The present invention relates to ventilation systems for use in a building foundation such as a crawl space or basement, and more particularly, to a ventilation system that utilizes speed adjustable continuous run exhaust fans mounted in a vent opening of an encapsulated crawl space wall or basement wall having an airtight seal against the vent opening walls to control a desired constant airflow through the crawl space or basement and which creates a negative air pressure within the crawl space or basement to facilitate exhausting gasses and moisture.
In order to reduce moisture levels and remove unwanted gasses, crawl spaces and basements may often be equipped with various types of fan units to force airflow into a crawl space or to exhaust air from within the crawl spaces or basement out though a vent opening of an exterior wall. The main issue with installing such ventilation systems involves imperfect openings in the crawl space or basement wall, excess mortar that interferes with fitment, construction variances in size and shape, human error, and the like.
Typically, a fan unit is attached to a foundation wall using fasteners such as screws. This requires various tools to level and shim the fan unit, as well as to drill and insert the screws into concrete, mortar, and brick. The fans are also carried on a rigid plate that leaves gaps between the foundation walls in and around the ventilation port opening that air can pass through, which adversely impacts performance and airflow. While such gaps can be filed with caulk and the like, the installation is more complex and less accommodating for imperfect ventilation openings. Existing systems are not designed to form airtight seals for use with an encapsulated crawl space to create a negative air pressure airflow within the crawl space or basement.
Some fan units may include insulation, such as polymer foam insulation, to assist with temperature control around the vent opening. However, these insulation foams are rigid and brittle types of foams that are easily broken or crack and will not flex and conform to a space for mounting a fan unit in a vent opening. These insulation foams are intended purely as an insulation layer and not a mounting element of any type.
Current fan units intended for use in a crawl space or basement are operatively associated with timers, humidity and/or temperature sensors. Thus, the fan units do not run continuously, but only during defined times or conditions as determined by the sensors. As such, existing ventilation systems with fan units that operate intermittently do not maintain a constant negative air pressure within the space, allowing gasses and moisture to rise into the living space above. Existing fan units also use higher CFM fans that can cause issues pulling moisture and air from places that aren't desired for an encapsulated crawl space or basement.
Accordingly, it is an object of the present invention to provide a ventilation system for a building foundation such as a crawl space or basement that includes a fan carried on a flexible cover plate with a flexible polymer foam sheet layer on the back of the cover plate for mounting in a vent opening to hold the cover plate and fan in place such that the cover plate flexes with the foam sheet to conform to the shape of a vent opening in a crawl space or basement in an airtight arrangement for a quick and simple installation.
It is a further object of the present invention to provide a ventilation system that uses a fan unit with a low CFM fan that operates continuously and quietly to maintain a negative air pressure airflow in an encapsulated crawl space or basement.
The above objectives are accomplished according to the present invention by providing a ventilation system for a building foundation comprising a flexible cover plate; an airflow opening disposed in the cover plate; a fan carried on a rear side of the flexible cover plate, wherein the fan is adjacent to and covers the airflow opening for direct air through the airflow opening; a flexible polymer foam sheet carried on the rear side of the flexible cover plate and having a fan opening receiving the fan; wherein a perimeter of the fan is fully surrounded and engaged by the flexible polymer foam sheet forming an airtight seal between the fan and the flexible polymer foam sheet; wherein a perimeter edge of the flexible polymer foam sheet compresses against and conforms to interior wall surfaces within a vent opening in a building foundation to form an airtight seal against the interior wall surfaces; and, wherein the flexible cover plate flexes with the flexible polymer foam sheet when mounting in the vent opening to facilitate conforming and sealing the flexible polymer foam sheet within the vent opening so that the flexible cover plate is secured over the vent opening.
In a further advantageous embodiment, the flexible cover plate is selected from the group consisting of acrylonitrile butadiene styrene (ABS), polylactide (PLA), nylon, acrylic, phenolic, polyester, polyester terephthalate (PET), polyethylene, polypropylene, polycarbonate, polyacetal resin (POM), polytetrafluoroethylene (PTFE), high density polyethylene (HDPE), silicone, polyurethane, polyvinyl chloride (PVC), silicone rubber, isoprene rubber, thermoplastic elastomers, polyurethane rubbers, and combinations thereof.
In a further advantageous embodiment, the flexible cover plate preferably comprises acrylonitrile butadiene styrene (ABS).
In a further advantageous embodiment, an elongated slot is disposed in the flexible cover plate above the airflow opening and extending horizontally across the flexible cover plate at least equal to the diameter of the airflow opening.
In a further advantageous embodiment, an angle bracket is carried in the elongated slot having a first portion extending parallel along the rear side of the flexible cover plate, and a second portion extending transverse to a front side of the flexible cover plate above the airflow opening to protect the airflow opening from water and debris.
In a further advantageous embodiment, a protective screen is carried on a front side of the flexible cover plate covering over the airflow opening to protect the fan on the rear side of the flexible cover plate.
In a further advantageous embodiment, the flexible polymer foam sheet is selected from the group consisting of polyethylene, polypropylene, polystyrene, polyvinyl chloride (PVC), poly(methyl methacrylate) (PMMA), epoxy resin, phenolic resin, polyester, polyurethane, and combinations thereof.
In a further advantageous embodiment, the flexible polymer foam sheet preferably comprises a polyethylene foam having a closed cell structure on a front surface and a rear surface, and an open cell structure around the perimeter edge.
In a further advantageous embodiment, the flexible cover plate includes a flange portion extending beyond a perimeter edge on all sides of the flexible polymer foam sheet, wherein the flange portion engages an exterior wall surface surrounding the vent opening when the flexible polymer foam sheet is mounted within the vent opening.
In a further advantageous embodiment, an adhesive is disposed on the flange portion when mounted over the vent opening for sealing and bonding the flexible cover plate to the exterior wall surface surrounding the vent opening walls.
In a further advantageous embodiment, a series of adhesive strips are disposed on the rear side of the flexible cover plate bonding the flexible polymer foam sheet to the flexible cover plate.
In a further advantageous embodiment, an adhesive is disposed on the perimeter edge of the flexible polymer foam sheet when mounted in the vent opening for sealing and bonding the flexible polymer foam sheet to the interior wall surfaces within a vent opening.
In a further advantageous embodiment, a water discharge gap is formed in the adhesive along a bottom side of the perimeter edge of the flexible polymer foam sheet to allow any water between the flexible cover plate and flexible polymer foam sheet to exit.
In a further advantageous embodiment, a fan speed controller is operatively associated with the fan to adjust a desired speed of the fan and provide continuous operation of the fan so that the fan maintains a desired continuous airflow exhausting air from the building foundation when mounted in the vent opening.
In a further advantageous embodiment, a cord slot is disposed along the perimeter edge of the flexible polymer foam sheet receiving a control cord extending between the fan speed controller and the fan.
In a further advantageous embodiment, the control cord extends from the fan speed controller through the cord slot along the perimeter edge of the flexible polymer foam sheet and between the flexible cover plate and the flexible polymer foam sheet to the fan.
The above objectives are further accomplished according to the present invention by providing a ventilation system for a building foundation comprising a flexible cover plate including an airflow opening; an elongated slot disposed in the flexible cover plate above the airflow opening; a fan carried on a rear side of the flexible cover plate covering the airflow opening for direct air through the airflow opening; a protective screen carried on a front side of the flexible cover plate covering the airflow opening to protect the fan; an angle bracket carried in the elongated slot having a first portion extending parallel along the rear side of the flexible cover plate, and a second portion extending transverse to the front side of the flexible cover plate above the airflow opening to protect the airflow opening; a flexible polymer foam sheet carried on the rear side of the flexible cover plate for conforming to a vent opening in a building foundation wall to mount the flexible cover plate over the vent opening and form an airtight seal against the walls defining the vent opening, and wherein a perimeter of the fan is fully surrounded and engaged by the flexible polymer foam sheet in an airtight arrangement; and, a fan speed controller operatively associated with the fan to adjust a desired speed of the fan and provide continuous operation of the fan so that the fan maintains a desired continuous airflow exhausting air from the building foundation when mounted in the vent opening.
The above objectives are further accomplished according to the present invention by providing a ventilation system for a building foundation comprising an encapsulated foundation space; a series of vent openings in the encapsulated foundation space; a flexible cover plate disposed over each of the vent openings; an airflow opening disposed in each of the cover plates; a fan carried on a rear side of each of the flexible cover plates, wherein the fan is adjacent to and covers the airflow opening for direct air through the airflow opening; a flexible polymer foam sheet carried on the rear side of each of the flexible cover plates and having a fan opening receiving the fan; wherein a perimeter of the fan is fully surrounded and engaged by the flexible polymer foam sheet forming an airtight seal between the fan and the flexible polymer foam sheet; wherein a perimeter edge of the flexible polymer foam sheet compresses against and conforms to interior wall surfaces within each of the vent openings to form an airtight seal against the interior wall surfaces; wherein the flexible cover plate flexes with the flexible polymer foam sheet when mounting in the vent openings to facilitate conforming and sealing the flexible polymer foam sheet within each of the vent openings so that the flexible cover plate is secured over the vent openings; and, a fan speed controller operatively associated with each of the fans to adjust a desired speed of each the fan on each flexible cover plate and provide continuous operation of the fans so that the fans maintains a desired continuous airflow exhausting air from the foundation space to create and maintain a negative air pressure within the foundation space.
The system designed to carry out the invention will hereinafter be described, together with other features thereof. The invention will be more readily understood from a reading of the following specification and by reference to the accompanying drawings forming a part thereof, wherein an example of the invention is shown and wherein:
It will be understood by those skilled in the art that one or more aspects of this invention can meet certain objectives, while one or more other aspects can meet certain other objectives. Each objective may not apply equally, in all its respects, to every aspect of this invention. As such, the preceding objects can be viewed in the alternative with respect to any one aspect of this invention. These and other objects and features of the invention will become more fully apparent when the following detailed description is read in conjunction with the accompanying figures and examples. However, it is to be understood that both the foregoing summary of the invention and the following detailed description are of a preferred embodiment and not restrictive of the invention or other alternate embodiments of the invention. In particular, while the invention is described herein with reference to a number of specific embodiments, it will be appreciated that the description is illustrative of the invention and is not constructed as limiting of the invention. Various modifications and applications may occur to those who are skilled in the art, without departing from the spirit and the scope of the invention, as described by the appended claims. Likewise, other objects, features, benefits and advantages of the present invention will be apparent from this summary and certain embodiments described below, and will be readily apparent to those skilled in the art. Such objects, features, benefits and advantages will be apparent from the above in conjunction with the accompanying examples, data, figures and all reasonable inferences to be drawn therefrom, alone or with consideration of the references incorporated herein.
With reference to the drawings, the invention will now be described in more detail. Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood to one of ordinary skill in the art to which the presently disclosed subject matter belongs. Although any methods, devices, and materials similar or equivalent to those described herein can be used in the practice or testing of the presently disclosed subject matter, representative methods, devices, and materials are herein described.
Unless specifically stated, terms and phrases used in this document, and variations thereof, unless otherwise expressly stated, should be construed as open ended as opposed to limiting. Likewise, a group of items linked with the conjunction “and” should not be read as requiring that each and every one of those items be present in the grouping, but rather should be read as “and/or” unless expressly stated otherwise. Similarly, a group of items linked with the conjunction “or” should not be read as requiring mutual exclusivity among that group, but rather should also be read as “and/or” unless expressly stated otherwise.
Furthermore, although items, elements or components of the disclosure may be described or claimed in the singular, the plural is contemplated to be within the scope thereof unless limitation to the singular is explicitly stated. The presence of broadening words and phrases such as “one or more,” “at least,” “but not limited to” or other like phrases in some instances shall not be read to mean that the narrower case is intended or required in instances where such broadening phrases may be absent.
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In a preferred embodiment, fan 14 is a continuous run axial fan that is not controlled by temperature or humidity sensors, but rather operates continuously around the clock to blow air out of to produce and maintain a negative air pressure airflow within the crawl space or basement. This is needed to reverse the stack effect, where air moves from bottom to top to reduce bad air in voids of the home, wire penetrations, plumbing, wall openings, etc. as these voids can have mold, dead bugs, smells. By reversing this standard airflow to a top to bottom direction, all areas within the space are exhausted. The other benefit is to draw some minor amount of air from the living space to and thru the crawl space or basement. This will assist in equalizing air temp and humidity in the house and crawl space or basement and will extend the life of any dehumidifier by assisting with conditioning air within the crawl space.
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As noted above, the main issue with installing such ventilation systems involves imperfect vent openings 30 in the crawl space or basement walls 29, excess mortar that interferes with fitment, construction variances in size and shape, human error, etc. The flexible polymer foam sheet 26 allows for mounting in rough and irregular shaped openings by compressing and conforming to imperfections in the interior wall surface 28 of the vent opening 30 to form an airtight seal against the walls 29 defining the vent opening 30. Thus, no screws or drilling are needed to mount the ventilation system of the present invention in the vent opening 30. The flexible polymer foam sheet 26 has sufficient friction engagement to hold the fan 14 and cover plate 10 in place in the vent opening 30. Also, flexible cover plate 10 bends and flexes with foam sheet 26 to facilitate conforming and sealing of the flexible polymer foam sheet 26 in the vent opening 30. Thus, foam sheet 26 is squeezed into and seals against the interior surface 28 of the vent opening 30 for mounting the ventilation system to the wall 29. Accordingly, foam sheet 26 provides many benefits including an insulation layer that forms an airtight mounting within the vent opening 30 to install the fan 14, helps to quiet the fan, installs easily without the need to drill holes for screws, is water proof, UV resistant, stabilizes flexible cover plate 10 in the vent opening 30, reduces any vibrations, can easily be trimmed for odd sizes, and does not crack or break like other insulation and rigid foams. This design helps contractors reduce labor installation time.
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In a preferred embodiment, flexible polymer foam sheet 26 is a polyethylene foam having a closed cell structure on a front surface 23 and rear surface 27, and an open cell structure around perimeter edge 32. This allows the adhesive 35a when applied to the open cell structure of perimeter edge 32 to penetrate deeper into the perimeter edge 32 for creating a better seal and bond between foam sheet 26 and wall 29 of the vent opening 30. Optionally, adhesive 35a can be applied against rear surface 27 adjacent wall 29 for further sealing and bonding to wall 29.
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While the present subject matter has been described in detail with respect to specific exemplary embodiments and methods thereof, it will be appreciated that those skilled in the art, upon attaining an understanding of the foregoing may readily produce alterations to, variations of, and equivalents to such embodiments. Accordingly, the scope of the present disclosure is by way of example rather than by way of limitation, and the subject disclosure does not preclude inclusion of such modifications, variations and/or additions to the present subject matter as would be readily apparent to one of ordinary skill in the art using the teachings disclosed herein.
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https://www.homedepot.com/p/Tjernlund-18-in-x-4-in-x-11-in-Moisture-Mold-Reducing-UnderAire-Crawlspace-Ventilator-Fan-V4D/308439011. |
Number | Date | Country | |
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20220195720 A1 | Jun 2022 | US |
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