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Digital Twins for Renewable Energy O&M Management

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Free Download Digital Twins for Renewable Energy O&M Management
Published 8/2026
Created by EOM Energy O&M Services, Jose Enrique Montero Perez, Karthik Amarthaluri, Beatriz Calzada, Kishore Kumar
MP4 | Video: h264, 1920x1080 | Audio: AAC, 44.1 KHz, 2 Ch
Level: All Levels | Genre: eLearning | Language: English + subtitle | Duration: 10 Lectures ( 4h 35m ) | Size: 5.2 GB
Master IIoT, Predictive Maintenance, Asset Hierarchy & Digital Twin Integration for Solar, Wind & Battery Systems

What you'll learn

⚡ Understand the architecture of Digital Twins including state synchronization, behavioral modeling, and closed-loop feedback mechanisms
⚡ Design and implement IIoT data pipelines with edge computing, communication layers, and time-series data platforms for energy assets
⚡ Select and apply the right sensor types - electrical, thermal, mechanical, environmental - to capture asset behavior for Digital Twin models
⚡ Build and manage physics-based, data-driven, and hybrid models with full lifecycle calibration, validation, and continuous updating
⚡ Structure asset hierarchies using ISA-95 standards with proper tagging strategies for scalable Digital Twin data organization
⚡ Implement predictive maintenance workflows using condition monitoring, anomaly detection, and Remaining Useful Life (RUL) estimation
⚡ Integrate Digital Twin platforms with CMMS and ERP systems to convert operational insights into maintenance actions and financial decisions
Requirements

❗ Basic understanding of engineering concepts (electrical, mechanical, or thermal)
❗ Familiarity with renewable energy systems such as solar PV, wind, or battery storage
❗ No prior experience with Digital Twins, IoT, or data analytics is required
❗ No programming or coding knowledge is needed, this is an operational and engineering course
Description

Are you ready to transform how you manage energy assets?
This course gives you a complete, practical, and technical understanding ofDigital Twin technology applied to renewable energy Operations & Maintenance, one of the fastest-growing skill sets in the global energy sector.
Developed byEOM, specialists in the commissioning and O&M of Renewable Energy projects worldwide, this course bridges the gap between engineering theory and real operational practice.
What You Will Learn

You will start from the foundations, understanding exactly what a Digital Twin is, how it differs from conventional SCADA monitoring, and why it represents a paradigm shift in asset management. You will then build layer by layer through Industrial IoT architecture, sensor selection and data acquisition, signal processing, physics-based and data-driven modeling, and asset hierarchy design using the ISA-95 standard.
From there, you will masterPredictive Maintenance, the highest-value application of Digital Twins, learning how to estimate Remaining Useful Life for bearings, solar modules, and battery systems, and how to connect Digital Twin alerts to real maintenance workflows.
The course covers applied use cases acrosssolar PV, wind turbines, and hybrid solar-plus-battery systems, including three detailed case studies with quantified outcomes. You will also learn how to integrate Digital Twin platforms with CMMS and ERP systems to close the loop from insight to action.
This course is built on real field experience. Every framework, every model type, and every integration architecture presented here has been applied in the management of megawatt-scale energy assets.
By the end of this course, you will have the knowledge and structured methodology to evaluate, design, or implement a Digital Twin strategy for any renewable energy asset, and demonstrate measurable value in performance, reliability, and cost.
No prior Digital Twin experience required. A basic engineering background and familiarity with renewable energy systems is all you need to get started.
Who this course is for

⭐ O&M engineers and plant managers working on solar, wind, or hybrid energy projects who want to modernize their maintenance strategy
⭐ Asset managers and reliability engineers looking to apply condition-based and predictive maintenance techniques to reduce downtime and costs
⭐ Energy consultants and technical advisors who need a structured understanding of Digital Twin technology for client engagements
⭐ Engineering students and recent graduates in energy, electrical, or mechanical disciplines seeking industry-relevant applied skills
Homepage
Code:
https://www.udemy.com/course/digital-twins-for-renewable-energy-om-management

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