Machine Learning and the Internet of Things in Solar Power Generation
  1. 232 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

About this book

The book investigates various MPPT algorithms, and the optimization of solar energy using machine learning and deep learning. It will serve as an ideal reference text for senior undergraduate, graduate students, and academic researchers in diverse engineering domains including electrical, electronics and communication, computer, and environmental.

This book:

  • Discusses data acquisition by the internet of things for real-time monitoring of solar cells.
  • Covers artificial neural network techniques, solar collector optimization, and artificial neural network applications in solar heaters, and solar stills.
  • Details solar analytics, smart centralized control centers, integration of microgrids, and data mining on solar data.
  • Highlights the concept of asset performance improvement, effective forecasting for energy production, and Low-power wide-area network applications.
  • Elaborates solar cell design principles, the equivalent circuits of single and two diode models, measuring idealist factors, and importance of series and shunt resistances.

The text elaborates solar cell design principles, the equivalent circuit of single diode model, the equivalent circuit of two diode model, measuring idealist factor, and importance of series and shunt resistances. It further discusses perturb and observe technique, modified P&O method, incremental conductance method, sliding control method, genetic algorithms, and neuro-fuzzy methodologies. It will serve as an ideal reference text for senior undergraduate, graduate students, and academic researchers in diverse engineering domains including electrical, electronics and communication, computer, and environmental.

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Information

Publisher
CRC Press
Year
2023
Print ISBN
9781032299785
eBook ISBN
9781000894295

Table of contents

  1. Cover Page
  2. Half Title page
  3. Series Page
  4. Title Page
  5. Copyright Page
  6. Contents
  7. Preface to the first edition
  8. Chapter organization
  9. Editors bios
  10. Contributors
  11. Chapter 1 Solar analytics using AWS serverless services
  12. Chapter 2 Study of conventional & non-conventional SEPIC converter in solar photovoltaic system using Proteus
  13. Chapter 3 Design and implementation of non-inverting buck converter based on performance analysis scheme
  14. Chapter 4 Investigation of various solar MPPT techniques in solar panel
  15. Chapter 5 Real-time solar farm performance monitoring using IoT
  16. Chapter 6 Solar energy forecasting architecture using deep learning models
  17. Chapter 7 Characterization of CuO–SnO2 composite nano powder by hydrothermal method for solar cell
  18. Chapter 8 Design and development of solar PV based advanced power converter topologies for EV fast charging
  19. Chapter 9 Assessment of different MPPT techniques for PV system
  20. Index

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Yes, you can access Machine Learning and the Internet of Things in Solar Power Generation by Prabha Umapathy, Jude Hemanth, Shelej Khera, Abinaya Inbamani, Suman Lata Tripathi, Prabha Umapathy,Jude Hemanth,Shelej Khera,Abinaya Inbamani,Suman Lata Tripathi in PDF and/or ePUB format, as well as other popular books in Tecnologia e ingegneria & Ingegneria elettronica e telecomunicazioni. We have over 1.5 million books available in our catalogue for you to explore.