LEADER 00896nam0 2200301 450 001 9910344257703321 005 20191212103931.0 010 $a9781840761948 100 $a20191107d2015----km y0itay50 ba 101 0 $aeng 102 $aUS 105 $a 001yy 200 1 $aEquine emergency and critical care medicine$fLouise L. Southwood, Pamela A. Wilkins [editors] 210 $aBoca Raton$cCRC$d2015 215 $a880 p.$cill.$d27 cm 454 0$12001 610 0 $aMedicina d'urgenza veterinaria 610 0 $aEquini$aTerapia intensiva 676 $a636.0896025$v22$zita 702 1$aSouthwood,$bLouise L. 702 1$aWilkins,$bPamela A. 801 0$aIT$bUNINA$gREICAT$2UNIMARC 901 $aBK 912 $a9910344257703321 952 $a636.0896025 SOU 1$b512$fFMVBC 959 $aFMVBC 996 $aEquine emergency and critical care medicine$91565761 997 $aUNINA LEADER 01538oam 2200457I 450 001 9910704692103321 005 20130923134213.0 035 $a(CKB)5470000002442790 035 $a(OCoLC)857670494 035 $a(EXLCZ)995470000002442790 100 $a20130905d2013 ua 0 101 0 $aeng 135 $aurmn||||||||| 181 $2rdacontent 182 $2rdamedia 183 $2rdacarrier 200 10$aMolten salt power tower cost model for the System Advisor Model (SAM) /$fCraig S. Turchi and Garvin A. Heath 210 1$aGolden, Colorado :$cNational Renewable Energy Laboratory,$d2013. 215 $a1 online resource (53 unnumbered pages) $ccolor illustrations 225 1 $aNREL/TP ;$v5500-57625 300 $aTitle from title screen (viewed Sept. 4, 2013). 300 $a"February 2013." 320 $aIncludes bibliographical references (page 10). 517 $aMolten salt power tower cost model for the System Advisor Model 606 $aFused salts 606 $aEnergy storage 606 $aLife cycle costing 615 0$aFused salts. 615 0$aEnergy storage. 615 0$aLife cycle costing. 700 $aTurchi$b Craig S$g(Craig Steven),$01388049 702 $aHeath$b Gavin A. 712 02$aNational Renewable Energy Laboratory (U.S.), 801 0$bSOE 801 1$bSOE 801 2$bOCLCO 801 2$bGPO 906 $aBOOK 912 $a9910704692103321 996 $aMolten salt power tower cost model for the System Advisor Model (SAM)$93521823 997 $aUNINA LEADER 04355nam 2200397 450 001 9910765774803321 005 20230328071402.0 035 $a(CKB)3710000001069010 035 $a(NjHacI)993710000001069010 035 $a(EXLCZ)993710000001069010 100 $a20230328d2017 uy 0 101 0 $aeng 135 $aur||||||||||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aAcoustic and Elastic Waves $eRecent Trends in Science and Engineering /$fDimitrios G. Aggelis, Nathalie Godin 210 1$aBasel ; Beijing ; Wuhan ; Barcelona ; Belgrade :$cMDPI - Multidisciplinary Digital Publishing Institute,$d2017. 215 $a1 online resource (xv, 445 pages) 311 $a3-03842-297-5 327 $aList of Contributors -- About the Guest Editors -- Preface to "Acoustic and Elastic Waves: Recent Trends in Science and Engineering" -- The Ultrasonic Polar Scan for Composite Characterization and Damage Assessment: Past, Present and Future -- Dispersion of Functionalized Silica Micro- and Nanoparticles into Poly(nonamethylene Azelate) by Ultrasonic Micro-Molding -- Enhancement of Spatial Resolution Using a Metamaterial Sensor in Nondestructive Evaluation -- Monitoring Techniques of Cerium Stabilized Zirconia for Medical Prosthesis -- Correlation between Earthquakes and AE Monitoring of Historical Buildings in Seismic Areas -- Electromagnetic Acoustic Transducers Applied to High Temperature Plates for Potential Use in the Solar Thermal Industry -- Acoustic Emission Activity for Characterizing Fracture of Marble under Bending -- Lamb Wave Interaction with Adhesively Bonded Stiffeners and Disbonds Using 3D Vibrometry -- Proof of Concept of Crack Localization Using Negative Pressure Waves in Closed Tubes for Later Application in Effective SHM System for Additive Manufactured Components -- Identification of a Critical Time with Acoustic Emission Monitoring during Static Fatigue Tests on Ceramic Matrix Composites: Towards Lifetime Prediction -- Wavelet Packet Decomposition to Characterize Injection Molding Tool Damage -- Dynamic Characterization of Cohesive Material Based on Wave Velocity Measurements -- Design of a Stability Augmentation System for an Unmanned Helicopter Based on Adaptive Control Techniques -- Numerical and Experimental Characterization of Fiber-Reinforced Thermoplastic Composite Structures with Embedded Piezoelectric Sensor-Actuator Arrays for Ultrasonic Applications -- Acoustic Emissions to Measure Drought-Induced Cavitation in Plants -- The Stiffness and Damping Characteristics of a Dual-Chamber Air Spring Device Applied to Motion Suppression of Marine Structures -- Correlation of Plastic Strain Energy and Acoustic Emission Energy in Reinforced Concrete Structures -- Numerical Models for the Assessment of Historical Masonry Structures and Materials, Monitored by Acoustic Emission -- Detecting the Presence of High Water-to-Cement Ratio in Concrete Surfaces Using Highly Nonlinear Solitary Waves -- Opto-Acoustic Method for the Characterization of Thin-Film Adhesion -- On Site Investigation and Health Monitoring of a Historic Tower in Mantua, Italy. 330 $aThe present Special Issue intends to explore new directions in the field of acoustics and ultrasonics. The interest includes, but is not limited to, the use of acoustic technology for condition monitoring of materials and structures.Topics of interest (among others):{u2022} Acoustic emission in materials and structures (without material limitation){u2022} Innovative cases of ultrasonic inspection{u2022} Wave dispersion and waveguides{u2022} Monitoring of innovative materials{u2022} Seismic waves{u2022} Vibrations, damping and noise control{u2022} Combination of mechanical wave techniques with other types for structural health monitoring purposes. Experimental and numerical studies are welcome. 517 $aAcoustic and Elastic Waves 606 $aElastic wave propagation 606 $aAcoustical materials 615 0$aElastic wave propagation. 615 0$aAcoustical materials. 676 $a531.1133 700 $aAggelis$b Dimitrios G.$01451140 702 $aGodin$b Nathalie 801 0$bNjHacI 801 1$bNjHacl 906 $aBOOK 912 $a9910765774803321 996 $aAcoustic and Elastic Waves$93651044 997 $aUNINA