LEADER 00879nam a2200217 i 4500 001 991000685779707536 005 20020507172242.0 008 960604s1978 ||| ||| | ita 035 $ab10743017-39ule_inst 035 $aLE01300696$9ExL 040 $aDip.to Matematica$beng 100 1 $aCausio, Vanda$0534642 245 10$aAnelli di krull. Tesi di laurea /$claureanda Vanda Causio ; relat. Angiola Letizia 260 $aLecce :$bUniversità degli studi. Facoltà di Scienze. Corso di laurea in Matematica,$ca.a. 1978-79 700 1 $aLetizia, Angiola 907 $a.b10743017$b02-04-14$c28-06-02 912 $a991000685779707536 945 $aLE013 TES 1978/79 CAU1$g1$i2013000049816$lle013$o-$pE0.00$q-$rl$s- $t0$u0$v0$w0$x0$y.i1083445x$z28-06-02 996 $aAnelli di krull. Tesi di laurea$9910729 997 $aUNISALENTO 998 $ale013$b01-01-96$cm$da $e-$feng$gxx $h0$i1 LEADER 05533nam 2200673 a 450 001 9911006624903321 005 20200520144314.0 010 $a9786611099992 010 $a0-08-055679-5 035 $a(CKB)1000000000401653 035 $a(EBL)330089 035 $a(OCoLC)437198368 035 $a(SSID)ssj0000252594 035 $a(PQKBManifestationID)11200394 035 $a(PQKBTitleCode)TC0000252594 035 $a(PQKBWorkID)10180510 035 $a(PQKB)10572693 035 $a(Au-PeEL)EBL330089 035 $a(CaPaEBR)ebr10203616 035 $a(CaONFJC)MIL107251 035 $a(MiAaPQ)EBC330089 035 $a(EXLCZ)991000000000401653 100 $a20071019d2008 uy 0 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 10$aStructural health monitoring with piezoelectric wafer active sensors /$fVictor Giurgiutiu 205 $a1st ed. 210 $aAmsterdam ;$aBoston $cAcademic Press$dc2008 215 $a1 online resource (759 p.) 300 $aDescription based upon print version of record. 311 $a0-12-088760-6 320 $aIncludes bibliographical references (p. 699-710) and index. 327 $aFront Cover; Structural Health Monitoring; Copyright Page; Table of Contents; Chapter 1 Introduction; 1.1 Structural Health Monitoring Principles and Concepts; 1.2 Structural Fracture and Failure; 1.3 Improved Diagnosis and Prognosis Through Structural Health Monitoring; 1.4 About this Book; Chapter 2 Electroactive and Magnetoactive Materials; 2.1 Introduction; 2.2 Piezoelectricity; 2.3 Piezoelectric Phenomena; 2.4 Perovskite Ceramics; 2.5 Piezopolymers; 2.6 Magnetostrictive Materials; 2.7 Summary and Conclusions; 2.8 Problems and Exercises; Chapter 3 Vibration of Solids and Structures 327 $a3.1 Introduction3.2 Single Degree of Freedom Vibration Analysis; 3.3 Vibration of Continuous Systems; 3.4 Summary and Conclusions; 3.5 Problems and Exercises; Chapter 4 Vibration of Plates; 4.1 Elasticity Equations for Plate Vibration; 4.2 Axial Vibration of Rectangular Plates; 4.3 Axial Vibration of Circular Plates; 4.4 Flexural Vibration of Rectangular Plates; 4.5 Flexural Vibration of Circular Plates; 4.6 Problems and Exercises; Chapter 5 Elastic Waves in Solids and Structures; 5.1 Introduction; 5.2 Axial Waves in Bars; 5.3 Flexural Waves in Beams; 5.4 Torsional Waves in Shafts 327 $a5.5 Plate Waves5.6 3-D Waves; 5.7 Summary and Conclusions; 5.8 Problems and Exercises; Chapter 6 Guided Waves; 6.1 Introduction; 6.2 Rayleigh Waves; 6.3 SH Plate Waves; 6.4 Lamb Waves; 6.5 General Formulation of Guided Waves in Plates; 6.6 Guided Waves in Tubes and Shells; 6.7 Guided Waves in Composite Plates; 6.8 Summary and Conclusions; 6.9 Problems and Exercises; Chapter 7 Piezoelectric Wafer Active Sensors; 7.1 Introduction; 7.2 PWAS Resonators; 7.3 Circular PWAS Resonators; 7.4 Coupled-Field Analysis of PWAS Resonators; 7.5 Constrained PWAS; 7.6 PWAS Ultrasonic Transducers 327 $a7.7 Durability and Survivability of Piezoelectric Wafer Active Sensors7.8 Summary and Conclusions; 7.9 Problems and Exercises; Chapter 8 Tuned Waves Generated with Piezoelectric Wafer Active Sensors; 8.1 Introduction; 8.2 State of the Art; 8.3 Tuned Axial Waves Excited by PWAS; 8.4 Tuned Flexural Waves Excited by PWAS; 8.5 Tuned Lamb Waves Excited by PWAS; 8.6 Experimental Validation of PWAS Lamb-Wave Tuning in Isotropic Plates; 8.7 Directivity of Rectangular PWAS; 8.8 PWAS-Guided Wave Tuning in Composite Plates; 8.9 Summary and Conclusions; 8.10 Problems and Exercises 327 $aChapter 9 High-Frequency Vibration SHM with PWAS Modal Sensors - the Electromechanical Impedance Method9.1 Introduction; 9.2 1-D PWAS Modal Sensors; 9.3 Circular PWAS Modal Sensors; 9.4 Damage Detection with PWAS Modal Sensors; 9.5 Coupled-Field FEM Analysis of PWAS Modal Sensors; 9.6 Summary and Conclusions; 9.7 Problems and Exercises; Chapter 10 Wave Propagation SHM with PWAS; 10.1 Introduction; 10.2 1-D Modeling and Experiments; 10.3 2-D PWAS Wave Propagation Experiments; 10.4 Pitch-Catch PWAS-Embedded NDE; 10.5 Pulse-Echo PWAS-Embedded NDE; 10.6 PWAS Time Reversal Method 327 $a10.7 PWAS Passive Transducers of Acoustic Waves 330 $a Structural Health Monitoring (SHM) is the interdisciplinary engineering field devoted to the monitoring and assessment of structural health and durability. SHM technology integrates remote sensing, smart materials, and computer based knowledge systems to allow engineers see how built up structures are performing over time. It is particularly useful for remotely monitoring large infrastructure systems, such as bridges and dams, and high profile mechanical systems such as aircraft, spacecraft, ships, offshore structures and pipelines where performance is critical but onsite monitoring is diff 606 $aStructural analysis (Engineering) 606 $aPiezoelectric devices 606 $aPiezoelectric transducers 606 $aAutomatic data collection systems 615 0$aStructural analysis (Engineering) 615 0$aPiezoelectric devices. 615 0$aPiezoelectric transducers. 615 0$aAutomatic data collection systems. 676 $a624.1/71 700 $aGiurgiutiu$b Victor$0622142 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9911006624903321 996 $aStructural health monitoring with piezoelectric wafer active sensors$94389035 997 $aUNINA