The present disclosure relates to the field of camera technology, in particular to a photosensitive component, a camera module, and a mobile terminal.
As mobile terminals such as mobile phones and tablets evolve towards full screens, side frames of screens of mobile terminals have disappeared, and the upper and lower frames will become smaller and smaller or even disappear. This puts forward higher requirements for the miniaturization of camera modules configured on mobile terminals. The lens structure of a conventional camera module generally includes a lens barrel and lenses provided in the lens barrel. The front end of the lens barrel is configured to shield incident lights out of design, and prevent lights out of design from entering the lens structure. On the premise of not changing the optical performance (on the premises of the size, number and the like of lenses being the same), the size of the lens structure of the abovementioned structure is difficult to be further reduced, which cannot meet the ever-increasing demand for high screen-to-body ratio of mobile terminals.
According to various embodiments of the present disclosure, a photosensitive component that is capable of shielding the flow of the material forming the closure member to the photosensitive part of the photosensitive chip is provided.
A lens structure includes:
a lens barrel being a hollow structure having openings at both ends, the lens barrel comprising an object side end surface and an image side end surface;
a lens group comprising a plurality of lenses provided in the lens barrel, wherein the plurality of lenses are successively arranged from the image side end surface to the object side end surface, one of the lenses located at an end of the lens group and adjacent to the object side end surface is a first lens, the first lens includes a first optical portion and a first mounting portion that are connected to each other, and the first mounting portion is located on an outer periphery of the first optical portion; and
a light shielding plate separated from the lens barrel, the light shielding plate being provided on the object side end surface and extending to an object side surface of the first mounting portion, wherein an object side surface of the first optical portion is exposed from an object side surface of the light shielding plate.
A method for assembling a lens structure includes the following steps:
providing a lens barrel, the lens barrel being a hollow structure having openings at both ends, the lens barrel comprising an object side end surface and an image side end surface;
providing a plurality of lenses in the lens barrel, and the plurality of lenses are successively arranged from the image side end surface to the object side end surface, one of the lenses located at an end and adjacent to the object side end surface is a first lens, and the first lens includes a first optical portion and a first mounting portion that are connected to each other, the first mounting portion is located on an outer periphery of the first optical portion; and
providing a light shielding plate on the object side end surface, the light shielding plate extending to the object side surface of the first mounting portion, wherein the object side surface of the first optical portion is exposed from the object side surface of the light shielding plate.
A camera module includes the aforementioned lens structure.
The details of one or more embodiments of the present disclosure are set forth in the following drawings and description. Other features, objects and advantages of the present disclosure will become apparent from the description, drawings and claims.
In order to better describe and illustrate the embodiments and/or examples of those inventions disclosed herein, one or more drawings may be referred to. The additional details or examples used to describe the drawings should not be considered as limitation on the scope of any of the disclosed inventions, the currently described embodiments and/or examples, and the best mode of these inventions currently understood.
In order to make the aforementioned objects, features and advantages of the present disclosure more obvious and understandable, the specific embodiments of the present disclosure will be described in detail below with reference to the accompanying drawings. In the following description, many specific details are set forth so as to fully understand the present disclosure. However, the present disclosure can be implemented in many other ways different from those described herein, and those skilled in the art can make similar improvements without departing from the connotation of the present disclosure. Therefore, the present disclosure is not limited by the specific embodiments disclosed below.
It should be noted that, when an element is referred to as being “fixed to” another element, it can be directly on another element or an intermediate element may also exist. When an element is considered to be “connected to” another element, it can be directly connected to another element or an intermediate element may exist at the same time.
Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the technical field of the present disclosure. The terms used in the specification of the present disclosure herein are only for the purpose of describing specific embodiments, and are not intended to limit the present disclosure. The term “and/or” as used herein includes any and all combinations of one or more related listed items.
As shown in
The lens barrel 200 is of a hollow structure having openings respectively at both ends. The lens barrel 200 includes an object side end surface 202 and an image side end surface 204 at opposite sides thereof. An opening of the lens barrel 200 on the object side end surface 202 is a first light passing opening 200a, and an opening of the lens barrel 200 on the image side end surface 204 is a second light passing opening 200b. Light can enter the lens barrel 200 through the first light passing opening 200a. After the light entering the lens barrel 200 passes through the lens group 300, it is incident on a photosensitive chip 32 (referring to
As shown in
The light shielding plate 400 is separated from the lens barrel 200, that is, the light shielding plate 400 and the lens barrel 200 are formed separately. The light shielding plate 400 is provided on the object side end surface 202 and extends to an object side surface 3142 of the first mounting portion 314. The object side surface 3122 of the first optical portion 312 is exposed from the object side surface 402 of the light shielding plate 400.
As shown in
As shown in
As shown in
In some embodiments, the head width B2 of the aforementioned lens structure 20 is in a range from 1 mm to 3 mm. In other words, when the light shielding plate 400 is ring-shaped (at this time, a through hole is formed in a center portion of the light shielding plate 400), a diameter (inner diameter) of the through hole of the light shielding plate 400 is in a range from 1 mm to 3 mm. In some embodiments, an outer diameter B3 of the object side end surface 202 of the lens barrel 200 is in a range from 1.2 mm to 5 mm. In some embodiments, the thickness of the light shielding plate 400 is in a ranged from 0.01 mm to 0.2 mm.
As shown in
In some embodiments, as shown in
In some embodiments, as shown in
In the embodiments shown in
In some embodiments, the inner diameter of the first barrel body 200a gradually increases in the forward direction, and the inner diameter of the second barrel body 200b gradually increases in the reverse direction. As such, the lenses 300a in the first lens unit 302 can be assembled in the first barrel body 200a in an order from small to large in the forward direction, and the lenses 300a in the second lens unit 304 can be assembled in the second barrel body 200b in an order from small to large in the reverse direction. In some embodiments, when the first lens unit 302 has only one lens 300a, or when the sizes of the lenses 300a in the first lens unit 302 are all the same, the inner diameter of the first barrel body 200a can also remain unchanged in the forward direction. Likewise, the inner diameter of the second barrel body 200b can also remain unchanged in the reverse direction.
In some embodiments, the inner wall of the first barrel body 200a is stepped. At this time, the inner diameter of the first barrel body 200a gradually increases intermittently rather than continuously in the forward direction. The first barrel body 200a is provided with at least one first step surface 201 therein that is located between the reference step surface 206 and the image side end surface 204. As shown in
In some embodiments, the inner wall of the second barrel body 200b is stepped. At this time, the inner diameter of the second barrel body 200b gradually increases intermittently rather than continuously in the reverse direction. The second barrel body 200b is provided with at least one second step surface 203 therein that is located between the reference step surface 206 and the object side end surface 202. As shown in
In some embodiments, a gasket 300b is provided between two adjacent lenses 300a. In some embodiments, the lens structure 20 further includes at least one spacer 300c. Each spacer 300c is provided between two adjacent lenses 300a, and the gasket 300b is provided between the spacer 300c and the adjacent lens 300a.
In some embodiments, the lens structure 20 includes a spacer 300c, which is located between the two lenses 300a adjacent to the image side end surface 204. As such, when assembling a lens 300a that is located at an end of the lens group 300 and is adjacent to the image side end surface 204, i.e., when assembling the last lens 300a of the first lens unit 302, the spacer 300c can be used to support the last lens 300a and bear the pressure during assembling the last lens 300a.
In some embodiments, the first step surface 201 is configured to directly support the object side surface of the gasket 300b, and indirectly support the object side surface of the lenses 300a and the spacer 300c. In some embodiments, the second step surface 203 closest to the object side end surface 202 is idle, which is not configured to directly or indirectly support the lenses 300a, gasket 300b, and spacer 300c. The second step surface closest to the object side end surface 202 is spaced apart from the light shielding plate 400 to form a gap 500. Glue can be applied in the gap 500, so as to increase the firmness of the connection between the lenses 300a and the lens barrel 200.
In some embodiments, the first lens unit 302 includes one or more lenses 300a, and the second lens unit 304 includes one or more lenses 300a. In some embodiments, the sum of the number of lenses 300a of the first lens unit 302 and the number of lenses 300a of the second lens unit 304 is less than or equal to 7. As such, it is convenient to assemble and to obtain a small sized lens structure 20.
As shown in
The following detail description illustrates how the lenses 300a of the aforementioned lens structure 20 is positioned and fixed in the lens barrel 12.
As shown in
As shown in
In some embodiments, the image side surface 3144 of the first mounting portion 314 of the first lens 310 is provided with a positioning protrusion 3148, and the object side surface 322 of the lens 320 adjacent to the first lens 310 is provided with a positioning groove 324. When the first lens 310 is assembled in the lens barrel 200, the positioning protrusion 3148 is latched in the positioning groove 324, thereby increasing the positioning accuracy of the first lens 310.
In some embodiments, after all lenses 300a except the first lens 310 are assembled in the lens barrel 200, the first lens 310 is then placed in the lens barrel 200. The first lens 310 presses down the lens 320 adjacent to the first lens 310 under the action of gravity. Glue is applied on the object side surface 3142 of the first mounting portion 314 of the first lens 310 and the inner wall of the lens barrel 200 to fix the first lens 310. That is, the first lens 310 can be fixed by applying glue, and the object side surface 3142 of the first mounting portion 314 of the first lens 310 is connected to the inner wall of the lens barrel 200 by an adhesive layer.
In some embodiments, in addition to shielding lights, the light shielding plate 400 is further configured to fix the first lens 310 and the lens barrel 200. In some embodiments, the light shielding plate 400 abuts against the object side surface 3142 of the first mounting portion 314 of the first lens 310, so as to fix the first lens 310 and the lens barrel 200.
In some embodiments, the light shielding plate 400 is a glue layer. Specifically, light shielding glue may be coated on the object side end surface 202 of the lens barrel 200 and the object side surface 3142 of the first mounting portion 314, and the light shielding glue is cured to form the light shielding plate 400, such that the first lens 310 and the lens barrel 200 are firmly fixed. The light shielding glue may be black glue.
In some embodiments, the light shielding plate 400 is of a ring-shaped structure, and the light shielding plate 400 is sleeved on the first lens 310. The image side surface of the light shielding plate 400 includes a first annular connecting portion and a second annular connecting portion that are successively arranged and connected from outside to inside. The first annular connecting portion is fixedly connected to the object side end surface 202 of the lens barrel 200, and the second annular connecting portion abuts against the object side surface 3142 of the first mounting portion 314 of the first lens 310. That is, the inner edge of the image side surface of the light shielding plate 400 abuts against the object side surface 3142 of the first mounting portion 314 of the first lens 310, and the outer edge of the image side surface of the light shielding plate 400 is fixedly connected to the object side end surface 202 of the lens barrel 200.
In some embodiments, a glue layer is provided between the outer edge of the image side surface of the light shielding plate 400 and the object side end surface 202 of the lens barrel 200. In some embodiments, another glue layer is also provided between the inner edge of the image side surface of the light shielding plate 400 and the object side surface 3142 of the first mounting portion 314 of the first lens 310. That is, the light shielding plate 400 is respectively connected to the object side end surface 202 of the lens barrel 200 and the object side surface 3142 of the first mounting portion 314 by means of adhesive.
As shown in
In some embodiments, the first positioning member 210 is a post, the second positioning member 410 is a through hole, and the post 210 extends through the through hole 410. In some embodiments, the through hole 410 extends through the side surface 402 of the light shielding plate 400, such that it is convenient to adjust relative positions of the light shielding plate 400 and the lens barrel 200 in a direction from the inner edge to the outer edge of the light shielding plate 400, which is more beneficial for improving the concentricity of the light shielding plate 400 and the lens barrel 200 when assembled. In some embodiments, in a direction from the inner edge to the outer edge of the light shielding plate 400, the distance between the side walls of the through hole 410 gradually increases, which is very convenient for assembly.
In some embodiments, there are a plurality of posts 210 and a plurality of through holes 410 (more than or equal to two), and the posts 210 and the through holes 410 are in one-to-one correspondence. As such, it is more beneficial for improving the concentricity of the light shielding plate 400 and the lens barrel 200 when assembled. In some embodiments, there are three posts 210, and the three posts 210 are arranged at equal intervals.
In some embodiments, the first positioning member 210 is a post, and the second positioning member 410 is a through hole. The post 210 extends through the through hole 410, and one end of the post 210 protrudes from the through hole 410. A part of the post 210 protruding from the through hole 410 is a hot riveting portion 212. The hot riveting portion 212 is hot riveted and fixed to the object side surface 402 of the light shielding plate 400, such that the inner edge of the image side surface of the light shielding plate 400 abuts against and is fixed to the object side surface 3142 of the first mounting portion 314 of the first lens 310. At this time, the light shielding plate 400 and the lens barrel 200 can be fixed without glue bonding, and the light shielding plate 400 abuts against the object side surface 3142 of the first mounting portion 314 of the first lens 310 at the same time, thereby incidents where glue contaminating the optical portion of the lenses 300a during the glue application process can prevented from happening. Specifically, as shown in
As shown in
In step S710, a lens barrel is provided. The lens barrel is of a hollow structure having openings at both ends. The lens barrel includes an object side end surface and an image side end surface.
In step S720, the lens barrel is provided with a plurality of lenses, and the plurality of lenses are successively arranged from the image side end surface to the object side end surface. A lens located at an end and adjacent to the object side end surface is a first lens, and the first lens includes a first optical portion and a first mounting portion that are connected to each other, the first mounting portion is located on an outer periphery of the first optical portion.
In step S730, a light shielding plate is provided on the object side end surface, and the light shielding plate extends to the object side surface of the first mounting portion, and the object side surface of the first optical portion is exposed from the object side surface of the light shielding plate.
As shown in
In step S722, in the reverse direction, the lenses of the first lens unit are assembled into the first barrel body.
In step S722, after the lenses of the first lens unit are sequentially placed in the first barrel body, glue is applied on the mounting portion of the first lens unit adjacent to the image side end surface and the inner wall of the first barrel body, so that the lenses of the first lens unit are all fixed in the first barrel body.
In step S724, the lens barrel is turned by 180 degrees.
In step S726, the lenses of the second lens unit are assembled into the second barrel body in the forward direction.
In step S726, the lenses of the second lens unit are sequentially placed in the second barrel body. When the first lens is finally placed, the positioning protrusion of the first lens is latched in the positioning groove of the second lens, and the side surface of the first mounting portion of the first lens abuts against the inner wall of the lens barrel to realize the positioning and pre-fixation of the first lens.
In some embodiments, in step S730, one end of the post on the object side end surface protrudes from the through hole of the light shielding plate, a part of the post protruding from the through hole is a hot riveting portion, and the hot riveting portion is hot riveted and fixed on the object side surface of the light shielding plate, so that the light shielding plate abuts against and is fixed to the object side surface of the first mounting portion, such that the lenses of the second lens unit are fixed in the second barrel body.
The method for assembling the lens structure will be described in detail below with reference to three specific embodiments, where the lens structures in the three embodiments all include four lenses and a spacer.
As shown in
The camera module 30 generally includes a photosensitive component 30a and a lens component 30b. The photosensitive component 30a includes a circuit board 31, a photosensitive chip 32, a bracket 33, and an optical filter 34. The photosensitive chip 32 is provided on the circuit board 31. The bracket 33 is of a hollow structure having openings at both ends, which is provided on the circuit board 31. The photosensitive chip 32 is received in the bracket 33. The optical filter 34 is provided on a step portion of the bracket 33. The lens component 30b is provided on the end of the bracket 33 away from the circuit board 31.
The photosensitive chip 32 is electrically connected to the circuit board 31 through a gold wire 35. The lens component 30b includes a voice coil motor 36 and a lens structure 20 provided in the voice coil motor 36. The voice coil motor 36 can drive the lens structure 20 to move back and forth in directions of the optical axis to achieve focusing. At this time, the camera module 30 is an autofocus camera module. In some embodiments, when the camera module 30 is a fixed-focus camera module, a lens holder may be used to replace the voice coil motor 36. At this time, the lens structure 20 is fixedly connected to the lens holder. In some embodiments, the lens holder and the bracket 33 may be of an integrally formed structure, that is, the lens holder can be used to mount the lens structure 20, and can also be used to mount the optical filter 34 and contain the photosensitive chip 32.
Although the respective embodiments have been described one by one, it shall be appreciated that the respective embodiments will not be isolated. Those skilled in the art can apparently appreciate upon reading the disclosure of this application that the respective technical features involved in the respective embodiments can be combined arbitrarily between the respective embodiments as long as they have no collision with each other. Of course, the respective technical features mentioned in the same embodiment can also be combined arbitrarily as long as they have no collision with each other.
The foregoing descriptions are merely specific embodiments of the present invention, but are not intended to limit the protection scope of the present invention. Any variation or replacement readily figured out by a person skilled in the art within the technical scope disclosed in the present invention shall all fall within the protection scope of the present invention. Therefore, the protection scope of the present invention shall be subject to the protection scope of the appended claims.
Number | Date | Country | Kind |
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201910236750.1 | Mar 2019 | CN | national |
201920399036.X | Mar 2019 | CN | national |
This application is a national stage application, filed under 35 U.S.C. § 371, of International Patent Application No. PCT/CN2020/072135, filed Jan. 15, 2020, which claims priority of Chinese Patent Application No. 2019102367501, filed on Mar. 27, 2019, and Chinese Patent Application No. 201920399036X, filed on Mar. 27, 2019, the contents of each of which are incorporated herein by reference in their entireties.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/072135 | 1/15/2020 | WO | 00 |