis
Lesson 1 • General Load Calculation Methods
Introduces connected load, demand factor, and diversity factor concepts. These methods form the basis for sizing all electrical distribution equipment.
Lesson 2 • Power Factor and Reactive Load
Explains power factor, reactive power, and apparent power in load analysis. Poor power factor increases conductor and transformer sizing requirements.
Lesson 3 • Industrial Load and Motor Load Analysis
Addresses motor nameplate data, locked-rotor current, and industrial demand factors. Industrial load profiles differ significantly from commercial and require distinct sizing methods.
Lesson 4 • Residential Load Calculations
Applies standard and optional calculation methods to single-family and multifamily dwellings. Students size service entrances and feeders for residential projects.
Lesson 5 • Commercial Load Calculations
Covers lighting, receptacle, HVAC, and motor loads for commercial buildings. Results feed directly into panelboard and feeder design in later chapters.
Chapter 4HideHide detailsSee detailsConductor Sizing and Voltage Drop
Conductor Sizing and Voltage Drop
Lesson 1 • Conductor Selection for Special Conditions
Addresses high-temperature environments, wet locations, and direct burial applications. Special conditions require specific insulation types and installation methods.
Lesson 2 • Conductor Scheduling and Documentation
Teaches how to compile a complete conductor schedule for a project. Proper documentation ensures field installation matches design intent.
Lesson 3 • Voltage Drop Calculations
Covers single-phase and three-phase voltage drop formulas and acceptable limits. Voltage drop compliance ensures equipment operates within rated voltage tolerances.
Lesson 4 • Ampacity Correction and Adjustment Factors
Applies temperature correction and conduit fill adjustment factors to base ampacity values. Failure to apply these factors is a common design error with safety consequences.
Lesson 5 • Conductor Ampacity Fundamentals
Introduces ampacity tables, insulation temperature ratings, and conductor materials. Ampacity is the primary constraint in conductor selection for any circuit.
Chapter 5HideHide detailsSee detailsOvercurrent Protection and Coordination
Overcurrent Protection and Coordination
Lesson 1 • Selective Coordination Principles
Explains how to achieve selective tripping so only the nearest upstream device operates. Coordination prevents unnecessary outages in critical and commercial facilities.
Lesson 2 • Overcurrent Device Characteristics
Examines fuse and circuit breaker time-current characteristics and interrupting ratings. Device selection must match both the circuit's fault current level and load type.
Lesson 3 • Short-Circuit Current Calculations
Covers available fault current calculation methods from the utility source to branch circuits. Fault current values determine minimum interrupting ratings for all protective devices.
Lesson 4 • Coordination Study Documentation
Teaches how to compile and present a coordination study report with time-current curves. Documentation supports design review, commissioning, and future system modifications.
Lesson 5 • Ground Fault and Arc Fault Protection
Addresses GFCI, AFCI, and equipment ground fault protection design requirements. These devices protect against hazards that standard overcurrent devices cannot detect.
Chapter 6HideHide detailsSee detailsPower Distribution System Design
Power Distribution System Design
Lesson 1 • Transformer Selection and Sizing
Addresses transformer kVA sizing, voltage ratios, and connection types for distribution. Correct transformer selection affects voltage regulation and fault current levels downstream.
Lesson 2 • Panelboard and Switchboard Design
Teaches panelboard layout, bus sizing, and circuit assignment for balanced loading. Panelboard design translates load calculations into physical distribution equipment.
Lesson 3 • Feeder and Branch Circuit Design
Applies conductor sizing and overcurrent protection rules to feeders and branch circuits. This section integrates skills from Chapters 3, 4, and 5 into a complete circuit design.
Lesson 4 • Medium-Voltage Distribution Basics
Introduces medium-voltage switchgear, cable systems, and substation layouts. Medium-voltage design is required for large commercial and industrial facilities.
Lesson 5 • Service Entrance and Utility Interface
Covers utility metering, service entrance equipment, and point-of-delivery requirements. The service entrance is the boundary between utility and owner responsibility.
Chapter 7HideHide detailsSee detailsLighting and Power Systems Design
Lighting and Power Systems Design
Lesson 1 • Lighting Control Systems
Addresses occupancy sensors, daylight harvesting, dimming, and networked control systems. Controls reduce energy consumption and are required by most energy codes.
Lesson 2 • Receptacle and Power Layout Design
Teaches receptacle spacing rules, dedicated circuit requirements, and power outlet placement. Power layout design ensures adequate and accessible power for all occupant needs.
Lesson 3 • Lighting Calculation Methods
Applies the zonal cavity method and point-by-point calculations to design lighting layouts. Calculation results verify that designs meet required illuminance levels.
Lesson 4 • Emergency and Exit Lighting Design
Covers egress illumination requirements, exit sign placement, and backup power sources. Emergency lighting is a life-safety system with mandatory code compliance requirements.
Lesson 5 • Lighting Fundamentals and Metrics
Covers lumens, footcandles, efficacy, and colour rendering as design parameters. These metrics define the performance targets that drive fixture selection and layout.
Chapter 8HideHide detailsSee detailsElectrical Design Documentation and Review
Electrical Design Documentation and Review
Lesson 1 • Specifications and Equipment Schedules
Covers writing electrical specifications and compiling equipment schedules for procurement. Specifications define quality and performance requirements that drawings alone cannot convey.
Lesson 2 • Design Review and Quality Control
Teaches internal design review checklists, peer review processes, and correction workflows. Systematic review catches errors before permit submission and construction.
Lesson 3 • Electrical Drawing Set Organisation
Defines the standard sheets, drawing order, and title block requirements for an electrical drawing set. A well-organised set reduces RFIs and construction errors.
Lesson 4 • Interdisciplinary Coordination
Addresses coordination with architectural, mechanical, and structural drawings to resolve conflicts. Unresolved interdisciplinary conflicts are a leading cause of construction change orders.
Lesson 5 • Permit Submission and Construction Support
Covers permit application requirements, plan review responses, and construction-phase design support. Designers remain responsible for design intent through project completion.
Your valid completion certificate
This course is for you:
Electrical apprentices: ready to move beyond field work into design roles.
Drafters and CAD technicians: seeking to add engineering depth to their drawings.
Mechanical engineers: expanding their expertise to cover electrical system design.
Construction project managers: needing to evaluate and coordinate electrical scopes confidently.
Career changers: entering the building industry with a technical background elsewhere.
Junior electrical designers: looking to close knowledge gaps and work more independently.
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