3D PRINTER ASSEMBLY AND ILLUMINATION MODULE THEREOF
20230191700 ยท 2023-06-22
Assignee
Inventors
Cpc classification
F21V5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/00
PERFORMING OPERATIONS; TRANSPORTING
G02B19/0028
PHYSICS
F21V7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
F21V13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An illumination module includes a light emitting unit, an optical lens with positive refractive power, and a concave mirror. At least one of an object-side surface and an image-side surface of the optical lens is a free-form surface, and the light emitting unit is provided at an object side of the optical lens. The concave mirror is provided at an image side of the optical lens, and the concave mirror acts as an optical path folding element. Light emitted by the light emitting unit passes through the optical lens and is reflected by the concave mirror to be a parallel light ray.
Claims
1. An illumination module, comprising: a light emitting unit; an optical lens with positive refractive power, wherein at least one of an object-side surface and an image-side surface of the optical lens is a free-form surface, and the light emitting unit is provided at an object side of the optical lens; and a concave mirror provided at an image side of the optical lens, wherein the concave mirror acts as an optical path folding element, and light emitted by the light emitting unit passes through the optical lens and is reflected by the concave mirror to be a parallel light ray.
2. The illumination module according to claim 1, wherein a focal length of the optical lens is from 10 mm to 20 mm, and a focal length of the concave mirror is from 60 mm to 100 mm.
3. The illumination module according to claim 1, wherein a numerical aperture of the optical lens is from 60 mm to 100 mm.
4. The illumination module according to claim 1, wherein a curvature radius of a mirror surface of the concave mirror in a paraxial region thereof is from 300 mm to 450 mm.
5. The illumination module according to claim 1, wherein the image-side surface of the optical lens is a free-form surface.
6. The illumination module according to claim 5, wherein the image-side surface of the optical lens comprises a convex shape in a paraxial region thereof.
7. The illumination module according to claim 1, wherein an air gap in a paraxial region between a light emitting surface of the light emitting unit and the object-side surface of the optical lens is from 10 mm to 30 mm, and an air gap in a paraxial region between the image-side surface of the optical lens and a mirror surface of the concave mirror is from 150 mm to 250 mm.
8. An assembly for 3D printer, comprising: the illumination module according to claim 1; a monochrome LCD photomask provided to correspond with the concave mirror of the illumination module, and a mirror surface of the concave mirror faces toward the monochrome LCD photomask; and a photosensitive material container provided adjacent to the monochrome LCD photomask, and the monochrome LCD photomask is provided between the concave mirror and the photosensitive material container.
9. The assembly for 3D printer according to claim 8, further comprising a carrier frame, wherein the monochrome LCD photomask and the illumination module are fixed to the carrier frame, the monochrome LCD photomask is provided above the concave mirror, and the concave mirror of the illumination module is inclined with respect to the monochrome LCD photomask.
10. The assembly for 3D printer according to claim 8, further comprising a fool-proof structure provided to correspond with the optical lens of the illumination module.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
[0010]
[0011]
[0012]
[0013]
DETAILED DESCRIPTION
[0014] In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawings.
[0015] Please refer to
[0016] The monochrome LCD photomask 20, for example but not limited to, is a monochrome LCD screen without any sub-pixel. A printed layer can be patterned by controlling the position and size of a light transmission region on the monochrome LCD photomask 20, and one or more printed layers are continuously patterned and stacked in order to form a 3D printed product. The monochrome LCD photomask 20 without sub-pixel can provide high light transmittance, such that the illumination module 40 does not need to have high power, and thus the assembly 1 for 3D printer does not need to be equipped with fins, fans, heat pipes and other cooling elements in large size, which is favorable for miniaturization of a 3D printer.
[0017] The container 30 is configured to accommodate aqueous photosensitive material. Specifically, the container 30 may include a supporting bottom portion 310 and an open top portion 320. The aqueous photosensitive material can be poured into the container 30 through the open top portion 320 and supported on the supporting bottom portion 310. A light beam within specific wavelength range may be transmitted through the monochrome LCD photomask 20 having determined pattern and travel into the container 30 to cross-link the aqueous photosensitive material. A platform (not shown in the drawings) may be continuously or intermittently moved downward to touch the photosensitive material, such that the cured photosensitive material can be attached to the platform and continuously stacked layer by layer and eventually a 3D printed product is fabricated on the platform.
[0018] The illumination module 40 may include a light emitting unit 410, an optical lens 420 and a concave mirror 430. The monochrome LCD photomask 20 may be disposed to correspond with the concave mirror 430 of the illumination module 40, and a mirror surface 431 of the concave mirror 430 may face toward the monochrome LCD photomask 20. In detail, the monochrome LCD photomask 20 may be disposed between the concave mirror 430 and the container 30, and the monochrome LCD photomask 20 may be located above the concave mirror 430. The concave mirror 430 may be inclined with respect to the monochrome LCD photomask 20.
[0019] The light emitting unit 410 may include a light source 411, a circuit board 412 and a heat sink fins 413. The number of the light source 411 may be one or more, and
[0020] The optical lens 420 may be disposed between the light emitting unit 410 and the concave mirror 430; that is, the light emitting unit 410 may be disposed at the object side surface of the optical lens 420. The optical lens 420 with positive refractive has the object-side surface 421 and the image-side surface 422 opposite to each other. Please refer to
[0021] Also, as shown in
[0022] The concave mirror 430 may be disposed at the image side of the optical lens 420 and act as an optical path folding element.
[0023] In this embodiment, a focal length of the optical lens 420 may be from 10 millimeters (mm) to 20 mm, and a focal length of the concave mirror 430 may be from 60 mm to 100 mm. A numerical aperture of the optical lens 420 may be from 60 mm to 100 mm. A curvature radius of the mirror surface 431 of the concave mirror 430 in a paraxial region thereof is from 300 mm to 450 mm. The paraxial convex shape 422a of the image-side surface 422 of the optical lens 420 may be from 25 mm to 300 mm. An air gap in a paraxial region between a light emitting surface 411a of the light emitting unit 411 and the object-side surface 421 of the optical lens 420 may be from 10 mm to 30 mm, and an air gap in a paraxial region between the image-side surface 422 of the optical lens 420 and the mirror surface 431 of the concave mirror 430 may be from 150 mm to 250 mm.
[0024] The optical lens 420 provides an initial design of optical path configuration. In detail, light emitted by the light source 411 of the light emitting unit 410 is converged into a light beam by the optical lens 420, and then the light beam is projected onto the mirror surface 431 of the concave mirror 430.
[0025] As to a conventional large-scaled 3D printer (e.g., the monochrome LCD photomask has a significantly larger size than the effective area of the optical lens), in order to cover the full beam range of the monochrome LCD pattern masks, the correction of light rays at off-axis region cannot cause strong convergence of light, such that the off-axial light rays may not become parallel light rays after passing through the optical lens.
[0026] In addition, as to a conventional small-scaled 3D printer (e.g., portable/detachable 3D printer or 3D printer desktop), the distance between the optical lens and the light emitting unit is overly short (maybe only a few centimeters) due to size limitation, and a lens with strong refractive power is required for light convergence, while the correction of off-axial light rays by a lens with strong refractive power cannot meet the requirement of high imaging quality. Accordingly, among the above cases, it is difficult to satisfy actual requirements by using only single lens, single lens assembly or single lens array for the correction of light rays
[0027] Referring to
[0028] According to the present disclosure, the concave mirror which acts as an optical path folding element facilitates the miniaturization of 3D printer. As to the light beam passing through the optical lens, the secondary correction provided by the concave mirror can cause the off-axial light rays to be parallel light rays, which is helpful to improve the quality of parallel light.
[0029] It will be apparent to those skilled in the art that various modifications and variations can be made to the present disclosure. It is intended that the specification and examples be considered as exemplary embodiments only, with a scope of the disclosure being indicated by the following claims and their equivalents.