Piezoelectric Transducers : Materials, Devices and Applications |
Autore | Sanchez-Rojas Jose Luis |
Pubbl/distr/stampa | Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2020 |
Descrizione fisica | 1 electronic resource (524 p.) |
Soggetto topico | History of engineering & technology |
Soggetto non controllato |
cylindrical composite
piezoceramic/epoxy composite electromechanical characteristics transducer piezoelectric actuators positioning trajectory control numerical analysis trajectory planning square piezoelectric vibrator resonance piezoelectric diaphragm pump flexible support piezoelectric resonance pump piezoelectric ceramics actuators hysteresis modeling Bouc-Wen model P-type IL MFA control SM control evidence theory active vibration control piezoelectric smart structure piezoelectric material multiphysics simulation finite element method (FEM) fluid-structure interaction (FSI) micro electromechanical systems (MEMS) traveling waves piezoelectric microactuator MEMS piezoelectric current sensing device two-wire power cord cymbal structure force amplification effect sensitivity ciliary bodies touch beam piezoelectric tactile feedback devices anisotropic vibration tactile model human factor experiment nondestructive testing maturity method concrete early-age strength SmartRock ultrasonic waves PZT (piezoelectric) sensors structural health monitoring AlN thin film piezoelectric effect resonant accelerometer z-axis debonding non-destructive testing electromechanical impedance damage detection impedance-based technique damage depth piezoelectric vibration energy harvester frequency up-conversion mechanism impact PZT thick film piezoelectric ceramic materials Duhem model hysteresis model class-C power amplifier diode expander piezoelectric transducers point-of-care ultrasound systems transverse impact frequency up-conversion piezoelectric bimorph human-limb motion hybrid energy harvester cascade-connected transducer low frequency small size finite element acoustic telemetry measurement while drilling energy harvesting pipelines underwater networks wireless sensor networks control algorithm waterproof coating reliability flexible micro-devices aqueous environments seawater capacitive pressure sensors in-situ pressure sensing sensor characterization physiological applications cardiac output aluminum nitride resonator damping quality factor electromechanical coupling implantable middle ear hearing device piezoelectric transducer stimulating site finite element analysis hearing compensation adaptive lens piezoelectric devices fluid-structure interaction moving mesh thermal expansion COMSOL petroleum acoustical-logging piezoelectric cylindrical-shell transducer center-frequency experimental-measurement piezoelectricity visual servo control stepping motor nano-positioner stick-slip piezoelectric energy harvester cut-in wind speed cut-out wind speed energy conservation method critical stress method piezoelectric actuator lever mechanism analytical model stick-slip frication nanopositioning stage piezoelectric hysteresis mark point recognition piecewise fitting compensation control piezo-electromagnetic coupling up-conversion vibration energy harvester multi-directional vibration low frequency vibration hysteresis compensation single-neuron adaptive control Hebb learning rules supervised learning vibration-based energy harvesting multimodal structures frequency tuning nonlinear resonator bistability magnetostatic force robot miniature traveling wave leg piezoelectric actuators (PEAs) asymmetric hysteresis Prandtl-Ishlinskii (PI) model polynomial-modified PI (PMPI) model feedforward hysteresis compensation PIN-PMN-PT 1-3 composite high frequency phased array |
Formato | Materiale a stampa ![]() |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Altri titoli varianti | Piezoelectric Transducers |
Record Nr. | UNINA-9910674028803321 |
Sanchez-Rojas Jose Luis
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Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2020 | ||
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Lo trovi qui: Univ. Federico II | ||
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Symmetry in Mechanical Engineering |
Autore | Glowacz Adam |
Pubbl/distr/stampa | Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2020 |
Descrizione fisica | 1 electronic resource (372 p.) |
Soggetto topico | History of engineering & technology |
Soggetto non controllato |
traveling waves
vibration stability self-excited vibration thin spur gear variational mode decomposition signal analysis time-frequency analysis center frequency method of double thresholds Hilbert transform finite-time control terminal sliding mode chattering neural network thin-walled structures higher-order deformation modes identification doubly symmetric cross-sections shell-like deformation dual mass flywheel absolute sensitivity relative sensitivity torsional vibration spring Dempster's rule evidence distance pattern recognition maritime surveillance customer needs bad parameters core problems design process conceptual design time-varying P-type IL method MFA control imprecise probability active control piezoelectric cantilever plate image processing particle distribution rolling bearings Fault diagnosis second-order tristable stochastic resonance seeker optimization algorithm output signal-to-noise ratio global optimization meta-heuristic butterfly optimization algorithm cross-entropy method engineering design problems grinding rheology breakage parameters relative viscosity tool wear state CNN BiLSTM attention mechanism signal features vibrations symmetries two-engine vehicle rear clutch front clutch vibration modes granulation on-line monitoring fertilizers parallel robot minimally invasive procedures algebraic modeling Study parameters fractional damping vibration dynamic behaviour hybrid mechanism helicopter abrasive belt grinding predictive model regression material removal electric vehicles PMSM auxiliary slot response surface methodology |
Formato | Materiale a stampa ![]() |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Record Nr. | UNINA-9910557134803321 |
Glowacz Adam
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Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2020 | ||
![]() | ||
Lo trovi qui: Univ. Federico II | ||
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