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Instrument Technician Course
More than 20 lakh learners worldwide

Instrument Technician Course

4.7

Master the full range of instrument technician skills — from pressure and temperature measurement to control valves, PID tuning, and safety instrumented systems. This course delivers the hands-on technical knowledge employers demand in oil and gas, chemical, and power generation plants. Build the competency to install, calibrate, troubleshoot, and commission industrial instrumentation with confidence.

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What you will learn:

This course covers every core discipline an instrument technician needs on the job. You will learn how to select, install, and calibrate pressure, temperature, flow, and level instruments to industry standards. You will configure smart transmitters and valve positioners using HART communication tools. The course also covers PID control theory, controller tuning methods, and advanced strategies such as cascade and feedforward control. You will study safety instrumented systems, functional safety concepts, and proof testing procedures. Structured troubleshooting methods and root cause analysis techniques are included to help you resolve faults faster and reduce repeat failures.

How you study in a practical way Instrument 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 Measurement

  • Lesson 1 • Instrument Classification and Terminology

    Defines sensors, transmitters, controllers, and final elements within a measurement loop. Provides the vocabulary needed to read datasheets and communicate with engineering teams.

  • Lesson 2 • Core Process Variables and Units

    Introduces pressure, temperature, flow, and level as the four primary process variables. Establishes SI and imperial unit conversions essential for all subsequent instrument work.

  • Lesson 3 • Signal Standards and Transmission

    Explains 4–20 mA, HART, and digital fieldbus signal standards used to transmit measurement data. Connects signal selection to wiring, noise immunity, and system compatibility.

  • Lesson 4 • Measurement Performance Specifications

    Covers accuracy, precision, repeatability, hysteresis, and rangeability as key performance metrics. Students apply these metrics to evaluate instrument suitability for a given process.

  • Lesson 5 • Safety Fundamentals in Instrumentation

    Introduces hazardous area classifications, intrinsic safety, and personal protective equipment relevant to instrument work. Establishes safe work habits before hands-on activities begin.

Chapter 2See details

Pressure Measurement and Instruments

  • Lesson 1 • Differential Pressure Measurement

    Explains differential pressure principles and their use in flow, level, and filter monitoring applications. Students connect DP cells and interpret high-side/low-side readings correctly.

  • Lesson 2 • Pressure Sensing Technologies

    Compares Bourdon tube, diaphragm, bellows, and piezoelectric sensing elements by operating range and media compatibility. Guides technology selection based on process conditions.

  • Lesson 3 • Pressure Instrument Troubleshooting

    Diagnoses plugged impulse lines, diaphragm failures, and zero/span drift using systematic fault isolation. Builds a structured troubleshooting mindset applied throughout the course.

  • Lesson 4 • Pressure Transmitter Installation

    Covers impulse line routing, isolation valves, and condensate pots for reliable pressure signal transmission. Proper installation prevents measurement errors caused by liquid heads and blockages.

  • Lesson 5 • Pressure Instrument Calibration

    Applies dead-weight testers, hand pumps, and reference gauges to calibrate pressure instruments. Students document as-found and as-left data to meet quality management requirements.

Chapter 3See details

Temperature Measurement and Instruments

  • Lesson 1 • Thermowells and Installation Practices

    Addresses thermowell materials, insertion length, wake frequency, and process connection standards for safe installation. Correct thermowell selection prevents mechanical failure and measurement lag.

  • Lesson 2 • Temperature Calibration and Verification

    Uses dry-block calibrators and ice-point references to verify thermocouple and RTD accuracy. Students perform multi-point calibrations and calculate measurement uncertainty.

  • Lesson 3 • Temperature Transmitter Configuration

    Configures smart temperature transmitters for sensor type, range, damping, and failure mode using a handheld communicator. Students verify output signal against a reference standard.

  • Lesson 4 • Thermocouple Theory and Types

    Explains the Seebeck effect, cold junction compensation, and common thermocouple types by temperature range and application. Students match thermocouple type to process requirements.

  • Lesson 5 • Resistance Temperature Detectors

    Covers PT100 and PT1000 RTD construction, two-wire, three-wire, and four-wire connection methods, and lead resistance errors. Students select wiring configurations to meet accuracy requirements.

Chapter 4See details

Flow Measurement Technologies

  • Lesson 1 • Flow Meter Installation and Straight Run

    Specifies upstream and downstream straight-pipe requirements, flow conditioners, and orientation rules for accurate measurement. Incorrect installation is the leading cause of flow meter error.

  • Lesson 2 • Velocity-Based Flow Meters

    Explains electromagnetic, ultrasonic, vortex, and turbine flow meters by operating principle and fluid compatibility. Students match meter type to fluid conductivity, viscosity, and pipe size.

  • Lesson 3 • Flow Meter Commissioning and Verification

    Covers zero-flow verification, wet calibration references, and in-situ diagnostic checks for flow meters. Students document commissioning data and confirm meter factor settings.

  • Lesson 4 • Differential Pressure Flow Devices

    Covers orifice plates, venturi tubes, and flow nozzles using Bernoulli's equation to derive flow from DP. Students calculate flow rates and identify sources of measurement error.

  • Lesson 5 • Mass Flow Measurement

    Introduces Coriolis and thermal mass flow meters for direct mass flow and density measurement. Students evaluate applications where mass flow is preferred over volumetric measurement.

Chapter 5See details

Level Measurement Technologies

  • Lesson 1 • Float, Displacer, and Magnetic Level Gauges

    Covers mechanical level technologies including float switches, displacer transmitters, and magnetic level gauges. Students identify appropriate applications and common failure modes for each type.

  • Lesson 2 • Ultrasonic and Capacitance Level Devices

    Covers ultrasonic non-contact level measurement and capacitance probes for conductive and non-conductive media. Students select between technologies based on vapour, foam, and dielectric properties.

  • Lesson 3 • Level Instrument Calibration and Ranging

    Performs LRV and URV ranging, wet calibration, and simulation-based verification for level transmitters. Students adjust span and zero to match actual process conditions and vessel geometry.

  • Lesson 4 • Hydrostatic and DP Level Measurement

    Applies hydrostatic pressure principles to calculate liquid level from DP transmitter readings. Students perform wet-leg and dry-leg calculations for pressurised and open vessels.

  • Lesson 5 • Guided Wave and Free-Space Radar

    Explains time-of-flight radar principles for guided wave radar and free-space radar level transmitters. Students configure echo threshold, blocking distance, and false-echo suppression.

Chapter 6See details

Control Valves and Final Control Elements

  • Lesson 1 • Control Valve Maintenance and Diagnostics

    Covers packing replacement, seat and plug inspection, and partial stroke testing for control valve maintenance. Students interpret valve diagnostic signatures to detect stiction, hysteresis, and seat leakage.

  • Lesson 2 • Valve Sizing and Flow Coefficient

    Applies Cv and Kv flow coefficient equations to size control valves for liquid, gas, and steam service. Students calculate required Cv and select the next standard valve size.

  • Lesson 3 • Control Valve Construction and Types

    Describes globe, ball, butterfly, and rotary plug valve bodies, trim materials, and flow characteristics. Students match valve type to process fluid, pressure class, and control requirement.

  • Lesson 4 • Actuators and Fail-Safe Action

    Covers pneumatic diaphragm, piston, and electric actuators with spring-return fail-safe configurations. Students determine fail-open or fail-closed action based on process safety requirements.

  • Lesson 5 • Valve Positioners and I/P Converters

    Explains electropneumatic positioners, digital valve controllers, and I/P transducers for precise valve positioning. Students calibrate positioner zero, span, and characterisation using a HART communicator.

Chapter 7See details

Process Control Loops and Controllers

  • Lesson 1 • Controller Tuning Methods

    Applies open-loop step test, Ziegler-Nichols, and lambda tuning methods to determine PID parameters. Students tune a simulated loop and evaluate stability using step response criteria.

  • Lesson 2 • Advanced Control Strategies

    Introduces cascade, ratio, feedforward, and split-range control strategies for complex process interactions. Students identify when advanced strategies improve on single-loop PID performance.

  • Lesson 3 • Feedback Control Loop Fundamentals

    Defines the components of a closed-loop control system: process, sensor, controller, and final element. Students trace signal flow and identify the effect of each component on loop behaviour.

  • Lesson 4 • PID Controller Modes and Equations

    Explains proportional, integral, and derivative modes mathematically and in terms of process response. Students predict the effect of each mode on offset, oscillation, and response speed.

  • Lesson 5 • Loop Performance Assessment

    Uses step response, setpoint tracking, and disturbance rejection tests to assess control loop performance. Students identify poorly performing loops and recommend corrective tuning or hardware changes.

Chapter 8See details

Instrument Systems, Documentation, and Commissioning

  • Lesson 1 • Pre-Startup and Handover Procedures

    Covers instrument pre-startup checklists, punch list clearance, and documentation handover to operations. Students prepare a complete instrument package ready for plant startup and ongoing maintenance.

  • Lesson 2 • Loop Checking and Functional Testing

    Executes end-to-end loop checks by simulating process inputs and verifying correct output at the control system. Students complete loop check sheets and resolve discrepancies before startup.

  • Lesson 3 • P&ID Reading and Instrument Symbols

    Interprets piping and instrumentation diagrams using ISA symbol standards for instruments, lines, and control functions. Students extract instrument specifications and loop configurations from P&IDs.

  • Lesson 4 • Instrument Data Sheets and Specifications

    Reads and completes instrument data sheets for transmitters, control valves, and analyzers to procurement and engineering standards. Accurate data sheets prevent specification errors during procurement.

  • Lesson 5 • Instrument Loop Diagrams

    Reads instrument loop diagrams to identify wiring, terminal numbers, cable routing, and junction box connections. Students use loop diagrams to trace faults and verify installation against design.

Certification

Your valid completion certificate

This course is for you:

  • Maintenance technician: looking to specialise in instrumentation and increase earning potential.

  • Instrumentation apprentice: requiring structured theoretical knowledge to supplement practical site experience.

  • Electrical technician seeking to cross-train in process measurement and control duties.

  • Recent engineering graduate: seeking practical field skills not covered in academic programmes.

  • Career changer: transitioning into the process industries from an unrelated technical trade.

  • Plant operator: aiming to deepen understanding of the instruments they monitor daily.

What our students say

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I like how the lessons are straight to the point and how I can change chapters and skip content that I don't need.
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