The present specification relates to a protective face shield assembly that is adapted to releasably mount to a hard hat. More particularly, the specification relates to an improved face shield assembly that universally fits to most hard hats and that further includes a dual-pivot system which allows the face shield to be efficiently located in a “down” as-used position, a “up” as-used position and a “stowed” position above the hard hat.
Current head gear product offerings are generally hard hat specific, i.e. they do not universally fit a variety of hard hats. Further, when the face shields of existing safety systems are rotated upwards into the unused position, they leave the shields in a position that is cantilevered in front of the hard hat, where it is cumbersome, off-balance and in the way.
An improved, dual-pivot face shield assembly is universally configured for fitting to a plurality of different hard hats. The improved dual-pivot face shield assembly is comprised of three separate brackets, namely a main mounting bracket secured to the rim of the hard hat, a rotating bracket pivotably mounted to the main mounting bracket and a lens mounting bracket pivotably mounted to the rotating bracket.
The main mounting bracket includes an arcuate brow bar, a brim portion depending forwardly from the brow bar, opposing pivot bosses extending from opposing ends of the brow bar, and a plurality of mounting tabs extending downwardly and inwardly from a bottom surface of the brim portion. An elastic stretch cord having opposing ends is secured to the opposing ends of the brow bar to secure the main mounting bracket onto the hard hat. In use, the main mounting bracket is received onto a brim of the hard hat wherein the mounting tabs hook under and engage the forward edges of the brim of the hard hat and the elastic stretch cord is extended over and around the rear of the hard hat.
The rotating bracket has an arcuate body portion, opposing ends and opposing primary pivot studs extending inwardly from the opposing ends. The primary pivot studs are rotatably snap-received into pivot openings in the opposing pivot bosses on the main mounting bracket to rotatably couple the rotating bracket to the main mounting bracket. The rotating bracket is thus pivotably movable relative to the main mounting bracket between a “down” position, where the lens is in an “as-used” position, and an “up” position where the lens is tilted up, but not stowed.
The lens mounting bracket has an arcuate body portion with a lens receiving channel on the lower edge thereof, and further has opposing ends. The arcuate body portion of the lens mounting bracket is pivotably coupled to the arcuate body portion of the rotating bracket wherein the lens mounting bracket is pivotably movable relative to the rotating bracket between an “as-used” position and a “stowed” position.
To stabilize the lens mounting bracket in the “as-used” and “stowed” positions relative to the rotating bracket, a pair of stabilizer struts are captured between the respective opposing ends of the lens mounting bracket and the main mounting bracket. The stabilizer struts include an internal spring captured in compression. A first end of the strut is rotatably connected to a post extending outwardly from the outside surface of the end of the rotating bracket while the second end of the strut is rotatably connected to a post on the outside surface of the end of the lens mounting bracket. The spring is normally under compression and biases the ends of the strut outwardly to maintain the lens mounting bracket in the noted positions. As the lens mounting bracket is pivoted from one position to the other, the spring in the strut compresses, and then, once it passes a central axis, extends again and biases the ends of the strut outwardly to maintain the lens mounting bracket in the other position.
A lens is removably secured within the lens channel in the lens mounting bracket whereby the lens is movable through three different positions, namely a “down” as-used position, an “up” as-used position, and “stowed” position.
Accordingly, an objective is to provide an improved face shield assembly which universally fits most hard hats.
It is another objective to provide a face shield assembly that includes a dual pivot system which allows the face shield to move between a down “as-used” position and an up “as-used” position and further to be more efficiently located in a “stowed” position above the hard hat.
Other objects, features and advantages shall become apparent as the description thereof proceeds when considered in connection with the accompanying illustrative drawings.
The preferred embodiment will now be described further by way of example with reference to the following examples and figures, which are intended to be illustrative only and in no way limiting upon the scope of the disclosure.
An improved, dual-pivot face shield assembly is generally indicated at 10 in
Hard hats 12 of the type contemplated herein are well-known in the art, and generally comprise a protective dome 22 and a brim 24 extending from the front portion of the dome (See
The main mounting bracket 14 includes an arcuate brow bar 26, a brim portion 28 depending forwardly from the brow bar 26, opposing pivot bosses 30, 32 extending from opposing ends of the brow bar 26, and a plurality of mounting tabs 34, 36, 38 extending downwardly and inwardly from a bottom surface of the brim portion 28. An elastic stretch cord 40 having opposing ends is secured within slots 42, 44 in the opposing ends of the brow bar 26 to secure the main mounting bracket 14 onto the hard hat 12.
The main mounting bracket 14 is received onto the brim 24 of the hard hat 12 where the mounting tabs 34, 36, 38 hook under and engage the forward edges of the brim 24 of the hard hat 12 (
As best seen in
The rotating bracket 16 includes an arcuate body portion 48, opposing ends and opposing primary pivot studs 50, 52 extending inwardly from the opposing ends. The primary pivot studs 50, 52 are rotatably snap-received into pivot openings 54, 56 in the opposing pivot bosses 30, 32 on the main mounting bracket 14 to rotatably couple the rotating bracket 16 to the main mounting bracket 14. The rotating bracket 16 is thus pivotably movable relative to the main mounting bracket 14 (primary pivot) between a “down” position where the lens is in an “as-used” position (
The lens mounting bracket 18 has an arcuate body portion 58 with a lens receiving channel 60 on the lower edge thereof, and opposing ends. The arcuate body portion 58 of the lens mounting bracket 18 is pivotably coupled to the arcuate body portion 48 of the rotating bracket 16 by interfitting pivot structures 62, 64 on the respective brackets, wherein the lens mounting bracket 18 is pivotably movable relative to the rotating bracket 16 (secondary pivot) between “as-used” position (
To stabilize the lens mounting bracket 18 in the “as-used” (
The lens 20 is removably secured within the lens channel 60 in the lens mounting bracket 18 whereby the lens 20 is movable through three different positions, namely a “down” as-used position (
To secure the lens 20 to the lens mounting bracket 18, the mounting bracket 18 includes an opposing pair of inwardly extending lens studs 78. The lens studs 78 each have a cylindrical shaft, and an outer head (See
The lens 20 is preferably molded from a transparent or translucent polycarbonate material. Other plastic materials and manufacturing methods for the lens are also contemplated within the scope of the disclosure.
Referring to
While the illustrated embodiment includes interfitting studs 78 and key-hole slots 80 to provide a simplified installation of the lens 20, it should be understood that other configurations of interfitting mating formations are also possible so long as the formations on the lens 20 permit the lens to be easily interfit with the opposing formation on the bracket, and rotated into position.
The lens mounting bracket 18 further includes a latching mechanism 82 for releasably securing the lens 20. The latching mechanism 82 comprises a latch lever 84 and spring arms 86 for biasing the latch lever 84 to an engaged position. Preferably, the latch lever 84 and spring arms 86 are integrally molded as a single structure from a resilient plastic material.
The latch lever 84 is supported by the spaced spring arms 86 which depend downwardly from the bracket 18 and includes a spaced pair of rearwardly extending detents 88 (
While the illustrated embodiment of the latching mechanism 82 is shown to utilize a pair of spaced detents and corresponding openings, it should be understood, that the latching mechanism can be implemented with a variety of detent and opening configurations so long as the engagement end includes at least one detent that engages with a corresponding opening.
In operation, the latch lever 84 is pivotably movable about the spaced arms 86 between an engaged position, wherein the detents 88 project rearwardly into engagement with the openings 90 in the upper peripheral edge of the lens 20 and a released position wherein the detents 88 are disengaged from the openings 90.
The latch lever detents 88 are maintained in engagement with the openings 90 in the lens 20 by the natural spring force of the molded plastic supporting arms 86.
For these reasons, the universal face shield assembly 10 as described herein is believed to represent a significant advancement in the art, which has substantial commercial merit.
While there is shown and described herein certain specific structure embodying the latch mechanism, it will be manifest to those skilled in the art that various modifications and rearrangements of the parts may be made without departing from the spirit and scope of the underlying concept and that the same is not limited to the particular forms herein shown and described except insofar as indicated by the scope of the appended claim.
This application claims the benefit of U.S. Provisional Application No. 61,514,800, filed Aug. 3, 2011.
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Number | Date | Country | |
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20130031693 A1 | Feb 2013 | US |
Number | Date | Country | |
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61514800 | Aug 2011 | US |