The present invention relates to shutters with louvers, and more particularly to decorative louvered shutters for window or door openings.
Decorative louvered shutters have conventionally been made from wood. The louvers are pivotally mounted in a surrounding frame and can be rotated from an open to a closed position. Typically, an external control rod is connected to each of the louvers with staples. By moving the control rod, the louvers are simultaneously moved from an opened to a closed position and vice-versa. One of the problems of wood shutters is that the wood tends to warp. This is particularly troublesome for shutters designed for covering large openings, such as doors, where several shutter panels are connected by hinges to cover the opening. As a result of warping, the shutter panels become misaligned, and present an aesthetically unpleasing appearance.
More recently, decorative shutters have been introduced that are made from wood substitutes, such as plastics or structural foams. These shutters address some of the problems presented by wood shutters, such as warping, but present different issues. Shutter components made from polymer materials are not always as strong and as rigid as wood, and require different tools, fasteners and processes for fabrication into an assembled shutter.
The present invention provides a decorative louvered shutter that can be made from wood or a wood substitute material, such as a synthetic polymer, and that has a unique hidden actuator mechanism for the louvers.
The decorative louvered shutter of the present invention includes a frame in which a series of louvers is mounted. The frame includes opposing spaced-apart frame members, and preferably each of the frame members includes a casing formed with an internal longitudinally extending cavity. For each frame member, the cavity is relatively large in relation to the cross-sectional area of the casing to reduce the weight and material cost of the casing. Preferably, the cavity has a cross-sectional area which is at least 35% of the overall cross-sectional area of the casing, and more desirably the cavity has a cross-sectional area which is at least 45% of the overall cross-sectional area of the casing. A rigid extrusion is positioned snugly within the cavity. The extrusion is preferably metal and provides strength and rigidity to the frame member, and facilitates assembling the shutter components into a shutter.
In accordance with one aspect of the present invention, the metal extrusion of one of the frame members is a housing of a controller that functions as a hidden actuator mechanism for the louvers. The activator mechanism preferably employs a rack and pinion system for synchronously pivoting the louvers. More specifically, the housing is positioned in the cavity of the respective casing and substantially closes the opening to the cavity, so that the controller is substantially concealed within the casing. Spindles are rotatably mounted to the housing and respectively corotationally mounted to the louvers. Each spindle has a pinion gear positioned within the cavity, and one or more toothed racks are mounted to the housing and mesh with the pinion gears for causing synchronous pivoting of the spindles and louvers.
The casing is suitably of a generally U-shaped cross-section, and includes opposing parallel spaced apart sides connected by an end wall that extends along the outwardly facing edge of the casing, with the sides and end wall thus defining said longitudinally extending cavity with a longitudinally extending opening along the inwardly facing edge of the casing. The extrusion has an exterior wall that closes the opening to the cavity and thus defines the edge surface of the casing that faces the louvers, side walls extending rearwardly from the exterior wall along each edge thereof that engage the inner surface of the sides of the casing. The side walls of the extrusion include, successively, an outermost side wall portion that engages the inner surface of the sides of casing, an inset medial side wall portion, and a rearmost side wall portion that also engages the inner surface of the sides of casing, the outermost and rearmost side wall portions forming a friction fit with the sides of the casing to retain the extrusion in position within the cavity. The extrusion further includes a medial web portion that interconnects the two opposed rearmost side wall portions.
The spindles in the first frame member project through a series of holes formed in the exterior wall of the extrusions and through a corresponding series of holes formed in said medial web portion and arranged in coaxial alignment with the holes in said exterior wall. Fittings of the spindles respectively connect the spindles to the louvers. Each of the spindles is preferably constructed of multiple pieces that are mounted to one another as part of the overall process of assembling the controller. The controller is preferably a self-contained unit that can be completely assembled separately from other components of the shutter and can be modularly incorporated into the shutter.
Having thus described the invention in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
The present invention now will be described more fully hereinafter with reference to the accompanying drawings, in which some, but not all embodiments of the invention are shown. Indeed, the invention may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will satisfy applicable legal requirements. Like numbers refer to like elements throughout.
Referring to
The right and left frame members 12, 14 each include a longitudinally extending casing 26 which is of a generally U-shaped cross-section, including opposing parallel spaced apart sides connected by an end wall that extends along the outwardly facing edge of the casing. The sides and end wall thus define a longitudinally extending cavity 28 (
As can also be seen from
The louvers 20 are pivotally mounted to the frame members 12, 14 by spindles 22, 24. More specifically, the spindles 22 provided in frame member 14 are active spindles and are connected to an actuator mechanism 32 to be described in more detail presently, so that each active spindle 22 will rotate in unison. The spindles 24 provided in frame member 12 are passive spindles and are freely rotatable. The spindles 22, 24 project through a series of holes 38 formed in the exterior wall 30a of the extrusions 30. The holes 38 are uniformly spaced apart from one another by a distance slightly less that the overall width of the louvers 20 so that the louvers will slightly overlap one another when in the closed position. In the medial web portion 30e of the extrusion 30a that is present in the left frame member 14, a corresponding series of holes 42 is formed in coaxial alignment with the holes 38. Although not essential, such holes 42 may also optionally be provided in the other extrusion 30 present in the right frame member 12.
The active spindles 22 extend laterally and are rotatably mounted to the extrusion 30, occupying respective pairs of holes 38, 42. At its exposed outer end, the active spindle 22 is provided with a male fitting 44 which functions as a key. In the embodiment shown, the male fitting 44 is generally semicircular in shape, and is received in a correspondingly shaped keyway formed in the end of the adjacent louver 20. In this manner, any rotational movement of the active spindle 22 is transmitted to the louver and results in the louver pivoting on its axis. An annular spacer 46 is also present at the exposed outer end of the active spindle 22.
The passive spindle includes a male fitting 90 in the form of a pin that is received in a corresponding hole formed in the end of the adjacent louver 20. The passive spindle further includes an annular spacer 92 extending from the fitting 90 and a cylindrical journal 94 cooperating with the hole 38 in the outer wall 30a. Preferably, the passive spindles 24 are of an integral one-piece construction and formed from a suitable material such as metal or plastic.
Referring in greater detail to the active spindle 22, as best seen from
As can be best seen in
The actuator mechanism 32 which is provided in the left frame member 14 also includes a rack and pinion system for synchronously controlling the opening and closing of the louvers 20. Referring to
Many modifications and other embodiments of the inventions set forth herein will come to mind to one skilled in the art to which these inventions pertain having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is to be understood that the inventions are not to be limited to the specific embodiments disclosed and that modifications and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.
This application claims the benefit of U.S. Provisional Application No. 60/462,517, filed Apr. 11, 2003.
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Number | Date | Country | |
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20040226222 A1 | Nov 2004 | US |
Number | Date | Country | |
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60462517 | Apr 2003 | US |