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Eingeladener Vortrag
- nein (20)
The Alpine Fault zone in New Zealand marks a major transpressional plate boundary that is late in its typical earthquake cycle. Understanding the subsurface structures is crucial to understand the tectonic processes taking place. A unique seismic survey including 2D lines, a 3D array, and borehole recordings, has been performed in the Whataroa Valley and provides new insights into the Alpine Fault zone down to ∼2 km depth at the location of the Deep Fault Drilling Project (DFDP)-2 drill site. Seismic images are obtained by focusing prestack depth migration approaches. Despite the challenging conditions for seismic imaging within a sediment filled glacial valley and steeply dipping valley flanks, several structures related to the valley itself as well as the tectonic fault system are imaged. A set of several reflectors dipping 40°–56° to the southeast are identified in a ∼600 m wide zone that is interpreted to be the minimum extent of the damage zone. Different approaches image one distinct reflector dipping at ∼40°, which is interpreted to be the main Alpine Fault reflector located only ∼100 m beneath the maximum drilled depth of the DFDP-2B borehole. At shallower depths (z < 0.5 km), additional reflectors are identified as fault segments with generally steeper dips up to 56°. Additionally, a glacially over-deepened trough with nearly horizontally layered sediments and a major fault (z < 0.5 km) are identified 0.5–1 km south of the DFDP-2B borehole. Thus, a complex structural environment is seismically imaged and shows the complexity of the Alpine Fault at Whataroa.
The chapter starts with a brief introduction about corrosion, which is defined as the interdependency between a metal, a corrosive environment, and the respective component design. The second section introduces the most important forms of aqueous electrochemical corrosion (uniform corrosion, galvanic corrosion, selective and intergranular corrosion, and finally pitting and crevice corrosion in the case of passive layer forming metals). In addition, electrochemical corrosion under applied mechanical load is introduced (stress corrosion cracking, hydrogen-assisted cracking, corrosion fatigue), as well as special forms of corrosion (erosion, fretting, and microbiologically induced corrosion). The third section of this chapter introduces (mostly dry) chemical corrosion and high-temperature corrosion (oxidation, carburization, high-temperature hydrogen attack, sulfurization, nitriding, halogenation). As in the case of electrochemical corrosion, chemical corrosion can also be superimposed by mechanical loads. Finally, general facts on the testing of corrosion are introduced.
Research software has become a central asset in academic research. It optimizes existing and enables new research methods, implements and embeds research knowledge, and constitutes an essential research product in itself. Research software must be sustainable in order to understand, replicate, reproduce, and build upon existing research or conduct new research effectively. In other words, software must be available, discoverable, usable, and adaptable to new needs, both now and in the future. Research software therefore requires an environment that supports sustainability.
Hence, a change is needed in the way research software development and maintenance are currently motivated, incentivized, funded, structurally and infrastructurally supported, and legally treated. Failing to do so will threaten the quality and validity of research. In this paper, we identify challenges for research software sustainability in Germany and beyond, in terms of motivation, selection, research software engineering personnel, funding, infrastructure, and legal aspects. Besides researchers, we specifically address political and academic decision-makers to increase awareness of the importance and needs of sustainable research software practices. In particular, we recommend strategies and measures to create an environment for sustainable research software, with the ultimate goal to ensure that software-driven research is valid, reproducible and sustainable, and that software is recognized as a first class citizen in research. This paper is the outcome of two workshops run in Germany in 2019, at deRSE19 - the first International Conference of Research Software Engineers in Germany - and a dedicated DFG-supported follow-up workshop in Berlin.
BAM Inside #2/2021
(2021)
BAM Inside #3/2021
(2021)
Liebe Leser*innen,
wir stehen an der Schwelle einer globalen Transformation, des Aufbruchs in ein neues Zeitalter. Deutschland hat sich verpflichtet, bis 2045 das Ziel der Klimaneutralität zu erreichen, und stellt sich damit der Verantwortung, die Erderwärmung in vertretbaren Grenzen zu halten.
Der Weg zu einer CO₂-neutralen Zukunft wird nur mit sicheren Technologien und Innovationen möglich sein. Der Koalitionsvertrag der neuen Bundesregierung betont in seiner Präambel, dass "dieser Fortschritt auch mit einem Sicherheitsversprechen einhergehen muss". Unsere Expertise als Ressortforschungseinrichtung des Bundes mit dem Auftrag, Sicherheit in Technik und Chemie zu gewährleisten, ist daher auch 150 Jahre nach unserer Gründung gefragt - vielleicht mehr denn je. Wir verbinden sie mit dem Anspruch, Wissenschaft mit Wirkung zu betreiben, und leisten so einen Beitrag für eine klimaneutrale Zukunft.
Dieser Wandel und seine Innovationen werden von neuen Ideen in der Chemie sowie den Material- und Werkstoffwissenschaften getragen, unsere Zukunft ist eine stoffliche. Neue und alte Materialsysteme, Komponenten und Infrastrukturen werden im Kontext der Nachhaltigkeit gedacht werden müssen. Ihre Sicherheit macht Märkte, trägt also zum gesellschaftlichen Wohlstand bei, wenn wir das Vertrauen in Wissenschaft und Technik stärken. Dieses Vertrauen wiederum erwächst aus der Expertise von Menschen und der Verlässlichkeit von Institutionen wie der BAM.
Im letzten Jahr haben wir unsere Anstrengungen insbesondere in Schlüsselbereichen der Energiewende ausgebaut: unter anderem mit unserem Kompetenzzentrum für die Sicherheit moderner Wasserstofftechnologien, umfassenden Testmöglichkeiten für elektrische Energiespeicher und der Suche nach effizienteren, umweltschonenden Alternativen zu Lithium-Ionen-Batterien sowie mit Projekten zur Standfestigkeit noch größerer, leistungsstärkerer Windenergieanlagen und zur CO₂-Einsparung.
Zusammen mit unseren Partner*innen haben wir die große Chance, den Wandel aktiv voranzubringen. Davon erfahren Sie mehr in unserem neuen BAM Report 2021/22. Viel Spaß beim Lesen und Eintauchen in unsere Arbeit!
BAM Update #2/2021
(2021)
Applying data-driven AI systems makes it possible to extract patterns from given data, generate predictions and helps making decisions. Material research and testing holds a plethora of AI-based applications, for example, for the automatized search and synthesis of new materials, the detection of materials defects, or the prediction of process and materials parameters (inverse problems). However, AI algorithms can often only be as good as the training data from which the corresponding models are learned. Therefore, it is also indispensable to develop measures for the standardization and quality assurance of such data.
For this purpose, we develop and implement methods from transferring data from various sources into a homogeneous data repository with uniform data descriptions. Through the standardization and corresponding machine-readable interfaces, research data can be made usable and reusable for further data analyses. In addition to the technical implementation of integrative platforms, it is crucial that quality-assured research data management is recognized and implemented as an integral part of daily scientific work. Finally, we provide a vision of how the Federal Institute for Materials Research and Testing can benefit from data-driven AI systems. We discuss early applications and take a peek at future research.
SRB are environmentally and industrially important microorganisms. The disadvantage of their metabolic activity (e.g. sulfate reduction) results in the formation of toxic sulfide that leads to microbial influenced corrosion. SRB have been responsible for biocorrosion of ferrous metal. One of mitigation strategy is the use of biocides. However, it has been shown that various bacteria develop antimicrobial resistance due to excessive use of biocides. Thus, a deeper understanding of the evolution of biocide resistance of SRB is necessary. Three commonly used biocides, THPS, BAC, and GLUT were applied to investigate the susceptibility of Desulfovibrio alaskensis G20.The minimum inhibitory and bactericidal concentration and the killing kinetics of the three biocides was determined. These results will be used to conduct evolution experiments to determine the evolution of resistance towards biocides of SRBs. The outcome of this work can be helpful to improve the management of MIC treatments.