
Naval Architect Training
Master the full technical scope of naval architecture, from hydrostatics and hull form development to structural analysis and propulsion system design. This training covers every core discipline a practising naval architect needs, grounded in industry methods and international regulatory standards. Whether you are entering the profession or advancing your expertise, this course delivers the rigorous, applied knowledge that shipyards and design offices demand.
What you'll learn:
You will gain solid command of vessel stability calculations, resistance and propulsion theory, structural design, and seakeeping analysis. The course guides you through the concept‑design process, showing how to turn owner requirements into a balanced, regulation‑compliant vessel proposal. You will get hands‑on experience with finite‑element analysis, CFD basics, and commercial hydrostatic software used in practice. Vessel systems design—including machinery, piping, electrical, and fire‑safety layouts—is fully covered. Environmental regulations, green propulsion options, and energy‑efficiency indices are addressed so your designs meet current and future compliance needs. Technical communication skills, such as report writing, drawing production, and design‑review presentations, are integrated throughout the programme.
How you study in practice Naval Architect Training
How you practise Naval Architect Training
For businesses looking 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 • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Naval Architecture
Foundations of Naval Architecture
Lesson 1 • Ship Geometry and Principal Dimensions
Defines length, breadth, depth, draught, and freeboard as design variables. Connects dimensional ratios to vessel type and performance expectations.
Lesson 2 • History and Scope of the Discipline
Traces naval architecture from ancient shipbuilding to modern computational design. Establishes professional context and motivates the technical content ahead.
Lesson 3 • Hydrostatics and Buoyancy Principles
Applies Archimedes' principle to floating bodies and derives displacement, reserve buoyancy, and waterplane properties. Forms the quantitative basis for stability analysis.
Lesson 4 • Introduction to Ship Stability
Introduces metacentric height, righting levers, and the conditions for initial and large-angle stability. Prepares students for detailed stability calculations in later chapters.
Chapter 2HideHide detailsSee detailsShip Stability Analysis
Ship Stability Analysis
Lesson 1 • Inclining Experiment and KG Determination
Covers the procedure, instrumentation, and data reduction for the inclining experiment. Accurate KG values anchor all subsequent stability assessments.
Lesson 2 • Dynamic Stability and Rolling Motion
Examines energy methods, roll period, and parametric resonance effects on vessel safety. Links dynamic behaviour to hull form and loading decisions.
Lesson 3 • Stability Software and Booklet Preparation
Applies commercial hydrostatics software to generate loading condition reports. Produces a compliant stability booklet meeting regulatory submission requirements.
Lesson 4 • Intact Stability Calculations
Derives GZ curves using wall-sided and numerical integration methods. Connects curve shape to vessel safety margins under operational loading.
Lesson 5 • Damaged Stability and Floodable Length
Analyses compartment flooding scenarios using lost buoyancy and added weight methods. Establishes subdivision requirements to meet survivability standards.
Chapter 3HideHide detailsSee detailsResistance and Propulsion
Resistance and Propulsion
Lesson 1 • Propeller Theory and Design
Applies actuator disk, blade element, and lifting line theories to propeller performance. Selects pitch, diameter, and blade number to maximise open-water efficiency.
Lesson 2 • Power Prediction and Speed Trials
Combines resistance and propulsion data to predict effective and brake power requirements. Validates predictions against speed trial measurements and corrects for trial conditions.
Lesson 3 • Model Testing and Extrapolation Methods
Explains towing tank procedures and Froude scaling laws for resistance extrapolation. Connects model results to full-scale predictions with correlation allowances.
Lesson 4 • Components of Ship Resistance
Decomposes total resistance into frictional, wave-making, and viscous pressure components. Identifies dominant resistance sources by hull form and speed regime.
Lesson 5 • Hull-Propeller Interaction
Quantifies wake fraction, thrust deduction, and relative rotative efficiency in behind-hull conditions. Integrates interaction factors into delivered power estimates.
Chapter 4HideHide detailsSee detailsShip Structural Design
Ship Structural Design
Lesson 1 • Fatigue and Fracture in Ship Structures
Introduces S-N curves, stress concentration factors, and fracture mechanics for marine structures. Guides detail design to achieve target fatigue life at critical joints.
Lesson 2 • Longitudinal Strength Analysis
Calculates hull girder bending moments and section modulus requirements using beam theory. Verifies compliance with minimum section modulus rules from classification societies.
Lesson 3 • Transverse Strength and Frame Design
Analyses transverse frames, floors, and web frames under hydrostatic and cargo pressure. Sizes structural members to resist local and global transverse loads.
Lesson 4 • Loads Acting on Ship Structures
Identifies still-water, wave-induced, and dynamic loads that govern structural design. Establishes the load envelope used throughout scantling calculations.
Lesson 5 • Plate and Stiffener Scantling Selection
Applies rule-based and direct calculation methods to select plate thickness and stiffener profiles. Balances structural adequacy against weight and material cost.
Chapter 5HideHide detailsSee detailsFinite Element Analysis for Ships
Finite Element Analysis for Ships
Lesson 1 • FEA Results Interpretation and Reporting
Develops skills in post-processing, result verification, and engineering judgment for FEA outputs. Produces structured reports meeting classification society submission standards.
Lesson 2 • Global Hull Girder FE Modeling
Constructs a coarse-mesh global model to extract hull girder bending and torsion responses. Validates model against hand-calculated section properties and rule values.
Lesson 3 • Local Fine-Mesh Stress Analysis
Applies sub-modeling techniques to resolve hot-spot stresses at critical structural details. Results feed directly into fatigue life assessments from the previous chapter.
Lesson 4 • Buckling and Ultimate Strength Analysis
Performs linear eigenvalue and nonlinear collapse analyses on stiffened panels and hull girders. Identifies critical buckling modes and post-buckling reserve capacity.
Lesson 5 • FEA Fundamentals for Marine Structures
Reviews stiffness matrix assembly, element types, and boundary conditions relevant to ship structures. Establishes modelling conventions used throughout the chapter.
Chapter 6HideHide detailsSee detailsShip Seakeeping and Maneuvering
Ship Seakeeping and Maneuvering
Lesson 1 • Seakeeping Performance Criteria
Applies operability criteria for acceleration, slamming, deck wetness, and seasickness. Evaluates hull form alternatives against mission-specific seakeeping requirements.
Lesson 2 • Manoeuvring Theory and Equations
Formulates linear and nonlinear manoeuvring equations using hydrodynamic derivatives. Predicts turning circle, zigzag, and stopping performance from hull geometry.
Lesson 3 • Ship Motion Theory and RAOs
Derives equations of motion for six degrees of freedom and computes response amplitude operators. Links RAO shapes to hull form, loading, and encounter frequency.
Lesson 4 • Ocean Wave Characterisation
Describes regular and irregular wave spectra used as seakeeping inputs. Connects sea state statistics to operational exposure and design wave selection.
Lesson 5 • Rudder and Steering System Design
Sizes rudder area, profile, and actuator torque to meet international manoeuvring standards. Integrates rudder design with hull form and propulsion arrangement.
Chapter 7HideHide detailsSee detailsShip Systems and Outfitting Design
Ship Systems and Outfitting Design
Lesson 1 • Piping Systems Design
Covers ballast, bilge, fuel, and seawater cooling system design and pipe sizing. Ensures system redundancy and compliance with pollution prevention requirements.
Lesson 2 • General Arrangement and Space Planning
Integrates all systems into a coherent general arrangement drawing balancing function, safety, and habitability. Applies ergonomic and regulatory standards to crew and passenger spaces.
Lesson 3 • Fire Safety and Life-Saving Systems
Designs fire detection, suppression, and structural fire protection systems per international safety codes. Integrates lifeboat, life raft, and evacuation arrangements into the general arrangement.
Lesson 4 • Machinery Space Layout and Selection
Selects main engines, gearboxes, and shaft arrangements based on power and space constraints. Optimises machinery room layout for access, maintenance, and weight distribution.
Lesson 5 • Electrical Power Systems
Calculates electrical load balance and sizes generators, switchboards, and distribution networks. Addresses emergency power requirements and redundancy for safety systems.
Chapter 8HideHide detailsSee detailsConcept Design and Design Spiral
Concept Design and Design Spiral
Lesson 1 • The Design Spiral and Iteration Process
Applies the design spiral model to progressively refine hull form, structure, and systems. Manages design closure by tracking convergence of weight, stability, and power.
Lesson 2 • Hull Form Development and Fairing
Develops a faired hull form from parametric offsets using CAD and surface modelling tools. Verifies hydrostatic properties against targets before advancing to detailed design.
Lesson 3 • Parametric Sizing and Initial Estimates
Uses regression models and parametric methods to estimate principal dimensions, displacement, and power. Generates a feasible starting point for the design spiral iteration.
Lesson 4 • Owner Requirements and Design Basis
Translates owner operational requirements into quantitative design parameters and constraints. Establishes the design basis document that governs all subsequent design decisions.
Lesson 5 • Design Evaluation and Proposal Presentation
Evaluates the concept design against technical, economic, and regulatory criteria. Prepares and presents a professional design proposal to a simulated owner review panel.
Your valid completion certificate
This course is for you:
Mechanical engineering graduate: seeking to specialize in the marine and offshore sector.
Junior naval architect: wanting structured depth beyond on-the-job training alone.
Offshore engineer: expanding expertise to include vessel design and stability work.
Career changer from civil or structural engineering: drawn to ship design challenges.
Maritime professional: aiming to move from operations into a technical design role.
Hobbyist boat designer: ready to replace intuition with rigorous engineering methods.
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