Methods and Apparatuses for Temporary Floor Assembly
20170121970 ยท 2017-05-04
Assignee
Inventors
Cpc classification
E04B5/02
FIXED CONSTRUCTIONS
E04F15/166
FIXED CONSTRUCTIONS
E04B5/023
FIXED CONSTRUCTIONS
E04G21/3223
FIXED CONSTRUCTIONS
International classification
Abstract
Methods and apparatuses are disclosed for removably deploying a floor assembly from a compacted state to a deployed state by varying tensioning forces to removably interconnected individual floor segments.
Claims
1. A method for making a removable floor assembly comprising: positioning a floor assembly in a compacted state at a first location, said floor assembly comprising: individual floor segments, said floor segments positioned substantially adjacent to one another, with said individual floor segments each comprising a reinforcement, said reinforcement dimensioned to engage with a recess in an adjacent floor segment, said recess dimensioned to accommodate the reinforcement, and said reinforcement dimensioned to removably interconnect individual floor segments with one another; a tensioning cable in communication with the floor segments; and an actuating device in communication with the tensioning cables; deploying the compacted floor assembly from the compacted state at the first location to a deployed state onto a structural support; and actuating the actuating device to apply a tensioning force to the tensioning cable.
2. The method according to claim 2, wherein, the actuating device comprises: a ratcheting winch; a rank rachet and clamp, a locking crank wheel or a cable reel.
3. The method of claim 1, wherein the floor assembly comprises a plurality of tensioning cables.
4. The method of claim 1 further comprising the steps of: actuating the actuating device to release tension on the tensioning cables; and retracting the floor assembly from the deployed state to the compacted state.
5. The method of claim 1, wherein in the step of actuating the acting device, the actuating device is actuated by automated means.
6. The method of claim 1, wherein the actuating device is remotely automated.
7. The method of claim 1, wherein the actuating device is driven electrically.
8. The method of claim 1, wherein the actuating device is configured to receive a signal from a remote signaling device.
9. The method of claim 1, wherein the actuating device is configured to receive a signal from an integrated signaling device.
10. The method of claim 1 further comprising the steps of: actuating the actuating device to release tension on the tensioning cables; and retracting the floor assembly from the deployed state to the compacted state.
11. The method of claim 1, wherein, in the step of deploying the compacted floor assembly from the compacted state, the compacted floor is deployed via an automated means.
12. The method of claim 10, wherein, in the step of actuating the actuating device to release tension on the tensioning cables, the actuating device is actuated via an automated means.
13. The method of claim 10, wherein, in the step of retracting the floor assembly, the compacted floor is retracted via an automated means.
14. A removable floor assembly comprising: a plurality of substantially adjacent individual floor segments, said individual floor segments each comprising a reinforcement, said reinforcement dimensioned to engage with a recess in an adjacent floor segment, said recess dimensioned to accommodate the reinforcement, and said reinforcement dimensioned to removably interconnect individual floor segments with one another; a plurality of tensioning cables in communication with the floor segments, said tensioning cables configured to provide a tensioning force to the individual floor segments; and at least one actuating device in communication with the tensioning cable.
15. The assembly of claim 14, further comprising a plurality of actuating devices, with at least one actuating device in communication with at least one tensioning cable.
16. The assembly of claim 14, wherein the floor segments are dimensioned to temporarily mate.
17. The assembly of claim 14, wherein the actuating device is configured to apply a tensioning force to the tensioning cable, said tensioning force ranging from about 10 to about 100 lbs.
18. The assembly of claim 14, wherein the floor assembly comprises stops to orient the floor assembly relative to the structural support.
19. The assembly of claim 14, wherein the reinforcement together with the recess form a mating feature, said mating feature configured to mutually and cooperatively disengage when the tensioning force is diminished.
20. The assembly of claim 19, wherein the mating feature comprises an integral engagement means, said integral engagement means comprising a magnet activated through applying electromagnetic fields to selectively engage and disengage adjacent floor segments into a deployable and compactable floor assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Having thus described variations of the disclosure in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
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DETAILED DESCRIPTION
[0034] According to aspects, the present disclosure is directed to methods, apparatuses and systems for installing a removable floor assembly.
[0035] As shown in the FIGs. and otherwise described herein, a temporary, removable floor assembly comprises a plurality of floor segments, with the floor segments positioned substantially adjacent to one another. A tensioning cable is in communication with the floor segments, and a tensioning device is in communication with the tensioning cable to apply a tensioning force to the tensioning cable. The floor assembly is deployed from a compacted state to a deployed state, and the tensioning device is actuated via an actuating device to apply a tensioning force to the tensioning cable and, maintain the deployed floor assembly in the deployed state. When, and if desired, the tensioning device is actuated to release tension on the tensioning cable via a release mechanism, and the removable floor assembly is returned from its deployed state to its compacted state.
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[0038] According to another aspect,
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[0041] According to another aspect of the present disclosure, as the tensioning force is applied to the compacted floor assembly 40, the assembly 40 will unwind or unroll to a desired position in contact with a support structure. In other words, according to this aspect, the application of tensioning force to the compacted floor assembly serves to both unwind the compacted floor assembly to a desired position along the support structure, and then also tighten the floor assembly into the final, substantially linear and semi-rigid or rigid deployed state.
[0042]
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[0045] According to further aspects, the disclosed floor assembly includes a plurality of segments that removably interlock or removably mate together and are reversibly secured together by a tensioning device, such as, for example, a tensioning cable that is in communication with each floor segment. This allows a floor assembly to be compacted for storage (e.g. rolled up, stacked, or otherwise compacted into a desirable orientation) and that is predictably designed to obtain a smaller footprint in the compacted state than known floor assemblies. The floor assembly in the compacted state can more safely and efficiently be delivered to a location for deployment, such as elevated beams or other desired support structure that may be open and otherwise be unsafe for workers to traverse.
[0046] According to aspects of the present disclosure, once the compacted floor assembly is placed at a deployment location, a single worker can activate the actuation device that applies a desired tensioning force to the floor segments via the tensioning cable that is in communication with the individual floor segments. It is further contemplated that the process could be entirely automated, and even remotely automated, as a signal can be sent to and received by the actuating device to actuate the tensioning device. In a further aspect, the tensioning device may respond to manual force, whereby a worker operates a manual crank to deliver the required tensioning force. According to a contemplated aspect, a mechanical means such as, for example, an electrical device such as an electric drill may engage to a mechanism such as, for example, a crank configured to engage an actuating device to wind or unwind the cable (for example, about a take-up spindle, etc.) to deliver or release tensioning force to the tensioning cable, as desired. The rigidity or semi-rigidity of the deployed floor assembly is therefore the result of the mating features predictably located on the individual floor segments that are dimensioned to removably mate, or removably interconnect, coupled with the tensioning force delivered to the floor assembly via the tensioning cable. According to aspects, the interlocking or mating features comprise male and female mating features such as, for example, tabs and slots, although any suitable features that predictably assure temporary and removable interlocking are contemplated. For the purposes of this disclosure, the terms interlock and mate are used interchangeably and are equivalent terms.
[0047] More than one floor assembly can be deployed across a support structure such as, for example, a beams, or series of spaced beams, etc., to form temporary safe flooring over the support structure. According to a further aspect, the deployed floor assemblies can be secured in a desired position and orientation relative to the support structure by positioning stops integral with, or added to the underside of one or more of the floor segments. A similar predictable positioning of the deployed floor assembly can be achieved, and is therefore contemplated herein, by providing floor segments comprising lateral or otherwise positioned protrusions that are dimensioned to predictably engage a support structure. Such positioning features on one or more of the floor segments contact the beam in a predictable fashion to prevent the deployed floor assembly from moving undesirably relative to the support structure.
[0048] When the need for the deployed floor assembly has ceased (e.g. the need to safely support workers on a suspended structure at a specific location is no longer required), according to presently disclosed aspects, the deployed floor assembly can be removed from the support structure and stored more easily and quickly than known temporary flooring systems. According to aspects of the present disclosure, to return the deployed floor assembly to a compacted state, the system is substantially reversed, whereby a release mechanism in communication with an actuating device is activated to release tension on the tensioning cable. In this way, the deployed floor assembly can be returned to the compacted state (i.e. the compacted floor assembly) for storage or further use elsewhere.
[0049] Accordingly, aspects of the present disclosure contemplate an efficient and cost-effective, reusable floor assembly that is in strong contrast to known flooring systems. Unlike known systems where floor segments are either damaged upon removal or designed to be disposable, according to aspects of the present disclosure, the presently disclosed floor systems are designed for reuse, are significantly easier to return to a compacted state, and are also significantly easier to store between uses. As mentioned above, the floor systems according to the present disclosure further take up a significantly smaller footprint in their compacted state.
[0050] The floor segments may, according to aspects of the present disclosure, be made from any suitable material that is strong enough to support a desired weight load. Contemplated materials include, without limitation, wood, metal, plastic, composite material, rubber, concrete, cementaceous material, and combinations thereof, etc.
[0051] Further, the tensioning cable, according to aspects of the present disclosure, may be made from any suitable material that is strong enough to deliver a desired tension to the floor segments and maintain the desired positioning of the floor segments in an interconnected, or mated state. Contemplated materials include, without limitation, nylon, steel, stainless steel, aluminum or combinations thereof, etc.
[0052] Still further, the actuating device for delivering tension to the tensioning cable, according to aspects of the present disclosure, may be any mechanical device cable of securely engaging an end of the tensioning cable, providing a take-up function (e.g. winding function, etc.), and retaining tension on the tensioning cable for a desired period of time while the floor assembly is in a deployed and tensioned state. Suitable actuating devices include, without limitation, a ratcheting winch, rank ratchet and clamp, locking crank wheel, cable reel, and combinations thereof. As stated above, the contemplated actuating devices may be manually actuated, may be automated to be, for example, electrically driven, and may be able to receive a signal sent from a remote or integrated device to actuate and deliver, maintain and release a desired amount of tension relative to the tensioning cable and the floor assembly. A contemplated amount of force provided to the floor assembly and tensioning cable will vary with the demands and design of each particular floor assembly based on a desired use. Contemplated force/tensions range from about 10 to about 100 lbs.
[0053] According to present aspects, the floor segments removably or temporarily connect, mate or otherwise engage in a way such that when adequate tensioning force is delivered to the tensioning cable that is in communication with the adjacent floor segments, the tensioning force that is transferred to the floor segments maintains adjacent floor segments, and the floor assembly overall in a semi-rigid or rigid orientation. The features that are integral with the floor segments, and that are contemplated to facilitate the mating of adjacent floor segments can be any reciprocal male/female-type physical structures that insure an intimate fit that allows for secure engagement. However, the contemplated mating features must also be mutually and cooperatively dimensioned to easily disengage when the tensioning force diminishes as the actuating device releases tensioning force so that the floor assembly can be returned to a compacted state. While aspects are directed to physical mating features on the floor segments, the present disclosure further contemplates other integral engagement means such as, for example, and without limitation, magnets activated through applying electromagnetic fields that can selectively engage and disengage adjacent floor segments into a deployable and compactable floor assembly, etc.
[0054] While aspects of the present disclosure contemplate the tensioning cable engaging the floor segments through and via internal and integral channels in the individual floor segments, other variations (e.g. an exposed channel along an outer surface of the floor segments, or the tensioning cable positioned adjacent to an outer surface of the floor segments) are also contemplated so long as the tensioning cable is able to apply an adequate tensioning force to the floor segments to achieve a rigid or semi-rigid floor assembly capable of supporting a desired weight load.
[0055] While illustrative aspects of the disclosure are directed to removable temporary floor assemblies that can be deployed from a compacted state of certain configurations such as, for example and without limitation, a rolled-up, stacked, or expanding accordion configuration, it will be understood that all geometries and configurations of the floor assembly in the compacted state are contemplated. That is, it may be possible to deployed a floor assembly according to the present disclosure, where the compacted state is geometrically complex with the assembly unfolding to a deployed state, such as, for example, deploying irregularly, or in stages to cover a linear or non-linear support structure. The present disclosure therefore contemplates all such variations so long as the floor segments are in communication with a tensioning cable that can transfer tensioning force to the floor segments to achieve a rigid or semi-rigid temporary, and preferably reusable, floor assembly that can revert to a compacted state after its deployment (once the tensioning force is released).
[0056] Further, aspects of the present disclosure concern temporary and reusable floor assemblies for any structures including, without limitation, stationary structures, large vehicles, including, without limitation, manned and unmanned vehicles including, without limitation, aircraft, spacecraft, rotorcraft, rockets, satellites, terrestrial vehicles surface and sub-surface waterborne vehicles, and combinations thereof, etc.
[0057] When introducing elements of the present disclosure or exemplary aspects or embodiment(s) thereof, the articles a, an, the and said are intended to mean that there are one or more of the elements. The terms comprising, including and having are intended to be inclusive and mean that there may be additional elements other than the listed elements. Although this disclosure has been described with respect to specific embodiments, the details of these embodiments are not to be construed as limitations. While the preferred variations and alternatives of the present disclosure have been illustrated and described, it will be appreciated that various changes and substitutions can be made therein without departing from the spirit and scope of the disclosure.