Abstract:
Die vorliegende Erfindung betrifft ein Isolierelement (1), umfassend - zumindest ein dimensionsstabiles Dämmmaterial (3) und - zumindest eine gasdichte Ummantelung (5) des dimensionsstabilen Dämmmaterials (3), wobei das Isolierelement (1) einen Innendruck von 0,15 bar bis 0,8 bar aufweist. Die Erfindung bezieht sich weiter auf die Verwendung des Isolierelements (1) zur Isolierung von Fahrzeugen und zur Dämmung von Gebäuden, entweder als Innendämmung oder als Dämmkern in einem von Glasplatten begrenzten, ggf. transluzenten Wandelement.
Abstract:
Process for reusing an ionic liquid, wherein a) after use of the ionic liquid, a composition comprising the used ionic liquid and other constituents is obtained, b) optionally, this composition is worked up to increase the content of the ionic liquid in the composition and to remove other constituents either entirely or partly, c) the T 2 value of the composition is determined by TD-NMR measurement (this composition will hereinafter be referred to as TD-NMR composition) and d) depending on the T 2 value determined, the TD-NMR composition is either worked up further or the TD-NMR composition is used as ionic liquid for a desired application.
Abstract:
Process for reusing an ionic liquid, wherein a) after use of the ionic liquid, a composition comprising the used ionic liquid and other constituents is obtained, b) optionally, this composition is worked up to increase the content of the ionic liquid in the composition and to remove other constituents either entirely or partly, c) the T 2 value of the composition is determined by TD-NMR measurement (this composition will hereinafter be referred to as TD-NMR composition) and d) depending on the T 2 value determined, the TD-NMR composition is either worked up further or the TD-NMR composition is used as ionic liquid for a desired application.
Abstract:
The present invention is in the field of methods for determining material properties from foam samples. It relates to a computer-implemented method for determining a material property of a foam sample comprising (a) providing a representation of the sample, (b) extracting at least one structural feature from the representation, wherein the at least one structural feature comprises walls, struts, or nodes (c) providing the at least one structural feature to a material model suitable for obtaining at least one material property from the structural feature, and (d) outputting the at least one material property received from the material model.
Abstract:
Die Erfindung betrifft eine schallabsorbierende und brandhemmende Anordnung (10), welche in dieser Reihenfolge eine erste Hüllschicht (12), eine mittlere Schicht (14) und eine zweite Hüllschicht (16) umfasst, wobei die mittlere Schicht (14) Zellen (18) umfasst, wobei die Zellen zumindest Teilweise mit einem Füllmaterial (22) befüllt sind, welches zumindest ein Brummgel enthält. Weitere Aspekte der Erfindung betreffen die Verwendung der schallabsorbierenden und brandhemmenden Anordnung (10) als Wandpaneel zur Verkleidung einer Wand eines Gebäudes, als Schallabsorbierendes Element in einem Gehörschutz oder als Schallabsorbierendes Element in einem Kopfhörer.
Abstract:
Die vorliegende Erfindung betrifft ein Verfahren zur Herstellung von Carotenoid- und/oder Vitamin und/oder Omega-3-Fettsäuren und/ oder Phytosterole und/oder konjugierte Linolsäuren enthaltenden Partikeln mit enger Partikelgrössenverteilung und gleichmäßiger Kugelform und Dichte, sowie Partikel erhältlich nach diesem Verfahren und deren Verwendung als Nahrungsergänzungsmittel, Lebensmittel, Futtermittel, Körperpflegeprodukt und Arzneimittel. Die erfindungsgemäßen Partikel weisen eine gegenüber dem Stand der Technik verbesserte Lagerstabilität auf. Die Partikel werden mittels Vibrationsvertropfung hergestellt.
Abstract:
The use of a mixture (M) comprising (a) from 40 to 70 % by volume of an inorganic powder (IP) based on the total volume of the mixture (M), (b) from 30 to 60 % by volume based on the total volume of the mixture (M) of a binder (B) comprising (b1) from 50 to 96 % by weight of at least one polyoxymethylene (POM) based on the total weight of the binder (B), (b2) from 2 to 35 % by weight of at least one polyolefin (PO) based on the total weight of the binder (B), (b3) from 2 to 40 % by weight of at least one further polymer (FP) based on the total weight of the binder (B) in a fused filament fabrication process.
Abstract:
The present invention relates to the use of a polymer comprising polymerized units (A) and (B): (A) at least one first monomer of the formula (I) where n is 3 to 12; m is 0 to 3; R 1 is C 1 -C 10 -alkyl, C 2 -C 10 -alkenyl, aryl or aralkyl; R 2 , R 3 and R 4 are each, independently of one another, hydrogen, C 1 -C 10 -alkyl, C 2 -C 10 -alkenyl, aryl or aralkyl; and (B) at least one second monomer of the formula (II) where R 5 , R 6 and R 7 are each, independently of one another, hydrogen, C 1 -C 10 -alkyl, C 2 -C 10 -alkenyl, aryl or aralkyl; R 8 is C 1 -C 20 -alkyl, C 2 -C 10 -alkenyl, aryl or aralkyl; as a support material in a fused filament fabrication process.
Abstract:
Composition comprising active ingredient, oil and ionic liquid The present invention relates to a liquid composition comprising A) an organic active ingredient which is sparingly water-soluble and sparingly oil-soluble, in dissolved form, B) an oil which is soluble in water at 20°C to at most 20 g/l, and C) an ionic liquid comprising a cation and an anion as described below. Also provided is a process for the preparation of the liquid composition, where the active ingredient, the oil and the ionic liquid are brought into contact; and also the use of the ionic liquid for increasing the solubility of the active ingredient in an oil.
Abstract:
The present invention relates to a construction element (1) having a controllable heat-transfer coefficient U, comprising - a frame (7), - a first panel (3) and a second panel (5), which are opposite each other and which are arranged at a distance A from each other in the frame (7), wherein a closed volume V that is filled with at least one gas is defined by the first panel (3), the second panel (5), and the frame (7), - at least one planar element (9), the width of which corresponds to the vertical clear width W of the frame (7) and the height of which is less than the clear height H of the frame (7), wherein the planar element (9) is arranged between the first panel (3) and the second panel (5) in such a manner that the planar element ends laterally at the insides of the frame (7), and wherein an upper intermediate space (11) is formed between the planar element (9) and the frame (7) vertically upward and a lower intermediate space (13) is formed between the planar element (9) and the frame (7) vertically downward, - a first cavity (15), which is formed between the first panel (3) and the planar element (9) having a distance X, - a second cavity (17), which is formed between the planar element (9) and the second panel (5) having a distance Y, wherein the first cavity (15) and the second cavity (17) are connected by means of the upper intermediate space (11) and the lower intermediate space (13) in such a manner that a convection flow can flow between the first cavity (15) and the second cavity (17) via the upper intermediate space (11) and the lower intermediate space (13), - at least one means for controlling the convection flow, said means being arranged for the upper intermediate space (11) and/or for the lower intermediate space (13). The present invention further relates to the use of the construction element (1) according to the invention as a wall element and/or roof element in buildings and to a method for controlling the heat-transfer coefficient U in a construction element (1) according to the invention.