Diploma in New Materials and Naval Design

Why this certificate program?

The Diploma in New Materials and Naval Design

This program prepares you for the forefront of the industry, exploring the latest innovations in materials and their application in modern naval design. You will learn to select and apply advanced materials such as composites, high-strength alloys, and smart materials, optimizing vessel performance and sustainability. The program includes modeling and simulation, structural analysis, and the design of innovative components, with a focus on weight reduction, energy efficiency, and safety.

Differential Advantages

  • Practical Approach: Real-world case studies and design projects using cutting-edge materials.
  • Specialized Software: Use of modeling and simulation tools for the design and analysis of naval structures.
  • Sustainability: Strategies for material selection and vessel design with reduced environmental impact.
  • Industry Experts: Professors with extensive experience in the research, development, and application of new materials.
  • Networking: Connection with leading professionals and companies in the naval and advanced materials sectors.
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Diploma in New Materials and Naval Design

Availability: 1 in stock

Who is it aimed at?

  • Naval engineers and designers seeking to update their knowledge of cutting-edge materials and their application in naval design.
  • Naval architects interested in optimizing the performance, safety, and sustainability of vessels through the selection of innovative materials.
  • Maritime industry professionals wishing to understand trends in naval materials and design to improve efficiency and reduce costs.
  • Naval engineering and design students seeking a specialization in new materials and naval design to stand out in the job market.
  • Researchers and academics wishing to deepen their research and development of new materials for naval applications.

Flexibility of Study

Adapted to your pace: 24/7 content available, interactive discussion forums, and personalized tutoring for effective learning.

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Objectives and competencies

Implementing advanced materials in innovative naval designs:

“Selecting carbon fiber reinforced polymer matrix composites to reduce structural weight and improve fuel efficiency.”

Optimizing material selection for naval structural efficiency:

“Considering strength, weight, corrosion and life cycle cost, balancing innovation and regulations.”

Evaluate and mitigate the risks associated with the use of new materials in shipbuilding:

“Identify the toxicity, flammability, and corrosiveness of materials, implementing appropriate safety and ventilation protocols.”

Apply advanced design techniques for the integration of new materials in vessels:

“Select innovative materials (composites, alloys, nanotechnology) and optimize their bonding through FEA simulations and destructive/non-destructive testing.”

Managing shipbuilding projects with innovative materials:

Select and apply specific regulations and standards for construction with innovative materials, including the management of risks associated with their implementation and durability.

Develop sustainable naval engineering solutions using state-of-the-art materials:

“To research and select advanced composite materials and lightweight alloys to reduce weight and improve energy efficiency, considering their life cycle and environmental impact.”

Curriculum - Modules

  1. Comprehensive Maritime Incident Management: protocols, roles, and chain of command for coordinated response
  2. Operational Planning and Execution: briefing, routes, weather windows, and go/no-go criteria
  3. Rapid Risk Assessment: criticality matrix, scene control, and decision-making under pressure
  4. Operational Communication: VHF/GMDSS, standardized reports, and inter-agency liaison
  5. Tactical Mobility and Safe Boarding: RHIB maneuvers, approach, mooring, and recovery
  6. Equipment and Technologies: PPE, signaling, satellite tracking, and field data logging
  7. Immediate Care of the Affected: primary assessment, hypothermia, trauma, and stabilization for evacuation
  8. Adverse Environmental Conditions: swell, Visibility, flows, and operational mitigation

    Simulation and training: critical scenarios, use of VR/AR, and exercises with performance metrics

    Documentation and continuous improvement: lessons learned, indicators (MTTA/MTTR), and SOP updates

  1. Introduction to 3D Naval Modeling: Software and Tools (Rhino, Maxsurf, etc.)
  2. Basic Concepts of Naval Design: Hull Shapes, Stability, Buoyancy
  3. Surface Modeling: Curves, Splines, NURBS, Hull Creation
  4. Shape Optimization: Resistance, Hydrodynamics, Design Criteria
  5. Generating Shape Drawings: Sections, Elevations, Plan Views
  6. Introduction to Structural Analysis: Finite Element Analysis (FEA)
  7. Naval Design Standards and Codes: ABS, DNV, Lloyd’s Register
  8. Modeling Structural Elements: Frames, Stringers, Bulkheads, Decks
  9. Load Analysis: Waves, Hydrostatic Pressure, Loads of weight
  10. Model preparation for structural analysis: meshing, boundary conditions

  1. Introduction to 3D Modeling in the Naval Industry: Applications and Software
  2. Fundamentals of Structural Simulation: Finite Elements, Static and Dynamic Analysis
  3. 3D Modeling Software for Naval Structures: Rhinoceros, AutoCAD, FreeCAD
  4. Creating Complex Geometries: NURBS Surfaces, Polygonal Meshes, and Solids
  5. Materials and Properties: Definition, Assignment, and Behavior in Simulations
  6. Preparing Models for Simulation: Meshing, Simplification, and Optimization
  7. Structural Simulation: Stress, Strain, and Fatigue Analysis
  8. Modal Analysis: Vibrations and Natural Frequencies
  9. Topological Optimization: Design of Efficient and Lightweight Structures
  10. Validation and Verification of Models and simulations

  1. Introduction to Structural Simulation: Theoretical Foundations and Applications
  2. Advanced Geometric Modeling: Geometry Creation and Simplification Techniques
  3. Finite Element Selection: Element Types, Properties, and Considerations
  4. Material Definition: Constitutive Models, Properties, and Nonlinearities
  5. Boundary Conditions and Loads: Precise Application and Simulation of Real-World Scenarios
  6. Linear Static Analysis: Interpretation of Results, Stresses, Deformations, and Safety Factors
  7. Modal Analysis: Identification of Natural Frequencies and Vibration Modes
  8. Buckling Analysis: Prediction of Critical Loads and Strength Design
  9. Topological Optimization: Design Based on performance, weight reduction, and structural improvement.

    Model validation and verification: Ensuring the accuracy and reliability of results.

  1. Introduction to 3D modeling in the shipbuilding industry: history, applications, and relevant software.
  2. Fundamentals of 3D geometry: points, vectors, curves, surfaces, and solids.
  3. CAD modeling software: interface, basic tools, navigation, and file management.
  4. 3D modeling techniques: solid modeling, surface modeling, and parametric modeling.
  5. Modeling basic naval shapes: hull, superstructure, appendages, and structural elements.
  6. Mesh optimization and preparation for simulation: polygon reduction, smoothing, and closing geometries.
  7. Introduction to finite element analysis (FEA) simulation: basic principles, types of analysis, and software.
  8. Preparing the model for simulation: Definition of materials, boundary conditions, and loads.

    Simulation of naval structures: static, dynamic, fatigue, and impact analysis.

    Validation and verification of simulation results: data interpretation, sensitivity analysis, and design optimization.

  1. System Architecture and Components: Structural design, materials, and subsystems (mechanical, electrical, electronic, and fluid) with selection and assembly criteria for marine environments
  2. Fundamentals and Principles of Operation: Physical and engineering foundations (thermodynamics, fluid mechanics, electricity, control, and materials) that explain performance and operating limits
  3. Safety and Environmental (SHE): Risk analysis, PPE, LOTO, hazardous atmospheres, spill and waste management, and emergency response plans
  4. Applicable Regulations and Standards: IMO/ISO/IEC requirements and local regulations;
  5. Conformance criteria, certification, and best practices for operation and maintenance
  6. Inspection, testing, and diagnostics: Visual/dimensional inspection, functional testing, data analysis, and predictive techniques (vibration, thermography, fluid analysis) to identify root causes
  7. Preventive and predictive maintenance: Hourly/cycle/seasonal plans, lubrication, adjustments, calibrations, consumable replacement, post-service verification, and operational reliability
  8. Instrumentation, tools, and metrology: Measuring and testing equipment, diagnostic software, calibration and traceability; selection criteria, safe use, and storage
  9. Onboard integration and interfaces: Mechanical, electrical, fluid, and data compatibility; Sealing and watertightness, EMC/EMI, corrosion protection, and interoperability testing.

    Quality, acceptance testing, and commissioning: process and materials control, FAT/SAT, bench and sea trials, go/no-go criteria, and evidence documentation.

    Technical documentation and integrated practice: logs, checklists, reports, and a complete case study (safety → diagnosis → intervention → verification → report) applicable to any system.

  1. Introduction to Numerical Simulation in Naval Engineering: Objectives, Scope, and Limitations.
  2. Finite Element Method (FEM): Fundamentals, Formulations, and Applications in Naval Structures.
  3. Modeling Naval Geometry: Creation and Manipulation of CAD Models for Simulation.
  4. Linear Static Analysis: Loads, Constraints, and Calculation of Stresses and Deformations.
  5. Modal Analysis: Determination of Natural Frequencies and Modal Shapes of the Structure.
  6. Buckling Analysis: Evaluation of Structural Stability under Critical Loads.
  7. Dynamic Analysis: Response of the Structure to Time-Varying Loads (Waves, Impact).
  8. Structural Optimization: Optimization Methods and Design Variables and objective functions.
  9. Materials and failure criteria: Material selection, constitutive models, and structural integrity assessment.
  10. Validation and verification of results: Comparison with experimental data and design codes.

Career opportunities

  • Naval Designer: Development and optimization of naval structures, applying new materials to improve performance and efficiency.
  • Materials Engineer in the Naval Industry: Selection, evaluation, and application of new materials in the construction and repair of vessels.
  • Materials Innovation Consultant for the Naval Sector: Technical advice on the adoption of advanced technologies and materials for shipbuilding.
  • Additive Manufacturing (3D Printing) Specialist for Naval Components: Design and production of customized, high-performance naval parts using additive manufacturing.
  • Researcher and Developer of New Materials for Marine Applications: Participation in research projects for the creation and improvement of materials used in marine environments.
  • Quality Inspector in Shipbuilding: Ensuring quality and compliance with regulations in The application of new materials in shipbuilding.

    Naval Maintenance and Repair Technician: Application of advanced techniques and materials for the repair and maintenance of vessels.

    Marketing of New Materials for the Naval Industry: Promotion and sale of innovative materials to companies in the naval sector.

    “`

Admission requirements

Academic/professional profile:

Degree/Bachelor's degree in Nautical Science/Maritime Transport, Naval/Marine Engineering, or a related field; or proven professional experience in bridge/operations.

Language proficiency:

Recommended functional maritime English (SMCP) for simulations and technical materials.

Documentation:

Updated resume, copy of degree or seaman's book, ID card/passport, letter of motivation.

Technical requirements (for online):

Equipment with camera/microphone, stable connection, ≥ 24” monitor recommended for ECDIS/Radar-ARPA.

Admission process and dates

1. Online
application

(form + documents).

2. Academic review and interview

(profile/objectives/schedule compatibility).

3. Admission decision

(+ scholarship proposal if applicable).

4. Reservation of place

(deposit) and registration.

5. Induction

(access to campus, calendars, simulator guides).

Scholarships and grants

  • New Materials: Master the selection and application of innovative materials to optimize vessel performance and sustainability.
  • Advanced Naval Design: Apply state-of-the-art modeling and simulation tools to create efficient and safe naval designs.
  • Engineering and Manufacturing: Understand modern manufacturing processes and joining techniques that ensure the structural integrity of vessels.
  • Standards and Certification: Become familiar with international standards and certification processes to ensure the quality and compliance of naval designs.
  • Design Optimization: Learn to integrate energy efficiency and emissions reduction considerations into the design. Naval.
Boost your career in the naval sector with up-to-date knowledge and practical skills in design and new materials.

Testimonials

Frequently asked questions

Yes. The itinerary includes ECDIS/Radar-ARPA/BRM with harbor, ocean, fog, storm, and SAR scenarios.

Online with live sessions; hybrid option for simulator/practical placements through agreements.

Recommended functional SMCP. We offer support materials for standard phraseology.

Yes, with a relevant degree or experience in maritime/port operations. The admissions interview will confirm suitability.

Optional (3–6 months) through Companies & Collaborations and the Alumni Network.

Simulator practice (rubrics), defeat plans, SOPs, checklists, micro-tests and applied TFM.

A degree from Navalis Magna University + operational portfolio (tracks, SOPs, reports and KPIs) useful for audits and employment.

  1. Introduction to Materials Simulation and Modeling: Basic Concepts and Applications
  2. Density Functional Theory (DFT): Fundamentals, Approximations, and Applications
  3. Hartree-Fock and Post-Hartree-Fock Methods: Description and Limitations
  4. Classical Molecular Dynamics (MD): Integration Algorithms, Interatomic Potentials
  5. Ab Initio Molecular Dynamics (AIMD): Combining MD and DFT
  6. Monte Carlo Methods: Fundamentals and Applications in Materials Science
  7. Multiscale Modeling: Integration of Different Time and Length Scales
  8. Materials Characterization: Spectroscopic Simulation (e.g., XRD, TEM)
  9. Results Analysis: Visualization, Data Processing, and Validation
  10. Software and Tools: Introduction to Programs such as VASP, Quantum Espresso, and LAMMPS

Request information

  1. Complete the Application Form.

  2. Attach your CV/degree certificate (if you have it to hand).

  3. Indicate your preferred cohort (January/May/September) and whether you would like the hybrid option with simulator sessions.

    An academic advisor will contact you within 24–48 hours to guide you through the admission process, scholarships, and compatibility with your professional schedule.

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