A shockproof structure for an internal camera in a mobile phone

By designing an anti-vibration structure for the internal camera of a mobile phone, and using buffer airbags and limiting devices to reduce the impact of impact on the filter plate and lens module, the problem of damage to the mobile phone camera during collisions is solved, and assembly efficiency and protection effect are improved.

CN116389877BActive Publication Date: 2025-10-28ZHENGZHOU LIANCHUANG ELECTRONICS CO LTD
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Patent Information

Application Number
CN202310422116.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-04-19
Publication Date
2025-10-28
Estimated Expiration
2043-04-19

AI Technical Summary

Technical Problem

When existing mobile phone cameras are subjected to impacts and vibrations, the impact force is easily transmitted to the interior, causing the filter to break.

Method used

A shockproof structure for an internal camera of a mobile phone, comprising a substrate, a mounting structure, an auxiliary structure, and a protective structure, was designed. The structure reduces the impact of impact on the filter plate and lens module through buffer airbags and limiting devices, and improves assembly efficiency and limiting effect by using adhesive and threaded connections.

Benefits of technology

It effectively reduces the damage to the filter plate and lens module caused by collisions and vibrations, improves assembly efficiency and limiting effect, and prevents damage to the lens module.

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Abstract

This invention relates to the field of mobile phone camera technology, specifically to a shockproof structure for an internal mobile phone camera, comprising: a substrate, on the top of which a filter plate and a lens module are sequentially arranged from bottom to top; a mounting structure, disposed on the top of the substrate, with the filter plate disposed inside the mounting structure and used for mounting the filter plate; and an auxiliary structure, disposed on top of the mounting structure. By providing the mounting structure and the auxiliary structure, after the mounting shell and the connecting shell are connected by a threaded rod, a first buffer airbag can be inflated to protect the filter plate, reducing the impact of surrounding impact forces on the filter plate. Simultaneously, the cooperation between the second buffer airbag and the protrusion reduces the impact force transmitted from top to bottom, further reducing the impact force on the filter plate and effectively reducing damage to the filter plate caused by collision vibrations.
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Description

Technical Field

[0001] This invention relates to the field of mobile phone camera technology, and in particular to a shockproof structure for an internal camera in a mobile phone. Background Technology

[0002] A webcam, also known as a computer camera, computer eye, or electronic eye, is a video input device that is widely used in video conferencing, telemedicine, and real-time monitoring.

[0003] Existing mobile phone cameras are usually mounted on the phone using a camera module (which consists of a substrate, a filter, a lens module, etc.). However, when the phone is hit by an object, the impact force generated by the impact vibration is transmitted to the inside of the phone. The impact force transmitted to the inside of the camera module can easily cause the filter to break.

[0004] Therefore, a shockproof structure for the internal camera of a mobile phone is proposed to solve the above problems. Summary of the Invention

[0005] The purpose of this invention is to provide a shockproof structure for the internal camera of a mobile phone in order to solve the above-mentioned problems, thereby improving the problem that the light filter is easily damaged by the impact force generated by the collision and vibration of the mobile phone.

[0006] The present invention achieves the above-mentioned objective through the following technical solution: a shockproof structure for an internal camera of a mobile phone, comprising: a substrate, wherein a filter plate and a lens module are sequentially disposed on the top of the substrate from bottom to top; a mounting structure, wherein the mounting structure is disposed on the top of the substrate, the filter plate is disposed inside the mounting structure, and the mounting structure is used for mounting the filter plate; an auxiliary structure, wherein the auxiliary structure is disposed on the top of the mounting structure, and the auxiliary structure is used to limit the position of the filter plate in conjunction with the mounting structure; and a protective structure, wherein the protective structure is detachably disposed on the top of the auxiliary structure, the lens module is disposed inside the protective structure, and the protective structure is used for protecting the lens module.

[0007] Preferably, the mounting structure includes a connecting shell disposed on the top of the substrate, an mounting plate fixedly connected to the inner side of the connecting shell, a connecting block fixedly connected to the top of the mounting plate, a uniformly distributed storage cavity opened inside the connecting block, a groove opened inside the connecting block, a filter plate disposed on the top of the mounting plate and located inside the connecting block, and an extrusion port communicating with the groove opened inside the storage cavity.

[0008] Preferably, a storage bladder is fixedly connected inside the storage cavity, the storage bladder is filled with adhesive, a pressing plate is slidably connected to the inner wall of the storage cavity, the bottom of the pressing plate contacts the top of the storage bladder, a through hole is opened on the top of the pressing plate, and a through hole is opened on the top of the connecting block, which is coaxially distributed with the through hole, and the lower opening diameter of the through hole is larger than the upper opening diameter.

[0009] Preferably, the connecting shell has an internal air storage chamber, and an extrusion plate is slidably connected to the inner wall of the air storage chamber. Inert gas is filled between the bottom of the extrusion plate and the air storage chamber. A uniformly distributed first spring is fixedly connected to the bottom of the extrusion plate, and the bottom of the first spring is fixedly connected to the inner bottom wall of the air storage chamber. A first buffer airbag is embedded in the inner side of the connecting shell. A uniformly distributed conduit is connected to the surface of the first buffer airbag. The other end of the conduit is connected to the air storage chamber. A uniformly distributed threaded hole is opened on the top of the connecting shell. An adjusting rod is slidably connected to the inner wall of the threaded hole. The lower end of the adjusting rod passes through the threaded hole and is fixedly connected to the top of the extrusion plate.

[0010] Preferably, the top of the connecting block is provided with an mounting block, the filter plate is located between the mounting block and the connecting block, the top of the mounting block is fixedly connected with uniformly distributed protrusions, and a limiting cavity is formed between the outer side of the connecting block and the bottom of the mounting block and the mounting plate.

[0011] Preferably, the bottom of the mounting block is fixedly connected to push rods that are evenly distributed and correspond to the through holes. The lower end of the push rod is fixedly connected to a sealing plate. The bottom of the sealing plate is fixedly connected to a sharp part. The diameter of the sealing plate is larger than the upper opening diameter of the through hole.

[0012] Preferably, the auxiliary structure includes a mounting shell disposed on the top of the connecting shell, a mounting cavity being formed at the bottom of the mounting shell, a limiting plate being fixedly connected to the inner wall of the mounting cavity, a second buffer airbag being fixedly connected between the limiting plate and the inner wall of the mounting cavity, and threaded rods being uniformly distributed on the surface of the mounting shell and corresponding to the threaded holes, the lower end of the threaded rods penetrating through the mounting shell and being threadedly connected to the inner wall of the threaded holes, and the bottom of the threaded rods contacting the top of the adjusting rod.

[0013] Preferably, the protective structure includes a detachable outer shell disposed on the top of the mounting shell, a support plate slidably connected to the inner wall of the outer shell, a uniformly distributed support rod fixedly connected to the bottom of the support plate, the lower end of the support rod penetrating the outer shell and fixedly connected to the outer shell by a second spring, and the lens module disposed on the top of the support plate.

[0014] Preferably, the top of the mounting housing is provided with a detachable baffle, and the bottom of the baffle is provided with an adjustment block that is slidably connected to the inner wall of the mounting housing, and the bottom of the adjustment block is in contact with the surface of the lens module.

[0015] Preferably, the top of the mounting shell is fixedly connected with evenly distributed spring pieces, the middle of which protrudes outward to form an arc shape, and the top of the adjusting block is fixedly connected with evenly distributed top rods, the upper end of which passes through the mounting shell and is fixedly connected to the bottom of the spring pieces.

[0016] The beneficial effects of this invention are:

[0017] 1. By setting up the installation structure and auxiliary structure, after the installation shell and the connecting shell are connected by the threaded rod, the first buffer airbag can be inflated to protect the filter plate, reducing the impact of the surrounding impact force on the filter plate. At the same time, the cooperation between the second buffer airbag and the protrusion can reduce the impact force transmitted from top to bottom, further reducing the impact force on the filter plate, and effectively reducing the damage to the filter plate caused by the impact force generated by the collision and vibration.

[0018] 2. By designing the installation structure, the filter plate can be quickly positioned during installation. After the filter plate is placed, pressing down on the mounting block punctures the storage bladder through the cooperation of the push rod, sealing plate, and sharp point. The pressing plate then injects adhesive into the groove through the extrusion port, eliminating the need for separate adhesive application to the filter plate, thus improving assembly efficiency and simplifying operation. Furthermore, with the auxiliary structure, after the mounting shell is installed, the bulging second buffer airbag compresses the top of the mounting block, enhancing the positioning effect.

[0019] 3. By setting up a protective structure, the damage to the lens module caused by colliding objects can be reduced. When a colliding object comes into contact with the baffle, it can squeeze the middle of the spring, thereby causing the spring to deform and the push rod to retract into the housing. During this process, the electric adjusting block can push the lens module to move down synchronously, increasing the space between the lens module and the baffle, and preventing objects from colliding with the lens module and causing damage to the lens module. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the structure of the present invention;

[0021] Figure 2 This is a schematic diagram showing the connection between the lens module and the protective structure of the present invention;

[0022] Figure 3 This is a schematic diagram showing the distribution of the mounting structure and filter plate of the present invention;

[0023] Figure 4 for Figure 3Enlarged view of A in the middle;

[0024] Figure 5 This is a schematic diagram of the auxiliary structure of the present invention;

[0025] Figure 6 This is a schematic diagram showing the connection between the push rod and the mounting block of the present invention;

[0026] Figure 7 for Figure 6 A magnified view of B in the middle.

[0027] In the diagram: 1. Substrate; 2. Filter plate; 3. Lens module; 4. Mounting structure; 401. Connecting shell; 402. Mounting plate; 403. Connecting block; 404. Storage bladder; 405. Extrusion port; 406. Pressing plate; 407. Through hole; 408. Air storage chamber; 409. Extrusion plate; 410. First spring; 411. First buffer airbag; 412. Conduit; 413. Mounting block; 414. Protrusion; 415. 416. Adjusting rod; 417. Through hole; 418. Push rod; 419. Sealing plate; 410. Sharp part; 5. Auxiliary structure; 501. Mounting shell; 502. Limiting plate; 503. Second buffer airbag; 504. Threaded rod; 6. Protective structure; 601. Outer shell; 602. Support plate; 603. Support rod; 604. Second spring; 605. Baffle; 606. Adjusting block; 607. Spring piece; 608. Top rod. Detailed Implementation

[0028] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0029] In practical implementation: such as Figure 1-7 As shown, a shockproof structure for an internal camera of a mobile phone includes: a substrate 1, on which a filter plate 2 and a lens module 3 are sequentially disposed from bottom to top; a mounting structure 4, disposed on the top of the substrate 1, with the filter plate 2 disposed inside the mounting structure 4, and the mounting structure 4 being used for mounting the filter plate 2; an auxiliary structure 5, disposed on the top of the mounting structure 4, and the auxiliary structure 5 being used to limit the position of the filter plate 2 in conjunction with the mounting structure 4; and a protective structure 6, detachably disposed on the top of the auxiliary structure 5, with the lens module 3 disposed inside the protective structure 6, and the protective structure 6 being used for protecting the lens module 3.

[0030] like Figure 1-7As shown, the mounting structure 4 includes a connecting shell 401 disposed on the top of the substrate 1. A mounting plate 402 is fixedly connected to the inner side of the connecting shell 401. A connecting block 403 is fixedly connected to the top of the mounting plate 402. The connecting block 403 has uniformly distributed storage cavities inside and a groove inside. A filter plate 2 is disposed on the top of the mounting plate 402 and located inside the connecting block 403. An extrusion port 405 communicating with the groove is disposed inside the storage cavity. A storage bladder 404 is fixedly connected inside the storage cavity. The storage bladder 404 is filled with adhesive. A pressing plate 406 is slidably connected to the inner wall of the storage cavity. The bottom of the pressing plate 406 contacts the top of the storage bladder 404. A through hole 407 is disposed on the top of the pressing plate 406. A through hole 416 coaxially distributed with the through hole 407 is disposed on the top of the connecting block 403. The lower opening diameter of the through hole 407 is larger than the upper opening diameter. An air storage chamber 408 is provided inside the connecting shell 401. An extrusion plate 409 is slidably connected to the inner wall of the air storage chamber 408. An inert gas is filled between the bottom of the extrusion plate 409 and the air storage chamber 408. A uniformly distributed first spring 410 is fixedly connected to the bottom of the extrusion plate 409. The bottom of the first spring 410 is fixedly connected to the inner bottom wall of the air storage chamber 408. A first buffer airbag 411 is embedded in the inner side of the connecting shell 401. A uniformly distributed conduit 412 is connected to the surface of the first buffer airbag 411. The other end of the conduit 412 is connected to the air storage chamber 408. A uniformly distributed threaded hole is provided at the top of the connecting shell 401. An adjusting rod 415 is slidably connected to the inner wall of the threaded hole. The lower end of the adjusting rod 415 passes through the threaded hole and is fixedly connected to the top of the extrusion plate 409.

[0031] During installation, the connecting shell 401 is glued to the top of the substrate 1, and the filter plate 2 is placed on the mounting plate 402 and located inside the connecting block 403. The first spring 410 is used to maintain the position of the extrusion plate 409 in its normal state, and the placed filter plate 2 can cover the groove.

[0032] like Figure 1-7 As shown, a mounting block 413 is provided on the top of the connecting block 403. The filter plate 2 is located between the mounting block 413 and the connecting block 403. The top of the mounting block 413 is fixedly connected with evenly distributed protrusions 414. A limiting cavity is formed between the outer side of the connecting block 403, the bottom of the mounting block 413, and the mounting plate 402. The bottom of the mounting block 413 is fixedly connected with evenly distributed push rods 417 corresponding to the through hole 416. The lower end of the push rod 417 is fixedly connected with a sealing plate 418. The bottom of the sealing plate 418 is fixedly connected with a sharp part 419. The diameter of the sealing plate 418 is larger than the upper opening diameter of the through hole 407.

[0033] After the filter plate 2 is placed, the mounting block 413 is aligned with the mounting plate 402 and lowered. During this process, the push rod 417 can be inserted into the through hole 416 to enter the interior of the storage cavity. As the push rod 417 moves down, the sharp part 419 passes through the through hole 407 and punctures the storage bladder 404, causing the adhesive inside the storage bladder 404 to leak out. As the push rod 417 moves down, the sealing plate 418 presses down the pressing plate 406, thereby squeezing the adhesive and injecting it into the groove through the extrusion port 405. At the same time, some of the squeezed adhesive can be injected between the sharp part 419 and the through hole 407. After the adhesive dries, it can strengthen the connection between the filter plate 2 and the connecting block 403. The adhesive injected between the sharp part 419 and the through hole 407 strengthens the connection between the two after drying, thereby achieving the effect of limiting the position of the mounting block 413.

[0034] like Figure 1-7 As shown, the auxiliary structure 5 includes a mounting shell 501 disposed on the top of the connecting shell 401. The bottom of the mounting shell 501 is provided with a mounting cavity. A limiting plate 502 is fixedly connected to the inner wall of the mounting cavity. A second buffer airbag 503 is fixedly connected between the limiting plate 502 and the inner wall of the mounting cavity. The surface of the mounting shell 501 is provided with threaded rods 504 that are evenly distributed and correspond to the threaded holes. The lower end of the threaded rod 504 passes through the mounting shell 501 and is threadedly connected to the inner wall of the threaded hole. The bottom of the threaded rod 504 contacts the top of the adjusting rod 415.

[0035] By placing the mounting shell 501 on top of the connecting shell 401 and gradually passing the threaded rod 504 through the corresponding threaded hole, the threaded rod 504 can push the adjusting rod 415 downwards during the downward movement. The adjusting rod 415 can drive the extrusion plate 409 to extrude the inert gas inside the gas storage chamber 408. The extruded inert gas is injected into the first buffer airbag 411 through the conduit 412, causing the first buffer airbag 411 to inflate. The inflated first buffer airbag 411 can fill the limiting cavity. At the same time, when the connecting shell 401 is affected by impact, the first buffer airbag 411 can reduce the impact. The reduced impact force transmission further reduces the likelihood of the filter plate 2 breaking due to impact. During the placement of the mounting housing 501, the protrusion 414 on the mounting block 413 can push and compress the second buffer airbag 503. The compressed second buffer airbag 503 can bulge on both sides of the compression position of the protrusion 414, thereby compressing the mounting block 413 through the bulging second buffer airbag 503, thus strengthening the limiting effect on the mounting block 413. At the same time, the second buffer airbag 503 can reduce the impact force transmitted from top to bottom, further reducing the likelihood of the filter plate 2 breaking due to impact.

[0036] In use, the protective structure 6 includes a detachable outer shell 601 disposed on the top of the mounting shell 501. A support plate 602 is slidably connected to the inner wall of the outer shell 601. A uniformly distributed support rod 603 is fixedly connected to the bottom of the support plate 602. The lower end of the support rod 603 passes through the outer shell 601 and is fixedly connected to the outer shell 601 with a second spring 604. The lens module 3 is disposed on the top of the support plate 602. A detachable baffle 605 is disposed on the top of the mounting shell 501. An adjusting block 606 is slidably connected to the bottom of the baffle 605 and is slidably connected to the inner wall of the mounting shell 501. The bottom of the adjusting block 606 is in contact with the surface of the lens module 3. A uniformly distributed spring piece 607 is fixedly connected to the top of the mounting shell 501. The middle part of the spring piece 607 protrudes outward to form an arc shape. A uniformly distributed top rod 608 is fixedly connected to the top of the adjusting block 606. The upper end of the top rod 608 passes through the mounting shell 501 and is fixedly connected to the bottom of the spring piece 607.

[0037] The second spring 604 is used to limit the position of the support plate 602 under normal conditions. When the mobile phone is collided and an object hits the baffle 605, the object can squeeze the middle of the spring 607, thereby compressing the spring 607 and driving the top rod 608 to retract into the inside of the outer shell 601. During this process, the electric adjusting block 606 can push the lens module 3 to move down synchronously. At the same time, the lens module 3 drives the support plate 602 and the support rod 603 to move down synchronously and squeeze the second spring 604. During this process, the spring 607 and the second spring 604 can reduce the transmission of impact force generated by the collision vibration, effectively reducing the impact of the collision on the lens module 3 and the filter plate 2.

[0038] In use, the connecting shell 401 is first installed on the top of the substrate 1 by adhesive. The filter plate 2 is placed on the mounting plate 402 and located inside the connecting block 403. After the filter plate 2 is placed, the mounting block 413 is aligned with the mounting plate 402 and placed down. The mounting plate 402 is pressed for a period of time until the extruded adhesive dries. This completes the positioning of the filter plate 2. During this process, the connection strength between the injection point 419 and the through hole 407 is strengthened after drying, thereby achieving the effect of positioning the mounting block 413. After the adhesive dries, the mounting shell 501 and the connecting shell 401 are connected by the threaded rod 504. During this process, the adjusting rod 415 can be pushed down synchronously. The adjusting rod 415 can drive the extrusion plate 409 to extrude the inert gas inside the gas storage chamber 408 and inflate the first buffer airbag 411. Then, the outer shell 601 is installed on the mounting shell 501, and the lens module 3 is placed inside the outer shell 601 before the baffle 605 is installed.

[0039] The bulging first buffer airbag 411 can fill the limiting cavity. At the same time, when the connecting shell 401 is affected by the impact force, the first buffer airbag 411 can reduce the transmission of the impact force, thereby reducing the possibility of the filter plate 2 breaking due to the impact force. During the placement of the mounting shell 501, the protrusion 414 on the mounting block 413 can push and squeeze the second buffer airbag 503. The squeezed second buffer airbag 503 can bulge on both sides of the squeezed position of the protrusion 414, thereby squeezing the mounting block 413 through the bulging second buffer airbag 503, thereby strengthening the limiting effect on the mounting block 413. At the same time, the second buffer airbag 503 can reduce the impact force transmitted from top to bottom, further reducing the possibility of the filter plate 2 breaking due to the impact force.

[0040] When a collision occurs and an object impacts the baffle 605, the object can compress the middle of the spring 607, thereby compressing the spring 607 and causing the push rod 608 to retract into the housing 601. During this process, the electric adjusting block 606 can push the lens module 3 to move down synchronously, thereby increasing the space between the lens module 3 and the baffle 605 and preventing the object from colliding with the lens module 3 and causing damage to the lens module 3. At the same time, the lens module 3 drives the support plate 602 and support rod 603 to move down synchronously and compress the second spring 604. During this process, the spring 607 and the second spring 604 can reduce the transmission of impact force generated by the collision vibration, effectively reducing the impact of the collision on the lens module 3 and the filter plate 2.

[0041] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. A shockproof structure for an internal camera of a mobile phone, characterized in that, include: A substrate (1) is provided with a filter plate (2) and a lens module (3) from bottom to top on the top of the substrate (1). Mounting structure (4), the mounting structure (4) is disposed on the top of substrate (1), the filter plate (2) is disposed inside the mounting structure (4), and the mounting structure (4) is used for mounting the filter plate (2); An auxiliary structure (5) is provided on the top of the mounting structure (4) and is used to limit the position of the filter plate (2) in conjunction with the mounting structure (4). The protective structure (6) is detachably disposed on the top of the auxiliary structure (5), and the lens module (3) is disposed inside the protective structure (6). The protective structure (6) is used to protect the lens module (3). The mounting structure (4) includes a connecting shell (401) disposed on the top of the substrate (1), an mounting plate (402) fixedly connected to the inner side of the connecting shell (401), a connecting block (403) fixedly connected to the top of the mounting plate (402), a uniformly distributed storage cavity is opened inside the connecting block (403), a groove is opened inside the connecting block (403), the filter plate (2) is disposed on the top of the mounting plate (402) and located inside the connecting block (403), and an extrusion port (405) communicating with the groove is opened inside the storage cavity. A storage bladder (404) is fixedly connected inside the storage cavity. The storage bladder (404) is filled with adhesive. A pressing plate (406) is slidably connected to the inner wall of the storage cavity. The bottom of the pressing plate (406) is in contact with the top of the storage bladder (404). A through hole (407) is opened at the top of the pressing plate (406). A through hole (416) is opened at the top of the connecting block (403) and is coaxially distributed with the through hole (407). The lower opening diameter of the through hole (407) is larger than the upper opening diameter. The top of the connecting block (403) is provided with a mounting block (413), the filter plate (2) is located between the mounting block (413) and the connecting block (403), the top of the mounting block (413) is fixedly connected with uniformly distributed protrusions (414), and a limiting cavity is formed between the outer side of the connecting block (403), the bottom of the mounting block (413), and the mounting plate (402); The bottom of the mounting block (413) is fixedly connected to push rods (417) that are evenly distributed and correspond to the through hole (416). The lower end of the push rod (417) is fixedly connected to a sealing plate (418). The bottom of the sealing plate (418) is fixedly connected to a sharp part (419). The diameter of the sealing plate (418) is larger than the upper opening diameter of the through hole (407).

2. The shockproof structure for an internal camera of a mobile phone according to claim 1, characterized in that: The connecting shell (401) has an internal gas storage chamber (408). An extrusion plate (409) is slidably connected to the inner wall of the gas storage chamber (408). The bottom of the extrusion plate (409) and the gas storage chamber (408) are filled with inert gas. A uniformly distributed first spring (410) is fixedly connected to the bottom of the extrusion plate (409). The bottom of the first spring (410) is fixedly connected to the inner bottom wall of the gas storage chamber (408). A first buffer airbag (411) is embedded in the inner side of the connecting shell (401). A uniformly distributed conduit (412) is connected to the surface of the first buffer airbag (411). The other end of the conduit (412) is connected to the gas storage chamber (408). A uniformly distributed threaded hole is opened on the top of the connecting shell (401). An adjusting rod (415) is slidably connected to the inner wall of the threaded hole. The lower end of the adjusting rod (415) passes through the threaded hole and is fixedly connected to the top of the extrusion plate (409).

3. The shockproof structure for an internal camera of a mobile phone according to claim 1, characterized in that: The auxiliary structure (5) includes a mounting shell (501) disposed on the top of the connecting shell (401). The bottom of the mounting shell (501) is provided with a mounting cavity. A limiting plate (502) is fixedly connected to the inner wall of the mounting cavity. A second buffer airbag (503) is fixedly connected between the limiting plate (502) and the inner wall of the mounting cavity. The surface of the mounting shell (501) is provided with threaded rods (504) that are evenly distributed and correspond to the threaded holes. The lower end of the threaded rod (504) passes through the mounting shell (501) and is threadedly connected to the inner wall of the threaded hole. The bottom of the threaded rod (504) is in contact with the top of the adjusting rod (415).

4. The shockproof structure for an internal camera of a mobile phone according to claim 3, characterized in that: The protective structure (6) includes a detachable outer shell (601) disposed on the top of the mounting shell (501). A support plate (602) is slidably connected to the inner wall of the outer shell (601). A support rod (603) is fixedly connected to the bottom of the support plate (602) and is evenly distributed. The lower end of the support rod (603) passes through the outer shell (601) and is fixedly connected to the outer shell (601) with a second spring (604). The lens module (3) is disposed on the top of the support plate (602).

5. The shockproof structure for an internal camera of a mobile phone according to claim 4, characterized in that: The top of the mounting housing (501) is provided with a removable baffle (605), and the bottom of the baffle (605) is provided with an adjustment block (606) that is slidably connected to the inner wall of the mounting housing (501). The bottom of the adjustment block (606) is in contact with the surface of the lens module (3).

6. The shockproof structure for an internal camera of a mobile phone according to claim 5, characterized in that: The top of the mounting shell (501) is fixedly connected with evenly distributed spring pieces (607), the middle part of which protrudes outward to form an arc shape. The top of the adjusting block (606) is fixedly connected with evenly distributed push rods (608), the upper end of which passes through the mounting shell (501) and is fixedly connected to the bottom of the spring pieces (607).

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