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Automation & Control Systems Course
More than 2 million learners worldwide

Automation & Control Systems Course

Master every layer of industrial automation — from sensors and actuators to PLCs, DCS, SCADA, and safety systems. This comprehensive course gives you the technical depth and hands-on skills employers demand in modern process and manufacturing environments. Whether you're advancing your career or expanding your engineering expertise, this is the complete automation training you've been looking for.

Dedika for businesses

What you will learn:

You'll build a solid foundation in control system components, signal conditioning, and process instrumentation before moving into PLC programming, PID tuning, and advanced control strategies. The course covers SCADA architecture, HMI development, and industrial networking protocols including Modbus, EtherNet/IP, and OPC UA. You'll also work through distributed control systems, batch automation, and safety instrumented systems. Supplementary modules address industrial cybersecurity, IIoT and edge computing, robotics integration, and data analytics for predictive maintenance. By the end, you'll have the skills to design, configure, commission, and maintain professional-grade automation systems.

How you study in practice Automation & Control Systems Course

How you practise Automation & Control Systems 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 specific needs of your company.

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Course content

8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Automation and Control

  • Lesson 1 • Introduction to Automation Systems

    Defines automation, its industrial role, and key drivers. Establishes vocabulary used throughout the course.

  • Lesson 2 • System Diagrams and Documentation

    Introduces block diagrams, P&ID symbols, and instrument tagging. Enables reading and interpreting standard engineering drawings.

  • Lesson 3 • Core Components of a Control System

    Identifies sensors, actuators, controllers, and process elements. Links each component to its functional role in a control loop.

  • Lesson 4 • Safety and Regulatory Fundamentals

    Covers hazard identification, safety integrity levels, and compliance frameworks. Grounds students in safety obligations before hands-on work.

  • Lesson 5 • Control System Classifications

    Distinguishes open-loop from closed-loop systems and manual from automatic control. Provides a framework for analyzing any control architecture.

Chapter 2See details

Sensors, Transducers, and Signal Conditioning

  • Lesson 1 • Temperature and Pressure Sensors

    Covers thermocouples, RTDs, pressure transmitters, and their selection criteria. Connects sensor choice to process requirements and environmental conditions.

  • Lesson 2 • Signal Conditioning and Transmission

    Addresses amplification, filtering, isolation, and analogue-to-digital conversion. Prepares signals for reliable transmission to controllers.

  • Lesson 3 • Flow, Level, and Analytical Sensors

    Examines flow meters, level detectors, and analytical instruments such as pH and conductivity sensors. Reinforces selection logic introduced in the previous section.

  • Lesson 4 • Measurement Principles and Accuracy

    Explains measurement error, accuracy, precision, and calibration concepts. Provides the basis for evaluating sensor performance specifications.

  • Lesson 5 • Sensor Calibration and Maintenance

    Details calibration procedures, drift detection, and preventive maintenance schedules. Ensures sustained measurement accuracy in operational environments.

Chapter 3See details

Actuators and Final Control Elements

  • Lesson 1 • Pneumatic and Hydraulic Actuators

    Examines cylinders, rotary actuators, and positioners for fluid-power systems. Connects actuator sizing to force, stroke, and response-time specifications.

  • Lesson 2 • Actuator Accessories and Fail-Safe Design

    Covers limit switches, solenoids, handwheels, and fail-safe spring-return mechanisms. Integrates safety requirements from Chapter 1 into actuator design.

  • Lesson 3 • Control Valves and Valve Sizing

    Addresses globe, ball, butterfly, and rotary valves with Cv-based sizing methods. Ensures correct valve selection for flow control applications.

  • Lesson 4 • Electric Actuators and Motors

    Covers DC, AC induction, and stepper motors along with their drive electronics. Links motor selection to torque, speed, and duty-cycle requirements.

Chapter 4See details

Programmable Logic Controllers

  • Lesson 1 • PLC I/O Wiring and Configuration

    Covers sourcing/sinking wiring, I/O addressing, and module configuration. Connects hardware knowledge to physical installation and commissioning.

  • Lesson 2 • Ladder Logic Programming

    Teaches contacts, coils, timers, counters, and comparison instructions in ladder logic. Builds the primary programming skill used in most industrial PLCs.

  • Lesson 3 • PLC Diagnostics and Troubleshooting

    Applies fault codes, online monitoring, and forced I/O techniques to diagnose faults. Prepares students for real-world maintenance scenarios.

  • Lesson 4 • PLC Architecture and Hardware

    Describes CPU, memory, I/O modules, and power supply components. Establishes hardware knowledge required before programming begins.

  • Lesson 5 • Structured Text and Function Block Diagrams

    Introduces IEC 61131-3 structured text and function block diagram languages. Expands programming capability beyond ladder logic for complex algorithms.

Chapter 5See details

Process Control Theory and PID Tuning

  • Lesson 1 • Advanced Control Strategies

    Introduces cascade, ratio, feedforward, and override control configurations. Extends single-loop PID skills to multi-loop and interacting processes.

  • Lesson 2 • PID Tuning Methods

    Applies Ziegler-Nichols, Cohen-Coon, and IMC-based tuning rules to real processes. Develops practical tuning skills using systematic methods.

  • Lesson 3 • Process Dynamics and Modeling

    Explains first-order, second-order, and dead-time process models. Provides the dynamic understanding needed to design effective controllers.

  • Lesson 4 • PID Controller Principles

    Details proportional, integral, and derivative actions and their combined effect. Builds theoretical grounding for practical tuning work.

  • Lesson 5 • Controller Performance Assessment

    Uses IAE, ISE, and variance metrics to evaluate and benchmark controller performance. Enables data-driven decisions for control improvement.

Chapter 6See details

SCADA, HMI, and Industrial Networking

  • Lesson 1 • Industrial Communication Protocols

    Covers Modbus, PROFIBUS, EtherNet/IP, and OPC standards for device communication. Provides the protocol knowledge needed to integrate field devices.

  • Lesson 2 • SCADA System Architecture

    Describes field devices, RTUs, communication infrastructure, and SCADA servers. Establishes the system-level view before component configuration.

  • Lesson 3 • Network Design and Cybersecurity Basics

    Addresses network segmentation, firewalls, and secure remote access for industrial systems. Introduces cybersecurity practices essential for modern SCADA environments.

  • Lesson 4 • Tag Configuration and Historian

    Explains tag databases, data types, scaling, and historian archiving strategies. Enables structured data management for monitoring and reporting.

  • Lesson 5 • HMI Design and Development

    Covers screen layout, navigation, alarm display, and usability principles for operator interfaces. Connects HMI design to operator effectiveness and safety.

Chapter 7See details

Distributed Control Systems and Advanced Automation

  • Lesson 1 • System Integration and Commissioning

    Details FAT, SAT, loop checking, and startup procedures for integrated automation systems. Prepares students for full project delivery and handover.

  • Lesson 2 • Batch Process Automation

    Introduces the ISA-88 batch model, recipes, and procedural control elements. Extends continuous control knowledge to batch manufacturing environments.

  • Lesson 3 • DCS Architecture and Components

    Describes controllers, I/O subsystems, operator stations, and engineering workstations in a DCS. Distinguishes DCS from PLC-based architectures covered earlier.

  • Lesson 4 • Safety Instrumented Systems

    Covers SIL verification, safety function design, and proof-test procedures for SIS. Integrates functional safety concepts introduced in Chapter 1.

  • Lesson 5 • DCS Configuration and Control Strategies

    Applies function block programming, control modules, and phase logic within a DCS environment. Builds on PID and advanced control skills from Chapter 5.

Chapter 8See details

Maintenance, Reliability, and Continuous Improvement

  • Lesson 1 • Alarm Management and Rationalization

    Applies alarm philosophy, rationalization, and key performance indicators to reduce nuisance alarms. Directly improves operator effectiveness in SCADA and DCS environments.

  • Lesson 2 • Continuous Improvement in Automation

    Applies PDCA, KPI dashboards, and control loop performance monitoring to drive ongoing improvement. Closes the course with a strategic, data-driven improvement mindset.

  • Lesson 3 • Reliability Engineering Fundamentals

    Applies MTBF, MTTR, availability calculations, and failure rate models to automation equipment. Quantifies system reliability for maintenance decision-making.

  • Lesson 4 • Maintenance Strategies for Automation Systems

    Compares corrective, preventive, and predictive maintenance approaches for control assets. Establishes the maintenance framework before reliability analysis tools are introduced.

  • Lesson 5 • Failure Analysis Techniques

    Uses FMEA, fault tree analysis, and root cause analysis to identify and eliminate failure modes. Builds analytical skills for systematic problem resolution.

Certification

Your valid completion certificate

This course is for you:

  • Instrumentation technician: ready to move beyond maintenance into system design.

  • Mechanical engineer: expanding into automation to stay relevant in modern plants.

  • Electrical engineer: building control systems knowledge to lead integrated projects.

  • Recent engineering graduate: filling the practical automation gap left by coursework.

  • Plant operator: seeking the technical credentials to shift into an engineering role.

  • Career changer from IT: applying networking skills to industrial control environments.

What our students say

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