MULTIFOCAL LENS, MOLD FOR MANUFACTURING THE SAME AND OPTICAL MACHINE STRUCTURE
20220365252 · 2022-11-17
Inventors
- Hui-Hsuan Chen (Hsin-Chu County, TW)
- Yen-Hung WANG (Hsin-Chu County, TW)
- Wen-Yen SU (Hsin-Chu County, TW)
Cpc classification
B29D11/00028
PERFORMING OPERATIONS; TRANSPORTING
G06F3/0317
PHYSICS
International classification
B29D11/00
PERFORMING OPERATIONS; TRANSPORTING
G06F3/03
PHYSICS
Abstract
There is provided a lens including a first curved surface and a second curved surface. The first curved surface and the second curved surface have different focal distances and are arranged interlacedly along a radial direction of the lens.
Claims
1. A lens, comprising: a light incident surface; a first curved surface, having a first focal distance; and a second curved surface, having a second focal distance, wherein the first curved surface and the second curved surface are interlacedly arranged along a radial direction of the lens on the light incident surface.
2. The lens as claimed in claim 1, wherein the first curved surface comprising at least two first curved rings, and the second curved surface comprising at least two second curved rings.
3. The lens as claimed in claim 1, wherein a first focal point of the first focal distance and a second focal point of the second focal point are at a same optical axis of the lens.
4. The lens as claimed in claim 1, wherein a first depth of focus (DOF) of the first curved surface is between 2 mm and 5 mm, and a second DOF of the second curved surface is between 5 mm and 10 mm.
5. The lens as claimed in claim 1, wherein a first curvature of the first curved surface and a second curvature of the second curved surface are arranged as three times of a first circle of least confusion generated by the first curved surface being aligned with three times of a second circle of least confusion generated by the second curved surface.
6. The lens as claimed in claim 1, wherein a first DOF of the first curved surface and a second DOF of the second curved surface are partially overlapped in an optical axis direction of the lens.
7. The lens as claimed in claim 1, wherein the first focal distance and the second focal distance are focal distances corresponding to an identical light color.
8. The lens as claimed in claim 1, wherein the lens further comprises a light-out surface corresponding to the light incident surface, and the light-out surface is a plane surface.
9. The lens as claimed in claim 1, wherein a center of the light incident surface is arranged with the first curved surface, and the second curved surface surrounds the first curved surface located at the center of the light incident surface, or the center of the light incident surface is arranged with the second curved surface, and the first curved surface surrounds the second curved surface located at the center of the light incident surface.
10. A mold for manufacturing the lens as claimed in claim 1, the mold comprising: an inner surface, comprising a first mold surface and a second mold surface respectively configured to shape the first curved surface and the second curved surface of the lens; and a side wall, extended out from an edge of the inner surface.
11. The mold as claimed in claim 10, wherein the first mold surface comprises at least two first ring structures having a first curvature, and the second mold surface comprises at least two second ring structures having a second curvature, which is different from the first curvature.
12. The mold as claimed in claim 11, wherein the at least two first ring structures are at a first spherical surface and the at least two second ring structures are at a second spherical surface, and the first spherical surface and the second spherical surface have different radii.
13. The mold as claimed in claim 10, wherein a center of the inner surface is arranged with the first mold surface, and the second mold surface surrounds the first mold surface located at the center of the inner surface, or the center of the inner surface is arranged with the second mold surface, and the first mold surface surrounds the second mold surface located at the center of the inner surface.
14. An optical machine structure, comprising: a light source, configured to project light toward a working surface to generate reflected light; a multifocal lens, comprising: a first curved surface, having a first focal distance; and a second curved surface, having a second focal distance, wherein the first curved surface and the second curved surface are interlacedly arranged along a radial direction of the multifocal lens on a light incident surface; and an optical sensor, configured to receive the reflected light via the multifocal lens.
15. The optical machine structure as claimed in claim 14, further comprising a transparent member, and the transparent member comprising: a first lens structure, arranged upon the light source and having a first optical axis; and a second lens structure, arranged upon the optical sensor and having a second optical axis, wherein the light source and the optical sensor are arranged along a first direction, the first optical axis is deviated from a first center line of the light source in the first direction toward the optical sensor, and the second optical axis is deviated from a second center line of the optical sensor in the first direction toward the light source.
16. The optical machine structure as claimed in claim 15, wherein the multifocal lens is aligned with the second lens structure, and the multifocal lens and the second lens structure are integrated on the transparent member.
17. The optical machine structure as claimed in claim 14, further comprising a light blocking member, and the light blocking member comprising: a first accommodation space, configured to accommodate the light source; a second accommodation space, configured to accommodate the optical sensor; and a light blocking wall, extended form the light blocking member between the first accommodation space and the second accommodation space.
18. The optical machine structure as claimed in claim 14, wherein the first curved surface comprises at least two first curved rings, and the second curved surface comprises at least two second curved rings.
19. The optical machine structure as claimed in claim 14, wherein a first focal point of the first focal distance and a second focal point of the second focal point are at a same optical axis of the multifocal lens.
20. The optical machine structure as claimed in claim 14, wherein a first DOF of the first curved surface and a second DOF of the second curved surface are partially overlapped in an optical axis direction of the multifocal lens, and the light source is further configured to change a wavelength of the light to change distances of the first DOF and the second DOF from the multifocal lens.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Other objects, advantages, and novel features of the present disclosure will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
[0013]
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DETAILED DESCRIPTION OF THE EMBODIMENT
[0022] It should be noted that, wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts.
[0023] One objective of the present disclosure is to provide a lens having multiple focal distances and having an increased operable DOF to be adapted to an application operating at short object distances, e.g., an optical mouse and optical eradicator, but not limited to. Thus, optical devices adopting the multifocal lens of the present disclosure can have a longer working distance. The present disclosure further provides a mold for manufacturing a multifocal lens.
[0024] Please refer to
[0025] In one aspect, the first curved surface 101 is located at a first spherical surface and the second curved surface 103 is located at a second spherical surface, as shown in
[0026] The first curved surface 101 has a first focal distance (e.g., distance to f1 as shown in
[0027] To allow both the near-field light and far-field light to be converged at the focal points f1 and f2, the first curved surface 100 includes at least two first curved rings, e.g.,
[0028] It should be mentioned that although
[0029] In one aspect, the lens 100 of the present disclosure is made of plastic or glass material, and made by injection molding.
[0030] Please refer to
[0031] Because the inner surface 300S is used to form the light incident surface 100S of the lens 100, the inner surface 300S includes a first mold surface 301 and a second mold surface 303 respectively for shaping and forming the first curved surface 101 and the second curved surface 103 of the lens 100.
[0032] Corresponding to the light incident surface 100S of the lens 100, the first mold surface 301 includes at least two first ring structures having a first curvature, e.g.,
[0033] It should be mentioned that although
[0034] Corresponding to the light incident surface 100S of the lens 100, said at least two first ring structures are at a first spherical surface, and said at least two second ring structures are at a second spherical surface, wherein the first spherical surface and the second spherical surface have different radii.
[0035] Please refer to
[0036] As shown in
[0037] In another aspect, three times of the first circle of least confusion CC1 is arranged to be between a range of DOF2, and three times of the second circle of least confusion CC2 is arranged to be between a range of DOF1. Although under this configuration a ghost image appears in the image captured by the optical sensor, said ghost image will not cause an optical tracking device to fail as long as a processor (e.g., 75 shown in
[0038] It should be mentioned that although
[0039] Please refer to
[0040] The light source 61 is, for example, a light emitting diode or a laser diode without particular limitations. The light source 61 is used to project light EL toward a working surface (e.g., shown as WS in
[0041] When the light source 61 is a monochromatic light source, a first depth of field DOF1 and a second depth of field DOF2 are formed as shown in
[0042] It should be mentioned that although
[0043] In this aspect, DOF1 and DOF1′ are depth of fields of the first curved surface 101 corresponding to different light wavelengths, and DOF2 and DOF2′ are depth of fields of the second curved surface 103 corresponding to different light wavelengths.
[0044] The multifocal lens 100 of the present disclosure is applicable to optical tracking devices requiring different working distances. For example,
[0045] The optical sensor 63 is, for example, a CMOS image sensor or a CCD image sensor without particular limitations. The optical sensor 63 receives the reflected light RL via a multifocal lens (i.e. lens 100).
[0046] Please refer to
[0047] The transparent member 65 is formed by transparent material (e.g., manufactured by injection molding, but not limited to), and includes a first lens structure 651 and a second lens structure 653. The first lens structure 651 is arranged upon the light source 61 and has a first optical axis OAX1. The second lens structure 653 is arranged upon the optical sensor 63 and has a second optical axis OAX2. In one aspect, the light source 61 and the optical sensor 63 are arranged in a first direction (e.g., left-right direction in
[0048] In one aspect, the multifocal lens 100 is aligned with the second lens structure 653, and the multifocal lens 100 and the second lens structure 653 are integrated on the transparent member 65.
[0049] Please refer to
[0050] The substrate 89 is, for example, a printed circuit board or a flexible board. The carriage member 87 is formed by opaque material (e.g., manufactured by injection molding, but not limited to) and arranged on (e.g., by glue or fixed member) the substrate 89. The carriage member 87 has accommodation spaces to respectively accommodate the light source 81 and the optical sensor 83, which are respectively identical to the light source 61 and the optical sensor 63 in
[0051] Although
[0052] The carriage member 87 further has a carriage space for accommodating and fixing the lens 100. Because the optical eradicator is operated by a user at different working distances, the tracking performance is improved by using the lens 100 of the present disclosure.
[0053] It should be mentioned that the lens 100 of the present disclosure is not limited to be applied to an optical mouse and optical eradicator. Any optical device that requires different working distances during operation improves the working efficiency by adopting the lens 100 of the present disclosure.
[0054] It should be mentioned that although the lens 100 in the above embodiments is described in the way having two different curved surfaces, the present disclosure is not limited thereto. The multifocal lens of the present disclosure is possible to be formed by more than two curved surfaces and have more than two focal points.
[0055] It should be mentioned that values, including DOFs and a number of curved rings, as well as spatial relationship between elements mentioned in the present disclosure are only intended to illustrate but not to limit the present disclosure.
[0056] As mentioned above, the conventional lens has an issue of short DOF while being operated at short working distances to possibly degrade the operation accuracy. Meanwhile, the current EDOF lens does not mean a lens itself has the ability to increase DOF of incident light of the same color. Accordingly, the present disclosure further provides a multifocal lens having increased DOF to light of the same color (e.g.,
[0057] Although the disclosure has been explained in relation to its preferred embodiment, it is not used to limit the disclosure. It is to be understood that many other possible modifications and variations can be made by those skilled in the art without departing from the spirit and scope of the disclosure as hereinafter claimed.