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Die fermentative Verwertung von Rohglycerin setzt je nach Herstellungsmethode und Produktionsorganismus eine Vorbehandlung des Glycerins zur Entfernung von Produktinhibitoren voraus. Durch den Einsatz von Hydrotalcit-Adsorbern können die im Rohglycerin enthaltenen Fettsäuren entfernt werden. Durch diese einfache Aufarbeitungsmethode ist ein mit reinem Glycerin vergleichbarer Umsatz von stark mit Fettsäuren verunreinigtem Rohglycerin zu 1,3-Propandiol (PDO) möglich. Die durch den Hydrotalcit gebundenen Fettsäuren lassen sich mit einem Ethanol-Wasser-Gemisch eluieren. Somit kann der Adsorber regeneriert und die Fettsäuren wieder der Wertschöpfungskette zugeführt werden. Im Fed-Batch-Experiment kann mit C. diolis eine PDO-Konzentration von über 50 g L⁻¹ unter Verwendung des aufgereinigten Rohglycerins erzielt werden. In der industriellen Produktion wird PDO momentan destillativ aufgearbeitet. Ein adsorptives Aufarbeitungsverfahren kann den Energiebedarf des Herstellungsprozesses drastisch senken. Auf der Suche nach einem geeigneten Material wurde ein Adsorberscreening in Bezug auf die Bindungseigenschaften durchgeführt. Mit einem b-Zeolith der Firma Süd ChemieAG konnte bisher die höchste Beladung im Modellsystem von 120 mg PDO/gAdsorber erreicht werden.
A variety of transition metals, e.g., copper, zinc, cadmium, lead, etc. are widely used in industry as components for wires, coatings, alloys, batteries, paints and so on. The inevitable presence of transition metals in industrial processes implies the ambition of developing a proper analytical technique for their adequate monitoring. Most of these elements, especially lead and cadmium, are acutely toxic for biological organisms. Quantitative determination of these metals at low activity levels in different environmental and industrial samples is therefore a vital task. A promising approach to achieve an at-side or on-line monitoring on a miniaturized and cost efficient way is the combination of a common potentiometric sensor array with heavy metal-sensitive thin-film materials, like chalcogenide glasses and polymeric materials, respectively.
Suburethral slings as well as different meshes are widely used treating stress urinary incontinence and prolaps in women. With the development of MiniSlings and special meshes using less alloplastic material anchorage systems become more important to keep devices in place and to put some tension especially on the MiniSlings. To date, there are many different systems of MiniSlings of different companies on the market which differ in the structure of the used meshes and anchors. A new objective measurement method to compare different properties of MiniSling systems (mesh and anchor) is presented in this article. Ballistic gelatine acts as soft tissue surrogate. Significant differences in parameters like pull-out strength of anchors or shrinkage of meshes under loading conditions have been determined. The form and size of the anchors as well as the structural stability of the meshes are decisive for a proper integration. The tested anchorings sytems showed markedly different mechanical function at their respective load bearing capacity. As the stable fixation of the device in tissue is a prerequisite for a permanet reinforcement, the proposed test system permits further optimisation of anchor and mesh devices to improve the success of the surgical treatment
A magnetic resonance tomography (MRT) apparatus (1) for the examination of a body (14) comprises parameter acquisition devices (13) for the acquisition of cardiovascular parameters of the body (14) and a control device (15) in communication with the parameter acquisition devices (13) for synchronizing the imaging, wherein the control device (15) is adapted to analyse the data of at least two parameter acquisition devices (13) and to output a control signal based on the analysis.
Cell-based sensors for the detection of gases have long been underrepresented, due to the cellular requirement of being cultured in a liquid environment. In this work we established a cell-based gas biosensor for the detection of toxic substances in air, by adapting a commercial sensor chip (Bionas®), previously used for the measurement of pollutants in liquids. Cells of the respiratory tract (A549, RPMI 2650, V79), which survive at a gas phase in a natural context, are used as biological receptors. The physiological cell parameters acidification, respiration and morphology are continuously monitored in parallel. Ammonia was used as a highly water-soluble model gas to test the feasibility of the sensor system. Infrared measurements confirmed the sufficiency of the medium draining method. This sensor system provides a basis for many sensor applications such as environmental monitoring, building technology and public security.