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Guided learning journeys that build knowledge step by step.
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This advanced professional learning path equips engineers with the knowledge to design and analyze power electronics systems for integrating energy storage into the grid. It covers converter topologies, grid connection requirements, power quality, and control strategies, emphasizing practical applications in battery energy storage systems (BESS).
This learning path equips professional engineers with a structured approach to identifying, assessing, and mitigating risks across energy storage projects. It covers technological, safety, financial, operational, and insurance risks, grounded in a solid understanding of storage systems and project finance.
This learning path guides professional engineers through the technical, economic, and safety aspects of repurposing retired electric vehicle (EV) batteries for stationary storage and other second-life applications. It covers battery technology fundamentals, state of health assessment, repurposing processes, safety considerations, and economic viability analysis.
This learning path equips undergraduate engineering students with the skills to analyze and evaluate the performance of energy storage systems (ESS). It covers fundamental concepts, key performance indicators, degradation mechanisms, efficiency measurement, and practical monitoring and reporting techniques.
This learning path equips undergraduate engineering students with the knowledge to apply key standards and safety requirements for battery energy storage systems (BESS). It covers foundational battery concepts, thermal runaway, relevant codes (UL, NFPA, IEC), and fire protection strategies, culminating in the practical application of these standards to real-world storage projects.
This learning path guides undergraduate engineering students through the complete lifecycle of an energy storage project, from initial feasibility and system design to financing, permitting, construction, commissioning, and operations. It emphasizes the integration of technical understanding with project management and business considerations, preparing learners for careers in the energy storage industry.
A learning path for undergraduate engineering students to understand the core manufacturing processes of lithium-ion batteries, including electrode coating, cell assembly, formation, quality control, and process automation. The path builds from foundational battery technology knowledge to advanced manufacturing concepts.
This learning path explores the role of energy storage in advancing energy equity, focusing on access, community storage, off-grid solutions, and affordability. It starts with foundational concepts of energy storage and energy equity, then examines specific applications and challenges.
This learning path guides undergraduate engineering students through the fundamentals of battery recycling and circular economy principles. It covers battery technology basics, recycling methods (pyrometallurgy and hydrometallurgy), second-life applications, collection systems, and material recovery, emphasizing the importance of sustainable practices.
This learning path equips undergraduate engineering students with the knowledge to analyze the environmental impacts of energy storage systems, focusing on batteries. It covers foundational environmental science, life cycle assessment (LCA) methodology, material extraction, manufacturing, use, recycling, and end-of-life management. By the end, learners will be able to conduct a cradle-to-grave environmental footprint analysis of storage technologies.