Low-Power and High-Sensitivity Magnetic Sensors and Systems
Low-Power and High-Sensitivity Magnetic Sensors and Systems -- Contents -- Acknowledgments -- 1 Introduction -- 1.1 Overview -- 1.2 Magnetic Sensors -- 1.2.1 Fluxgates -- 1.2.2 Fluxgate Applications -- 1.3 Orthogonal Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fl...
Ausführliche Beschreibung
Autor*in: |
Weiss, Eyal [verfasserIn] |
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Format: |
E-Book |
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Sprache: |
Englisch |
Erschienen: |
Norwood: Artech House ; 2018 |
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Schlagwörter: |
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Umfang: |
1 Online-Ressource (255 pages) |
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Links: | |
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ISBN: |
978-1-63081-244-7 |
Katalog-ID: |
1045309265 |
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520 | |a Low-Power and High-Sensitivity Magnetic Sensors and Systems -- Contents -- Acknowledgments -- 1 Introduction -- 1.1 Overview -- 1.2 Magnetic Sensors -- 1.2.1 Fluxgates -- 1.2.2 Fluxgate Applications -- 1.3 Orthogonal Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fluxgates -- 1.3.3 Low-Power Orthogonal Fluxgates -- 1.3.4 Summary of the State of the Art -- 1.4 Reducing Power Consumption in Fluxgates -- 1.4.1 The Goal -- 1.4.2 Method to Reduce the Power Consumption -- 1.4.3 Core Saturation -- 1.4.4 Discontinuous Excitation Techniques -- 1.4.5 Sampling and Processing -- 1.5 Magnetic Systems -- 1.5.1 Why Low-Power Consumption Is Important -- 1.5.2 DC Jumps in Low-Power Fluxgate Magnetometers -- 1.5.3 Power Supply Lines -- 1.5.4 Data Lines -- 1.6 Magnetic Data Processing -- 1.6.1 Magnetic Anomaly Detection -- 1.6.2 Localization of Moving Objects -- References -- Selected Bibliography -- 2 Magnetic Systems -- 2.1 Overview -- 2.2 Noise from the Natural Environment -- 2.2.1 Clutter from the Magnetic Interactions in the Ionosphere -- 2.2.2 Magnetic Geology -- 2.2.3 Magnetic Hydrodynamics -- 2.3 Internal Sensor Noise and Clutter -- 2.3.1 Internal Sensor Magnetic Noise -- 2.3.2 Alignment Noise -- 2.3.3 Internal Electronic Noise -- 2.3.4 Internal Data Cable Noise -- 2.3.5 Noise from Power Lines -- 2.4 Environmental Anthropogenic Noise and Clutter -- 2.4.1 Clutter from Moving Ferromagnetic Objects -- 2.4.2 Clutter from Eddy Currents in Conducting Objects -- 2.4.3 External Power Supply Lines -- 2.4.4 External Data Lines -- 2.4.5 Noise and Clutter from Motion of Measurement System -- 2.5 Surveillance Systems -- 2.5.1 Detection Schemes -- 2.5.2 Sensor Arrays -- 2.5.3 Generic Surveillance Applications -- 2.6 Survey Systems -- 2.6.1 Unexploded Ordnance Detection -- 2.6.2 Maritime Magnetic Surveys | ||
520 | |a 2.6.3 Low-Power Survey Magnetometers -- References -- 3 Low-Power Fluxgates -- 3.1 Overview -- 3.2 A Tube-Core Orthogonal Fluxgate Operated in the Fundamental Mode -- 3.2.1 Tube Core Fluxgate Experiments -- 3.2.2 Optimal Excitation Parameters -- 3.2.3 Magnetic Noise Suppression -- 3.2.4 Fluxgate Sensitivity -- 3.2.5 Fluxgate Equivalent Magnetic Noise -- 3.2.6 Dominant Origin of the Noise -- 3.2.7 Tube Core Orthogonal Fluxgate Conclusion -- 3.3 Excess Magnetic Noise in Orthogonal Fluxgates Employing Discontinuous Excitation -- 3.3.1 Experimental Setup -- 3.3.2 Excitation Magnetic Field and Skin Effect -- 3.3.3 Distribution of the Magnetic Field in the Core -- 3.3.4 Domain Morphology -- 3.3.5 Method for Investigating Fluxgate Noise -- 3.3.6 Results -- 3.3.7 Discussion on Source of Magnetic Noise -- 3.3.8 Conclusion -- 3.4 Inhomogeneous Core Material -- 3.4.1 Inner Core Neutrality Interference with the Gating Effect -- 3.4.2 Perming Phenomenon -- 3.4.3 High-Power Consumption of Inner Core -- 3.4.4 Thermal Effects of Core Heating -- 3.4.5 Composite Wires -- 3.4.6 Conclusion -- 3.5 Noise Investigation of the Orthogonal Fluxgate Employing Alternating Direct Current Bias -- 3.5.1 Experimental Setup -- 3.5.2 Measurement Synchronization -- 3.5.3 Excess Noise Suppression -- 3.5.4 Alternating DC Bias Conclusion -- 3.6 DC Jumps in Low-Power Fluxgate Magnetometers -- 3.6.1 Model of DC Jumps in Parallel Fluxgates -- 3.6.2 Model of DC Jumps in Orthogonal Fluxgates -- 3.6.3 DC Jump Dynamic Model -- 3.6.4 DC Jumps' Dynamic Model in Amorphous Wire Core Orthogonal Fluxgates -- 3.6.5 DC Jumps Dynamic Model in Parallel Fluxgates -- References -- 4 Low-Power Sampling -- 4.1 Overview -- 4.1.1 Sampling Resolution -- 4.1.2 Sampling Options -- 4.1.3 Sampling of Low-Power Fluxgates -- 4.2 Sampling and Processing of an Orthogonal Fluxgate Output -- 4.2.1 Experimental Setup | ||
520 | |a 4.2.2 Digital Selective Bandpass Sampling Technique -- 4.2.3 Discussion -- 4.2.4 Conclusion on Digital Selective Bandpass Sampling -- 4.3 Duty Cycle Operation of an Orthogonal Fluxgate -- 4.3.1 Synthesis -- 4.3.2 Method -- 4.3.3 Experimental Setup -- 4.3.4 Experiment -- 4.3.5 Results -- 4.3.6 Conclusion -- 4.4 Concatenation of Discontinuous Operated Orthogonal Fluxgate -- 4.4.1 Noise Measurements and Analysis -- 4.4.2 Excitation Waveforms -- 4.4.3 Noise Measurements -- 4.4.4 Method for Eliminating the Excess Noise -- 4.4.5 Discontinuous Excitation Conclusion -- 4.5 Conclusion -- References -- 5 Magnetic Data Processing -- 5.1 Magnetic Anomaly Detection -- 5.1.1 Orthonormal Basis Functions Representation -- 5.1.2 Minimum Entropy Detection Filter -- 5.1.3 Periodic Anomaly Detection Filter -- 5.2 Magnetic Anomaly Localization -- 5.2.1 The Levenberg-Marquardt Localization Algorithm -- 5.2.2 Genetic Algorithm for Magnetic Dipole Localization -- References -- About the Authors -- Index | ||
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9781630812447 : electronic bk. 978-1-63081-244-7 9781630812430 (DE-627)1045309265 (DE-599)GBV1045309265 (EBC)EBC5625453 (EBR)ebr11641716 (EBL)EBL5625453 (EBP)038595303 DE-627 eng DE-627 rda eng 681.2 Weiss, Eyal verfasserin aut Low-Power and High-Sensitivity Magnetic Sensors and Systems Norwood Artech House 2018 1 Online-Ressource (255 pages) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Low-Power and High-Sensitivity Magnetic Sensors and Systems -- Contents -- Acknowledgments -- 1 Introduction -- 1.1 Overview -- 1.2 Magnetic Sensors -- 1.2.1 Fluxgates -- 1.2.2 Fluxgate Applications -- 1.3 Orthogonal Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fluxgates -- 1.3.3 Low-Power Orthogonal Fluxgates -- 1.3.4 Summary of the State of the Art -- 1.4 Reducing Power Consumption in Fluxgates -- 1.4.1 The Goal -- 1.4.2 Method to Reduce the Power Consumption -- 1.4.3 Core Saturation -- 1.4.4 Discontinuous Excitation Techniques -- 1.4.5 Sampling and Processing -- 1.5 Magnetic Systems -- 1.5.1 Why Low-Power Consumption Is Important -- 1.5.2 DC Jumps in Low-Power Fluxgate Magnetometers -- 1.5.3 Power Supply Lines -- 1.5.4 Data Lines -- 1.6 Magnetic Data Processing -- 1.6.1 Magnetic Anomaly Detection -- 1.6.2 Localization of Moving Objects -- References -- Selected Bibliography -- 2 Magnetic Systems -- 2.1 Overview -- 2.2 Noise from the Natural Environment -- 2.2.1 Clutter from the Magnetic Interactions in the Ionosphere -- 2.2.2 Magnetic Geology -- 2.2.3 Magnetic Hydrodynamics -- 2.3 Internal Sensor Noise and Clutter -- 2.3.1 Internal Sensor Magnetic Noise -- 2.3.2 Alignment Noise -- 2.3.3 Internal Electronic Noise -- 2.3.4 Internal Data Cable Noise -- 2.3.5 Noise from Power Lines -- 2.4 Environmental Anthropogenic Noise and Clutter -- 2.4.1 Clutter from Moving Ferromagnetic Objects -- 2.4.2 Clutter from Eddy Currents in Conducting Objects -- 2.4.3 External Power Supply Lines -- 2.4.4 External Data Lines -- 2.4.5 Noise and Clutter from Motion of Measurement System -- 2.5 Surveillance Systems -- 2.5.1 Detection Schemes -- 2.5.2 Sensor Arrays -- 2.5.3 Generic Surveillance Applications -- 2.6 Survey Systems -- 2.6.1 Unexploded Ordnance Detection -- 2.6.2 Maritime Magnetic Surveys 2.6.3 Low-Power Survey Magnetometers -- References -- 3 Low-Power Fluxgates -- 3.1 Overview -- 3.2 A Tube-Core Orthogonal Fluxgate Operated in the Fundamental Mode -- 3.2.1 Tube Core Fluxgate Experiments -- 3.2.2 Optimal Excitation Parameters -- 3.2.3 Magnetic Noise Suppression -- 3.2.4 Fluxgate Sensitivity -- 3.2.5 Fluxgate Equivalent Magnetic Noise -- 3.2.6 Dominant Origin of the Noise -- 3.2.7 Tube Core Orthogonal Fluxgate Conclusion -- 3.3 Excess Magnetic Noise in Orthogonal Fluxgates Employing Discontinuous Excitation -- 3.3.1 Experimental Setup -- 3.3.2 Excitation Magnetic Field and Skin Effect -- 3.3.3 Distribution of the Magnetic Field in the Core -- 3.3.4 Domain Morphology -- 3.3.5 Method for Investigating Fluxgate Noise -- 3.3.6 Results -- 3.3.7 Discussion on Source of Magnetic Noise -- 3.3.8 Conclusion -- 3.4 Inhomogeneous Core Material -- 3.4.1 Inner Core Neutrality Interference with the Gating Effect -- 3.4.2 Perming Phenomenon -- 3.4.3 High-Power Consumption of Inner Core -- 3.4.4 Thermal Effects of Core Heating -- 3.4.5 Composite Wires -- 3.4.6 Conclusion -- 3.5 Noise Investigation of the Orthogonal Fluxgate Employing Alternating Direct Current Bias -- 3.5.1 Experimental Setup -- 3.5.2 Measurement Synchronization -- 3.5.3 Excess Noise Suppression -- 3.5.4 Alternating DC Bias Conclusion -- 3.6 DC Jumps in Low-Power Fluxgate Magnetometers -- 3.6.1 Model of DC Jumps in Parallel Fluxgates -- 3.6.2 Model of DC Jumps in Orthogonal Fluxgates -- 3.6.3 DC Jump Dynamic Model -- 3.6.4 DC Jumps' Dynamic Model in Amorphous Wire Core Orthogonal Fluxgates -- 3.6.5 DC Jumps Dynamic Model in Parallel Fluxgates -- References -- 4 Low-Power Sampling -- 4.1 Overview -- 4.1.1 Sampling Resolution -- 4.1.2 Sampling Options -- 4.1.3 Sampling of Low-Power Fluxgates -- 4.2 Sampling and Processing of an Orthogonal Fluxgate Output -- 4.2.1 Experimental Setup 4.2.2 Digital Selective Bandpass Sampling Technique -- 4.2.3 Discussion -- 4.2.4 Conclusion on Digital Selective Bandpass Sampling -- 4.3 Duty Cycle Operation of an Orthogonal Fluxgate -- 4.3.1 Synthesis -- 4.3.2 Method -- 4.3.3 Experimental Setup -- 4.3.4 Experiment -- 4.3.5 Results -- 4.3.6 Conclusion -- 4.4 Concatenation of Discontinuous Operated Orthogonal Fluxgate -- 4.4.1 Noise Measurements and Analysis -- 4.4.2 Excitation Waveforms -- 4.4.3 Noise Measurements -- 4.4.4 Method for Eliminating the Excess Noise -- 4.4.5 Discontinuous Excitation Conclusion -- 4.5 Conclusion -- References -- 5 Magnetic Data Processing -- 5.1 Magnetic Anomaly Detection -- 5.1.1 Orthonormal Basis Functions Representation -- 5.1.2 Minimum Entropy Detection Filter -- 5.1.3 Periodic Anomaly Detection Filter -- 5.2 Magnetic Anomaly Localization -- 5.2.1 The Levenberg-Marquardt Localization Algorithm -- 5.2.2 Genetic Algorithm for Magnetic Dipole Localization -- References -- About the Authors -- Index Magnetometers Magnetometers Electronic books Alimi, Roger oth 9781630812430 Erscheint auch als Druck-Ausgabe Weiss, Eyal Low-Power and High-Sensitivity Magnetic Sensors and Systems Norwood : Artech House,c2018 9781630812430 https://ebookcentral.proquest.com/lib/kxp/detail.action?docID=5625453 X:EBC Aggregator lizenzpflichtig Volltext ZDB-30-PAD ZDB-30-PQE GBV_ILN_24 ISIL_DE-8 SYSFLAG_1 GBV_KXP GBV_ILN_39 ISIL_DE-547 GBV_ILN_60 ISIL_DE-705 GBV_ILN_65 ISIL_DE-3 GBV_ILN_206 ISIL_DE-Brg3 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2021 ISIL_DE-289 GBV_ILN_2026 ISIL_DE-100 GBV_ILN_2148 ISIL_DE-950 BO 045F 681.2 24 01 0008 3955004856 00 --%%-- --%%-- s --%%-- olr-ddaebc Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Zugriff auf den Volltext nur für Universitätsangehörige innerhalb des Netzes der Universität Kiel (Campuslizenz). z 17-07-21 39 01 0547 4456639156 00 --%%-- --%%-- s --%%-- Proquest_AC pq ke 12-01-24 60 01 0705 4452629466 00 --%%-- --%%-- s --%%-- Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Nur für Angehörige der HSU: Volltextzugang von außerhalb des Campus mit Anmeldung über Shibboleth mit Ihrer Bibliothekskennung z 10-01-24 65 01 0003 3977059785 Proquest-AcadCompl Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. 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9781630812447 : electronic bk. 978-1-63081-244-7 9781630812430 (DE-627)1045309265 (DE-599)GBV1045309265 (EBC)EBC5625453 (EBR)ebr11641716 (EBL)EBL5625453 (EBP)038595303 DE-627 eng DE-627 rda eng 681.2 Weiss, Eyal verfasserin aut Low-Power and High-Sensitivity Magnetic Sensors and Systems Norwood Artech House 2018 1 Online-Ressource (255 pages) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Low-Power and High-Sensitivity Magnetic Sensors and Systems -- Contents -- Acknowledgments -- 1 Introduction -- 1.1 Overview -- 1.2 Magnetic Sensors -- 1.2.1 Fluxgates -- 1.2.2 Fluxgate Applications -- 1.3 Orthogonal Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fluxgates -- 1.3.3 Low-Power Orthogonal Fluxgates -- 1.3.4 Summary of the State of the Art -- 1.4 Reducing Power Consumption in Fluxgates -- 1.4.1 The Goal -- 1.4.2 Method to Reduce the Power Consumption -- 1.4.3 Core Saturation -- 1.4.4 Discontinuous Excitation Techniques -- 1.4.5 Sampling and Processing -- 1.5 Magnetic Systems -- 1.5.1 Why Low-Power Consumption Is Important -- 1.5.2 DC Jumps in Low-Power Fluxgate Magnetometers -- 1.5.3 Power Supply Lines -- 1.5.4 Data Lines -- 1.6 Magnetic Data Processing -- 1.6.1 Magnetic Anomaly Detection -- 1.6.2 Localization of Moving Objects -- References -- Selected Bibliography -- 2 Magnetic Systems -- 2.1 Overview -- 2.2 Noise from the Natural Environment -- 2.2.1 Clutter from the Magnetic Interactions in the Ionosphere -- 2.2.2 Magnetic Geology -- 2.2.3 Magnetic Hydrodynamics -- 2.3 Internal Sensor Noise and Clutter -- 2.3.1 Internal Sensor Magnetic Noise -- 2.3.2 Alignment Noise -- 2.3.3 Internal Electronic Noise -- 2.3.4 Internal Data Cable Noise -- 2.3.5 Noise from Power Lines -- 2.4 Environmental Anthropogenic Noise and Clutter -- 2.4.1 Clutter from Moving Ferromagnetic Objects -- 2.4.2 Clutter from Eddy Currents in Conducting Objects -- 2.4.3 External Power Supply Lines -- 2.4.4 External Data Lines -- 2.4.5 Noise and Clutter from Motion of Measurement System -- 2.5 Surveillance Systems -- 2.5.1 Detection Schemes -- 2.5.2 Sensor Arrays -- 2.5.3 Generic Surveillance Applications -- 2.6 Survey Systems -- 2.6.1 Unexploded Ordnance Detection -- 2.6.2 Maritime Magnetic Surveys 2.6.3 Low-Power Survey Magnetometers -- References -- 3 Low-Power Fluxgates -- 3.1 Overview -- 3.2 A Tube-Core Orthogonal Fluxgate Operated in the Fundamental Mode -- 3.2.1 Tube Core Fluxgate Experiments -- 3.2.2 Optimal Excitation Parameters -- 3.2.3 Magnetic Noise Suppression -- 3.2.4 Fluxgate Sensitivity -- 3.2.5 Fluxgate Equivalent Magnetic Noise -- 3.2.6 Dominant Origin of the Noise -- 3.2.7 Tube Core Orthogonal Fluxgate Conclusion -- 3.3 Excess Magnetic Noise in Orthogonal Fluxgates Employing Discontinuous Excitation -- 3.3.1 Experimental Setup -- 3.3.2 Excitation Magnetic Field and Skin Effect -- 3.3.3 Distribution of the Magnetic Field in the Core -- 3.3.4 Domain Morphology -- 3.3.5 Method for Investigating Fluxgate Noise -- 3.3.6 Results -- 3.3.7 Discussion on Source of Magnetic Noise -- 3.3.8 Conclusion -- 3.4 Inhomogeneous Core Material -- 3.4.1 Inner Core Neutrality Interference with the Gating Effect -- 3.4.2 Perming Phenomenon -- 3.4.3 High-Power Consumption of Inner Core -- 3.4.4 Thermal Effects of Core Heating -- 3.4.5 Composite Wires -- 3.4.6 Conclusion -- 3.5 Noise Investigation of the Orthogonal Fluxgate Employing Alternating Direct Current Bias -- 3.5.1 Experimental Setup -- 3.5.2 Measurement Synchronization -- 3.5.3 Excess Noise Suppression -- 3.5.4 Alternating DC Bias Conclusion -- 3.6 DC Jumps in Low-Power Fluxgate Magnetometers -- 3.6.1 Model of DC Jumps in Parallel Fluxgates -- 3.6.2 Model of DC Jumps in Orthogonal Fluxgates -- 3.6.3 DC Jump Dynamic Model -- 3.6.4 DC Jumps' Dynamic Model in Amorphous Wire Core Orthogonal Fluxgates -- 3.6.5 DC Jumps Dynamic Model in Parallel Fluxgates -- References -- 4 Low-Power Sampling -- 4.1 Overview -- 4.1.1 Sampling Resolution -- 4.1.2 Sampling Options -- 4.1.3 Sampling of Low-Power Fluxgates -- 4.2 Sampling and Processing of an Orthogonal Fluxgate Output -- 4.2.1 Experimental Setup 4.2.2 Digital Selective Bandpass Sampling Technique -- 4.2.3 Discussion -- 4.2.4 Conclusion on Digital Selective Bandpass Sampling -- 4.3 Duty Cycle Operation of an Orthogonal Fluxgate -- 4.3.1 Synthesis -- 4.3.2 Method -- 4.3.3 Experimental Setup -- 4.3.4 Experiment -- 4.3.5 Results -- 4.3.6 Conclusion -- 4.4 Concatenation of Discontinuous Operated Orthogonal Fluxgate -- 4.4.1 Noise Measurements and Analysis -- 4.4.2 Excitation Waveforms -- 4.4.3 Noise Measurements -- 4.4.4 Method for Eliminating the Excess Noise -- 4.4.5 Discontinuous Excitation Conclusion -- 4.5 Conclusion -- References -- 5 Magnetic Data Processing -- 5.1 Magnetic Anomaly Detection -- 5.1.1 Orthonormal Basis Functions Representation -- 5.1.2 Minimum Entropy Detection Filter -- 5.1.3 Periodic Anomaly Detection Filter -- 5.2 Magnetic Anomaly Localization -- 5.2.1 The Levenberg-Marquardt Localization Algorithm -- 5.2.2 Genetic Algorithm for Magnetic Dipole Localization -- References -- About the Authors -- Index Magnetometers Magnetometers Electronic books Alimi, Roger oth 9781630812430 Erscheint auch als Druck-Ausgabe Weiss, Eyal Low-Power and High-Sensitivity Magnetic Sensors and Systems Norwood : Artech House,c2018 9781630812430 https://ebookcentral.proquest.com/lib/kxp/detail.action?docID=5625453 X:EBC Aggregator lizenzpflichtig Volltext ZDB-30-PAD ZDB-30-PQE GBV_ILN_24 ISIL_DE-8 SYSFLAG_1 GBV_KXP GBV_ILN_39 ISIL_DE-547 GBV_ILN_60 ISIL_DE-705 GBV_ILN_65 ISIL_DE-3 GBV_ILN_206 ISIL_DE-Brg3 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2021 ISIL_DE-289 GBV_ILN_2026 ISIL_DE-100 GBV_ILN_2148 ISIL_DE-950 BO 045F 681.2 24 01 0008 3955004856 00 --%%-- --%%-- s --%%-- olr-ddaebc Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Zugriff auf den Volltext nur für Universitätsangehörige innerhalb des Netzes der Universität Kiel (Campuslizenz). z 17-07-21 39 01 0547 4456639156 00 --%%-- --%%-- s --%%-- Proquest_AC pq ke 12-01-24 60 01 0705 4452629466 00 --%%-- --%%-- s --%%-- Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Nur für Angehörige der HSU: Volltextzugang von außerhalb des Campus mit Anmeldung über Shibboleth mit Ihrer Bibliothekskennung z 10-01-24 65 01 0003 3977059785 Proquest-AcadCompl Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. k3o 10-09-21 206 01 3350 387899611X 00 --%%-- Online-Ressource g --%%-- OLR-EBL If you are a ThHF affiliate and the E-Book is not fully accessible, please send us a purchase or short time loan request. All others: Inter-library loans and guest access on campus premises is not possible. zh 27-02-21 370 01 4370 3976631582 olr-dda ebc Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 09-09-21 2021 01 DE-289 3844303847 00 --%%-- --%%-- --%%-- n l01 28-01-21 2026 01 DE-100 3967032809 00 --%%-- --%%-- --%%-- k l01 13-08-21 2148 01 DE-950 4578353788 00 --%%-- eBook ProQuest --%%-- n PDA-Angebot - nur für Hochschulangehörige der HfWU l01 10-09-24 24 01 0008 https://ebookcentral.proquest.com/lib/christianalbrechts/detail.action?docID=5625453 39 01 0547 https://ebookcentral.proquest.com/lib/ufb/detail.action?docID=5625453 60 01 0705 https://ebookcentral.proquest.com/lib/helmutschmidt/detail.action?docID=5625453 65 01 0003 https://ebookcentral.proquest.com/lib/ulbhalle-ebooks/detail.action?docID=5625453 206 01 3350 Full Text only for ThHf affiliates https://thh-friedensau.idm.oclc.org/login?url=http://ebookcentral.proquest.com/lib/thhfriedensau/detail.action?docID=5625453 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von auβerhalb nur für HCU-Angehörige möglich https://ebookcentral.proquest.com/lib/hcuhamburg-ebooks/detail.action?docID=5625453 2021 01 DE-289 https://ebookcentral.proquest.com/lib/kiz-uniulm/detail.action?docID=5625453 2026 01 DE-100 https://ebookcentral.proquest.com/lib/ubhohenheim/detail.action?docID=5625453 2148 01 DE-950 https://ebookcentral.proquest.com/lib/hfwu/detail.action?docID=5625453 39 01 0547 z10288o 24 01 0008 olr-ddaebc 24 01 0008 olr-mieteebc 39 01 0547 Proquest_AC 39 01 0547 eb 65 01 0003 Proquest-AcadCompl 206 01 3350 OLR-EBL 370 01 4370 olr-dda ebc |
allfields_unstemmed |
9781630812447 : electronic bk. 978-1-63081-244-7 9781630812430 (DE-627)1045309265 (DE-599)GBV1045309265 (EBC)EBC5625453 (EBR)ebr11641716 (EBL)EBL5625453 (EBP)038595303 DE-627 eng DE-627 rda eng 681.2 Weiss, Eyal verfasserin aut Low-Power and High-Sensitivity Magnetic Sensors and Systems Norwood Artech House 2018 1 Online-Ressource (255 pages) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Low-Power and High-Sensitivity Magnetic Sensors and Systems -- Contents -- Acknowledgments -- 1 Introduction -- 1.1 Overview -- 1.2 Magnetic Sensors -- 1.2.1 Fluxgates -- 1.2.2 Fluxgate Applications -- 1.3 Orthogonal Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fluxgates -- 1.3.3 Low-Power Orthogonal Fluxgates -- 1.3.4 Summary of the State of the Art -- 1.4 Reducing Power Consumption in Fluxgates -- 1.4.1 The Goal -- 1.4.2 Method to Reduce the Power Consumption -- 1.4.3 Core Saturation -- 1.4.4 Discontinuous Excitation Techniques -- 1.4.5 Sampling and Processing -- 1.5 Magnetic Systems -- 1.5.1 Why Low-Power Consumption Is Important -- 1.5.2 DC Jumps in Low-Power Fluxgate Magnetometers -- 1.5.3 Power Supply Lines -- 1.5.4 Data Lines -- 1.6 Magnetic Data Processing -- 1.6.1 Magnetic Anomaly Detection -- 1.6.2 Localization of Moving Objects -- References -- Selected Bibliography -- 2 Magnetic Systems -- 2.1 Overview -- 2.2 Noise from the Natural Environment -- 2.2.1 Clutter from the Magnetic Interactions in the Ionosphere -- 2.2.2 Magnetic Geology -- 2.2.3 Magnetic Hydrodynamics -- 2.3 Internal Sensor Noise and Clutter -- 2.3.1 Internal Sensor Magnetic Noise -- 2.3.2 Alignment Noise -- 2.3.3 Internal Electronic Noise -- 2.3.4 Internal Data Cable Noise -- 2.3.5 Noise from Power Lines -- 2.4 Environmental Anthropogenic Noise and Clutter -- 2.4.1 Clutter from Moving Ferromagnetic Objects -- 2.4.2 Clutter from Eddy Currents in Conducting Objects -- 2.4.3 External Power Supply Lines -- 2.4.4 External Data Lines -- 2.4.5 Noise and Clutter from Motion of Measurement System -- 2.5 Surveillance Systems -- 2.5.1 Detection Schemes -- 2.5.2 Sensor Arrays -- 2.5.3 Generic Surveillance Applications -- 2.6 Survey Systems -- 2.6.1 Unexploded Ordnance Detection -- 2.6.2 Maritime Magnetic Surveys 2.6.3 Low-Power Survey Magnetometers -- References -- 3 Low-Power Fluxgates -- 3.1 Overview -- 3.2 A Tube-Core Orthogonal Fluxgate Operated in the Fundamental Mode -- 3.2.1 Tube Core Fluxgate Experiments -- 3.2.2 Optimal Excitation Parameters -- 3.2.3 Magnetic Noise Suppression -- 3.2.4 Fluxgate Sensitivity -- 3.2.5 Fluxgate Equivalent Magnetic Noise -- 3.2.6 Dominant Origin of the Noise -- 3.2.7 Tube Core Orthogonal Fluxgate Conclusion -- 3.3 Excess Magnetic Noise in Orthogonal Fluxgates Employing Discontinuous Excitation -- 3.3.1 Experimental Setup -- 3.3.2 Excitation Magnetic Field and Skin Effect -- 3.3.3 Distribution of the Magnetic Field in the Core -- 3.3.4 Domain Morphology -- 3.3.5 Method for Investigating Fluxgate Noise -- 3.3.6 Results -- 3.3.7 Discussion on Source of Magnetic Noise -- 3.3.8 Conclusion -- 3.4 Inhomogeneous Core Material -- 3.4.1 Inner Core Neutrality Interference with the Gating Effect -- 3.4.2 Perming Phenomenon -- 3.4.3 High-Power Consumption of Inner Core -- 3.4.4 Thermal Effects of Core Heating -- 3.4.5 Composite Wires -- 3.4.6 Conclusion -- 3.5 Noise Investigation of the Orthogonal Fluxgate Employing Alternating Direct Current Bias -- 3.5.1 Experimental Setup -- 3.5.2 Measurement Synchronization -- 3.5.3 Excess Noise Suppression -- 3.5.4 Alternating DC Bias Conclusion -- 3.6 DC Jumps in Low-Power Fluxgate Magnetometers -- 3.6.1 Model of DC Jumps in Parallel Fluxgates -- 3.6.2 Model of DC Jumps in Orthogonal Fluxgates -- 3.6.3 DC Jump Dynamic Model -- 3.6.4 DC Jumps' Dynamic Model in Amorphous Wire Core Orthogonal Fluxgates -- 3.6.5 DC Jumps Dynamic Model in Parallel Fluxgates -- References -- 4 Low-Power Sampling -- 4.1 Overview -- 4.1.1 Sampling Resolution -- 4.1.2 Sampling Options -- 4.1.3 Sampling of Low-Power Fluxgates -- 4.2 Sampling and Processing of an Orthogonal Fluxgate Output -- 4.2.1 Experimental Setup 4.2.2 Digital Selective Bandpass Sampling Technique -- 4.2.3 Discussion -- 4.2.4 Conclusion on Digital Selective Bandpass Sampling -- 4.3 Duty Cycle Operation of an Orthogonal Fluxgate -- 4.3.1 Synthesis -- 4.3.2 Method -- 4.3.3 Experimental Setup -- 4.3.4 Experiment -- 4.3.5 Results -- 4.3.6 Conclusion -- 4.4 Concatenation of Discontinuous Operated Orthogonal Fluxgate -- 4.4.1 Noise Measurements and Analysis -- 4.4.2 Excitation Waveforms -- 4.4.3 Noise Measurements -- 4.4.4 Method for Eliminating the Excess Noise -- 4.4.5 Discontinuous Excitation Conclusion -- 4.5 Conclusion -- References -- 5 Magnetic Data Processing -- 5.1 Magnetic Anomaly Detection -- 5.1.1 Orthonormal Basis Functions Representation -- 5.1.2 Minimum Entropy Detection Filter -- 5.1.3 Periodic Anomaly Detection Filter -- 5.2 Magnetic Anomaly Localization -- 5.2.1 The Levenberg-Marquardt Localization Algorithm -- 5.2.2 Genetic Algorithm for Magnetic Dipole Localization -- References -- About the Authors -- Index Magnetometers Magnetometers Electronic books Alimi, Roger oth 9781630812430 Erscheint auch als Druck-Ausgabe Weiss, Eyal Low-Power and High-Sensitivity Magnetic Sensors and Systems Norwood : Artech House,c2018 9781630812430 https://ebookcentral.proquest.com/lib/kxp/detail.action?docID=5625453 X:EBC Aggregator lizenzpflichtig Volltext ZDB-30-PAD ZDB-30-PQE GBV_ILN_24 ISIL_DE-8 SYSFLAG_1 GBV_KXP GBV_ILN_39 ISIL_DE-547 GBV_ILN_60 ISIL_DE-705 GBV_ILN_65 ISIL_DE-3 GBV_ILN_206 ISIL_DE-Brg3 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2021 ISIL_DE-289 GBV_ILN_2026 ISIL_DE-100 GBV_ILN_2148 ISIL_DE-950 BO 045F 681.2 24 01 0008 3955004856 00 --%%-- --%%-- s --%%-- olr-ddaebc Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Zugriff auf den Volltext nur für Universitätsangehörige innerhalb des Netzes der Universität Kiel (Campuslizenz). z 17-07-21 39 01 0547 4456639156 00 --%%-- --%%-- s --%%-- Proquest_AC pq ke 12-01-24 60 01 0705 4452629466 00 --%%-- --%%-- s --%%-- Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Nur für Angehörige der HSU: Volltextzugang von außerhalb des Campus mit Anmeldung über Shibboleth mit Ihrer Bibliothekskennung z 10-01-24 65 01 0003 3977059785 Proquest-AcadCompl Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. k3o 10-09-21 206 01 3350 387899611X 00 --%%-- Online-Ressource g --%%-- OLR-EBL If you are a ThHF affiliate and the E-Book is not fully accessible, please send us a purchase or short time loan request. All others: Inter-library loans and guest access on campus premises is not possible. zh 27-02-21 370 01 4370 3976631582 olr-dda ebc Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 09-09-21 2021 01 DE-289 3844303847 00 --%%-- --%%-- --%%-- n l01 28-01-21 2026 01 DE-100 3967032809 00 --%%-- --%%-- --%%-- k l01 13-08-21 2148 01 DE-950 4578353788 00 --%%-- eBook ProQuest --%%-- n PDA-Angebot - nur für Hochschulangehörige der HfWU l01 10-09-24 24 01 0008 https://ebookcentral.proquest.com/lib/christianalbrechts/detail.action?docID=5625453 39 01 0547 https://ebookcentral.proquest.com/lib/ufb/detail.action?docID=5625453 60 01 0705 https://ebookcentral.proquest.com/lib/helmutschmidt/detail.action?docID=5625453 65 01 0003 https://ebookcentral.proquest.com/lib/ulbhalle-ebooks/detail.action?docID=5625453 206 01 3350 Full Text only for ThHf affiliates https://thh-friedensau.idm.oclc.org/login?url=http://ebookcentral.proquest.com/lib/thhfriedensau/detail.action?docID=5625453 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von auβerhalb nur für HCU-Angehörige möglich https://ebookcentral.proquest.com/lib/hcuhamburg-ebooks/detail.action?docID=5625453 2021 01 DE-289 https://ebookcentral.proquest.com/lib/kiz-uniulm/detail.action?docID=5625453 2026 01 DE-100 https://ebookcentral.proquest.com/lib/ubhohenheim/detail.action?docID=5625453 2148 01 DE-950 https://ebookcentral.proquest.com/lib/hfwu/detail.action?docID=5625453 39 01 0547 z10288o 24 01 0008 olr-ddaebc 24 01 0008 olr-mieteebc 39 01 0547 Proquest_AC 39 01 0547 eb 65 01 0003 Proquest-AcadCompl 206 01 3350 OLR-EBL 370 01 4370 olr-dda ebc |
allfieldsGer |
9781630812447 : electronic bk. 978-1-63081-244-7 9781630812430 (DE-627)1045309265 (DE-599)GBV1045309265 (EBC)EBC5625453 (EBR)ebr11641716 (EBL)EBL5625453 (EBP)038595303 DE-627 eng DE-627 rda eng 681.2 Weiss, Eyal verfasserin aut Low-Power and High-Sensitivity Magnetic Sensors and Systems Norwood Artech House 2018 1 Online-Ressource (255 pages) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Low-Power and High-Sensitivity Magnetic Sensors and Systems -- Contents -- Acknowledgments -- 1 Introduction -- 1.1 Overview -- 1.2 Magnetic Sensors -- 1.2.1 Fluxgates -- 1.2.2 Fluxgate Applications -- 1.3 Orthogonal Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fluxgates -- 1.3.3 Low-Power Orthogonal Fluxgates -- 1.3.4 Summary of the State of the Art -- 1.4 Reducing Power Consumption in Fluxgates -- 1.4.1 The Goal -- 1.4.2 Method to Reduce the Power Consumption -- 1.4.3 Core Saturation -- 1.4.4 Discontinuous Excitation Techniques -- 1.4.5 Sampling and Processing -- 1.5 Magnetic Systems -- 1.5.1 Why Low-Power Consumption Is Important -- 1.5.2 DC Jumps in Low-Power Fluxgate Magnetometers -- 1.5.3 Power Supply Lines -- 1.5.4 Data Lines -- 1.6 Magnetic Data Processing -- 1.6.1 Magnetic Anomaly Detection -- 1.6.2 Localization of Moving Objects -- References -- Selected Bibliography -- 2 Magnetic Systems -- 2.1 Overview -- 2.2 Noise from the Natural Environment -- 2.2.1 Clutter from the Magnetic Interactions in the Ionosphere -- 2.2.2 Magnetic Geology -- 2.2.3 Magnetic Hydrodynamics -- 2.3 Internal Sensor Noise and Clutter -- 2.3.1 Internal Sensor Magnetic Noise -- 2.3.2 Alignment Noise -- 2.3.3 Internal Electronic Noise -- 2.3.4 Internal Data Cable Noise -- 2.3.5 Noise from Power Lines -- 2.4 Environmental Anthropogenic Noise and Clutter -- 2.4.1 Clutter from Moving Ferromagnetic Objects -- 2.4.2 Clutter from Eddy Currents in Conducting Objects -- 2.4.3 External Power Supply Lines -- 2.4.4 External Data Lines -- 2.4.5 Noise and Clutter from Motion of Measurement System -- 2.5 Surveillance Systems -- 2.5.1 Detection Schemes -- 2.5.2 Sensor Arrays -- 2.5.3 Generic Surveillance Applications -- 2.6 Survey Systems -- 2.6.1 Unexploded Ordnance Detection -- 2.6.2 Maritime Magnetic Surveys 2.6.3 Low-Power Survey Magnetometers -- References -- 3 Low-Power Fluxgates -- 3.1 Overview -- 3.2 A Tube-Core Orthogonal Fluxgate Operated in the Fundamental Mode -- 3.2.1 Tube Core Fluxgate Experiments -- 3.2.2 Optimal Excitation Parameters -- 3.2.3 Magnetic Noise Suppression -- 3.2.4 Fluxgate Sensitivity -- 3.2.5 Fluxgate Equivalent Magnetic Noise -- 3.2.6 Dominant Origin of the Noise -- 3.2.7 Tube Core Orthogonal Fluxgate Conclusion -- 3.3 Excess Magnetic Noise in Orthogonal Fluxgates Employing Discontinuous Excitation -- 3.3.1 Experimental Setup -- 3.3.2 Excitation Magnetic Field and Skin Effect -- 3.3.3 Distribution of the Magnetic Field in the Core -- 3.3.4 Domain Morphology -- 3.3.5 Method for Investigating Fluxgate Noise -- 3.3.6 Results -- 3.3.7 Discussion on Source of Magnetic Noise -- 3.3.8 Conclusion -- 3.4 Inhomogeneous Core Material -- 3.4.1 Inner Core Neutrality Interference with the Gating Effect -- 3.4.2 Perming Phenomenon -- 3.4.3 High-Power Consumption of Inner Core -- 3.4.4 Thermal Effects of Core Heating -- 3.4.5 Composite Wires -- 3.4.6 Conclusion -- 3.5 Noise Investigation of the Orthogonal Fluxgate Employing Alternating Direct Current Bias -- 3.5.1 Experimental Setup -- 3.5.2 Measurement Synchronization -- 3.5.3 Excess Noise Suppression -- 3.5.4 Alternating DC Bias Conclusion -- 3.6 DC Jumps in Low-Power Fluxgate Magnetometers -- 3.6.1 Model of DC Jumps in Parallel Fluxgates -- 3.6.2 Model of DC Jumps in Orthogonal Fluxgates -- 3.6.3 DC Jump Dynamic Model -- 3.6.4 DC Jumps' Dynamic Model in Amorphous Wire Core Orthogonal Fluxgates -- 3.6.5 DC Jumps Dynamic Model in Parallel Fluxgates -- References -- 4 Low-Power Sampling -- 4.1 Overview -- 4.1.1 Sampling Resolution -- 4.1.2 Sampling Options -- 4.1.3 Sampling of Low-Power Fluxgates -- 4.2 Sampling and Processing of an Orthogonal Fluxgate Output -- 4.2.1 Experimental Setup 4.2.2 Digital Selective Bandpass Sampling Technique -- 4.2.3 Discussion -- 4.2.4 Conclusion on Digital Selective Bandpass Sampling -- 4.3 Duty Cycle Operation of an Orthogonal Fluxgate -- 4.3.1 Synthesis -- 4.3.2 Method -- 4.3.3 Experimental Setup -- 4.3.4 Experiment -- 4.3.5 Results -- 4.3.6 Conclusion -- 4.4 Concatenation of Discontinuous Operated Orthogonal Fluxgate -- 4.4.1 Noise Measurements and Analysis -- 4.4.2 Excitation Waveforms -- 4.4.3 Noise Measurements -- 4.4.4 Method for Eliminating the Excess Noise -- 4.4.5 Discontinuous Excitation Conclusion -- 4.5 Conclusion -- References -- 5 Magnetic Data Processing -- 5.1 Magnetic Anomaly Detection -- 5.1.1 Orthonormal Basis Functions Representation -- 5.1.2 Minimum Entropy Detection Filter -- 5.1.3 Periodic Anomaly Detection Filter -- 5.2 Magnetic Anomaly Localization -- 5.2.1 The Levenberg-Marquardt Localization Algorithm -- 5.2.2 Genetic Algorithm for Magnetic Dipole Localization -- References -- About the Authors -- Index Magnetometers Magnetometers Electronic books Alimi, Roger oth 9781630812430 Erscheint auch als Druck-Ausgabe Weiss, Eyal Low-Power and High-Sensitivity Magnetic Sensors and Systems Norwood : Artech House,c2018 9781630812430 https://ebookcentral.proquest.com/lib/kxp/detail.action?docID=5625453 X:EBC Aggregator lizenzpflichtig Volltext ZDB-30-PAD ZDB-30-PQE GBV_ILN_24 ISIL_DE-8 SYSFLAG_1 GBV_KXP GBV_ILN_39 ISIL_DE-547 GBV_ILN_60 ISIL_DE-705 GBV_ILN_65 ISIL_DE-3 GBV_ILN_206 ISIL_DE-Brg3 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2021 ISIL_DE-289 GBV_ILN_2026 ISIL_DE-100 GBV_ILN_2148 ISIL_DE-950 BO 045F 681.2 24 01 0008 3955004856 00 --%%-- --%%-- s --%%-- olr-ddaebc Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Zugriff auf den Volltext nur für Universitätsangehörige innerhalb des Netzes der Universität Kiel (Campuslizenz). z 17-07-21 39 01 0547 4456639156 00 --%%-- --%%-- s --%%-- Proquest_AC pq ke 12-01-24 60 01 0705 4452629466 00 --%%-- --%%-- s --%%-- Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Nur für Angehörige der HSU: Volltextzugang von außerhalb des Campus mit Anmeldung über Shibboleth mit Ihrer Bibliothekskennung z 10-01-24 65 01 0003 3977059785 Proquest-AcadCompl Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. 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Zugriff von auβerhalb nur für HCU-Angehörige möglich https://ebookcentral.proquest.com/lib/hcuhamburg-ebooks/detail.action?docID=5625453 2021 01 DE-289 https://ebookcentral.proquest.com/lib/kiz-uniulm/detail.action?docID=5625453 2026 01 DE-100 https://ebookcentral.proquest.com/lib/ubhohenheim/detail.action?docID=5625453 2148 01 DE-950 https://ebookcentral.proquest.com/lib/hfwu/detail.action?docID=5625453 39 01 0547 z10288o 24 01 0008 olr-ddaebc 24 01 0008 olr-mieteebc 39 01 0547 Proquest_AC 39 01 0547 eb 65 01 0003 Proquest-AcadCompl 206 01 3350 OLR-EBL 370 01 4370 olr-dda ebc |
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9781630812447 : electronic bk. 978-1-63081-244-7 9781630812430 (DE-627)1045309265 (DE-599)GBV1045309265 (EBC)EBC5625453 (EBR)ebr11641716 (EBL)EBL5625453 (EBP)038595303 DE-627 eng DE-627 rda eng 681.2 Weiss, Eyal verfasserin aut Low-Power and High-Sensitivity Magnetic Sensors and Systems Norwood Artech House 2018 1 Online-Ressource (255 pages) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Low-Power and High-Sensitivity Magnetic Sensors and Systems -- Contents -- Acknowledgments -- 1 Introduction -- 1.1 Overview -- 1.2 Magnetic Sensors -- 1.2.1 Fluxgates -- 1.2.2 Fluxgate Applications -- 1.3 Orthogonal Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fluxgates -- 1.3.3 Low-Power Orthogonal Fluxgates -- 1.3.4 Summary of the State of the Art -- 1.4 Reducing Power Consumption in Fluxgates -- 1.4.1 The Goal -- 1.4.2 Method to Reduce the Power Consumption -- 1.4.3 Core Saturation -- 1.4.4 Discontinuous Excitation Techniques -- 1.4.5 Sampling and Processing -- 1.5 Magnetic Systems -- 1.5.1 Why Low-Power Consumption Is Important -- 1.5.2 DC Jumps in Low-Power Fluxgate Magnetometers -- 1.5.3 Power Supply Lines -- 1.5.4 Data Lines -- 1.6 Magnetic Data Processing -- 1.6.1 Magnetic Anomaly Detection -- 1.6.2 Localization of Moving Objects -- References -- Selected Bibliography -- 2 Magnetic Systems -- 2.1 Overview -- 2.2 Noise from the Natural Environment -- 2.2.1 Clutter from the Magnetic Interactions in the Ionosphere -- 2.2.2 Magnetic Geology -- 2.2.3 Magnetic Hydrodynamics -- 2.3 Internal Sensor Noise and Clutter -- 2.3.1 Internal Sensor Magnetic Noise -- 2.3.2 Alignment Noise -- 2.3.3 Internal Electronic Noise -- 2.3.4 Internal Data Cable Noise -- 2.3.5 Noise from Power Lines -- 2.4 Environmental Anthropogenic Noise and Clutter -- 2.4.1 Clutter from Moving Ferromagnetic Objects -- 2.4.2 Clutter from Eddy Currents in Conducting Objects -- 2.4.3 External Power Supply Lines -- 2.4.4 External Data Lines -- 2.4.5 Noise and Clutter from Motion of Measurement System -- 2.5 Surveillance Systems -- 2.5.1 Detection Schemes -- 2.5.2 Sensor Arrays -- 2.5.3 Generic Surveillance Applications -- 2.6 Survey Systems -- 2.6.1 Unexploded Ordnance Detection -- 2.6.2 Maritime Magnetic Surveys 2.6.3 Low-Power Survey Magnetometers -- References -- 3 Low-Power Fluxgates -- 3.1 Overview -- 3.2 A Tube-Core Orthogonal Fluxgate Operated in the Fundamental Mode -- 3.2.1 Tube Core Fluxgate Experiments -- 3.2.2 Optimal Excitation Parameters -- 3.2.3 Magnetic Noise Suppression -- 3.2.4 Fluxgate Sensitivity -- 3.2.5 Fluxgate Equivalent Magnetic Noise -- 3.2.6 Dominant Origin of the Noise -- 3.2.7 Tube Core Orthogonal Fluxgate Conclusion -- 3.3 Excess Magnetic Noise in Orthogonal Fluxgates Employing Discontinuous Excitation -- 3.3.1 Experimental Setup -- 3.3.2 Excitation Magnetic Field and Skin Effect -- 3.3.3 Distribution of the Magnetic Field in the Core -- 3.3.4 Domain Morphology -- 3.3.5 Method for Investigating Fluxgate Noise -- 3.3.6 Results -- 3.3.7 Discussion on Source of Magnetic Noise -- 3.3.8 Conclusion -- 3.4 Inhomogeneous Core Material -- 3.4.1 Inner Core Neutrality Interference with the Gating Effect -- 3.4.2 Perming Phenomenon -- 3.4.3 High-Power Consumption of Inner Core -- 3.4.4 Thermal Effects of Core Heating -- 3.4.5 Composite Wires -- 3.4.6 Conclusion -- 3.5 Noise Investigation of the Orthogonal Fluxgate Employing Alternating Direct Current Bias -- 3.5.1 Experimental Setup -- 3.5.2 Measurement Synchronization -- 3.5.3 Excess Noise Suppression -- 3.5.4 Alternating DC Bias Conclusion -- 3.6 DC Jumps in Low-Power Fluxgate Magnetometers -- 3.6.1 Model of DC Jumps in Parallel Fluxgates -- 3.6.2 Model of DC Jumps in Orthogonal Fluxgates -- 3.6.3 DC Jump Dynamic Model -- 3.6.4 DC Jumps' Dynamic Model in Amorphous Wire Core Orthogonal Fluxgates -- 3.6.5 DC Jumps Dynamic Model in Parallel Fluxgates -- References -- 4 Low-Power Sampling -- 4.1 Overview -- 4.1.1 Sampling Resolution -- 4.1.2 Sampling Options -- 4.1.3 Sampling of Low-Power Fluxgates -- 4.2 Sampling and Processing of an Orthogonal Fluxgate Output -- 4.2.1 Experimental Setup 4.2.2 Digital Selective Bandpass Sampling Technique -- 4.2.3 Discussion -- 4.2.4 Conclusion on Digital Selective Bandpass Sampling -- 4.3 Duty Cycle Operation of an Orthogonal Fluxgate -- 4.3.1 Synthesis -- 4.3.2 Method -- 4.3.3 Experimental Setup -- 4.3.4 Experiment -- 4.3.5 Results -- 4.3.6 Conclusion -- 4.4 Concatenation of Discontinuous Operated Orthogonal Fluxgate -- 4.4.1 Noise Measurements and Analysis -- 4.4.2 Excitation Waveforms -- 4.4.3 Noise Measurements -- 4.4.4 Method for Eliminating the Excess Noise -- 4.4.5 Discontinuous Excitation Conclusion -- 4.5 Conclusion -- References -- 5 Magnetic Data Processing -- 5.1 Magnetic Anomaly Detection -- 5.1.1 Orthonormal Basis Functions Representation -- 5.1.2 Minimum Entropy Detection Filter -- 5.1.3 Periodic Anomaly Detection Filter -- 5.2 Magnetic Anomaly Localization -- 5.2.1 The Levenberg-Marquardt Localization Algorithm -- 5.2.2 Genetic Algorithm for Magnetic Dipole Localization -- References -- About the Authors -- Index Magnetometers Magnetometers Electronic books Alimi, Roger oth 9781630812430 Erscheint auch als Druck-Ausgabe Weiss, Eyal Low-Power and High-Sensitivity Magnetic Sensors and Systems Norwood : Artech House,c2018 9781630812430 https://ebookcentral.proquest.com/lib/kxp/detail.action?docID=5625453 X:EBC Aggregator lizenzpflichtig Volltext ZDB-30-PAD ZDB-30-PQE GBV_ILN_24 ISIL_DE-8 SYSFLAG_1 GBV_KXP GBV_ILN_39 ISIL_DE-547 GBV_ILN_60 ISIL_DE-705 GBV_ILN_65 ISIL_DE-3 GBV_ILN_206 ISIL_DE-Brg3 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2021 ISIL_DE-289 GBV_ILN_2026 ISIL_DE-100 GBV_ILN_2148 ISIL_DE-950 BO 045F 681.2 24 01 0008 3955004856 00 --%%-- --%%-- s --%%-- olr-ddaebc Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Zugriff auf den Volltext nur für Universitätsangehörige innerhalb des Netzes der Universität Kiel (Campuslizenz). z 17-07-21 39 01 0547 4456639156 00 --%%-- --%%-- s --%%-- Proquest_AC pq ke 12-01-24 60 01 0705 4452629466 00 --%%-- --%%-- s --%%-- Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Nur für Angehörige der HSU: Volltextzugang von außerhalb des Campus mit Anmeldung über Shibboleth mit Ihrer Bibliothekskennung z 10-01-24 65 01 0003 3977059785 Proquest-AcadCompl Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. k3o 10-09-21 206 01 3350 387899611X 00 --%%-- Online-Ressource g --%%-- OLR-EBL If you are a ThHF affiliate and the E-Book is not fully accessible, please send us a purchase or short time loan request. All others: Inter-library loans and guest access on campus premises is not possible. zh 27-02-21 370 01 4370 3976631582 olr-dda ebc Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 09-09-21 2021 01 DE-289 3844303847 00 --%%-- --%%-- --%%-- n l01 28-01-21 2026 01 DE-100 3967032809 00 --%%-- --%%-- --%%-- k l01 13-08-21 2148 01 DE-950 4578353788 00 --%%-- eBook ProQuest --%%-- n PDA-Angebot - nur für Hochschulangehörige der HfWU l01 10-09-24 24 01 0008 https://ebookcentral.proquest.com/lib/christianalbrechts/detail.action?docID=5625453 39 01 0547 https://ebookcentral.proquest.com/lib/ufb/detail.action?docID=5625453 60 01 0705 https://ebookcentral.proquest.com/lib/helmutschmidt/detail.action?docID=5625453 65 01 0003 https://ebookcentral.proquest.com/lib/ulbhalle-ebooks/detail.action?docID=5625453 206 01 3350 Full Text only for ThHf affiliates https://thh-friedensau.idm.oclc.org/login?url=http://ebookcentral.proquest.com/lib/thhfriedensau/detail.action?docID=5625453 370 01 4370 E-Book: Zugriff im HCU-Netz. 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Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fluxgates -- 1.3.3 Low-Power Orthogonal Fluxgates -- 1.3.4 Summary of the State of the Art -- 1.4 Reducing Power Consumption in Fluxgates -- 1.4.1 The Goal -- 1.4.2 Method to Reduce the Power Consumption -- 1.4.3 Core Saturation -- 1.4.4 Discontinuous Excitation Techniques -- 1.4.5 Sampling and Processing -- 1.5 Magnetic Systems -- 1.5.1 Why Low-Power Consumption Is Important -- 1.5.2 DC Jumps in Low-Power Fluxgate Magnetometers -- 1.5.3 Power Supply Lines -- 1.5.4 Data Lines -- 1.6 Magnetic Data Processing -- 1.6.1 Magnetic Anomaly Detection -- 1.6.2 Localization of Moving Objects -- References -- Selected Bibliography -- 2 Magnetic Systems -- 2.1 Overview -- 2.2 Noise from the Natural Environment -- 2.2.1 Clutter from the Magnetic Interactions in the Ionosphere -- 2.2.2 Magnetic Geology -- 2.2.3 Magnetic Hydrodynamics -- 2.3 Internal Sensor Noise and Clutter -- 2.3.1 Internal Sensor Magnetic Noise -- 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Fluxgate Sensitivity -- 3.2.5 Fluxgate Equivalent Magnetic Noise -- 3.2.6 Dominant Origin of the Noise -- 3.2.7 Tube Core Orthogonal Fluxgate Conclusion -- 3.3 Excess Magnetic Noise in Orthogonal Fluxgates Employing Discontinuous Excitation -- 3.3.1 Experimental Setup -- 3.3.2 Excitation Magnetic Field and Skin Effect -- 3.3.3 Distribution of the Magnetic Field in the Core -- 3.3.4 Domain Morphology -- 3.3.5 Method for Investigating Fluxgate Noise -- 3.3.6 Results -- 3.3.7 Discussion on Source of Magnetic Noise -- 3.3.8 Conclusion -- 3.4 Inhomogeneous Core Material -- 3.4.1 Inner Core Neutrality Interference with the Gating Effect -- 3.4.2 Perming Phenomenon -- 3.4.3 High-Power Consumption of Inner Core -- 3.4.4 Thermal Effects of Core Heating -- 3.4.5 Composite Wires -- 3.4.6 Conclusion -- 3.5 Noise Investigation of the Orthogonal Fluxgate Employing Alternating Direct Current Bias -- 3.5.1 Experimental Setup -- 3.5.2 Measurement Synchronization -- 3.5.3 Excess Noise Suppression -- 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Low-Power and High-Sensitivity Magnetic Sensors and Systems |
abstract |
Low-Power and High-Sensitivity Magnetic Sensors and Systems -- Contents -- Acknowledgments -- 1 Introduction -- 1.1 Overview -- 1.2 Magnetic Sensors -- 1.2.1 Fluxgates -- 1.2.2 Fluxgate Applications -- 1.3 Orthogonal Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fluxgates -- 1.3.3 Low-Power Orthogonal Fluxgates -- 1.3.4 Summary of the State of the Art -- 1.4 Reducing Power Consumption in Fluxgates -- 1.4.1 The Goal -- 1.4.2 Method to Reduce the Power Consumption -- 1.4.3 Core Saturation -- 1.4.4 Discontinuous Excitation Techniques -- 1.4.5 Sampling and Processing -- 1.5 Magnetic Systems -- 1.5.1 Why Low-Power Consumption Is Important -- 1.5.2 DC Jumps in Low-Power Fluxgate Magnetometers -- 1.5.3 Power Supply Lines -- 1.5.4 Data Lines -- 1.6 Magnetic Data Processing -- 1.6.1 Magnetic Anomaly Detection -- 1.6.2 Localization of Moving Objects -- References -- Selected Bibliography -- 2 Magnetic Systems -- 2.1 Overview -- 2.2 Noise from the Natural Environment -- 2.2.1 Clutter from the Magnetic Interactions in the Ionosphere -- 2.2.2 Magnetic Geology -- 2.2.3 Magnetic Hydrodynamics -- 2.3 Internal Sensor Noise and Clutter -- 2.3.1 Internal Sensor Magnetic Noise -- 2.3.2 Alignment Noise -- 2.3.3 Internal Electronic Noise -- 2.3.4 Internal Data Cable Noise -- 2.3.5 Noise from Power Lines -- 2.4 Environmental Anthropogenic Noise and Clutter -- 2.4.1 Clutter from Moving Ferromagnetic Objects -- 2.4.2 Clutter from Eddy Currents in Conducting Objects -- 2.4.3 External Power Supply Lines -- 2.4.4 External Data Lines -- 2.4.5 Noise and Clutter from Motion of Measurement System -- 2.5 Surveillance Systems -- 2.5.1 Detection Schemes -- 2.5.2 Sensor Arrays -- 2.5.3 Generic Surveillance Applications -- 2.6 Survey Systems -- 2.6.1 Unexploded Ordnance Detection -- 2.6.2 Maritime Magnetic Surveys 2.6.3 Low-Power Survey Magnetometers -- References -- 3 Low-Power Fluxgates -- 3.1 Overview -- 3.2 A Tube-Core Orthogonal Fluxgate Operated in the Fundamental Mode -- 3.2.1 Tube Core Fluxgate Experiments -- 3.2.2 Optimal Excitation Parameters -- 3.2.3 Magnetic Noise Suppression -- 3.2.4 Fluxgate Sensitivity -- 3.2.5 Fluxgate Equivalent Magnetic Noise -- 3.2.6 Dominant Origin of the Noise -- 3.2.7 Tube Core Orthogonal Fluxgate Conclusion -- 3.3 Excess Magnetic Noise in Orthogonal Fluxgates Employing Discontinuous Excitation -- 3.3.1 Experimental Setup -- 3.3.2 Excitation Magnetic Field and Skin Effect -- 3.3.3 Distribution of the Magnetic Field in the Core -- 3.3.4 Domain Morphology -- 3.3.5 Method for Investigating Fluxgate Noise -- 3.3.6 Results -- 3.3.7 Discussion on Source of Magnetic Noise -- 3.3.8 Conclusion -- 3.4 Inhomogeneous Core Material -- 3.4.1 Inner Core Neutrality Interference with the Gating Effect -- 3.4.2 Perming Phenomenon -- 3.4.3 High-Power Consumption of Inner Core -- 3.4.4 Thermal Effects of Core Heating -- 3.4.5 Composite Wires -- 3.4.6 Conclusion -- 3.5 Noise Investigation of the Orthogonal Fluxgate Employing Alternating Direct Current Bias -- 3.5.1 Experimental Setup -- 3.5.2 Measurement Synchronization -- 3.5.3 Excess Noise Suppression -- 3.5.4 Alternating DC Bias Conclusion -- 3.6 DC Jumps in Low-Power Fluxgate Magnetometers -- 3.6.1 Model of DC Jumps in Parallel Fluxgates -- 3.6.2 Model of DC Jumps in Orthogonal Fluxgates -- 3.6.3 DC Jump Dynamic Model -- 3.6.4 DC Jumps' Dynamic Model in Amorphous Wire Core Orthogonal Fluxgates -- 3.6.5 DC Jumps Dynamic Model in Parallel Fluxgates -- References -- 4 Low-Power Sampling -- 4.1 Overview -- 4.1.1 Sampling Resolution -- 4.1.2 Sampling Options -- 4.1.3 Sampling of Low-Power Fluxgates -- 4.2 Sampling and Processing of an Orthogonal Fluxgate Output -- 4.2.1 Experimental Setup 4.2.2 Digital Selective Bandpass Sampling Technique -- 4.2.3 Discussion -- 4.2.4 Conclusion on Digital Selective Bandpass Sampling -- 4.3 Duty Cycle Operation of an Orthogonal Fluxgate -- 4.3.1 Synthesis -- 4.3.2 Method -- 4.3.3 Experimental Setup -- 4.3.4 Experiment -- 4.3.5 Results -- 4.3.6 Conclusion -- 4.4 Concatenation of Discontinuous Operated Orthogonal Fluxgate -- 4.4.1 Noise Measurements and Analysis -- 4.4.2 Excitation Waveforms -- 4.4.3 Noise Measurements -- 4.4.4 Method for Eliminating the Excess Noise -- 4.4.5 Discontinuous Excitation Conclusion -- 4.5 Conclusion -- References -- 5 Magnetic Data Processing -- 5.1 Magnetic Anomaly Detection -- 5.1.1 Orthonormal Basis Functions Representation -- 5.1.2 Minimum Entropy Detection Filter -- 5.1.3 Periodic Anomaly Detection Filter -- 5.2 Magnetic Anomaly Localization -- 5.2.1 The Levenberg-Marquardt Localization Algorithm -- 5.2.2 Genetic Algorithm for Magnetic Dipole Localization -- References -- About the Authors -- Index |
abstractGer |
Low-Power and High-Sensitivity Magnetic Sensors and Systems -- Contents -- Acknowledgments -- 1 Introduction -- 1.1 Overview -- 1.2 Magnetic Sensors -- 1.2.1 Fluxgates -- 1.2.2 Fluxgate Applications -- 1.3 Orthogonal Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fluxgates -- 1.3.3 Low-Power Orthogonal Fluxgates -- 1.3.4 Summary of the State of the Art -- 1.4 Reducing Power Consumption in Fluxgates -- 1.4.1 The Goal -- 1.4.2 Method to Reduce the Power Consumption -- 1.4.3 Core Saturation -- 1.4.4 Discontinuous Excitation Techniques -- 1.4.5 Sampling and Processing -- 1.5 Magnetic Systems -- 1.5.1 Why Low-Power Consumption Is Important -- 1.5.2 DC Jumps in Low-Power Fluxgate Magnetometers -- 1.5.3 Power Supply Lines -- 1.5.4 Data Lines -- 1.6 Magnetic Data Processing -- 1.6.1 Magnetic Anomaly Detection -- 1.6.2 Localization of Moving Objects -- References -- Selected Bibliography -- 2 Magnetic Systems -- 2.1 Overview -- 2.2 Noise from the Natural Environment -- 2.2.1 Clutter from the Magnetic Interactions in the Ionosphere -- 2.2.2 Magnetic Geology -- 2.2.3 Magnetic Hydrodynamics -- 2.3 Internal Sensor Noise and Clutter -- 2.3.1 Internal Sensor Magnetic Noise -- 2.3.2 Alignment Noise -- 2.3.3 Internal Electronic Noise -- 2.3.4 Internal Data Cable Noise -- 2.3.5 Noise from Power Lines -- 2.4 Environmental Anthropogenic Noise and Clutter -- 2.4.1 Clutter from Moving Ferromagnetic Objects -- 2.4.2 Clutter from Eddy Currents in Conducting Objects -- 2.4.3 External Power Supply Lines -- 2.4.4 External Data Lines -- 2.4.5 Noise and Clutter from Motion of Measurement System -- 2.5 Surveillance Systems -- 2.5.1 Detection Schemes -- 2.5.2 Sensor Arrays -- 2.5.3 Generic Surveillance Applications -- 2.6 Survey Systems -- 2.6.1 Unexploded Ordnance Detection -- 2.6.2 Maritime Magnetic Surveys 2.6.3 Low-Power Survey Magnetometers -- References -- 3 Low-Power Fluxgates -- 3.1 Overview -- 3.2 A Tube-Core Orthogonal Fluxgate Operated in the Fundamental Mode -- 3.2.1 Tube Core Fluxgate Experiments -- 3.2.2 Optimal Excitation Parameters -- 3.2.3 Magnetic Noise Suppression -- 3.2.4 Fluxgate Sensitivity -- 3.2.5 Fluxgate Equivalent Magnetic Noise -- 3.2.6 Dominant Origin of the Noise -- 3.2.7 Tube Core Orthogonal Fluxgate Conclusion -- 3.3 Excess Magnetic Noise in Orthogonal Fluxgates Employing Discontinuous Excitation -- 3.3.1 Experimental Setup -- 3.3.2 Excitation Magnetic Field and Skin Effect -- 3.3.3 Distribution of the Magnetic Field in the Core -- 3.3.4 Domain Morphology -- 3.3.5 Method for Investigating Fluxgate Noise -- 3.3.6 Results -- 3.3.7 Discussion on Source of Magnetic Noise -- 3.3.8 Conclusion -- 3.4 Inhomogeneous Core Material -- 3.4.1 Inner Core Neutrality Interference with the Gating Effect -- 3.4.2 Perming Phenomenon -- 3.4.3 High-Power Consumption of Inner Core -- 3.4.4 Thermal Effects of Core Heating -- 3.4.5 Composite Wires -- 3.4.6 Conclusion -- 3.5 Noise Investigation of the Orthogonal Fluxgate Employing Alternating Direct Current Bias -- 3.5.1 Experimental Setup -- 3.5.2 Measurement Synchronization -- 3.5.3 Excess Noise Suppression -- 3.5.4 Alternating DC Bias Conclusion -- 3.6 DC Jumps in Low-Power Fluxgate Magnetometers -- 3.6.1 Model of DC Jumps in Parallel Fluxgates -- 3.6.2 Model of DC Jumps in Orthogonal Fluxgates -- 3.6.3 DC Jump Dynamic Model -- 3.6.4 DC Jumps' Dynamic Model in Amorphous Wire Core Orthogonal Fluxgates -- 3.6.5 DC Jumps Dynamic Model in Parallel Fluxgates -- References -- 4 Low-Power Sampling -- 4.1 Overview -- 4.1.1 Sampling Resolution -- 4.1.2 Sampling Options -- 4.1.3 Sampling of Low-Power Fluxgates -- 4.2 Sampling and Processing of an Orthogonal Fluxgate Output -- 4.2.1 Experimental Setup 4.2.2 Digital Selective Bandpass Sampling Technique -- 4.2.3 Discussion -- 4.2.4 Conclusion on Digital Selective Bandpass Sampling -- 4.3 Duty Cycle Operation of an Orthogonal Fluxgate -- 4.3.1 Synthesis -- 4.3.2 Method -- 4.3.3 Experimental Setup -- 4.3.4 Experiment -- 4.3.5 Results -- 4.3.6 Conclusion -- 4.4 Concatenation of Discontinuous Operated Orthogonal Fluxgate -- 4.4.1 Noise Measurements and Analysis -- 4.4.2 Excitation Waveforms -- 4.4.3 Noise Measurements -- 4.4.4 Method for Eliminating the Excess Noise -- 4.4.5 Discontinuous Excitation Conclusion -- 4.5 Conclusion -- References -- 5 Magnetic Data Processing -- 5.1 Magnetic Anomaly Detection -- 5.1.1 Orthonormal Basis Functions Representation -- 5.1.2 Minimum Entropy Detection Filter -- 5.1.3 Periodic Anomaly Detection Filter -- 5.2 Magnetic Anomaly Localization -- 5.2.1 The Levenberg-Marquardt Localization Algorithm -- 5.2.2 Genetic Algorithm for Magnetic Dipole Localization -- References -- About the Authors -- Index |
abstract_unstemmed |
Low-Power and High-Sensitivity Magnetic Sensors and Systems -- Contents -- Acknowledgments -- 1 Introduction -- 1.1 Overview -- 1.2 Magnetic Sensors -- 1.2.1 Fluxgates -- 1.2.2 Fluxgate Applications -- 1.3 Orthogonal Fluxgates -- 1.3.1 Why Focus on Orthogonal Fluxgates -- 1.3.2 Low-Power Parallel Fluxgates -- 1.3.3 Low-Power Orthogonal Fluxgates -- 1.3.4 Summary of the State of the Art -- 1.4 Reducing Power Consumption in Fluxgates -- 1.4.1 The Goal -- 1.4.2 Method to Reduce the Power Consumption -- 1.4.3 Core Saturation -- 1.4.4 Discontinuous Excitation Techniques -- 1.4.5 Sampling and Processing -- 1.5 Magnetic Systems -- 1.5.1 Why Low-Power Consumption Is Important -- 1.5.2 DC Jumps in Low-Power Fluxgate Magnetometers -- 1.5.3 Power Supply Lines -- 1.5.4 Data Lines -- 1.6 Magnetic Data Processing -- 1.6.1 Magnetic Anomaly Detection -- 1.6.2 Localization of Moving Objects -- References -- Selected Bibliography -- 2 Magnetic Systems -- 2.1 Overview -- 2.2 Noise from the Natural Environment -- 2.2.1 Clutter from the Magnetic Interactions in the Ionosphere -- 2.2.2 Magnetic Geology -- 2.2.3 Magnetic Hydrodynamics -- 2.3 Internal Sensor Noise and Clutter -- 2.3.1 Internal Sensor Magnetic Noise -- 2.3.2 Alignment Noise -- 2.3.3 Internal Electronic Noise -- 2.3.4 Internal Data Cable Noise -- 2.3.5 Noise from Power Lines -- 2.4 Environmental Anthropogenic Noise and Clutter -- 2.4.1 Clutter from Moving Ferromagnetic Objects -- 2.4.2 Clutter from Eddy Currents in Conducting Objects -- 2.4.3 External Power Supply Lines -- 2.4.4 External Data Lines -- 2.4.5 Noise and Clutter from Motion of Measurement System -- 2.5 Surveillance Systems -- 2.5.1 Detection Schemes -- 2.5.2 Sensor Arrays -- 2.5.3 Generic Surveillance Applications -- 2.6 Survey Systems -- 2.6.1 Unexploded Ordnance Detection -- 2.6.2 Maritime Magnetic Surveys 2.6.3 Low-Power Survey Magnetometers -- References -- 3 Low-Power Fluxgates -- 3.1 Overview -- 3.2 A Tube-Core Orthogonal Fluxgate Operated in the Fundamental Mode -- 3.2.1 Tube Core Fluxgate Experiments -- 3.2.2 Optimal Excitation Parameters -- 3.2.3 Magnetic Noise Suppression -- 3.2.4 Fluxgate Sensitivity -- 3.2.5 Fluxgate Equivalent Magnetic Noise -- 3.2.6 Dominant Origin of the Noise -- 3.2.7 Tube Core Orthogonal Fluxgate Conclusion -- 3.3 Excess Magnetic Noise in Orthogonal Fluxgates Employing Discontinuous Excitation -- 3.3.1 Experimental Setup -- 3.3.2 Excitation Magnetic Field and Skin Effect -- 3.3.3 Distribution of the Magnetic Field in the Core -- 3.3.4 Domain Morphology -- 3.3.5 Method for Investigating Fluxgate Noise -- 3.3.6 Results -- 3.3.7 Discussion on Source of Magnetic Noise -- 3.3.8 Conclusion -- 3.4 Inhomogeneous Core Material -- 3.4.1 Inner Core Neutrality Interference with the Gating Effect -- 3.4.2 Perming Phenomenon -- 3.4.3 High-Power Consumption of Inner Core -- 3.4.4 Thermal Effects of Core Heating -- 3.4.5 Composite Wires -- 3.4.6 Conclusion -- 3.5 Noise Investigation of the Orthogonal Fluxgate Employing Alternating Direct Current Bias -- 3.5.1 Experimental Setup -- 3.5.2 Measurement Synchronization -- 3.5.3 Excess Noise Suppression -- 3.5.4 Alternating DC Bias Conclusion -- 3.6 DC Jumps in Low-Power Fluxgate Magnetometers -- 3.6.1 Model of DC Jumps in Parallel Fluxgates -- 3.6.2 Model of DC Jumps in Orthogonal Fluxgates -- 3.6.3 DC Jump Dynamic Model -- 3.6.4 DC Jumps' Dynamic Model in Amorphous Wire Core Orthogonal Fluxgates -- 3.6.5 DC Jumps Dynamic Model in Parallel Fluxgates -- References -- 4 Low-Power Sampling -- 4.1 Overview -- 4.1.1 Sampling Resolution -- 4.1.2 Sampling Options -- 4.1.3 Sampling of Low-Power Fluxgates -- 4.2 Sampling and Processing of an Orthogonal Fluxgate Output -- 4.2.1 Experimental Setup 4.2.2 Digital Selective Bandpass Sampling Technique -- 4.2.3 Discussion -- 4.2.4 Conclusion on Digital Selective Bandpass Sampling -- 4.3 Duty Cycle Operation of an Orthogonal Fluxgate -- 4.3.1 Synthesis -- 4.3.2 Method -- 4.3.3 Experimental Setup -- 4.3.4 Experiment -- 4.3.5 Results -- 4.3.6 Conclusion -- 4.4 Concatenation of Discontinuous Operated Orthogonal Fluxgate -- 4.4.1 Noise Measurements and Analysis -- 4.4.2 Excitation Waveforms -- 4.4.3 Noise Measurements -- 4.4.4 Method for Eliminating the Excess Noise -- 4.4.5 Discontinuous Excitation Conclusion -- 4.5 Conclusion -- References -- 5 Magnetic Data Processing -- 5.1 Magnetic Anomaly Detection -- 5.1.1 Orthonormal Basis Functions Representation -- 5.1.2 Minimum Entropy Detection Filter -- 5.1.3 Periodic Anomaly Detection Filter -- 5.2 Magnetic Anomaly Localization -- 5.2.1 The Levenberg-Marquardt Localization Algorithm -- 5.2.2 Genetic Algorithm for Magnetic Dipole Localization -- References -- About the Authors -- Index |
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title_short |
Low-Power and High-Sensitivity Magnetic Sensors and Systems |
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