Diploma in Sustainable Mobility Solutions
Why this certificate program?
The Diploma in Sustainable Mobility Solutions
This program will provide you with the tools and knowledge necessary to lead the transformation towards a more efficient and environmentally friendly future of transportation. You will learn about the latest technologies and trends in electric vehicles, micromobility, smart public transport, and sustainable urban planning. This program will enable you to design and implement innovative strategies to reduce the carbon footprint, improve air quality, and create more livable cities.
This program will provide you with the tools and knowledge necessary to lead the transformation towards a more efficient and environmentally friendly future of transportation.
Differential Advantages
- Practical Approach: Development of real-world projects and case studies to apply acquired knowledge.
- Industry Experts: Masterclasses and workshops with leading professionals in sustainable mobility.
- Networking: Opportunity to connect with other professionals and companies in the sector.
- Comprehensive Vision: Addressing the technical, economic, social, and regulatory aspects of sustainable mobility.
- Flexibility: Online format with asynchronous content and optional synchronous sessions.
- Modality: Online
- Level: Diplomado
- Hours: 800 H
- Start date: 01-10-2026
Availability: 1 in stock
Who is it aimed at?
- Transport and logistics professionals looking to lead the transition towards more efficient and environmentally friendly mobility systems.
- Environmental and sustainability consultants wanting to expand their expertise in low-carbon mobility strategies and emerging technologies.
- Public officials and urban planners needing tools to design policies and infrastructure that promote sustainable mobility in their communities.
- Business owners and entrepreneurs interested in developing and implementing innovative solutions in the field of electric, shared, and autonomous mobility.
- Engineers and technicians looking to update their knowledge of the latest trends and technologies in sustainable mobility.
Flexibility and Practical Application
Designed for working professionals: flexible online format, real-world case studies, and practical tools for implementing sustainable mobility solutions.
Objectives and competencies

Design and implement electromobility strategies:
“Considering the available charging infrastructure, local regulations, and government incentives, to optimize costs and reduce the carbon footprint.”

Evaluate and optimize electric charging infrastructure:
Analyze energy efficiency, scalability and safety, proposing improvements based on regulations, best practices and data analysis.

Analyze and promote public policies for sustainable mobility:
“To investigate and evaluate the impact of various mobility policies on reducing emissions, congestion and inequality, proposing alternatives based on data and best practices.”

Managing vehicle fleets with sustainability and efficiency criteria:
Implement policies for route optimization, preventive maintenance, and selection of fuel-efficient vehicles, monitoring key performance indicators (KPIs) to reduce carbon footprint and operating costs.

Develop and implement innovative and safe micromobility projects:
“Design viable and scalable solutions, considering the existing infrastructure and the needs of the users.”

Evaluate the technical and economic feasibility of alternative transport systems:
Analyze the entire life cycle, from initial investment and operating costs to environmental impact and social benefits, using financial modeling and simulation tools.
Curriculum - Modules
- Comprehensive Maritime Incident Management: protocols, roles, and chain of command for coordinated response
- Operational Planning and Execution: briefing, routes, weather windows, and go/no-go criteria
- Rapid Risk Assessment: criticality matrix, scene control, and decision-making under pressure
- Operational Communication: VHF/GMDSS, standardized reports, and inter-agency liaison
- Tactical Mobility and Safe Boarding: RHIB maneuvers, approach, mooring, and recovery
- Equipment and Technologies: PPE, signaling, satellite tracking, and field data logging
- Immediate Care of the Affected: primary assessment, hypothermia, trauma, and stabilization for evacuation
- 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
- Introduction to Electromobility: History, evolution, and current state.
- Types of Electric Vehicles: BEV, HEV, PHEV, FCEV. Characteristics and differences.
- Batteries for Electric Vehicles: Types, technologies, thermal management, and safety.
- Charging Infrastructure: Connector types, charging levels (AC/DC), standards, and protocols.
- Smart Cities and Urban Mobility: Sustainable urban planning, smart grids, and V2G.
- Micromobility: Electric bicycles, scooters, and e-scooters.
- Environmental Impact of Electromobility: Life cycle, carbon footprint, and sustainability.
- Policies and Incentives for Electromobility: Subsidies, regulations, and standards.
- Emerging Technologies in Electromobility: Autonomous driving, connectivity, and big data.
- Business Models in Electromobility and Micromobility: Car sharing, bike sharing, and mobility services.
Regulation and road safety.
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- Introduction to Electrification: Need, Benefits, and Challenges.
- Fundamentals of Electrical Energy: Current, Voltage, Power, Types of Current.
- Components of an Electrical System: Generators, Transformers, Transmission Lines, Distribution.
- Conventional Electrical Infrastructure: Generation Plants, Substations, Distribution Networks.
- Renewable Energies for Electrification: Solar, Wind, Hydroelectric, Biomass.
- Energy Storage: Batteries, Pumped Storage Systems, Compressed Air.
- Microgrids: Definition, Components, Types, and Applications.
- Microgrid Design: Sizing, Component Selection, Integration of Renewables and Storage.
- Control and Management of Microgrids: control systems, demand management, energy optimization.
Regulatory and economic aspects of electrification and microgrids.
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- Introduction to Electromobility: Concepts, History, and Future.
- Types of Electric Vehicles: BEV, PHEV, HEV, and FCEV – Characteristics and Applications.
- Batteries for Electric Vehicles: Types, Chemistry, Performance, Safety, and Recycling.
- Charging Infrastructure: Connector Types, Charging Levels (AC/DC), Standards, and Protocols.
- Smart Grids and Electromobility: Integration, V2G (Vehicle-to-Grid), Demand Management, and Energy Storage.
- Public Policies and Regulation: Incentives, Emissions Regulations, Safety Standards, and Promotion of Electromobility.
- Smart Cities and Sustainable Mobility: Planning Urban, Electric Public Transport, Low Emission Zones.
- Communication and IoT Technologies in Electromobility: Remote Management, Monitoring, Security and Cybersecurity.
- Cost and Benefit Analysis: TCO (Total Cost of Ownership), Environmental Impact, Socioeconomic Benefits.
- Future Trends and Innovation: Autonomous Driving, New Business Models, Shared Electromobility.
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- Introduction to Electromobility: Current Landscape and Global Trends
- Types of Electric Vehicles: BEV, PHEV, HEV, FCEV – Characteristics and Applications
- Batteries: Technologies, Chemistry, Thermal Management, Lifespan, and Recycling
- Charging Infrastructure: Connector Types, Charging Levels (AC/DC), Standards
- Charging Infrastructure Planning: Location, Capacity, Accessibility, and Costs
- Smart Charging and V2G: Intelligent Charging Management and Bidirectionality
- Policies and Regulations: Incentives, Emission Standards, and Safety Regulations
- Business Models in Electromobility: Ownership, Leasing, Sharing, and Subscription
- Electric Fleet Management: TCO, Route Optimization, Maintenance, and Training
- Environmental and social impact of electromobility: emissions, noise, air quality, and equity
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- System Architecture and Components: Structural design, materials, and subsystems (mechanical, electrical, electronic, and fluid) with selection and assembly criteria for marine environments
- Fundamentals and Principles of Operation: Physical and engineering foundations (thermodynamics, fluid mechanics, electricity, control, and materials) that explain performance and operating limits
- Safety and Environmental (SHE): Risk analysis, PPE, LOTO, hazardous atmospheres, spill and waste management, and emergency response plans
- Applicable Regulations and Standards: IMO/ISO/IEC requirements and local regulations;
- Conformance criteria, certification, and best practices for operation and maintenance
- Inspection, testing, and diagnostics: Visual/dimensional inspection, functional testing, data analysis, and predictive techniques (vibration, thermography, fluid analysis) to identify root causes
- Preventive and predictive maintenance: Hourly/cycle/seasonal plans, lubrication, adjustments, calibrations, consumable replacement, post-service verification, and operational reliability
- Instrumentation, tools, and metrology: Measuring and testing equipment, diagnostic software, calibration and traceability; selection criteria, safe use, and storage
- 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.
- Introduction to Electromobility: history, evolution, and future
- Electric Vehicles (EVs): types, components, operation, and regulations
- Batteries: types, chemistry, thermal management, charging/discharging, lifespan, and recycling
- Charging Infrastructure: connector types, charging levels, location, and management
- Micromobility: electric scooters, bicycles, and other alternatives
- Smart Cities: definition, characteristics, technologies, and benefits
- Integration of Electromobility and Micromobility in the urban environment
- Smart Grids: energy management, Vehicle-to-Grid (V2G), and Storage
Regulations and Public Policies: Incentives, Restrictions, and Urban Planning
Case Studies: Examples of Success in the Implementation of Electromobility and Micromobility
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Career opportunities
- Sustainable Mobility Consultant: Design and implementation of urban and interurban mobility plans, feasibility analysis of sustainable transport projects.
- Sustainable Vehicle Fleet Manager: Optimization of the use of electric, hybrid, or low-emission vehicles, management of charging infrastructure.
- Renewable Energy Technician for Mobility: Development and maintenance of solar, wind, or hydrogen charging systems for vehicles.
- Sustainable Route and Logistics Planner: Optimization of routes to minimize the environmental impact of transporting goods and people.
- Micromobility Specialist: Management of shared bicycle and scooter systems, design of bike lanes and safe circulation zones for personal mobility vehicles.
- Sustainability Manager in Transport Companies: Implementation of emissions reduction strategies, management of Carbon footprint, sustainability report.
- Environmental educator in sustainable mobility: design and implementation of awareness and training programs on sustainable mobility for different audiences.
- Researcher in sustainable mobility technologies: development of new transportation solutions, analysis of public policies on mobility, evaluation of the environmental impact of different modes of transport.
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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
- Fundamentals of Sustainable Mobility: Explore the key principles and emerging trends in transport and urban planning.
- Innovative Technologies: Analyze electric, shared, and autonomous mobility solutions, including their technical and economic implications.
- Planning and Management: Learn to design and implement sustainable mobility strategies at the local and regional levels.
- Public Policy and Regulation: Understand the legal framework and policies that drive the adoption of sustainable mobility solutions.
- Success Stories and Best Practices: Discover inspiring examples of sustainable mobility projects at the local and regional levels. global.
Testimonials
This diploma program provided me with the tools and knowledge necessary to lead an electric mobility project at my company. Thanks to the training I received, we were able to implement a bike-sharing system that significantly reduced our carbon footprint and improved the quality of life for our employees. The program gave me a comprehensive view of sustainable mobility, from strategic planning to the implementation of concrete solutions, which proved fundamental to the project’s success.
The Diploma in Innovation in Maritime Transport exceeded my expectations. I acquired practical and up-to-date knowledge on the latest technological trends, route optimization, and sustainable management, which allowed me to lead a digitization project in my company that reduced delivery times by 15% and operating costs by 8%.
This diploma program provided me with the necessary tools to lead the transition to more sustainable mobility in my city. I applied the knowledge I gained to the design of a bike-sharing system, achieving a 15% reduction in car use in the test area during the first quarter.
This diploma program provided me with the necessary tools to lead the transition to more sustainable mobility in my city. I applied the knowledge I gained to the redesign of the bike lane network, achieving a 30% increase in its use and a 15% reduction in traffic congestion during peak hours.
Frequently asked questions
Public transport, bicycles, electric cars and walking.
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.
Mobility solutions that minimize environmental, social and economic impact, such as public transport, electromobility, cycling, micromobility, and sustainable urban planning.
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.
- Introduction to Electromobility: History, Evolution, and Current Landscape
- Electric Vehicles (EVs): Types, Main Components, and Operation
- EV Batteries: Technologies, Characteristics, Thermal Management, and Safety
- Charging Infrastructure: Types of Chargers, Standards, and Communication Protocols
- Urban Planning and Electromobility: Integrating Charging Infrastructure into Public Spaces
- Regulations and Standards: Safety Standards, Incentives, and Public Policies
- Costs and Benefits of Electromobility: Economic Analysis, Environmental and Social Impact
- Energy Management: Smart Grids, Storage, and Distributed Generation
- Case Studies: Examples of Successful Implementation of electromobility in different cities
- Future trends: autonomous vehicles, shared mobility and new technologies
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Request information
Complete the Application Form.
Attach your CV/degree certificate (if you have it to hand).
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.
Faculty
Eng. Tomás Riera
Full Professor
Eng. Tomás Riera
Full Professor
Eng. Sofía Marquina
Full Professor
Eng. Sofía Marquina
Full Professor
Eng. Javier Bañuls
Full Professor
Eng. Javier Bañuls
Full Professor
Dr. Nuria Llobregat
Full Professor
Dr. Nuria Llobregat
Full Professor
Dr. Pau Ferrer
Full Professor
Dr. Pau Ferrer
Full Professor
Cap. Javier Abaroa (MCA)
Full Professor
Cap. Javier Abaroa (MCA)
Full Professor