Ingenieurwissenschaften und zugeordnete Tätigkeiten
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- Activation Energy (1)
- Adiabatic Shear Bands (1)
- Adiabatische Scherbänder (1)
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- Dynamic Mechanical Analysis (1)
- FD impedance modelling (1)
- FD-Impedanzmodellierung (1)
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The ability to reliably predict the amount and type of salts within a wet masonry is one of the most important and challenging subjects in the field of non-destructive combat of salt attack and preserving buildings and monuments of historical or archaeological value. To investigate the potential value of complex resistivity (CR) measurements for the early detection of salt and moisture related stone altering, a controlled salt type and concentration experiment series has been performed and a new procedure of an image based effective impedance modelling developed. Complex resistivity magnitude and phase measurements in the frequency range of 1 mHz to 100 Hz were acquired on a wide variety of wholly and partially brine saturated building stone samples. Deteriorating agents NaCl, Na2SO4, CaCl2 and MgSO4 were used. Since water and salt are not measured directly, the method is incapable of deducing possible building damages lacking a priori information. In the case of saturated materials, and provided thorough calibration data are available, a reliable estimate of salt concentration is possible from the measured resistivity magnitude. Additional indication on the dominant cation in the solution can be obtained from the measured resistivity phase, which is significantly higher the lower its valency. Furthermore, the measurements reported in this study give an important guide to the limitations of CR in obtaining pore surface area and pore throat estimates. For wet porous materials, in which polarization occurs due to complex surface conduction, the dominant pore throat and amount of specific surface affect its polarizability. Sandstones, sand-limestones and aerated concretes are more qualified observation objects (pore throats between 20 and 100 μm), whereas for bricks (pore sizes often < 5 μm) the method seems far less favorable. For those materials, which exhibit a Cole-Cole (C-C) type of relaxation, the phase peak is observed to decrease significantly with pore throat size and to occur at higher frequencies. The predicted power-law correlation between the C-C relaxation time and characteristic length scale (pore throat size for consolidated materials) is supported by the presented data. The experimental salinity study reveals how responsive polarization (in terms of imaginary conductivity) is to changing the ionic concentration or composition of the pore fluid. The properties of the electrical double layer and particularly its chemical composition are most likely the crucial controlling factors. The imaginary conductivity is observed to increase for most materials up to fluid salinities of about 1 S/m - a fact, that may be attributed to a mechanism of ion saturation within the electrical double layer; further ion supply seems to counteract this leading to ion-ion interactions, which decrease ionic mobility. CR measurements on partially saturated samples demonstrate the method’s sensitivity to water content. For most materials the imaginary conductivity component decreased significantly faster than the real component. Independent of the pore fluid and even though its salinity naturally increased during the evaporative drying procedure, the normalized saturation exponent of the quadrature component was about twice as high as the real one especially for clay-rich sandstones. The results revealed diverse behavior such as decreases and increases in relaxation time with saturation. In some cases a suppression of a distinctive relaxation curve at low saturations was observed. The results indicate, that contrary to conclusions from recent related studies, the correlation between a C-C relaxation time and hydraulic properties may be limited. In order to infer information on the charge distributions within the EDL, zeta-potentials and surface charge densities were obtained from electroacoustic measurements on particle suspension containing the same amounts and types of salt like used in the brine saturation CR study. The results add weight to the assumption that there is some universal positive relationship between zeta-potential and imaginary conductivity. A notable dependence of imaginary conductivity on diffuse layer surface charge was only observed in case of one sandstone (Cottaer), this being the material with the most abundant clay content. An image based effective impedance modelling approach revealed the fact that, even though it is not able to factor scale effects in, it is helpful to study general microstructural implications on CR responses. It was observed, that an increasing salt concentration (that creates a shrinking electrical double layer) reduces the peak phase and moves it towards higher frequency. The same effect would have an increasing fluid conductivity for a otherwise fixed microstructure. For some combinations of material and salt, however, in the experimental work the peak phase was observed to shift towards lower frequency: a phenomenon that could not be explained with the modelling. Therefore, it is assumed that chemical properties, like ion mobilities or other surface chemistry properties (ionexchange processes) must be regarded to conclusively explain surface conductivity mechanisms. Other experimental observations like the alteration of CR spectra at desaturation could likewise be modelled. If these models truly mimic the effective electrical properties, the results give new implications on the effective medium behavior. Concluding, the author values the complex resistivity method as a possible effective non-destructive testing (NDT) tool for a wide range of building stones. Depending on pore size and saturation important additional information can be obtained. In all cases, a priori information and calibration data are essential, that is, CR should not be treated as a stand-alone method. Further measurements are needed to develop a more complete model of the electrical double layer and its alteration with changing salinity and ion types.
The objective of this work is to demonstrate the practical application and sensitivity of ultrasound as a high frequency Dynamic Mechanical Analysis DMA technique for the characterisation of polymers. Conventional DMA techniques are used to determine thermo mechanical behaviour of polymers by typically employing dynamic shear or tensile loading modes at defined frequencies between 0.1 and 50 Hz. Sound waves may also be employed for DMA applications and depending on type of wave propagated, shear G´, G´´ and longitudinal L´, L´´ storage or loss modulus and tan (δ) may be determined from the measured acoustic parameters sound velocity and amplitude. The primary advantage of ultrasound DMA is that due to the compact sensor size it can easily be integrated into most manufacturing processes. To demonstrate the sensitivity of ultrasound to variations in the viscoelastic properties of polymers, the acoustic properties of a cured epoxy with an observed glass transition temperature of 86 °C (tan(δ) peak, 1Hz) were monitored in a temperature range from 20 to 200 °C and compared to conventional DMA results. The influence of measurement frequency, dispersion, hysteresis, reflections at material boundaries, and changes in material density on the measured sound velocity and amplitude were taken into account. To support conclusions a wide range of experimental data was evaluated using sensors operating in the frequency ranges 400 to 800 kHz and 3 to 6 MHz. The ultrasound results are compared to the tensile moduli E´, E´´ and tan(δ) measured using a conventional DMA technique operating at 0.1 to 33 Hz. Using different evaluation strategies such as the Williams Landel Ferry WLF equation it was possible to study the sensitivity of wave propagation to variations in the viscoelastic behaviour of a polymer. Taking advantage of this background knowledge, further experimental results are presented with the aim of demonstrating the sensitivity of this technique for cure monitoring applications and to the material transformations: gelation and vitrification. For this purpose an epoxy resin was cured at a range of constant temperatures whereby the curing reaction and the corresponding change in viscoelastic properties were monitored. Analysis techniques employed included ultrasound at 3 to 6 MHz, Differential Scanning Calorimeter DSC and Rheometry at 1 Hz. All results were summarised and presented graphically. Additionally an Arrhenius relationship was employed enabling direct comparison of results obtained from analysis techniques based on different working principles. Using this information, it was possible to demonstrate the practical application and the sensitivity of this technique to even small changes in viscoelastic properties of polymers.
Hochgeschwindigkeitsbeanspruchungen metallischer Bauteile sind bei einer Vielzahl ingenieurtechnischer Anwendungsbereiche, beispielsweise bei Crash- oder Falltests, bei Umform- oder Spanprozessen mit hohen Belastungsgeschwindigkeiten oder bei Aufprallproblemen von Komponenten schnell rotierender Bauteile auf das umgebende Gehäuse, z. B. bei Flugzeugturbinen, relevant. Dabei treten in dem beanspruchten Bauteil typischerweise Zonen mit großen, lokalisierten Deformationen auf, die auf die Entfestigung des Werkstoffs durch die Entwicklung von Schädigung und durch die Temperaturerhöhung infolge plastischer Dissipation zurückzuführen sind. Die Ausbildung von Scherbändern stellt dabei eine typische Form der Deformationslokalisierung dar. Die kontinuumsmechanische Modellierung solcher Vorgänge erfordert im Allgemeinen die Berücksichtigung einer Vielzahl von Faktoren und Effekten, wie beispielsweise dehnraten- abhängiges Materialverhalten, mit adiabatischer Erhitzung einhergehende thermische Entfestigung, Reibung und Kontakt sowie Schädigung. Darüber hinaus sind die genannten Effekte in dem Rahmen der Theorie großer Deformationen zu betrachten. Dehnratenabhängige ”lokale“ Modelle resultieren dabei nicht zwangsläufig in einer physikalisch sinnvollen Scherbandabbildung, d. h. in einer endlichen Scherbandbreite. Die innere Länge, die eine Begrenzung des Lokalisierungsvolumens darstellt, strebt für verschiedene im Rahmen der Simulation von Hochgeschwindigkeitsbelastungen eingesetzte, nichtlinear dehnratenabhängige Modelle, wie z.B. Potenzgesetz-Modelle oder dem Modell nach JOHNSON&COOK, mit infolge von Entfestigung abnehmender Spannung sowie zunehmender plastischer Dehnrate sehr stark gegen null. Dadurch tritt ein Verlust der lokalisierungsbegrenzenden Wirkung dieser ratenabhängigen Modelle ein, so dass insbesondere jedes, auf diesen Modellen aufbauende Finiten-Element Verfahren eine pathologische Netzabhängigkeit der Ergebnisse aufweist. ”Nicht-lokale“ Gradientenmodelle der Plastizität sind dazu geeignet, die beschriebenen Nachteile zu vermeiden. Die innere Länge dieser Modelle weist eine im Vergleich zu lokalen Modellen deutlich reduzierte Abhängigkeit von dem vorherrschenden Spannungszustand sowie der plastischen Dehnrate auf und wird darüber hinaus wesentlich durch den Wert des nichtlokalen Modellparameters beeinflusst. Die Größenordnung der inneren Länge bleibt dabei selbst für kleine Werte dieses Parameters auch mit Einsetzen von Lokalisierungseffekten zunächst erhalten. Infolge der numerischen Umsetzung nicht-lokaler Modelle mittels der Methode der Finiten- Elemente zeigt sich, dass im Gegensatz zu den auf lokalen Modellen basierenden Verfahren das Volumen der Lokalisierungszone bei stetiger Netzverfeinerung gegen einen endlichen Wert konvergiert. Damit gelingt es durch die Verwendung nicht-lokaler Modelle, die Ausbildung endlicher Scherbanddicken diskretisierungsunabhängig zu simulieren und im Rahmen der Kontinuumsmechanik eine sinnvolle Lösung des zugrunde liegenden physikalischen Problems zu gewährleisten.