
SPCS Training Course
Master every layer of supervisory process control — from field sensors and PLC logic to SCADA design, advanced control strategies, and functional safety. This comprehensive SPCS training course equips engineers and technicians with the hands-on knowledge to design, commission, and maintain industrial control systems with confidence.
What you will learn:
Configure PID controllers and advanced loop structures for stable, optimized process performance.
Build and deploy SCADA systems with well-structured tag databases, HMI screens, and alarm management.
Design safety instrumented systems and apply SIL determination methods to meet functional safety standards.
Implement industrial communication protocols including Modbus, PROFIBUS, EtherNet/IP, and OPC UA.
Develop and test PLC programs using ladder logic, structured text, and sequential function charts.
Execute end-to-end control system projects from functional design through site commissioning and operator handover.
How you study in practice SPCS Training Course
How you practice SPCS Training Course
For companies that want 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 • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of SPCS Systems
Foundations of SPCS Systems
Lesson 1 • Regulatory and Safety Frameworks
Introduces functional safety standards and regulatory expectations for process control. Sets compliance context for all subsequent chapters.
Lesson 2 • Introduction to Process Control
Defines process control and its role in industrial automation. Establishes vocabulary used throughout the course.
Lesson 3 • Sensors and Measurement Fundamentals
Covers sensor types, signal types, and measurement accuracy concepts. Provides the instrumentation foundation for later control topics.
Lesson 4 • Actuators and Final Control Elements
Examines devices that execute control commands in the field. Links actuator behavior to control loop performance.
Lesson 5 • SPCS Architecture Overview
Maps the structural layers of a supervisory process control system. Connects hardware, software, and communication layers.
Chapter 2HideHide detailsSee detailsControl Loop Theory and Tuning
Control Loop Theory and Tuning
Lesson 1 • Process Identification Methods
Teaches open-loop and closed-loop tests to characterize process dynamics. Identification results feed directly into tuning calculations.
Lesson 2 • PID Tuning Techniques
Applies Ziegler-Nichols, IMC, and lambda tuning rules to identified processes. Students select methods appropriate to process type.
Lesson 3 • Feedback Control Principles
Explains error signal generation and the feedback correction mechanism. Forms the mathematical core of all subsequent tuning work.
Lesson 4 • PID Controller Configuration
Covers parameter entry, mode selection, and controller output limits. Prepares students to configure real controllers correctly.
Lesson 5 • Advanced Loop Structures
Introduces cascade, ratio, and feedforward control architectures. Extends single-loop knowledge to multi-loop coordination.
Chapter 3HideHide detailsSee detailsPLC Programming and Logic Design
PLC Programming and Logic Design
Lesson 1 • Program Testing and Documentation
Establishes simulation, online monitoring, and version control practices. Ensures logic is verified before deployment to live systems.
Lesson 2 • Ladder Logic Programming
Teaches contact, coil, and function block elements in ladder diagrams. Ladder logic is the most widely used PLC language in industry.
Lesson 3 • Sequential Function Charts
Covers SFC steps, transitions, and actions for batch and sequential processes. Directly applicable to startup and shutdown sequences.
Lesson 4 • PLC Hardware and Scan Cycle
Describes PLC CPU, I/O modules, and the scan cycle sequence. Grounds software concepts in physical hardware behavior.
Lesson 5 • Structured Text and Function Blocks
Introduces IEC 61131-3 structured text syntax and function block diagrams. Expands programming capability beyond ladder logic.
Chapter 4HideHide detailsSee detailsIndustrial Communication Networks
Industrial Communication Networks
Lesson 1 • Ethernet-Based Industrial Protocols
Examines EtherNet/IP, PROFINET, and Modbus TCP for high-speed control networks. Ethernet protocols are increasingly standard in modern plants.
Lesson 2 • OPC Standards and Data Exchange
Explains OPC DA and OPC UA for vendor-neutral data exchange between systems. OPC UA is the preferred standard for modern SCADA integration.
Lesson 3 • Fieldbus and Serial Protocols
Covers HART, Modbus RTU, and PROFIBUS for field device communication. These legacy protocols remain dominant in installed industrial bases.
Lesson 4 • Network Troubleshooting Methods
Applies packet capture, ping, and protocol analyzer tools to diagnose faults. Systematic troubleshooting minimizes process downtime.
Lesson 5 • Network Fundamentals for Industry
Reviews OSI model layers relevant to industrial networks and key networking terms. Establishes the vocabulary for all protocol-specific sections.
Chapter 5HideHide detailsSee detailsSCADA and HMI Development
SCADA and HMI Development
Lesson 1 • HMI Screen Design Principles
Applies human factors and situational awareness principles to screen layout. Good design reduces operator error and response time.
Lesson 2 • Alarm Management Configuration
Configures alarm priorities, deadbands, delays, and suppression logic. Connects alarm design to operator workload and safety outcomes.
Lesson 3 • SCADA System Architecture
Maps SCADA server, client, and field communication roles. Provides the structural context for all HMI and data configuration work.
Lesson 4 • Data Historian and Reporting
Sets up process data archiving, retrieval, and report generation. Archived data supports performance analysis and regulatory reporting.
Lesson 5 • Tag Database Configuration
Covers tag naming, data types, scaling, and engineering unit assignment. A well-structured tag database is the backbone of reliable SCADA operation.
Chapter 6HideHide detailsSee detailsProcess Safety and Alarm Systems
Process Safety and Alarm Systems
Lesson 1 • Safety Instrumented System Concepts
Defines SIS architecture, safety functions, and the relationship to basic process control. Establishes the independence principle central to SIS design.
Lesson 2 • Alarm System Performance Management
Measures alarm system KPIs and applies rationalization to reduce nuisance alarms. Performance management is an ongoing operational discipline.
Lesson 3 • SIL Determination and Verification
Calculates safety integrity level requirements and verifies SIS designs meet them. Connects risk assessment outputs to hardware selection.
Lesson 4 • Hazard and Risk Assessment
Applies HAZOP and layer of protection analysis to identify and quantify process risks. Risk assessment results drive SIS design requirements.
Lesson 5 • Safety Logic and Voting Systems
Designs voting configurations and safety logic for reliable trip functions. Voting architecture balances availability against safety performance.
Chapter 7HideHide detailsSee detailsAdvanced Control Strategies
Advanced Control Strategies
Lesson 1 • MPC Implementation and Commissioning
Covers plant testing, model identification, and controller commissioning steps. Practical commissioning skills differentiate MPC theory from deployment.
Lesson 2 • Multivariable Process Interactions
Analyzes process interaction using relative gain array and decoupling methods. Understanding interactions is prerequisite to multivariable control design.
Lesson 3 • Real-Time Optimization
Applies steady-state optimization above MPC to maximize economic performance. Optimization targets are passed as set points to the MPC layer.
Lesson 4 • Model Predictive Control Fundamentals
Introduces MPC prediction horizon, control horizon, and constraint handling. MPC is the dominant advanced control technology in process industries.
Lesson 5 • Inferential and Soft Sensor Design
Builds virtual measurements from correlated process variables when direct measurement is impractical. Soft sensors extend control capability to unmeasured quality variables.
Chapter 8HideHide detailsSee detailsSystem Integration and Project Delivery
System Integration and Project Delivery
Lesson 1 • Lifecycle Management and MOC
Applies management of change and asset lifecycle practices to sustain system integrity. MOC prevents unauthorized changes that degrade safety or performance.
Lesson 2 • Project Engineering and Design
Covers functional specifications, I/O lists, and cause-and-effect matrices. Design documents form the contractual and technical basis for system build.
Lesson 3 • Operator Training and Handover
Designs operator training programs and system handover documentation packages. Effective handover ensures operators can run and maintain the system safely.
Lesson 4 • Site Installation and Commissioning
Covers loop checking, site acceptance testing, and pre-startup safety reviews. Commissioning confirms field installation matches design intent.
Lesson 5 • System Build and Factory Acceptance
Guides panel assembly, software loading, and factory acceptance test execution. FAT verifies system compliance before shipment to site.
Your valid completion certificate
This course is for you:
Instrumentation technician: ready to move into control system engineering roles.
Process engineer: wanting to take ownership of automation and control decisions.
Electrical engineer: transitioning into industrial automation from power or electronics.
Recent engineering graduate: building practical SPCS skills before entering the workforce.
Plant operations supervisor: seeking deeper technical understanding of control infrastructure.
Control systems integrator: looking to formalize and expand self-taught industry knowledge.
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