LEADER 01308nam2 22002653i 450 001 SUN0089914 005 20120614124825.504 010 $a978-88-210-0873-3 100 $a20120613d2010 |0itac50 ba 101 $aita 102 $aIT 105 $a|||| ||||| 200 1 $aˆ1: Le ‰origini della Biblioteca Vaticana tra Umanesimo e Rinascimento$e(1447-1534)$fa cura di Antonio Manfredi 210 $aCittà del Vaticano$cBiblioteca apostolica vaticana$d2010 215 $a531 p.$cill.$d30 cm. 461 1$1001SUN0089919$12001 $a*Storia della Biblioteca apostolica Vaticana$v1$1210 $aCittà del Vaticano$cBiblioteca apostolica vaticana$d2010-$1215 $avol.$cill.$d30 cm. 620 $dCittà del Vaticano$3SUNL000350 702 1$aManfredi$b, Antonio$f1961- $3SUNV073184 712 $aBiblioteca apostolica vaticana$3SUNV002493$4650 801 $aIT$bSOL$c20181109$gRICA 912 $aSUN0089914 950 $aUFFICIO DI BIBLIOTECA DEL DIPARTIMENTO DI LETTERE E BENI CULTURALI$d07 CONS T 1347 $e07 20353 995 $aUFFICIO DI BIBLIOTECA DEL DIPARTIMENTO DI LETTERE E BENI CULTURALI$bIT-CE0103$h20353$kCONS T 1347$oc$qa 996 $aOrigini della Biblioteca Vaticana tra Umanesimo e Rinascimento$91434554 997 $aUNICAMPANIA LEADER 01366nam 2200385 450 001 9910265159803321 005 20230809231331.0 010 $a1-5386-3470-8 035 $a(CKB)4100000002848937 035 $a(WaSeSS)IndRDA00121026 035 $a(EXLCZ)994100000002848937 100 $a20200326d2017 uy 0 101 0 $aeng 135 $aur||||||||||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$a2017 Eighth International Green and Sustainable Computing Conference $e23-25 October 2017, Orlando, FL, USA /$fIEEE Computer Society 210 1$aPiscataway, New Jersey :$cInstitute of Electrical and Electronics Engineers,$d2017. 215 $a1 online resource (48 pages) 311 $a1-5386-3471-6 606 $aComputer systems$xEnergy conservation$vCongresses 606 $aInformation technology$xEnvironmental aspects$vCongresses 606 $aGreen technology$vCongresses 615 0$aComputer systems$xEnergy conservation 615 0$aInformation technology$xEnvironmental aspects 615 0$aGreen technology 676 $a004 712 02$aIEEE Computer Society, 801 0$bWaSeSS 801 1$bWaSeSS 906 $aPROCEEDING 912 $a9910265159803321 996 $a2017 Eighth International Green and Sustainable Computing Conference$92494683 997 $aUNINA LEADER 02694nam 2200361 450 001 9910135892303321 005 20231207080929.0 010 $a0-7381-3909-2 035 $a(CKB)3780000000089968 035 $a(NjHacI)993780000000089968 035 $a(EXLCZ)993780000000089968 100 $a20231207d1991 uy 0 101 0 $aeng 135 $aur||||||||||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aIEEE Std 1110-1991 $eIEEE Guide for Synchronous Generator Modeling Practices in Stability Analyses /$fInstitute of Electrical and Electronics Engineers 210 1$a[Place of publication not identified] :$cIEEE,$d1991. 215 $a1 online resource (96 pages) 330 $aSuperseded by 1110-2002. Three direct-axis and four quadrature-axis models are categorized, along with the basic transient reactance model. Some of the assumptions made in using various models, including the basic model, are discussed, and the fundamental equations and concepts involved in generator/system interfacing are presented. The various attributes of power system stability are covered in a general way, with two basic approaches being recognized. The first is categorized under large-disturbance nonlinear analysis. The second approach considers small disturbances, where the corresponding dynamic equations are linearized. Applications of a range of generator models are discussed and treated. The manner in which generator saturation is treated in stability studies, both in the initialization process, as well as during large or small disturbance stability analysis procedures is addressed. Saturation functions that are derived either from test data or by the methods of finite elements are developed. Different saturation algorithms for calculating values of excitation and internal power angle, depending upon generator terminal conditions, are compared. The question of parameter determination is thoroughly covered. Two approaches in accounting for generator field and excitation system base quantities are identified. Conversion factors are given for transferring field parameters from one base to another for correct generator/excitation system interface modeling. Suggestions for modeling of negative field currents and other field circuit discontinuities are included. 517 $aIEEE Std 1110-1991 606 $aSynchronous generators 606 $aTurbogenerators 615 0$aSynchronous generators. 615 0$aTurbogenerators. 676 $a621.313 801 0$bNjHacI 801 1$bNjHacl 906 $aDOCUMENT 912 $a9910135892303321 996 $aIEEE Std 1110-1991$93647485 997 $aUNINA