Nairobi, Kenya

254728269396

Electric Vehicles (EV) Infrastructure & Renewables Interoperability Training

The rapid acceleration of electric vehicle (EV) adoption represents a critical milestone in the clean energy transition, yet it introduces significant localized demand and capacity constraints on exis...

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ONSITE OR VIRTUAL

Aug 24 - Aug 28
Programme Overview
Training Description

Who Should Attend

This course is ideal for;

  1. Electrical Engineers
  2. Urban Planners
  3. Utility and Grid Managers
  4. Automotive Industry Professionals
  5. Renewable Energy Project Developers
  6. Transportation and Mobility Planners
  7. EV Charging Station Operators
  8. Policymakers and Regulators
  9. Data Scientists and Analysts
  10. Students in Engineering and Energy
Session Objectives
  • Master the core principles of EV infrastructure and renewable energy integration.
  • Learn about the unique challenges of grid capacity and demand management.
  • Understand the key technical and communication standards for interoperability.
  • Grasp the complexities of smart charging and vehicle-to-grid (V2G) technology.
  • Develop proficiency in designing charging solutions with on-site renewables.
  • Explore best practices for demand response and load shifting.
  • Learn about robust approaches to the business models of EV-grid services.
  • Identify the critical legal, regulatory, and policy frameworks.
  • Develop skills in using data to optimize charging and energy use.
  • Formulate strategies for building a cohesive and resilient energy ecosystem.
About the Course

The rapid acceleration of electric vehicle (EV) adoption represents a critical milestone in the clean energy transition, yet it introduces significant localized demand and capacity constraints on existing power grids. Our EV Charging Infrastructure & Renewable Energy Grid Integration Training Course addresses this operational challenge by equipping power engineers, urban planners, and clean-tech leads with the technical and commercial strategies required to integrate EV charging networks directly with renewable energy systems. Guided by smart grid and e-mobility specialists, participants examine smart charging communication protocols, Vehicle-to-Grid (V2G) bidirectional flows, distribution network capacity planning, and site-level storage architectures. By combining technical standards with economic viability models, this program prepares energy professionals to convert EV fleets into flexible grid assets, mitigate peak demand impacts, and accelerate the development of a resilient, low-carbon transport ecosystem.

Curriculum & Topics

15 Topics | 10 Days

  • play Subtopic 1.1: The role of EVs in the energy transition

  • play Subtopic 1.2: Global and regional EV adoption trends

  • play Subtopic 1.3: The impact of EV charging on the grid

  • play Subtopic 1.4: The need for clean charging and renewable integration

  • play Subtopic 1.5: The concept of a unified transportation and energy system

  • play Subtopic 2.1: An overview of EV charging levels (Level 1, 2, DC Fast)

  • play Subtopic 2.2: The components of a charging station

  • play Subtopic 2.3: The importance of interoperability

  • play Subtopic 2.4: Key communication protocols (OCPP, ISO 15118)

  • play Subtopic 2.5: The role of a clear and focused research question

  • play Subtopic 3.1: The issue of peak demand and grid stress

  • play Subtopic 3.2: The intermittency of solar and wind energy

  • play Subtopic 3.3: The role of battery energy storage systems (BESS)

  • play Subtopic 3.4: The importance of a "risk and mitigation" plan

  • play Subtopic 3.5: Strategic charger placement and distribution

  • play Subtopic 4.1: The principles of smart charging

  • play Subtopic 4.2: Using price signals and time-of-use tariffs

  • play Subtopic 4.3: The concept of demand response for EVs

  • play Subtopic 4.4: The importance of a simple scorecard and a dashboard

  • play Subtopic 4.5: Managing fleet charging for efficiency

  • play Subtopic 5.1: The difference between smart charging and V2G

  • play Subtopic 5.2: The technical requirements for V2G

  • play Subtopic 5.3: The use of V2G for grid stability and ancillary services

  • play Subtopic 5.4: The role of a "data story map"

  • play Subtopic 5.5: Vehicle-to-Home (V2H) and Vehicle-to-Building (V2B) applications

  • play Subtopic 6.1: The economic value of grid services from EVs

  • play Subtopic 6.2: The role of an aggregator in a V2G network

  • play Subtopic 6.3: Revenue streams for EV charging operators

  • play Subtopic 6.4: The importance of a program's theory of change

  • play Subtopic 6.5: The business case for on-site renewables at charging hubs

  • play Subtopic 7.1: Site assessment for solar and wind potential

  • play Subtopic 7.2: The importance of a "stakeholder analysis"

  • play Subtopic 7.3: Modeling the impact on local grid infrastructure

  • play Subtopic 7.4: The role of GIS in infrastructure planning

  • play Subtopic 7.5: The use of a simple scorecard and a dashboard

  • play Subtopic 8.1: The design of solar canopies and wind turbines for charging stations

  • play Subtopic 8.2: Sizing a battery storage system for a charging hub

  • play Subtopic 8.3: The concept of an EV-centric microgrid

  • play Subtopic 8.4: The importance of a clear and consistent reporting style

  • play Subtopic 8.5: Integrating microgrids with the main power grid

  • play Subtopic 9.1: The role of a "risk and mitigation" plan

  • play Subtopic 9.2: Collecting and analyzing charging data

  • play Subtopic 9.3: Using data to optimize charging schedules

  • play Subtopic 9.4: The role of AI and ML in forecasting demand

  • play Subtopic 9.5: The importance of a "stakeholder analysis"

  • play Subtopic 10.1: The unique security vulnerabilities of charging stations

  • play Subtopic 10.2: Securing communication between the EV and the charger

  • play Subtopic 10.3: Protecting the grid from cyber threats via EVs

  • play Subtopic 10.4: The importance of a clear and compelling KPI

  • play Subtopic 10.5: Best practices for securing EV infrastructure

  • play Subtopic 11.1: Case study: A V2G pilot program in a corporate fleet

  • play Subtopic 11.2: Case study: A solar-powered public charging hub

  • play Subtopic 11.3: Case study: A large-scale utility demand response program

  • play Subtopic 11.4: Lessons learned from global projects

  • play Subtopic 11.5: The future of integrated systems

  • play Subtopic 12.1: The role of government incentives and subsidies

  • play Subtopic 12.2: Regulatory frameworks for V2G services

  • play Subtopic 12.3: Building codes and zoning for EV infrastructure

  • play Subtopic 12.4: The importance of a clear and focused research question

  • play Subtopic 12.5: The evolution of international standards

  • play Subtopic 13.1: The challenge of charger and vehicle compatibility

  • play Subtopic 13.2: The role of an open-source framework

  • play Subtopic 13.3: The importance of a "risk and mitigation" plan

  • play Subtopic 13.4: The future of plug-and-charge and seamless payments

  • play Subtopic 13.5: The role of a "data story map"

  • play Subtopic 14.1: The lifecycle of charging hardware

  • play Subtopic 14.2: Best practices for remote monitoring and diagnostics

  • play Subtopic 14.3: The role of a "data story map"

  • play Subtopic 14.4: The use of a simple scorecard and a dashboard

  • play Subtopic 14.5: Predictive maintenance strategies

  • play Subtopic 15.1: The rise of autonomous EVs and their impact on charging

  • play Subtopic 15.2: The future of personal and public transportation

  • play Subtopic 15.3: The role of electrification beyond vehicles (e.g., ships, planes)

  • play Subtopic 15.4: The importance of a program's theory of change

  • play Subtopic 15.5: Global trends in sustainable mobility

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$ 3,000

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This Programme Includes

Certificate of completion

Training manual

Reference materials

10 o'clock tea

Lunch

4 o'clock tea

Course Highlights
  • icon 10 Days Intensive Training

  • icon 15 Core Learning Topics

  • icon 10 Days Professional Sessions

  • icon Training Expert-led Delivery

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Our primary residential and corporate training programs are hosted in premium, fully equipped conference facilities in Nairobi, Kenya. We also coordinate regional and international training locations depending on the specific cohort and organizational requirements. Exact venue details are communicated in your admission letter.

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