Surgical Theatre Ventilating Devices and Methods
Abstract
Provided are methods for ventilating a surgical theater using temperature-regulated laminar air flow. Velocity of a downward directed laminar clean air flow is determined by an air-temperature difference between the supply air and room air temperature at the level of the operating table. Room air temperature at the level of the operating table is measured and clean supply air temperature controlled in relation to this measurement. In order to maintain a constant downward directed laminar clean air flow velocity, a constant difference in temperature is maintained between room air temperature at the level of the operating table and the lower temperature of the supply air. In preferred embodiments, this constant temperature difference provides a downward directed air flow velocity of at least 0.25 m/s and is maintained in part by minimizing fluctuations in ambient air-temperature through use of air supply units supplying heated or cooled air outside the clean air zone. Also provided are ventilating devices which create a uniform and stable downward laminar air flow that forms a clean air zone surrounding the operating table workplace region. Preferred embodiments comprise a number of air supply units arranged in a closed pattern, e.g, in a circle, with air stop and guide units situated between air supply units such that a widely spread uniform and stable, downward, combined, laminar air flow is created.
Claims
exact text as granted — not AI-modified1 - 6 . (canceled)
7 . A method for ventilating a surgical theater comprising:
discharging a purified air flow through an air supply device, situated above an operating table workplace area, as a substantially laminar descending air flow with a velocity determined by a difference in air-temperature between the supplied air and the ambient air at the level of the operating table such that the air flow is cooler than the ambient air, wherein the velocity of the downward directed flow is maintained at at least 0.25 m/s as measured at the level of an exposed wound of a patient on the operating table, whereby human convection currents are braked inside the operating table workplace area, and wherein the difference in air-temperature between the supplied air and the ambient air at the level of the operating table is maintained in part by use of air supply units providing heated or cooled air outside the clean air zone surrounding the operating table workplace area.
8 . The method of claim 7 wherein the air-temperature difference between clean supply air and room air temperature at the level of the operating table is maintained in the range of about 0.3 to 1° C.
9 . The method of claim 7 wherein the air-temperature difference between clean supply air and room air temperature at the level of the operating table is maintained in the range of about 0.5 to 2° C.
10 . A method for ventilating a surgical theater comprising:
discharging a purified air flow through an air supply device, situated above the operating table workplace area, as a substantially laminar descending air flow with a velocity determined by the difference in air-temperature between the supplied air and the ambient air at the level of the operating table such that the air flow is cooler than the ambient air, wherein a constant difference in air-temperature between the supplied air and the ambient air at the level of the operating table is maintained in part by use of air supply units providing heated or cooled air outside the clean air zone surrounding the operating table workplace area and body convection currents are braked, and wherein the method is practiced using a ventilating device for providing a zone of clean air between the ventilating device and a workplace region in a room, which ventilating device comprises air supply units adapted to generate laminar air flows intended to constitute said clean air zone, wherein the ventilating device comprises at least three air supply units disposed in a closed pattern so that the extent in cross-section of the clean air zone below the air supply units substantially corresponds to the surface delineated by said closed pattern of air supply units and the surface situated within that pattern, and a corresponding number of air stop and guide units disposed between, and substantially filling the space between, each pair of mutually adjacent air supply units, each air stop and guide unit having at least one air stop surface which faces outwards away from the clean air zone and prevents or hinders air surrounding the clean air zone from being drawn in between adjoining air supply units and into the clean air zone, at least two first air guide surfaces which run from the air stop surface in between adjoining air supply units, converge towards one another and guide parts of the air flows from adjoining air supply units that are directed towards one another away from one another and outwards from the center of the clean air zone, and at least two second air guide surfaces which face inwards towards the center of the clean air zone and converge towards said first air guide surfaces and towards one another and guide other parts of the air flows from adjoining air supply units that are directed towards one another away from one another and inwards towards the center of the clean air zone.
11 . A ventilating device for providing a zone of clean air between the ventilating device and a workplace region in a room, which ventilating device comprises air supply units adapted to generate laminar air flows intended to constitute said clean air zone, wherein the ventilating device comprises at least three air supply units disposed in a closed pattern so that the extent in cross-section of the clean air zone below the air supply units substantially corresponds to the surface delineated by said closed pattern of air supply units and the surface situated within that pattern, and a corresponding number of air stop and guide units disposed between, and substantially filling the space between, each pair of mutually adjacent air supply units, each air stop and guide unit having at least one air stop surface which faces outwards away from the clean air zone and prevents or hinders air surrounding the clean air zone from being drawn in between adjoining air supply units and into the clean air zone, at least two first air guide surfaces which run from the air stop surface in between adjoining air supply units, converge towards one another and guide parts of the air flows from adjoining air supply units that are directed towards one another away from one another and outwards from the center of the clean air zone, and at least two second air guide surfaces which face inwards towards the center of the clean air zone and converge towards said first air guide surfaces and towards one another and guide other parts of the air flows from adjoining air supply units that are directed towards one another away from one another and inwards towards the center of the clean air zone.Join the waitlist — get patent alerts
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