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Fluid Mechanics Training
More than 2 million students worldwide

Fluid Mechanics Training

Master the full spectrum of fluid mechanics, from hydrostatics and pipe networks to compressible flow and turbomachinery. This training gives engineers the analytical tools to solve real design problems with confidence. Whether you're sizing pumps, analyzing open channels, or running CFD simulations, every topic is grounded in practical application.

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What you will learn:

This course covers the core principles and advanced topics that working engineers need to analyze and design fluid systems. You will study conservation laws, viscous flow, boundary layer theory, pipe network analysis, open-channel hydraulics, and turbomachinery performance. Compressible flow fundamentals and computational fluid dynamics methods are also included. Supplementary modules address heat transfer, multiphase flow, hydraulic power systems, and numerical methods. By the end, you will have the technical depth to tackle complex fluid mechanics problems across multiple engineering disciplines.

How you study in practice Fluid Mechanics Training

How you practice Fluid Mechanics Training

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Course content

8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Fluid Mechanics

  • Lesson 1 • Fluid Statics and Pressure Concepts

    Covers pressure distribution in stationary fluids and hydrostatic forces. Connects Pascal's law and buoyancy to real engineering applications.

  • Lesson 2 • Nature and Properties of Fluids

    Defines fluids and distinguishes liquids from gases using measurable properties. Establishes vocabulary and property relationships used throughout the course.

  • Lesson 3 • Fluid Kinematics

    Describes fluid motion without considering forces, using velocity fields and flow visualization. Provides the kinematic framework for dynamic analysis in later chapters.

  • Lesson 4 • Dimensional Analysis and Similarity

    Introduces the Buckingham Pi theorem and dimensionless groups for scaling fluid problems. Enables model testing and result generalization across different scales.

Chapter 2See details

Conservation Laws in Fluid Flow

  • Lesson 1 • Continuity Equation and Mass Conservation

    Derives the continuity equation from mass conservation for steady and unsteady flows. Links velocity and cross-sectional area changes in ducts and pipes.

  • Lesson 2 • Linear Momentum Equation

    Applies Newton's second law to control volumes to compute forces on fluid systems. Covers reaction forces in nozzles, bends, and moving vanes.

  • Lesson 3 • Energy Equation and Head Losses

    Extends Bernoulli's equation to include pumps, turbines, and friction losses. Quantifies energy addition and extraction in real fluid systems.

  • Lesson 4 • Bernoulli Equation and Energy Concepts

    Derives Bernoulli's equation from energy conservation along a streamline. Applies it to flow measurement devices and pressure-velocity trade-offs.

  • Lesson 5 • Angular Momentum in Fluid Systems

    Applies the moment of momentum equation to rotating machinery and curved flow paths. Provides the basis for turbomachinery analysis introduced later.

Chapter 3See details

Viscous Flow and Boundary Layers

  • Lesson 1 • Pipe Flow: Laminar and Turbulent Regimes

    Distinguishes laminar from turbulent pipe flow using the Reynolds number. Covers the Hagen-Poiseuille law and turbulent velocity profiles for engineering calculations.

  • Lesson 2 • Drag and Lift on Immersed Bodies

    Quantifies drag and lift forces using drag coefficients and pressure distributions. Applies results to cylinders, spheres, and airfoil-shaped bodies.

  • Lesson 3 • Viscous Flow Between Parallel Surfaces

    Derives exact solutions for Couette and Poiseuille flows using the Navier-Stokes equations. Establishes the role of viscosity in generating velocity profiles and wall shear.

  • Lesson 4 • Turbulent Boundary Layers and Separation

    Analyzes turbulent boundary layer structure and adverse pressure gradient effects. Explains flow separation and its impact on drag and lift.

  • Lesson 5 • Boundary Layer Theory

    Introduces the boundary layer concept and its growth over flat plates and curved surfaces. Connects boundary layer thickness to drag and heat transfer in external flows.

Chapter 4See details

Pipe Systems and Network Analysis

  • Lesson 1 • Transient Flow and Water Hammer

    Analyzes pressure surges caused by rapid valve closure and pump trips. Introduces wave speed, pressure rise estimation, and surge protection strategies.

  • Lesson 2 • Pipe Network Methods

    Applies the Hardy Cross and nodal methods to solve looped pipe networks. Covers convergence criteria and practical simplifications for large systems.

  • Lesson 3 • Series and Parallel Pipe Configurations

    Solves flow distribution in series and parallel pipe arrangements using head-loss balancing. Builds toward full network analysis by establishing branch-flow principles.

  • Lesson 4 • Pump-System Interaction

    Determines the operating point by intersecting pump and system curves. Covers pump selection, series and parallel pump arrangements, and cavitation avoidance.

  • Lesson 5 • Single-Pipe System Design

    Applies the energy equation and Moody chart to size pipes for a given flow rate and pressure drop. Introduces iterative solution methods for unknown friction factors.

Chapter 5See details

Open-Channel Flow

  • Lesson 1 • Specific Energy and Critical Flow

    Analyzes specific energy diagrams to identify critical, subcritical, and supercritical states. Applies results to channel transitions, humps, and contractions.

  • Lesson 2 • Fundamentals of Open-Channel Flow

    Introduces the governing equations for flow with a free surface and defines key parameters. Establishes the Froude number as the primary flow classification tool.

  • Lesson 3 • Hydraulic Jump Analysis

    Applies the momentum equation to analyze the hydraulic jump as an energy dissipator. Computes sequent depths, energy loss, and jump length for design purposes.

  • Lesson 4 • Uniform Flow and Channel Design

    Applies Manning's equation to design channels for uniform flow conditions. Covers optimal cross-section shapes and freeboard allowances for practical channels.

  • Lesson 5 • Gradually Varied Flow Profiles

    Derives the gradually varied flow equation and classifies water surface profiles. Applies numerical integration to compute backwater curves in engineering projects.

Chapter 6See details

Turbomachinery Principles

  • Lesson 1 • Turbomachinery Classification and Terminology

    Categorizes turbomachines by energy transfer direction and flow path geometry. Introduces specific speed as the primary selection parameter for pumps and turbines.

  • Lesson 2 • Pump Performance and Similarity Laws

    Applies affinity laws to predict pump performance at different speeds and impeller sizes. Covers efficiency curves, best efficiency point, and pump selection criteria.

  • Lesson 3 • Fans, Blowers, and Compressors

    Extends turbomachinery principles to gas-handling machines with compressibility effects. Covers fan laws, surge, and stall in axial and centrifugal compressors.

  • Lesson 4 • Velocity Triangles and Euler Equation

    Constructs inlet and outlet velocity triangles to apply the Euler turbomachinery equation. Relates blade geometry to head generation and power consumption.

  • Lesson 5 • Hydraulic Turbines

    Analyzes Pelton, Francis, and Kaplan turbines using velocity triangles and power equations. Matches turbine type to available head and flow conditions.

Chapter 7See details

Compressible Flow Fundamentals

  • Lesson 1 • Oblique Shocks and Expansion Waves

    Extends shock analysis to oblique shocks and Prandtl-Meyer expansion fans. Applies theta-beta-Mach relations to supersonic inlet and nozzle design.

  • Lesson 2 • Isentropic Flow in Nozzles and Diffusers

    Applies isentropic flow tables to converging and converging-diverging nozzles. Identifies choked flow conditions and supersonic acceleration in diverging sections.

  • Lesson 3 • Fanno and Rayleigh Flow

    Analyzes adiabatic flow with friction (Fanno) and frictionless flow with heat addition (Rayleigh). Applies both models to duct design with choking constraints.

  • Lesson 4 • Thermodynamic Foundations for Gas Flow

    Reviews ideal gas law, specific heats, and isentropic process relations for compressible flow. Establishes stagnation properties as reference conditions for all compressible analyses.

  • Lesson 5 • Normal Shock Waves

    Derives Rankine-Hugoniot relations across a normal shock and quantifies property jumps. Applies normal shock tables to diffuser design and pitot tube corrections.

Chapter 8See details

Computational and Experimental Methods

  • Lesson 1 • CFD Workflow and Validation

    Outlines the complete CFD workflow from geometry preparation to post-processing. Emphasizes verification, validation, and uncertainty quantification for reliable results.

  • Lesson 2 • Turbulence Modeling in CFD

    Introduces RANS-based turbulence models and their applicability to industrial flows. Guides model selection based on flow physics and computational cost.

  • Lesson 3 • Introduction to Computational Fluid Dynamics

    Explains the finite volume method and the role of discretization in CFD solvers. Connects governing equations to numerical solution procedures used in commercial software.

  • Lesson 4 • Flow Measurement Instrumentation

    Covers velocity and flow rate measurement devices used in laboratory and field settings. Connects instrument selection to accuracy, range, and installation requirements.

  • Lesson 5 • Experimental Design and Data Analysis

    Applies dimensional analysis to plan experiments and scale results to full-size systems. Covers uncertainty analysis, data reduction, and reporting of experimental findings.

Certification

Your valid completion certificate

This course is for you:

  • Mechanical engineers seeking to deepen their fluid systems expertise.

  • Civil engineers who regularly work with hydraulic infrastructure projects.

  • Aerospace engineers needing a stronger grasp of compressible flow behavior.

  • Chemical engineers handling multiphase or non-Newtonian industrial flow problems.

  • Recent STEM graduates preparing for fluid-focused engineering roles and interviews.

  • Career changers entering water resources, HVAC, or energy engineering fields.

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