System and method of creating a decorative panel
09574755 · 2017-02-21
Inventors
Cpc classification
F21Y2103/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E04F13/0862
FIXED CONSTRUCTIONS
F21W2121/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2105/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S4/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A system and method of creating a decorative panel enables the creation of a decorative panel through a unique arrangement of illuminating blocks. The blocks are arranged to form a decorative panel. The blocks have an internal channel that contains light emitting diodes and a central conductive member. The diodes can be adjusted and removed to achieve a desired pattern or message without removing any of the blocks. The diodes and central conductive member are easily accessible from one side of the blocks by sliding them in and out for interchanging diodes or maintenance of the wires. The decorative effect on the panel may be constantly regenerated by interchanging diodes from within individual blocks, without having to move the block. This is possible because the diodes are disposed internally in the blocks. Thus, the illuminating effect from within each block is manipulated to create a desired decorative effect.
Claims
1. A system of creating decorative panels, the system comprises: a plurality of blocks, the plurality of blocks defined by a channel that traverses through a center region of each block, a portion of the plurality of blocks having a generally transparent composition, and a portion of the plurality of blocks having a generally opaque composition; a frame, the frame disposed concentrically in the channel, the frame defined by a first end and a second end, each end defined by a central receiving aperture; at least one mini tube, the at least one mini tube disposed concentrically inside the frame, the at least one mini tube defined by a substantially transparent composition, the at least one mini tube configured to contain a series of diodes; a central conductive member, the central conductive member disposed to position on opposite sides of the at least one mini tube, the central conductive member configured to carry current to the series of diodes; and a plurality of connectors, the plurality of connectors disposed between the first end and the second end of adjacent frames, the plurality of connectors defined by a magnetic composition, the plurality of connectors configured to fasten adjacent frames together, the plurality of connector further configured to restrict passage of light between adjacent blocks, wherein the light from the series of diodes is shielded between individual blocks.
2. The system of claim 1, wherein the series of diodes form a inch chain in a connector-receptor-emitting series configuration.
3. The system of claim 1, wherein the plurality of blocks are fabricated from wood, cement, or a transparent material.
4. The system of claim 1, wherein the plurality of blocks are fastened together by at least one member selected from the group consisting of: cement, grout, concrete, and silicone.
5. The system of claim 1, wherein the channel has a diameter of about 2 inches.
6. The system of claim 1, wherein the channel is acrylic or a transparent material.
7. The system of claim 1, wherein the plurality of blocks have dimensions of about 8 inches length, 8 inches height, and 4 inches width that substantially form a cube shape.
8. The system of claim 1, wherein the plurality of blocks are interconnected to form a barrier.
9. The system of claim 1, wherein the frame has a substantially cylindrical shape.
10. The system of claim 1, wherein the mini tube is disposed to pass through the central receiving aperture in the frame.
11. The system of claim 1, wherein the series of diodes is ten diodes.
12. The system of claim 1, wherein the color of the diodes for each frame is different.
13. The system of claim 1, wherein the central conductive member is disposed to pass through the central receiving aperture in the frame for operatively connecting to the series of diodes in the at least one mini tube.
14. The system of claim 1, wherein the central conductive member carries electrical current in a series, wherein the electrical current follows a single path through the central conductive member and the series of diodes for all of the frames, and wherein the current through each central conductive member and diode is the same and the voltage across each central conductive member and diode is different.
15. The system of claim 1, wherein the plurality of connectors have a first connector end and a second connector end.
16. The system of claim 15, wherein the first connector end and the second connector end each have a positive pole and a negative pole that align with the similarly charged wires in the pair of wiring tubes.
17. The system of claim 1, further including at least one power source, the at least one power source disposed to align along the length of the detachable gate, wherein a power source cable and socket are not visible along a front and rear surface on the plurality of blocks.
18. The system of claim 1, further including a panel frame, the panel frame composed of the plurality of blocks.
19. The system of claim 18, wherein the panel frame is defined by a detachable gate, the detachable gate configured to pivotally move between an open position and a closed position to regulate access to the channel in each block.
20. A system of creating decorative panels, the system comprises: a plurality of blocks, the plurality of blocks defined by a channel that traverses through a center region of each block, a portion of the plurality of blocks having a generally transparent composition, and a portion of the plurality of blocks having a generally opaque composition; a frame, the frame disposed concentrically in the channel, the frame defined by a first end and a second end, each end defined by a central receiving aperture; at least one mini tube, the at least one mini tube disposed concentrically inside the frame, the at least one mini tube defined by a substantially transparent composition, the at least one mini tube configured to contain a series of diodes; a central conductive member, the central conductive member disposed to position on opposite sides of the at least one mini tube, the central conductive member configured to carry current to the series of diodes; a plurality of connectors, the plurality of connectors disposed between the first end and the second end of adjacent frames, the plurality of connectors defined by a magnetic composition, the plurality of connectors configured to fasten adjacent frames together, the plurality of connector further configured to restrict passage of light between adjacent blocks, wherein the light from the series of diodes is shielded between individual blocks; a panel frame, the panel frame defined by a detachable gate, the detachable gate configured to pivotally move between an open position and a closed position to regulate access to the channel in each block; and at least one power source, the at least one power source disposed to align along the length of the detachable gate, wherein a power source cable and socket are not visible along a front and rear surface on the plurality of blocks.
Description
DRAWINGS
(1) These and other features, aspects, and advantages of the present invention will become better understood with regard to the following description, appended claims, and drawings where:
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DESCRIPTION
(10) One embodiment, referenced in
(11) At least one mini tube 134a-b positions about concentrically inside the channel 106 in the block 104a-b. The mini tube 134a-b contains a series of light emitting diodes 132a, 132b connected by a central conductive member 136. Furthermore, to prevent light passing between individual blocks, a plurality of connectors 112 position between the blocks 104a-b. Some of the blocks 104a-b may be made of wood, concrete or other materials that will allow the builder to highlight designs aspects of the panels constructed. Any combination of blocks 104a-b can selectively block transmission of light. In this manner, a builder can easily construct panels that will highlight a product, service, message, press release on the exterior of top floors of highrise buildings that prior to the invention would have required cranes to place, if at all possible.
(12) The mini tubes 134a-b are installed in series using a connector-receptor-emitting configuration. These measurements may include , , and 1 forming a train of several mini tubes 134a-b. To restrict passage of light between blocks 104a-b, one of several mini tubes without glass may be used in its LED metal bars inside electric transmission.
(13) The illumination from the light emitting diodes 132a-b is adjustable so as to form the pattern or message without having to remove any of the blocks 104a-b from the decorative panel. Thus, the illuminating effect from within each block 104a-b can be configured to create a desired decorative effect for the decorative panel.
(14) As referenced in
(15) The decorative panel, shows a plurality of blocks 104a-b that are arranged to create a decorative panel that selectively illuminates to form a message or design. Because of the aggregate composition of the decorative panel, the lighting is selective, as each block 104a-b may or may not illuminate, and the color and pattern for each block 104a-b may be different. In this manner, myriad combinations of patterns, text, and messages may be formed on the panel. The decorative effect on the panel may be perpetually regenerated by interchanging diodes 132a-b from within individual blocks 104a-b, without having to move the blocks 104a-b. The panel may rest on a panel base for added stability. Though in other embodiments, the panel may hang from a wall, or become a part of a structure.
(16) Additionally, the decorative panel may be employed in a variety of applications including, but not limited to, interior or exterior space illumination in general, direct or indirect illumination of objects or spaces, illumination of displays and/or merchandise for advertising and/or in retail/consumer environments, safety-oriented illumination, theatrical or other entertainment-based/special effects illumination, decorative illumination, combined illumination and communication systems, as well as for various indication and informational purposes.
(17) Turning now to
(18) Multiple blocks 104a-b may be arranged with the channels 106 running through each block 104a-b being aligned adjacently. The blocks 104a-b may be arranged in any shape or size, and have any color or lighting pattern to form the final decorative effect on the panel. This allows the panel to be created in a variety of shapes, sizes, and dimensions. The plurality of blocks 104a-b may be set together through various fasteners, including, without limitation, grout, cement, and silicone. The grout, cement, and silicone also serve the dual purpose of restricting diffusion of light between blocks 104a-b.
(19) As illustrated in
(20) In some embodiments, both the diodes 132a-b and the central conductive member 136 are encased in their own tubular casing within the frame 108. Thus, a mini tube 134a-b contains the series of diodes 132a-b, while a pair of mini tubes 134a, 134b contains the central conductive member 136. The mini tubes 134a-b also serves the function of enhancing structural integrity of the frame 108 and channel 106 inside the blocks 104a-b.
(21) In the case when a series of frames 108 are used, a plurality of connectors 112 are disposed to position between adjacent frames 108. The connectors 112 securely fasten the frames 108 together in a series, such that multiple frames 108 can be connected and passed through multiple blocks 104a-b. In one embodiment, the connectors 112 are magnetic to help secure the connections between adjacent frames 108. The connectors 112 are also conductive, so as to carry electrical current between diodes 132a-b in adjacent mini tubes 134a-b, and central conductive member 136 in adjacent wiring tubes 134a-b.
(22) In some embodiments, the series of frames 108, and thus the internally located diodes 132a-b and central conductive member 136 are accessible by pivotally detaching an end frame on the edge of the panel to expose the frames 108 in their respective blocks 104a-b. The end frame terminates a series of adjacent frames 108. Once the end frame is accessed, the other interconnected frames 108 may be pulled out like a string to interchange any diodes 132a-b in the series. The system 100 is powered by at least one power source (not shown) that engages the end frame. In this manner, power source cables and sockets are not visible from a front or rear surface of the panel.
(23) In some embodiments, the system 100 of creating a decorative panel may include a plurality of blocks 104a-b. The blocks 104a-b form a generally cubicle shape and have a transparent composition. In one embodiment, the blocks 104a-b are sized to have a length of 8, a height of 8, and a width of 4. The blocks 104a-b may be fabricated from glass, acrylic, or any substantially rigid and transparent material known in the art.
(24) As shown in
(25) Turning now to
(26) The frame 108 is defined by a first end 118 and a second end 120. The ends 118, 120 are generally circular and connected by a first frame tube and a second frame tube that extends therebetween. In one possible embodiment, the first end 118, has a central receiving aperture 126 that enables passage of additional components in and out of the frame 108. The ends 118, 120 of the frame 108 may have two protrusions and/or two depressions that rotatably mate with a plurality of connectors 112. Thus, multiple frames 108 may be attached together in series through a plurality of connectors 112 (
(27) The first and second end 118, 120 of the frame 108 are connected through a first frame tube and a second frame tube, whereby the generally cylindrical shape discussed above is formed. This shape allows the frame 108 to pass through the channel 106, forming a snug fit within. In one embodiment, the frame 108 has a diameter of about 2. However, the frame 108 may also have a diameter of about to match the diameter size of the channel 106.
(28) In some embodiments, the system 100 comprises a mini tube 134a-b. The mini tube 134a-b passes through the central receiving aperture 126 of the frame 108 and is disposed concentrically within the frame 108. The mini tube 134a-b is configured to contain a series of diodes 132a-b that illuminate.
(29) In one embodiment, the series of diodes 132a-b consists of at least ten diodes arranged in linear connectivity. The mini tube 134a-b freely moves in and out of the frame 108 for changing and maintenance of the diodes 132a-b. The mini tube 134a-b is also defined by a substantially transparent composition, such that light from the diodes 132a-b is allowed to pass through with minimal diffusion or interference. However, a coloring or diffusion composition may be added to the surface of the mini tube 134a-b to alter the lighting.
(30) Those skilled in the art will recognize that the diodes 132a-b contained within the mini tube 134a-b may include any number of light emitting diodes 132a-b known in the art, including semi-conductor and organic light emitting diodes. The diodes may be configured to generate radiation in one or more of the infrared spectrum, ultraviolet spectrum, and various portions of the visible spectrum. In general, the generated radiation wavelengths are from approximately 400 nanometers to approximately 700 nanometers. Some possible examples of diodes may include, without limitation, various types of infrared diodes, ultraviolet diodes, red diodes, blue diodes, green diodes, yellow diodes, amber diodes, orange diodes, and white diodes. It also should be appreciated that the diodes may be configured to generate radiation having various bandwidths for a given spectrum, e.g., narrow bandwidth, broad bandwidth. The diodes 132a-b of the present invention may illuminate in a steady pattern or a synchronized, pulsating pattern.
(31) As shown in
(32) As referenced in
(33) In another possible embodiment, the central conductive member 136 carry the electrical current in parallel, wherein the electrical current follows a single path through the central conductive member 136 and the diodes 132a-b for all of the frames 108. In the parallel configuration, the voltage across the central conductive member 136 and the series of diode 132a-b is the same and the current through each wire 136 and diode 132a-b is different. It is significant to note that the parallel configuration of wiring does not utilize the pair of wiring tubes 134a-b, but rather has the wires 136 run through the series of diodes 132a-b.
(34) In some embodiments, the system 100 may include a plurality of connectors 112. The connectors 112 are disposed between the first end 118 and the second end 120 of adjacent frames 108 to form a secure connection between the frames 108. In some embodiments, the connectors 112 have a width that is generally equivalent to the thickness of the grout or silicone between the blocks 104a-b. This solid width creates a light barrier that restricts the loss of light form the diodes 132a-b.
(35) In some embodiments, the connectors 112 may have a magnetic composition. The magnetic force that is generated helps the connectors 112 fasten adjacent frames 108 together. However, in other embodiments, the connectors 112 may be threaded, so as to enable rotatable fastening with the frames 108. In yet additional embodiments, clips, screws, and frictional compression may be used to fasten the connectors 112 to the frames 108. The connectors 112 are also defined by a conductive composition, wherein the connectors 112 conduct electrical current between diodes 132a-b in adjacent mini tubes 134a-b, and central conductive member 136.
(36) Each connector 112 has a first connector end that tapers into a second connector end. In some embodiments, the first connector end may include a U-shaped slot for receiving the first end 118 of the frame 108. The second connector end has a positive pole and a negative pole that align with the similarly charged central conductive member 136. Furthermore, the electrical current may flow through the central conductive member 136 in a series or parallel wiring configuration, depending on the desired configuration. In the parallel wiring configuration the central conductive member 136 are carried by the mini tube 134a-b. In either the series or parallel wiring configuration, however, the electrical current runs through the central conductive member 136 to power the diodes 132a-b, and thereby create the decorative illuminating effect for the blocks 104a-b.
(37) In one alternative embodiment, at least one conductor frame 150 is used solely for conducting electrical current. The conductor frame 150 does not contain diodes 132-b, and thus does not illuminate. However, the conductor frame 150 may join with an adjacent frame 108 that does have diodes 132a-b. The conductor frame 150 is configured to not contain the mini tube 134a-b or the wiring tubes 134a-b. Rather the conductor frame 150 holds a conductor 152. This allows for continuing the flow of electrical current without providing illumination from the respective block 104a.
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(39) The at least one conductor frame 150 has a first conductor end 154 and a second conductor end 156. Each end 154, 156 of the conductor frame 150 is connected by a first conductor tube 158 and a second conductor tube 160. The conductor frame 150 further includes a generally concentrically disposed elongated conductor 152 that extends between the first conductor end 154 and the second conductor end 156. The conductor 152 may form a pair of metal rods that carries the current form an adjacent central conductive member 136. The conductor frame 150 may be used when the central conductive member 136 is configured in series or parallel, as discussed above.
(40) In one embodiment, the panel comprises a panel frame that forms a perimeter around the completed panel arranged from the plurality of blocks 104a-b. The panel frame is defined by a detachable gate. The detachable gate may include one side end of the panel frame 114. The detachable gate is configured to pivot between an open position and a closed position to regulate access to the channel 106, and thus the end frame for each block 104a-b. In this manner, all of the frames 108, including the internally disposed mini tube 134a-b, may be accessed to change out diodes 132a-b or maintenance the central conductive member 136. The detachable gate may also have a plurality of gate apertures that are evenly spaced along the length of the detachable gate. The gate apertures enables the central conductive member 136, and also allow the power source cable to pass through.
(41) In some embodiments, the system 100 comprises at least one power source. The at least one power source may include a socket, a power cable, a condenser, a resistor, and other electrical components that regulate and carry the electrical current to and from the central conductive member 136 and diodes 132a-b. The power source is disposed to align along the length of the detachable gate. In this manner, power source wiring and sockets are not visible along the front and rear surface of the blocks 104a-b. The at least one power source may include a condenser to store electrical power before dispensing to the various frames 108 in the blocks 104a-b. A resistor may also be positioned proximally to the frames 108 to regulate the amount of electrical current that is allowed to flow into the central conductive member 136 and the diodes 132a-b.
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(43) The method 200 may include an initial Step 202 of providing a plurality of blocks 104a-b.
(44) The method 200 may further comprise a Step 204 of boring a channel 106 through each block, wherein the channel 106 for each block aligns with an adjacent channel 106 in an adjacent block. A bore drill may create the channel 106. The channels 106 for multiple blocks 104a-b align so as to allow additional components to pass through.
(45) A Step 206 includes providing a frame 108. The frame 108 is configured to pass through the channel 106. In one embodiment, the frame 108 passes through multiple channels 106 before securely positioning in its appropriate block 104a-b. The frame 108 has substantially the same shape (cylindrical) as the channel 106, such that it forms a snug fit therein. The snug fit helps restrict loss of illumination from within the frame 108.
(46) In some embodiments, a Step 208 comprises positioning a series of diodes 132a-b in a mini tube 134a-b. The mini tube 134a-b passes through the central receiving aperture 126 of the frame 108 and is disposed concentrically within the frame 108. The mini tube 134a-b is configured to contain a series of diodes 132a-b that illuminate. The diodes 104a-b may include at least 10 diodes that string through the mini tube 134a-b.
(47) A Step 210 includes traversing the mini tube 134a-b through the frame 108. The mini tube 134a-b not only holds the diodes 132a-c, but also provides structural integrity to the frame 108.
(48) In some embodiments, a Step 212 may include positioning central conductive member 136 in a pair of wiring tubes 134a-b. The pair of wiring tubes 134a-b are disposed to position on opposite sides of the mini tube 134a-b, and towards the periphery of the frame 108. The pair of wiring tubes 134a-b contain central conductive member 136 that carry electrical current to power the diodes 132a-b.
(49) A Step 214 comprises traversing the pair of wiring tubes 134a-b through the frame 108. The pair of wiring tubes 134a-b not only holds the central conductive member 136, but also provides structural integrity to the frame 108. A Step 216 includes arranging the plurality of blocks 104a-b to form a decorative panel. The blocks 104a-b are held together by various fasteners, including, without limitation, cement, grout, and silicone. General brick laying skills known in the art may be used to configure the blocks 104a-b.
(50) The method 200 may further include a Step 218 that includes pivotally moving a detachable gate to an open position on one side of the decorative panel, the panel comprises a panel frame that forms a perimeter around the completed panel arranged from the plurality of blocks 104a-b. The panel frame is defined by a detachable gate. The detachable gate may include one side end of the panel frame. The detachable gate is configured to pivot between an open position and a closed position to regulate access to the channel 106, and thus the end frame for each block 104a-b. In this manner, all of the frames 108, including the internally disposed mini tube 134a-b and wiring tubes 134a-b, may be accessed to change out diodes 132a-b or maintenance the central conductive member 136.
(51) In some embodiments, a Step 220 comprises connecting a series of the frames 108 through a plurality of connectors 112. The connectors 112 are disposed between the first end 118 and the second end 120 of adjacent frames 108 to form a secure connection between the frames 108.
(52) A Step 222 includes traversing the series of frames 108 through the channel 106. The frames 106, which now hold diodes 132a-b and central conductive member 136 traverse through the channels 106 of individual blocks 104a-b and align with a respective block. The series of frames 106 may be extended at any time by connecting additional frames 106 to the terminus.
(53) In some embodiments, a Step 224 may include transmitting an electrical current through the central conductive member 136 and the diodes 132a-b. The panel comprises at least one power source. The at least one power source may include a socket, a power cable, a condenser, a resistor, and other electrical components that regulate and carry the electrical current to and from the central conductive member 136 and diodes 132a-b. The power source is disposed to align along the length of the detachable gate.
(54) A final Step 226 comprises illuminating at least one of the blocks 104a-b by transmitting light from the series of diodes 132a-b through transparent surfaces of the mini tube 134a-b and the frame 108. The decorative effect on the panel may be perpetually regenerated by interchanging diodes 132a-b from within individual blocks 104a-b, without having to move the block. The panel may rest on a panel base for stability. Additionally, the decorative panel may be employed in a variety of applications, including advertising signage and public events.
(55) In another embodiment of the present invention, some of the blocks may be made of wood, concrete or other materials that will allow the builder to highlight designs aspects of the panels constructed.
(56) While the inventor's above description contains many specificities, these should not be construed as limitations on the scope, but rather as an exemplification of several preferred embodiments thereof. Many other variations are possible. For example, the channel 106 and the frame 108 may take a cubicle shape, so as to provide a different diffusion of light from inside the blocks 104a-b. Accordingly, the scope should be determined not by the embodiments illustrated, but by the appended claims and their legal equivalents.