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Frequency Inverter Programming Course
More than 2 million students worldwide

Frequency Inverter Programming Course

Master frequency inverter programming from hardware installation to advanced application control. This course covers AC motor theory, drive wiring, parameter configuration, PID control, industrial communication protocols, and systematic fault diagnosis. Whether you're commissioning your first drive or expanding your skills, you'll gain the hands-on knowledge to handle real industrial applications with confidence.

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What you will learn:

You'll start with AC motor fundamentals and power electronics, then move into safe installation, earthing, and terminal wiring. From there, you'll configure motor nameplate data, set control sources, and tune acceleration and deceleration ramps for a successful first run. You'll programme digital and analogue I/O, set up protection functions, and work through advanced features like PID process control, multi-speed presets, and flying start. The course also covers Modbus RTU and Ethernet-based communication protocols for PLC and SCADA integration. You'll finish with structured troubleshooting workflows, preventive maintenance planning, and professional documentation practices.

How you study in practice Frequency Inverter Programming Course

How you practise Frequency Inverter Programming Course

For businesses looking to train their team

With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.

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Course content

8 Chapters • 34 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Fundamentals of Variable Speed Drives

  • Lesson 1 • Drive Topology and Component Identification

    Identifies physical drive sections and peripheral components. Prepares students to safely navigate hardware before any programming task.

  • Lesson 2 • AC Motor Operation Principles

    Covers synchronous speed, slip, torque-speed curves, and motor nameplate data. Establishes the motor behaviour that drives must control.

  • Lesson 3 • Drive Ratings and Selection Criteria

    Teaches voltage class, current rating, and duty-cycle selection. Ensures students match drive specifications to load requirements correctly.

  • Lesson 4 • Power Electronics in Drive Systems

    Explains rectifier, DC bus, and inverter bridge stages. Connects hardware architecture to the drive's ability to vary output frequency.

Chapter 2See details

Safe Installation and Wiring Practices

  • Lesson 1 • Mechanical Mounting and Enclosure Requirements

    Covers clearance, orientation, and enclosure protection ratings. Proper mounting prevents overheating and vibration damage during operation.

  • Lesson 2 • Power and Control Terminal Wiring

    Details input power, motor output, and control signal wiring. Correct terminal connections are prerequisite to any drive commissioning step.

  • Lesson 3 • Earthing and Shielding Techniques

    Explains PE conductor sizing, shield termination, and EMC earthing. Correct earthing prevents nuisance trips and protects connected equipment.

  • Lesson 4 • Electrical Safety Procedures

    Covers lockout/tagout, DC bus discharge verification, and PPE requirements. Safety procedures must precede every physical interaction with the drive.

Chapter 3See details

Keypad Navigation and Parameter Structure

  • Lesson 1 • Parameter Upload, Download, and Reset

    Covers copying parameters to keypad memory and restoring factory defaults. These skills enable rapid replication and recovery across multiple drives.

  • Lesson 2 • Keypad Layout and Display Interpretation

    Maps keypad keys to their functions and explains status display codes. Fluent keypad use is the entry point for all programming tasks.

  • Lesson 3 • Parameter Group Organisation

    Explains how parameters are grouped by function and numbered. Understanding group structure accelerates parameter location during commissioning.

  • Lesson 4 • Reading and Writing Parameter Values

    Teaches the read-modify-confirm sequence and write-protection bypass. Accurate parameter entry prevents commissioning errors and equipment damage.

Chapter 4See details

Basic Drive Configuration and First Run

  • Lesson 1 • Frequency Limits and Output Verification

    Sets minimum and maximum output frequency limits and verifies drive output with a meter. Limits protect the load; output verification confirms correct wiring.

  • Lesson 2 • Command and Frequency Reference Sources

    Explains keypad, terminal, and communication command sources and how to select them. Source selection determines how the drive receives run and speed commands.

  • Lesson 3 • Acceleration and Deceleration Ramp Settings

    Covers linear, S-curve, and custom ramp profiles and their parameter settings. Correct ramp times prevent mechanical shock and overcurrent trips.

  • Lesson 4 • Motor Nameplate Parameter Entry

    Guides entry of rated voltage, current, frequency, speed, and power. Accurate motor data is the foundation of all control and protection functions.

Chapter 5See details

Control Modes and Motor Tuning

  • Lesson 1 • Auto-Tuning Procedures and Validation

    Guides static and rotational auto-tune execution and result validation. Auto-tuning populates motor model parameters that underpin vector control accuracy.

  • Lesson 2 • Closed-Loop Vector Control with Encoder

    Explains encoder wiring, pulse count configuration, and speed feedback tuning. Closed-loop vector delivers precise speed and torque control for demanding loads.

  • Lesson 3 • Sensorless Vector Control Setup

    Covers motor parameter identification and flux current tuning for open-loop vector mode. Sensorless vector improves low-speed torque without an encoder.

  • Lesson 4 • Volts-per-Hertz Control Configuration

    Explains linear and custom V/f patterns and boost voltage settings. V/f control is the baseline mode used in most general-purpose applications.

Chapter 6See details

Digital and Analog I/O Programming

  • Lesson 1 • Analog Output Configuration

    Programmes analog output signals to represent speed, current, torque, or power. Analog outputs feed monitoring instruments and supervisory control systems.

  • Lesson 2 • Analog Input Scaling and Filtering

    Configures 0–10 V and 4–20 mA input ranges, gain, bias, and filter time. Proper scaling maps sensor signals accurately to speed or torque references.

  • Lesson 3 • Digital Output and Relay Configuration

    Assigns drive status signals to digital output and relay terminals. Outputs provide feedback to PLCs, indicators, and safety circuits.

  • Lesson 4 • Digital Input Function Assignment

    Maps digital input terminals to functions such as run, reverse, preset speed, and fault reset. Correct mapping connects external control devices to drive behaviour.

Chapter 7See details

Protection Functions and Fault Management

  • Lesson 1 • Fault Code Interpretation and Logging

    Explains fault code structure, fault history buffer, and operating data at fault. Accurate fault reading is the first step in every troubleshooting sequence.

  • Lesson 2 • Motor Thermal Protection Settings

    Configures electronic thermal overload, motor temperature input, and derating curves. Thermal protection prevents winding damage from sustained overload.

  • Lesson 3 • Overcurrent and Overvoltage Protection

    Sets current limit, stall prevention, and overvoltage ride-through parameters. These functions protect the drive and motor during transient load events.

  • Lesson 4 • Drive Self-Diagnostics and Preventive Alerts

    Uses built-in diagnostics, maintenance timers, and fan-life counters to schedule preventive action. Proactive alerts extend drive service life and reduce unplanned downtime.

  • Lesson 5 • Fault Response and Auto-Restart Configuration

    Programmes fault relay outputs, auto-restart attempts, and restart delay times. Controlled restart reduces downtime while maintaining safe operating conditions.

Chapter 8See details

Advanced Application Programming

  • Lesson 1 • PID Process Control Configuration

    Programmes the internal PID controller for closed-loop process regulation. PID control enables the drive to maintain pressure, flow, or temperature setpoints autonomously.

  • Lesson 2 • Braking Methods and Stopping Modes

    Configures DC injection braking, dynamic braking resistor, and coast-to-stop modes. Correct braking selection prevents overvoltage faults and meets process stopping requirements.

  • Lesson 3 • Multi-Speed and Preset Frequency Programming

    Configures up to 16 preset speeds using digital input combinations. Preset speeds enable simple step-sequence control without an external controller.

  • Lesson 4 • Flying Start and Catch-Spinning Motor

    Enables speed search to reconnect to a coasting motor without mechanical shock. Flying start is critical for fan and pump restarts after momentary power loss.

  • Lesson 5 • Energy-Saving and Optimisation Functions

    Programmes automatic energy optimisation, sleep/wake, and power-factor correction modes. These functions reduce operating costs in variable-torque pump and fan applications.

Certification

Your valid completion certificate

This course is for you:

  • Electrician: ready to expand into variable speed drive work.

  • Maintenance technician: responsible for keeping motor-driven equipment running reliably.

  • Automation engineer: integrating drives into PLC and SCADA control systems.

  • Industrial engineering student: building practical skills before entering the workforce.

  • HVAC technician: working with pump and fan systems that use inverter drives.

  • Career changer: moving from general electrical work into industrial automation roles.

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