Shock Compression and Chemical Reaction of Multifunctional Energetic Structural Materials

Shock Compression and Chemical Reaction of Multifunctional Energetic Structural Materials
Author :
Publisher : Elsevier
Total Pages : 256
Release :
ISBN-10 : 9780128196847
ISBN-13 : 012819684X
Rating : 4/5 (47 Downloads)

Book Synopsis Shock Compression and Chemical Reaction of Multifunctional Energetic Structural Materials by : Xianfeng Zhang

Download or read book Shock Compression and Chemical Reaction of Multifunctional Energetic Structural Materials written by Xianfeng Zhang and published by Elsevier. This book was released on 2022-09-02 with total page 256 pages. Available in PDF, EPUB and Kindle. Book excerpt: Shock Compression and Chemical Reaction of Multifunctional Energetic Structural Materials provides an exhaustive overview of the mechanics, kinetics and physio-chemical behavior caused by shock-induced reaction and shock compression on multifunctional energetic structural materials (MESMs). The book covers foundational knowledge on shock waves and Equation of State (EOS), shock parameters, reaction kinetics, impedance matching, and more. In addition, it looks at more advanced subjects such as experimental analysis methods, numerical modeling techniques (from quasi-static to high-strain rates, including void collapse models), how EOS changes when reaction and detonation are involved, and more. Final chapters cover how to obtain EOS curves from experiments and various testing methods and numerical models for non-reactive porous solids and particulate composites, including 1-D reactive flow models. Flyer plate impact experiments are also discussed, as are the applications of hydrocodes and Lagrangian-framework-based methods. Provides an ideal balance of modeling concepts and experimental techniques Looks at mechanical testing processes of MESMs Outlines sample preparation, testing of samples, obtaining EOS from the testing, and using EOS for simulation Covers modeling for pore collapse, constituent material, and at a granular level


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