| 000 | 04837cam a2200457Ii 4500 | ||
|---|---|---|---|
| 001 | 95403 | ||
| 003 | ES-MaUEC | ||
| 005 | 20230102112702.0 | ||
| 006 | m o d | ||
| 007 | cr cnu|||unuuu | ||
| 008 | 170217s2017 sz ob 000 0 eng d | ||
| 020 | _a3319473484 | ||
| 020 |
_a3319473492 _q(electronic bk.) |
||
| 020 | _a9783319473482 | ||
| 020 |
_a9783319473499 _q(electronic bk.) |
||
| 020 |
_z9783319473482 _q(print) |
||
| 035 |
_a(OCoLC)972900333 _z(OCoLC)973157520 _z(OCoLC)973308075 _z(OCoLC)973372065 _z(OCoLC)973521942 _z(OCoLC)973761148 _z(OCoLC)973797291 _z(OCoLC)981873325 _z(OCoLC)992905487 _z(OCoLC)1005795243 _z(OCoLC)1012064197 |
||
| 040 |
_aN$T _cN$T _dEBLCP _dN$T _dIDEBK _dGW5XE _dYDX _dOCLCF _dNJR _dUAB _dCOO _dIOG _dAZU _dUWO _dUPM _dESU _dZ5A _dJBG _dIAD _dICW _dICN _dILO _dOTZ _dOCLCQ _dVT2 _dIDB _dU3W _dMERUC _dES-MaUEC _bspa |
||
| 050 | 4 |
_aTK5105.8857 _b2017 EB |
|
| 100 | 1 |
_aDomingues, Maria de Fátima F., _eautor |
|
| 245 | 1 | 0 |
_aOptical fiber sensors for loT and smart devices _cMaria de Fátima F. Domingues, Ayman Radwan. |
| 264 | 1 |
_aCham, Switzerland _bSpringer _c2017 |
|
| 300 | _a1 recurso en línea | ||
| 336 |
_aTexto _btxt _2rdacontent |
||
| 337 |
_aelectrónico _bc _2rdamedia |
||
| 338 |
_arecurso electrónico _bcr _2rdacarrier |
||
| 347 |
_atext file _bPDF _2rda |
||
| 490 | 0 | _aSpringerBriefs in electrical and computer engineering | |
| 500 |
_aSpringerLink _bSpringer Engineering eBooks 2017 English+International |
||
| 504 | _aIncluye referencias bibliográficas | ||
| 505 | 0 | _aPreface; Brief Outline; Reading Guide; References; Acknowledgments; Contents; About the Authors; Chapter 1: Principles of Optical Fiber Sensing; 1.1 Intensity; 1.1.1 Microbending; 1.1.2 Evanescent Field; 1.1.3 Two Fiber Coupling; 1.2 Phase Interferometer; 1.2.1 Mach Zehender; 1.2.2 Michelsen; 1.2.3 Fabry Perot Interferometer; 1.2.4 Sagnac Interferometer; 1.3 Wavelength; 1.3.1 Fiber Bragg Gratings; 1.3.2 Fluorescence; 1.4 Polarization; 1.5 Distributed OFS; 1.5.1 Brillouin; 1.5.2 Rayleigh; 1.5.3 Raman; 1.6 Summary; References; Chapter 2: Silica Optical Fiber Sensors Production Methods. | |
| 505 | 8 | _a2.1 Intensity Sensors2.1.1 Production Methods; 2.1.2 Typical Sensing Applications; 2.2 Phase Interferometer Sensors; 2.2.1 Production Methods; 2.2.2 Typical Sensing Applications; 2.3 Wavelength Sensors; 2.3.1 Production Methods; 2.3.2 Typical Sensing Applications; 2.4 Polarization Sensor; 2.4.1 Production Methods; 2.4.2 Typical Sensing Applications; 2.5 Distributed Optical Fiber Sensors; 2.5.1 Production Methods; 2.5.2 Typical Sensing Applications; 2.6 Summary; References; Chapter 3: Low Cost Silica Optical Fiber Sensors; 3.1 Cost-Effective OFS; 3.2 Cost-Effective FBGs. | |
| 505 | 8 | _a3.3 Fiber Optic Gyroscope (FOG)-A Cost Effective Application of OFS3.4 Distributed OFS; 3.5 Interferometric Sensors; 3.6 Summary; References; Chapter 4: Polymer Optical Fiber Sensors; 4.1 Introduction to POF; 4.2 POF Characteristics; 4.3 POF Sensing Mechanisms and Applications; 4.3.1 Intensity; 4.3.2 Interferometry; 4.3.3 Distributed Sensing; 4.3.4 FBGs in POF; 4.3.5 Microstructure POF Sensors; 4.4 Summary; References; Chapter 5: Optical Fiber Sensors in IoT; 5.1 Introduction to IoT; 5.1.1 Enablers of IoT; 5.1.2 Value Proposition of IoT; 5.1.3 Sensors in IoT; 5.1.4 Fiber Sensors in IoT. | |
| 505 | 8 | _a5.2 Smart Composite Materials and Structures5.3 Smart Wearable Devices; 5.4 eHealth Smart Applications; 5.5 Smart Cities; 5.5.1 Smart Buildings; 5.5.2 Smart Services; 5.5.3 Smart Mobility; 5.6 Summary; References; Chapter 6: Conclusion; References. | |
| 520 | 3 | _aThis brief provides a review of the evolution of optical fiber sensing solutions and related applications. Unique production methods are presented and discussed, highlighting their evolution and analyzing their complexity. Under this scope, this brief presents the existing silica optical fiber sensors and polymer optical fiber sensors solutions, comparing its field of action (sensitivity, accuracy), complexity of manufacture and economic cost. Special attention is given to low-cost production methods. This brief evaluates the different existing techniques, assessing the accuracy and suitability of these sensors for possible Internet of Things (IoT) integration in different considered scenarios. Critical analytical techniques, also covered in this brief, are expected to play a key role in the world of IoT and the smart city of tomorrow. | |
| 650 | 7 |
_aSensores ópticos _2embne _0(OCoLC)fst01909729 _0 _9146216 |
|
| 700 | 1 |
_aRadwan, Ayman, _d1976- _eautor |
|
| 856 | 4 | 0 |
_uhttps://go.openathens.net/redirector/universidadeuropea.es?url=http://link.springer.com/10.1007/978-3-319-47349-9 _zAcceso a este recurso digital (usuarios Universidad Europea de Madrid) |
| 988 | _aEBOOK, asignarmaterias, EBSPRINGER_2017B | ||
| 998 |
_b02/2018 _dz _e- _zSI |
||
| 999 |
_c95403 _d95403 _x1 |
||