Itoh / Hokamoto | Explosion, Shock Wave and Hypervelocity Phenomena in Materials II | Buch | 978-0-87849-465-1 | sack.de

Buch, Englisch, 388 Seiten, Format (B × H): 170 mm x 240 mm, Gewicht: 790 g

Itoh / Hokamoto

Explosion, Shock Wave and Hypervelocity Phenomena in Materials II

Selected, peer reviewed papers from the 2nd International Symposium on Explosion, Shock Wave and Hypervelocity Phenomena (ESHP-2), 6-9 March 2007, Kumamoto, Japan

Buch, Englisch, 388 Seiten, Format (B × H): 170 mm x 240 mm, Gewicht: 790 g

ISBN: 978-0-87849-465-1
Verlag: Trans Tech Publications


Volume is indexed by Thomson Reuters CPCI-S (WoS).The objective of this special-topic volume was to disseminate work on current trends in Explosion, Shock Wave and Hypervelocity Phenomena in Materials.
Itoh / Hokamoto Explosion, Shock Wave and Hypervelocity Phenomena in Materials II jetzt bestellen!

Weitere Infos & Material


Preface
Reconsideration of the So-Called von Neumann Paradox in the Reflection of a Shock Wave over a Wedge
Development of a Large Diameter Diaphragmless Shock Tube for Gas-Dynamic Laser Studies
Behaviors of High Explosive near the Critical Conditions for Shock Initiation of Detonation
Experimental Determination of Shock Hugoniot for Water, Castor Oil, and Aqueous Solutions of Sodium Chloride, Sucrose and Gelatin
Dynamic Response of a Steel Pipe to Internal Blast Loading
Design and Experiment of Compact Projectile Accelerator Driven by Explosives
Detonation Behaviors of Nitromethane with Various Initiating Shock Pressure
High-Speed Photographic Observation of Shock-Pressure Pulses in Water Induced by Laser Energy Absorption at Roughened Surface
Behaviour of Cellular Structures under Impact Loading a Computational Study
Numerical Studies of Explosive Welding by SPH
Numerical Simulation of Shaped Charges Using the SPH Solver: Jet Formation and Target Penetration
Numerical Analysis of Projectile-Launch Tube Wall Friction Effects on Projectile Acceleration in Single-Stage Gun
Numerical Simulation of Underwater Explosive Compaction Process for Compaction of Tungsten Powder
Plate Response to Buried Charge Explosion
Numerical Prediction on Cookoff Explosion of Explosive under Strong Confinement
Multi-Physics Modeling Based on Combustion of Energetic Materials
Diameter Effect on Detonation Velocity of Ammonium Nitrate and Activated Carbon Mixtures
Detonation Velocity and Pressure of Ammonium Nitrate and Activated Carbon Mixtures
Hot Explosive Compaction of Udimet 700 Powder
Explosive Welding of ZrTiCuNiBe Bulk Metallic Glass to Crystalline Metallic Plates
Shock Wave Chemical Reactions; Synthesis of Carbon Nitrides
Properties of Cubic Si3N4 Obtained by Shock Synthesis
Novelties in Physics of Explosive Welding and Powder Compaction
Processing of Advanced Materials Using Conventional and Shock Techniques
Explosive Cladding for ITER Components
A DTA Study on HVOF Thermally Sprayed WC–M Coatings
Study of Phase Transformations in Heat Treatment of HVOF Thermally Sprayed WC–17Co Coating
On Micro Forming by Hydro Spark Forming Method
Control of Onset of Buckling Lobe in Axial Impact of Square Tube
Dependence of Blast Attenuation on Weight of Barrier Materials
Underground Space Construction by Explosive Loading in a Borehole
The Sterilization of Dry Powdered Foods by Successive Impacts
Study on the Relationship between Some Foods and Underwater Shock Wave Using the Explosion of the Detonating Fuse
Research on Sessile Organism Removal from Metal Using the Underwater Shock Wave
Influence of Inert Copper and Silicon Carbide Inserts on Process of Detonation Transmission through Water
Analysis of Explosion Combustion Phenomenon with Ammonium Nitrate
A Safe Use of Explosives by Parting into a Small Amount of Powder
A Study on Shock Energy for Concrete Destruction Using Underwater Shock Wave
The Study about “Cullet” Generation Technique and Application for Recycling System by Using Underwater Shockwaves
Mechanical Changes in Materials Caused by Explosive Precompression Shock Waves and the Effects on Fragmentation of Exploding Cylinders
Basic Study for Crushing of Ice by Underwater Shock Wave
Effect on Aqua Quenching of Spring Steel (JIS SUP 9)
New Impact Testing Methods for Sheet Metals Based on SHPB Technique
Ultrasonic Nondestructive Approach on Fiber Orientation Inspection in CFRP Composite Laminates
Nondestructive Evaluation of Rayleigh Pitch-Catch Contact Ultrasound Waves on Impacted-Damaged Composites
Observation of High Velocity Oblique Collision of Titanium and Stainless Steel Plates by Using Gas Gun
Micro Structural Studies On Explosively Clad Cu/Ss, Br/Ss and Al/Ss Plates
A Study of the Weld Zones on Explosive Cladded Titan12/Ss 304 L Plates
Explosion Joining of Magnesium Alloy AZ31 and Aluminum
Utilization of Technology of Explosive Welding at Development of Multilayer Ballistic Resistant Materials
Underwater Explosive Welding of Thin Magnesium Plate onto some Metal Plates
Numerical Simulation on Explosive Welding Process Using Reflected Underwater Shock Wave
Collection of Product Synthesized Using Extremely High Impulsive Pressure Generator
Advanced Materials Synthesis and Microstructural Characterization Using Explosive at Sojo University
Investigation of Jet Formation with Overdriven Detonation in High Density Explosive
Shock Compaction of WC-Co Powder in Metallic Tube
Optimal Design of Shock Compaction Device
A Study on the Consolidation of Cu, Ni / Graphite Powder Using Shock Compaction Method
Microstructure Modification of Magnesium Alloys by High Current Electropulsing
The Formation of Onions at Shock-Wave Loading of Graphite
The Industrial Applications of Underwater Shock Wave


Ihre Fragen, Wünsche oder Anmerkungen
Vorname*
Nachname*
Ihre E-Mail-Adresse*
Kundennr.
Ihre Nachricht*
Lediglich mit * gekennzeichnete Felder sind Pflichtfelder.
Wenn Sie die im Kontaktformular eingegebenen Daten durch Klick auf den nachfolgenden Button übersenden, erklären Sie sich damit einverstanden, dass wir Ihr Angaben für die Beantwortung Ihrer Anfrage verwenden. Selbstverständlich werden Ihre Daten vertraulich behandelt und nicht an Dritte weitergegeben. Sie können der Verwendung Ihrer Daten jederzeit widersprechen. Das Datenhandling bei Sack Fachmedien erklären wir Ihnen in unserer Datenschutzerklärung.