Wissenschaftliche Artikel der BAM
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- 2011 (47) (entfernen)
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- Computed tomography (4)
- Aktive Thermografie (3)
- Computer-Tomographie (3)
- Schallemissionsprüfung (3)
- ZfP (3)
- Blitzlichtanregung (2)
- CFD simulation (2)
- Elektronen-Tomographie (2)
- Emission (2)
- Energetic materials (2)
Combustion of peroxy-fuels
(2011)
The diffusion flames of organic peroxides exhibit quite different characteristics than hydrocarbons. What makes them interesting to study is their fast burning behaviour. As a result the flame temperature enhances and so does the thermal radiation. Due to all these they demand safe handling during processing. However, they can be utilised at several places in different industries where a fuel with fast burning, high temperature and intense radiation are desired. Some of the possibilities to use them as a main or supporting fuel in a wide range of industrial utilities are the major content of this paper.
The use of energetic materials as a main fuel in high temperature process
industries are not known to the scientific community as such. This paper
highlights some of the features and advantages of using organic peroxides
especially di-tert-butyl peroxide (DTBP) in high temperature process industries.
The feasibility of using DTBP as a main or supporting fuel in process industries
have also been justified with the help of Computational Fluid Dynamics (CFD)
simulations. For peroxides requirement of less fuel and air for the same amount
of heat flux has been shown. The resulted emission from the combustion of
DTBP is also discussed.
Triacetone triperoxide (TATP) is a primary explosive, which was used in various terrorist attacks in the past. For the development of biosensors, immunochemical µ-TAS, electronic noses, immunological test kits, or test strips, the availability of antibodies of high quality is crucial. Recently, we presented the successful immunization of mice, based on the design, synthesis, and conjugation of a novel TATP derivative. Here, the long-term immunization of rabbits is shown, which resulted in antibodies of extreme selectivity and more than 1,000 times better affinity in relation to the antibodies from mice. Detection limits below 10 ng L-1 (water) were achieved. The working range covers more than four decades, calculated from a precision profile. The cross-reactivity tests revealed an extraordinary selectivity of the antibodies—not a single compound could be identified as a relevant cross-reactant. The presented immunoreagent might be a major step for the development of highly sensitive and selective TATP detectors particularly for security applications.
To date silica nanoparticles (SNPs) play an important role in modern technology and nanomedicine. SNPs are present in various materials (tyres, electrical and thermal insulation material, photovoltaic facilities). They are also used in products that are directly exposed to humans such as cosmetics or toothpaste. For that reason it is of great concern to evaluate the possible hazards of these engineered particles for human health. Attention should primarily be focussed on SNP effects on biological barriers. Accidentally released SNP could, for example, encounter the alveolar-capillary barrier by inhalation. In this study we examined the inflammatory and cytotoxic responses of monodisperse amorphous silica nanoparticles (aSNPs) of 30 nm in size on an in vitro coculture model mimicking the alveolar-capillary barrier and compared these to conventional monocultures.
Methods
Thus, the epithelial cell line, H441, and the endothelial cell line, ISO-HAS-1, were used in monoculture and in coculture on opposite sides of a filter membrane. Cytotoxicity was evaluated by the MTS assay, detection of membrane integrity (LDH release), and TER (Transepithelial Electrical Resistance) measurement. Additionally, parameters of inflammation (sICAM-1, IL-6 and IL-8 release) and apoptosis markers were investigated.
Results
Regarding toxic effects (viability, membrane integrity, TER) the coculture model was less sensitive to apical aSNP exposure than the conventional monocultures of the appropriate cells. On the other hand, the in vitro coculture model responded with the release of inflammatory markers in a much more sensitive fashion than the conventional monoculture. At concentrations that were 10-100fold less than the toxic concentrations the apically exposed coculture showed a release of IL-6 and IL-8 to the basolateral side. This may mimic the early inflammatory events that take place in the pulmonary alveoli after aSNP inhalation. Furthermore, a number of apoptosis markers belonging to the intrinsic pathway were upregulated in the coculture following aSNP treatment. Analysis of the individual markers indicated that the cells suffered from DNA damage, hypoxia and ER-stress.
Conclusion
We present evidence that our in vitro coculture model of the alveolar-capillary barrier is clearly advantageous compared to conventional monocultures in evaluating the extent of damage caused by hazardous material encountering the principle biological barrier in the lower respiratory tract.
Analyzing damages at concrete structures due to physical, chemical, and mechanical exposures need the application of innovative non-destructive testing methods that are able to trace spatial changes of microstructures. Here, the utility of three different crack detection methods for the analysis of computed tomograms of various cementitious building materials is evaluated. Due to the lack of reference samples and standardized image quality evaluation procedures, the results are compared with manually segmented reference data sets. A specific question is how automatic crack detection can be used for the quantitative characterization of damage processes, such as crack length and volume. The crack detection methods have been integrated into a scientific visualization system that allows displaying the tomography images as well as presenting the results.
Tomography data obtained from transmission electron microscopes are especially attractive due to their unrivaled spatial resolution in the nanometer range or even less, but they require enormous efforts in sample preparation and suffer from a diverse accumulation of experimental restrictions, which unavoidably result in fundamental reconstruction artifacts. These restrictions refer to: partial opacity, a limited view (limited angle or missing wedge), very few angles (with respect to the detector size), limited to a region of interest (ROI; due to the sample size), variable angular increments as well as sample degradation due the interactions with the electron beam. An advanced version of the DIRECTT (Direct Iterative Reconstruction of Computed Tomography Trajectories) algorithm proves to cope with most of these severe deviations from ideal CT measuring conditions. However, careful data preprocessing is required in order to exploit the capabilities of the algorithm.
Nanometer sized Ruthenium catalyst particles for fuel cell applications are 3D imaged at a few Ångström resolution in order to estimate their partial free surface on carbon black supports, which rule the efficiency of the catalytic activity.
Comparisons of DIRECTT reconstructions to the conventional filtered back projection, prove the significant improvements.
The computer simulation of radiography is applicable for different purposes in NDT such as for the qualification of NDT systems, the optimization of system parameters, feasibility analysis, model-based data interpretation, education and training of NDT/NDE personnel, and others. Within the framework of the European project PICASSO simulators will be adapted to support reliability assessments of NDT tasks. The radiographic simulator aRTist developed by BAM is well suited for this task. It combines analytical modelling of the RT inspection process with the CAD-orientated object description applicable to various industrial sectors such as power generation, aerospace, railways and others. The analytic model includes the description of the radiation source, the interaction of Radiation
with the material of the part, and the detection process with special focus to DIR. To support reliability estimations the simulation tool is completed by a tool for probability of detection (POD) estimation. It consists of a user interface for planning automatic simulation runs with varying parameters, specifically defect variations.
Further, an automatic image analysis procedure is included to evaluate the defect visibility and calculate the POD therefrom.
Industrial computed tomography (CT) today is an important method to analyze defects and to measure the geometry of technical products. The measurement capability of industrial CT often depends on the knowledge of the measurement errors being present. Only with this knowledge, effective corrections are possible by manufacturers, or adapted measurement procedures become possible for the customers. Thus, there is the strong need to have adequate reference standards both for the assessment of general dependencies and for the measurement of task-specific effects. Especially the latter are difficult to assess. This paper shows the application of a versatile dismountable workpiece-near reference body for the use with CT. The reference standard was made from a miniaturized cast aluminium (one-)cylinder head. It can be dismounted into four segments, each featuring reference geometries which enable a registration of CT measured and other reference datasets (e.g. from tactile CMM). The reference standard embodies complex freeform surfaces which are a challenging measurement task for CT and other sensors. Here the application of the reference standard is the study of the influence of material mixes. This is realized by adding pieces of other materials which disturb the mono-material measurement.
Results of the application of the reference standard are presented using data from industrial micro-CT systems and CMM reference data. A special emphasis is given on the workflow of the data processing and the data analysis.
Selbst die modernsten ZfP-Systeme können, wenn sie bis an die Grenzen ihrer Möglichkeiten z. B. kleine Fehler zu finden beansprucht werden, nicht alle Fehler der gleichen Größe finden. Sogar wenn ein und derselbe Fehler mehrmals geprüft wird, wird er nicht immer gefunden. Deshalb wurde, besonders für solche Anwendungsfälle wo das Übersehen eines Fehlers zu schwerwiegenden Konsequenzen führt, das Konzept der Zuverlässigkeit der ZfP eingeführt. Das Konzept der BAM beinhaltet eine ganzheitliche Betrachtungsweise mittels eines modularen Models. Die Hauptmodule des Modells sind die innewohnende Fähigkeit, die die physikalisch technischen Aspekte behandelt. Weiterhin werden die Einflüsse der Umgebung betrachtet, die den Prüfprozess stören, aber nicht zum Prüfsystem selbst gehören. Einen wesentlichen Aspekt, sowohl bei manuellen als auch bei mechanisierten Prüfungen stellt der menschliche Faktor dar. Die Betrachtungen im vorliegenden Artikel beziehen sich hauptsächlich auf die innewohnende Fähigkeit.
Wegen der dem Prüfprozess innewohnenden Unsicherheit wird die Leistungsfähigkeit eines ZfP-Systems durch eine Funktion POD (a) ausgedrückt. Zu verschiedenen Fehlergrößen (a) gehören verschiedene Fehlerauffindwahrscheinlichkeiten (POD). Die Fehlergröße (a), bei der die untere 95 % Vertrauensgrenze das Niveau von 90 % POD schneidet wird α90/95 genannt. Dieser Punkt wird als Maß für das Leistungsvermögen der ZfP-Methode benutzt.
Während der letzten 10-20 Jahre wurden auf diese Weise verschiedene Inspektionssysteme für eine gewählte ZfP-Methode mit einer einfachen Anwendungsgeometrie bewertet.
Wenn man über diese einfachen Anwendungssituationen hinaus, die Zuverlässigkeit in realen industriellen Prozessen betrachtet, treten als erstes industrielle Bauteile mit komplexer Geometrie und Defekte, die mit mehr als nur einem Parameter (Größe und Tiefe, Orientierung, Oberflächenrauhigkeit) charakterisiert werden müssen, auf die Tagesordnung. Neue hochentwickelte und automatisierte ZfP-Systeme, wie z. B. Ultraschallgruppenstrahler, lassen die Möglichkeit zu die Prüfungen digital aufzuzeichnen und später erst auszuwerten. Weiterhin erlauben es moderne Modellierungswerkzeuge den ZfP-Prozess zu simulieren und damit die Einflüsse der Wellenausbreitung und deren Wechselwirkung mit Defekten sowie die Wirkung der zusätzlichen Einflussparameter (z. B. Abstand vom Prüfkopf oder Orientierung) auf die POD zu untersuchen. Damit entsteht die Möglichkeit die räumliche Verteilung der POD im Prüfstück zu ermitteln die Volumen-POD. Die Volumen-POD kann ebenso wie die konventionelle POD als Maß für die Leistungsfähigkeit des ZfP-Systems benutzt werden. Darüber hinaus kann man das ZfP-System optimieren. Wenn z. B. bestimmte Volumenelemente nur ungenügende POD-Werte aufweisen, müssen zusätzliche Prüfungen einbezogen werden. Aber auch der umgekehrte Fall, Bereiche in denen mehrere Prüfköpfe ein POD Niveau von 100 % haben und die Zahl der Prüfungen reduziert werden kann, werden mit der Volumen-POD erkannt.