METHOD FOR MANUFACTURING AN OPTICAL ELEMENT
20170057134 ยท 2017-03-02
Inventors
Cpc classification
F21V3/049
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B29C45/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
In a method for manufacturing an optical element disclosed by the present invention, at least one atomized surface forming member corresponding to an atomized surface of the optical element is provided in an injection mold for molding the optical element. Through loading surface 3D parameters of the atomized surface forming member as well as laser pattern processing parameters, the method forms a rough surface having uniform roughness at a non-planar part of at least one curved or arched plane. Thus, an atomized surface may be disposed at a non-planar part of a curved or arched plane of the optical element, and a uniform atomization level may be achieved at the entire atomized surface. The method allows the optical element to produce preferred optical performance and effects, facilitates reducing material costs of the optical element, and promotes maintaining the expected mechanical structural strength of the optical element.
Claims
1. A method for manufacturing an optical element, for manufacturing an optical element having at least one atomized surface, the method comprising steps of: a) providing an injection mold for molding the optical element, the injection mold comprising at least one atomized surface forming member corresponding to the atomized surface of the optical element; b) loading three-dimensional (3D) parameters of the at least one atomized surface forming member into a 3D laser processing equipment, and fixing the at least one atomized surface forming member onto a processing station of the 3D laser processing equipment; c) establishing laser pattern processing parameters corresponding to the atomized surface of the optical element at the 3D laser processing equipment; d) activating the 3D laser processing equipment, and the 3D laser processing equipment processing a surface of the at least one atomized surface forming member according to the loaded surface 3D parameters and laser pattern processing parameters to form a rough surface corresponding to a structure of the atomized surface of the optical element; e) installing the injection mold with all of the atomized surface forming members processed by the rough surface processing to an injection molding equipment; and f) activating the injection molding equipment according to a configured operation mode of the injection molding equipment, filling an injection molding material into the injection mold, and obtaining the optical element having at least one atomized surface after the injection molding material has hardened and set.
2. The method for manufacturing an optical element according to claim 1, further comprising: performing detections for a divergence angle and total energy of light of the manufactured optical element using a distribution curve instrument and integration machine to provide reference for whether to correct previous processing parameters.
3. The method for manufacturing an optical element according to claim 1, wherein the at least one atomized surface forming member is a mold core provided in the injection mold.
4. The method for manufacturing an optical element according to claim 1, wherein the at least one atomized surface forming member is a child provided in the injection mold.
5. The method for manufacturing an optical element according to claim 1, wherein the at least one atomized surface forming member is processed and formed by an automatic numerically controlled processing equipment, and the surface 3D parameters are selected from processing parameters of the atomized surface forming member at the automatic numerically controlled processing equipment.
6. The method for manufacturing an optical element according to claim 1, wherein the surface 3D parameters of the at least one atomized surface forming member are obtained by laser 3D scanning.
7. The method for manufacturing an optical element according to claim 1, wherein the 3D laser processing equipment is provided with a laser apparatus, and the laser apparatus comprises a plurality of reflecting mirrors.
8. The method for manufacturing an optical element according to claim 7, wherein the reflecting mirrors are freely rotatable.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0020] The present invention provides a method for manufacturing an optical element 20 having an atomized surface 21, as shown in
[0021] In step a, an injection mold 30 for molding the optical element 20 as shown in
[0022] In step b, surface three-dimensional (3D) parameters of the at least one atomized surface forming member 31 are loaded to a 3D laser processing equipment, and the at least one atomized surface forming member 31 is fixed onto a processing station of the 3D laser processing equipment. In implementation, the at least one atomized surface forming member 31 may be processed and formed by an automatic numerically controlled processing equipment, and the surface 3D parameters may be selected from processing parameters of the atomized surface forming member at the automatic numerically controlled processing equipment. Alternatively, the surface 3D parameters of the at least one atomized surface forming member may also be obtained through laser 3D scanning.
[0023] In step c, laser pattern processing parameters corresponding to the atomized surface of the optical element are established at the 3D laser processing equipment. In implementation, a plurality of laser pattern processing parameters having different formats are loaded into a database in advance for a user to select from. Alternatively, appropriate laser pattern processing parameters may be selected according to the surface 3D parameters of the atomized surface forming member 31 by the system.
[0024] In step d, the 3D laser processing equipment is activated, and the 3D laser processing equipment processes a surface of the at least one atomized surface forming member 31 according to the loaded surface 3D parameters and laser pattern processing parameters to form a rough surface 311 corresponding to the structure of the atomized surface of the optical element. More specifically, the laser processing equipment drives a plurality of reflecting mirrors L1 of a laser apparatus L to perform horizontal lateral, horizontal longitudinal and vertical processes according to the loaded surface 3D parameters. Thus, the rough surface 311 having uniform roughness is formed on a non-planar part of at least one curved or arched plane of the atomized surface forming member 31. For example but not limited to, the reflecting mirrors L1 are preferably freely rotatable reflecting mirrors.
[0025] In step e, the injection mold with all atomized surface forming members processed by the roughening surface processing is installed to an injection molding equipment. In implementation, the injection molding equipment may simultaneously mold a plurality of optical elements having the same structure.
[0026] In step f, the injection molding equipment is activated according to a configured operation mode of the injection molding equipment. As shown in
[0027] In principle, according to application requirements of an optical element, the method for manufacturing an optical element of the present invention is capable of forming the atomized surface 21 at a non-planar part of a curved or arched plane of the optical element 20, and allowing the entire atomized surface 21 to achieve a uniform atomization level. Thus, the present invention allows the optical element 20 to produce preferred optical performance and effects, facilitates reducing material costs of the optical element 20, and promotes maintaining the expected mechanical structural strength of the optical element 20.
[0028] Further, in the method for manufacturing an optical element of the present invention, after the injection molding material has hardened and set, detections for a divergence angle and total energy of light of the manufactured optical element can be performed using a distribution curve instrument and integration machine to provide reference for whether to correct previous processing parameters.
[0029] Compared to the conventional solution, through loading surface 3D parameters of an atomized surface forming member as well as laser pattern processing parameters, the method for manufacturing an optical element of the present invention forms a rough surface having uniform roughness at a non-planar part of at least one curved or arched plane. Thus, according to application requirements of the optical element, an atomized surface may be disposed at a non-planar part of a curved or arched plane of the optical element, and a uniform roughness level may be achieved at the entire atomized surface. Therefore, the present invention allows the optical element to produce preferred optical performance and effects, facilitates reducing material costs of the optical element, and promotes maintaining the expected mechanical structural strength of the optical element.
[0030] In conclusion, the present invention provides a preferred and feasible method for manufacturing an optical method as disclosed. While the invention has been described by way of example and in terms of the preferred embodiments, it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.