Abstract:
Es wird ein Verfahren zur Erzeugung eines nicht-thermischen Plasmas mit vorherbestimmter Ozonkonzentration mit folgenden Schritten vorgeschlagen: Bereitstellen eines zumindest näherungsweise geschlossenen Volumens als Reaktionsbereich (5); Aktivieren einer Plasmaquelle (3) und Erzeugen eines nicht-thermischen Plasmas in dem Reaktionsbereich (5), wobei das Plasma zumindest so lange in dem Reaktionsbereich (5) gehalten wird, bis eine vorherbestimmte Ozonkonzentration erreicht oder eine vorherbestimmte Obergrenze für die Ozonkonzentration unterschritten wird.
Abstract:
The present invention relates to an ozone generator comprised of a discharge means and a reflecting screen. The discharge means comprises a rough-surfaced dielectric element with central aperture and rectangular cross section sandwiched between a first electrode (32) and a second electrode (36). The first electrode is comprised of a plurality of helical windings that contact a plurality of flanges (30) on the dielectric element and the second electrode is comprised of an electrically conductive coating which overlies the rough surface of the dielectric element. The first electrode is aligned with respect to a central aperture, dielectric element, and the second electrode such that a constant distance of separation between the electrodes is maintained along the entire length of the discharge means. The reflecting screen, joined to the discharge means by a plurality of mounting brackets, directs accumulated ozone away from the ozone generator and toward an intended site for treatment. The disclosed invention converts oxygen to ozone with great efficiency and, unexpectedly, the fusion of the second electrode with the surface of the dielectric element provides improved ozone recovery by rapidly dissipating heat generated by the discharge means.
Abstract:
The present invention relates to an ozone generator comprising a discharge means and a reflecting screen. The discharge means comprises a rough-surfaced dielectric element with central aperture and rectangular cross section sandwiched between a first electrode and a second electrode. The first electrode comprises a plurality of helical windings that contact a plurality of flanges on the dielectric element and the second electrode is comprised of an electrically conductive coating which overlies the rough surface of the dielectric element. The first electrode is aligned with respect to the central aperture, dielectric element, and the second electrode such that a constant distance of separation between the electrodes is maintained along the entire length of the discharge means. The reflecting screen, joined to the discharge means by a plurality of mounting brackets, directs accumulated ozone away from the ozone generator and toward an intended site for treatment. The disclosed invention converts oxygen to ozone with great efficiency and, unexpectedly, the fusion of the second electrode with the surface of the dielectric element provides improved ozone recovery by rapidly dissipating heat generated by the discharge means.
Abstract:
The invention relates to a versatile system for producing ozone from an oxygen-containing gas. The system comprises at least one frame the area of which is covered by at least two electrodes distributed in parallel, coated with a dielectric material. Between the electrodes there are gaps for gas flow, at an angle of substantially 90 degrees to the longitudinal axis of the electrodes and the frontal plane of the frame. The surface areas of the electrodes are substantially parallel with the surface area of the electrically-conducting material from which the electrodes are made. The electrodes of the same polarity are connected together, while the electrodes of opposing polarities are adjacent to each other. The electrodes are placed in a position substantially perpendicular to the gas stream entering the system.
Abstract:
In accordance with at least one exemplary embodiment, a syringe device, method and system for delivering a therapeutic amount of ozone are disclosed. A sterility case can enclose a syringe portion and can maintain sterility while the syringe device is interfaced to an ozone generator. A valvably-controlled fluid channel can extend from the barrel of the syringe through the case. Conducting elements can be attached to the case and can breach the case. The conductive elements can be connected to electrodes. The electrodes can be attached to the syringe. The syringe portion can be filled with oxygen gas via the valvably-controlled fluid channel. An electric current can be provided to the conductive elements from an ozone generator resulting in a corona discharge from at least one electrode. A therapeutic amount of ozone gas can be produced from the oxygen gas and the syringe delivered into the sterile field without compromise.
Abstract:
The present invention relates to an in-water discharging core, wherein electrode wires for forming in-water discharging cells with virtual mesh-shaped electrode points can be maintained with a uniform tension and prevented from being loosened at joints to which the ends of the electrode wires are tied, eliminating worries about short circuit of the electrode wires, so that reliability and an excellent efficiency in generation of anions can be ensured for the in-water discharging core, a sterilizing water generator for producing sterilizing water, and a sterilizing water supply system including the sterilizing water generator.