
Instrumental Engineering Course
Master every layer of industrial instrumentation — from sensor physics and signal conditioning to control valves, fieldbus networks, and safety systems. This course gives engineers and technicians the practical knowledge to design, calibrate, commission, and maintain instrumentation systems that keep process plants running safely and efficiently.
What you will learn:
You will build a complete, working knowledge of industrial instrumentation from the ground up. The course covers measurement science, sensor technologies, signal conditioning, and analog and digital transmission standards. You will learn how to calibrate instruments using industry-accepted procedures, size and select control valves, and configure PID controllers. Advanced topics include Safety Instrumented Systems, industrial cybersecurity, IIoT integration, and reliability engineering. By the end, you will be able to read and develop P&IDs, produce instrument data sheets, and lead commissioning activities on real projects.
How you study in a practical way Instrumental Engineering Course
How you practice Instrumental Engineering Course
For companies who want to train their team
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 • 41 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Instrumental Engineering
Foundations of Instrumental Engineering
Lesson 1 • Introduction to Measurement Science
Covers fundamental measurement concepts including units, standards, and traceability. Anchors all subsequent instrument selection and calibration topics.
Lesson 2 • Signal Types and Representations
Defines analog, digital, and discrete signal forms used in instrumentation. Provides the signal literacy needed for transducer and transmitter chapters.
Lesson 3 • Engineering Units and Conversions
Applies unit conversion methods across pressure, temperature, flow, and level variables. Prevents calculation errors in later design and calibration work.
Lesson 4 • Instrument Classification and Selection
Categorizes instruments by measured variable, output type, and application domain. Enables informed selection decisions throughout the course.
Lesson 5 • Safety and Regulatory Fundamentals
Introduces hazardous area classifications, intrinsic safety concepts, and functional safety standards. Establishes the safety mindset required for all practical work.
Chapter 2HideHide detailsSee detailsSensors and Transducers
Sensors and Transducers
Lesson 1 • Temperature Sensing Technologies
Covers thermocouples, RTDs, thermistors, and infrared sensors with their operating ranges. Connects sensor physics to accuracy and installation trade-offs.
Lesson 2 • Pressure Sensing Technologies
Explains gauge, absolute, differential, and vacuum pressure measurement methods. Builds the pressure knowledge base for transmitter and process control chapters.
Lesson 3 • Flow Measurement Principles
Surveys differential pressure, velocity, volumetric, and mass flow technologies. Prepares students to evaluate flow meter suitability for fluid properties.
Lesson 4 • Level Measurement Technologies
Reviews contact and non-contact level sensing methods for liquids and solids. Links level measurement to inventory control and safety applications.
Lesson 5 • Analytical and Specialty Sensors
Introduces pH, conductivity, dissolved oxygen, and vibration sensors. Expands sensor knowledge to quality and condition monitoring applications.
Chapter 3HideHide detailsSee detailsSignal Conditioning and Transmission
Signal Conditioning and Transmission
Lesson 1 • Noise Reduction and Shielding
Identifies electromagnetic and electrostatic interference sources and applies mitigation techniques. Ensures signal integrity in electrically noisy industrial environments.
Lesson 2 • Amplification and Filtering
Covers operational amplifier configurations, gain calculations, and filter design for sensor signals. Directly supports accurate signal transmission over process distances.
Lesson 3 • Analog-to-Digital Conversion
Explains sampling theory, resolution, and ADC architectures used in data acquisition. Bridges analog sensor outputs to digital control and monitoring systems.
Lesson 4 • Transmitter Configuration and Ranging
Applies zero, span, and damping adjustments to smart transmitters. Connects signal conditioning theory to practical field device commissioning.
Lesson 5 • Analog Signal Standards
Explains 4–20 mA current loop, 0–10 V, and HART signal standards used in process plants. Establishes the transmission baseline for fieldbus and digital chapters.
Chapter 4HideHide detailsSee detailsCalibration Theory and Practice
Calibration Theory and Practice
Lesson 1 • Calibration Concepts and Terminology
Defines accuracy, precision, repeatability, hysteresis, and linearity in calibration context. Provides the vocabulary needed to interpret calibration certificates and specifications.
Lesson 2 • Calibration Procedures and Documentation
Applies five-point as-found and as-left calibration procedures with proper documentation. Meets quality management system requirements for traceability and audit readiness.
Lesson 3 • Calibration Equipment and Standards
Surveys pressure calibrators, temperature baths, multifunction calibrators, and reference standards. Ensures correct equipment selection for each instrument type.
Lesson 4 • Measurement Uncertainty Analysis
Calculates combined and expanded uncertainty using GUM methodology. Enables engineers to validate that calibration results meet required accuracy specifications.
Lesson 5 • Calibration Management Systems
Implements calibration scheduling, recall systems, and database management for instrument fleets. Supports compliance with quality management and asset integrity programs.
Chapter 5HideHide detailsSee detailsControl Valves and Final Control Elements
Control Valves and Final Control Elements
Lesson 1 • Valve Diagnostics and Maintenance
Applies partial stroke testing, signature analysis, and packing maintenance procedures. Reduces unplanned shutdowns through proactive valve health monitoring.
Lesson 2 • Control Valve Fundamentals
Introduces valve body types, trim configurations, and flow characteristics. Establishes the mechanical foundation for valve sizing and selection topics.
Lesson 3 • Other Final Control Elements
Surveys variable speed drives, dampers, and on-off solenoid valves as control endpoints. Broadens final element knowledge beyond throttling control valves.
Lesson 4 • Valve Sizing and Selection
Applies Cv and Kv sizing equations for liquid, gas, and steam service. Ensures correct valve sizing to prevent cavitation, flashing, and noise.
Lesson 5 • Actuators and Positioners
Covers pneumatic, electric, and hydraulic actuators paired with smart valve positioners. Links actuator selection to control loop performance requirements.
Chapter 6HideHide detailsSee detailsProcess Control Fundamentals
Process Control Fundamentals
Lesson 1 • Advanced Control Strategies
Introduces cascade, ratio, feedforward, and override control configurations. Extends single-loop skills to multi-loop architectures common in process plants.
Lesson 2 • PID Tuning Methods
Applies Ziegler-Nichols, lambda, and IMC tuning rules to representative process models. Develops hands-on tuning judgment for self-regulating and integrating processes.
Lesson 3 • Control Loop Performance Assessment
Evaluates loop performance using IAE, ISE, and oscillation metrics with diagnostic tools. Enables engineers to identify and resolve poor-performing control loops.
Lesson 4 • Control Loop Architecture
Defines open-loop and closed-loop control structures with block diagram representations. Provides the conceptual framework for all subsequent control strategy topics.
Lesson 5 • PID Controller Theory
Explains proportional, integral, and derivative actions with their mathematical expressions. Builds the theoretical basis for practical PID tuning in the next section.
Chapter 7HideHide detailsSee detailsIndustrial Communication and Fieldbus Systems
Industrial Communication and Fieldbus Systems
Lesson 1 • Network Troubleshooting and Diagnostics
Applies oscilloscope, network analyzer, and protocol diagnostic tools to fieldbus faults. Reduces communication downtime through systematic fault isolation methods.
Lesson 2 • Foundation Fieldbus and PROFIBUS
Explains FF H1, FF HSE, and PROFIBUS PA/DP architectures and segment design rules. Enables correct segment wiring, termination, and device commissioning.
Lesson 3 • Industrial Network Fundamentals
Introduces OSI model layers, network topologies, and industrial Ethernet basics. Provides the networking foundation for fieldbus protocol and integration topics.
Lesson 4 • Modbus and OPC Communication
Covers Modbus RTU/TCP register mapping and OPC-UA data exchange standards. Enables integration of instruments with SCADA, historians, and enterprise systems.
Lesson 5 • HART and WirelessHART Protocols
Details HART command structure, multidrop wiring, and WirelessHART mesh networking. Connects legacy 4–20 mA infrastructure to digital asset management capabilities.
Chapter 8HideHide detailsSee detailsInstrumentation System Design and Integration
Instrumentation System Design and Integration
Lesson 1 • Instrument Specification and Data Sheets
Creates instrument data sheets covering process conditions, materials, and performance requirements. Translates process design inputs into procurement-ready specifications.
Lesson 2 • Installation and Hook-Up Design
Applies instrument hook-up standards for impulse lines, process connections, and mounting. Ensures measurement accuracy and safety through correct installation practices.
Lesson 3 • P&ID Interpretation and Development
Reads and develops piping and instrumentation diagrams using standard symbology. Connects instrument specifications to process design and safety documentation.
Lesson 4 • Instrument Loop Drawings and Wiring
Produces instrument loop diagrams showing field devices, junction boxes, and control room terminations. Supports installation, commissioning, and maintenance activities.
Lesson 5 • Instrument Asset Management
Implements instrument register maintenance, spare parts strategy, and lifecycle planning. Sustains instrumentation reliability and availability throughout plant operating life.
Lesson 6 • Commissioning and Pre-Startup Testing
Executes loop checking, functional testing, and pre-startup acceptance procedures. Validates that installed instrumentation meets design intent before process startup.
Your valid completion certificate
This course is for you:
Instrumentation technicians: ready to deepen theory behind their daily hands-on work.
Process engineers: needing stronger measurement and control loop fundamentals.
Electrical engineers: transitioning into process instrumentation and control roles.
Maintenance engineers: aiming to reduce downtime through better diagnostic knowledge.
Engineering students: building practical industrial skills alongside academic coursework.
Career changers: entering the process industries from related technical backgrounds.
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