Modeling of Deflagration-to-Shock-to-Detonation Transition (DSDT) in Porous High Energy Solid Propellants and Explosives

Modeling of Deflagration-to-Shock-to-Detonation Transition (DSDT) in Porous High Energy Solid Propellants and Explosives PDF Author: Herman W. Krier
Publisher:
ISBN:
Category :
Languages : en
Pages : 30

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Book Description
This annual report represents the summary of work done on the modeling of processes leading from deflagration to detonation in porous or granular high energy propellants. Particular attention is paid to the analysis of shock development from compression waves forming ahead of confined burning in the original material. It is summarized that if the shock is sufficiently strong, it will lead to shock to detonation transition (SDT). During the development of the shock wave, the porous material may collapse into a solid plug of void free propellant because the speed at which the wave propagates increases as the material is compressed. The modeling effort presented indicates how two-phase unsteady combustion processes in granular material can couple to the solid mechanics of shock formation and eventually to a steady-state detonation. (Author).

Modeling of Deflagration-to-Shock-to-Detonation Transition (DSDT) in Porous High Energy Solid Propellants and Explosives

Modeling of Deflagration-to-Shock-to-Detonation Transition (DSDT) in Porous High Energy Solid Propellants and Explosives PDF Author: Herman W. Krier
Publisher:
ISBN:
Category :
Languages : en
Pages : 30

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Book Description
This annual report represents the summary of work done on the modeling of processes leading from deflagration to detonation in porous or granular high energy propellants. Particular attention is paid to the analysis of shock development from compression waves forming ahead of confined burning in the original material. It is summarized that if the shock is sufficiently strong, it will lead to shock to detonation transition (SDT). During the development of the shock wave, the porous material may collapse into a solid plug of void free propellant because the speed at which the wave propagates increases as the material is compressed. The modeling effort presented indicates how two-phase unsteady combustion processes in granular material can couple to the solid mechanics of shock formation and eventually to a steady-state detonation. (Author).

Modeling of Deflagration-to-shock-to-detonation Transition (DSDT) in Porous High Energy Solid Propellants and Explosives

Modeling of Deflagration-to-shock-to-detonation Transition (DSDT) in Porous High Energy Solid Propellants and Explosives PDF Author: Herman Krier
Publisher:
ISBN:
Category :
Languages : en
Pages : 25

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Book Description


Analysis of Shock to Detonation Transition (SDT) of Porous High Energy Propellant from Ramp-Wave Compression Loading

Analysis of Shock to Detonation Transition (SDT) of Porous High Energy Propellant from Ramp-Wave Compression Loading PDF Author: H. Krier
Publisher:
ISBN:
Category :
Languages : en
Pages : 121

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Book Description
Increasing the nitramine content of solid rocket propellants increases the overall performance of the system as well as the sensitivity to detonation by shock initiation. In some instances a confined zone of granulated propellant adjacent to a zone of cast propellant can provide a rapid enough pressure-rise rate ot shock initiate the cast material. If the cast propellant is porous, the detonation will initiate at some location ahead of the granulated bed/cast material interface. The work presented here is an effort to numerically model this Deflagration to Shock to Detonation Transition event. Results are presented showing the detonation build up for propellants/explosives with various initial void content and ramp wave compression loads. (Author).

Prediction of Detonation Transition in Porous Explosives from Rapid Compression Loadings

Prediction of Detonation Transition in Porous Explosives from Rapid Compression Loadings PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages : 70

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Book Description
Increasing the nitramine content of solid rocket propellants increases the overall performance of the system as well as the sensitivity to Shock to Detonation Transition (SDT) and Deflagration to Detonation Transition (DDT). This report deals primarily with the analysis and numerical modeling of a combined SDT/DDT event. The results show that in some instances a zone of burning granulated propellant, confined and adjacent to a zone of cast propellant, can provide a rapid enough pressure-rise rate to shock initiate the cast material. This type of detonation hazard scenario is a real possibility in any high-energy rocket motor environment. The modeling study also indicates areas where important assumptions need to be further researched. These include: (a) relations for dynamic (transient) collapse of the voids or pores; (b) relations for setting the volume percent of hot spots based on initial porosity; (c) the evaluation and expression for the chemical rate of decomposition of the reactive, shocked material; and (d) the assessment of two-phase mixture equilibrium. The predicted run-to detonation distance as a function of porosity for HMX explosive compares favorably with limited shock initiation experiments. There is no data available to check whether the predictions of ramp-wave compressions (where rise times exceed several microseconds) presented here are valid.

Investigations on Deflagration to Detonation Transition in Porous Energetic Materials. Final Report

Investigations on Deflagration to Detonation Transition in Porous Energetic Materials. Final Report PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages : 15

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Book Description
The research carried out by this contract was part of a larger effort funded by LANL in the areas of deflagration to detonation in porous energetic materials (DDT) and detonation shock dynamics in high explosives (DSD). In the first three years of the contract the major focus was on DDT. However, some researchers were carried out on DSD theory and numerical implementation. In the last two years the principal focus of the contract was on DSD theory and numerical implementation. However, during the second period some work was also carried out on DDT. The paper discusses DDT modeling and DSD modeling. Abstracts are included on the following topics: modeling deflagration to detonation; DSD theory; DSD wave front tracking; and DSD program burn implementation.

Nano and Micro-Scale Energetic Materials

Nano and Micro-Scale Energetic Materials PDF Author: Weiqiang Pang
Publisher: John Wiley & Sons
ISBN: 3527835334
Category : Science
Languages : en
Pages : 1005

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Book Description
Provides an up-to-date account of innovative energetic materials and their potential applications in space propulsion and high explosives Most explosives and propellants currently use a small number of ingredients, such as TNT and nitrocellulose. In comparison to conventional materials, nano- and micro-scale energetic materials exhibit superior burning characteristics and much higher energy densities and explosive yields. Nano and Micro-scale Energetic Materials: Propellants and Explosives provides a timely overview of innovative nano-scale energetic materials (nEMs) and microscale energetic materials (μEMs) technology. Covering nEMs and μEMs ingredients as well as formulations, this comprehensive volume examines the preparation, characterization, ignition, combustion, and performance of energetic materials in various applications of propellants and explosives. Twenty-two chapters explore metal-based pyrotechnic nanocomposites, solid and hybrid rocket propulsion, solid fuels for in-space and power, the sensitivity and mechanical properties of explosives, new energetic materials, and more. Explores novel energetic materials and their potential for use in propellants and explosives Summarizes the most recent advances of leading research groups currently active in twelve countries Discusses how new environmentally friendly, high-combustion energetic materials can best be used in different applications Explains the fundamentals of energetic materials, including similarities and differences between composite propellants and explosives Nano and Micro-scale Energetic Materials: Propellants and Explosives is an important resource for materials scientists, explosives specialists, pyrotechnicians, environmental chemists, polymer chemists, physical chemists, aerospace physicians, and aerospace engineers working in both academia and industry.

Scientific and Technical Aerospace Reports

Scientific and Technical Aerospace Reports PDF Author:
Publisher:
ISBN:
Category : Aeronautics
Languages : en
Pages : 1346

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Book Description


Raising the Flag of Truth

Raising the Flag of Truth PDF Author:
Publisher:
ISBN:
Category : Vietnam War, 1961-1975
Languages : en
Pages :

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Technical Abstract Bulletin

Technical Abstract Bulletin PDF Author:
Publisher:
ISBN:
Category : Science
Languages : en
Pages : 220

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Proceedings

Proceedings PDF Author:
Publisher:
ISBN:
Category : Detonation
Languages : en
Pages : 892

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Book Description
Papers presented in this publication cover special problems in the field of energetic materials, particularly detonation phenomena in solids and liquids. General subject areas include shock-to-detonation transition, time resolved chemistry, initiation modeling, deflagration-to-detonation transition, equation of state and equation of state and performance, composites and emulsions, and composites and emulsions/underwater explosives, reaction zone, detonation wave propagation, hot spots, detonation products, chemistry and compositions, and special initiation.