The following disclosure relates to heating and cooling systems and, more specifically, to an evaporator blower for an air conditioning system that can be mounted in a ceiling between the joists. The following disclosure is also directed to a cooling system that is easy to install in a tight space, such as a wine cabinet, easy to service, and configured to inhibit condensation formation on external surfaces.
Conventional ceiling mounted air conditioning units must be installed upon construction of the building or require significant retrofitting as the evaporator blower that is installed in the ceiling is wider than the distance between ceiling joists. Installation of a ceiling mounted unit in an existing home or building can be prohibitively expensive, if installation is even possible, as the existing ceiling joists must be removed or relocated while ensuring that all building codes remain satisfied. Moreover, the servicing of said units is difficult and requires significant downtime as well as using specialized tools in a tight space.
These are just some of the disadvantages associated with current ceiling mounted air conditioning (heating) units.
The present invention is an air conditioning system that can be easily installed between a pair of joists in a building to install the air conditioning in the ceiling of a room. In an embodiment, the air conditioning system has a chassis dimensioned to fit between the pair of joists and defines an air flow pathway through which air may be cooled by an evaporator housed in the chassis. A mounting flange is pivotally coupled to the chassis and has an opening through which the chassis can pivot between a first position below the mounting flange, and thus the ceiling, to a second position above the flange, so that the chassis in above the ceiling and between the pair of joists. A diffuser is attached to the mounting flange and in fluid communication with the air flow pathway of the chassis. The mounting flange has a central opening through which the chassis can pivot between the first position and the second position. The chassis includes a supply air section, an evaporator, a fan assembly, and a return air section positioned in the air flow pathway. The diffuser includes a return air grille in communication with the return air section of the chassis and a supply air grille in communication with the supply air section of the chassis. The mounting flange includes a planar portion extending from the central opening. The planar portion of the mounting flange is dimensioned to be secured to the pair of joists. The chassis is pivotally coupled to the mounting flange by a first hinge positioned at a first end of the mounting flange. The chassis includes a series of brackets for coupling to the mounting flange when the chassis is in the second position. The diffuser is pivotally coupled to the mounting flange by a second hinge positioned at the first end of the mounting flange for movement between an open position and a closed position. The diffuser includes at least one locking tab positioned at an opposite end from the second hinge for coupling to the mounting flange when the diffuser is in the closed position. The central opening of the mounting flange is rectangular. The mounting flange includes a series of walls extending from at least three sides of the central opening and perpendicularly to the planar portion. In an embodiment, at least the planar portion of the mounting flange includes a series of apertures positioned to allow the mounting flange to be coupled to the pair of joists that are a minimum of twelve inches apart from each other so that the air conditioning system can be installed in the standard joist construction scenario.
Another embodiment of an air cooling or air conditioning system includes a chassis dimensioned to fit between a pair of joists, an evaporator positioned in the chassis and structured to cool air flowing through the chassis, and a diffuser assembly. The diffuser assembly includes one or more positioning guides structured to toollessly couple the diffuser assembly to the chassis. The diffuser assembly is structured to enable passage of the cool air from the chassis though the diffuser assembly and to a diffuser outlet, and to inhibit formation of condensation caused by the cool air exiting the outlet.
In an embodiment, the diffuser assembly further includes a seal structured to abut a portion of the chassis when the diffuser assembly couples to the chassis in a toolless manner. In an embodiment, the diffuser assembly further includes at least one or more diverting elements that extend below the diffuser outlet and are positioned at an angle relative to a vertical axis. In an embodiment, a flange is structured to pivotally couple to the chassis so that the chassis can pivot between a first position below the mounting flange to a second position above the flange. In another embodiment, the mounting flange defines a central opening through which the chassis can pivot between the first position and the second position. In an embodiment, the chassis houses an supply air section, a evaporator, a fan assembly, and a return air section. In an embodiment, the diffuser assembly includes a return air grille in communication with the return air section of the chassis and a supply air grille in communication with the supply air section of the chassis. In a further embodiment, the flange includes a planar portion extending from the central opening and the planar portion of the flange is dimensioned to be secured to the pair of joists. In an embodiment, the flange includes a plurality of sides that extend from the planar portion. In another embodiment, the chassis includes one or more coupling elements configured to enable pivotally coupling the chassis to the flange. In an embodiment, the chassis includes at least one lock element structured to lock the chassis in place relative to the flange. In a further embodiment, the central opening of the mounting flange is rectangular. In an embodiment, the chassis and/or the flange may have a plurality of openings that are each dimensioned to accept a faster to aid in coupling the chassis and/or flange to the joist structures. In another embodiment, a blocking structure may be positioned at least partially around the chassis or the flange to aid in fitting the evaporator blower in a joist space that is greater than 12 inches wide.
The present invention will be more fully understood and appreciated by reading the following Detailed Description in conjunction with the accompanying drawings, in which:
The following discussion relates to various embodiments of an air cooling or air conditioning system. It will be understood that the herein described versions are examples that embody certain inventive concepts as detailed herein. To that end, other variations and modifications will be readily apparent to those of sufficient skill. In addition, certain terms are used throughout this discussion in order to provide a suitable frame of reference with regard to the accompanying drawings. These terms such as “upper”, “lower”, “forward”, “rearward”, “interior”, “exterior”, “front”, “back”, “top”, “bottom”, “inner”, “outer”, “first”, “second”, and the like are not intended to limit these concepts, except where so specifically indicated. The terms “about” or “approximately” as used herein may refer to a range of 80%-125% of the claimed or disclosed value. With regard to the drawings, their purpose is to depict salient features of the air cooling or air conditioning system and are not specifically provided to scale.
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The diffuser assembly 160 further includes an interface seal 163 that at least partially covers the chassis interface 164 and acts to form a seal between the chassis 122 and the diffuser assembly 160. The interface seal 163 may also act as an insulating member between the chassis 122 and the diffuser assembly 160. The seal 163 further inhibits cool air from escaping into the environment as it moves from the chassis 122 to the diffuser assembly 160. The diffuser housing 162 includes one or more positioning guides 167 that that are configured to properly position the diffuser assembly 160 relative to the chassis 122 and removably couple the diffuser assembly 160 to the chassis 122. The one or more positioning guides 167 may interact with complementary positioning guides 127 that are positioned on the chassis 122 or formed as part of the chassis 122. The interaction between the one or more positioning guides 167 of the diffuser assembly 160 and corresponding complementary positioning guides 127 on the chassis 122 enable fast coupling of the diffuser assembly 160 to the chassis 122 without the use of tools. Moreover it enables proper positioning of the diffuser assembly 160 relative to the chassis 122. Proper positioning of the diffuser assembly 160 relative to the chassis 122 is important to ensure optimal air flow passage between the chassis 122 and the diffuser assembly 160 and then into the surrounding environment. Proper positioning of the diffuser assembly 160 relative to the chassis 122 also ensures proper positioning of the interface seal 163. Such toolless installation of the diffuser assembly 160 is especially important when installing or performing maintenance on the disclosed air cooling system 100 in a tight space. The toolless installation of the diffuser assembly 160 onto the chassis 122 is accomplished without the use of tools, such as a screw driver or a hammer.
In an embodiment, the positioning guides 167 are magnetic bodies that are coupled to the diffuser housing 162 and the complementary positioning guides 127 on the chassis 122 are magnetic bodies. The magnetic bodies of the diffuser housing 162 have a first polarity and the magnetic bodies on the chassis 122 have a second polarity that is different than the first polarity and attracts magnetic bodies of the first polarity.
One or more components of the embodiments of the air cooling system 100 may be comprised of one or more types of metal, such as steel, zinc, or aluminum, or one or more types of plastic. In an embodiment, one or more components of the air cooling system 100 may be comprised of a combination of metallic and plastic components. One or more components of the embodiments of the air cooling system 100 may be comprised of different sizes, thicknesses and shapes while still keeping with the spirit, function, and intent of each device.
While the present invention has been particularly shown and described with reference to certain exemplary embodiments, it will be understood by one skilled in the art that various changes in detail may be effected therein without departing from the spirit and scope of the invention that can be supported by the written description and drawings. Further, where exemplary embodiments are described with reference to a certain number of elements, it will be understood that the exemplary embodiments can be practiced utilizing either less than or more than the certain number of elements.
The present application is a continuation-in-part of U.S. patent application Ser. No. 17/035,469, filed on Sep. 28, 2020, which claims priority to U.S. Provisional App. No. 62/906,974, filed on Sep. 27, 2019. The entire contents of said applications are hereby incorporated by reference.
Number | Date | Country | |
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62906974 | Sep 2019 | US |
Number | Date | Country | |
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Parent | 17035469 | Sep 2020 | US |
Child | 18087984 | US |