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Mechanochemical Processes in Energetic Materials: A Computational and Experimental Investigation: Springer Theses

Autor Adam A. L. Michalchuk
en Limba Engleză Paperback – 24 noi 2021
This book uses experimental and computational methods to rationalize and predict for the first time the relative impact sensitivities of a range of energetic materials. Using knowledge of crystal structures, vibrational properties, energy-transfer mechanisms, and experimentally measured sensitivities, it describes a model that leads to excellent correlation with experimental results in all cases. As such, the book paves the way for a new, fully ab initio approach for the design of safer energetic materials based solely on knowledge of their solid-state structures.
Energetic materials (explosives, propellants, gas generators, and pyrotechnics) are defined as materials that release heat and/or gaseous products at a high rate upon stimulus by heat, impact, shock, sparks, etc. They have widespread military and civilian uses, including munitions, mining, quarrying, demolition, emergency signaling, automotive safety, and space exploration. One of their most important properties issensitivity to accidental initiation during manufacture, transport, storage, and operation, which has important implications for their safe use.

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Specificații

ISBN-13: 9783030569686
ISBN-10: 3030569683
Pagini: 185
Ilustrații: XXX, 185 p. 78 illus., 50 illus. in color.
Dimensiuni: 155 x 235 mm
Greutate: 0.31 kg
Ediția:1st ed. 2020
Editura: Springer International Publishing
Colecția Springer
Seria Springer Theses

Locul publicării:Cham, Switzerland

Cuprins

Chapter 1. Introduction.- Chapter 2. Experimental and Computational Methods.- Chapter 3. Vibrational Up-Pumping in some Molecular Energetic Materials.- Chapter 4. Vibrational Up-Pumping in Polymorphic Materials.- Chapter 5. General Conclusions and Future Predictions.

Textul de pe ultima copertă

This book uses experimental and computational methods to rationalize and predict for the first time the relative impact sensitivities of a range of energetic materials. Using knowledge of crystal structures, vibrational properties, energy-transfer mechanisms, and experimentally measured sensitivities, it describes a model that leads to excellent correlation with experimental results in all cases. As such, the book paves the way for a new, fully ab initio approach for the design of safer energetic materials based solely on knowledge of their solid-state structures.
Energetic materials (explosives, propellants, gas generators, and pyrotechnics) are defined as materials that release heat and/or gaseous products at a high rate upon stimulus by heat, impact, shock, sparks, etc. They have widespread military and civilian uses, including munitions, mining, quarrying, demolition, emergency signaling, automotive safety, and space exploration. One of their most important properties issensitivity to accidental initiation during manufacture, transport, storage, and operation, which has important implications for their safe use.

Caracteristici

Nominated as an outstanding Ph.D. thesis by the University of Edinburgh, Scotland, UK Discusses the theory development to allow easy adaptation Combines theory and experiments, making it accessible to a broad readership