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Instrumentation And Control Technician Course
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Instrumentation And Control Technician Course

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This Instrumentation and Control Technician Course gives you the hands-on technical knowledge to work confidently with industrial instruments, control systems, and process equipment. You'll cover everything from signal wiring and calibration to PLC programming and PID tuning. Whether you're entering the field or advancing your career, this course builds the skills employers demand.

Dedika for students

What your team will master:

You'll gain a solid understanding of measurement principles for pressure, temperature, flow, and level, along with the electrical fundamentals needed for instrument wiring and troubleshooting. The course covers control valve selection, sizing, and maintenance, as well as feedback control theory and PID tuning techniques. You'll also learn to configure PLCs, read P&IDs, manage calibration records, and work safely in hazardous areas. Advanced topics include industrial communication protocols, variable speed drives, analytical instrumentation, and emerging IIoT technologies. By the end, you'll have the technical foundation to perform, document, and improve instrumentation work in real industrial environments.

How your team learns in practice Instrumentation And Control Technician Course

How your team practises Instrumentation And Control Technician Course

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Course content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Instrumentation and Control

  • Lesson 1 • Safety and Regulatory Basics

    Introduces hazardous area classifications, personal protective equipment, and industry safety standards. Safe work practices are reinforced throughout all practical activities.

  • Lesson 2 • Signal Types and Transmission

    Introduces analogue, digital, and pneumatic signal standards used in field devices. Students connect signal types to wiring and communication practices covered later.

  • Lesson 3 • Introduction to Industrial Instrumentation

    Covers the purpose and scope of instrumentation in industrial settings. Establishes vocabulary and context for all subsequent technical content.

  • Lesson 4 • Process Variables and Their Importance

    Defines temperature, pressure, flow, level, and analytical variables. Understanding each variable prepares students for sensor-specific chapters ahead.

  • Lesson 5 • Measurement Fundamentals

    Explains accuracy, precision, resolution, and error in measurement. These concepts underpin correct instrument selection and calibration throughout the course.

Chapter 2See details

Electrical Fundamentals for Technicians

  • Lesson 1 • Wiring Practices and Cable Types

    Explains instrument cable types, shielding, earthing, and termination methods. Correct wiring practice prevents signal interference and ensures reliable loop operation.

  • Lesson 2 • Electrical Safety in the Field

    Addresses arc flash hazards, electrical isolation procedures, and permit-to-work systems. Builds on the safety basics introduced in Chapter 1 with electrical-specific protocols.

  • Lesson 3 • Electrical Measurement Tools

    Teaches proper use of multimeters, clamp meters, and oscilloscopes for field measurements. Accurate tool use is critical for loop testing and fault diagnosis.

  • Lesson 4 • DC Circuit Theory

    Covers voltage, current, resistance, and Ohm's law in direct-current circuits. Provides the electrical foundation needed for loop wiring and signal analysis.

  • Lesson 5 • AC Circuit Fundamentals

    Introduces alternating current, frequency, impedance, and transformer operation. AC knowledge supports work on power supplies and motor-driven field devices.

Chapter 3See details

Pressure and Temperature Measurement

  • Lesson 1 • Installation of Pressure and Temperature Devices

    Covers impulse line design, thermowell selection, and mounting best practices. Proper installation prevents measurement errors and protects instruments from process damage.

  • Lesson 2 • Calibration of Pressure and Temperature Instruments

    Teaches zero and span adjustment, deadweight tester use, and calibration documentation. Calibration skills developed here apply to all instrument types in later chapters.

  • Lesson 3 • Pressure Measurement Principles

    Explains gauge, absolute, differential, and vacuum pressure concepts. Establishes the theoretical basis for selecting and applying pressure instruments correctly.

  • Lesson 4 • Temperature Measurement Principles

    Introduces thermocouple, RTD, thermistor, and pyrometer operating principles. Correct sensor selection depends on range, accuracy, and process compatibility.

  • Lesson 5 • Pressure Instrument Types

    Covers Bourdon tubes, diaphragm elements, capacitance cells, and strain-gauge transmitters. Students match device type to process conditions and accuracy requirements.

Chapter 4See details

Flow and Level Measurement

  • Lesson 1 • Flow and Level Instrument Calibration

    Applies calibration procedures specific to flow and level devices, including wet and dry calibration methods. Builds on calibration fundamentals from Chapter 3.

  • Lesson 2 • Differential Pressure Flow Devices

    Covers orifice plates, venturi tubes, flow nozzles, and pitot tubes. Students calculate flow from differential pressure readings and identify installation requirements.

  • Lesson 3 • Velocity and Positive Displacement Flow Meters

    Introduces turbine, magnetic, vortex, ultrasonic, and positive displacement meters. Each technology's strengths and limitations guide appropriate application choices.

  • Lesson 4 • Flow Measurement Fundamentals

    Explains continuity, Bernoulli's principle, and Reynolds number as they apply to flow measurement. These principles govern the selection and sizing of all flow devices.

  • Lesson 5 • Level Measurement Technologies

    Covers float, displacer, hydrostatic, ultrasonic, radar, and guided-wave radar level instruments. Technology selection depends on fluid properties and vessel design.

Chapter 5See details

Control Valves and Final Control Elements

  • Lesson 1 • Valve Actuators and Positioners

    Covers pneumatic, electric, and hydraulic actuators and the role of valve positioners. Positioner tuning directly affects control loop response and accuracy.

  • Lesson 2 • Control Valve Sizing and Selection

    Teaches sizing calculations for liquid, gas, and steam service using industry methods. Correct sizing prevents oversizing, hunting, and poor rangeability.

  • Lesson 3 • Control Valve Maintenance and Troubleshooting

    Addresses packing replacement, seat lapping, actuator servicing, and fault diagnosis. Maintenance skills reduce unplanned downtime and extend valve service life.

  • Lesson 4 • Control Valve Fundamentals

    Introduces valve body types, trim characteristics, and flow coefficients. Understanding valve hydraulics is essential for correct sizing and loop performance.

  • Lesson 5 • Control Valve Installation and Commissioning

    Covers piping requirements, bypass arrangements, and pre-commissioning checks. Proper installation ensures safe startup and accurate loop performance.

Chapter 6See details

Process Control Theory and Loop Tuning

  • Lesson 1 • PID Controller Modes

    Explains proportional, integral, and derivative actions and their individual effects on loop response. Students predict how each mode change affects stability and offset.

  • Lesson 2 • PID Tuning Methods

    Covers open-loop step testing, Ziegler-Nichols, and lambda tuning methods. Selecting the right method depends on process type and acceptable disturbance response.

  • Lesson 3 • Loop Performance Assessment

    Teaches methods for evaluating loop performance using trend analysis, variance, and control indices. Continuous performance monitoring sustains process efficiency and product quality.

  • Lesson 4 • Feedback Control Concepts

    Introduces open-loop and closed-loop control, setpoint, error, and process gain. These concepts form the theoretical core of all control loop work.

  • Lesson 5 • Advanced Control Strategies

    Introduces cascade, ratio, feedforward, and split-range control configurations. These strategies address limitations of single-loop PID in complex processes.

Chapter 7See details

Programmable Logic Controllers and SCADA

  • Lesson 1 • Ladder Logic Programming Fundamentals

    Introduces contacts, coils, timers, counters, and comparison instructions in ladder logic. Students write and simulate programs that replicate real control sequences.

  • Lesson 2 • PLC Architecture and Hardware

    Covers CPU, power supply, I/O modules, and backplane communication in PLC systems. Hardware knowledge is prerequisite to programming and fault diagnosis.

  • Lesson 3 • Analogue I/O and PID in PLCs

    Explains analogue input scaling, PID function blocks, and output signal conditioning in PLCs. Connects PLC programming to the control theory covered in Chapter 6.

  • Lesson 4 • SCADA Systems and HMI Design

    Covers SCADA architecture, communication protocols, and HMI screen design principles. Effective HMI design improves operator situational awareness and response time.

  • Lesson 5 • PLC and SCADA Troubleshooting

    Teaches fault diagnosis using online monitoring, force functions, and diagnostic logs. Systematic troubleshooting minimizes process downtime and prevents recurring faults.

Chapter 8See details

Instrument Maintenance, Calibration, and Documentation

  • Lesson 1 • Loop Checking and Commissioning

    Teaches systematic loop checking procedures from field device to control system. Loop checks confirm correct wiring, scaling, and signal integrity before startup.

  • Lesson 2 • Instrument Asset Management

    Introduces computerized maintenance management systems, asset registers, and lifecycle tracking. Effective asset management optimizes instrument reliability and total cost of ownership.

  • Lesson 3 • Preventive Maintenance Planning

    Covers maintenance scheduling, criticality ranking, and task development for instrument assets. A structured PM program reduces failures and supports regulatory compliance.

  • Lesson 4 • Technical Documentation and Drawings

    Covers P&IDs, loop diagrams, instrument data sheets, and hook-up drawings. Accurate documentation is essential for safe operation, maintenance, and modifications.

  • Lesson 5 • Calibration Management Systems

    Explains calibration intervals, as-found/as-left data, traceability, and calibration database use. Proper calibration management ensures measurement integrity across the plant.

Certification

Your valid completion certificate

This course is for you:

  • Maintenance workers: ready to specialise in instrumentation and increase their earning potential.

  • Electrical apprentices: looking to branch into process control and measurement technology.

  • Operations technicians: wanting to understand the instruments they monitor and report on daily.

  • Career changers: entering the process industries from trades, military, or unrelated technical backgrounds.

  • Engineering students: seeking practical field-level knowledge to complement their academic coursework.

  • Plant supervisors: needing deeper technical grounding to manage instrumentation teams more effectively.

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