LEADER 05324nam 2200709Ia 450 001 9910130877703321 005 20230725052927.0 010 $a1-283-40528-8 010 $a9786613405289 010 $a1-119-99116-1 010 $a1-119-99115-3 035 $a(CKB)3460000000000096 035 $a(EBL)699344 035 $a(OCoLC)794326217 035 $a(SSID)ssj0000477797 035 $a(PQKBManifestationID)11293732 035 $a(PQKBTitleCode)TC0000477797 035 $a(PQKBWorkID)10512478 035 $a(PQKB)11771953 035 $a(MiAaPQ)EBC699344 035 $a(Au-PeEL)EBL699344 035 $a(CaPaEBR)ebr10510441 035 $a(CaONFJC)MIL340528 035 $a(EXLCZ)993460000000000096 100 $a20101207d2011 uy 0 101 0 $aeng 135 $aurcn||||||||| 181 $ctxt 182 $cc 183 $acr 200 10$aPiezoelectric energy harvesting$b[electronic resource] /$fAlper Erturk, Daniel J. Inman 210 $aChichester $cWiley$d2011 215 $a1 online resource (414 p.) 300 $aDescription based upon print version of record. 311 $a0-470-68254-X 320 $aIncludes bibliographical references and index. 327 $aPIEZOELECTRIC ENERGY HARVESTING; Contents; About the Authors; Preface; 1 Introduction to Piezoelectric Energy Harvesting; 1.1 Vibration-Based Energy Harvesting Using Piezoelectric Transduction; 1.2 An Example of a Piezoelectric Energy Harvesting System; 1.3 Mathematical Modeling of Piezoelectric Energy Harvesters; 1.4 Summary of the Theory of Linear Piezoelectricity; 1.5 Outline of the Book; References; 2 Base Excitation Problem for Cantilevered Structures and Correction of the Lumped-Parameter Electromechanical Model 327 $a2.1 Base Excitation Problem for the Transverse Vibrations of a Cantilevered Thin Beam 2.1.1 Response to General Base Excitation; 2.1.2 Steady-State Response to Harmonic Base Excitation; 2.1.3 Lumped-Parameter Model of the Harmonic Base Excitation Problem; 2.1.4 Comparison of the Distributed-Parameter and the Lumped-Parameter Model Predictions; 2.2 Correction of the Lumped-Parameter Base Excitation Model for Transverse Vibrations; 2.2.1 Correction Factor for the Lumped-Parameter Model; 2.2.2 Effect of a Tip Mass on the Correction Factor 327 $a2.3 Experimental Case Studies for Validation of the Correction Factor 2.3.1 Cantilevered Beam without a Tip Mass under Base Excitation; 2.3.2 Cantilevered Beam with a Tip Mass under Base Excitation; 2.4 Base Excitation Problem for Longitudinal Vibrations and Correction of its Lumped-Parameter Model; 2.4.1 Analytical Modal Analysis and Steady-State Response to Harmonic Base Excitation; 2.4.2 Correction Factor for Longitudinal Vibrations; 2.5 Correction Factor in the Electromechanically Coupled Lumped-Parameter Equations and a Theoretical Case Study 327 $a2.5.1 An Electromechanically Coupled Lumped-Parameter Model for Piezoelectric Energy Harvesting2.5.2 Correction Factor in the Electromechanically Coupled Lumped-Parameter Model and a Theoretical Case Study; 2.6 Summary; 2.7 Chapter Notes; References; 3 Analytical Distributed-Parameter Electromechanical Modeling of Cantilevered Piezoelectric Energy Harvesters; 3.1 Fundamentals of the Electromechanically Coupled Distributed-Parameter Model; 3.1.1 Modeling Assumptions and Bimorph Configurations; 3.1.2 Coupled Mechanical Equation and Modal Analysis of Bimorph Cantilevers 327 $a3.1.3 Coupled Electrical Circuit Equation of a Thin Piezoceramic Layer under Dynamic Bending3.2 Series Connection of the Piezoceramic Layers; 3.2.1 Coupled Beam Equation in Modal Coordinates; 3.2.2 Coupled Electrical Circuit Equation; 3.2.3 Closed-Form Voltage Response and Vibration Response at Steady State; 3.3 Parallel Connection of the Piezoceramic Layers; 3.3.1 Coupled Beam Equation in Modal Coordinates; 3.3.2 Coupled Electrical Circuit Equation; 3.3.3 Closed-Form Voltage Response and Vibration Response at Steady State 327 $a3.4 Equivalent Representation of the Series and the Parallel Connection Cases 330 $aThe transformation of vibrations into electric energy through the use of piezoelectric devices is an exciting and rapidly developing area of research with a widening range of applications constantly materialising. With Piezoelectric Energy Harvesting, world-leading researchers provide a timely and comprehensive coverage of the electromechanical modelling and applications of piezoelectric energy harvesters. They present principal modelling approaches, synthesizing fundamental material related to mechanical, aerospace, civil, electrical and materials engineering disciplines for vibration- 606 $aPiezoelectric transducers 606 $aElectric generators 606 $aPiezoelectricity 606 $aEnergy harvesting 615 0$aPiezoelectric transducers. 615 0$aElectric generators. 615 0$aPiezoelectricity. 615 0$aEnergy harvesting. 676 $a621.31/3 686 $aTEC031000$2bisacsh 700 $aErturk$b Alper$0987245 701 $aInman$b D. J$0865565 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910130877703321 996 $aPiezoelectric energy harvesting$92256394 997 $aUNINA