
Instrumentation Engineering Course
Master the full scope of instrumentation engineering, from sensor fundamentals and signal conditioning to PLC programming, fieldbus networks, and functional safety. This course gives you the technical depth and practical documentation skills that industrial employers demand. Whether you're entering the field or advancing your career, this is the training that gets you job-ready.
What you will learn:
This course covers measurement science, sensor technologies, signal transmission, and process control from the ground up. You will learn how to size and select control valves, tune PID controllers, and apply advanced strategies like cascade and feedforward control. You will gain hands-on knowledge of PLC and DCS configuration, industrial communication protocols, and cybersecurity for operational technology networks. The course also covers instrumentation documentation, including P&IDs, loop diagrams, and instrument datasheets. You will finish with a solid understanding of predictive maintenance, safety instrumented systems, and emerging technologies like IIoT and digital twins.
How you study in practice Instrumentation Engineering Course
How you practice Instrumentation Engineering 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 • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Instrumentation Engineering
Foundations of Instrumentation Engineering
Lesson 1 • Safety and Regulatory Frameworks
Surveys hazardous area classifications and instrument safety requirements. Prepares students to apply safety standards in industrial environments.
Lesson 2 • Measurement Science Fundamentals
Covers physical quantities, units, and measurement standards. Establishes the vocabulary and framework used throughout the course.
Lesson 3 • Instrumentation System Architecture
Introduces the functional blocks of a measurement system from sensor to output. Students map signal flow across real instrument configurations.
Lesson 4 • Static and Dynamic Instrument Characteristics
Defines static performance metrics and dynamic response behaviors. Connects these characteristics to instrument selection criteria.
Lesson 5 • Calibration Principles and Traceability
Explains calibration procedures and traceability chains to national standards. Students perform basic calibration calculations and interpret certificates.
Chapter 2HideHide detailsSee detailsSensors and Transducers
Sensors and Transducers
Lesson 1 • Flow Measurement Devices
Surveys differential pressure, electromagnetic, ultrasonic, and Coriolis flow meters. Students match meter type to fluid properties and process conditions.
Lesson 2 • Level and Proximity Sensing
Covers hydrostatic, radar, ultrasonic, and capacitive level technologies. Students evaluate sensor suitability for liquid and solid level applications.
Lesson 3 • Temperature Sensing Technologies
Covers thermocouples, RTDs, thermistors, and infrared sensors. Students compare operating ranges, accuracy, and installation requirements.
Lesson 4 • Pressure and Force Sensing
Examines strain gauges, piezoelectric elements, and capacitive pressure cells. Connects sensing mechanisms to industrial pressure measurement needs.
Lesson 5 • Analytical and Composition Sensors
Introduces pH, conductivity, gas detection, and chromatographic sensors. Establishes the role of analytical instruments in process quality control.
Chapter 3HideHide detailsSee detailsSignal Conditioning and Transmission
Signal Conditioning and Transmission
Lesson 1 • Analog Signal Transmission Standards
Covers 4–20 mA current loops, voltage signals, and HART communication. Students wire and troubleshoot analog transmission circuits in process plants.
Lesson 2 • Analog-to-Digital and Digital-to-Analog Conversion
Explains ADC and DAC architectures, resolution, and sampling theory. Connects conversion quality to measurement system accuracy.
Lesson 3 • Amplification and Impedance Matching
Covers operational amplifier configurations and input/output impedance requirements. Students calculate gain and select op-amp topologies for sensor outputs.
Lesson 4 • Digital Signal Transmission Protocols
Surveys RS-232, RS-485, and industrial digital protocols for instrument communication. Students configure and test digital links between field devices and controllers.
Lesson 5 • Filtering and Noise Reduction
Examines passive and active filter designs and noise sources in measurement circuits. Students apply filtering strategies to improve signal-to-noise ratio.
Chapter 4HideHide detailsSee detailsProcess Control Fundamentals
Process Control Fundamentals
Lesson 1 • Control Valve Sizing and Selection
Covers valve Cv calculation, trim types, and actuator selection. Connects valve characteristics to loop performance and rangeability requirements.
Lesson 2 • Control Loop Concepts and Terminology
Defines process variable, setpoint, error, and manipulated variable. Provides the conceptual framework for all subsequent control analysis.
Lesson 3 • Advanced Control Strategies
Introduces cascade, ratio, feedforward, and split-range control configurations. Students design multi-loop schemes for complex process interactions.
Lesson 4 • PID Controller Theory
Derives proportional, integral, and derivative control actions mathematically. Students predict controller output for given error profiles.
Lesson 5 • Controller Tuning Methods
Covers Ziegler-Nichols, Cohen-Coon, and lambda tuning approaches. Students apply each method and compare closed-loop performance outcomes.
Chapter 5HideHide detailsSee detailsInstrumentation Design and Documentation
Instrumentation Design and Documentation
Lesson 1 • Instrument Loop Diagrams
Defines loop diagram elements including terminal numbers, cable IDs, and junction boxes. Students draft and verify loop diagrams against field wiring.
Lesson 2 • Engineering Change Management
Explains management of change procedures for instrumentation modifications. Students process a change request through documentation, review, and approval steps.
Lesson 3 • Instrument Datasheets and Specifications
Explains how to complete instrument datasheets for procurement and engineering. Students specify sensors, transmitters, and control valves using process data.
Lesson 4 • Instrument Index and Database Management
Covers instrument index structure, tag attributes, and database software tools. Students build and maintain an instrument index for a sample project.
Lesson 5 • Piping and Instrumentation Diagrams
Covers ISA symbol standards, line types, and instrument tag numbering. Students read and mark up P&IDs for process and instrumentation review.
Chapter 6HideHide detailsSee detailsProgrammable Logic Controllers and DCS
Programmable Logic Controllers and DCS
Lesson 1 • PLC Hardware Architecture
Examines CPU, I/O modules, power supplies, and communication backplanes. Students identify module types and configure I/O addressing schemes.
Lesson 2 • System Testing and Commissioning
Defines factory acceptance testing, site acceptance testing, and loop checking. Students execute commissioning procedures and document results.
Lesson 3 • PLC Programming Languages
Covers ladder diagram, function block, structured text, and sequential function chart. Students write and test programs using IEC 61131-3 standard languages.
Lesson 4 • Field Device Integration and Wiring
Covers marshalling cabinets, junction boxes, and field wiring practices. Students trace instrument loops from field device to controller I/O card.
Lesson 5 • DCS Architecture and Configuration
Explains DCS controller nodes, historian, and operator workstation roles. Students configure control modules and faceplates in a DCS environment.
Chapter 7HideHide detailsSee detailsIndustrial Communication Networks
Industrial Communication Networks
Lesson 1 • Fieldbus Technology Overview
Compares PROFIBUS, Foundation Fieldbus, and DeviceNet architectures. Students select appropriate fieldbus technology based on process requirements.
Lesson 2 • Cybersecurity in Industrial Networks
Introduces defense-in-depth, network segmentation, and patch management for OT systems. Students apply security principles to protect instrumentation networks.
Lesson 3 • Network Diagnostics and Troubleshooting
Covers network analyzers, segment checkers, and diagnostic software tools. Students isolate communication faults using systematic diagnostic procedures.
Lesson 4 • Industrial Ethernet Protocols
Covers EtherNet/IP, PROFINET, and Modbus TCP for plant-level communication. Students configure network switches and IP addressing for industrial systems.
Lesson 5 • Wireless Instrumentation Standards
Examines WirelessHART and ISA100.11a mesh network architectures. Students evaluate wireless suitability for monitoring and control applications.
Chapter 8HideHide detailsSee detailsMaintenance, Reliability, and Advanced Diagnostics
Maintenance, Reliability, and Advanced Diagnostics
Lesson 1 • Reliability Engineering for Instruments
Introduces MTBF, MTTR, availability calculations, and failure mode analysis. Students apply reliability metrics to instrument selection and maintenance planning.
Lesson 2 • Safety Instrumented System Testing
Covers proof test procedures, PFD calculations, and SIL verification for SIS loops. Students plan and document proof tests for safety-critical instruments.
Lesson 3 • Control Valve Maintenance and Testing
Examines partial stroke testing, valve signature analysis, and packing maintenance. Students assess valve health using diagnostic test results.
Lesson 4 • Preventive and Predictive Maintenance Strategies
Compares time-based, condition-based, and predictive maintenance approaches. Students develop maintenance schedules aligned with instrument criticality.
Lesson 5 • Instrument Diagnostics and HART Tools
Covers HART communicator use, device diagnostics, and multivariable transmitter data. Students extract and interpret diagnostic information from smart instruments.
Your valid completion certificate
This course is for you:
Electrical technicians: ready to specialize in industrial measurement and control.
Recent engineering graduates: building practical skills employers expect from day one.
Maintenance technicians: wanting to understand the instruments they service daily.
Career changers: moving from general manufacturing into instrumentation roles.
Process operators: seeking to understand the control systems behind their decisions.
Junior automation engineers: filling gaps in sensor, safety, and documentation knowledge.
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