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Ultra-High Temperature Ceramics: Materials for Extreme Environment Applications [Kõva köide]

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  • Formaat: Hardback, 464 pages, kõrgus x laius x paksus: 243x163x29 mm, kaal: 735 g
  • Ilmumisaeg: 23-Dec-2014
  • Kirjastus: Wiley-American Ceramic Society
  • ISBN-10: 1118700783
  • ISBN-13: 9781118700785
  • Formaat: Hardback, 464 pages, kõrgus x laius x paksus: 243x163x29 mm, kaal: 735 g
  • Ilmumisaeg: 23-Dec-2014
  • Kirjastus: Wiley-American Ceramic Society
  • ISBN-10: 1118700783
  • ISBN-13: 9781118700785
The first comprehensive book to focus on ultra-high temperature ceramic materials in more than 20 years

Ultra-High Temperature Ceramics are a family of compounds that display an unusual combination of properties, including extremely high melting temperatures (>3000°C), high hardness, and good chemical stability and strength at high temperatures.  Typical UHTC materials are the carbides, nitrides, and borides of transition metals, but the Group IV compounds (Ti, Zr, Hf) plus TaC are generally considered to be the main focus of research due to the superior melting temperatures and stable high-melting temperature oxide that forms in situ. Rather than focusing on the latest scientific results, Ultra-High Temperature Ceramics: Materials for Extreme Environment Applications broadly and critically combines the historical aspects and the state-of-the-art on the processing, densification, properties, and performance of boride and carbide ceramics.

In reviewing the historic studies and recent progress in the field, Ultra-High Temperature Ceramics: Materials for Extreme Environment Applications provides:





Original reviews of research conducted in the 1960s and 70s Content on electronic structure, synthesis, powder processing, densification, property measurement, and characterization of boride and carbide ceramics. Emphasis on materials for hypersonic aerospace applications such as wing leading edges and propulsion components for vehicles traveling faster than Mach 5 Information on materials used in the extreme environments associated with high speed cutting tools and nuclear power generation

Contributions are based on presentations by leading research groups at the conference "Ultra-High Temperature Ceramics: Materials for Extreme Environment Applications II" held May 13-19, 2012 in Hernstein, Austria. Bringing together disparate researchers from academia, government, and industry in a singular forum, the meeting cultivated didactic discussions and efforts between bench researchers, designers and engineers in assaying results in a broader context and moving the technology forward toward near- and long-term use. This book is useful for furnace manufacturers, aerospace manufacturers that may be pursuing hypersonic technology, researchers studying any aspect of boride and carbide ceramics, and practitioners of high-temperature structural ceramics.
Acknowledgments ix
Contributors List xi
1 Introduction
1(5)
William G. Fahrenholtz
Eric J. Wuchina
William E. Lee
Yanchun Zhou
2 A Historical Perspective On Research Related To Ultra-High Temperature Ceramics
6(27)
William G. Fahrenholtz
3 Reactive Processes For Diboride-Based Ultra-High Temperature Ceramics
33(27)
Guo-Jun Zhang
Hai-Tao Liu
Wen-Wen Wu
Ji Zou
De-Wei Ni
Wei-Ming Guo
Ji-Xuan Liu
Xin-Gang Wang
4 First-Principles Investigation On The Chemical Bonding And Intrinsic Elastic Properties Of Transition Metal Diborides Tmb2 (Tm=Zr, Hf, Nb, Ta, And Y)
60(23)
Yanchun Zhou
Jiemin Wang
Zhen Li
Xun Zhan
Jingyang Wang
5 Near-Net-Shaping Of Ultra-High Temperature Ceramics
83(29)
Carolina Tallon
George V. Franks
6 Sintering And Densification Mechanisms Of Ultra-High Temperature Ceramics
112(32)
Diletta Sciti
Laura Silvestroni
Valentino Medri
Frederic Monteverde
7 Uhtc Composites For Hypersonic Applications
144(23)
Anish Paul
Jon Binner
Bala Vaidhyanathan
8 Mechanical Properties Of Zirconium-Diboride Based Uhtcs
167(30)
Eric W. Neuman
Greg E. Hilmas
9 Thermal Conductivity Of Zrb2 And Hfb2
197(39)
Gregory J. K. Harrington
Greg E. Hilmas
10 Deformation And Hardness Of Uhtcs As A Function Of Temperature
236(31)
J. Wang
L. J. Vandeperre
11 Modeling And Evaluating The Environmental Degradation Of Uhtcs Under Hypersonic Flow
267(24)
Triplicane A. Parthasarathy
Michael K. Cinibulk
Mark Opeka
12 Tantalum Carbides: Their Microstructures And Deformation Behavior
291(25)
Gregory B. Thompson
Christopher R. Weinberger
13 Titanium Diboride
316(45)
Brahma Raju Golla
Twisampati Bhandari
Amartya Mukhopadhyay
Bikramjit Basu
14 The Group Iv Carbides And Nitrides
361(30)
Eric J. Wuchina
Mark Opeka
15 Nuclear Applications For Ultra-High Temperature Ceramics And Max Phases
391(25)
William E. Lee
Edoardo Giorgi
Robert Harrison
Alexandre Maitre
Olivier Rapaud
16 Uhtc-Based Hot Structures: Characterization, Design, And On-Ground/In-Flight Testing
416(21)
Davide Alfano
Roberto Gardi
Luigi Scatteia
Antonio Del Vecchio
Index 437
William G. Fahrenholtz, PhD, is Professor of Ceramic Engineering in the Department of Materials Science and Engineering at the Missouri University of Science and Technology. He has authored or co-authored more than 100 publications in peer-reviewed journals and holds four U.S. patents.

Eric J. Wuchina, PhD, is currently a Senior Materials Research Engineer at the Naval Surface Warfare Center, Carderock Division and program officer in the Office of Naval Research with responsibility for ultra-high temperature materials. He has authored over 25 publications, 80 presentations (12 invited) and 4 patents.

Bill Lee, DPhil, is Professor of Ceramics, founding Director of the Centre for Advanced Structural Ceramics (CASC) and Director of the Centre for Nuclear Engineering at Imperial College London. He has over 350 publications, including 4 books for which he is lead or co-author, and has supervised 52 students to PhD completion.

Yanchun Zhou, PhD, is Deputy Director of advanced composite laboratory Aerospace Research Institute of Materials and Processing Technology. Dr. Zhou has authored or co-authored more than 300 publications in peer-reviewed journals, and holds 36 China patents.