Ingenieurwissenschaften und zugeordnete Tätigkeiten
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Eingeladener Vortrag
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The increased use of fibre reinforced plastic (FRP) composites for improved efficiency and reliability in energy related applications, e.g. wind and marine turbine blades, nacelles, oil and gas flexible risers, also increases the demand for innovative non-destructive testing technologies. In this contribution, results concerning the characterisation of CFRP and GFRP during and after quasi-static tensile loading are presented. It includes the measurement of optical properties in the infrared spectral range, tensile loading tests with the observation of the temperature distribution at one or both sides of the specimens using an infrared camera for the preparation and monitoring of intended natural defects, and active thermography inspections after tensile loading. It is shown that the defect preparation was successful. Thermographic monitoring during and active thermography testing after tensile loading enable the detection of the lateral extend of the generated defects. Differences between CFRP and GFRP materials are discussed.
In the present study, samples fabricated by varying the deposition hatch length during selective laser melting of nickel based superalloy Inconel 718 were investigated. Microstructure and texture of these samples was characterized using scanning electron microscopy, combined with electron back-scattered diffraction, and residual stress assessment, using neutron diffraction method. Textured columnar grains oriented along the sample building direction were observed in the shorter hatch length processed sample. A ten-fold increase in the hatch length reduced the texture intensity by a factor of two attributed to the formation of finer grains in the longer hatch length sample. Larger gradients of transverse residual stress in the longer hatch length sample were also observed. Along the build direction, compressive stresses in the shorter hatch length and negligible stresses for the longer hatch length specimen were observed. Changes to the temperature gradient (G) in response to the hatch length variation, influenced the G to growth rate (R) ratio and the product G × R, in agreement with the microstructures and textures formed. For the residual stress development, geometry of the part also played an important role. In summary, tailored isotropy could be induced in Inconel 718 by a careful selection of parameters during selective laser melting.
While the increase in use of renewable energy sources is a necessity in times of climate change the use of gas turbines as back-up requires them to be run in a much more flexible manner in order to compensate for side effects like sudden fluctuations of energy generation. The significant changes of stress and temperature levels in turbine blades due to start-up and shut down can cause crack initiation and growth in the blades‘ alloy. The aim of this research project is to identify a model for lifetime prediction for gas turbine components made of a Nickel base superalloy under high temperature with a Focus on stress concentration points such as cooling holes.
Sensitivitätsanalyse des Eigenspannungszustandes in Composite-Druckgefäßen mittels Modalanalyse
(2017)
Auf Grund ihrer hohen spezifischen Festigkeit sowie des damit einhergehenden Gewichtsvorteils kommt es bei der Auslegung von Druckgefäßen vermehrt zum Einsatz von faserverstärkten Kunststoffverbunden. Im Rahmen eines Forschungsprojektes an der Bundesanstalt für Materialforschung und –prüfung (BAM) wird das Alterungsverhalten von Atemluftflaschen in Verbundbauweise untersucht, um künftig genauere Aussagen zur Abschätzung der Lebensdauer geben zu können. Gegenstand der hier aufgezeigten Untersuchungen bilden dabei Typ-III Druckgefäße mit metallischen Liner und einer kohlefaserverstärkten Armierung. Als wichtiger, der Betriebsfestigkeit zugrunde legender Parameter wurden Druckeigenspannungen im Aluminium-Liner ausgemacht, welche fertigungsseitig zur Steigerung der Lastwechselfestigkeit in die Druckgefäße induziert werden.
Ziel ist es, mit Hilfe einer Modalanalyse die aufgezeigten inneren Spannungsverhältnisse durch eine genaue Betrachtung der modalen Parameter zu identifizieren und zu bewerten. Durch den Aufbau eines Finite-Elemente Modells und einer anschließenden Sensitivitätsanalyse der Fertigungsparameter werden zunächst Potential und Aussagekraft des Analyseverfahrens geprüft und bewertet. Anschließend erfolgt eine Eingrenzung relevanter Schwingformen sowie eine Abschätzung zu erwartender spannungsabhängiger Änderungen entsprechender modaler Kennwerte. Durch die Entwicklung und den Aufbau eines geeigneten Prüfstandes werden, darauf aufbauend, im Rahmen einer Betriebsschwingungsanalyse erste Messungen an Atemluftflaschen unterschiedlicher Alterungs- und Schädigungsstufen durchgeführt. Durch einen Vergleich mit Simulationsergebnissen und Erkenntnissen aus alternativ durchgeführten Eigenspannungsmessungen erfolgt abschließend eine kritische Bewertung der experimentell gewonnenen Ergebnisse.
Sensitivitätsanalyse des Eigenspannungszustandes in Composite-Druckgefäßen mittels Modalanalyse
(2017)
Auf Grund ihrer hohen spezifischen Festigkeit sowie des damit einhergehenden Gewichtsvorteils kommt es bei der Auslegung von Druckgefäßen vermehrt zum Einsatz von faserverstärkten Kunststoffverbunden. Im Rahmen eines Forschungsprojektes an der Bundesanstalt für Materialforschung und –prüfung (BAM) wird das Alterungsverhalten von Atemluftflaschen in Verbundbauweise untersucht, um künftig genauere Aussagen zur Abschätzung der Lebensdauer geben zu können. Gegenstand der hier aufgezeigten Untersuchungen bilden dabei Typ-III Druckgefäße mit metallischen Liner und einer kohlefaserverstärkten Armierung. Als wichtiger, der Betriebsfestigkeit zugrunde legender Parameter wurden Druckeigenspannungen im Aluminium-Liner ausgemacht, welche fertigungsseitig zur Steigerung der Lastwechselfestigkeit in die Druckgefäße induziert werden.
Ziel ist es, mit Hilfe einer Modalanalyse die aufgezeigten inneren Spannungsverhältnisse durch eine genaue Betrachtung der modalen Parameter zu identifizieren und zu bewerten. Durch den Aufbau eines Finite-Elemente Modells und einer anschließenden Sensitivitätsanalyse der Fertigungsparameter werden zunächst Potential und Aussagekraft des Analyseverfahrens geprüft und bewertet. Anschließend erfolgt eine Eingrenzung relevanter Schwingformen sowie eine Abschätzung zu erwartender spannungsabhängiger Änderungen entsprechender modaler Kennwerte. Durch die Entwicklung und den Aufbau eines geeigneten Prüfstandes werden, darauf aufbauend, im Rahmen einer Betriebsschwingungsanalyse erste Messungen an Atemluftflaschen unterschiedlicher Alterungs- und Schädigungsstufen durchgeführt. Durch einen Vergleich mit Simulationsergebnissen und Erkenntnissen aus alternativ durchgeführten Eigenspannungsmessungen erfolgt abschließend eine kritische Bewertung der experimentell gewonnenen Ergebnisse.
The application range of CPV (composite pressure vessels)
is multifaceted. But also the failure forms and the spectrum of measurement methods is manifold. On various, at BAM observed effects, it is shown why the micromechanical analysis of the composites is of such great interest for the prediction of aging effects of CPVs.
Due to high specific stiffness a nd strength properties, fibre reinforced plastics are used more and more often for the construction of pressure vessels. Within a recent research project run by the Federal Institute for Materials Research and Testing (BAM), aging process of composite pressure vessels is investigated in order to be able to give more accurate lifetime predictions in the future. Focus is set on type III pressure vessels consisting of an aluminium tank which is fully wrapped with carbon fibre reinforced plastics. In order to increase high-cycle fatigue, residual stresses are induced into the pressure vessel during manufacturing process. In particular, residual compressive stresses within the inner aluminium layer have been defined as a main parameter affecting fatigue strength. The aim is to identify and evaluate residual stresses of the pressure vessel by analysing its modal parameters. Through the set-up of a finite-element model potential capability and validity for the use of modal analysis is proven and evaluated, considering influences resulting from manufacturing deviations, too. In the following, a number of stress sensitive modes are defined. Based on these preliminary numerical investigations, a test bench is set up in order to measure pressure vessels via an experimental modal analysis. A final critical evaluation regarding the accuracy of the modal analysis is made by comparing experimental results with data obtained through simulations.
This presentation explains how BAM operates the PA approach for the life-time surveillance based on the measurement of degradation.
The starting point is the sample performance chart (SPC) as developed by BAM. There it is possible to show minimum requirements, sample properties and lines of constant survival rates, these lines are called isoasfalia. The BAM provides a tool for the safety evaluation of results from sample testing. Then the interaction to the micro-mechanical approach of the FiBreMoD-project is linked with the idea of a degradation of strength and reliability. This leads to the methods of burst and cycle testing. For both methods examples are shown and degradation is explained by showing data of two design types. This visualise the determination of safe service life. Finally, statistical aspects of misinterpretation of test results and the reasons for the decision in favour of the slow burst tests are explained.
Die Grundlagen der Metallographie wurden in der zweiten Hälfte des 19. Jahrhunderts von Henry Clifton Sorby in England und Adolf Martens in Deutschland gelegt. Den verfügbaren Quellen nach erfolgten diese Arbeiten unabhängig voneinander. In diesem Beitrag werden die Beiträge von Adolf Martens und Emil Heyn zur Etablierung der Metallographie als ein eigenständiges Fach im Rahmen der Metallkunde dargestellt. Dabei werden Aspekte der Werkstoffprüfung, der Fraktographie und der Schadensanalyse einbezogen. Abschließend wird die führende Rolle dieser Pioniere der Metallkunde bei der Gründung der Deutschen Gesellschaft für Materialkunde (DGM) sowie des Deutschen Verbands für Materialforschung und -prüfung (DVM) gewürdigt.
Vergleichende Bewertung verschiedener Verfahren der E-Modulbestimmung für metallische Werkstoffe
(2017)
Für numerische Beanspruchungs- und Lebensdaueranalysen ist die Kenntnis des E-Moduls der eingesetzten Werkstoffe von zentraler Bedeutung. Für seine experimentelle Bestimmung wurden eine Vielzahl von Verfahren entwickelt, die zum Teil werkstoffspezifisch Eingang in die Normung gefunden haben. Prinzipiell können diese Verfahren in zwei Gruppen eingeteilt werden - die statischen und die dynamischen Prüfverfahren. Während die statischen Verfahren auf der direkten Messung des Spannungs-Dehnungs-Zusammenhangs während einer Belastung im elastischen Verformungsbereich beruhen (Zug-, Biege- bzw. Druckversuch) nutzen die dynamischen Verfahren die Analyse der resultierenden Schwingungen nach einer entsprechenden Anregung eines Prüfkörpers (Resonanz- bzw. Impulsanregungsmethode). Für verschiedene Werkstoffe wurden statische und dynamische Verfahren zur E-Modulbestimmung eingesetzt. Die Unterschiede und Vorteile der verschiedenen Verfahren werden vergleichend diskutiert.
Experimental and analytical investigation of the TMF-HCF lifetime behavior of two cast iron alloys
(2017)
The combined loading Thermomechanical Fatigue (TMF) with High Cycle Fatigue (HCF) has been experimentally investigated for two cast iron alloys. Both alloys contain globular graphite nodules but the first one has a ferritic structure while the second one has an austenitic crystal structure. In particular, the influences of the HCF frequency, of the HCF loading amplitude and of the location of the superposed HCF cycles have been investigated. It was observed that the HCF frequency has a limited impact on the fatigue life. On the other side, the HCF-strain amplitude has a highly non-linear influence on the fatigue life. The experimental results can be understood in terms of a fracture mechanics based damage mechanism: Cracks quickly initiate due to the TMF loading and the growth of the cracks up to a few mm controls the fatigue life. If HCF-loading cycles are superposed, cyclic crack propagation dramatically accelerates after a threshold has been reached. This threshold is regarded as controlling the fatigue life reduction. The previous ideas have been expressed in a model that can be very simply applied to estimate the fatigue life reduction ratio due to the superposed HCF cycles. It only contains two adjustable parameters and can be combined with any TMF life assessment model.
A test campaign was launched to determine the mechanical properties of the High Luminosity-Large HadronCollider (HL-LHC) 11 T Nb3Sn magnet components. The results can be used to accurately represent the mechanical properties in finite elementmodels that predict the stress and strain distribution in these magnets. Particular attention is paid to anisotropic mechanical behavior of the different magnet materials. Static and dynamic test methods have been applied for determining elastic materials’ behavior, and highly accurate Young’s moduli are obtained with the nondestructive dynamic methods resonance and impulse excitation at ambient temperature and during in situ heat cycles.
Additive manufacturing (AM) by selective laser melting (SLM) offers ample scope for producing geometrically complex parts as compared to the traditional subtractive manufacturing strategies. However, the residual stresses which develop during the process can limit the application of SLM parts because they can reduce the load bearing capacity as well as induce unwanted distortion depending on the boundary conditions specified in manufacturing. This study aims at the characterization of residual stresses in SLM parts by using different measurement techniques. The material used is the nickel based super Alloy 718. Microstructure as well as surface and bulk residual stresses were characterised. For residual stress analysis X-ray, synchrotron and neutron diffraction were applied. The results show different residual stress states dependent on the penetration depth in the sample offered by the different measurement techniques. Samples of Alloy 718 manufactured by SLM process can show high tensile residual stresses in the surface as high as the yield strength of the wrought alloy. Residual stresses in the bulk show considerably lower stress values.
The advent of the Industrial Revolution was accompanied by several accidents of dramatic dimensions. The analysis of these events was the fundament for the continuous improvement in the reliability of technical systems. In the year 1871 the Prussian state created a technical institution dedicated for this task – the origin of BAM. Failure analysis and prevention is until today a central objective of our institute; due to its complex nature an interdisciplinary task. In our talk we will present an overview of the activities of BAM in the area of failure analysis and prevention; especial attention will be given to the VDI Guide 3822.
Vergleichende Bewertung verschiedener Verfahren der E-Modulbestimmung für metallische Werkstoffe
(2017)
Für numerische Beanspruchungs- und Lebensdaueranalysen ist die Kenntnis des E-Moduls der eingesetzten Werkstoffe von zentraler Bedeutung. Für seine experimentelle Bestimmung wurden eine Vielzahl von Verfahren entwickelt, die zum Teil werkstoffspezifisch Eingang in die Normung gefunden haben. Prinzipiell können diese Verfahren in zwei Gruppen eingeteilt werden - die statischen und die dynamischen Prüfverfahren. Während die statischen Verfahren auf der direkten Messung des Spannungs-Dehnungs-Zusammenhangs während einer Belastung im elastischen Verformungsbereich beruhen (Zug-, Biege- bzw. Druckversuch) nutzen die dynamischen Verfahren die Analyse der resultierenden Schwingungen nach einer entsprechenden Anregung eines Prüfkörpers (Resonanz- bzw. Impulsanregungsmethode). Für verschiedene Werkstoffe wurden statische und dynamische Verfahren zur E-Modulbestimmung eingesetzt. Die Unterschiede und Vorteile der verschiedenen Verfahren werden vergleichend diskutiert.
TMF tests were carried out on EN-GJSA-XNiSiCr35-5-2 at constant minimum temperature (400 °C) and varying maximum temperatures (Tmax = 700 °C, 800 °C, 900 °C) with hold times of 180 s at Tmax and two phase angles (in-phase (IP), 180° out-of-phase (OP)). The results showed a comparable strength under OP- and IP-TMF loading. At Tmax = 700 °C and 900 °C, the lifetime in IP-tests was slightly longer than that of OP-tests, while it is vice versa at Tmax = 800 °C. The IP-tests at Tmax = 900 °C showed a similar lifetime as OP-tests at Tmax = 700 °C and 800 °C, which was unexpected for such a high testing temperature. All IP-tests at Tmax = 900 °C showed a continuous cyclic softening from the beginning on, which was different from all other testing conditions. Complementary metallographic investigations indicated that under this test condition, intergranular creep damage is present in the volume of the test pieces.
Ultrasonic echo testing is widely used in non-destructive testing in civil engineering to investigate concrete structures, to measure thickness, and to locate and characterise built-in components or inhomogeneities. Currently, synthetic aperture focusing techniques are mostly used for imaging. These algorithms are highly developed but have some limitations. For example, it is not possible to image the lower boundary of built-in components like tendon ducts or vertical reflectors. We adopted reverse time migration for non-destructive testing in civil engineering in order to improve the imaging of complicated structures in concrete. By using the entire wavefield, including waves reflected more than once, there are fewer limitations compared to synthetic aperture focusing technique algorithms. As a drawback, the required computation is significantly higher than that for the techniques currently used.
Simulations for polyamide and concrete structures showed the potential for non-destructive testing. The simulations were followed by experiments at a polyamide specimen. Here, having acquired almost noise-free measurement data to test the algorithm, we were able to determine the shape and size of boreholes with sufficient accuracy. After these successful tests, we performed experiments at a reinforced concrete foundation slab. We obtained information from the data by reverse time migration, which was not accessible by traditional imaging. The imaging of the location and structure of the lower boundary of the concrete foundation slab was improved. Furthermore, vertical reflectors inside the slab were imaged clearly, and more flaws were found. It has been shown that reverse time migration is a step forward in ultrasonic testing in civil engineering.
Ultrasonic echo testing is widely used in non-destructive testing to investigate concrete structures as well as to locate built-in components or inhomogeneities. Currently, Synthetic Aperture Focusing Technique algorithms (SAFT) are used for imaging. These algorithms are highly developed but have some limitations. It is not possible to image the lower boundary of tendon ducts or vertical reflectors. We adopted a geophysical imaging technique, the Reverse Time Migration (RTM), to non-destructive testing in order to improve the imaging of complicated structures in concrete. By using the entire wavefield there are fewer limitations compared to SAFT.
In a first step, simulations for polyamide and concrete structures were performed by using a 2D acoustic finite difference code. The simulations were followed by experiments at a polyamide specimen. Here we were able to determine shape and size of boreholes with a sufficient accuracy. After these successful tests we carried out experiments at a reinforced concrete foundation slab. The reconstruction of the structure of the lower boundary of the slab was improved and vertical reflectors inside the slab were imaged clearly. These tests on polyamide and concrete showed that RTM is a step forward for ultrasonic testing. However we observed migration artifacts and difficulties in imaging 3D structures.
In a second step we implemented a 2D elastic RTM code, since for our ultrasonic measurements elastic waves are emitted. The modeling code is included in the Madagascar software package. The required computing power for performing elastic RTM is significantly high. Thus we need appropriate computer hardware to obtain meaningful results within an adequate time frame. Using our hardware RTM of an ultrasonic data set takes far too long (3 months).
We applied the elastic code to ultrasonic data acquired on a concrete specimen which contains vertical reflectors. A comparison of the acoustic RTM results with those obtained by elastic RTM showed an improvement in the image quality.
Future work includes the analysis of RTM artifacts and the expansion of the algorithm to three dimensions. Another topic to be addressed is to how to account for the size of the ultrasonic transducer arrays which we are using.