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A high-performance fiber Bragg grating-based (FBG) sensor device has been developed for the detection of small magnetic fields. Based on a smart multilayer jacket around the fibre over the physical length of the FBG, magnetic fields generated by rotating machine parts, power generators or power cable can be easily detected, analysed and evaluated. Consequently, this innovative, on-line and non-contact inspection method results in an increase in quality and reliability of high-performing machine parts, devices and cables. The basic physical principle is based on a magnetostrictive multilayer system that strains the high-resolution FBG element in presence of magnetic fields. Subsequently, a fixed relationship between induced magnetic field and wavelength change of the FBG element describes the characteristic sensitivity curve. Intensive tests regarding characterisation of this magnetic field FBG sensor have been carried out and its performance has been evaluated.
A new concept for the self-diagnosis of embedded fiber Bragg grating (FBG) strain sensors was developed, simulated and experimentally tested. This concept is based on a magnetostrictive metallic layer directly coated on the fibre cladding over the grating segment of the FBG sensor, so that an on-demand external magnetic field in a millitesla scale can produce a controllable artificial strain as an indication signal for the remote optical interrogator. The relationship between the pre-defined magnetic field and its induced Bragg wavelength shift characterizes this validation concept. Any deviation of the local bonding state of the interfaces from the initial or/and any change of shear strain transferring mechanism from composite matrix to the optical fibre core will result in alterations in this sensitive relationship, and thus triggers an immediate alert for a further inspection. The finite element method is used to simulate the strain of this configuration as result of different values of the magnetic field in order to optimize the geometrical sensor parameters. The simulations are verified by experiments results. © (2016) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Sensors integrated into devices and structures provide essential data to control, optimize or manage machines and structural components. In the last years, processes, applications and machine parts became more and more intelligent. Consequently, the need for sensor validation increased significantly in order to rely on sensor data and measurement results.
Structure-integrated fibre optic strain sensors, such as fiber Bragg gratings (FBG), are of special interest in the composite manufacturing industry. This type of sensor makes it possible to gain information and to collect measurement data about entire production processes and whole life-time cycles of composite-made machine parts and structures. However, validation concepts and approaches for this type of sensors are barely reported in literature. Furthermore, all the reported activities have the drawback that the sensor diagnosis strategy is implemented as limited mathematical models and/or complex time-consuming spectral analysis tools which are applied in data post-processing loops. However, to automate sensor validation and to apply real-time and in-field sensor fault detection, it is necessary to acquire measurement data and information about the measurement reliability at the same time.
Fiber optic sensors have gained increasing importance in recent years and are well established in many areas of industrial applications. In this paper, we introduce a concept of a self-diagnostic fiber optic sensor. The presented sensor is to resolve the problems of embedded fiber optic sensors in complex structures and to enable the validation under operational conditions. For this purpose, different magnetostrictive coated fiber optic sensors were developed and various experiments were performed to verify their mode of operation and to determine the respective reproducibility. The measuring principle is illustrated by obtained experimental results, which showed a change in wavelength from 1 pm at a magnetic field strength change of 0.25 mT. In addition, the temperature characteristics of the implemented magnetostrictive sensor were analyzed and an experimental factor of 1.5 compared to a reference fiber optic sensor was determined.
Durch den Einsatz von eingebetteten faseroptischen Sensoren können Bauteile überwacht und frühzeitig Informationen über Materialveränderungen gewonnen werden. Um die Zuverlässigkeit eines solchen Sensors gewährleisten zu können, ist es wichtig, die korrekte Funktion des Sensors im Verbund mit einer Werkstoff-Matrix on-line und in-situ überwachen zu können. Im Rahmen des DFG-Projekts FAMOS² (FAser-basierter Magneto-Optischer SchichtSensor) wurde ein selbstdiagnose-fähiger Schichtsensor entwickelt, welcher mit Hilfe einer magnetostriktiven Aktorschicht validiert werden kann. Durch eine Kombination aus PVD (physical vapour deposition) und ECD (electro-chemical deposition) wird die Aktorschicht auf faseroptischen Sensoren haftfest abgeschieden. Ein äußeres Magnetfeldes dehnt die Aktorschicht und damit auch die Faser reversibel. Diese Dehnung führt zu einer Verschiebung der Bragg-Wellenlänge, welche direkt mit der Stärke des zu messenden Magnetfeldes korreliert. Ein etwa 100 Nanometer dünnes PVD-Schichtsystem aus Chrom und Kupfer dient zunächst als Haftvermittler zwischen Glasfaser und ECD-Schicht. Um eine rotationssymmetrische Schichtabscheidung zu erhalten, erfolgt während der PVD-Beschichtung eine Rotation der Faser. In einem klassischen Watts-Elektrolyten wird dann im zweiten Schritt die eigentliche etwa 30 Mikrometer dicke ECD-Aktorschicht auf die PVD-Schicht abgeschieden. Reine Ni-Schichten werden mit NiFe-Legierungen verglichen.
Die Geometrie der Faser stellt für die Herstellung und Charakterisierung der Schichten auf der einen Seite eine besondere Herausforderung dar, bietet aber zugleich auch neue experimentelle Möglichkeiten. So kann ggf. die Entstehung von Spannungen in der Schicht während der ECD-Abscheidung in-situ verfolgt werden, indem die Wellenlängenverschiebung aufgrund der Dehnung des Bragg-Gitters optisch gemessen wird. Die Anpassung der Beschichtungsverfahren an die Fasergeometrie sowie die Charakterisierung und die Eigenschaften der ECD-Schicht werden diskutiert. Insbesondere wird auf den Elastizitätsmodul der Aktorschicht eingegangen, wobei Werte aus der Nanoindentation und dem 2-Punkt-Biegeversuch mit der beschichteten Faser als Biegebalken verglichen werden.
Fiber optic sensors have gained increasing importance in recent years and are well established in many areas of industrial applications. In this paper, we introduce a concept of a self-diagnostic fiber optic sensor. The presented sensor is to resolve the problems of embedded fiber optic sensors in complex structures and to enable the validation under operational conditions. For this purpose, different magnetostrictive coated fiber optic sensors were developed and various experiments were performed to verify their mode of Operation and to determine the respective reproducibility. The measuring principle is illustrated by obtained experimental results, which showed a change in wavelength from 1 pm at a magnetic field strength change of 0.25 mT.
In addition, the temperature characteristics of the implemented magnetostrictive sensor were analyzed and an experimental factor of 1.5 compared to a reference fiber optic sensor was determined.