Abstract:
Method and means for modifying gases or fumes fed through a filter (1), from its inlet side to its outlet side, submitted to an electric plasma having its maximum plasma density (d) at the filter's inlet side. The gases or fumes may comprise NOx, the filter being constituted by a catalytic material fit for modifying NOx. The filter also may be polluted with e.g. a soot deposit, precipitated on the filter's surface and/or within the filter's interior. The means may comprise a first electrode system (2) at the filter's inlet side and a second electrode system (3) at the filter's outlet side, connected to a high voltage (V1). Preferably the first electrode system comprises two or more groups of interlacing electrodes, each connected to a high voltage source (V1, V2, V3).
Abstract:
The invention relates to a surface dielectric barrier discharge plasma unit. The unit comprises a solid dielectric structure provided with an interior space wherein an interior electrode is arranged. Further, the unit comprises a further electrode for generating in concert with the interior electrode a surface dielectric barrier discharge plasma. The unit is also provided with a gas flow path along a surface of the structure.
Abstract:
A process for preparing a disinfecting wound dressing for the protection of wounds, such as burn wounds, ulcers and cuts, the process comprising the steps of providing a yarn-based substrate, subjecting a surface of the substrate to a plasma environment, thereby providing non-leaching and biocidal features to the substrate surface by exposing the substrate surface to an antimicrobial active compound reaction.
Abstract:
The invention relates to a process for preparing a disinfecting wound dressing for the protection of wounds, such as burn wounds, ulcers and cuts. The process comprises the steps of providing a yarn-based substrate, subjecting a surface of the substrate to a plasma environment, thereby providing non-leaching and biocidal features to the substrate surface by exposing the substrate surface to an antimicrobial active compound reaction.
Abstract:
The invention is directed to a method for depositing particles on a substrate and to a fibrous web comprising deposited particles. A method is provided according to which particles are provided on a surface activated substrate by means of a plasma treatment. The method comprises the subsequent steps of -providing particles, preferably coating said particles; -subjecting said particles to a first plasma treatment before being deposited on said substrate; and -depositing said particles on said surface of said substrate, preferably using a second plasma treatment.
Abstract:
The invention relates to a surface dielectric barrier discharge plasma unit. The unit comprises a solid dielectric structure provided with an interior space wherein an interior electrode is arranged. Further, the unit comprises a further electrode for generating in concert with the interior electrode a surface dielectric barrier discharge plasma. The unit is also provided with a gas flow path along a surface of the structure.
Abstract:
A method of reducing contamination generated by a hydrogen radical generator and deposited on an optical element of a lithographic apparatus includes passing molecular hydrogen over a first part of a metal filament of the hydrogen radical generator, the first part including a metal-oxide, when the temperature of the first part of the metal filament is at a reduction temperature less than or equal to an evaporation temperature of the metal-oxide.
Abstract:
Method and means for modifying gases or fumes fed through a filter (1), from its inlet side to its outlet side, submitted to an electric plasma having its maximum plasma density (d) at the filter's inlet side. The gases or fumes may comprise NOx, the filter being constituted by a catalytic material fit for modifying NOx. The filter also may be polluted with e.g. a soot deposit, precipitated on the filter's surface and/or within the filter's interior. The means may comprise a first electrode system (2) at the filter's inlet side and a second electrode system (3) at the filter's outlet side, connected to a high voltage (V1). Preferably the first electrode system comprises two or more groups of interlacing electrodes, each connected to a high voltage source (V1, V2, V3).