IP Library Granted Patent US 10,962,700
Granted Patent B1
US 10,962,700 · App. 16/822,212 · Granted Mar 30, 2021

Field-reconfigurable luminaire

Inventor: Kurt S. Wilcox (Libertyville, IL)
Assignee: IDEAL INDUSTRIES LIGHTING LLC
G02B6/0026F21S10/005F21S10/02F21V9/32F21V29/75F21V29/763F21Y2105/10F21Y2115/10
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Quick Facts
Patent No.
US 10,962,700
App. No.
16/822,212
Granted
Mar 30, 2021
Kind
B1
Abstract

A luminaire that includes a light emitting diode (LED) array configured to produce light in a first direction along a propagation path. An optical waveguide is spaced apart from the LED array by a gap and with the optical waveguide and the gap disposed along the propagation path. The optical waveguide is configured to receive the light along the propagation path at the first waveguide surface and transmit the light away from the luminaire at the second waveguide surface. A housing is mounted to the LED array and the optical waveguide and includes a slot directly adjacent to the gap.

Claims (35)

1. A luminaire comprising:

a light emitting diode (LED) array configured to produce light in a first direction along a propagation path;

an optical waveguide spaced apart from the LED array by a gap and comprising first and second waveguide surfaces, wherein the optical waveguide and the gap are disposed along the propagation path and the optical waveguide is configured to receive the light along the propagation path at the first waveguide surface and transfer the light away from the luminaire at the second waveguide surface; and

a housing mounted to the LED array and the optical waveguide, the housing comprising a slot directly adjacent to the gap.

2. The luminaire of claim 1 , further comprising a light adaptation module engaged with the slot and comprising an optically transmissive body that extends into the propagation path, the body configured to change a color temperature of the light that is emitted from the LED array.

3. The luminaire of claim 2 , wherein the optically transmissive body comprises a first surface facing the LED array and an opposing second surface facing the optical waveguide, wherein the optically transmissive body transfers light incident on the first surface to the second surface, and the second surface emits the light toward the optical waveguide.

4. The luminaire of claim 3 , wherein the optically transmissive body comprises a phosphor coating such that a color temperature of the light emitted from the second surface is different from a color temperature of the light incident on the first surface.

5. The luminaire of claim 2 , wherein the light adaptation module further comprises a flange connected to the optically transmissive body, the flange sized to engage with the housing and position the optically transmissive body across the propagation path.

6. The luminaire of claim 5 , wherein the flange seals the slot when engaged with the housing.

7. The luminaire of claim 2 , wherein the light adaptation module is a first light adaptation module configured to change the color temperature of the light emitted from the LED array a first amount and further comprising a second light adaptation module configured to change the color temperature of the light from the LED array a different second amount.

8. The luminaire of claim 7 , wherein each of the first light adaptation module and the second light adaptation module are configured to fit within the slot and extend across the propagation path.

9. The luminaire of claim 2 , wherein the light adaptation module is a first light adaptation module and the slot is a first slot, the luminaire further comprising:

a second light adaptation module;

a second slot directly adjacent the gap and spaced away from the first slot;

wherein the second light adaptation module is engaged with the second slight and comprises a second optically transmissive body that extends into the propagation path.

10. A luminaire comprising:

a housing comprising an interior cavity and a slot that extends into the interior cavity;

a light emitting diode (LED) array mounted to the housing within the interior cavity and configured to produce light along a propagation path that extends within the interior cavity;

an optical waveguide mounted to the housing, the optical waveguide positioned along the propagation path to receive the light from the LED array and transfer the light outward from the luminaire; and

a gap positioned within the interior cavity along the propagation path and between the LED array and the optical waveguide;

the slot in the housing is aligned with the gap.

11. The luminaire of claim 10 , further comprising a light adaptation module comprising an optically transmissive body configured to change a color temperature of the light emitted by the LED array, the light adaptation module configured to engage with the housing with the body extending into the slot and into the propagation path.

12. The luminaire of claim 11 , wherein the light adaptation module further comprising a flange mounted to an end of the body, the flange being larger than the slot to extend over the slot when the body is positioned in the slot and into the propagation path.

13. The luminaire of claim 11 , wherein the body of the light adaptation module comprises a phosphor coating configured to change the color temperature of the light emitted by the LED array.

14. A method of using the luminaire of claim 2 , the method comprising:

positioning the light adaptation module into the housing and between the light emitting diode (LED) array and the optical waveguide;

operating the luminaire in a first operating mode by transferring the light from the LED array to the optical waveguide via the light adaptation module disposed in the gap between the LED array and the optical waveguide;

removing the light adaptation module from the housing; and

operating the luminaire in a second operating mode with the light adaptation module removed by transferring light from the LED array to the optical waveguide via the gap without transferring the light through the light adaptation module.

15. The method of claim 14 , further comprising switching from the first operating mode to the second operating mode.

16. The method of claim 15 , further comprising modifying the color temperature of the light as the light transfers via the light adaptation module.

17. The method of claim 14 , further comprising switching from the second operating mode to the first operating mode.

18. The method of claim 14 , further comprising retaining the light adaptation module within the housing of the luminaire in the first operating mode.

19. The method of claim 18 , further comprising positioning the light adaptation module through the slot in the housing in the first operating mode.

20. The method of claim 14 , wherein the light adaptation module is a first light adaptation module and further comprising positioning a second light adaptation module into the housing between the LED array and the optical waveguide and operating the luminaire in a third operating mode by transferring the light from the LED array to the optical waveguide via both the first and second light adaptation modules.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 22, 2026
From: LUMEN ACQUISITION HOLDINGS, LLC
To: LED-IP MANAGEMENT, LLC
Reel/Frame 075624/0358 →
SECURITY INTEREST Recorded Sep 13, 2023
From: IDEAL INDUSTRIES LIGHTING LLC
To: FGI WORLDWIDE LLC
Reel/Frame 064897/0413 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 18, 2020
From: WILCOX, KURT S.
To: IDEAL INDUSTRIES LIGHTING LLC
Reel/Frame 052149/0129 →