
Industrial Process Control and Automation Course
Master every layer of industrial process control, from sensors and PID tuning to PLCs, SCADA, and advanced automation strategies. This course delivers the technical depth and hands-on knowledge that process and control engineers need to perform at the highest level. Whether you're designing safety systems or optimising plant performance, you'll finish ready to take on real industrial challenges.
What you will learn:
You will build a complete understanding of process dynamics, mathematical modelling, and PID control theory, then apply that knowledge to real instrumentation, control valves, and field devices. You will program PLCs using IEC 61131-3 languages and design SCADA systems with effective HMI screens and alarm management. The course covers advanced strategies including cascade, feedforward, and model predictive control for complex industrial processes. You will also learn functional safety principles, SIS design, and layer of protection analysis to meet industry compliance requirements. Additional modules address industrial cybersecurity, digital twins, machine learning applications, and energy efficiency strategies for modern process plants.
How you study practically Industrial Process Control and Automation Course
How you practise Industrial Process Control and Automation 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 • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Industrial Process Control
Foundations of Industrial Process Control
Lesson 1 • Measurement and Instrumentation Basics
Covers sensor principles, signal types, and measurement accuracy. Provides the instrumentation foundation required for all subsequent control topics.
Lesson 2 • Control System Components Overview
Maps the roles of sensors, transmitters, controllers, and final control elements. Prepares students to trace signal flow in a complete control loop.
Lesson 3 • Core Concepts of Process Control
Introduces process variables, control objectives, and system boundaries. Establishes vocabulary used throughout the course.
Lesson 4 • Process Types and Characteristics
Classifies continuous, batch, and discrete processes by dynamic behaviour. Connects process type to appropriate control strategy selection.
Chapter 2HideHide detailsSee detailsProcess Dynamics and Mathematical Modelling
Process Dynamics and Mathematical Modelling
Lesson 1 • Transfer Functions and Block Diagrams
Introduces Laplace-domain transfer functions and block diagram algebra. Enables students to analyse closed-loop system structure mathematically.
Lesson 2 • Process Identification Techniques
Covers open-loop and closed-loop methods for identifying process models from plant data. Connects experimental identification to controller design.
Lesson 3 • Higher-Order and Dead-Time Models
Extends modelling to second-order and higher-order systems with transport delay. Prepares students for realistic process identification challenges.
Lesson 4 • Simulation Tools for Process Modelling
Applies simulation software to build and test process models before deployment. Reinforces mathematical concepts through hands-on virtual experimentation.
Lesson 5 • First-Order Process Models
Derives first-order differential equations from mass and energy balances. Links model parameters to observable process behaviour.
Chapter 3HideHide detailsSee detailsSensors, Transmitters, and Final Control Elements
Sensors, Transmitters, and Final Control Elements
Lesson 1 • Level and Analytical Measurement
Covers hydrostatic, radar, and guided-wave level technologies plus pH and conductivity analysers. Links analyser selection to process chemistry and safety.
Lesson 2 • Control Valves and Actuators
Details globe, ball, and butterfly valve characteristics and actuator types. Students can size valves and select actuators for given process conditions.
Lesson 3 • Pressure and Flow Measurement
Explains differential pressure, Coriolis, and magnetic flowmeter technologies. Prepares students to match flow measurement technology to fluid properties.
Lesson 4 • Instrument Calibration and Maintenance
Establishes calibration procedures, loop checks, and preventive maintenance schedules. Ensures measurement integrity throughout the instrument lifecycle.
Lesson 5 • Temperature Measurement Devices
Covers thermocouples, RTDs, and infrared sensors with their error sources. Connects sensor selection to process temperature range and accuracy needs.
Chapter 4HideHide detailsSee detailsPID Control Theory and Tuning
PID Control Theory and Tuning
Lesson 1 • Classical PID Tuning Methods
Covers Ziegler-Nichols, Cohen-Coon, and IMC-based tuning rules. Students apply each method and compare resulting performance.
Lesson 2 • PID Controller Structure and Modes
Explains proportional, integral, and derivative actions and their individual effects. Builds intuition for how each mode shapes the closed-loop response.
Lesson 3 • Advanced PID Features and Enhancements
Covers anti-windup, bumpless transfer, and derivative filtering techniques. Prepares students to configure industrial PID controllers for real-world conditions.
Lesson 4 • Stability Analysis for Control Loops
Applies gain and phase margin concepts to assess closed-loop stability. Provides the analytical basis for safe controller tuning.
Lesson 5 • Controller Performance Assessment
Defines IAE, ISE, and ITAE performance indices and applies them to compare tuning outcomes. Links quantitative metrics to operational goals.
Chapter 5HideHide detailsSee detailsProgrammable Logic Controllers and SCADA
Programmable Logic Controllers and SCADA
Lesson 1 • Ladder Logic and Structured Text Programming
Teaches IEC 61131-3 ladder logic and structured text languages with practical examples. Builds programming skills applicable to most industrial PLC platforms.
Lesson 2 • SCADA System Architecture
Explains SCADA components including HMI, historian, and communication servers. Prepares students to design and navigate plant-wide monitoring systems.
Lesson 3 • PLC Architecture and Hardware
Describes CPU, I/O modules, power supplies, and communication backplanes. Provides the hardware knowledge needed before programming begins.
Lesson 4 • PLC and SCADA Commissioning
Covers factory acceptance testing, site acceptance testing, and startup procedures. Ensures students can safely bring automation systems into service.
Lesson 5 • Analogue Control and PID in PLCs
Implements PID function blocks within PLC programmes for closed-loop control. Connects PLC programming skills to process control theory from earlier chapters.
Chapter 6HideHide detailsSee detailsAdvanced Control Strategies
Advanced Control Strategies
Lesson 1 • Model Predictive Control Fundamentals
Introduces MPC prediction horizon, control horizon, and constraint handling concepts. Positions MPC as the advanced alternative to classical multivariable strategies.
Lesson 2 • Override and Selective Control
Introduces high-select, low-select, and override schemes for constraint management. Prepares students to protect equipment while maintaining process objectives.
Lesson 3 • Multivariable and Decoupling Control
Analyses interaction in multi-input multi-output processes using the relative gain array. Introduces decoupling strategies to reduce loop interaction.
Lesson 4 • Cascade Control Design
Explains inner and outer loop structure and tuning sequence for cascade control. Demonstrates performance improvement over single-loop control for slow processes.
Lesson 5 • Feedforward and Ratio Control
Covers static and dynamic feedforward design and ratio control for blending applications. Connects disturbance measurement to proactive control action.
Chapter 7HideHide detailsSee detailsProcess Safety and Alarm Management
Process Safety and Alarm Management
Lesson 1 • Emergency Shutdown and Interlock Systems
Designs ESD logic, cause-and-effect matrices, and bypass management procedures. Ensures students can implement and test safety interlocks correctly.
Lesson 2 • Functional Safety Principles
Introduces safety lifecycle, safety integrity levels, and risk reduction concepts. Establishes the regulatory and engineering basis for safety system design.
Lesson 3 • Safety Instrumented System Design
Covers SIS architecture, logic solvers, and final elements for safety functions. Students can design and document a basic safety instrumented function.
Lesson 4 • Layer of Protection Analysis
Applies LOPA methodology to quantify risk reduction from independent protection layers. Connects process hazard analysis to SIL determination.
Lesson 5 • Alarm System Design and Rationalisation
Applies alarm management best practices to design rationalised, prioritised alarm systems. Addresses alarm flood and nuisance alarm problems common in industry.
Chapter 8HideHide detailsSee detailsControl System Integration and Optimisation
Control System Integration and Optimisation
Lesson 1 • Control System Performance Auditing
Applies loop performance monitoring, oscillation detection, and benchmarking methods. Closes the course by connecting all prior topics to continuous improvement practice.
Lesson 2 • Industrial Communication Protocols
Covers HART, FOUNDATION Fieldbus, Profibus, and OPC-UA protocols for field and system integration. Prepares students to select and configure industrial networks.
Lesson 3 • Real-Time Optimisation Techniques
Introduces steady-state and dynamic real-time optimisation above the regulatory control layer. Students can formulate optimisation problems and interpret optimizer outputs.
Lesson 4 • Distributed Control System Architecture
Explains DCS controller redundancy, I/O subsystems, and engineering workstation roles. Connects DCS design to plant-wide control and data management needs.
Lesson 5 • Data Historian and Analytics Integration
Configures process data historians and connects them to analytics platforms. Enables data-driven performance monitoring and root cause analysis.
Your valid completion certificate
This course is for you:
Process engineer: wants to close gaps between theory and plant-floor practice.
Instrumentation technician: ready to move into control system design roles.
Mechanical engineer: transitioning into automation and process control work.
Recent engineering graduate: building job-ready skills before entering industry.
Plant operations supervisor: seeking deeper technical grounding in control systems.
Automation hobbyist: pursuing structured knowledge to tackle industrial-scale projects.
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