Advances in Architectural Acoustics |
Autore | Papadakis Nikolaos M |
Pubbl/distr/stampa | Basel, : MDPI - Multidisciplinary Digital Publishing Institute, 2022 |
Descrizione fisica | 1 electronic resource (356 p.) |
Soggetto topico |
Research & information: general
Mathematics & science |
Soggetto non controllato |
acoustic measurements
impulse response measurements omnidirectional source dodecahedron acoustic parameters sound source reverberation time ISO 3382 auralization sound absorption perforated panels micro-perforated panels resonant absorbers frequency domain PUFEM room acoustics wave-based method discretization error explicit method finite element method high order scheme room acoustic simulations time domain shoebox concert hall diffusive surfaces diffusers location acoustical parameters variable acoustics subjective investigation acoustics opera house intangible cultural heritage open-air ancient theatres ISO 3382-1 firecrackers building acoustics sound absorption coefficient prediction models supervised learning method worship space acoustics acoustics simulation acoustic heritage archaeo-acoustics acoustic subspaces FDTD simulation speech intelligibility open-plan offices spatial decay ISO 3382-3 room absorption office noise speech calculation models absorption scattering airflow resistivity long space coherent image source method sound-absorbing boundary sound field modeling scale-model experiment reflection power room response directional decay rates room modes eigenbeam processing spatial correlation concert hall acoustics lateral reflections shoebox typology spatial impression perception thresholds skeletal reflections reflection sequence seat dip effect seat height seat spacing mechanism |
Formato | Materiale a stampa |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Record Nr. | UNINA-9910580206703321 |
Papadakis Nikolaos M | ||
Basel, : MDPI - Multidisciplinary Digital Publishing Institute, 2022 | ||
Materiale a stampa | ||
Lo trovi qui: Univ. Federico II | ||
|
High Voltage Engineering and Applications |
Autore | El-Hag Ayman |
Pubbl/distr/stampa | MDPI - Multidisciplinary Digital Publishing Institute, 2020 |
Descrizione fisica | 1 electronic resource (304 p.) |
Soggetto non controllato |
artificial neural network
simulation high-frequency artificial flashover tests wide bandgap power modules tracking electrical field strength fast-rise square wave voltages FDTD simulation cable joint corona discharge feature selection post insulator earthing systems wind speed surface discharge oil/paper insulation oil-paper insulation high-magnitude currents and impulse polarity UFVM Tettex 9520 electrical tree flashover characteristics composite insulator partial discharge numerical modeling saline mechanism thermal parameters space charge density seasonal ion flow field denoising DDX 9121b temperature transformer asset management cavity discharge space/interface charge insulation health index heat transfer model leakage current machine learning partial discharges (PD) RF signal flashover high impulse conditions grounding electrodes generalized finite difference time domain curve fitting grounding plasma discharge outdoor insulators flashover dynamic model wavelet transform degradation thermal properties bipolar charge transport model UHF sensor cable random walk theory tracking test setup GIL pressure modelling non-uniform pollution between windward and leeward sides calibrator secondary arc polymeric insulation optical-UHF integrated detection shoreline dry band arcing photoelectric fusion pattern DDX 8003 XLPE silicone gel partial discharge modeling electric field analysis NSCT electrode’s geometry gas Comsol Multiphysics fast-impulses laying modes ageing cable ampacity residual resistance formulation finite element analysis thermal effect hydrophobicity soil resistivity charge simulation method short-circuit discharge dry band formation |
ISBN | 3-03928-717-6 |
Formato | Materiale a stampa |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Record Nr. | UNINA-9910404090803321 |
El-Hag Ayman | ||
MDPI - Multidisciplinary Digital Publishing Institute, 2020 | ||
Materiale a stampa | ||
Lo trovi qui: Univ. Federico II | ||
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