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Multiscale Modeling and Simulation of Shock Wave-Induced Failure in Materials Science

Autor Martin Oliver Steinhauser
en Limba Engleză Paperback – 8 mar 2018
Martin Oliver Steinhauser deals with several aspects of multiscale materials modeling and simulation in applied materials research and fundamental science. He covers various multiscale modeling approaches for high-performance ceramics, biological bilayer membranes, semi-flexible polymers, and human cancer cells. He demonstrates that the physics of shock waves, i.e., the investigation of material behavior at high strain rates and of material failure, has grown to become an important interdisciplinary field of research on its own. At the same time, progress in computer hardware and software development has boosted new ideas in multiscale modeling and simulation. Hence, bridging the length and time scales in a theoretical-numerical description of materials has become a prime challenge in science and technology.
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Specificații

ISBN-13: 9783658211332
ISBN-10: 3658211334
Pagini: 224
Ilustrații: XIX, 224 p. 78 illus., 10 illus. in color.
Dimensiuni: 148 x 210 mm
Greutate: 0.3 kg
Ediția:1st ed. 2018
Editura: Springer Fachmedien Wiesbaden
Colecția Springer Spektrum
Locul publicării:Wiesbaden, Germany

Cuprins

Definition of Shock Waves.- Multiscale Modeling and Simulation in Hard Matter.- Shock Wave Failure in Granular Materials.- Coarse-Grained Modeling and Simulation of Macromolecules.- Laser-Induced Shock Wave Failure in Human Cancer Cells.- The Future of Multiscale Materials Modeling.

Notă biografică

Dr. Martin O. Steinhauser works as Senior Scientist and Principal Investigator at the Fraunhofer Institute for High-Speed Dynamics/Ernst-Mach-Institut (EMI) in Freiburg, Germany. 

Textul de pe ultima copertă

Martin Oliver Steinhauser deals with several aspects of multiscale materials modeling and simulation in applied materials research and fundamental science. He covers various multiscale modeling approaches for high-performance ceramics, biological bilayer membranes, semi-flexible polymers, and human cancer cells. He demonstrates that the physics of shock waves, i.e., the investigation of material behavior at high strain rates and of material failure, has grown to become an important interdisciplinary field of research on its own. At the same time, progress in computer hardware and software development has boosted new ideas in multiscale modeling and simulation. Hence, bridging the length and time scales in a theoretical-numerical description of materials has become a prime challenge in science and technology.
Contents

  • Definition of Shock Waves
  • Multiscale Modeling and Simulation in Hard Matter
  • Shock Wave Failure in Granular Materials
  • Coarse-Grained Modeling and Simulation of Macromolecules
  • Laser-Induced Shock Wave Failure in Human Cancer Cells
  • The Future of Multiscale Materials Modeling
 Target Groups
  • Researchers and students in the fields of (bio-)physics, computational science, materials engineering, materials science, computer science, polymer chemistry, theoretical chemistry, nanoscience
  • Material scientists, engineers
The Author
Dr. Martin O. Steinhauser
works as Senior Scientist and Principal Investigator at the Fraunhofer Institute for High-Speed Dynamics/Ernst-Mach-Institut (EMI) in Freiburg, Germany. 

Caracteristici

Study of Shock Waves in Materials Science