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In context with new cask designs and their approval procedure the experimental testing of impact limiters under drop test conditions becomes more and more important in order to assess the damage mechanics behavior and safety margins for validation reasons.
In recent years various designs of impact limiters have been tested by the Federal Institute for Materials Research and Testing (BAM) within specific component testing and particularly with regard to type B package design approval procedures.
The paper focuses on the experimental realization of impact limiter tests and presents implemented measurement techniques to determine the amount of deformation and to explain the impact behavior by means of photogrammetric metrology and 3-d fringe projection method, high-speed motion analysis and adjusted deceleration measurements.
The effect of the wall thickness variation of blow-moulded bodies made of high-density polyethylene on an internal pressure test after prestoring the packaging with standard liquids was evaluated in experiments and simulations. The objects of the investigation were jerrycans used for the transportation and storage of dangerous goods.
The wall thickness was determined using two alternative methods to the magnetostatic measurement. These alternative methods are used for research purpose to get a volumetric model of the jerrycan wall as a geometric model for the simulation. The comparison of the experiments and the simulations of the internal pressure test were performed using the digital image correlation method. The integral strain and deformation of the whole jerrycan was detected by measuring the total mass of the jerrycan being filled with water during the internal pressure test. This is a suitable alternative to the optical measurements of local deformation by the digital image correlation method. Prestorage at 40°C without the influence of chemicals strengthens the jerrycan, whereas the swelling effect of butyl acetate and hydrocarbon mixture softens the jerrycan. The comparison with the experiment is necessary to verify the accuracy of the simulation. It shows that the deformation can be simulated more precisely by using the actual measured geometry. The weakening of the high-density polyethylene caused by a hydrocarbon mixture can be simulated using the Arrhenius equation. The aim of the simulation was to discover whether it is possible to use specimens to predict the behaviour of a packaging both after the influence of standard liquids.
Within the presented research project, experimental and numerical investigations were performed to develop a thin-shelled, modular, mobile element system made of a micro-reinforced ultra-high-performance ductile concrete (DUCON®). Material parameters were experimentally determined to adapt the material model within the numerical analysis applying the Drucker-Prager relationship. Afterwards, for validation of the numerical models, quasi-static and high-velocity impact tests were performed on plate-like structures. Finally, a suitable geometry of transportable barrier elements will be designed, which provides a maximum of resistance against impact by a minimum of weight and a maximum of mobility.
Within the presented research project, experimental and numerical investigations were performed to develop a thin-shelled, modular, mobile element system made of a micro-reinforced ultra-high-performance ductile concrete (DUCON®). Material parameters were experimentally determined to adapt the material model within the numerical analysis applying the Drucker-Prager relationship. Afterwards, for validation of the numerical models, quasi-static and high-velocity impact tests were performed on plate-like structures. Finally, a suitable geometry of transportable barrier elements will be designed, which provides a maximum of resistance against impact by a minimum of weight and a maximum of mobility.
In Chap. 1 of this book, the term Technical Diagnostics has been introduced as the examination of symptoms and syndromes to determine the nature of faults or failures of technical objects. Their characteristics in different technological areas may be of very different nature. One of them is the reaction of technical objects to deform under loads. Those loads may be induced by external forces or thermal fields resulting in mechanical or thermal stresses, respectively. Another reason of deformation is the permanent presence of internal material forces mainly caused by material processing technologies at elevated temperatures such as welding, forging, rolling, or casting and referred to as residual stresses.
Bending beams and slabs are typical examples for structural elements used for reinforced concrete structures such as bridge girders, T-beams and bridge decks. Their strength related failure modes at maximum loading can be divided into bending and shear failure. The failure of beams loaded in bending can occur with or without indication. Therefore, conventional design concepts aim on failure modes with sufficient indication (e.g. large deflections or cracks), as it occurs in the case of secondary flexural compression failure. These indicating factors can also be used for Structural Health Monitoring (SHM) of civil infrastructure systems (e.g. bridges) to identify structural changes. In this context, non-destructive testing (NDT) methods offer different techniques for measuring deflections or crack formation and opening. However, profound knowledge on the determining failure modes of bending beams and their detection by NDT methods is required for the reliable application of SHM. Different NDT methods have been used in this study for analysing the load-bearing behaviour of a reinforced concrete beam in bending. The different measuring techniques are briefly described and their applicability is discussed by means of experimental results. For this purpose, the load-bearing behaviour of a reinforced concrete beam having a span of 2.75 m was investigated in a four-point bending flexural test at laboratory scale. The focus is on the characterization of determining failure modes by optical NDT and the comparison with classical measuring techniques (e.g. deformation measurements by displacement transducers). The bending beam was equipped with two single-mode (SM) sensor fibres. One fibre served as Distributed Optical Fibre Sensor (DOFS), whereas the other fibre contained Fibre Bragg Grating (FBG) sensors. In addition, optical deformation measurements using Digital Image Correlation (DIC) and Stereophotogrammetry (SP) were conducted.
Die verbesserte Signal- und Warnwirkung fluoreszierender Materialien gewinnt in vielen Bereichen zunehmend an Bedeutung, so z.B. für Warn- und Schutzkleidung, Schulranzen und Verkehrsschilder. Gleichzeitig führt der Trend zu LED-Beleuchtung in Innenräumen und auch im Straßenverkehr zu einer Diversifikation der spektralen Verteilung, welche die Fluoreszenz anregt.
Ein weiteres Beispiel hierfür ist die Verwendung fluoreszierender Farbstoffe in der zerstörungsfreien Prüfung von Werkstoffen. Sowohl bei der fluoreszierenden Eindringprüfung als auch der Magnetpulverprüfung werden Risse durch fluoreszierende Farbstoffe optisch angezeigt.
Beide Verfahren beruhen entsprechend der Stokesschen Regel auf der Energieverschiebung im Spektrum fluoreszierender Materialien gegenüber dem Anregungsspektrum hin zu größeren Wellenlängen, so dass das fluoreszierte Licht vom reflektierten Anregungslicht unterschieden werden kann. Auch hier kommt zunehmend LED-Technik zum Einsatz, wobei die Anregung im UV-, in letzter Zeit auch im blauen Spektralbereich erfolgt.
Um die Erfüllung sicherheitstechnischer Normen zu gewährleisten, muss die Charakterisierung der spektralen und integraloptischen Eigenschaften fluoreszierender Substanzen unter Berücksichtigung verschiedenster anregender Lichtarten erfolgen. Nur die bispektrale 2-Monochromatoren-Methode (2MM) liefert eine bestrahlungsunabhängige materialcharakteristische Größe, die sogenannte Donaldson-Matrix, aus welcher die Reflexions- und Fluoreszenzstrahldichtefaktoren sowie Anregungsspektren und Farbmaßzahlen für beliebige spektrale Verteilungen der Bestrahlung bzw. Normlichtarten und unterschiedliche Normalbeobachter hervorgehen.
Bei der 2MM wird die Probe mit monochromatischer Strahlung beleuchtet und das erzeugte Emissionsspektrum für jede Anregungswellenlänge gemessen. Der modernisierte bispektrale Messplatz in der Bundesanstalt für Materialforschung und prüfung (BAM) erlaubt u.a. den Einsatz eines Arrayspektrometers anstelle des Detektionsmonochromators, so dass die Messzeit erheblich reduziert wird.
Zusätzlich steht in der BAM ein Spektroradiometer (OL 750, Optronic Laboratories, Inc.) zur Verfügung, mit dem die spektrale Bestrahlungsstärke verschiedener Leuchtmittel erfasst werden kann. Zusammen mit der durch die 2MM bestimmten Donaldson-Matrix kann so die Signalwirkung z.B. eines Fluoreszenzfarbstoffes für die Rissdetektion in Materialien unter diesen bestimmten Beleuchtungsbedingungen bewertet werden.
Im Beitrag wird dieses Zusammenspiel beispielhaft für verschiedene fluoreszierende Rissprüfmittel und Anregungslichtquellen diskutiert.
Die verbesserte Sichtbarkeit fluoreszierender Materialien erhöht die Sicherheit in vielen Bereichen. Mit der 2-Monochromatoren-Methode können diese bestrahlungsunabhängig charakterisiert werden. In Hinblick auf einen Einsatz im Prüflabor (DIN EN ISO/IEC 17025) werden Vergleichsmessungen mit dem modernisierten Messplatz der BAM unter Nutzung eines Arrayspektrometers präsentiert.
The application of fluorescent materials improves the visibility for of warning symbols. BAM has used a measurement device to characterize fluorescent materials, which is based on the two-monochromator method. The result of this measurement method is an illuminant independent characteristic of the fluorescent material, called the Donaldson matrix, In view of its age and speed, the measurement device had to be re-designed and re-built. The new measurement facility is explained in greater detail in the paper. First measurement results and a comparison to the older device are also described.