Optical unit

The integrally formed lens and holder with adhesive alignment features in the optical unit simplify assembly, reduce costs, and enhance precision and quality by containing adhesive spread.

JP2026018159APending Publication Date: 2026-02-05STANLEY ELECTRIC CO LTD
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Patent Information

Application Number
JP2024119293
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-25
Publication Date
2026-02-05

AI Technical Summary

Technical Problem

Conventional optical units require multiple assembly steps and increased manufacturing costs due to bonding a lens, holder, and light diffusing member together, necessitating centering operations.

Method used

An optical unit design where the lens and holder are integrally formed, with a light diffusing member positioned and bonded via adhesive surfaces featuring convex and concave structures for alignment and adhesive containment, reducing assembly steps and costs.

Benefits of technology

This design simplifies assembly by eliminating the need for separate bonding of the lens and holder, enhances centering precision, and prevents adhesive spread, thereby reducing manufacturing complexity and improving product quality.

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Abstract

To provide an optical unit capable of reducing man-hours and manufacturing cost in the case of including a light diffusion member.SOLUTION: The optical unit 1 includes an imaging lens 10 and a diffuser 20. In the imaging lens 10, a lens part 11 and a holder part 12 having a first bonding surface 12d and holding the lens part 11 so as to surround an outer edge part of the lens part 11 are integrally molded, and the diffuser 20 has a second bonding surface 12d bonded to the first bonding surface 20a of the holder part 12 via an adhesive.SELECTED DRAWING: Figure 7
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Description

[Technical Field]

[0001] The present invention relates to an optical unit that transmits light from a light source. [Background technology]

[0002] A conventionally known optical unit is that described in Patent Document 1. This optical unit includes a lens and a holder, and the lens is bonded to the holder via an adhesive. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent No. 4458009 Summary of the Invention [Problem to be solved by the invention]

[0004] Some optical units include a lens, a holder, and a light diffusing member such as a diffuser. When manufacturing such an optical unit, if the lens, the holder, and the light diffusing member are assembled by bonding together, as in the optical unit of Patent Document 1, it becomes necessary to perform the steps of bonding these three members together and centering the three members, which results in an increase in the number of steps and manufacturing costs.

[0005] The present invention has been made to solve the above-mentioned problems, and has an object to provide an optical unit that can reduce the number of steps and manufacturing costs when a light diffusing member is provided. [Means for solving the problem]

[0006] In order to achieve the above object, the invention of claim 1 is characterized by comprising a lens member which is integrally formed of a lens portion which transmits light from a light source and a holder portion which has a first adhesive surface positioned outside the outer edge of the lens portion and holds the lens portion around the outer edge of the lens portion, and a light diffusing member which is positioned at a distance from the lens portion in the optical axis direction of the light, has a second adhesive surface bonded to the first adhesive surface of the holder portion via an adhesive, and which diffuses the light which has passed through the lens portion.

[0007] According to this optical unit, the lens portion and the holder portion that holds it are integrally configured in the lens member, which eliminates the need to glue the lens portion and the holder portion together when manufacturing the optical unit, thereby reducing the number of steps and manufacturing costs.

[0008] In the present invention, it is preferable that the holder portion is arranged at the end of the holder portion facing the light diffusing member, and has a first opposing surface including a first adhesive surface, on which one of a first convex portion and a first concave portion is formed continuously or intermittently around the lens portion when viewed from the optical axis direction of the light, and the light diffusing member is arranged so as to face the holder portion, and has a second opposing surface including a second adhesive surface, on which the other of the first convex portion and the first concave portion is formed, and the holder portion and the light diffusing member are positioned relative to each other by the first convex portion fitting into the first concave portion.

[0009] According to this optical unit, one of a first convex portion and a first concave portion is formed continuously or intermittently around the lens portion when viewed from the optical axis direction of light on the first opposing surface of the holder portion, and the other of the first convex portion and the first concave portion is formed on the second opposing surface of the light diffusing member, and the holder portion and the light diffusing member are positioned relative to each other by fitting the first convex portion into the first concave portion. This makes it easier to perform the centering operation when centering and adhering the holder portion and the light diffusing member, improving workability.

[0010] In the present invention, the holder portion is provided at the end of the holder portion facing the light diffusing member, and has a first opposing surface including a first adhesive surface, and second recesses are formed on the first opposing surface continuously or intermittently around the lens portion when viewed from the optical axis direction, and the second recesses are preferably provided adjacent to the first adhesive surface on at least one of the side closer to the optical axis and the side farther from the optical axis than the first adhesive surface.

[0011] According to this optical unit, the first opposing surface of the holder has second recesses formed continuously or intermittently around the lens portion as viewed in the optical axis direction, and the second recesses are adjacent to the first adhesive surface and are located at least one side closer to the optical axis than the first adhesive surface and one side farther from the optical axis than the first adhesive surface. This allows the second recesses to catch any pre-hardened adhesive that spills out between the two adhesive surfaces when the first adhesive surface of the holder and the second adhesive surface of the light diffusing member are bonded together with an adhesive. This prevents the adhesive from spreading to unnecessary areas, improving the quality of the optical unit.

[0012] In the present invention, it is preferable that the holder portion further has a third recess separate from the second recess, which is formed continuously or intermittently around the lens portion when viewed from the optical axis direction on a side closer to the optical axis than the first adhesive surface.

[0013] According to this optical unit, the holder portion further has a third recess separate from the second recess, and this third recess is formed continuously or intermittently around the periphery of the lens portion as viewed from the optical axis direction on a side closer to the optical axis than the first adhesive surface. This allows adhesive that spills out from between the two adhesive surfaces, when adhesive is bonded to the first adhesive surface of the holder portion and the second adhesive surface of the light diffusing member, to be added to the second recess and caught by the third recess. This further prevents the adhesive from spreading to unnecessary areas, further improving the quality of the optical unit. [Brief explanation of the drawings]

[0014] [Figure 1]1 is an exploded perspective view showing the configuration of a laser irradiation device including an optical unit according to an embodiment of the present invention. [Figure 2] FIG. 2 is a perspective view showing an imaging lens of the optical unit. [Figure 3] FIG. 3 is a cross-sectional view taken along line III-III in FIG. 2. [Figure 4] FIG. 10 is a rear view showing the diffuser of the optical unit. [Figure 5] FIG. 5 is a cross-sectional view taken along line VV in FIG. 4. [Figure 6] 10A and 10B are cross-sectional views for explaining the assembly work of the optical unit. [Figure 7] FIG. 2 is a cross-sectional view showing the optical unit in an assembled state. [Figure 8] 10A and 10B are cross-sectional views for explaining an assembly operation of a modified example of the optical unit. [Figure 9] FIG. 10 is a cross-sectional view showing a modified example of the optical unit in an assembled state. DETAILED DESCRIPTION OF THE INVENTION

[0015] An optical unit according to one embodiment of the present invention will be described below with reference to the drawings. As shown in the exploded perspective view of Fig. 1, the optical unit 1 of this embodiment is applied to a laser irradiation device 2, and this laser irradiation device 2 is used to irradiate laser pulses in a LiDAR (Light Detection and Ranging) system.

[0016] 1, the laser irradiation device 2 includes a light source substrate 3, a board holder 4, an imaging lens holder 5, and an optical unit 1. In the following description, the left side of FIG. 1 will be referred to as the "left" and the right side as the "right."

[0017] The light source substrate 3 serving as a light source is formed in the shape of a rectangular plate, is configured to be able to emit laser light from a laser diode 3a, and is fixed to the left side surface of the board holder 4. The board holder 4 is configured in the shape of a roughly rectangular plate, and has a round hole 4a and a countersunk hole 4b formed concentrically at predetermined positions thereof.

[0018] The imaging lens holder 5 includes a hollow cylindrical portion 5a and an annular flange portion 5b provided in the center in the left-right direction of the cylindrical portion 5a. The imaging lens holder 5 is fixed to the board holder 4 with the outer peripheral surface of the lower end side of the cylindrical portion 5a fitting into the round hole 4a of the board holder 4 and the flange portion 5b abutting against the bottom surface of the counterbore portion 4b of the board holder 4.

[0019] In addition, the optical unit 1 is fixed to the imaging lens holder 5 with the outer surface of the holder portion 12 of the imaging lens 10, which will be described later, fitted into the inner hole 5c of the imaging lens holder 5, thereby fixing the optical unit 1 to the board holder 4 via the imaging lens holder 5.

[0020] With the above-described configuration, in the laser irradiation device 2, the laser light from the light source substrate 3 is emitted to the outside via the optical unit 1. At this time, the laser light is formed into collimated light by the imaging lens 10, and then emitted to the outside while being diffused at a predetermined angle by the diffuser 20 described below.

[0021] This optical unit 1 includes an imaging lens 10 and a diffuser 20, which are bonded to each other via a UV adhesive as described below (see FIG. 7). First, the imaging lens 10 will be described. In this embodiment, the imaging lens 10 corresponds to a lens member, and the diffuser 20 corresponds to a light diffusing member.

[0022] 2 and 3, imaging lens 10 includes a lens portion 11 and a holder portion 12, which are integrally molded. In the following description of imaging lens 10, the upper side of FIG. 2 will be referred to as "top" and the lower side will be referred to as "bottom."

[0023] The lens portion 11 is a central portion of the imaging lens 10 made of optical resin (or optical glass), and is provided inside the holder portion 12 so that its upper end surface, that is, an optical surface 11a, faces an inner hole portion 12g (described later) of the holder portion 12. The optical surface 11a of the lens portion 11 is formed so as to be convex upward, and the laser light from the light source substrate 3 is radiated from this optical surface 11a to the diffuser 20.

[0024] The holder portion 12 is a portion that surrounds the lens portion 11 of the imaging lens 10, and includes a main body portion 12a and an attachment portion 12b. The lower end portion of the main body portion 12a is fixed to the imaging lens holder 5 in a state where it is fitted into the inner hole 5c of the imaging lens holder 5 described above.

[0025] The mounting portion 12b is provided on the upper side of the holder portion 12, continuing from the main body portion 12a, and its upper end is formed into a rectangular plate shape when viewed from above. The upper edge of the mounting portion 12b is formed into an upwardly convex wall shape, and its inner upper surface forms a flat first opposing surface 12c.

[0026] Most of the first opposing surface 12c, including the outermost portion, serves as a first adhesive surface 12d. As will be described later, a UV adhesive is applied to this first adhesive surface 12d when attaching the diffuser 20 to the imaging lens 10.

[0027] Furthermore, a first recess 12e is provided at a predetermined position on the first adhesive surface 12d. This first recess 12e has a perfect ring shape when viewed from above, a rectangular cross section, and is disposed concentrically with the lens portion 11. As will be described later, this first recess 12e is used to position the diffuser 20 and the imaging lens 10 relative to each other when attaching the diffuser 20 to the imaging lens 10.

[0028] Furthermore, a second recess 12f is provided adjacent to the first adhesive surface 12d in a portion of the first opposing surface 12c closer to the center than the first adhesive surface 12d. This second recess 12f has a perfect ring shape when viewed from above, a rectangular cross section, and is disposed concentrically with the first recess 12e. As will be described later, this second recess 12f is intended to accommodate any uncured UV adhesive that may protrude from between the first adhesive surface 12d and the second adhesive surface 20a of the diffuser 20 when the diffuser 20 is attached to the imaging lens 10.

[0029] Furthermore, an inner hole portion 12g is formed on the mounting portion 12b closer to the center than the second recess portion 12f, and the lens portion 11 is disposed so that its optical surface 11a faces this inner hole portion 12g.

[0030] A third recess 12h is provided between the lower edge of the inner circumferential surface of the inner hole 12g of the mounting portion 12b and the lens portion 11. This third recess 12h is formed in a perfect ring shape when viewed from above, and is arranged concentrically with the first recess 12e. Furthermore, the third recess 12h has a triangular cross section, and its bottom surface slopes obliquely upward toward the optical axis.

[0031] As will be described later, this third recess 12h is intended to prevent unhardened UV adhesive from reaching the optical surface 11a of the lens portion 11 when it protrudes from between the first adhesive surface 12d and the second adhesive surface 20a of the diffuser 20 and reaches the inner surface of the inner hole portion 12g when the diffuser 20 is attached to the imaging lens 10.

[0032] Next, the diffuser 20 will be described with reference to Figures 4 and 5. In the following description of the diffuser 20, the upper side in Figure 5 will be referred to as "top" and the lower side will be referred to as "bottom." As shown in Figures 4 and 5, the diffuser 20 is plate-shaped and rectangular when viewed from the optical axis direction, and a first convex portion 20b and an optical surface 20c are formed on a second opposing surface 20a, which is the lower surface of the diffuser 20.

[0033] This second opposing surface 20a is configured as a flat plane, and also serves as an adhesive surface for applying a UV adhesive when attaching the diffuser 20 to the imaging lens 10. Hereinafter, this second opposing surface 20a will be referred to as the "second adhesive surface 20a."

[0034] The first convex portion 20b is formed in a circular ring shape with a rectangular cross section when viewed in the optical axis direction, and protrudes downward from the second adhesive surface 20a.

[0035] When the diffuser 20 is attached to the imaging lens 10, the first convex portion 20b fits into the first concave portion 12e of the holder portion 12 described above, thereby positioning the diffuser 20 and the imaging lens 10 relative to each other.

[0036] The optical surface 20c is provided at the center of the lower surface of the diffuser 20, contiguous with the second adhesive surface 20a, and serves as the ceiling surface of a recess recessed upward from the second adhesive surface 20a, and is formed in the shape of a perfect circle concentric with the first convex portion 20b when viewed from the optical axis direction.

[0037] Next, the work of attaching the diffuser 20 to the imaging lens 10 and assembling the optical unit 1 will be described with reference to Figures 6 and 7. In the following description, the upper side of Figure 6 will be referred to as "top" and the lower side will be referred to as "bottom." When assembling the optical unit 1, first, a UV adhesive is applied to the second adhesive surface 20a of the diffuser 20 and the first adhesive surface 12d of the holder part 12.

[0038] Next, as shown in Fig. 6, the diffuser 20 is moved downward from a position above the imaging lens 10, so that the first convex portion 20b of the diffuser 20 fits into the first concave portion 12e of the imaging lens 10, as shown in Fig. 7. This brings the diffuser 20 and the imaging lens 10 into a state where they are approximately positioned.

[0039] At this time, if the UV adhesive before hardening overflows from between the first adhesive surface 12d and the second adhesive surface 20a, the UV adhesive flows into the second recess 12f and is accommodated in the second recess 12f. Furthermore, even if the UV adhesive before hardening overflows from between the first adhesive surface 12d and the second adhesive surface 20a and flows into the inner hole 12g of the holder part 12, for example, the UV adhesive will be accommodated in the third recess 12h.

[0040] Next, after the centering operation of the diffuser 20 and the imaging lens 10 is performed, ultraviolet light is irradiated from a UV irradiator (not shown) onto the optical unit 1. This hardens the UV adhesive, and the assembly operation of the optical unit 1 is completed.

[0041] As described above, according to the optical unit 1 of this embodiment, the lens portion 11 and the holder portion 12 are integrally molded in the imaging lens 10. This eliminates the need to bond the lens portion 11 and the holder portion 12 when manufacturing the optical unit 1, thereby reducing the number of steps and reducing manufacturing costs.

[0042] Furthermore, when assembling the optical unit 1, the diffuser 20 and the imaging lens 10 can be positioned relative to each other by fitting the first convex portion 20b of the diffuser 20 into the first concave portion 12e of the imaging lens 10. This makes it easier to perform the centering operation between the diffuser 20 and the imaging lens 10 thereafter, improving workability.

[0043] Furthermore, when the first adhesive surface 12d of the holder portion 12 and the second adhesive surface 20a of the diffuser 20 are bonded together via a UV adhesive, the UV adhesive that protrudes from between the two adhesive surfaces 12d and 20a before hardening can be caught by the second recess 12f. As a result, it is possible to prevent the UV adhesive from spreading to unnecessary areas, thereby improving the quality of the optical unit 1.

[0044] In addition, even if, for example, uncured UV adhesive that has spilled out from between the two adhesive surfaces 12d, 20a flows into the inner hole 12g of the holder portion 12, it can be caught by the third recess 12h. This prevents the UV adhesive from reaching the optical surface 11a of the lens portion 11, further improving the quality of the optical unit 1.

[0045] Although the embodiment is an example in which diffuser 20 is used as the light diffusing member, diffuser 20X shown in Fig. 8 may be used instead. This diffuser 20X differs from diffuser 20 of the embodiment only in that it has optical surface 20d instead of optical surface 20c.

[0046] This optical surface 20d is located at the center of the underside of the diffuser 20X, contiguous with the second adhesive surface 20a, and forms the underside of a convex portion that protrudes downward from the second adhesive surface 20a, and is formed in the shape of a perfect circle concentric with the first convex portion 20b when viewed from the optical axis direction.

[0047] When the diffuser 20X configured as described above is attached to the imaging lens 10, first, a UV adhesive is applied to the second adhesive surface 20a of the diffuser 20X and the first adhesive surface 12d of the holder part 12.

[0048] Next, as shown in Fig. 8, the diffuser 20X is moved downward from a position above the imaging lens 10, so that the first convex portion 20b of the diffuser 20X fits into the first concave portion 12e of the imaging lens 10, as shown in Fig. 9. This brings the diffuser 20X and the imaging lens 10 into a state where they are approximately positioned.

[0049] At this time, if the UV adhesive before hardening overflows from between the first adhesive surface 12d and the second adhesive surface 20a, the UV adhesive flows into the second recess 12f and is accommodated in the second recess 12f, as in the embodiment. Furthermore, even if the UV adhesive before hardening overflows from between the first adhesive surface 12d and the second adhesive surface 20a and flows into the inner hole 12g of the holder part 12, for example, it is accommodated in the third recess 12h.

[0050] As described above, even when the diffuser 20X is used, the same effects as when the diffuser 20 of the embodiment is used can be achieved.

[0051] Although the embodiment is an example in which the optical unit 1 is applied to a laser irradiation device 2, the optical unit of the present invention is not limited to this and can be applied to devices that transmit and diffuse light other than laser light from a light source (for example, a light-emitting unit for DMS using a near-infrared LED element).

[0052] Furthermore, the embodiment is an example in which the imaging lens 10 is one in which the lens portion 11 and the holder portion 12 are integrally molded, but instead, the imaging lens 10 may be one in which the lens portion 11 and the holder portion 12 are constructed separately and then assembled into one.

[0053] In addition, the embodiment is an example in which the first recess 12e is provided in the holder portion 12 and the first protrusion 20b is provided in the diffuser 20, but a recess similar to the first recess 12e may be provided in the diffuser 20 and a protrusion similar to the first protrusion 20b may be provided in the holder portion 12.

[0054] Furthermore, although the embodiment is an example in which the first recess 12e has a rectangular cross-sectional shape, the first recess 12e may instead have an arc-shaped, curved, or other polygonal cross-sectional shape. In that case, the first protrusion 20b may have a cross-sectional shape that can fit into the first recess 12e.

[0055] On the other hand, the embodiment is an example in which the first recess 12e is a perfect circular ring when viewed from the optical axis direction, but the first recess 12e of the present invention is not limited to this and may be formed continuously or intermittently around the lens portion when viewed from the optical axis direction.

[0056] For example, the first recess 12e may be formed in a polygonal frame shape or a curved loop shape as viewed from the optical axis direction. Furthermore, the first recess 12e may be formed in a shape in which a plurality of arcs are intermittently formed, a shape in which a plurality of curved portions are intermittently formed, or a shape in which a plurality of straight portions are intermittently formed as viewed from the optical axis direction. In that case, the first protrusion 20b may be formed in a continuous or intermittent shape that can fit into the first recess 12e.

[0057] Furthermore, although the embodiment is an example in which the second recess 12f is provided on the first adhesive surface 12d of the attachment portion 12b, the second recess 12f may be provided on a portion of the first opposing surface 12c other than the first adhesive surface 12d.

[0058] Furthermore, although the embodiment is an example in which the second recess 12f is provided inside (toward the optical axis) the first adhesive surface 12d of the mounting portion 12b, the second recess 12f may be provided outside the first adhesive surface 12d of the mounting portion 12b, or two second recesses 12f may be provided inside and outside the first adhesive surface 12d of the mounting portion 12b, respectively.

[0059] On the other hand, the embodiment is an example in which the second recess 12f has a rectangular cross-sectional shape, but instead, the second recess 12f may have a cross-sectional shape that is arc-shaped, curved, or other polygonal.

[0060] Furthermore, the embodiment is an example in which the second recess 12f is a perfect circular ring when viewed from the optical axis direction, but the second recess 12f of the present invention is not limited to this, and may be formed continuously or intermittently around the lens portion when viewed from the optical axis direction.

[0061] For example, the second recess 12f may be formed in a polygonal frame shape or a curved loop shape as viewed from the optical axis direction. Furthermore, the second recess 12f may be formed in a shape in which a plurality of arcs are intermittently formed, a shape in which a plurality of curved portions are intermittently formed, or a shape in which a plurality of straight portions are intermittently formed as viewed from the optical axis direction.

[0062] Furthermore, although the embodiment is an example in which the third recess 12h has a triangular cross-sectional shape, the third recess 12h may alternatively have a cross-sectional shape that is arc-shaped, curved, or another polygonal shape.

[0063] Furthermore, the embodiment is an example in which the third recess 12h is a perfect circular ring when viewed from the optical axis direction, but the third recess 12h of the present invention is not limited to this, and may be formed continuously or intermittently around the lens portion when viewed from the optical axis direction.

[0064] For example, the third recess 12h may be formed in a polygonal frame shape or a curved loop shape as viewed from the optical axis direction. Furthermore, the third recess 12h may be formed in a shape in which a plurality of arcs are intermittently formed, a shape in which a plurality of curved portions are intermittently formed, or a shape in which a plurality of straight portions are intermittently formed as viewed from the optical axis direction.

[0065] Furthermore, although the embodiment is an example in which a UV adhesive is used as the adhesive, the adhesive of the present invention is not limited to this and may be any adhesive that can bond the imaging lens 10 and the diffuser 20. For example, a thermosetting adhesive may be used as the adhesive. [Explanation of symbols]

[0066] 1 Optical unit 3 Laser diode (light source) 10 Imaging lens (lens component) 11 Lens section 12 Holder part 12c 1st facing surface 12d 1st adhesive surface 12e First recess 12f 2nd recess 12h 3rd recess 20 Diffuser (light diffusion material) 20a: second opposing surface, second adhesive surface 20b First protrusion

Claims

1. a lens member integrally formed with a lens portion that transmits light from a light source and a holder portion that has a first adhesive surface located outside an outer edge of the lens portion and that holds the lens portion so as to surround the outer edge of the lens portion; a light diffusing member that is disposed at an interval in the optical axis direction of the light from the lens portion, has a second adhesive surface that is bonded to the first adhesive surface of the holder portion via an adhesive, and that diffuses the light that has passed through the lens portion; An optical unit comprising:

2. 2. The optical unit according to claim 1, the holder portion is provided at an end portion of the holder portion on the light diffusion member side so as to face the light diffusion member, and has a first opposing surface including the first adhesive surface, On the first opposing surface, one of a first convex portion and a first concave portion is formed continuously or intermittently around the lens portion as viewed from the optical axis direction of the light, the light diffusing member is provided to face the holder portion and has a second facing surface including the second adhesive surface, the other of the first convex portion and the first concave portion is formed on the second opposing surface, The optical unit is characterized in that the first convex portion is fitted into the first concave portion, thereby positioning the holder portion and the light diffusing member relative to each other.

3. 3. The optical unit according to claim 1, the holder portion is provided at an end portion of the holder portion on the light diffusion member side so as to face the light diffusion member, and has a first opposing surface including the first adhesive surface, a second recess is formed continuously or intermittently in the first opposing surface around the lens portion when viewed from the optical axis direction, The optical unit is characterized in that the second recess is provided adjacent to the first adhesive surface on at least one of a side closer to the optical axis and a side farther from the optical axis than the first adhesive surface.

4. 4. The optical unit according to claim 3, An optical unit characterized in that the holder portion further has a third recess separate from the second recess, which is formed continuously or intermittently around the lens portion when viewed from the optical axis direction on a side closer to the optical axis than the first adhesive surface.

Citation Information

Patent Citations

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    JP4458009B2