IP Library Granted Patent US 10,101,521
Granted Patent B1
US 10,101,521 · App. 14/750,487 · Granted Oct 16, 2018

Multilayered illuminated laminate system

Inventor: James G. Burgio, Jr. (Greensboro, NC)
Assignee: Advanced Technology, Inc.
G02B6/0061F21S8/03G02B6/0043A47B2013/125F21V33/004F21W2131/30F21Y2101/02G09F2013/1804
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Quick Facts
Patent No.
US 10,101,521
App. No.
14/750,487
Granted
Oct 16, 2018
Kind
B1
Abstract

A multilayered illuminated laminate system including a light source positioned proximate to an edge of a light panel that includes a series of reflective paint in the shape of diamonds of increasing size is provided. The system further includes a diffuser sheet of sufficient opacity that it obscures the diamond pattern on the bottom surface of the light panel and a reinforced panel formed from fiberglass that bestows the system with scratch, abrasion, impact, and chemical resistance to meet or exceed current regulatory requirements. The light source is positioned within a clamp mount that contains the light panel, diffuser, and reinforced panel in frictional engagement without the need for an adhesive. A graphic can be positioned between the diffuser sheet and the reinforced panel to increase the aesthetic appearance of the system exterior surface, as well as moderate the intensity of the light it emits.

Claims (27)

1. A multilayered illuminated laminate system for engagement with a mounting substrate, the mounting substrate selected from a group consisting of wall board, medium density fiberboard, plywood, and drywall, to facilitate the illumination of an exterior surface of a bar top, countertop, back splash panel, table top, ceiling application, or modesty panel, the multilayered illuminated laminate system comprising

an acrylic light panel defining a planar top surface and an opposing planar bottom surface, the bottom surface carrying a plurality of reflective members, each of the reflective members defining the shape of a diamond with first and second sides that are each double the length of respective third and fourth sides,

a light-emitting diode (LED) light source located within a clamp mount positioning the light source proximate to, and in contact with, a lateral edge of the light panel,

a diffuser sheet with a top surface and a bottom surface, the diffuser sheet bottom surface positioned on and contacting the top surface of the light panel,

a reinforced panel with a top surface and a bottom surface, and

a graphic member with a top surface and a bottom surface, the graphic member top surface contacting the reinforced panel bottom surface and the graphic member bottom surface contacting the diffuser sheet top surface,

whereby a density of the reflective members increases along a longitudinal length of the light panel extending from the light source, the plurality of reflective members organized in multiple pairs of rows extending laterally across the light panel, each row defined by a first row and a second row, the second row laterally offset relative to the first row,

whereby light produced by the light source is reflected by the reflective members through the diffuser sheet and the graphic member and emitted out the reinforced panel,

whereby the multilayered illuminated laminate system is configured to emit light uniformly from the light panel,

whereby the acrylic light panel, diffuser sheet, and reinforced panel define the same general dimensions, and together with graphic member define a laminate without voids between respective layers of the multilayered laminate, and

whereby the clamp mount compresses the acrylic panel, the diffuser sheet, the reinforced panel, and the graphic member to increase structural stability of the multilayered illuminated laminate system, thereby allowing the multilayered illuminated laminate system to be cut onsite at an installation location or during an installation while maintaining uniform light emission across the light panel.

2. The multilayered illuminated laminate system of claim 1 whereby the density increase of the reflective members is a result of an increase in an overall perimeter of the reflective members in subsequent row pairs moving away from the light source.

3. The multilayered illuminated laminate system of claim 2 whereby the increase of the overall perimeter of each of the reflective members occurs at a rate of 1.006% relative to a row of reflective members more proximate the light source.

4. The multilayered illuminated laminate system of claim 1 whereby the reinforced panel is formed from translucent reinforced fiberglass.

5. The multilayered illuminated laminate system of claim 1 whereby the illuminated substrate system uniformly emits approximately two hundred fifty (250) lumens out of the light panel.

6. A multilayered illuminated laminate system for direct engagement with a mounting substrate, the mounting substrate selected from a group consisting of wall board, medium density fiberboard, plywood, and drywall, to facilitate the illumination of a substantially planar exterior surface of a bar top, countertop, back splash panel, table top, ceiling application, or modesty panel, the multilayered illuminated laminate system consisting of,

an acrylic rectangular light panel defining a planar top surface and an opposing planar bottom surface, the bottom surface carrying a plurality of reflective members formed with reflective paint, each of the reflective members defining the shape of a diamond with first and second sides in parallel orientation that are each double the length of respective third and fourth parallel sides, the plurality of reflective members organized in multiple pairs of rows extending laterally across the light panel, each row defined by a first row and a second row, the second row laterally offset relative to the first row,

a light-emitting diode (LED) light source located within a clamp mount positioning the light source proximate to, and in contact with, a lateral edge of the light panel,

a diffuser sheet with a top surface and a bottom surface, the diffuser sheet bottom surface positioned on and contacting the top surface of the light panel,

a reinforced panel with a top surface and a bottom surface, and

a graphic member with a top surface and a bottom surface, the graphic member top surface contacting the reinforced panel bottom surface and the graphic member bottom surface contacting the diffuser sheet top surface,

whereby the density of the reflective members increases along a longitudinal length of the light panel extending from the light source as a result of an increase in an overall perimeter of the reflective members in subsequent row pairs moving away from the light source at a rate of 1.006% relative to a row of reflective members more proximate the light source,

whereby light produced by the light source is reflected by the reflective members through the diffuser sheet and the graphic member and emitted out the reinforced panel,

whereby the multilayered illuminated laminate system is configured to emit light uniformly from the light panel,

whereby the acrylic light panel, diffuser sheet, and reinforced panel define the same general dimensions, and together with the graphic member define a laminate without voids between respective layers of the multilayered laminate, and

whereby the clamp mount compresses the acrylic panel, the diffuser sheet, the reinforced panel, and the graphic member to increase structural stability of the multilayered illuminated laminate system, thereby allowing the multilayered illuminated laminate system to be cut onsite at an installation location or during an installation while maintaining uniform light emission across the light panel.

7. The multilayered illuminated laminate system of claim 6 whereby each of the reflective members in the second row are laterally displaced relative to the reflective members of the first row by a first predetermined measurement, and whereby each of the reflective members in the second row are longitudinally displaced relative to the reflective members of the first row by a second predetermined measurement.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 25, 2015
From: BURGIO, JAMES G., JR
To: ADVANCED TECHNOLOGY, INC.
Reel/Frame 035907/0907 →
Cited By (2)
US 12,449,120 US 12,494,142