14 research outputs found

    Rsn-2-mediated directed foam enrichment of β-lactamase

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    Today, the availability of methods for the activity-preserving and cost-efficient downstream processing of enzymes forms a major bottleneck to the use of these valuable tools in technical processes. A promising technology appears to be foam fractionation, which utilizes the adsorption of proteins at a gas–liquid interface. However, the employment of surfactants and the dependency of the applicability on individual properties of the target molecules are considerable drawbacks. Here, we demonstrate that a reversible fusion of the large, surface-active protein Ranaspumin-2 (Rsn-2) to a β-lactamase (Bla) enabled both surfactant-free formation of a stable foam and directed enrichment of the enzyme by the foaming. At the same time, Bla maintained 70% of its catalytic activity, which was in stark contrast to the enzyme without fusion to Rsn-2. Rsn-2 predominantly mediated adsorption. Comparable results were obtained after fusion to the structurally more complex penicillin G acylase (PGA) as the target enzyme. The results indicate that using a surface-active protein as a fusion tag might be the clue to the establishment of foam fractionation as a general method for enzyme downstream processing

    Manipulation de liquide mousse métallique avec les champs électromagnétiques : une étude numérique

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    La mousse métallique a des propriétés mécaniques et thermodynamiques uniques qui pourraient s'avérer utiles dans de nombreux domaines, tels que la construction légère et ingénierie automobile. Cependant, la mousse métallique n'est pas encore établie en génie.Une des raisons sont les difficultés et les prix élevés dans le processus de fabrication. Causée par drainage gravitaire en état liquide, peuvent se produire des distributions de matériel non homogènes. En outre, dépassant le drainage peut provoquer rupture de bulle et la génération de soufflures. Ces effets négatifs potentiellement peuvent être évités en ajoutant magnétique ou champs électromagnétiques au cours du processus de génération.Dans cette thèse, l'influence de ces champs est donc étudié en réalisant la phase de résolution des simulations. Ces simulations sont effectuées avec le code interne premier. Une modification de la modélisation de la collision était nécessaire pour enquêter sur l'agglomération de bulles dans le métal liquide.Calcul d'une configuration statique-drainage, les mécanismes de l'agglomération sont étudiés sans la présence de champs électriques ou magnétiques. Aux vitesses élevées de drainage, les bulles flottent. À des vitesses inférieures de drainage, les bulles s'agglomèrent dans la partie supérieure du domaine, formant des structures cristallines compacte.La préférence expérimentalement bien connue de commande cubes axés sur le visage, plus hexagonale compacte vous passez votre commande de volume égal bulles est reproduit numériquement. Appliquant davantage des simulations et expériences, un mécanisme de l'instabilité de la commande de façon hexagonale compacte est identifié, ayant pour résultat la préférence de commande de cubes axés sur le visage.Afin de déterminer les propriétés mécaniques de la mousse métallique solide avec la fraction de gaz faibles et aux fonctionnalités avantageuses et désavantageuses d'état d'arrangements de bulle, simulations par éléments finis de la mousse métallique solide avec cavités sphériques sont réalisées et comparées. Une influence significative de la quantité de cristaux de bulle sur la mécanique de la mousse se trouve. Le type de l'ordre cristallin est moins important.On étudie l'influence d'un champ magnétique horizontal sur l'agglomération de bulle. La résistance de drainage peut être augmentée sensiblement en ajoutant un champ magnétique. La structure résultante des bulles est moins sensible à un champ magnétique.Combinant un courant électrique horizontal et une perpendiculaire, champ magnétique horizontal se traduit par une force verticale de Lorentz. Cette force peut équilibrer la gravitation et donc, provoquer la rotation des bulles. Simuler cet État révèle une distribution homogène de bulle. Dans le même temps, friser les champs de force dans le voisinage de chaque bulle induire un mouvement continu en remuant. Petit champ électromagnétique forces n'empêchent pas les bulles d'agglomération, mais peuvent varier le montant de la commande cristallisé et par conséquent, les propriétés mécaniques de la mousse solide qui en résulte.En conclusion, un champ magnétique horizontal augmente la résistance de drainage, tandis que sa combinaison avec un courant électrique provoque des distributions de bulle homogène et peut modifier la structure de la mousse et la fraction de gaz. Les résultats de cette thèse pourraient aider à améliorer le processus de fabrication industrielle de mousse métallique ou même permettre la production de métal poreux avec la fraction de gaz définie par l'utilisateur.Metal foam has unique mechanical and thermodynamic properties which could prove useful in many fields, such as light-weight construction and automotive engineering. However, metal foam is not yet established in engineering. One reason are the difficulties and high prices in the fabrication process. Caused by gravity-driven drainage in liquid state, inhomogeneous material distributions can occur. Also, exceeding drainage might cause bubble rupture and the generation of blow-holes. These negative effects potentially can be avoided by adding magnetic or electromagnetic fields during the generation process. In this thesis, the influence of these fields is therefore investigated by conducting phase resolving simulations. These simulations are carried out with the in-house code PRIME. A modification of the collision modelling was necessary in order to investigate the agglomeration of bubbles within liquid metal. Computing a static-drainage setup, the agglomeration mechanisms are investigated without the presence of electric or magnetic fields. At high drainage velocities the bubbles float. At lower drainage velocities the bubbles agglomerate in the upper part of the domain, forming close-packed crystalline structures. The experimentally well known preference of face-centred cubic ordering, over hexagonally close-packed ordering of equal-volume bubbles is reproduced numerically. Applying further simulations and experiments, an instability mechanism of hexagonally close-packed ordering is identified, resulting in the preference of face-centred cubic ordering. In order to determine the mechanical properties of solid metal foam with low gas fraction and to state advantageous and disadvantageous features of bubble arrangements, Finite-Element simulations of solid metal foam with spherical voids are carried out and compared. A significant influence of the amount of bubble crystals on the foam mechanics is found. The type of the crystalline ordering is less important. The influence of a horizontal magnetic field on the bubble agglomeration is investigated. The drainage resistance can be increased significantly by adding a magnetic field. The resulting structure of the bubbles is less sensitive to a magnetic field. Combining a horizontal electric current and a perpendicular, horizontal magnetic field results in a vertical Lorentz force. This force can balance gravitation and thus, cause rotation of the bubbles. Simulating this state reveals a homogeneous bubble distribution. At the same time, curling force fields in the vicinity of each bubble induce a continuous stirring motion. Small electromagnetic field strengths do not prevent the bubbles from agglomerating, but can vary the amount of crystallized ordering and therefore, the mechanical properties of the resulting solid foam. In conclusion, a horizontal magnetic field increases the drainage resistance, while its combination with an electric current causes homogeneous bubble distributions and can alter the foam structure and the gas fraction. The results of this thesis could help improve the industrial fabrication process of metal foam or even allow production of porous metal with user-defined gas fraction

    Example videos of particles colliding with a rising bubble

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    These videos are related to the publication "Collision phenomena between inertialess particles and bubbles: An experimental study with 4D PTV and tomographic PIV", submitted on the XXX to the Journal of Fluid Mechanics. They are the underlying raw videos of an exemplary leading and tailing edge collision trajectory which are analzed in Figure 7 and 8, respectivly

    Influence of an electromagnetic field on the formation of wet metal foam

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    This paper presents a method of floating bubbles in liquid metal by applying an electromagnetic field. The aim of this method is to distribute the bubbles more homogeneously and to stop drainage in the generation process of metal foam. A horizontal electric current, combined with an orthogonal, horizontal magnetic field creates an upward Lorentz force that counteracts gravitational acceleration. Phase-resolving numerical simulations have been applied in order to investigate the complex behavior of a large number of bubbles exposed to these fields. Controlled by the strength of the electromagnetic fields, the bubbles can ascend more slowly, stagnate, or even descend. Due to the influence of the bubbles on the electric current, however, rotating flows are induced which prevent the bubbles from becoming immobile and induce an interesting mixing structure. Consequently, the applied electromagnetic field offers the opportunity to manipulate the bubble distribution and the drainage in the generation process of wet metal foam

    FEM-simulation of gas diffusion in solid closed-cell porous materials

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    International audienceThe past decades witnessed growing interest in polymeric closed-cell porous materials. They are lightweight, robust and find applications in many different sectors, like packaging, thermal insulation or cushioning. Numerical simulations are commonly used in the construction process to predict the behaviour of the products in application. So far, gas diffusion has often been neglected, as there are no tools available to include it. Therefore, this paper aims to present an algorithm to include the simulation of gas diffusion into a commercial finite element analysis (FEA) tool, at the example of MSC Marc. Using the similarity of thermal conductivity and gas diffusion, the thermal solver of the FEA program is exploited to perform the simulation of gas diffusion. Some first two-dimensional numerical simulations of porous closed-cell models under long-term load show promising results. Effective diffusion coefficients are obtained and conclusions about the time scale are made. The results agree to analytical estimations of the diffusion process. A notable influence of gas diffusion on long-term loaded porous materials can be shown

    research data: Rsn-2-mediated directed foam enrichment of β-lactamase

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    the excel data attached includes the flotation data, the surface tension data, and the activity of the enzyemes before and after the flotation

    Investigating Pore‐Opening of Hydrogel Foams at the Scale of Freestanding Thin Films

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    International audienceControlling the pore connectivity of polymer foams is key for most of their applications, ranging from liquid uptake, mechanics, and acoustic/thermal insulation to tissue engineering. Despite their importance, the scientific phenomena governing the pore-opening processes remain poorly understood, requiring tedious trial-and-error procedures for property optimization. This lack of understanding is partly explained by the high complexity of the different interrelated, multiscale processes which take place as the foam transforms from an initially fluid foam into a solid foam. To progress in this field, this work takes inspiration from long-standing research on liquid foams and thin films to develop model experiments in a microfluidic “Thin Film Pressure Balance.” These experiments allow the investigation of isolated thin films under well-controlled environmental conditions reproducing those arising within a foam undergoing cross-linking and drying. Using the example of alginate hydrogel films, the evolution of isolated thin films undergoing gelation and drying is correlated with the evolution of the rheological properties of the same alginate solution in bulk. The overall approach is introduced and a first set of results is presented to propose a starting point for the phenomenological description of the different types of pore-opening processes and the classification of the resulting pore-opening types
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