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Keywords
Üblicherweise werden biotechnologische Reaktionssysteme im mikrofluidischen Maßstab in vorstrukturierten Bauteilen oder mit auf Wellplatten basierenden Robotersystemen realisiert. In dem hier vorgestellten System werden chemische oder biologische Reaktionen mit magnetischen Mikroreaktoren (MR) durchgeführt, bei denen hydrophobe magnetische Mikropartikel einen wässrigen Kern umschließen. Solche MR bieten eine gute Kontrolle der Reaktionsbedingungen, eine verbesserte Sicherheit und Portabilität. Die neue Plattformtechnologie ermöglicht die zweidimensionale Bewegung der magnetischen MR auf einer planaren Ebene. Oberhalb oder unterhalb der Plattform werden Magnetfeldgradienten zum Manipulieren und Bewegen eines oder mehrerer magnetischer MR erzeugt. Die optimal auf die MR wirkenden magnetischen Kräfte werden experimentell ermittelt und simuliert. Die Aktivierung der Magnetfelder wird automatisiert durch elektrische Spulen mit Eisenkern bzw. Neodymmagnet gesteuert. Angewendet wurde das System beim reversiblen Öffnen von MR, um z. B. Reaktionspartner in den wässrigen Kern zu injizieren oder Proben zu entnehmen. Ferner wurde Lac-case A und b-Glucosidase auf einer Quarzglasoberfläche immobilisiert und mit einem MR zum Reagieren gebracht. Weiterhin wurden MR fusioniert und so ein wässriger Kern bestehend aus Laccase mit einem aus dem entsprechenden Substrat Syringaldazin vereint.
Validation of a novel method for detecting and stabilizing malfunctioning areas in fuel cell stacks
(2014)
In this paper a setup for detecting malfunctioning areas of MEAs in fuel cell stacks is described. Malfunctioning areas generate electric cross currents inside bipolar plates. To exploit this we suggest bipolar plates consisting not of two but of three layers. The third one is a highly conducting layer and segmented such that the cross currents move along the segments to the surface of the stack where they can be measured by an inductive sensor. With this information a realistic model can be used to detect the malfunctioning area. Furthermore the third layer will prevent any current inhomogeneity of a malfunctioning cell to spread to neighbouring cells in the stack. In this work the results of measurements in a realistic cell setup will be compared with the results obtained in simulation studies with the same configuration. The basis for the comparison is the reliable characterisation of the electrical properties of the cell components and the implication of these results into the simulation model. The experimental studies will also show the limits in the maximum number of segments, which can be used for a reliable detection of cross currents.
There is significant interest in sampling subglacial environments for geobiological studies, but they are difficult to access. Existing ice-drilling technologies make it cumbersome to maintain microbiologically clean access for sample acquisition and environmental stewardship of potentially fragile subglacial aquatic ecosystems. The IceMole is a maneuverable subsurface ice probe for clean in situ analysis and sampling of glacial ice and subglacial materials. The design is based on the novel concept of combining melting and mechanical propulsion. It can change melting direction by differential heating of the melting head and optional side-wall heaters. The first two prototypes were successfully tested between 2010 and 2012 on glaciers in Switzerland and Iceland. They demonstrated downward, horizontal and upward melting, as well as curve driving and dirt layer penetration. A more advanced probe is currently under development as part of the Enceladus Explorer (EnEx) project. It offers systems for obstacle avoidance, target detection, and navigation in ice. For the EnEx-IceMole, we will pay particular attention to clean protocols for the sampling of subglacial materials for biogeochemical analysis. We plan to use this probe for clean access into a unique subglacial aquatic environment at Blood Falls, Antarctica, with return of a subglacial brine sample.
A technology reference study for a multiple near-Earth object (NEO) rendezvous mission with solar sailcraft is currently carried out by the authors of this paper. The investigated mission builds on previous concepts, but adopts a strong micro-spacecraft philosophy based on the DLR/ESA Gossamer technology. The main scientific objective of the mission is to explore the diversity of NEOs. After direct interplanetary insertion, the solar sailcraft should—within less than 10 years—rendezvous three NEOs that are not only scientifically interesting, but also from the point of human spaceight and planetary defense. In this paper, the objectives of the study are outlined and a preliminary potential mission profile is presented.
Manufacturing companies are forced to operate in an increasingly volatile and unpredictabl environment. The number of events that can have a potentially critical impact on a production system‘s economic performance have significantly increased. This forces companies to invest considerably more in flexible and robust production systems capable of withstanding a certain amount of change however unable to quantify the benefits in advance. The satisfactory quantification and assessment of these qualities – Flexibility and Robustness –has not been realized yet. This paper discusses commonality between Flexibility and Robustness and offers a new approach to connect changes in the environment with the elements of a production system and thus quantifying its flexibility and robustness.