Silicone optics
Abstract
Silicone-containing light fixture optics. A method for manufacturing an optical component may include mixing two precursors of silicone, opening a first gate of an optic forming device, moving the silicone mixture from the extrusion machine into the optic forming device, cooling the silicone mixture as it enters the optic forming device, filling a mold within the optic forming device with the silicone mixture, closing the first gate, and heating the silicone mixture in the mold to at least partially cure the silicone. Alternatively, a method for manufacturing an optical component may include depositing a layer of heat cured silicone optical material to an optical structure, arranging one or more at least partially cured silicone optics on the layer of heat cured silicone optical material, and heating the heat cured silicone optical material to permanently adhere the one or more at least partially cured silicone optics to the optical structure.
Claims
exact text as granted — not AI-modifiedWhat is claimed is:
1 . An optical component configured to direct light emitted from a light source, the optical component comprising:
an optic shell formed of a first material and having a light-emitting region through which light passes through the optic shell, wherein the light-emitting region is of a constant thickness and comprises an underside that forms an approximately semi-spherical recess; and a customized optic formed of a second material and provided on and in intimate contact with the underside of the light-emitting region such that a portion of the customized optic at least partially fills the approximately semi-spherical recess, wherein the first material is different from the second material and wherein the second material is silicone.
2 . The optical component of claim 1 , wherein the first material comprises at least one of glass and plastic.
3 . The optical component of claim 1 , wherein the light-emitting region comprises, in cross section, a first lateral side and a second lateral side opposite the first lateral side and wherein the optic shell further comprises at least one flange extending from the light-emitting region, wherein at least one void is defined in an underside of at least one of the at least one flange and wherein another portion of the customized optic at least partially fills the at least one void to mechanically interlock the optic shell and the customized optic together.
4 . The optical component of claim 1 , wherein the at least a portion of the customized optic within the approximately semi-spherical recess of the optic shell comprises a non-constant thickness across the approximately semi-spherical recess.
5 . The optical component of claim 4 , wherein the customized optic comprises a thick to thin ratio of approximately 4:1.
6 . The optical component of claim 1 , wherein an underside of the at least a portion of the customized optic within the approximately semi-spherical recess of the optic shell defines a cavity.
7 . The optical component of claim 6 , wherein, when the optical component is positioned adjacent the light source, the cavity is interposed between the optical component and the light source such that light emitted from the light source passes through the customized optic before passing through the optic shell.
8 . The optical component of claim 6 , wherein the cavity comprises a first part and a second part, wherein the first part comprises an approximately partially spherical shape and the second part comprises an approximately partially cylindrical shape.
9 . The optical component of claim 6 , wherein the cavity is asymmetric about a centerline through the light-emitting region of the optic shell.
10 . The optical component of claim 6 , wherein, at a cross section through a center of the optical component, the cavity comprises a curved portion that meets an approximately linear portion at a maximum depth of the cavity.
11 . The optical component of claim 10 , wherein the maximum depth of the cavity is offset from a centerline of the optical component.
12 . A method of manufacturing an optical component configured to direct light emitted from a light source, the method comprising:
depositing silicone on an underside of an optic shell, the optic shell formed of a first material and having a light-emitting region through which light passes through the optic shell, wherein the light-emitting region is of a constant thickness and comprises an underside that forms an approximately semi-spherical recess; filling at least a portion of the approximately semi-spherical recess with silicone; and curing the silicone to form a customized optic, such that the customized optic is provided on and in intimate contact with the underside of the light-emitting region.
13 . The method of claim 12 , wherein depositing silicone on the underside of the optic shell comprising pouring liquid silicone onto the optic shell.
14 . The method of claim 12 , wherein the first material comprises at least one of glass and plastic.
15 . The method of claim 12 , further comprising:
at least partially filling at least one void in the optic shell with the silicone; and curing the silicone in the at least one void to mechanically interlock the optic shell and the customized optic together.
16 . The method of claim 12 , wherein curing the silicone to form a customized optic comprises forming a cavity on an underside of the customized optic.
17 . The method of claim 16 , further comprising positioning the optical component adjacent the light source such that the cavity is located adjacent to the light source such that light emitted from the light source passes through the customized optic before passing through the optic shell.
18 . The method of claim 16 , further comprising forming the cavity with a first part and a second part, wherein the first part comprises an approximately partially spherical shape and the second part comprises an approximately partially cylindrical shape.
19 . The method of claim 16 , further comprising forming the cavity asymmetrically about a centerline through the light-emitting region of the optic shell.
20 . The method of claim 16 , further comprising forming the cavity such that, for a cross section through a center of the optical component, the cavity includes curved portion that meets an approximately linear portion at a maximum depth of the cavity.
21 . The method of claim 20 , wherein the maximum depth of the cavity is offset from a centerline of the optical component.Join the waitlist — get patent alerts
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