LEADER 05627nam 2200685Ia 450 001 9910830737603321 005 20230617035819.0 010 $a1-282-31478-5 010 $a9786612314780 010 $a0-470-29124-9 010 $a0-470-29163-X 035 $a(CKB)1000000000687774 035 $a(EBL)739016 035 $a(OCoLC)769341679 035 $a(SSID)ssj0000398364 035 $a(PQKBManifestationID)11249242 035 $a(PQKBTitleCode)TC0000398364 035 $a(PQKBWorkID)10358870 035 $a(PQKB)10626114 035 $a(MiAaPQ)EBC739016 035 $a(EXLCZ)991000000000687774 100 $a20050819d2005 uy 0 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 10$aAdvances in solid oxide fuel cells$b[electronic resource] $ea collection of papers presented at the 29th International Conference on Advanced Ceramics and Composites, January 23-28, 2005, Cocoa Beach, Florida /$feditor, Narottam P. Bansal ; general editors, Dongming Zhu, Waltraud M. Kriven 210 $aWesterville, Ohio $cAmerican Ceramic Society$dc2005 215 $a1 online resource (338 p.) 225 1 $aCeramic engineering and science proceedings,$x0196-6219 ;$vv. 26, no. 4 300 $aDescription based upon print version of record. 311 $a1-57498-234-6 320 $aIncludes bibliographical references and index. 327 $aAdvances in Solid Oxide Fuel Cells; Contents; Preface; Overview and Current Status; Worldwide SOFC Technology Overview and Benchmark; U.S. DOE Solid Oxide Fuel Cells: Technical Advances; Processing/Fabrication; Single-Step Co-Firing Technique for SOFC Fabrication; Fabrication and Properties of an Anode-Supported Tubular IT-SOFC Based on Lanthanum Gallate; Low Cost SOFC Manufacturing Process; Y203-Stabilized ZrO2 Aerogels Prepared from an Epoxide Assisted Sol-Gel Synthesis for Use in SOFC Composite Cathodes; Pulsed Laser Deposition of BaCeo.85Y0.1503 Films; Characterizatio/Testing 327 $aElectrochemical Characterization of Vacuum Plasma Sprayed Planar Solid Oxide Fuel Cells and Short Stacks for Mobile Application Single Cell Testing and Performance Analysis of Planar Solid Oxide Fuelcells; Long-Term SOFC Stability with Coated Ferritic Stainless Steel Interconnect; Chemical Diffusion and Hydrogen Separation Properties of Lanthanum Ferrite and Doped Ceria Composite Mixed Conductors; Vapor Phase Silica Transport during SOFC Operation at 1000°C; The Effect of Inverter Ripple on Solid Oxide Fuel Cell Performance; Electrodes 327 $aStudy of Praseodyium Strontium Manganite for the Potential Use as a Solid Oxide Fuel Cell CathodeChromium Poisoning Effects on Various Cathodes; Anomolus Shrinkage of Lanthanum Strontium Manganite; Development and Characterization of SOFC Ni-YSZ Anodes Using Highly Porous Ni Foam; High Purity H2/H20/Nickel/Stabilized Zirconia Electrodes at 500°C; Characterization of Pore Structure of Electrodes of Solid Oxide Fuel Cells; Influence of Processing Parameters on Porosity of NiO-YSZ Solid Oxide Fuel Cell Anode Material 327 $aProperty Control of Cathodes and Anodes Produced by Slip Casting for Planar Solid Oxide Fuel CellsInterconnects; Surface Modification on Ferritic and Ni Based Alloys for Improved Oxidation Resistance in SOFC Applications; Ferritic Stainless Steel SOFC Interconnects with Thermally Grown (Mn,Co)304 Spinel Protection Layers; Chemical Reaction Behavior between Glass-Ceramic Sealants and High Chromium Ferritic Steels Under Various SOFC Conditions; Electrical Contacts between Cathodes and Metallic Interconnects in Solid Oxide Fuel Cells; Seals 327 $aFinite Element Analysis of the Bonded Compliant Seal Design - A New Sealing Concept for Use in Planar Solid Oxide Fuel CellsGlass-Ceramic Materials of the System Ba0-Ca0-Si02 as Sealants for SOFC Applications; Layered Composite Seals for Solid Oxide Fuel Cells (SOFC); Glass Mica Composite Seals for Solid Oxide Fuel Cells .; Combined Ageing and Thermal Cycling of Compressive Mica Seals for Solid Oxide Fuel Cells; Mechanical Properties; Mechanical Properties of SOFC Seal Glass Composites; Fracture Energies of Brittle Sealants for Planar Solid Oxide Fuel Cells 327 $aFailure Probability of Solid Oxide Fuel Cells 330 $aDue to its many potential benefits, including high electrical efficiency and low environmental emissions, solid oxide fuel cell (SOFC) technology is the subject of extensive research and development efforts by national laboratories, universities, and private industries. This collection of papers provides valuable insights on materials-related aspects of fuel cells such as SOFC component materials, materials processing, and cell/stack design, performance, and stability. Emerging trends in electrochemical materials, electrodics, interface engineering, long-term chemical interactions are also cov 410 0$aCeramic engineering and science proceedings ;$vv. 26, no. 4. 606 $aCeramic materials$vCongresses 606 $aComposite materials$vCongresses 606 $aSolid oxide fuel cells$vCongresses 615 0$aCeramic materials 615 0$aComposite materials 615 0$aSolid oxide fuel cells 676 $a620.14 676 $a621.312429 701 $aBansal$b Narottam P$0857155 701 $aKriven$b Waltraud M$0854274 701 $aZhu$b Dongming$0854276 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910830737603321 996 $aAdvances in solid oxide fuel cells$93063154 997 $aUNINA LEADER 03505nam 2200937z- 450 001 9910557333803321 005 20220111 035 $a(CKB)5400000000042540 035 $a(oapen)https://directory.doabooks.org/handle/20.500.12854/76533 035 $a(oapen)doab76533 035 $a(EXLCZ)995400000000042540 100 $a20202201d2021 |y 0 101 0 $aeng 135 $aurmn|---annan 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 00$aEnvironmental Biocatalysis$eFrom Remediation to Waste Valorization 210 $aBasel, Switzerland$cMDPI - Multidisciplinary Digital Publishing Institute$d2021 215 $a1 online resource (121 p.) 311 08$a3-0365-1432-5 311 08$a3-0365-1431-7 330 $aThis Special Issue aims to highlight the dual potential of novel biocatalytic processes, where the first part is dedicated to waste valorization for the production of high value products, while the second part is focused on the detoxification of pollutants. Several examples of microbial systems employed for the valorization of waste streams derived by the forest, agricultural, and food industries or the use of whole-cell or enzyme approaches for the removal of nitrogen or dyes from industrial wastewaters are provided. Last but not least, an example of the utilization of polyhydroxyalkanoates (PHAs) was highlighted for the production of fatty acids, which were used for the enzymatic synthesis of sugar esters with antimicrobial properties. 517 $aEnvironmental Biocatalysis 606 $aTechnology: general issues$2bicssc 610 $a(R)-3-hydroxyacids 610 $aanammox 610 $aantimicrobial 610 $aBifidobacterium 610 $abiocatalysis 610 $abiopolymers 610 $abioprocess 610 $abirch hydrolysate 610 $acellobiose 610 $aCelluclastŪ 610 $aChlorella 610 $aCoelastrella 610 $aconduritol-B-epoxide 610 $adairy wastewater 610 $adecolorization 610 $aDyP peroxidase 610 $afatty acid methyl esters 610 $aGanoderma lucidum 610 $agenome-mining 610 $aglucan 610 $agreen algae 610 $aheterologous expression 610 $aheterotrophic 610 $ahydrolysed waste cooking oil 610 $aimmobilization 610 $alaccase 610 $aLactobacillus 610 $alignocellulose enzyme hydrolysis 610 $alignocellulosic residues 610 $alipids 610 $amedicinal mushrooms 610 $amedium chain length polyhydroxyalkanoates (PHA) 610 $amixotrophic 610 $an/a 610 $anon-digestible oligosaccharides 610 $aolive mill waste 610 $aoxidoreductase 610 $aPleurotus ostreatus 610 $apolyhydroxyalkanoate 610 $apolyvinyl alcohol 610 $aprebiotic 610 $aPseudomonas 610 $aPseudomonas putida KT2440 610 $areactive dye 610 $asugar esters 610 $awaste valorization 610 $awastewater treatment 615 7$aTechnology: general issues 700 $aTopakas$b Evangelos$4edt$01318440 702 $aNikodinovic-Runic$b Jasmina$4edt 702 $aTopakas$b Evangelos$4oth 702 $aNikodinovic-Runic$b Jasmina$4oth 906 $aBOOK 912 $a9910557333803321 996 $aEnvironmental Biocatalysis$93033250 997 $aUNINA