ACOUSTIC SYSTEMS FOR LIGHTING IN SUSPENDED CEILINGS
20180010335 · 2018-01-11
Inventors
Cpc classification
E04B9/32
FIXED CONSTRUCTIONS
F21S8/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E04B9/001
FIXED CONSTRUCTIONS
E04B9/0464
FIXED CONSTRUCTIONS
International classification
E04B9/00
FIXED CONSTRUCTIONS
E04B9/32
FIXED CONSTRUCTIONS
Abstract
An acoustic housing, a light fixture, a suspended ceiling system, and a method of decreasing sound transfer from a light fixture in a suspended ceiling are disclosed. An acoustic hood for a light fixture in a suspended ceiling may include a partially enclosed space formed between a plurality of wall portions. A light fixture may include first and second layers that are coupled to one another and form a partially enclosed space. A suspended ceiling system may include the acoustic hood or light fixture. The method relates to disposing an acoustic housing spaced from the light fixture.
Claims
1. A suspended ceiling system comprising: a grid formed by a plurality of frame members; at least one acoustic panel supported by the grid; a light fixture supported by the grid, the light fixture configured and dimensioned to house a lighting element; and an acoustic hood for the light fixture, the acoustic hood comprising a plurality of rigid portions of sound-absorbing material that together form a partially enclosed space, with the rigid portions together forming a lower edge defining a perimeter of an opening in the acoustic hood dimensioned to have a shape approximately the same as formed by a perimeter of the light fixture; wherein the acoustic hood is supported in a spaced relation to the light fixture.
2. The suspended ceiling system of claim 1, wherein the lower edge of the acoustic hood is supported on the grid so that the acoustic hood and the light fixture do not contact one another.
3. The suspended ceiling system of claim 1, wherein the acoustic hood further comprises a positioning slot and the plurality of frame members comprises a protruding portion, the positioning slot and protruding portion configured and dimensioned to register and be coupled to one another.
4. The suspended ceiling system of claim 1, wherein the acoustic hood comprises substantially symmetrical halves.
5. The suspended ceiling system of claim 1, wherein the acoustic hood is supported in a spaced relation to the light fixture by a post.
6. The suspended ceiling system of claim 1, wherein the acoustic hood is supported in a spaced relation to the light fixture by a hanger.
7. The suspended ceiling system of claim 1, wherein the acoustic hood provides a noise reduction coefficient of at least 0.7.
8. The suspended ceiling system of claim 1, wherein the acoustic hood provides a noise reduction coefficient of at least 0.9.
9. The suspended ceiling system of claim 1, wherein the acoustic hood provides a sound transmission class of at least about 20.
10. The suspended ceiling system of claim 1, wherein the acoustic hood provides a sound transmission class of at least about 30.
11. The suspended ceiling system of claim 1, wherein the acoustic hood has a thickness between about 0.5 inch and about 1.5 inches.
12. A suspended ceiling system comprising: at least one acoustic panel; an acoustic hood for an underlying recessed light fixture, the acoustic hood comprising a plurality of rigid portions of sound-absorbing material that together form a partially enclosed space, the rigid portions comprising a plurality of wall portions each having a lower edge and a top portion, the lower edges together defining a perimeter of an opening in the acoustic hood dimensioned to have a shape approximately the same as formed by a perimeter of the recessed light fixture, wherein the wall portions are each disposed at an angle of between about 65° and about 80° with respect to the top portion.
13. The suspended ceiling of claim 12, further comprising a grid formed by a plurality of frame members; a recessed light fixture supported by the grid, the recessed light fixture configured and dimensioned to house a lighting element; wherein the acoustic hood is supported in a spaced relation to the light fixture; and wherein the acoustic hood is disposed adjacent the at least one acoustic panel.
14. The suspended ceiling system of claim 12, wherein the acoustic hood comprises fiberglass.
15. The suspended ceiling system of claim 12, wherein the acoustic hood has a thickness between about 0.5 inch and about 1.5 inches.
16. The suspended ceiling system of claim 12, wherein the acoustic hood is formed of unitary construction.
17. The suspended ceiling system of claim 12, wherein the wall portions are each disposed at an angle of between about 70° and about 75° with respect to the top portion.
18. The suspended ceiling system of claim 12, wherein the wall portions are each disposed at an angle of about 73° with respect to the top portion.
19. The suspended ceiling system of claim 12, wherein the perimeter is generally rectangular.
20. A suspended ceiling system comprising: a grid formed by a plurality of frame members; at least one acoustic panel supported by the grid; a light fixture supported by the grid; and an acoustic hood for the light fixture, the acoustic hood comprising a partially enclosed space formed between a plurality of wall portions that together define a perimeter of an opening in the acoustic hood dimensioned to have a shape approximately the same as formed by a perimeter of the light fixture, wherein the acoustic hood is at least partially spaced from the light fixtur
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0035] Preferred features of the present invention are disclosed in the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0051] Referring initially to
[0052] Turning to
[0053] In a preferred exemplary embodiment of acoustic housing 100, the perimeter formed by lower edges 116 is generally square and each lower edge 116 has a length L.sub.1 or L.sub.2 of about 31 inches. Also, upper edge regions 116a each may have a length L.sub.3 of about 24 inches. In an alternate embodiment, the perimeter formed by lower edges 116 for example may be rectangular such that L.sub.1 and L.sub.2 are different from one another.
[0054] As shown in
[0055] In addition, utility slots 120 provide a passage for utilities in and out of the space between the underlying light fixture 16, top surface 114 and sides 112, such as an electric conduit to the underlying light fixture 16. As shown in
[0056] Positioning slots 122 also are provided to allow acoustic housing 100 to be positioned in relation to an underlying grid formed from inverted T-shaped frame members, as will be discussed below. As shown in
[0057] A variety of slots or openings may be provided instead of, or in addition to those described above, such as circular holes or a field of spaced perforations throughout the housing.
[0058] In a preferred exemplary embodiment, acoustic housing 100 may be formed from layered and molded pliant fiberglass with a thickness between about 0.5 inch and about 1.5 inches, preferably between about 0.8 inch and about 1.3 inches, and more preferably about 1 inch. Acoustic housing 100 can be formed by positioning a plurality of layers of “light density” fiberglass in a mold formed to the desired shape. The fiberglass layers then may be successively compressed in the mold at a temperature, for example, of about 400° F., to form acoustic housing 100. After molding, acoustic housing 100 is formed from molded pliant fiberglass having a density of between about 4 lbs. per cubic foot and about 10 lbs. per cubic foot. In some embodiments, acoustic housing 100 preferably has a minimum density of about 6 lbs. per cubic foot. Additional components such as a binder may be included with the fiberglass during the molding process as necessary to form acoustic housing 100 having desired rigid characteristics of portions 135a, 135b. Acoustic housing 100 alternatively may be formed from other sound absorbing materials such as polyester or another polymer.
[0059] Alternatively, or in addition, acoustic housing 100 may be formed from a sound reflecting material such as molded polyvinyl chloride (PVC). An acoustic housing 100 formed from a sound reflecting material such as PVC may be more rigid and/or of narrower cross-section than molded pliant fiberglass. Acoustic housing 100 may be formed from any suitable sound reflecting material, such as any suitable plastic or other polymeric material. Acoustic housing 100 formed from a sound reflecting material having a narrow cross section may include openings such as vent slots 118, utility slots 120, and positioning slots 122, as shown in
[0060] In some embodiments, acoustic housing 100 may include layers of both sound absorbing material and sound reflecting material. For example, acoustic housing 100 may include an a first layer of sound absorbing molded pliant fiberglass as well as a second layer of sound reflecting PVC. Preferably, the first layer has a cross-sectional thickness greater than the second layer. The sound reflecting PVC, for example, may have a cross-sectional thickness between about one-quarter inch and about three-eighth inch.
[0061] In some embodiments, acoustic housing 100 may include a first layer effective in absorbing sounds such as the human speech frequency range above 125 Hz, and a second layer effective in reflecting sounds such as lower frequency airborne noise originating, for example, from HVAC or other mechanical components located above a suspended ceiling system.
[0062] Also in a preferred exemplary embodiment, acoustic housing 100 may be formed from multiple portions. For example, as shown in
[0063] Referring now to
[0064] Alternatively, as shown in
[0065] Referring now to
[0066] During installation, a head of bolt 204 (not shown) is disposed on the inside surface of light fixture 16 while magnet 208 is disposed on the outside surface 16b as shown in
[0067] In another securing system, shown in
[0068] Referring now to
[0069] Thus, advantageously, although ceiling tiles often must be removed or displaced from their location in the ceiling grid to permit maintenance of pipes, electrical equipment, air handling equipment, or other matters to be performed above the suspended ceiling, an acoustic housing 100 supported by the frame members 12 need not be moved. Because of the size and weight of acoustic housing 100, it is preferable that housing 100 be left in place once installed. In addition, advantageously the alignment of acoustic housing 100 supported by the frame members 12 may be maintained during such maintenance operations, so that it is unnecessary to adjust and realign housing 100 to provide the desired acoustic shielding each time maintenance may be performed.
[0070] Referring next to
[0071] As shown in
[0072] Although the aforementioned embodiments of the present invention involve acoustic housings that may be at least partially spaced from separate fixtures 16, other exemplary embodiments of the present invention involve an acoustic housing that is configured and dimensioned to form part of a fixture 16. In particular, referring now to
[0073] As shown, middle acoustic housing 604 may be positioned within outer housing 606 which both also may include a plurality of holes 604a, 606a, respectively, to provide ventilation for acoustic recessed light fixture 600 as well as a passageway for physical connections such as electrical connections to lighting elements 17. Outer housing 606 also includes sides 606b, an upper surface 606c and an opening 606d defined by sides 606b and upper surface 606c. Outer housing 606 may be formed from metal such as steel and may be constructed, for example, by stamping a rolled steel sheet into a predetermined shape having desired dimensions, or alternatively housing 606 may be formed of any other suitable material such as polymeric material.
[0074] Similar to outer housing 606, middle acoustic housing 604 may include a plurality of sides 604b, an upper surface 604c, and an opening 604d defined by sides 604b and upper surface 604c. The shape and dimensions of housings 604, 606 preferably are selected to permit middle acoustic housing 604 and outer housing 606 to closely mate when housing 604 is positioned in opening 606d to form a nested configuration. Preferably, stepped regions or flanges 604e, 606e mate. In some embodiments, middle acoustic housing 604 may be formed from layered and molded pliant fiberglass with a thickness of approximately 1 inch. Middle housing 604 for example may have a thickness between about 0.3 inch and 1.5 inch, between about 0.5 inch and 1.3 inches, or between 0.8 inch and 1.3 inches. Acoustic housing 604 alternatively may be formed from other sound absorbing materials such as polyester.
[0075] An inner layer 602 optionally may be included and may be formed from any suitable acoustically transparent material such as steel wire mesh or alternatively another material such as a polymeric material. Inner layer 602 may have a plurality of sides 602b, an upper surface 602c, and an opening 602d defined by sides 602b and upper surface 602c. Inner layer 602 may be configured and dimensioned in a manner that facilitates nesting of inner layer 602 within opening 604d of acoustic housing 604, similar to the nesting previously described for components 604, 606. Inner layer 602 may additionally include a flange 602e that can be secured to flange 604e during nesting.
[0076] In some exemplary embodiments, an acoustic housing 604 is custom molded and secured to outer layer 606; in other exemplary embodiments, a suitably configured and dimensioned layer 606 instead may be nested within an acoustic housing 604 so that housing 604 instead surrounds a preferably metal layer 606.
[0077] In some embodiments, as described above with reference to acoustic housing 100, acoustical light fixture 600 may include a layer 602, 604, 606 formed of a sound absorbing material such as fiberglass, and another layer 602, 604, 606 formed of a sound reflecting material such as PVC. As shown in
[0078] In some embodiments, light fixture 600 may include a first layer effective in absorbing sounds such as the human speech frequency range above 125 Hz, and a second layer effective in reflecting sounds such as lower frequency airborne noise originating, for example, from HVAC or other mechanical components located above a suspended ceiling system.
[0079] Acoustic recessed light fixture 600 additionally includes lighting elements 17 as shown schematically in
[0080] As with previously described acoustic housing 100, the light fixture 600 also may include features such as utility slots, positioning slots, and ventilation openings. In addition, layers 602, 604, 606 optionally may be supplied in a prefabricated, assembled condition in which the layers are already coupled together, or alternatively layers 602, 604, 606 optionally may be supplied separately for possible assembly “on-site.” Also, in order to provide a variety of options for materials, fixture weight, noise reduction coefficient (as will be described shortly), and other properties in order to meet a desired end use, the materials and dimensions of layers 602, 604, 606 may be selectable from a set of standardized or custom options. Thus, the components may be individually available for custom fabrication for a buyer, or otherwise individually available for on-site assembly. Moreover, although in one embodiment of fixture 600, two or more of layers 602, 604, 606 are coupled together to form an integral unit, in another embodiment of fixture 600 multiple layers may form a fixture 600 which has several sections that fit together to form the light fixture housing. For example, the light fixture housing formed by layers 602, 604, 606 may be supplied in multipiece construction such as two substantially symmetrical portions that together form the housing as previously described with respect to acoustic housing 100 with interface 135. Each of the optional methods previously described for acoustic housing 100 for coupling the pieces together in such a multipiece construction apply equally to a multipiece housing formed of layers 602, 604, 606.
[0081] Although described and shown with reference to a substantially rectangular recessed light fixture, it should be noted that the present invention is applicable to other forms of recessed lights, including without limitation cylindrical can light installations and fluorescent troffer light systems.
[0082] In one preferred exemplary embodiment of the present invention, the suspended ceiling and components meet ASTM Standard C635-04 entitled “Standard Specification for the Manufacture, Performance, and Testing of Metal Suspension Systems for Acoustical Tile and Lay-in Panel Ceilings” and ASTM Standard C636-04 entitled “Standard Practice for Installation of Metal Ceiling Suspension Systems for Acoustical Tile and Lay-In Panels,” and these standards are incorporated herein by reference thereto.
[0083] In addition, acoustic housings and light fixtures 100, 600, respectively, preferably have a Class A fire rating. Also, acoustic housings and light fixtures 100, 600, respectively, preferably may have a noise reduction coefficient (NRC) of between about 0.05 and about 1.0, and more preferably have an NRC of at least 0.7, at least 0.8, or at least 0.9. In one exemplary preferred embodiment, acoustic housings and light fixtures 100, 600, respectively, have an NRC of between about 0.8 and about 0.9.
[0084] For the purposes of the present invention, the NRC is calculated according to ASTM Standard C423-02a entitled “Standard Test Method for Sound Absorption and Sound Absorption Coefficients by the Reverberation Room Method,” which is incorporated herein by reference thereto.
[0085] While the NRC generally is a measure of the effectiveness of absorbing sound waves, the sound transmission class (STC) generally is a measure of the effectiveness of blocking sound waves.
[0086] For acoustic housings and light fixtures 100, 600 that are formed from a sound reflecting material, such as PVC, in accordance with the present invention, in some embodiments they have an STC of at least about 15, at least about 20, at least about 25, or at least about 30. As the STC increases, sources of speech-related noise are blocked to a greater degree. Thus, in order to block undesired speech transmission, for example, in one exemplary embodiment an STC of at least about 20 is desirable.
[0087] The STC is determined, particularly for air-borne sound at speech frequencies, according to ASTM Standard E90-04 entitled “Standard Test Method for Laboratory Measurement of Airborne Sound Transmission Loss of Building Partitions and Elements” and ASTM Standard E413-04 entitled “Classification for Rating Sound Insulation,” which are incorporated herein by reference thereto. It is known that the STC's of laboratory samples of acoustic housings or light fixtures 100, 600 may not be the same as STC's measured in field tests in installations in actual building settings, and thus a different ASTM standard covers a method for measurement of airborne sound insulation in buildings. For the purposes of the present invention, STC's described herein are to be determined according to the aforementioned ASTM Standards E90-04 and E413-04.
[0088] While various descriptions of the present invention are described above, it should be understood that the various features can be used singly or in any combination thereof. Therefore, this invention is not to be limited to only the specifically preferred embodiments depicted herein.
[0089] Further, it should be understood that variations and modifications within the spirit and scope of the invention may occur to those skilled in the art to which the invention pertains. For example, hanger assemblies 300, 301 can employ any suitable means for attaching an end of hanger wire 304 to an overlying surface. Additionally, any known method may be used to secure acoustic housing 100 to a hanger wire. Regarding spacer 200, any suitable hardware or combination of hardware may be used to provide the desired spacing. Other types of recessed light fixtures for suspended ceilings, such as recessed can lights, also may be acoustically shielded in accordance with the principles of the present invention. In addition, other components of suspended ceilings may be acoustically shielded using housings as disclosed herein, such as HVAC elements. Furthermore, although acoustic housing 100 has been described in an exemplary two-part embodiment with symmetrical halves, other constructions for facilitating installation such as collapsible one-piece embodiments are envisioned to permit positioning through ceiling grids. Moreover, if an air plenum is formed between ceiling tiles 14 and structure of the building, it may be desirable to form housing 100 to be aerodynamic to facilitate air movement. Accordingly, all expedient modifications readily attainable by one versed in the art from the disclosure set forth herein that are within the scope and spirit of the present invention are to be included as further embodiments of the present invention. The scope of the present invention is accordingly defined as set forth in the appended claims.