LEADER 00857nam0-22002891i-450- 001 990004278910403321 005 19990530 035 $a000427891 035 $aFED01000427891 035 $a(Aleph)000427891FED01 035 $a000427891 100 $a19990530d1911----km-y0itay50------ba 101 0 $alat 105 $ay-------00-g- 200 1 $aAETNA$eCarmen Vergilio adscriptum$frecensuit et interpretatus est Maximus Lenchantin de Guberatis 210 $aAugustae Taurinorum$cApud S. Lattes$d1911 215 $a146 p.$d24 cm 500 1 $aAETNA 702 1$aLenchantin de Gubernatis,$bMassimo 702 1$aVergilius Maro,$bPublius$f<70-19 a. C.> 801 0$aIT$bUNINA$gRICA$2UNIMARC 901 $aBK 912 $a990004278910403321 952 $aC 1234$bBIBL.12345$fFLFBC 959 $aFLFBC 996 $aAppendix Vergiliana$956628 997 $aUNINA LEADER 02832oam 2200721 450 001 9910708626503321 005 20170418094329.0 035 $a(CKB)5470000002470964 035 $a(OCoLC)889716121 035 $a(EXLCZ)995470000002470964 100 $a20140901d1994 ua 0 101 0 $aeng 135 $aurn|||||||||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aCorrelation of the West Canyon, Lake Point, and Bannock Peak limestones (Upper Mississippian to Middle Pennsylvanian), basal formations of the Oquirrh Group, northern Utah and southeastern Idaho /$fby L.E. Davis, G.D. Webster, and T.S. Dyman 210 1$aWashington :$cUnited States Government Printing Office,$d1994. 215 $a1 online resource (iii, 30 pages) $cillustrations, maps 225 1 $aU.S. Geological Survey bulletin ;$v2088 300 $aTitle from title screen (viewed August 25, 2014). 300 $aAlso available online in PDF format from the U.S. Geological Survey Warehouse (http://pubs.er.usgs.gov/). 320 $aIncludes bibliographical references (pages 18-20). 517 $aCorrelation of the West Canyon, Lake Point, and Bannock Peak limestones 606 $aGeology$zIdaho 606 $aGeology$zUtah 606 $aGeology, Stratigraphic$yPennsylvanian 606 $aStratigraphic correlation$zIdaho 606 $aStratigraphic correlation$zUtah 606 $aGeology$2fast 606 $aGeology, Stratigraphic$2fast 606 $aPennsylvanian Geologic Period$2fast 606 $aStratigraphic correlation$2fast 607 $aBannock Peak Limestone (Idaho) 607 $aLake Point Limestone (Utah) 607 $aWest Canyon Limestone (Utah) 607 $aIdaho$2fast 607 $aIdaho$zBannock Peak Limestone$2fast 607 $aUtah$2fast 607 $aUtah$zLake Point Limestone$2fast 607 $aUtah$zWest Canyon Limestone$2fast 615 0$aGeology 615 0$aGeology 615 0$aGeology, Stratigraphic 615 0$aStratigraphic correlation 615 0$aStratigraphic correlation 615 7$aGeology. 615 7$aGeology, Stratigraphic. 615 7$aPennsylvanian Geologic Period. 615 7$aStratigraphic correlation. 700 $aDavis$b L. E$g(Larry E.),$01416286 702 $aDyman$b T. S. 702 $aWebster$b G. D$g(Gary D.),$f1934-2021, 712 02$aGeological Survey (U.S.), 801 0$bCOP 801 1$bCOP 801 2$bOCLCO 801 2$bOCLCF 801 2$bGPO 906 $aBOOK 912 $a9910708626503321 996 $aCorrelation of the West Canyon, Lake Point, and Bannock Peak limestones (Upper Mississippian to Middle Pennsylvanian), basal formations of the Oquirrh Group, northern Utah and southeastern Idaho$93521165 997 $aUNINA LEADER 01213nam2 22003131i 450 001 UON00107502 005 20231205102621.925 100 $a20020107f |0itac50 ba 101 $achi 102 $aTW 105 $a|||| 1|||| 200 1 $aJin Cang ji cheng$fZang Shirui 210 $aTaibei$cGongwen shuju$d[19..] 215 $a1 v.$d19 cm 316 $aEx inv. YS 407$5IT-UONSI T.C.A/064 461 1$1001UON00107279$12001 $aShiliao congbian$1210 $aTaibei$cGongwen shuju$d[19..]$1215 $av.$d19 cm 606 $aCINA$xStoria$3UONC001682$2FI 620 $dTaipei$3UONL000076 686 $aT.C.A$cTesti cinesi - Storia$2A 700 0$aWANG Shirui$3UONV068542$0635487 712 $aGong Wen Shu$3UONV261375$4650 790 0$aWANG Shih-Jui$zWANG Shirui$3UONV068543 801 $aIT$bSOL$c20240220$gRICA 899 $aSIBA - SISTEMA BIBLIOTECARIO DI ATENEO$2UONSI 912 $aUON00107502 950 $aSIBA - SISTEMA BIBLIOTECARIO DI ATENEO$dSI T.C. A 064 $eSI SA 96989 7 064 Ex inv. YS 407 966 $aSHANGHAI (CINA) - STORIA$yCINA - Storia$3UONC007998 996 $aJin Cang ji cheng$91207257 997 $aUNIOR LEADER 04039nam 2200589 a 450 001 9910437809603321 005 20200520144314.0 010 $a1-283-93810-3 010 $a94-007-4813-2 024 7 $a10.1007/978-94-007-4813-2 035 $a(CKB)3400000000115801 035 $a(EBL)994476 035 $a(OCoLC)822030019 035 $a(SSID)ssj0000810351 035 $a(PQKBManifestationID)11494961 035 $a(PQKBTitleCode)TC0000810351 035 $a(PQKBWorkID)10828153 035 $a(PQKB)10106184 035 $a(DE-He213)978-94-007-4813-2 035 $a(MiAaPQ)EBC994476 035 $a(PPN)168339072 035 $a(EXLCZ)993400000000115801 100 $a20121119d2013 uy 0 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 00$aAcoustic metamaterials $enegative refraction, imaging, lensing and cloaking /$fRichard V. Craster, Sebastien Guenneau, editors 205 $a1st ed. 210 $aNew York $cSpringer$d2013 215 $a1 online resource (332 p.) 225 1 $aSpringer series in materials science,$x0933-033X ;$v166 300 $aDescription based upon print version of record. 311 $a94-007-9467-3 311 $a94-007-4812-4 320 $aIncludes bibliographical references and index. 327 $aPreface -- 1 Fundamentals of acoustic metamaterials --  2 Locally resonant structures for low frequency surface acoustic band gap applications --  3 Band-gap properties of prestressed structures -- 4 Ultrasound transmission through periodically perforated plates -- 5 Novel Ultrasound Imaging Applications -- 6 Subwavelength focussing in metamaterials using far field time reversal -- 7 Anisotropic metamaterials for transformation acoustics and imaging -- 8 Transformation Acoustics -- 9 Acoustic Cloaking Via Homogenization -- 10 Acoustic Cloaking with Plasmonic Shells -- 11 Cloaking Liquid Surface Waves and Plasmon Polaritons -- 12 Transformation elastodynamics and active exterior acoustic cloaking. 330 $aOver the past ten years, electromagnetic metamaterials have become ubiquitous in modern photonics research, following Pendry's proposal of a perfect flat lens via negative refraction at the turn of the millennium, and the related development of invisibility cloaks. These two paradigms have their counterparts in another emerging subject of wave motion: Acoustic metamaterials, which are locally resonant structures displaying an effective macroscopic behaviour (such as a negative density) beyond Newton's second law. Applications of acoustic metamaterials range from non-invasive probing and high-resolution tomography in medical imaging, to acoustic camouflaging and seismic protection. The twelve chapters constituting this book present an up-to-date survey of many aspects of acoustic metamaterials, including filtering effects, extraordinary transmission, subwavelength imaging via tomography or time-reversal techniques, cloaking via transformation acoustics and elastodynamics and even cloaking via acoustic scattering cancellation and active exterior cloaking.  It is hoped that the variety of subjects touched upon in this book, and the ways in which they can be treated theoretically, numerically and experimentally give a grasp of the richness of the emerging topic of acoustic metamaterials and will contribute to initiate even more research activity and applications in the near future. The book will be a valuable reference for postgraduate students, lecturers and researchers working on acoustic metamaterials and the wider field of wave phenomena. 410 0$aSpringer series in materials science ;$vv. 166. 606 $aMetamaterials 615 0$aMetamaterials. 676 $a620.11294 701 $aCraster$b Richard V$01759585 701 $aGuenneau$b Sebastien$01759586 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910437809603321 996 $aAcoustic metamaterials$94198144 997 $aUNINA