The present subject matter relates to light fixtures, such as puff lights. More specifically, the present subject matter relates to a light fixture including an integrated fan.
Light assemblies are provided in buildings for adding illumination to retail, office, and/or residential settings. Lighting fixtures may provide energy efficient lighting, and add a decorative look to warmly light commercial and/or residential spaces.
In one embodiment, a light and fan assembly may include a body having a first side configured to be positioned adjacent to a ceiling, a second side opposite the first side, and an internal cavity disposed between the first side and the second side. The light and fan assembly may also include a light unit disposed on the second side of the body. The light unit may have an outer perimeter. At least a portion of the outer perimeter may be spaced apart from the body to define an outlet therebetween. The light and fan assembly may further include a motor positioned within the internal cavity, and a fan positioned within the internal cavity and coupled to the motor. The fan may be operable to draw air into the internal cavity and exhaust the air out of the body through the outlet.
In another embodiment, a light and fan assembly may include a body having a first side configured to be positioned adjacent to a ceiling, and a second side positioned opposite the first side. The second side may define an outlet. The body may also have a third side disposed between the first and second sides and defining a first inlet, and a fourth side opposite the third side and defining a second inlet. The body may further have an internal cavity disposed between the first, second, third, and fourth. The internal cavity may be in fluid communication with the first inlet, the second inlet, and the outlet. The light and fan assembly may also include a light unit disposed on the second side of the body. The light and fan assembly may further include an inner housing positioned within the internal cavity. The inner housing may define a central opening. The light and fan assembly may also include a motor positioned within the internal cavity and a fan positioned within the central opening of the inner housing and coupled to the motor. The fan may be operable to draw air into the internal cavity through the first inlet and the second inlet and propel the air out of the body through the outlet.
Other aspects of the subject matter will become apparent by consideration of the detailed description and accompanying drawings.
Before any embodiments are explained in detail, it is to be understood that the subject matter 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 following drawings. The subject matter 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. Use of “including” and “comprising” and variations thereof as used herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Use of “consisting of” and variations thereof as used herein is meant to encompass only the items listed thereafter and equivalents thereof. Unless specified or limited otherwise, the terms “mounted,” “connected,” “supported,” and “coupled” and variations thereof are used broadly and encompass both direct and indirect mountings, connections, supports, and couplings.
In general, the present subject matter relates to a light and fan assembly including a light emitter and integrated fan. The fan may be configured to exhaust air over a similar area to which the light emitter illuminates.
As shown in the illustrated embodiments of
The illustrated body 14 may be rectangular. In some embodiments, the body 14 may have rounded or chamfered corners. In other embodiments, the body 14 may have other desired shapes, such as a square shape, an oblong shape, a circular shape, an oval shape, a hexagonal shape, a cylindrical shape, a symmetrical shape (e.g., relative to a center of the body 14, an asymmetrical shape (e.g., relative to a center of the body 14), and/or the like.
In the illustrated embodiment, an outer boundary of the light unit 16 may define an area less than an area defined by an outer boundary of the body 14. In other words, the area of the lens 18 may be less than the area of the body 14, and a perimeter of the light unit 16 may be less than a perimeter of the body 14, in some cases. The light unit 16 may be positioned on, over, and/or in the body 14 such that the body 14 may extend at least partially around the lens 18 for supporting and/or retaining the lens 18 respective to the body. The lens 18 may have different shapes (e.g., rectangular, circular, etc.) to provide different illumination patterns and/or to match the shape of the body 14. In the illustrated embodiment, the lens 18 may have a concave, or substantially concave shape facing toward the ceiling and a convex, or substantially convex shape facing away from the ceiling. In some embodiments, the lens 18 may include a substantially smooth surface, a textured surface, a curvilinear surface, a curved surface, a linear surface, any combination thereof, and/or the like.
As shown in
In some embodiments, the light and fan assembly 10 may also include a motor 38. The motor 38 may also be accessible through the upper side 30. In the illustrated embodiment, the motor may include an alternating current (AC) induction motor 38, which may use electromagnetic induction to generate a torque. In other embodiments, a different type of motor may be used (e.g., a direct current (DC) motor, and/or the like).
Still referring to
Referring now to
In some embodiments, the light and fan assembly 10 may also include an internal cavity 58 defined between the upper side 30, the lower side 62, and one or more side walls 66. The lower side 62 may be positioned opposite the upper side 30 and may support the light unit 16. The side walls 66 may extend substantially orthogonal between the upper side 30 and the lower side 62. One or more exhaust walls 70 may be positioned within the cavity 58 and extend from the lower side 62 substantially parallel to the side walls 66. The exhaust walls 70 may be positioned proximate an edge of the light emitter 26. A space between an exhaust wall 70 and a corresponding side wall 66 may define the one or more outlets 50.
In some embodiments, the cavity 58 may house or enclose the motor 38, a fan 74, and/or a drive assembly 78 that couples the motor 38 and the fan 74. The motor 38 may be positioned such that the majority of the motor 38 is disposed within the cavity 58. The motor 38 may be vertically aligned such that the motor 38 spins respective to a motor axis 80 being orthogonal to the lower side 62.
In some embodiments, the fan 74 may be spaced apart from the motor 38 within the cavity 58. In the illustrated embodiment, the fan 74 may be a centrifugal fan configured rotate respective to a fan axis 85. The fan axis 85 may be parallel to, but offset from the motor axis 80. As shown in
In some embodiments, the depth D1 may be less than twenty-four inches. In other embodiments, the depth D1 may be less than eighteen inches. In other embodiments, the depth D1 may be between one inch and fourteen inches. In other embodiments, the depth D1 may be between two inches and twelve inches. In other embodiments, the depth D1 may be between three inches and ten inches.
In some embodiments, the width W1 is one and a half times as large as the depth D1. In other embodiments, the width W1 is two times as large as the depth D1. In other embodiments, the width W1 is three times as large as the depth D1. In other embodiments, the width W1 is four times as large as the depth D1. In other embodiments, the width W1 is five times as large as the depth D1.
The shallow depth D1 of the fan 74 may allow the light and fan assembly 10 to occupy a smaller footprint on or over the ceiling 22 and a minimum depth of a room. In some embodiments, multiple fans 74 may be positioned within the cavity 58 and be coupled to the same motor 38 or to different motors. In other embodiments, other suitable types of fans may be used (e.g., axial fans, and/or the like).
As shown in
In some embodiments, the fan 74 may also be supported by a first bearing 94a and a second bearing 94b. The first bearing 94a may be coupled to the fan 74 proximate the upper side 30, and the second bearing 94b may be coupled to the fan 74 proximate the lower side 62. In the illustrated embodiment, the second bearing 94b may be positioned between the driven pulley 84 and the lower side 62. The bearings 94a, 94b may be configured to provide rotational support for the fan 74.
In some embodiments, the light and fan assembly 10 may include a wired electrical connection that draws electrical current from an outlet or power source (not shown). In other embodiments, the light and fan assembly 10 may include a connection terminal (not shown). The connection terminal may receive a battery (e.g., a rechargeable battery pack, not shown) which would provide electrical current to the light and fan assembly 10. The battery may be a power tool battery pack, and can be removed from the light and fan assembly 10 and coupled to a power tool (not shown) to provide the power tool with electrical current.
While the light and fan assembly 10 is in a first or off state, electrical current may not be supplied to the light emitter 26 and/or the motor 38. When a user switches the light and fan assembly 10 to a second or on state, electrical current may be supplied to the light emitter 26 and/or the motor 38. Other embodiments may include intermediate states where only the light emitter 26 receives electrical current, where only the motor 38 receives electrical current, and/or the like. In some embodiments, the light and fan assembly 10 may be controlled by a one or more actuators (e.g., buttons, dials, etc.) supported on the body 14 and/or by a wall switch remotely located from the light and fan assembly 10. Additionally, or alternatively, the light and fan assembly 10 may be controlled by a remote control or an app on a smartphone or computer.
In the on state, the light emitter 26 may emit light that passes through the lens 18 and into an external environment (e.g., a room). Alternatively, the light and fan assembly 10 may be devoid of a lens 18, in which case, light may be emitted directly into the external environment. Emitted light may extend away from the ceiling 22 in order to illuminate the external environment.
Additionally, the motor 38 may be powered in the on state. The motor 38 may rotate and cause the drive pulley 82 to rotate. The rotation of the drive pulley 82 may drive the belt 90. As the drive pulley 82 rotates, energy from the motor 38 may be transferred to the belt 90. The energy may allow the belt 90 to drive the driven pulley 84. Rotation of the driven pulley 84, in turn, may actuate the fan 74.
As the fan 74 rotates, air 98 (see e.g.,
Referring now to
The illustrated body 214 may include a first, upper side 230, a second, lower side 262, third and fourth sides or respective end walls 266A, and fifth and sixth sides or respective side walls 266B. Each side wall 266B may be disposed between the end walls 266A. The end walls 266A and the side walls 266B may also be disposed between the upper and lower sides 230, 232. In the illustrated embodiment, the end walls 266A may include a plurality of openings (e.g., intake openings, inlets, and/or the like) formed as one or more grates 272 that define an inlet region. The inlet regions may be disposed in the third and fourth sides 266A of the body 214. The upper side 230 of the body 214 may or may not contact the ceiling 22 upon mounting the light and fan assembly 210. The light emitter 226 may be covered by the lens 218, and may be configured to illuminate an area beneath the ceiling 22. The lens 218 may include a lens similar to lens 18 described above, and may include a light diffusing lens, a light reflecting lens, a light guiding lens, and/or the like. The lens 218 may be optically transparent or partially non-transparent. Further, the lens 218 may comprise plastic having a smooth surface, a curved surface, a textured surface, a linear surface, a surface having any combination of the aforementioned aspects, and/or the like.
As shown in
As shown in
In some embodiments, the inner housing 310 may extend longitudinally between the end walls 266A and between the side walls 266B. The inner housing 310 may include an upper surface 312 formed by two semi-elliptically shaped portions disposed back-to-back (e.g., a curved side of one semi-ellipse portion intersects with a curved sided of the other semi-ellipse portion).
With reference to
In the illustrated embodiment, the inner housing 310 may be symmetrical about an axis 285 that extends through a center of the central body 314 (e.g., each semi-ellipse may have substantially the same area and perimeter). Each arm 324 may extend from an upper surface 312 of the housing 310 (e.g., proximate the upper side 230 with the housing 310 disposed within the body 214), and may curve away from the upper surface 312 (e.g., down to the lower side 262 of the light and fan assembly 210 adjacent to the side walls 266B). The channels 328 may extend the length of both side walls 266B. Each channel 328 may also be in fluid communication with one or more of the outlets 250 to direct air out of the light and fan assembly 210.
In some embodiments, the fan 274 may be coupled to the housing 310 and be disposed within a central opening 334 of the housing 310. The fan 274 may be aligned with the inner ring 316A and the outer ring 316B between the housing 310 and the upper side 230. Both the housing 310 and the fan 274 may have a hollow center (e.g., along axis the axis 285) and together may define a chamber 336 that may be configured to house the motor 238. In the illustrated embodiment, the chamber 336 may be bell shaped, and may be in communication with the central opening 334. The motor 238 and the fan 274 may be configured to rotate about the axis 285 (e.g., the axis 285 may represent both a fan axis and a motor axis so that the fan and motor axes are collinear).
With reference to
In some embodiments, the depth D2 may be less than twenty-four inches. In other embodiments, the depth D2 may be less than eighteen inches. In other embodiments, the depth D2 may be between one inch and fourteen inches. In other embodiments, the depth D2 may be between two inches and twelve inches. In other embodiments, the depth D2 may be between three inches and ten inches.
In some embodiments, the width W2 is one and a half times as large as the depth D2. In other embodiments, the width W2 is two times as large as the depth D2. In other embodiments, the width W2 is three times as large as the depth D2. In other embodiments, the width W2 is four times as large as the depth D2. In other embodiments, the width W is five times as large as the depth D2.
In use, electrical power may be supplied to the motor 238 (e.g., by a battery, a wired connection, and/or the like), which causes the motor 238 to rotate. The motor 238 may transfer energy to the fan 274. As shown in
The embodiment(s) described above and illustrated in the figures are presented by way of example only and are not intended as a limitation of the present subject matter. As such, it will be appreciated that variations and modifications to the elements and their configuration and/or arrangement may exist.
Various features of the present subject matter are set forth in the following claims.
This application claims the benefit of U.S. Provisional Patent Application No. 62/627,556, filed Feb. 7, 2018. The entire contents of each of this application is hereby incorporated by reference herein.
Number | Date | Country | |
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62627556 | Feb 2018 | US |