The present invention relates to air exchange systems and, more particularly, to an air flow system with multiple air blowers that are disposed outside of the air flow.
In traditional air exchange systems, such as a range hood, the fans or air blowers are in the middle of the air outflow duct. The obstacle from the fans or air blowers can cause air flow turbulence, thus decreasing the air flow efficiency. Moreover, the fans or air blowers in the air flow can generate significant noise due to the disturbance which there is hard to muffle. These systems are also difficult and unsafe to maintain. Over time, the dirt or grease from the air flow, especially in the case of a range hood, could accumulate on the fans or air blowers, decreasing the motor's performance. Clean-up of these deposits on the motors can be difficult and time consuming. Furthermore, it has to increase the size of the range hood or other similar air exchange system if more air blowers or fans needed for one air outflow duct.
As can be seen, there is a need for an improved air flow system where the fans or air blowers are moved to outside of the air outflow duct, reducing noise, simplifying maintenance, improving efficiency, increasing the power output without size change and making cleaning of the system easier.
In one aspect of the present invention, an air flow system comprises one or more air pumps supplying air flow to at least two air reservoirs; an air slit providing air outflow from the at least two air reservoirs into an air flow path through the air flow system; and a Coanda surface disposed along an interior surface of the at least two air reservoirs, wherein the outflow from the at least two air reservoirs pulls air into the air flow system due to the Bernoulli effect, and there are no air fans or blowers disposed in the air outflow path through the air flow system.
In another one aspect of the present invention, an air flow system comprises one or more air pumps supplying air flow to at least two air reservoirs; an air slit providing air outflow from the at least two air reservoirs into an air flow path through the air flow system; a Coanda surface disposed along an interior surface of the at least two air reservoirs; and a spiral exhaust tube operable to create a cyclonic air flow exiting the air flow system, wherein the outflow from the at least two air reservoirs pulls air into the air flow system due to the Bernoulli effect; there are no air fans or blowers disposed in the air flow path through the air flow system; and air passing through the air reservoirs is turned greater than 90 degrees prior to exiting the air slit.
In another one aspect of the present invention, an air flow system comprises more structural modifications to produce cyclonic air outflow; multiple air flow deflectors along the air outflow duct; a spiral exhaust tube operable to create a cyclonic air outflow; spiral air outflow slits from each air reservoirs; or tangential air flow from air outflow slits from air reservoirs.
These and other features, aspects and advantages of the present invention will become better understood with reference to the following drawings, description and claims.
The following detailed description is of the best currently contemplated modes of carrying out exemplary embodiments of the invention. The description is not to be taken in a limiting sense, but is made merely for the purpose of illustrating the general principles of the invention, since the scope of the invention is best defined by the appended claims.
Broadly, an embodiment of the present invention provides an air exchange system that places the air pumps or fans outside of the main air flow pathway through a device, such as a range hood. By using this configuration, the system is made safe, easy to maintain with less noise and may even increase the efficiency of the air pump by not subjecting it to debris, particles or air turbulence in the air flow. Air pumps can be operably connected to push air into two or more air reservoirs. Each air reservoir has a narrow air outlet slit along the surface with a Coanda design. When air comes out of the narrow air outlet, it has high speed and generates a negative pressure due to the Bernoulli effect. Such negative pressure will bring more air around into the air flow system, thus causing a desired air exchange.
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The air injection ports 24, 30 deliver air flow at a high velocity to drive flowing air 12 through air intake baffles 15 due to the Bernoulli effect. A spiral exhaust tube 56 can generate a cyclone-like air flow. When the air flow 12 goes through the spiral exhaust tube 56, the air flow 12 can quickly spiral forward into the air drainage tube or outside, for example, through the cyclonic air ejection port 17 as a cyclone/tornado-like air flow 38.
The air pump(s) 32 blow air into the air reservoirs 24, 30 and the air is forced out of the air slit 42 at a high velocity. According to Bernoulli's effect on the Coanda surface, the high speed air flow will blow along the surface to generate negative air pressure along the surface. The negative pressure can induce more surrounding air flow into the air flow system, thus more air exchange may be produced.
Sensors (not shown) and an electronic control (not shown) can be used to control the air pumps to increase or decrease the air flow of the system, as needed for a particular application.
The system of the present invention can be used for various applications where air flow is desired. The system of the present invention may be particularly useful in, for example, range hoods, where the air flow may contain particulates and/or grease that could damage or reduce the efficiency of conventional fans disposed within the air flow. The system of the present invention may also be used in air cleaning applications, HVAC applications, as a smoke cleaner, in a fume hood (such as a tissue culture hood), to create a laminar air flow for a hospital or special biologic area, and the like.
It should be understood, of course, that the foregoing relates to exemplary embodiments of the invention and that modifications may be made without departing from the spirit and scope of the invention as set forth in the following claims.
This application claims the benefit of priority of U.S. provisional application No. 61/679,525, filed Aug. 3, 2012, the contents of which are herein incorporated by reference.
Number | Date | Country | |
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61679525 | Aug 2012 | US |