
Industrial Instrumentation Course
Master every layer of industrial instrumentation — from pressure and flow measurement to PID tuning and safety systems. This course gives you the hands-on technical knowledge to work confidently with real instruments, control loops, and plant documentation. Whether you're entering the field or advancing your career, you'll finish ready to perform.
What you will learn:
This course covers the full scope of industrial instrumentation, starting with measurement fundamentals and signal standards, then moving through pressure, level, flow, and temperature instruments. You will learn how to calibrate devices, troubleshoot faults, and size control valves using industry-standard methods. The course also covers PID controller modes and tuning techniques, distributed control system architecture, and safety instrumented systems. Supplementary chapters address analytical instruments, rotating equipment monitoring, wireless sensors, and IIoT integration. By the end, you will have the technical knowledge to commission complete instrument loops and interpret plant-level documentation.
How you study in practice Industrial Instrumentation Course
How you practise Industrial Instrumentation Course
For companies looking to train their teams
With Dedika for businesses, the course includes exercises and examples tailored to your company and its specific needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Industrial Instrumentation
Foundations of Industrial Instrumentation
Lesson 1 • Signal Types and Transmission Standards
Explains analog, discrete, and digital signal formats used between field devices and control systems. Connects signal standards to wiring and loop design decisions.
Lesson 2 • Instrument Classification and Terminology
Defines primary, secondary, and final control elements and their roles in a loop. Provides the classification framework applied in all subsequent chapters.
Lesson 3 • Introduction to Process Measurement
Covers the purpose of measurement in industrial operations and the relationship between variables and control. Establishes vocabulary used throughout the course.
Lesson 4 • Safety Fundamentals in Instrumentation
Introduces hazardous area classification, intrinsic safety, and lockout/tagout procedures relevant to instrument work. Grounds all field activities in safe work practices.
Lesson 5 • Reading Instrument Datasheets and Nameplates
Teaches interpretation of manufacturer specifications including range, span, and accuracy class. Prepares students to select and verify instruments against process requirements.
Chapter 2HideHide detailsSee detailsPressure Measurement and Instruments
Pressure Measurement and Instruments
Lesson 1 • Pressure Sensing Technologies
Compares Bourdon tube, diaphragm, bellows, and electronic sensing elements by operating principle. Enables technology selection based on process fluid and range requirements.
Lesson 2 • Pressure Measurement Troubleshooting
Identifies common faults including plugged impulse lines, diaphragm damage, and signal drift. Builds systematic diagnostic skills used across all measurement disciplines.
Lesson 3 • Pressure Transmitter Installation
Covers impulse line routing, manifold valve use, and mounting orientation for accurate readings. Directly applies signal standards from Chapter 1 to pressure loop wiring.
Lesson 4 • Pressure Instrument Calibration
Teaches zero and span adjustment, as-found/as-left documentation, and deadweight tester use. Establishes calibration discipline applied to all instrument types in later chapters.
Lesson 5 • Pressure Concepts and Units
Defines gauge, absolute, differential, and vacuum pressure and their unit conversions. Provides the physical foundation for all pressure instrument selection decisions.
Chapter 3HideHide detailsSee detailsLevel Measurement Techniques
Level Measurement Techniques
Lesson 1 • Hydrostatic Level Measurement
Explains how differential pressure transmitters infer liquid level from hydrostatic head. Builds directly on pressure transmitter skills from Chapter 2.
Lesson 2 • Ultrasonic and Capacitance Level Devices
Covers ultrasonic non-contact measurement and capacitance probes for solids and liquids. Highlights application limits including foam, dust, and dielectric variation.
Lesson 3 • Displacer and Float Level Devices
Covers buoyancy-based measurement using displacers and float mechanisms for interface and level detection. Addresses mechanical installation and torque tube calibration.
Lesson 4 • Guided Wave and Radar Level Measurement
Introduces time-of-flight principles for guided wave radar and free-space radar instruments. Prepares students to configure echo processing parameters for reliable measurement.
Lesson 5 • Level Instrument Calibration and Commissioning
Applies wet and dry calibration methods and documents loop checks for level devices. Reinforces calibration documentation practices introduced in Chapter 2.
Chapter 4HideHide detailsSee detailsFlow Measurement Principles and Devices
Flow Measurement Principles and Devices
Lesson 1 • Flow Measurement Fundamentals
Establishes continuity equation, Reynolds number, and flow profile concepts as the basis for meter selection. Connects fluid dynamics theory to practical meter performance.
Lesson 2 • Differential Pressure Flow Meters
Covers orifice plates, venturi tubes, and flow nozzles using Bernoulli's principle for flow calculation. Applies differential pressure transmitter skills from Chapter 2.
Lesson 3 • Coriolis and Thermal Mass Flow Meters
Explains Coriolis force and thermal dispersion principles for direct mass flow measurement. Addresses installation requirements and density measurement capability.
Lesson 4 • Velocity and Positive Displacement Meters
Examines turbine, vortex, electromagnetic, and positive displacement meters by operating principle. Guides technology selection for clean liquids, slurries, and gases.
Lesson 5 • Flow Meter Installation and Verification
Specifies upstream and downstream straight-run requirements, flow conditioners, and in-situ verification. Ensures accurate measurement through correct physical installation.
Chapter 5HideHide detailsSee detailsTemperature Measurement and Instruments
Temperature Measurement and Instruments
Lesson 1 • Thermowells and Installation Practices
Addresses thermowell material selection, insertion length, and wake frequency calculation for safe installation. Prevents measurement error and mechanical failure from improper mounting.
Lesson 2 • Temperature Transmitter Calibration
Teaches input simulation using decade boxes and millivolt sources, and documents calibration results. Reinforces as-found/as-left discipline from Chapter 2 for temperature loops.
Lesson 3 • Temperature Scales and Sensing Principles
Reviews Celsius, Fahrenheit, Kelvin, and Rankine scales and the physical basis of thermal sensing. Establishes the reference framework for all temperature instrument comparisons.
Lesson 4 • Resistance Temperature Detectors
Covers PT100 and PT1000 RTD construction, two-wire, three-wire, and four-wire connection methods. Explains lead resistance error and its correction in precision measurement.
Lesson 5 • Thermocouples: Theory and Application
Explains the Seebeck effect, thermocouple types, and cold junction compensation requirements. Covers wiring rules and extension cable selection for accurate signal transmission.
Chapter 6HideHide detailsSee detailsControl Valves and Final Control Elements
Control Valves and Final Control Elements
Lesson 1 • Control Valve Installation and Commissioning
Specifies piping requirements, bypass arrangements, and pre-commissioning stroke tests. Ensures valves are installed and verified before loop tuning begins.
Lesson 2 • Valve Diagnostics and Maintenance
Uses partial stroke testing, signature analysis, and packing inspection to assess valve health. Extends valve service life and prevents unplanned shutdowns.
Lesson 3 • Actuators and Positioners
Covers pneumatic diaphragm, piston, and electric actuators paired with smart valve positioners. Explains positioner calibration and split-range configuration for complex loops.
Lesson 4 • Control Valve Fundamentals
Introduces valve body types, trim characteristics, and flow coefficient (Cv) as the basis for valve sizing. Connects final control element function to the closed-loop control concept.
Lesson 5 • Control Valve Sizing
Applies ISA sizing equations for liquid, gas, and steam service using process data sheets. Ensures correct valve selection to avoid cavitation, flashing, and choked flow.
Chapter 7HideHide detailsSee detailsProcess Control Loops and PID Tuning
Process Control Loops and PID Tuning
Lesson 1 • PID Controller Modes
Explains proportional, integral, and derivative modes individually and their combined effect on loop response. Prepares students to select appropriate modes for different process types.
Lesson 2 • PID Tuning Methods
Applies Ziegler-Nichols, Cohen-Coon, and IMC-based tuning rules to calculated process models. Compares tuning methods by stability margin and disturbance rejection performance.
Lesson 3 • Closed-Loop Control Concepts
Defines setpoint, process variable, error, and controller output within a feedback loop. Integrates transmitter and valve knowledge from previous chapters into a complete loop.
Lesson 4 • Process Identification and Modeling
Teaches step test and bump test methods to extract process gain, dead time, and time constant. Provides the process model data required for systematic tuning calculations.
Lesson 5 • Advanced Loop Strategies
Introduces cascade, feedforward, ratio, and override control to handle complex process interactions. Extends single-loop PID skills to multi-loop control architectures.
Chapter 8HideHide detailsSee detailsInstrumentation Systems and Integration
Instrumentation Systems and Integration
Lesson 1 • Instrument Loop Documentation
Teaches reading and creating P&IDs, loop diagrams, instrument indexes, and hook-up drawings. Provides the documentation literacy required for commissioning and maintenance work.
Lesson 2 • Safety Instrumented Systems
Introduces SIL levels, safety integrity, and the architecture of safety instrumented functions per functional safety standards. Distinguishes SIS from basic process control systems.
Lesson 3 • Distributed Control System Architecture
Describes DCS hardware layers including field devices, I/O modules, controllers, and operator stations. Connects individual loop knowledge to plant-wide control system structure.
Lesson 4 • Loop Commissioning and Acceptance Testing
Executes pre-commissioning checks, loop checks, and functional acceptance tests for complete instrument loops. Validates that installed systems meet design intent before plant startup.
Lesson 5 • Fieldbus and Industrial Networking
Covers HART, Foundation Fieldbus, Profibus, and Ethernet-based protocols for field device communication. Enables students to configure and diagnose digital communication in instrument loops.
Your valid completion certificate
This course is for you:
Maintenance technicians: ready to move from mechanical work into instrumentation roles.
Electrical apprentices: wanting to specialize in process measurement and control systems.
Recent engineering graduates: bridging the gap between classroom theory and plant reality.
Plant operators: seeking to understand the instruments they monitor and respond to daily.
Career changers: entering the process industries from unrelated technical backgrounds.
Junior instrument technicians: looking to formalize knowledge gained through on-the-job experience.
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