Renewable and Clean Energy Training Courses From $4500

Course Date

2026-10-19

2027-01-18

2027-04-19

2027-07-19

Course Cost

Note / Price varies according to the selected city

Price per participant, per week $4500 - $6500 (depends on the city)

Register 3 participants on the same course and pay for 2 only

Members NO. : 1
$4500

Members NO. : 2
$9000

Members NO. : 3
$9000 (pay for 2)

Categories

Training Course in Battery Storage Design for Renewable Energy Systems


Summary

Solar and wind can generate more power than a grid needs one hour, and far less the next. That gap between abundant supply and real demand is exactly what battery storage systems (BSS) are built to close – storing surplus energy when generation is high and releasing it the moment demand takes over.

This course on Battery Storage Design for Renewable Energy Systems, offered by the Arab British Fellowship Training Academy, equips participants with the technical grounding to design, size, and manage battery storage across residential, commercial, and utility-scale renewable projects, and to weigh its financial and environmental trade-offs.

Objectives and target group

Who Should Attend?

  • Energy engineers and technicians working on the design, installation, and maintenance of renewable energy systems.
  • Renewable energy consultants and planners advising on energy infrastructure projects.
  • Policymakers and regulators who need to understand storage's role in shaping policy and infrastructure.
  • Project managers, developers, scholars, and researchers active in energy storage and renewable technologies.

Programme Objectives

By the end of the programme, participants will be able to:

  • Explain how battery technologies interact with renewable energy sources.
  • Compare battery types used in renewable storage, and their benefits, limits, and applications.
  • Assess how battery storage supports grid stability, energy independence, and renewable integration.
  • Design a battery storage system suited to specific energy needs, and evaluate its financial and environmental trade-offs.

Course Content

Module 1: Why Renewable Energy Needs Battery Storage

  • Addressing intermittency in solar and wind generation.
  • Improving grid stability by balancing supply and demand.
  • Enabling energy independence and reducing fossil fuel reliance.

Module 2: How Battery Storage Actually Works

  • Charge and discharge cycles explained.
  • Energy density and capacity: how much can be stored and delivered.
  • Efficiency and losses in real-world operation.

Module 3: The Battery Storage Market Today

  • Growth drivers behind the battery storage industry.
  • The effect of government policy and incentives on adoption.
  • Key market players and the outlook ahead.

Module 4: Comparing Battery Chemistries

  • Lithium-ion: strengths, common applications, and limitations such as cost, lifespan, and sourcing.
  • Flow batteries: suited to long-duration, large-scale storage, with cost and complexity trade-offs.
  • Emerging options: sodium-ion, solid-state, and zinc-air batteries.

Module 5: Inside a Battery Storage System

  • Batteries, inverters, and energy management systems (EMS) explained.
  • How each component contributes to safe, efficient operation.
  • Converting stored DC power for grid or load use.

Module 6: Sizing a System to Fit the Need

  • Calculating required capacity from consumption, generation, and storage duration.
  • Peak demand, average daily load, and backup requirements.
  • Balancing energy supply with storage capacity.

Module 7: Designing for Residential, Commercial, and Utility Scale

  • Residential systems: cost and performance trade-offs for the home.
  • Commercial systems: meeting higher energy demands.
  • Utility-scale systems: grid-connected design for supply balancing and stability.

Module 8: Integrating Storage with Solar and Wind

  • Storing excess solar power for low-generation or high-demand periods.
  • Smoothing intermittent wind production with battery storage.
  • Enhancing grid stability across both resource types.

Module 9: Grid-Tied, Off-Grid, and Hybrid Configurations

  • Grid-tied systems: peak shaving and frequency regulation.
  • Off-grid systems: energy independence for remote locations.
  • Hybrid configurations combining grid connection with backup storage.

Module 10: Running the System – Cycling, Monitoring, and Environment

  • Managing depth of discharge (DoD) and charge/discharge rates to extend battery life.
  • Tracking State of Charge (SoC) and State of Health (SoH) with predictive maintenance.
  • Temperature and environmental effects on performance, and thermal management techniques.

Module 11: Is It Worth It? Cost-Benefit Analysis

  • Upfront investment, installation, and operating costs.
  • Payback period, ROI, and NPV as decision metrics.
  • Market prices and incentives that shape economic viability.

Module 12: Environmental Footprint and End-of-Life

  • Lifecycle assessment from production to disposal.
  • Recycling and repurposing batteries to cut environmental impact.
  • Raw material extraction and waste management challenges.

Module 13: Where Battery Storage Is Headed

  • Emerging technologies and innovations in storage systems.
  • Smart grids and AI in optimising storage integration.
  • Market growth projections and policy support shaping the future.

Related Course

Training Course in Battery Storage Design for Renewable Energy Systems (Online / Remote)

2026-10-19

2027-01-18

2027-04-19

2027-07-19

$2000