1.

Record Nr.

UNINA9911015858003321

Autore

Okubo Masaaki

Titolo

Electrical Sustainable Energy for Mechanical Engineering / / by Masaaki Okubo

Pubbl/distr/stampa

Singapore : , : Springer Nature Singapore : , : Imprint : Springer, , 2025

ISBN

9789819651702

9789819651696

Edizione

[1st ed. 2025.]

Descrizione fisica

1 online resource (225 pages)

Disciplina

621.3126

Soggetti

Energy storage

Electric power production

Electrical engineering

Sustainability

Mechanical and Thermal Energy Storage

Mechanical Power Engineering

Electrical Power Engineering

Electrical and Electronic Engineering

Lingua di pubblicazione

Inglese

Formato

Materiale a stampa

Livello bibliografico

Monografia

Nota di contenuto

1. Basic Laws of Electrical Circuits -- 2. AC linear circuit element -- 3. Fundamentals of AC electrical circuits and AC equipment -- 4. Fundamentals of AC electrical circuits and AC equipment -- 5. Impedance matching and energy conversion.

Sommario/riassunto

This book describes fundamentals and applications on electrical sustainable energy for Mechanical Engineering. The main objective of this book is to provide readers with an easy-to-understand resource on the foundations and application of electrical sustainable energy. This book was specifically crafted with the intention to serve as a resource for students in the third year through graduate school, particularly in departments other than electrical engineering such as mechanical engineering departments at universities. The aim is to provide foundational knowledge on sustainable electrical energy and energy conversion principles. The topics addressed are those which the author



found beneficial in the pursuit of mechanical engineering research and are related to sustainable electrical engineering. It is designed to be covered within a semester of 15 weeks (90 minutes per week), structured into nine chapters. Specifically, it is suggested that chapters 1 and 2 be taught over 4 weeks, chapters 4 to 7 over 6 weeks, and chapters 8 and 9 across 5 weeks. Furthermore, each chapter has comprehensive exercise problems and is projected to cover approximately eight problems in two weeks. These exercises can either be conducted as in-class integrative practice or assigned as weekly homework tasks, with the intention of nurturing problem-solving capabilities in students.