Advanced composite materials:
Gespeichert in:
Weitere Verfasser: | , , |
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Format: | Elektronisch E-Book |
Sprache: | English |
Veröffentlicht: |
Salem, Massachusetts
Scrivener Publishing
[2016]
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Schriftenreihe: | Advanced materials series (Scrivener Publishing)
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Schlagworte: | |
Online-Zugang: | FRO01 FWS01 FWS02 UBG01 Volltext |
Beschreibung: | Cover; Title Page; Copyright Page; Contents; Preface; 1 Composite Materials for Application in Printed Electronics; 1.1 Introduction; 1.2 Filler Materials; 1.3 Conductive Polymers; 1.4 Preparation of Electronics Materials for Printing; 1.5 Overview of Application Fields; 1.5.1 RF Applications; 1.5.2 Sensors; 1.5.3 Electrodes; 1.6 Conclusions; References; 2 Study of Current-limiting Defects in Superconductors Using Low-temperature Scanning Laser Microscopy; 2.1 Introduction; 2.2 Introduction of Low-temperature Scanning Laser Microscopy and Its Application in Defect Studies in Superconductors 2.2.1 Basic Principle of LTSLM2.2.2 Visualization of Defect-induced Dissipation and Spatial Jc Distribution; 2.2.3 Thermoelectric Responses from LTSLM; 2.2.4 Experimental Setup of LTSLM System; 2.3 Case Studies of Using LTSLM to Study Defects in Superconductors; 2.3.1 REBCO-coated Conductors Based on Rolling-assisted Biaxially Textured Substrate; 2.3.2 MOCVD/IBAD REBCO-coated Conductors; 2.3.3 Polycrystalline Iron-based Superconductor; 2.3.4 The Application of LTSLM in Study of Grain Boundaries in Superconductors; 2.4 Conclusions; Reference; 3 Innovative High-tech Ceramics Materials 3.1 Introduction3.2 Ceramic Structure; 3.2.1 Oxide Structures; 3.2.1.1 Rock Salt Structure; 3.2.1.2 Wurtzite Structure; 3.2.1.3 Zinc Blende Structure; 3.2.1.4 Spinel Structure; 3.2.1.5 Corundum Structure; 3.2.1.6 Rutile Structure; 3.2.1.7 Cesium Chloride Structure; 3.2.1.8 Fluorite Structure; 3.2.1.9 Antifluorite Structure; 3.2.1.10 Perovskite Structure; 3.2.1.11 Ilmenite Structure; 3.2.2 Silicate Structures; 3.2.2.1 Orthosilicates; 3.2.3 Clay Minerals; 3.2.4 Other Structures; 3.2.4.1 Gibbsite; 3.2.4.2 Graphite; 3.2.4.3 Carbides; 3.2.4.4 Nitrides; 3.2.5 Glasses; 3.3 Raw Materials 3.4 Processing of Ceramics3.4.1 Forming and Firing; 3.4.2 Melting and Solidification; 3.4.3 Newer Fabrication Techniques; 3.5 Properties; 3.6 Some Important Advanced Ceramics; 3.6.1 Insulating Ceramics/High Thermal Conductive Ceramics; 3.6.2 Semiconductive Ceramics; 3.6.2.1 PTC Thermistors; 3.6.2.2 NTC Thermistors; 3.6.2.3 Ceramic Varistors; 3.6.3 Ionic Conductors/Oxygen Sensors; 3.6.3.1 Oxygen Sensors for Automobiles; 3.6.3.2 Thick-film-type Oxygen Sensor; 3.6.3.3 Universal Exhaust Gas Oxygen Sensor; 3.6.3.4 NOx sensor; 3.6.3.5 Oxygen Sensors for Industry; 3.6.4 Ceramic Fuel Cells 3.6.5 Piezoelectric Ceramics3.6.6 Dielectric Ceramics; 3.6.6.1 Ceramic Capacitors; 3.6.7 Magnetic Ceramics; 3.6.8 Optoelectroceramics; 3.6.9 Superconductive Ceramics; 3.6.10 High-temperature High-strength Ceramics; 3.6.11 Porous Ceramics for Filtration; 3.6.12 Ceramic Bearing; 3.6.13 Cutting Tools; 3.6.14 Ceramics for Biomedical Applications; 3.6.14.1 Ceramics for Artificial Joints; 3.6.14.2 Ceramics for Artificial Bone; 3.6.14.3 Bioactive Cements; 3.6.14.4 Ceramics for In Situ Radiotherapy of Cancers; 3.6.14.5 Ceramics for In Situ Hyperthermia Therapy of Cancer; 3.6.15 Decorative Ceramics |
Beschreibung: | 1 online resource |
ISBN: | 1119242665 1119242681 9781119242666 9781119242680 |
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500 | |a Cover; Title Page; Copyright Page; Contents; Preface; 1 Composite Materials for Application in Printed Electronics; 1.1 Introduction; 1.2 Filler Materials; 1.3 Conductive Polymers; 1.4 Preparation of Electronics Materials for Printing; 1.5 Overview of Application Fields; 1.5.1 RF Applications; 1.5.2 Sensors; 1.5.3 Electrodes; 1.6 Conclusions; References; 2 Study of Current-limiting Defects in Superconductors Using Low-temperature Scanning Laser Microscopy; 2.1 Introduction; 2.2 Introduction of Low-temperature Scanning Laser Microscopy and Its Application in Defect Studies in Superconductors | ||
500 | |a 2.2.1 Basic Principle of LTSLM2.2.2 Visualization of Defect-induced Dissipation and Spatial Jc Distribution; 2.2.3 Thermoelectric Responses from LTSLM; 2.2.4 Experimental Setup of LTSLM System; 2.3 Case Studies of Using LTSLM to Study Defects in Superconductors; 2.3.1 REBCO-coated Conductors Based on Rolling-assisted Biaxially Textured Substrate; 2.3.2 MOCVD/IBAD REBCO-coated Conductors; 2.3.3 Polycrystalline Iron-based Superconductor; 2.3.4 The Application of LTSLM in Study of Grain Boundaries in Superconductors; 2.4 Conclusions; Reference; 3 Innovative High-tech Ceramics Materials | ||
500 | |a 3.1 Introduction3.2 Ceramic Structure; 3.2.1 Oxide Structures; 3.2.1.1 Rock Salt Structure; 3.2.1.2 Wurtzite Structure; 3.2.1.3 Zinc Blende Structure; 3.2.1.4 Spinel Structure; 3.2.1.5 Corundum Structure; 3.2.1.6 Rutile Structure; 3.2.1.7 Cesium Chloride Structure; 3.2.1.8 Fluorite Structure; 3.2.1.9 Antifluorite Structure; 3.2.1.10 Perovskite Structure; 3.2.1.11 Ilmenite Structure; 3.2.2 Silicate Structures; 3.2.2.1 Orthosilicates; 3.2.3 Clay Minerals; 3.2.4 Other Structures; 3.2.4.1 Gibbsite; 3.2.4.2 Graphite; 3.2.4.3 Carbides; 3.2.4.4 Nitrides; 3.2.5 Glasses; 3.3 Raw Materials | ||
500 | |a 3.4 Processing of Ceramics3.4.1 Forming and Firing; 3.4.2 Melting and Solidification; 3.4.3 Newer Fabrication Techniques; 3.5 Properties; 3.6 Some Important Advanced Ceramics; 3.6.1 Insulating Ceramics/High Thermal Conductive Ceramics; 3.6.2 Semiconductive Ceramics; 3.6.2.1 PTC Thermistors; 3.6.2.2 NTC Thermistors; 3.6.2.3 Ceramic Varistors; 3.6.3 Ionic Conductors/Oxygen Sensors; 3.6.3.1 Oxygen Sensors for Automobiles; 3.6.3.2 Thick-film-type Oxygen Sensor; 3.6.3.3 Universal Exhaust Gas Oxygen Sensor; 3.6.3.4 NOx sensor; 3.6.3.5 Oxygen Sensors for Industry; 3.6.4 Ceramic Fuel Cells | ||
500 | |a 3.6.5 Piezoelectric Ceramics3.6.6 Dielectric Ceramics; 3.6.6.1 Ceramic Capacitors; 3.6.7 Magnetic Ceramics; 3.6.8 Optoelectroceramics; 3.6.9 Superconductive Ceramics; 3.6.10 High-temperature High-strength Ceramics; 3.6.11 Porous Ceramics for Filtration; 3.6.12 Ceramic Bearing; 3.6.13 Cutting Tools; 3.6.14 Ceramics for Biomedical Applications; 3.6.14.1 Ceramics for Artificial Joints; 3.6.14.2 Ceramics for Artificial Bone; 3.6.14.3 Bioactive Cements; 3.6.14.4 Ceramics for In Situ Radiotherapy of Cancers; 3.6.14.5 Ceramics for In Situ Hyperthermia Therapy of Cancer; 3.6.15 Decorative Ceramics | ||
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Datensatz im Suchindex
DE-BY-FWS_katkey | 630763 |
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any_adam_object | |
author2 | Tiwari, Ashutosh 1978- Alenezi, Mohammad Rabia Jun, Seong Chan |
author2_role | edt edt edt |
author2_variant | a t at m r a mr mra s c j sc scj |
author_GND | (DE-588)1114183709 |
author_facet | Tiwari, Ashutosh 1978- Alenezi, Mohammad Rabia Jun, Seong Chan |
building | Verbundindex |
bvnumber | BV043864978 |
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collection | ZDB-35-WIC |
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dewey-full | 620.1/18 |
dewey-hundreds | 600 - Technology (Applied sciences) |
dewey-ones | 620 - Engineering and allied operations |
dewey-raw | 620.1/18 |
dewey-search | 620.1/18 |
dewey-sort | 3620.1 218 |
dewey-tens | 620 - Engineering and allied operations |
discipline | Physik Werkstoffwissenschaften / Fertigungstechnik |
format | Electronic eBook |
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id | DE-604.BV043864978 |
illustrated | Not Illustrated |
indexdate | 2024-08-01T12:22:52Z |
institution | BVB |
isbn | 1119242665 1119242681 9781119242666 9781119242680 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-029274991 |
oclc_num | 958864554 965785474 |
open_access_boolean | |
owner | DE-863 DE-BY-FWS DE-862 DE-BY-FWS DE-861 |
owner_facet | DE-863 DE-BY-FWS DE-862 DE-BY-FWS DE-861 |
physical | 1 online resource |
psigel | ZDB-35-WIC UBG_PDA_WIC ZDB-35-WIC FRO_PDA_WIC ZDB-35-WIC FWS_PDA_WIC_Kauf ZDB-35-WIC UBG_PDA_WIC |
publishDate | 2016 |
publishDateSearch | 2016 |
publishDateSort | 2016 |
publisher | Scrivener Publishing |
record_format | marc |
series2 | Advanced materials series (Scrivener Publishing) |
spellingShingle | Advanced composite materials TECHNOLOGY & ENGINEERING / Engineering (General) bisacsh TECHNOLOGY & ENGINEERING / Reference bisacsh Biomedical materials fast Composite materials fast Nanostructured materials fast Composite materials Nanostructured materials Biomedical materials Keramikherstellung (DE-588)4163581-4 gnd Hochleistungswerkstoff (DE-588)4312250-4 gnd Keramischer Werkstoff (DE-588)4030282-9 gnd Verbundwerkstoff (DE-588)4062670-2 gnd Hochleistungskeramik (DE-588)4392837-7 gnd |
subject_GND | (DE-588)4163581-4 (DE-588)4312250-4 (DE-588)4030282-9 (DE-588)4062670-2 (DE-588)4392837-7 |
title | Advanced composite materials |
title_auth | Advanced composite materials |
title_exact_search | Advanced composite materials |
title_full | Advanced composite materials edited by Ashutosh Tiwari, Mohammad Rabia Alenezi and Seong Chan Jun |
title_fullStr | Advanced composite materials edited by Ashutosh Tiwari, Mohammad Rabia Alenezi and Seong Chan Jun |
title_full_unstemmed | Advanced composite materials edited by Ashutosh Tiwari, Mohammad Rabia Alenezi and Seong Chan Jun |
title_short | Advanced composite materials |
title_sort | advanced composite materials |
topic | TECHNOLOGY & ENGINEERING / Engineering (General) bisacsh TECHNOLOGY & ENGINEERING / Reference bisacsh Biomedical materials fast Composite materials fast Nanostructured materials fast Composite materials Nanostructured materials Biomedical materials Keramikherstellung (DE-588)4163581-4 gnd Hochleistungswerkstoff (DE-588)4312250-4 gnd Keramischer Werkstoff (DE-588)4030282-9 gnd Verbundwerkstoff (DE-588)4062670-2 gnd Hochleistungskeramik (DE-588)4392837-7 gnd |
topic_facet | TECHNOLOGY & ENGINEERING / Engineering (General) TECHNOLOGY & ENGINEERING / Reference Biomedical materials Composite materials Nanostructured materials Keramikherstellung Hochleistungswerkstoff Keramischer Werkstoff Verbundwerkstoff Hochleistungskeramik |
url | https://onlinelibrary.wiley.com/doi/book/10.1002/9781119242666 |
work_keys_str_mv | AT tiwariashutosh advancedcompositematerials AT alenezimohammadrabia advancedcompositematerials AT junseongchan advancedcompositematerials |