Battery and Accumulator Integration Course

Why this course?

The Battery and Accumulator Integration

This course will provide you with the knowledge and practical skills necessary to design, install, and maintain efficient and safe energy storage systems. You will learn everything from the fundamentals of electrochemistry to the appropriate selection of batteries for various applications, including solar systems, electric vehicles, and power backup. This program will enable you to master battery sizing, wiring, protection, and monitoring techniques, ensuring optimal performance and a long system lifespan.

Differential Advantages

  • In-depth Knowledge: Master battery chemistry, battery types (Li-ion, lead-acid, etc.), and their characteristics.
  • Practical Design: Learn to size batteries and storage systems for different energy needs.
  • Safe Installation: Understand safety standards and best practices for battery installation and connection.
  • Efficient Maintenance: Learn to monitor performance, diagnose problems, and perform preventive maintenance.
  • Real-World Applications: Study successful case studies in solar systems, electric vehicles, and power backup.

Battery and Accumulator Integration Course

Availability: 1 in stock

Who is it aimed at?

  • Maintenance technicians seeking to specialize in the installation and diagnosis of energy storage systems.
  • Electrical and electronic engineers interested in the integration of batteries into renewable energy systems and electric vehicles.
  • Photovoltaic system installers who need knowledge of storage and energy efficiency optimization.
  • Automotive professionals focused on the electrification, design, and maintenance of hybrid and electric vehicles.
  • Students and recent graduates in technical fields seeking a in-demand professional profile in the energy transition.

Flexibility and applicability
Accessible learning materials, practical case studies simulated and focused on current regulations for immediate professional implementation.

Objectives and competencies

Manage storage and transport logistics:

“Optimize routes and resources, minimizing costs and times, while complying with safety and environmental regulations.”

Evaluate the condition and lifespan of batteries and accumulators:

“Through load/discharge testing, impedance analysis, and review of usage/maintenance history.”

Apply disassembly and reconditioning techniques:

“Following technical manuals and safety regulations, ensuring the correct identification, cleaning and evaluation of components for their subsequent reuse or disposal.”

Comply with current environmental and safety regulations:

“Manage hazardous and non-hazardous waste according to protocols, minimizing environmental impact and ensuring proper documentation.”

Optimize waste management and recycling:

“Implement strategies for minimization, efficient separation at source and use of recyclable materials, complying with environmental regulations and promoting the circular economy.”

Diagnose faults and perform preventive maintenance:

“Identify the root cause of failures using diagrams, manuals and diagnostic tools, prioritizing safety and regulatory compliance.”

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 batteries and accumulators: Types, chemistry, and applications.
  2. Battery life cycle: Manufacturing, use, charging, and discharging.
  3. Regulations and legislation: European directives and international standards.
  4. Collection and transport of used batteries: Reverse logistics and safety.
  5. Treatment and recycling: Material recovery technologies.
  6. Reuse and second life: Applications of reconditioned batteries.
  7. Environmental impact assessment: Life cycle assessment (LCA).
  8. Circular economy: Sustainable business models for batteries.
  9. Innovation and the future: New technologies and materials for more sustainable batteries.
  10. Case studies: Examples of integrated battery management at a global level.

  1. Introduction to Batteries and Accumulators: Types, Chemistry, and Applications
  2. Fundamentals of Electrochemistry: Redox Reactions, Cell Potential, and Electrolytes
  3. Battery Life Cycle: Charging, Discharging, Depth of Discharge (DoD), and Useful Life
  4. State of Health (SoH) Analysis: Evaluation Methods and Degradation Factors
  5. Collection and Sorting: Regulations, Logistics, and Handling Safety
  6. Pretreatment Processes: Disassembly, Deactivation, and Component Separation
  7. Recycling Technologies: Hydrometallurgy, Pyrometallurgy, and Direct Recycling
  8. Material Recovery: Recovery of Valuable Metals and Reuse of components.
  9. Environmental Impact Assessment: Life Cycle Assessment (LCA) and sustainability.
  10. Applicable regulations and legislation: European directives and national regulations.

  1. Introduction to Energy Storage Systems (ESS): Types and Applications
  2. Battery Chemistry: Types (lithium-ion, lead-acid, flow), characteristics, and performance
  3. ESS Components: Cells, modules, racks, BMS (Battery Management System)
  4. Battery Integration: Series and parallel connection, cell balancing, thermal design
  5. BMS (Battery Management System): Functions, key parameters, control algorithms
  6. Safety Standards and Regulations: IEC, UL, UNE, local and international regulations
  7. Risks in Energy Storage Systems: Thermal runaway, overcharging, short circuits, fires
  8. Measurements of Safety: Fire detection, suppression, ventilation, fail-safe design

    Safe Installation and Maintenance: Procedures, tools, personal protective equipment (PPE)

    End-of-Life Battery Management: Recycling, second life, environmental considerations

  1. Introduction to batteries and accumulators: Types, chemistry, and applications.
  2. Battery life cycle: Stages, influencing factors, and useful life.
  3. Battery condition assessment: Testing, measurements, and diagnostics.
  4. Collection and safe transport of used batteries: Regulations and best practices.
  5. Proper storage: Environmental conditions, safety, and risk prevention.
  6. Reconditioning and reuse processes: Technologies and economic viability.
  7. Battery recycling: Technologies, material recovery, and waste management.
  8. Legal framework and environmental regulations: Directives, regulations, and extended producer responsibility (EPR).
  9. Analysis of the Environmental impact: Carbon footprint, emissions, and ecotoxicity.
  10. Circular economy and sustainability in battery management.

  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.

Plan de estudio - Módulos

  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 batteries and accumulators: Types, chemistry, and applications.
  2. Battery life cycle: Manufacturing, use, charging, and discharging.
  3. Regulations and legislation: European directives and international standards.
  4. Collection and transport of used batteries: Reverse logistics and safety.
  5. Treatment and recycling: Material recovery technologies.
  6. Reuse and second life: Applications of reconditioned batteries.
  7. Environmental impact assessment: Life cycle assessment (LCA).
  8. Circular economy: Sustainable business models for batteries.
  9. Innovation and the future: New technologies and materials for more sustainable batteries.
  10. Case studies: Examples of integrated battery management at a global level.

  1. Introduction to Batteries and Accumulators: Types, Chemistry, and Applications
  2. Fundamentals of Electrochemistry: Redox Reactions, Cell Potential, and Electrolytes
  3. Battery Life Cycle: Charging, Discharging, Depth of Discharge (DoD), and Useful Life
  4. State of Health (SoH) Analysis: Evaluation Methods and Degradation Factors
  5. Collection and Sorting: Regulations, Logistics, and Handling Safety
  6. Pretreatment Processes: Disassembly, Deactivation, and Component Separation
  7. Recycling Technologies: Hydrometallurgy, Pyrometallurgy, and Direct Recycling
  8. Material Recovery: Recovery of Valuable Metals and Reuse of components.
  9. Environmental Impact Assessment: Life Cycle Assessment (LCA) and sustainability.
  10. Applicable regulations and legislation: European directives and national regulations.

  1. Introduction to Energy Storage Systems (ESS): Types and Applications
  2. Battery Chemistry: Types (lithium-ion, lead-acid, flow), characteristics, and performance
  3. ESS Components: Cells, modules, racks, BMS (Battery Management System)
  4. Battery Integration: Series and parallel connection, cell balancing, thermal design
  5. BMS (Battery Management System): Functions, key parameters, control algorithms
  6. Safety Standards and Regulations: IEC, UL, UNE, local and international regulations
  7. Risks in Energy Storage Systems: Thermal runaway, overcharging, short circuits, fires
  8. Measurements of Safety: Fire detection, suppression, ventilation, fail-safe design

    Safe Installation and Maintenance: Procedures, tools, personal protective equipment (PPE)

    End-of-Life Battery Management: Recycling, second life, environmental considerations

  1. Introduction to batteries and accumulators: Types, chemistry, and applications.
  2. Battery life cycle: Stages, influencing factors, and useful life.
  3. Battery condition assessment: Testing, measurements, and diagnostics.
  4. Collection and safe transport of used batteries: Regulations and best practices.
  5. Proper storage: Environmental conditions, safety, and risk prevention.
  6. Reconditioning and reuse processes: Technologies and economic viability.
  7. Battery recycling: Technologies, material recovery, and waste management.
  8. Legal framework and environmental regulations: Directives, regulations, and extended producer responsibility (EPR).
  9. Analysis of the Environmental impact: Carbon footprint, emissions, and ecotoxicity.
  10. Circular economy and sustainability in battery management.

  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 Batteries and Accumulators: Types, Chemistry, and Applications.
  2. Battery Life Cycle: Manufacturing, Use, Discharge, Recharge, and End of Life.
  3. Collection and Transportation: Regulations, Packaging, and Safety.
  4. Safe Storage: Environmental Conditions, Risk Prevention, and Emergency Response.
  5. Treatment and Recycling: Technologies, Processes, and Material Recovery.
  6. Environmental Legislation: Applicable Local, National, and International Regulations.
  7. Environmental Impact Assessment: Life Cycle Assessment (LCA) and Carbon Footprint.
  8. Battery Reuse and Second Life: Applications, Feasibility, and Business Models.
  9. Circular Economy: Design for Sustainability, Reduction, Reuse, and Recycling.
  10. Extended Producer Responsibility (EPR) and management systems.

  1. Introduction to Batteries and Accumulators: Types, Components, and Operation.
  2. Battery Chemistry: Electrochemical Reactions, Active Materials, and Electrolytes.
  3. Battery Life Cycle: Manufacturing, Use, Reuse, and Recycling.
  4. Environmental Impact Assessment of Batteries: Material Extraction, Production Processes, and Emissions.
  5. Environmental Legislation Applicable to Batteries and Accumulators: Directives, Regulations, and Standards.
  6. Battery Waste Management: Selective Collection, Transport, and Storage.
  7. Battery Recycling Technologies: Treatment Processes, Material Recovery, and Valorization.
  8. Life Cycle Assessment (LCA) of Batteries: Methodology and Applications.
  9. Circular economy strategies for batteries: Eco-design, reuse, and remanufacturing.
  10. Case studies: Examples of good practices in the environmental management of batteries.

  1. Introduction to Batteries and Accumulators: Types, Uses, and Regulations
  2. Battery Chemistry: Fundamentals, Reactions, and Components
  3. Battery Life Cycle: Manufacturing, Use, Discharge, Recharge, and End-of-Life
  4. State of Health (SOH) Assessment: Measurement and Diagnostic Methods
  5. Battery Safety: Electrical, Chemical, and Thermal Hazards
  6. Safe Transport and Storage of Batteries and Accumulators
  7. Environmental Management: Recycling, Reuse, and Final Disposal
  8. Environmental Regulations: Directives and Regulations on Batteries and Waste
  9. Environmental Impact Assessment of Batteries: Life Cycle Assessment (LCA)
  10. Circular Economy and Sustainability in the battery industry

  1. Introduction to batteries and accumulators: Types, chemistry, and applications.
  2. Battery life cycle: Charging, discharging, aging, and factors that affect it.
  3. Battery safety: Electrical, chemical, and thermal hazards; Preventive measures.
  4. Battery regulations and standards: Safety, transport, and storage standards.

    Battery management: BMS systems, monitoring, optimization, and maintenance.

    Lead-acid batteries: Operation, maintenance, and recycling.

    Lithium-ion batteries: Advantages, disadvantages, safety, and thermal management.

    Alternatives to batteries: Fuel cells, supercapacitors, and hybrid systems.

    Battery recycling and second life: Processes, material recovery, and the circular economy.

    Environmental impact of batteries: Life cycle analysis, carbon footprint, and sustainability strategies.

Career opportunities

  • Installation and Maintenance Technician: Installation, configuration, and maintenance of batteries and accumulators in various environments.
  • Energy Storage Systems Specialist: Design, development, and management of battery-based energy storage systems.
  • Quality Control Technician: Inspection and verification of the quality of batteries and accumulators during manufacturing and storage.
  • Technical Sales Consultant: Sales and technical advice on batteries and accumulators to industrial, commercial, and residential customers.
  • Renewable Energy Technician: Integration of batteries into solar, wind, and other renewable energy systems.
  • Automotive Technician: Diagnosis, repair, and replacement of batteries in electric and hybrid vehicles.
  • Battery Recycling Operator: Management and processing of used batteries for the recovery of valuable materials.

    Research and Development: Participation in research projects to improve battery efficiency and lifespan.

    “`

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.

5. Induction

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: Master the essential principles of batteries and accumulators, from internal chemistry to modern architectures.
  • Integration: Learn best practices for safe and efficient integration in various systems and applications.
  • Thermal Management: Delve into advanced thermal management techniques to optimize performance and extend battery life.
  • Safety: Understand the critical safety regulations and standards for handling and managing batteries.
  • Maintenance: Acquire practical skills in preventive and corrective maintenance to ensure long-term reliability.
Apply your knowledge to real projects and contributes to a sustainable energy future.

Testimonials

Frequently asked questions

To store electrical energy in chemical form for later use.

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 batteries and accumulators: Types, chemistry, and applications.
  2. Battery life cycle: Charging, discharging, aging, and factors that affect it.
  3. Battery safety: Electrical, chemical, and thermal hazards; Preventive measures.
  4. Battery regulations and standards: Safety, transport, and storage standards.

    Battery management: BMS systems, monitoring, optimization, and maintenance.

    Lead-acid batteries: Operation, maintenance, and recycling.

    Lithium-ion batteries: Advantages, disadvantages, safety, and thermal management.

    Alternatives to batteries: Fuel cells, supercapacitors, and hybrid systems.

    Battery recycling and second life: Processes, material recovery, and the circular economy.

    Environmental impact of batteries: Life cycle analysis, carbon footprint, and sustainability strategies.

Request information

  1. Complete the Application Form
  2. Attach your CV/Qualifications (if you have them to hand).
  3. Indicate your preferred cohort (January/May/September) and whether you want 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. Translated with DeepL.com (free version)
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