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Eingeladener Vortrag
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In the nonstoichiometric low-temperature phase of silver selenide a very small silver excess within the semiconducting silver selenide matrix in the order of 0.01% is sufficient to generate a linear magnetoresistance (LMR) of more than 300% at 5 T, which does not saturate at fields up to 60 T. Different theoretical models have been proposed to explain this unusual magnetoresistance (MR) behavior, among them a random resistor network consisting of four-terminal resistor units. According to this model the LMR and the crossover field from linear to quadratic behavior are primarily controlled by both the spatial distribution of the charge-carrier mobility and its average value, being essentially functions of the local and average compositions. Here we report measurements on silver-rich thin AgxSe films with a thickness between 20 nm and 2 µm, which show an increasing average mobility in conjunction with an enhanced MR for increasing film thickness. We found a linear scaling between the size of the transverse LMR and the crossover field, as predicted by the theory. For films thinner than about 100 nm the MR with field directed in the sample plane shows a breakdown of the LMR, revealing the physical length scale of the inhomegeneities in thin AgxSe devices.
Quantitative NDE methods play a key role when it comes to inspect components,
which requires high operational safety. UT-SAFT is one of the well-known reconstruction tools,
which provides information about the defect size. In this work we studied the use of phased array
technique in combination with the SAFT algorithm to inspect power plant components. As a first
example we inspected a real-sized mock-up model representing a part of a reactor pressure vessel with
a 180 mm-thick ferritic base material followed by a 6 mm-thick austenitic cladding layer. The phased
array probe was coupled at the outer ferritic surface. We detected and sized fatigue cracks within the
cladding with a depth ranging from 4 mm to 10 mm. Secondly, we investigated a mock-up model
resembling a nozzle including a thermo sleeve inlet and a maximum wall thickness of about 37 mm.
Artificially inserted notches with a depth of 3 mm could be detected and sized, where the thermo
sleeve is welded at the inside of the nozzle.
The visualization of sound propagation in solids is vital for transducer adaptation and
better understanding of complex test samples and their wave propagation modeling. In this work we
present an electrodynamic technique detecting the grazing sound beam with a 10 mm-sized electrodynamic
probe. The particle displacement along the samples surface was then measured as a function
of time and position. Adapting the electrodynamic probe and its coil alignment allows for measuring
the displacement components in all three dimensions. Thus horizontal and vertical particle
displacement with respect to the surface can be detected. A SNR of up to 40 dB could be achieved
within ferromagnetic and high conductive chrome steel when using a shear wave generated by an
angle beam probe. When dealing with nonconductive materials such as PMMA we obtained a reduced
SNR of 12 dB. We report on measurements of the sound field in complex weld joints. One example
shows a narrow gap weld joining a nickel alloy with a chrome steel. The weld of the 80 mm-thick test
block shows a distinct anisotropic texture. The system enables us to visualize the wave propagation
within the weld and indicates the reflection and scattering scenario and the energy losses due to both
the anisotropic structure and material defects.
Increasing demands in materials quality and cost effectiveness have led to advanced
standards in manufacturing technology. Especially when dealing with high quality standards in
conjunction with high throughput quantitative NDE techniques are vital to provide reliable and fast
quality control systems. In this work we illuminate a modern electromagnetic NDE approach using a
small GMR sensor array for testing superconducting wires. Four GMR sensors are positioned around
the wire. Each GMR sensor provides a field sensitivity of 200 pT/√Hz and a spatial resolution of
about 100 µm. This enables us to detect under surface defects of 100 µm in size in a depth of 200 µm
with a signal-to-noise ratio of better than 400. Surface defects could be detected with a SNR of up to
10,000. Besides this remarkably SNR the small extent of GMR sensors results in a spatial resolution
which offers new visualisation techniques for defect localisation, defect characterization and
tomography-like mapping techniques. We also report on inverse algorithms based on either a Finite
Element Method or an analytical approach. These allow for accurate defect localization on the µm
scale and an estimation of the defect size.