Gaseous Detonation Physics and Its Universal Framework Theory

£139.50

Gaseous Detonation Physics and Its Universal Framework Theory

Classical mechanics Thermodynamics and heat Engineering: Mechanics of fluids

Authors: Zonglin Jiang, Honghui Teng

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Collection: Shock Wave and High Pressure Phenomena

Language: English

Published by: Springer

Published on: 16th December 2022

Format: LCP-protected ePub

ISBN: 9789811970023


Overview

This book highlights the theories and research progress in gaseous detonation research, and proposes a universal framework theory that overcomes the current research limitations. Gaseous detonation is an extremely fast type of combustion that propagates at supersonic speed in premixed combustible gas. Being self-sustaining and self-organizing with the unique nature of pressure gaining, gaseous detonation and its gas dynamics has been an interdisciplinary frontier for decades.

Historical Context and Challenges

The research of detonation enjoyed its early success from the development of the CJ theory and ZND modeling, but phenomenon is far from being understood quantitatively, and the development of theories to predict the three-dimensional cellular structure remains a formidable task, being essentially a problem in high-speed compressible reacting flow.

Proposed Theory and Contributions

This theory proposed by the authors’ research group breaks down the limitation of the one-dimensional steady flow hypothesis of the early theories, successfully correlating the propagation and initiation processes of gaseous detonation, and realizing the unified expression of the three-dimensional structure of cell detonation.

Applications and Future Directions

The book and the proposed open framework is of high value for researchers in conventional applications such as coal mine explosions and chemical plant accidents, and state-of-the-art research fields such as supernova explosion, new aerospace propulsion engines, and detonation-driven hypersonic testing facilities. It is also a driving force for future research of detonation.

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