
Battery Energy Storage Systems Course
Master every layer of Battery Energy Storage Systems — from electrochemical fundamentals to grid integration, safety, and financial modeling. This course gives engineers, developers, and energy professionals the technical depth and practical tools to design, deploy, and operate real-world BESS projects. If you work in the energy storage industry, this is the most complete training available.
What you will learn:
You will build a thorough understanding of battery chemistries, system architecture, and power conversion equipment used in grid-scale BESS projects. You will learn how to size and design systems, configure dispatch and energy management strategies, and apply risk assessment methodologies to real installations. The course covers grid interconnection requirements, utility compliance, and communication protocols in detail. You will also develop skills in operations, preventive maintenance, and lifecycle management to maximize asset performance. Financial modeling, regulatory compliance, sustainability, and data analytics round out a complete professional skill set.
How you study in a practical way Battery Energy Storage Systems Course
How you practice Battery Energy Storage Systems Course
For companies who want to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 37 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Energy Storage
Fundamentals of Energy Storage
Lesson 1 • Battery Cell Architecture
Describes cell components, form factors, and internal construction. Connects cell-level design to module and system-level performance.
Lesson 2 • Electrochemical Storage Principles
Explains oxidation-reduction reactions, ion transport, and electrode chemistry. Provides the chemical foundation needed to understand battery operation.
Lesson 3 • Key Performance Metrics
Defines energy density, power density, cycle life, and round-trip efficiency. Students use these metrics to compare technologies throughout the course.
Lesson 4 • Energy Storage Concepts and Drivers
Covers the physics of energy storage, grid reliability needs, and renewable integration challenges. Establishes the business and technical case for BESS deployment.
Chapter 2HideHide detailsSee detailsBattery Technologies and Chemistries
Battery Technologies and Chemistries
Lesson 1 • Flow Battery Technologies
Covers vanadium redox, zinc-bromine, and iron-flow systems and their scalability. Highlights long-duration storage advantages over lithium-ion.
Lesson 2 • Alternative and Emerging Chemistries
Surveys sodium-ion, solid-state, and metal-air batteries at various maturity levels. Prepares students to evaluate future technology transitions.
Lesson 3 • Lithium-Ion Chemistry Variants
Examines NMC, LFP, NCA, and LTO cathode chemistries and their trade-offs. Directly informs technology selection decisions in later chapters.
Lesson 4 • Technology Selection Framework
Applies a structured decision matrix using application requirements, cost, and safety. Synthesizes chemistry knowledge into actionable procurement guidance.
Chapter 3HideHide detailsSee detailsBESS System Architecture and Components
BESS System Architecture and Components
Lesson 1 • Thermal Management Systems
Explains air-cooling, liquid-cooling, and phase-change thermal architectures. Connects thermal control to safety, performance, and battery longevity.
Lesson 2 • Cell to System Scaling
Traces the hierarchy from cell to module to rack to container. Explains how series and parallel configurations affect voltage and capacity.
Lesson 3 • Battery Management Systems
Details BMS functions including cell monitoring, balancing, and protection. Establishes BMS as the critical safety and performance layer of any BESS.
Lesson 4 • Auxiliary and Balance-of-Plant Systems
Covers fire suppression, HVAC, security, and auxiliary power systems. Completes the full system picture needed for site design and commissioning.
Lesson 5 • Power Conversion Systems
Covers bidirectional inverters, DC-DC converters, and grid interconnection equipment. Links power electronics to overall system efficiency and grid compliance.
Chapter 4HideHide detailsSee detailsBESS Control and Energy Management
BESS Control and Energy Management
Lesson 1 • Communication Protocols and Standards
Covers Modbus, DNP3, IEC 61850, and CAN bus protocols used in BESS. Ensures students can specify and troubleshoot communication architectures.
Lesson 2 • Dispatch and Optimization Strategies
Teaches rule-based, model predictive, and AI-driven dispatch algorithms. Students apply these strategies to maximize revenue and minimize degradation.
Lesson 3 • State Estimation Algorithms
Covers Coulomb counting, Kalman filtering, and model-based SOC/SOH estimation. Accurate state estimation underpins safe and efficient dispatch decisions.
Lesson 4 • Grid Services and Ancillary Functions
Explains frequency regulation, voltage support, peak shaving, and black-start capability. Connects control strategies to specific grid service revenue streams.
Lesson 5 • Control System Hierarchy
Maps local BMS control, site-level EMS, and grid-level SCADA layers. Clarifies how commands flow and how each layer interacts.
Chapter 5HideHide detailsSee detailsSafety, Hazards, and Risk Management
Safety, Hazards, and Risk Management
Lesson 1 • Risk Assessment Methodologies
Applies FMEA, HAZOP, and bow-tie analysis to BESS installations. Students produce a structured risk register for a sample project.
Lesson 2 • Electrical Hazards and Arc Flash
Covers DC arc flash, high-voltage shock risk, and ground fault hazards specific to BESS. Prepares students to apply electrical safety procedures on-site.
Lesson 3 • Thermal Runaway Mechanisms
Explains the chain reactions, trigger conditions, and propagation pathways of thermal runaway. Foundational for all subsequent safety design and response topics.
Lesson 4 • Hazardous Gas and Chemical Risks
Identifies toxic and flammable gases released during battery failure events. Connects gas hazards to ventilation design and emergency response planning.
Lesson 5 • Emergency Response Planning
Develops site-specific emergency response procedures for fire, spill, and electrical incidents. Integrates with first-responder coordination and regulatory notification.
Chapter 6HideHide detailsSee detailsGrid Integration and Interconnection
Grid Integration and Interconnection
Lesson 1 • Power Quality and Grid Codes
Explains voltage ride-through, frequency ride-through, and power factor requirements. Students verify BESS designs against applicable grid code criteria.
Lesson 2 • Point of Interconnection Design
Details transformer sizing, switchgear selection, and protection scheme design at the POI. Bridges system architecture knowledge to utility-facing design.
Lesson 3 • Grid Interconnection Requirements
Covers utility interconnection studies, protection relay settings, and metering requirements. Establishes the regulatory and technical baseline for grid connection.
Lesson 4 • Islanding and Microgrid Operation
Covers intentional islanding, microgrid control, and seamless transfer between grid-tied and island modes. Extends grid integration to off-grid and resilience applications.
Chapter 7HideHide detailsSee detailsBESS Project Development and Commissioning
BESS Project Development and Commissioning
Lesson 1 • System Sizing and Design
Applies energy and power sizing methodologies to match BESS to application requirements. Outputs a preliminary design specification for procurement.
Lesson 2 • Handover and Operational Readiness
Covers as-built documentation, operator training, and operational readiness reviews. Transitions the project from construction to sustained operations.
Lesson 3 • Procurement and Contracting
Covers RFP development, vendor evaluation, and contract structures for BESS supply. Prepares students to manage supplier relationships and contractual risk.
Lesson 4 • Installation and Commissioning
Details civil works, electrical installation, pre-commissioning checks, and functional testing. Ensures students can oversee safe and compliant BESS commissioning.
Lesson 5 • Site Assessment and Feasibility
Covers load analysis, grid capacity screening, and site constraint evaluation. Produces a feasibility report that justifies or rejects a BESS investment.
Chapter 8HideHide detailsSee detailsOperations, Maintenance, and Lifecycle Management
Operations, Maintenance, and Lifecycle Management
Lesson 1 • Performance Monitoring and Analytics
Uses SCADA data, KPI dashboards, and trend analysis to detect performance degradation. Enables proactive intervention before failures affect revenue.
Lesson 2 • Preventive Maintenance Programs
Defines inspection intervals, cleaning procedures, and component replacement schedules. Directly reduces unplanned downtime and extends asset life.
Lesson 3 • Capacity Fade and Degradation Management
Quantifies capacity fade mechanisms and applies mitigation strategies to slow degradation. Informs augmentation planning and contract performance guarantees.
Lesson 4 • End-of-Life and Repurposing Strategies
Evaluates second-life applications, repowering options, and responsible battery recycling. Completes the full asset lifecycle management perspective.
Lesson 5 • Fault Diagnosis and Corrective Maintenance
Applies systematic fault-tree analysis and diagnostic tools to identify and resolve BESS faults. Builds troubleshooting competency for field technicians and engineers.
Your valid completion certificate
This course is for you:
Electrical engineer: ready to specialize in grid-scale energy storage projects.
Renewable energy developer: needs technical depth to evaluate and deploy BESS assets.
Power systems consultant: expanding expertise to include battery storage advisory work.
Project manager: overseeing energy storage installations and needing stronger technical grounding.
Recent engineering graduate: entering the energy storage workforce with foundational knowledge.
Career changer: transitioning from oil and gas into the growing battery storage sector.
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