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Computational Naval Architecture Course
More than 2 million students worldwide

Computational Naval Architecture Course

Master the computational tools that define modern ship design — from RANS-based hydrodynamics to finite element structural assessment. This course delivers rigorous CFD and FEA workflows grounded in naval architecture fundamentals, turbulence modeling, and classification society requirements. Engineers who complete it are equipped to run industry-level simulations, validate results, and optimize vessel performance with confidence.

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What you will learn:

  • Apply RANS solvers to predict calm-water resistance, wave patterns, and propeller performance accurately.

  • Build global and local FEA models for hull girder strength, fatigue life, and buckling assessment.

  • Configure free-surface multiphase CFD simulations for seakeeping and added resistance in waves.

  • Implement structured, unstructured, and overset meshing strategies tailored to marine simulation requirements.

  • Integrate CFD pressure loads with FEA structural models through one-way and two-way coupling workflows.

  • Automate parametric simulation pipelines using Python scripting, surrogate modeling, and gradient-based optimization.

How you study in practice Computational Naval Architecture Course

How you practise Computational Naval Architecture Course

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Course Content

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

Chapter 1See details

Foundations of Naval Architecture

  • Lesson 1 • Ship Geometry and Hull Form

    Covers lines plans, offsets, and parametric hull descriptors. Establishes geometric vocabulary used in mesh generation and structural modeling.

  • Lesson 2 • Resistance and Propulsion Fundamentals

    Introduces frictional, wave, and viscous pressure resistance components. Links resistance decomposition to the flow physics modeled in CFD.

  • Lesson 3 • Hydrostatics and Stability Basics

    Derives buoyancy, displacement, and metacentric height from first principles. Provides the static pressure loading context for later FEA hull analyses.

  • Lesson 4 • Structural Loads on Ship Hulls

    Identifies still-water and wave-induced bending moments, shear forces, and local pressure loads. Frames the load cases that drive FEA model setup.

  • Lesson 5 • Regulatory and Classification Framework

    Surveys classification society rules and international conventions governing structural and hydrodynamic design. Contextualizes compliance targets for CFD and FEA outputs.

Chapter 2See details

Governing Equations and Fluid Mechanics

  • Lesson 1 • Conservation Laws in Fluid Mechanics

    Presents mass, momentum, and energy conservation in integral and differential forms. These equations are the mathematical core of every CFD solver used later.

  • Lesson 2 • Dimensional Analysis and Similarity

    Applies Buckingham Pi theorem to derive non-dimensional groups for ship flows. Enables correct scaling between model tests and full-scale CFD predictions.

  • Lesson 3 • Turbulence Modeling Approaches

    Compares RANS, LES, and hybrid turbulence closures for marine applications. Equips students to choose models balancing accuracy and computational cost.

  • Lesson 4 • Free-Surface and Multiphase Flow

    Introduces Volume of Fluid and level-set methods for air-water interface capture. Essential for wave resistance and seakeeping CFD simulations.

  • Lesson 5 • Boundary Layers and Flow Regimes

    Analyzes laminar-to-turbulent transition, boundary layer growth, and separation. Directly informs near-wall mesh resolution decisions in ship CFD.

Chapter 3See details

Structural Mechanics for FEA

  • Lesson 1 • Stress, Strain, and Elasticity

    Defines stress and strain tensors, Hooke's law, and material constitutive relations. Provides the continuum mechanics foundation for FEA element formulations.

  • Lesson 2 • Fatigue and Fracture Mechanics

    Introduces S-N curves, stress concentration factors, and fracture mechanics for marine structural details. Prepares students for fatigue life FEA post-processing.

  • Lesson 3 • Dynamics and Vibration Fundamentals

    Presents natural frequencies, mode shapes, and forced response for ship structural systems. Grounds modal and harmonic FEA analyses performed in later chapters.

  • Lesson 4 • Beam, Plate, and Shell Theory

    Derives bending, shear, and membrane behavior for structural elements common in ship structures. Connects analytical solutions to FEA element selection.

  • Lesson 5 • Failure Criteria and Material Limits

    Covers von Mises, Tresca, and buckling criteria for steel and composite ship materials. Defines acceptance thresholds applied when post-processing FEA results.

Chapter 4See details

Numerical Methods and Discretization

  • Lesson 1 • Verification and Validation Principles

    Defines V&V methodology, grid convergence index, and uncertainty quantification for numerical simulations. Establishes the quality assurance framework used throughout the course.

  • Lesson 2 • Finite Volume Method for CFD

    Formulates convection-diffusion equations on control volumes with flux interpolation. Directly maps to the discretization used in marine RANS solvers.

  • Lesson 3 • Solver Algorithms and Linear Systems

    Compares direct and iterative solvers for large sparse systems arising in CFD and FEA. Guides solver selection based on problem size and conditioning.

  • Lesson 4 • Finite Difference Methods

    Derives explicit and implicit finite difference schemes for model PDEs. Introduces truncation error and stability analysis as precursors to CFD solver theory.

  • Lesson 5 • Finite Element Method Fundamentals

    Derives the weak form, shape functions, and stiffness matrix assembly for structural FEA. Provides the mathematical basis for all FEA software used in the course.

Chapter 5See details

Mesh Generation for Marine Simulations

  • Lesson 1 • Structured and Block-Structured Meshing

    Builds O-grid and H-grid topologies around hull forms for high-quality boundary layer resolution. Structured meshes maximize CFD accuracy for resistance predictions.

  • Lesson 2 • Unstructured and Hybrid Meshing

    Generates tetrahedral, polyhedral, and prism-layer meshes for complex appendages and superstructures. Hybrid meshing balances automation with near-wall accuracy.

  • Lesson 3 • Overset and Dynamic Meshing

    Implements overset (Chimera) grids and morphing meshes for ship motions and propeller rotation. Required for seakeeping and self-propulsion CFD simulations.

  • Lesson 4 • FEA Mesh for Ship Structures

    Creates shell, solid, and beam element meshes for global and local structural models. Mesh density and element type selection directly control FEA accuracy.

  • Lesson 5 • Geometry Preparation and Cleanup

    Addresses CAD import, surface repair, and feature suppression for simulation-ready geometry. Poor geometry is the leading cause of mesh failure in marine projects.

Chapter 6See details

CFD Simulation of Ship Hydrodynamics

  • Lesson 1 • Resistance and Wave-Making Simulation

    Sets up RANS simulations for calm-water resistance including free-surface wave patterns. Covers domain sizing, boundary conditions, and result extraction.

  • Lesson 2 • Appendage and Resistance Optimization

    Analyzes rudder, bilge keel, and bulbous bow performance using parametric CFD studies. Demonstrates how CFD replaces or supplements towing tank testing.

  • Lesson 3 • Propeller and Self-Propulsion CFD

    Models propeller performance using body-force, MRF, and sliding mesh approaches. Integrates propeller and hull interaction for self-propulsion point prediction.

  • Lesson 4 • Seakeeping and Ship Motions CFD

    Simulates ship response in regular and irregular waves using 6-DOF motion coupling. Validates against strip theory and model test data.

  • Lesson 5 • Cavitation and Underwater Noise

    Applies multiphase cavitation models to propeller blade surfaces and predicts pressure fluctuations. Links cavitation inception to structural excitation and radiated noise.

Chapter 7See details

FEA of Ship Structures

  • Lesson 1 • Dynamic and Vibration FEA

    Executes modal, harmonic, and transient analyses for propeller-induced and slamming excitations. Validates natural frequencies against vibration acceptance criteria.

  • Lesson 2 • Buckling and Ultimate Strength Analysis

    Performs linear eigenvalue and nonlinear progressive collapse analyses for stiffened panels and hull girder. Identifies critical buckling modes under combined loading.

  • Lesson 3 • Global Hull Girder FEA

    Builds full-ship finite element models for longitudinal strength and deflection under rule load cases. Establishes the coarse global model used as a basis for local refinement.

  • Lesson 4 • Local and Fine-Mesh Structural Analysis

    Refines critical structural details using sub-modeling and fine-mesh techniques. Captures stress concentrations at brackets, cutouts, and weld toes.

  • Lesson 5 • Fatigue Life Assessment by FEA

    Applies hot-spot and notch stress methods with spectral fatigue loading to predict structural life. Integrates wave load statistics from seakeeping analysis.

Chapter 8See details

Coupled CFD-FEA and Design Optimization

  • Lesson 1 • Design of Experiments and Surrogate Models

    Applies Latin hypercube sampling and response surface methods to reduce CFD-FEA evaluation cost. Enables efficient exploration of large design spaces.

  • Lesson 2 • Gradient-Based Shape Optimization

    Uses adjoint sensitivity methods to compute hull shape gradients for resistance minimization. Demonstrates automated geometry deformation and constraint handling.

  • Lesson 3 • Multi-Objective Optimization Workflows

    Applies evolutionary algorithms to balance resistance, structural weight, and seakeeping objectives. Produces Pareto fronts for design trade-off decision support.

  • Lesson 4 • Hydroelastic Coupling Methods

    Implements one-way and two-way fluid-structure coupling for flexible hull and propeller problems. Covers data transfer, interface mapping, and convergence of coupled iterations.

  • Lesson 5 • High-Performance Computing for Coupled Simulations

    Configures parallel CFD-FEA workflows on HPC clusters and cloud platforms. Addresses domain decomposition, load balancing, and I/O management for large-scale runs.

Certification

Your valid completion certificate

This course is for you:

  • Naval architect: wants to move beyond empirical methods into simulation-based design.

  • Structural engineer: seeks to apply FEA rigorously to marine and offshore structures.

  • Mechanical engineer: transitioning into the shipbuilding or maritime technology sector.

  • Offshore engineer: needs hydrodynamic and structural analysis skills for vessel projects.

  • Graduate student: building a computational specialization in naval architecture or ocean engineering.

  • Defense contractor: supporting naval vessel design programs requiring validated simulation workflows.

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