The present disclosure relates to light fixtures and associated structures.
Pendant light fixtures are typically mounted to ceilings, such as with a t-bar ceiling configuration, by way of a hanger clip and a suspension structure.
In contrast to pendant light fixtures, flush mount or fixed mount light fixtures are typically mounted directly against the ceiling by a threaded stud extending downwardly from a junction box or a t-bar clamp. Linear flush mount light fixtures have an array of passages therein requires a complementary array of studs in the ceiling. The task to align the passages in the light fixture with the corresponding supposedly aligned studs in known to be a tedious, if not time-consuming procedure, which is increasingly difficult to achieve with the increasing number mounting points and studs in the respective arrays.
It would thus be desirable to provide novel approaches for the mounting of light fixtures, or at least to provide the public with one or more useful alternatives.
In one aspect, there is provided a mounting assembly for mounting a light fixture, comprising a plurality of anchor structures attachable to a ceiling at designated locations thereon to form an anchor array. The anchor array is configured to be patterned so as to be complementary with a target location array of a plurality of target locations on the light fixture according to the anchor array. A plurality of elongate flexible structures is provided according to the anchor array, of which each elongate flexible structure is configured to extend from a corresponding anchor structure in the anchor array so as to be orientable to align with a corresponding target location in the target location array. A plurality of clamp structures is provided according to the anchor array, of which each clamp structure is configured to be positionable on the corresponding elongate flexible structure and displaceable therealong to bring the light fixture toward the ceiling. Each clamp structure is releasably lockable at a designated location on the corresponding elongate flexible structure, thereby to provide corresponding effective spacings between corresponding anchor structures and clamp structures to bring the light fixture into engagement with the ceiling, with the anchor and target location arrays in general alignment, wherein an installed position of the light fixture is defined by a cumulative effect of a relative positioning of each anchor location and each corresponding target location.
In some exemplary embodiments, each array may each include at least two sub-arrays each extending in a designated direction.
In some exemplary embodiments, the elongate flexible structure may include at least one cable, cable tie, rope, cord and/or chain.
In some exemplary embodiments, each clamp structure may include a passage to receive the elongate flexible structure and a releasable lock element to lock the clamp structure at the designated location.
In some exemplary embodiments, the elongate flexible structure may include a cable and the clamp structure may include a cable gripper.
Some exemplary embodiments may further comprise a guide configured to extend outwardly from the anchor structure to guide and/or locate the light fixture at the installed position.
In some exemplary embodiments, the guide may include at least one guide structure with an exterior profile to engage an inner region of the light fixture.
In some exemplary embodiments, the guide may include a pair of guide formations on opposite sides of the anchor structure. The guide formations may have at least one surface to engage corresponding surfaces on the light fixture.
In another aspect, there is provided a light fixture assembly, comprising a plurality of anchor structures attachable to a ceiling at designated locations thereon to form an anchor array. At least one light fixture body defines a target location array of a plurality of target locations according to the anchor array. A plurality of elongate flexible structures is provided according to the anchor array, of which each elongate flexible structure is configured to extend from a corresponding anchor structure in the anchor array so as to be orientable to align with a corresponding target location in the target location array. A plurality of clamp structures is provided according to the anchor array, of which each clamp structure is configured to be positionable on the corresponding elongate flexible structure and displaceable therealong to bring the light fixture body toward the ceiling, each clamp structure being releasably lockable at a designated location on the corresponding elongate flexible structure, thereby to provide corresponding effective spacings between corresponding anchor structures and clamp structures to bring the light fixture body into engagement with the ceiling, with the anchor and target location arrays in general alignment, wherein an installed position of the light fixture body is defined by a cumulative effect of a relative positioning of each anchor location with the corresponding target location.
In some exemplary embodiments, the light fixture body may comprise a longitudinal extrusion defining a longitudinal axis, with a lateral cross section defined by an inner frame portion and a pair of outer boundary portions, wherein the target location array extends along the longitudinal axis.
In some exemplary embodiments, the pair of outer boundary portions may provide a pair of edge regions which are configured to engage the ceiling on respective opposite sides of the designated first locations.
In some exemplary embodiments, the inner frame portion is configured to define the target location array to be spaced from the pair of edge regions to define a passage through which each elongate flexible structure extends between the first location and the second location.
In some exemplary embodiments, the passage may include a cavity between the frame portion and the boundary portions through which each elongate flexible structure extends between the first location and the second location.
In some exemplary embodiments, the light fixture body may be configured to shroud each clamp structure and the corresponding elongate flexible structure to limit access to a region therebetween, as the clamp structure approaches the designated location on the elongate flexible structure.
In some exemplary embodiments, the light fixture body may include a chamber extending around a peripheral region of the clamp structure, wherein at least at the designated location on the elongate flexible structure.
In some exemplary embodiments, the chamber may be formed on a chamber member that is removably mountable to an inner surface of the light fixture body.
In another aspect, there is provided a mounting assembly for mounting a light fixture, comprising a plurality of anchor structures attachable to a ceiling at designated locations thereon to form an anchor array to be patterned so as to be complementary with a target location array of a plurality of target locations on the light fixture. A plurality of elongate flexible structures is provided according to the anchor array, each configured to extend from a corresponding anchor structure so as to be orientable to align with a corresponding target location in the target location array when the target location array is unaligned with the anchor array. A plurality of retainers according to the anchor array, each configured to be positionable at a distal location on the corresponding elongate flexible structure, thereby to suspend the light fixture below the ceiling. Each retainer is displaceable along the corresponding elongate flexible structure to collectively displace the light fixture toward engagement with the ceiling. The retainer is positionable at a designated location on the elongate flexible structure, wherein an installed position of the light fixture is defined by a cumulative effect of a relative positioning of each anchor location and each corresponding target location.
In another aspect, there is provided a method of mounting a light fixture on a ceiling, comprising:
In some exemplary embodiments, each target location may include an aperture, further including extending each elongate flexible structure through a corresponding aperture.
Several exemplary embodiments of the present disclosure will be provided, by way of examples only, with reference to the appended drawings, wherein:
It should be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. The use of “including,” “comprising,” or “having” and variations thereof herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Unless limited otherwise, the terms “connected,” “coupled,” and “mounted,” and variations thereof herein are used broadly and encompass direct and indirect connections, couplings, and mountings. In addition, the terms “connected” and “coupled” and variations thereof are not restricted to physical, mechanical or other connections or couplings. The terms upper, lower, and vertical are intended for operative context only and are not necessarily intended to limit the invention only to those configurations or orientations. Furthermore, and as described in subsequent paragraphs, the specific mechanical and/or other configurations illustrated in the drawings are intended to exemplify embodiments of the invention. However, other alternative mechanical and/or other configurations are possible which are considered to be within the teachings of the instant disclosure.
The term “elongate flexible structure” is intended to mean a structure which is flexible along its length, such as under a force of gravity, between spaced locations thereon, according to the relative positions of the locations.
Referring again to
As can be generally seen in
Also provided is a plurality of elongate flexible structures 38, according to the anchor array, and in this exemplary embodiment each may be provided as a cable. Each elongate flexible structure 38 has an end region 38a provided with an anchor ball 38b (
Referring to
As shown in
In some exemplary embodiments, as shown in
In some exemplary embodiments, the housing sections 12, 14 may be provided in the form of a longitudinal extrusion defining a longitudinal axis, one of which shown at 58 in
In some exemplary embodiments, the pair of outer boundary portions 62 provides a pair of edge regions 64 which are configured to engage the ceiling surface 26 (or be immediately adjacent thereto, so as to present substantially no perceptible or accessible gap therebetween) on respective opposite sides of the anchor locations 29, when the light fixture 10 is in the installed position.
In some exemplary embodiments, the inner frame portion 60 is configured to provide the target location array 32 to be spaced from the pair of edge regions 64 to define a passage 66 through which each elongate flexible structure 38 extends between the corresponding anchor location 29 and the target location 34. The passage 66 may thus bounded by the inner frame portion 60 and the boundary portions 62 forming an elongate cavity.
In some exemplary embodiments, each target location 34 may include an aperture such as that shown at 68, extending through the inner frame portion 60 (
Referring to
Exemplary embodiments are shown in
In some exemplary embodiments, as illustrated in
Referring to
Next, each of a plurality of elongate flexible structures 38 may be positioned to extend from a corresponding anchor structure 28 in the anchor array 30, so as to be orientable to align with a corresponding target location in the target location array 32.
Thus, in the above example, an elongate flexible structure 38 would each be installed on a corresponding t-bar clamp 29, for a total of sixteen elongate flexible structures, either after the t-bar clamp is installed or, as shown in the exemplary embodiment of
Next, as shown in
The cumulative effect of a relative positioning of each anchor location and each corresponding target location may provide particular advantages to both the assembly and installation of the light fixture 10. Using the elongate flexible structures, such as cables, may enable local misalignments to be accommodated in a holistic way. Note for instance, that in the exemplary embodiment of
The cumulative effect of a relative positioning of each anchor location and each corresponding target location may provide a number of benefits that may become more pronounced with an increasing number of anchors and target locations arising from an increasingly complex-shaped light fixture, such as the exemplified embodiment in
The following provides an account of a conventional installation method that, for illustration purposes only, is presented as if such conventional method were to be used in an attempt to install a light fixture of the general shape of the light fixture made up of housing sections 12, 14 and the coupler 16, as represented schematically in
Thus, in the above conventional method, the downwardly extending studs would be relatively nonflexible (or rigid) to the degree that cannot accommodate accumulated misalignments at target and anchor locations over the anchor and target location arrays as a whole, thus requiring possibility several iterations with several installers to ensure proper alignment and installation.
By sharp contrast, an exemplary method of the present disclosure is represented by
In some exemplary embodiments, power may be supplied to a light source in the housing section following step f) rather than before as presented above.
The double headed arrows represent the degrees of misalignment that might be present at each anchor location/target location interface.
Thus, after step f), the cumulative effect of misalignment is demonstrated by the light fixture in a translated position shown in solid lines at T in
Thus, in some exemplary embodiments, the mounting assembly may provide the particular benefit of allowing edge regions of a linear light fixture housing to be positioned directly against a ceiling surface, in a manner that conceals the mounting assembly, that is with no features of the mounting assembly visible beyond the light fixture housing. Further, the mounting assembly establishes localized suspensions between anchor and target locations on the ceiling and the light fixture, along the corresponding arrays thereof.
In some exemplary embodiments, other features and structures may be integrated into the light fixture or between the light fixture and the ceiling, such as the conduit structure described in co-pending U.S. application Ser. No. 15/885,742, filed Jan. 31, 2018, and entitled CONDUIT ACCESS FOR LIGHT FIXTURES. Thus, the access for power and the mounting of the light fixture may be provided with separate structures, enabling both to be determined by independent factors. Thus, the target locations may be determined based on design criteria, while the conduit location(s) may be chosen for the same or other criteria, such as the availability or proximity of the power supply relative to different locations on the light fixture.
Further, in some exemplary embodiments, the mounting assembly and the above mentioned conduit structure may be used to provide for protection for the supply of power without being exposed to the exterior or entrained in the mounting assembly. For instance, a light source may be provided in module form integrating power supply delivery to individual LED's in an enclosed LED array, as well as providing optics for the linear light fixture assembly.
While the present disclosure describes various exemplary embodiments, the disclosure is not so limited. To the contrary, the disclosure is intended to cover various modifications and equivalent arrangements, as will be readily appreciated by the person of ordinary skill in the art.
This application is a Continuation of co-pending U.S. application Ser. No. 15/885,759, filed Jan. 31, 2018. The disclosure set forth in the referenced application is incorporated herein by reference in its entirety. The subject matter of the following co-pending applications is incorporated by reference in their entireties: a) U.S. application filed Oct. 20, 2016 under Ser. No. 15/299,168 and entitled COUPLERS FOR LIGHT FIXTURES;b) U.S. application filed Mar. 2, 2017 under Ser. No. 15/447,841 entitled CANOPY INTERFACE FOR A CEILING MOUNT;c) U.S. application filed Jan. 31, 2018, under Ser. No. 15/885,742 and entitled CONDUIT ACCESS FOR LIGHT FIXTURES; andd) the following U.S. design applications: 1. application 29/623,018, filed Oct. 20, 2017 entitled LIGHT FIXTURE;2. application 29/601,125, filed Apr. 19, 2017, entitled LIGHT FIXTURE; and3. application 29/601,129, filed Apr. 19, 2017, entitled LIGHT FIXTURE COMPONENT.
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Number | Date | Country | |
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20200217488 A1 | Jul 2020 | US |
Number | Date | Country | |
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Parent | 15885759 | Jan 2018 | US |
Child | 16599489 | US |