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Process Engineering Course
More than 2 million students worldwide

Process Engineering Course

5

Master the full scope of process engineering — from thermodynamics and fluid mechanics to reactor design, separation processes, and process control. This course gives you the technical depth and practical tools that industrial employers demand. Build the skills to design, analyse, and optimise real process systems from the ground up.

Dedika for businesses

What you will learn:

You will develop a rigorous foundation in material and energy balances, thermodynamics, and transport phenomena. You will learn to design and evaluate reactors, distillation columns, heat exchangers, and control systems. The course covers process simulation, equipment sizing, and flowsheet development following industry standards. You will also gain working knowledge of process safety, economic analysis, environmental compliance, and digital data tools. By the end, you will be equipped to contribute to every phase of a process engineering project.

How you study in practice Process Engineering Course

How you practise Process Engineering Course

For companies looking to train their team

With Dedika for businesses, the course includes exercises and examples tailored to your own business and the specific needs of your company.

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Course content

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

Chapter 1See details

Foundations of Process Engineering

  • Lesson 1 • Safety and Regulatory Foundations

    Covers inherent safety principles and regulatory compliance frameworks applicable across industries. Establishes a safety-first mindset from the outset.

  • Lesson 2 • Core Concepts and Terminology

    Introduces fundamental terms: streams, unit operations, and process variables. Provides shared language used throughout the entire course.

  • Lesson 3 • Units, Dimensions, and Engineering Data

    Reviews unit systems, dimensional analysis, and data quality assessment. Ensures accurate quantitative reasoning in all subsequent chapters.

  • Lesson 4 • The Process Engineering Discipline

    Defines process engineering scope, career paths, and industry sectors. Anchors all subsequent technical content in professional context.

  • Lesson 5 • Process Systems Thinking

    Teaches holistic analysis of interconnected process units and feedback loops. Builds the mental model needed for troubleshooting and design.

Chapter 2See details

Material and Energy Balances

  • Lesson 1 • Combined Material and Energy Balances

    Solves simultaneous mass and energy balances for multi-unit processes. Prepares students for integrated process design and simulation.

  • Lesson 2 • Transient Balance Analysis

    Applies time-dependent balances to startup, shutdown, and upset scenarios. Bridges steady-state theory with dynamic process behaviour.

  • Lesson 3 • Principles of Mass Conservation

    Derives the general mass balance equation and applies it to single-component systems. Forms the quantitative backbone of all process calculations.

  • Lesson 4 • Multicomponent and Reactive Systems

    Extends mass balances to mixtures and chemical reactions using stoichiometry. Enables analysis of reactors and separation processes.

  • Lesson 5 • Energy Balance Fundamentals

    Introduces enthalpy, heat capacity, and the first law applied to open systems. Connects thermodynamic theory to practical heat duty calculations.

Chapter 3See details

Thermodynamics for Process Engineers

  • Lesson 1 • Power Cycles and Thermodynamic Efficiency

    Evaluates Carnot, Rankine, and refrigeration cycles for process utility systems. Supports energy integration and utility optimisation decisions.

  • Lesson 2 • Phase Equilibria and VLE

    Analyses vapour-liquid equilibrium using activity coefficients and fugacity. Directly supports distillation and flash calculation design.

  • Lesson 3 • Chemical Reaction Equilibrium

    Calculates equilibrium conversion using Gibbs energy minimisation and equilibrium constants. Links thermodynamics to reactor design decisions.

  • Lesson 4 • Thermodynamic Properties and State Functions

    Reviews internal energy, entropy, Gibbs energy, and their relationships. Establishes property foundations required for phase and reaction analysis.

  • Lesson 5 • Equations of State and Fluid Behaviour

    Covers ideal gas, cubic, and advanced equations of state for real fluids. Enables accurate property estimation across temperature and pressure ranges.

Chapter 4See details

Fluid Mechanics and Transport Phenomena

  • Lesson 1 • Mass Transfer and Diffusion

    Introduces Fick's law, film theory, and mass transfer coefficients for separation design. Bridges transport phenomena to absorption and distillation operations.

  • Lesson 2 • Heat Transfer Mechanisms

    Analyses conduction, convection, and radiation in process equipment. Supports heat exchanger design and thermal insulation decisions.

  • Lesson 3 • Fluid Flow Fundamentals

    Applies Bernoulli's equation, continuity, and momentum balances to pipe flow. Provides the basis for pump and compressor sizing.

  • Lesson 4 • Pumps, Compressors, and Piping Systems

    Covers pump curves, NPSH, compressor types, and piping network analysis. Enables selection and sizing of fluid-moving equipment.

  • Lesson 5 • Heat Exchanger Design and Rating

    Applies LMTD and NTU-effectiveness methods to shell-and-tube and plate exchangers. Connects heat transfer theory to equipment specification.

Chapter 5See details

Chemical Reaction Engineering

  • Lesson 1 • Multiple Reactions and Selectivity

    Optimises reactor configuration for parallel and series reaction networks. Maximises desired product yield while minimising byproduct formation.

  • Lesson 2 • Reaction Kinetics and Rate Laws

    Derives rate expressions from elementary and complex mechanisms. Provides the kinetic data foundation for all reactor design calculations.

  • Lesson 3 • Ideal Reactor Models

    Develops design equations for batch, CSTR, and PFR reactors. Enables volume and residence time calculations for target conversion.

  • Lesson 4 • Heterogeneous and Catalytic Reactors

    Analyses fixed-bed, fluidised-bed, and slurry reactors with mass transfer limitations. Addresses catalyst deactivation and regeneration strategies.

  • Lesson 5 • Non-Ideal Flow and Residence Time Distribution

    Characterises real reactor behaviour using RTD analysis and mixing models. Corrects ideal reactor assumptions for industrial equipment.

Chapter 6See details

Separation Processes and Unit Operations

  • Lesson 1 • Membrane and Adsorption Separations

    Evaluates reverse osmosis, ultrafiltration, and pressure swing adsorption processes. Addresses emerging separation technologies for energy-efficient processing.

  • Lesson 2 • Liquid-Liquid Extraction

    Analyses solvent extraction using distribution coefficients and stage calculations. Covers mixer-settler and extraction column equipment selection.

  • Lesson 3 • Absorption and Stripping Operations

    Designs gas-liquid contactors using operating lines and transfer unit methods. Connects mass transfer theory to column height and diameter calculations.

  • Lesson 4 • Solid-Fluid Separation Techniques

    Covers filtration, centrifugation, cyclones, and drying for solid-containing streams. Completes the separation toolkit for particulate process systems.

  • Lesson 5 • Distillation Principles and Design

    Applies McCabe-Thiele and Fenske-Underwood-Gilliland methods to binary and multicomponent distillation. Covers tray and packed column design.

Chapter 7See details

Process Design and Simulation

  • Lesson 1 • Process Flowsheet Development

    Constructs block flow diagrams, PFDs, and P&IDs following industry drafting standards. Establishes the design documentation foundation for all engineering deliverables.

  • Lesson 2 • Equipment Sizing and Specification

    Translates simulation outputs into equipment datasheets for vessels, exchangers, and columns. Bridges process design to procurement and detailed engineering.

  • Lesson 3 • Design Optimisation and Alternatives

    Evaluates design alternatives using economic and environmental objective functions. Develops the decision-making framework for final design selection.

  • Lesson 4 • Process Simulation Tools and Methods

    Configures steady-state simulators, selects thermodynamic packages, and validates results. Enables rapid evaluation of design alternatives and sensitivity studies.

  • Lesson 5 • Process Integration and Heat Recovery

    Applies pinch analysis to minimise utility consumption and maximise heat recovery. Reduces operating costs through systematic energy integration.

Chapter 8See details

Process Control and Operations

  • Lesson 1 • Process Safety and Alarm Management

    Applies safety instrumented system design principles and alarm rationalisation methods. Ensures control system design meets functional safety requirements.

  • Lesson 2 • Process Dynamics and Transfer Functions

    Models process responses using first-order, second-order, and dead-time transfer functions. Provides the dynamic foundation for control system design.

  • Lesson 3 • Feedback Control Fundamentals

    Designs PID controllers and applies tuning rules to achieve stable closed-loop performance. Covers the most widely used control structure in process industries.

  • Lesson 4 • Instrumentation and Control System Design

    Selects sensors, transmitters, and final control elements for process loops. Translates control strategy into a functional instrumentation design.

  • Lesson 5 • Advanced Control Strategies

    Implements cascade, ratio, feedforward, and override control for complex processes. Extends basic PID capability to handle disturbances and constraints.

Certification

Your valid completion certificate

This course is for you:

  • Recent engineering graduate: eager to connect academic theory to industrial practice.

  • Mid-career technician: ready to formalise process knowledge and advance professionally.

  • Mechanical engineer: looking to expand expertise into chemical process system design.

  • Career changer: transitioning from a science background into an engineering design role.

  • Plant operations professional: seeking the engineering foundation behind daily process decisions.

  • Environmental or safety specialist: wanting deeper process knowledge to strengthen technical credibility.

What our students say

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