
HV Electrical Course
Master the technical and safety demands of high voltage electrical systems with a course built for working engineers and skilled tradespeople. From HV switchgear and transformer protection to cable jointing and substation design, every topic is grounded in real-world application. This course gives you the knowledge to work confidently and safely at voltages that demand precision.
What you will learn:
Gain a full grasp of HV electrical systems, beginning with voltage classifications, field theory, and conductor selection. Study HV safety standards—lockout/tagout, PPE, and risk assessments. Cover switchgear tech, protection relay coordination, and transformer operation from equivalent circuits to on‑load tap changer control. Learn HV cable installation, jointing, termination, and diagnostic testing. Explore substation design, fault analysis with symmetrical components, and structured commissioning and maintenance. Additional topics include power quality, renewable integration, HVDC, and environmental compliance for HV infrastructure.
How you study in practice HV Electrical Course
How you practise HV Electrical 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 • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of High Voltage Electricity
Fundamentals of High Voltage Electricity
Lesson 1 • HV System Classifications and Ranges
Defines HV, extra-high voltage, and ultra-high voltage thresholds per international standards. Enables students to categorize equipment and apply correct safety protocols.
Lesson 2 • Electrical Theory Review for HV
Covers voltage, current, resistance, and power relationships at high voltage levels. Establishes the theoretical baseline required for all subsequent HV topics.
Lesson 3 • Electrical Fields and Insulation Basics
Explains electric field distribution and dielectric behavior in HV environments. Connects field theory to insulation selection and equipment design.
Lesson 4 • HV Conductors and Cable Types
Surveys conductor materials, cross-sections, and cable constructions used in HV systems. Prepares students to identify and select appropriate conductors for HV applications.
Chapter 2HideHide detailsSee detailsHV Safety Standards and Risk Management
HV Safety Standards and Risk Management
Lesson 1 • HV Hazard Identification
Identifies electrical, arc flash, and induced voltage hazards present in HV work zones. Forms the risk-awareness foundation for all practical HV tasks.
Lesson 2 • Emergency Response for HV Incidents
Trains response to electric shock, arc flash burns, and HV fire scenarios. Integrates emergency procedures with site safety plans.
Lesson 3 • Lockout/Tagout and Isolation Procedures
Covers energy isolation, lockout/tagout application, and verification of de-energization. Directly prevents accidental re-energization during HV maintenance.
Lesson 4 • Personal Protective Equipment for HV
Details PPE selection, ratings, and inspection procedures for HV electrical work. Ensures students choose and use correct protection for each voltage class.
Lesson 5 • Risk Assessment and Safe Work Methods
Guides students through formal HV risk assessment and safe work method statement creation. Produces documented controls that satisfy regulatory safety requirements.
Chapter 3HideHide detailsSee detailsHV Switchgear and Protection Devices
HV Switchgear and Protection Devices
Lesson 1 • Instrument Transformers: CTs and VTs
Explains current transformer and voltage transformer construction, accuracy classes, and burdens. Links instrument transformer performance to protection relay accuracy.
Lesson 2 • Disconnectors and Earthing Switches
Covers the role of disconnectors and earthing switches in isolating HV equipment safely. Distinguishes their function from circuit breakers in switching sequences.
Lesson 3 • Circuit Breakers in HV Systems
Examines SF6, vacuum, and air-blast circuit breaker technologies and their operating principles. Provides the basis for understanding fault interruption in HV networks.
Lesson 4 • Protection Coordination and Selectivity
Applies time-current grading and zone coordination to ensure selective fault clearance. Students can evaluate and adjust protection schemes for HV networks.
Lesson 5 • Protection Relay Principles
Introduces overcurrent, differential, distance, and earth fault relay types and their settings. Establishes relay fundamentals needed for protection coordination studies.
Chapter 4HideHide detailsSee detailsHV Transformers: Theory and Operation
HV Transformers: Theory and Operation
Lesson 1 • On-Load Tap Changers and Voltage Control
Covers OLTC mechanism, control logic, and maintenance requirements for voltage regulation. Links tap changer operation to system voltage stability.
Lesson 2 • Transformer Vector Groups and Connections
Explains delta, star, and zigzag winding connections and their vector group designations. Prepares students to parallel transformers and analyze zero-sequence current paths.
Lesson 3 • Transformer Protection and Monitoring
Addresses Buchholz relay, differential protection, and thermal monitoring for HV transformers. Integrates protection devices with transformer condition assessment.
Lesson 4 • Transformer Equivalent Circuit and Parameters
Develops the equivalent circuit model and derives key parameters from open- and short-circuit tests. Enables performance prediction under load and fault conditions.
Lesson 5 • Transformer Construction and Core Design
Details core materials, winding arrangements, and tank construction for HV power transformers. Connects physical design to magnetic and thermal performance.
Chapter 5HideHide detailsSee detailsHV Cables: Installation and Testing
HV Cables: Installation and Testing
Lesson 1 • HV Cable Construction and Selection
Reviews XLPE, EPR, and fluid-filled cable constructions and selection criteria for HV projects. Provides the technical basis for specifying cables in design and procurement.
Lesson 2 • HV Cable Acceptance and Diagnostic Testing
Applies VLF withstand, partial discharge, and tan-delta testing to verify cable system integrity. Interprets test results to accept or reject installed cable systems.
Lesson 3 • Cable Installation Methods and Practices
Covers trenching, duct installation, pulling tension limits, and bending radius requirements. Ensures cables are installed without mechanical damage or insulation stress.
Lesson 4 • HV Cable Terminations
Details indoor and outdoor termination assembly, creepage requirements, and sealing methods. Connects termination quality to long-term cable system reliability.
Lesson 5 • HV Cable Jointing Techniques
Teaches cold-shrink, heat-shrink, and pre-molded joint assembly for HV cables. Emphasizes cleanliness, geometry, and stress control critical to joint reliability.
Chapter 6HideHide detailsSee detailsHV Substation Design and Equipment
HV Substation Design and Equipment
Lesson 1 • Surge Arresters and Overvoltage Protection
Explains metal oxide surge arrester operation and placement for transient overvoltage protection. Links arrester characteristics to insulation coordination of substation equipment.
Lesson 2 • Substation Control and SCADA Integration
Introduces substation automation, IED communication, and SCADA connectivity for HV substations. Prepares students to understand modern digital substation architectures.
Lesson 3 • Substation Types and Bus Configurations
Compares AIS, GIS, and hybrid substations and evaluates single, double, and ring bus arrangements. Connects bus configuration choice to reliability and maintenance flexibility.
Lesson 4 • DC Auxiliary and Battery Systems
Covers substation DC supply, battery sizing, and charger design for protection and control loads. Ensures students understand the critical role of DC systems in substation reliability.
Lesson 5 • Substation Grounding and Earthing Systems
Designs substation earth grids to limit touch and step potentials during fault conditions. Applies soil resistivity data and grid geometry to safety calculations.
Chapter 7HideHide detailsSee detailsHV System Fault Analysis and Diagnostics
HV System Fault Analysis and Diagnostics
Lesson 1 • Fault Location and System Restoration
Uses impedance-based and traveling-wave methods to locate faults and restore HV system supply. Integrates fault location with switching procedures and restoration planning.
Lesson 2 • Power System Stability Concepts
Explains transient, voltage, and frequency stability and their impact on HV system operation. Connects stability concepts to protection relay settings and system design.
Lesson 3 • Symmetrical Components Theory
Introduces positive, negative, and zero sequence networks for unbalanced fault analysis. Provides the mathematical framework used in all subsequent fault calculation work.
Lesson 4 • HV Equipment Diagnostic Techniques
Applies insulation resistance, power factor, and dissolved gas analysis to assess HV equipment health. Enables condition-based maintenance decisions for transformers and switchgear.
Lesson 5 • Fault Types and Current Calculation
Calculates three-phase, line-to-line, and single line-to-ground fault currents using sequence networks. Enables students to determine fault levels for protection and equipment rating.
Chapter 8HideHide detailsSee detailsHV System Commissioning and Maintenance
HV System Commissioning and Maintenance
Lesson 1 • Preventive Maintenance Programs
Designs time-based and condition-based maintenance schedules for HV transformers, switchgear, and cables. Reduces unplanned outages through systematic inspection and servicing.
Lesson 2 • HV Energization Procedures
Executes step-by-step energization sequences for transformers, cables, and switchgear safely. Applies switching authority and communication protocols during live energization.
Lesson 3 • Asset Management and Life Extension
Applies condition assessment data to prioritize HV asset replacement and refurbishment decisions. Connects maintenance outcomes to long-term capital planning and risk management.
Lesson 4 • Commissioning Planning and Documentation
Develops commissioning plans, test schedules, and acceptance criteria for HV installations. Establishes the documentation framework that governs all commissioning activities.
Lesson 5 • Pre-Energization Checks and Tests
Performs visual inspections, continuity checks, and insulation tests before HV energization. Identifies installation defects before live voltage is applied to the system.
Your valid completion certificate
This course is for you:
Electrician: ready to move from low-voltage work into HV environments.
Electrical engineer: building formal HV knowledge to support power system projects.
Maintenance technician: responsible for substation or industrial HV equipment upkeep.
Graduate engineer: entering the utilities or energy sector for the first time.
Project manager: overseeing HV installations and needing stronger technical grounding.
Career changer: transitioning from a related trade into high voltage electrical work.
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