PROCESS AND MOLD FOR FABRICATING AN OPTICAL DEVICE, AND AN OPTICAL DEVICE
20170246767 · 2017-08-31
Inventors
Cpc classification
B29C45/372
PERFORMING OPERATIONS; TRANSPORTING
B29C45/17
PERFORMING OPERATIONS; TRANSPORTING
B29K2083/005
PERFORMING OPERATIONS; TRANSPORTING
B29L2011/0075
PERFORMING OPERATIONS; TRANSPORTING
B29C33/442
PERFORMING OPERATIONS; TRANSPORTING
B29L2011/00
PERFORMING OPERATIONS; TRANSPORTING
B29C33/56
PERFORMING OPERATIONS; TRANSPORTING
B29C33/005
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C33/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A process for fabricating an optical device includes injecting (301) optical silicone into a mold cavity formed by two or more mutually matching mold-elements, curing (302) the optical silicone contained by the mold cavity, and separating (303) the mold-elements from the optical device constituted by the optical silicone. The reversible elasticity of the optical silicone after the curing phase is utilized in the process so that at least one of the mold-elements has counterdraft which causes a reversible deformation in the optical device when the mold-element is separated from the optical device. As the counterdraft is allowable, the shape of the optical device as well as the dividing joints between the mold-elements can be designed more freely. For example, walls of the mold cavity corresponding to optically active surfaces of the optical device can be arranged to be free from dividing joints between the mold-elements.
Claims
1-14. (canceled)
15. A process for fabricating an optical device comprising optically active surfaces for modifying light distribution, the process comprising: injecting optical silicone in fluidic state into a mold cavity formed by two or more mutually matching mold-elements, curing the optical silicone contained by the mold cavity, the optical silicone being reversibly elastic after the curing, and separating the mold-elements from the optical device constituted by the optical silicone, wherein at least one of the mold-elements has counterdraft causing a reversible deformation of the optical device when the at least one of the mold-elements is separated from the optical device.
16. A process according to claim 15, wherein the mold-elements form the mold cavity so that walls of the mold cavity corresponding to the optically active surfaces of the optical device are free from dividing joints between the mold-elements.
17. A process according to claim 15, wherein the mold cavity is rotationally symmetric, and the mold-elements forming the mold cavity consist of a first mold-element that is separated from the optical device in a first direction parallel with an axis of rotational symmetry of the mold cavity and a second mold-element that is separated from the optical device in a second direction opposite to the first direction.
18. A process according claim 15, wherein one of the mold-elements comprises a cantilever protruding towards the mold cavity and forming a corresponding cavity on the optical device, at least a part of the cantilever being shaped to have counterdraft causing the reversible deformation of the optical device when the mold-element under consideration is separated from the optical device.
19. A process according to claim 15, wherein one of the mold-elements is shaped to form a portion of the mold cavity so that the portion of the mold cavity has counterdraft by tapering in a direction opposite to a direction in which the mold-element under consideration is separated from the optical device.
20. A process according to claim 15, wherein the process further comprises post-curing (304) the optical device with heat treatment after the mold-elements have been separated from the optical device.
21. A mold for fabricating an optical device comprising optically active surfaces for modifying light distribution, the mold comprising two of more mutually matching mold-elements for forming a mold cavity for receiving material of the optical device, wherein at least one of the mold-elements has counterdraft causing a reversible deformation of the optical device when the at least one of the mold-elements is separated from the optical device.
22. A mold according to claim 21, wherein the mold-elements are adapted to form the mold cavity so that walls of the mold cavity corresponding to the optically active surfaces of the optical device are free from dividing joints between the mold-elements.
23. A mold according to claim 21, wherein the mold cavity is rotationally symmetric, and the mold-elements for forming the mold cavity consist of a first mold-element that is separable from the optical device in a first direction parallel with an axis of rotational symmetry of the mold cavity and a second mold-element that is separable from the optical device in a second direction opposite to the first direction.
24. A mold according to claim 21, wherein one of the mold-elements comprises a cantilever protruding towards the mold cavity and forming a corresponding cavity on the optical device, at least a part of the cantilever being shaped to have counterdraft causing the reversible deformation of the optical device when the mold-element under consideration is separated from the optical device.
25. A mold according to claim 21, wherein one of the mold-elements is shaped to form a portion of the mold cavity so that the portion of the mold cavity has counterdraft by tapering in a direction opposite to a direction in which the mold-element under consideration is separated from the optical device.
26. An optical device obtainable by a process comprising: injecting optical silicone in fluidic state into a mold cavity formed by two or more mutually matching mold-elements, curing the optical silicone contained by the mold cavity, the optical silicone being reversibly elastic after the curing, and separating the mold-elements from the optical device constituted by the optical silicone, wherein at least one of the mold-elements has counterdraft causing a reversible deformation of the optical device when the at least one of the mold-elements is separated from the optical device.
27. An optical device according to claim 26, wherein optically active surfaces of the optical device are free from traces of dividing joints between the mold-elements.
28. An illuminator system comprising: at least one optical device for modifying distribution of light, and at least one light source installed to the at least one optical device and adapted to produce the light wherein the optical device is obtainable by a process comprising: injecting optical silicone in fluidic state into a mold cavity formed by two or more mutually matching mold-elements, curing the optical silicone contained by the mold cavity, the optical silicone being reversibly elastic after the curing, and separating the mold-elements from the optical device constituted by the optical silicone, wherein at least one of the mold-elements has counterdraft causing a reversible deformation of the optical device when the at least one of the mold-elements is separated from the optical device.
29. A process according to claim 16, wherein the mold cavity is rotationally symmetric, and the mold-elements forming the mold cavity consist of a first mold-element that is separated from the optical device in a first direction parallel with an axis of rotational symmetry of the mold cavity and a second mold-element that is separated from the optical device in a second direction opposite to the first direction.
30. A process according claim 16, wherein one of the mold-elements comprises a cantilever protruding towards the mold cavity and forming a corresponding cavity on the optical device, at least a part of the cantilever being shaped to have counterdraft causing the reversible deformation of the optical device when the mold-element under consideration is separated from the optical device.
31. A process according to claim 16, wherein one of the mold-elements is shaped to form a portion of the mold cavity so that the portion of the mold cavity has counterdraft by tapering in a direction opposite to a direction in which the mold-element under consideration is separated from the optical device.
32. A mold according to claim 22, wherein the mold cavity is rotationally symmetric, and the mold-elements for forming the mold cavity consist of a first mold-element that is separable from the optical device in a first direction parallel with an axis of rotational symmetry of the mold cavity and a second mold-element that is separable from the optical device in a second direction opposite to the first direction.
33. A mold according to claim 22, wherein one of the mold-elements comprises a cantilever protruding towards the mold cavity and forming a corresponding cavity on the optical device, at least a part of the cantilever being shaped to have counterdraft causing the reversible deformation of the optical device when the mold-element under consideration is separated from the optical device.
34. A mold according to claim 22, wherein one of the mold-elements is shaped to form a portion of the mold cavity so that the portion of the mold cavity has counterdraft by tapering in a direction opposite to a direction in which the mold-element under consideration is separated from the optical device.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0020] Exemplifying and non-limiting embodiments of the invention and their advantages are explained in greater detail below with reference to the accompanying drawings, in which:
[0021]
[0022]
[0023]
[0024]
[0025]
DESCRIPTION OF EXEMPLIFYING EMBODIMENTS
[0026]
[0027] In the exemplifying case illustrated in
[0028] In the exemplifying case illustrated in
[0029] The optical device 201 and correspondingly the mold cavity can be, for example but necessarily, rotationally symmetric. In this case, the mold elements 202 and 203 are separable from the optical device in directions parallel with the axis 211 of the rotational symmetry. The axis of the rotational symmetry is parallel with the z-axis of the coordinate system 299. For another example, the optical device 201 and correspondingly the mold cavity can be elongated in the direction parallel with the x-axis of the coordinate system 299.
[0030]
[0034] The optical silicone can be for example optical grade liquid silicone rubber “LSR”. Commercially available examples of the optical grade LSR are: Momentive® LSR7070 supplied by Momentive Performance Materials Inc., and DOW CORNING® MS-1001, MS-1002, and MS-1003 supplied by Dow Corning Corporation. MS-1001 is the stiffest one and MS-1003 is the softest one from among the optical grade LSRs MS-1001, MS-1002, and MS-1003.
[0035] The temperature of the mold cavity can be for example on the range from 115° C. to 170° C. when the optical silicone is injected into the mold cavity, and the injection pressure can be for example on the range from 3 MPa to 13 MPa. The injection can be carried out for example so that the optical silicone is injected to the mold cavity through a channel located at the bottom of the mold cavity and air, and/or other gases, is/are allowed to exit the mold cavity through a vent located at the top of the mold cavity. The pressure is advantageously maintained to prevent the optical silicone from leaking out from the mold cavity when the optical silicone is still in the fluidic state at the beginning phase of the curing.
[0036] A process according to an exemplifying and non-limiting embodiment of the invention further comprises post-curing the optical device with heat treatment after the mold-elements have been separated from the optical device. The post-curing is an action 304 in
[0037] In a process according to an exemplifying and non-limiting embodiment of the invention, the mold-elements form the mold cavity so that walls of the mold cavity corresponding to the optically active surfaces of the optical device are free from dividing joints between the mold-elements.
[0038] In a process according to an exemplifying and non-limiting embodiment of the invention, the mold cavity is rotationally symmetric and the mold-elements forming the mold cavity consist of a first mold-element that is separated from the optical device in a first direction parallel with the axis of the rotational symmetry and a second mold-element that is separated from the optical device in a second direction opposite to the first direction.
[0039] In a process according to an exemplifying and non-limiting embodiment of the invention, one of the mold-elements comprises a cantilever protruding towards the mold cavity and forming a corresponding cavity on the optical device. At least a part of the cantilever is shaped to have counterdraft causing the reversible deformation in the optical device when the mold-element under consideration is separated from the optical device.
[0040] In a process according to an exemplifying and non-limiting embodiment of the invention, one of the mold-elements is shaped to form a portion of the mold cavity so that the portion of the mold cavity has counterdraft by tapering in a direction opposite to a direction in which the mold-element under consideration is separated from the optical device.
[0041]
[0042] The specific examples provided in the description given above should not be construed as limiting the scope and/or the applicability of the appended claims.