Lens unit, camera module, and electronic device

By designing a lens unit with a movable sleeve and cover plate assembly, combined with a drive mechanism and a variable aperture, the contradiction between imaging quality and height in the camera module is resolved, achieving module miniaturization and improved imaging quality, while preventing external damage and dust ingress.

CN116668808BActive Publication Date: 2026-06-02NINGBO SUNNY OPOTECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
NINGBO SUNNY OPOTECH CO LTD
Filing Date
2022-02-17
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

While existing camera modules improve image quality, they also increase the module height, making the device unsightly and prone to damage. The optical lens is easily damaged by external forces when it extends, and dust and liquid can enter, affecting image quality. Furthermore, the large chip size results in poor resolution when shooting at close range.

Method used

Design a lens unit including a movable sleeve and a cover plate assembly. The inner and outer sides of the sleeve form a space to accommodate the lens and a drive motor. The lens extension and retraction movement is realized by the drive device. Combined with a variable aperture device, the distance between the lens and the image sensor is adjusted to prevent external damage and dust from entering.

Benefits of technology

It achieves miniaturization of the camera module, improves image quality, prevents external damage, maintains the aesthetics of the equipment, prevents dust and liquid from entering, and improves resolution for close-focus shooting.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to a lens unit, a camera module and an electronic device. The lens unit comprises an optical lens and a cover plate assembly, the cover plate assembly comprises a movable sleeve and a transparent cover plate embedded in the movable sleeve, the movable sleeve is capable of axial movement in the direction of the lens optical axis relative to the fixed base of the lens unit, a sleeve protrusion extending downward around the through hole is configured on the sleeve end wall of the movable sleeve, the aperture of the sleeve protrusion is larger than the aperture of the lens end face, a central first space is formed inside the sleeve protrusion, which can be used to accommodate the upper end face of the lens and the variable aperture. A peripheral second space is formed between the outside of the sleeve protrusion and the inside of the sleeve peripheral wall, below the sleeve protrusion and outward to the inside of the sleeve peripheral wall, which can be used to accommodate the motor, the stop and other components.
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Description

Technical Field

[0001] This invention relates to the field of camera module technology, and more particularly to a lens unit and a camera module having the lens unit, as well as an electronic device including the camera module. Background Technology

[0002] To meet the trend of thinner and lighter terminal devices, various component manufacturers are dedicated to researching camera modules that offer high image quality while reducing or maintaining the same overall height. Improving the image quality of camera modules inevitably leads to an increase in the size of the image sensor. However, as image quality continues to improve, the size of the image sensor in existing camera modules is constantly increasing, resulting in a corresponding increase in module height. While a larger image sensor improves image quality when assembled into a terminal device, it also increases the module's height. When installed, the back of the camera module protrudes significantly from the device's casing, making it susceptible to damage under external forces and negatively impacting the aesthetics of the product, thus reducing the user experience. Therefore, there is an irreconcilable contradiction between increasing chip size and increasing module height.

[0003] To improve the imaging quality of camera modules while reducing their overall height, and to cater to the trend of thinner and lighter terminal devices, existing technologies include a retractable camera module structure. This structure involves a retractable structure on the optical lens. When the camera module is working, the retractable structure drives the optical lens away from the image sensor. When the camera module is not working, the retractable structure brings the optical lens closer to the image sensor, greatly reducing the distance between the image sensor and the optical lens. This retractable optical lens design, combined with a large image sensor, can resolve the contradiction between image quality and module height.

[0004] However, since the optical lens needs to extend beyond the casing of the terminal device during the imaging process, it is easily damaged when subjected to external forces such as drops or pressure. When the external force is large, the entire module structure may be damaged, making it impossible to guarantee the normal operation of the terminal device. At the same time, since the optical lens needs to extend beyond the casing of the terminal device, there is a certain gap between the optical lens and the casing of the terminal device. External dust, liquids, etc. can enter the camera module through the reserved gap, which will affect the imaging quality of the camera module.

[0005] Meanwhile, due to the complex shooting environment of camera modules, overexposure may occur in well-lit environments, while blurring may result in blurred subjects in dimly lit environments. Furthermore, the large chip size leads to an increase in lens and module size. To meet the miniaturization requirements of camera modules, the module size needs to be reduced, resulting in poor resolution during close-up shooting. A variable aperture can be used to compensate for this poor close-up imaging when shooting with a large chip. In existing camera module structures, autofocus (AF) is achieved by using a motor to drive the optical lens. Therefore, a solution is needed to ensure reliable cooperation between the motor mechanism and the variable aperture mechanism to improve the image quality of the camera module.

[0006] To address the aforementioned issues, a novel lens unit and camera module design is needed to effectively solve some or most of the problems, thereby improving the imaging quality of the camera module while miniaturizing the module structure. Summary of the Invention

[0007] The present invention aims to optimize the structural design of telescopic lenses, and proposes a lens unit, a camera module with the lens unit, and an electronic device including the camera module.

[0008] According to a first aspect of the present invention, a lens unit is provided, comprising:

[0009] An optical lens, comprising at least one lens element having a lens element, and

[0010] A cover plate assembly, comprising a cover plate support and a transparent cover plate fitted into the cover plate support, the transparent cover plate covering the optical lens;

[0011] The cover plate support is constructed as a movable sleeve, which is axially movable relative to the fixed base of the lens unit in the direction of the lens optical axis, and includes:

[0012] The sleeve end wall has a through hole for embedding the transparent cover plate, and

[0013] The sleeve peripheral wall extends downward around the periphery of the sleeve end wall.

[0014] The sleeve end wall is provided with a sleeve protrusion extending downward around the through hole. The downward extension length of the sleeve protrusion is less than the downward extension length of the sleeve peripheral wall. A central first space is formed inside the sleeve protrusion. A peripheral second space is formed between the outer side of the sleeve protrusion and the inner side of the sleeve peripheral wall, below the sleeve protrusion, and outward to the inner side of the sleeve peripheral wall. The optical lens is at least partially accommodated in the first space with its upper end portion.

[0015] Accordingly, in the lens unit of the present invention, the sleeve-shaped support member of the cover plate assembly includes a sleeve protrusion extending downward, the inner diameter of the sleeve protrusion being larger than the outer diameter of the lens end, and a space (i.e., the first space mentioned above) is formed inside the protrusion, which can be used to accommodate the upper end face of the lens and the selectively set variable aperture; a space (i.e., the second space mentioned above) is formed outside the protrusion, which can be used to accommodate the drive motor, stop part and other components related to the lens component, thereby reducing the motor shoulder height and the overall height of the telescopic camera module, making the overall structure of the camera module more compact, and effectively preventing the telescopic lens from being damaged by external forces during the telescopic process, while also preventing external dust, liquid and other impurities from entering the camera module, thus improving the imaging quality of the camera module.

[0016] It should be noted that the terms "up," "down," "inner," and "outer" are defined in accordance with the orientation shown in the exemplary figures of this application. Here, the direction along the optical axis of the lens from the object side to the image side corresponds to the direction from "up" to "down." The terms "axial" and "radial" refer to the optical axis of the lens, that is, the axial direction is along (or parallel to) the optical axis of the lens, and the radial direction is perpendicular to the optical axis of the lens. Accordingly, "inner" refers to the position that is radially close to the optical axis, and "outer" refers to the position that is radially away from the optical axis.

[0017] Furthermore, the first space is constructed as a cylindrical hole, the diameter of which is larger than the diameter of the upper end of the optical lens, which is sufficient to place the upper end of the optical lens inside the sleeve protrusion, thus meeting the miniaturization requirements of the lens.

[0018] Furthermore, the axial movement of the movable sleeve includes a retraction movement that brings the movable sleeve closer to the fixed base and a protrusion movement that moves it away from the fixed base.

[0019] Furthermore, the lens unit includes at least one first drive device for driving the movable sleeve to perform the retraction movement and at least one pop-out mechanism for pushing the movable sleeve to perform the extension movement. Through the coordinated action of the first drive device and the pop-out mechanism, the lens unit can be popped out and returned to its original position from the electronic device when in use.

[0020] Furthermore, the first driving device includes a fixed part fixed to the fixed base and a movable part connected to the movable sleeve.

[0021] Furthermore, the movable sleeve has at least one actuating connection end on the outer side of its sleeve peripheral wall. The actuating connection end is connected to the movable part of the first driving device to transmit the power of the first driving device to the movable sleeve and drive it to move.

[0022] Furthermore, the first driving device includes a stepper motor.

[0023] Furthermore, at least one lens component of the optical lens is provided on its side with at least one second driving device for adjusting the axial position of the lens component or its lens when the movable sleeve is extended. The second driving device can be provided on the periphery of the optical lens for focusing.

[0024] Furthermore, the second drive unit is at least partially housed within the second space.

[0025] Furthermore, the lens unit includes an upper limit stop mechanism and a lower limit stop mechanism for limiting the axial movement stroke of the movable sleeve. At least the upper limit stop mechanism is at least partially accommodated in the second space. The upper limit stop mechanism is used to limit the lens component during the extension movement, so that the lens extends to a suitable position and avoids the lens component from popping out excessively and hitting the cover plate assembly (or transparent cover plate) or even causing it to fall off. The lower limit stop mechanism is used to limit the lens component on the image side during the retraction movement, so as to prevent pressure or impact on the photosensitive component (such as the filter set as its topmost component) and cause damage to it.

[0026] Furthermore, at least one lens component of the optical lens has at least one shoulder that protrudes radially outward relative to the upper end of the optical lens on its side. When the movable sleeve performs the retraction movement, the free end of the sleeve protrusion can at least partially abut against the upper side of the shoulder, thereby pushing the lens component of the optical lens to move axially downward until the lower limit stop mechanism is activated.

[0027] Furthermore, at least one lens component of the optical lens is provided on its side with at least one second driving device for adjusting the axial position of the lens component or its lens when the movable sleeve is extended, and the shoulder is formed by the housing of the second driving device or a part thereof.

[0028] Alternatively, the shoulder may be formed on the lens barrel of the lens component.

[0029] Furthermore, during the retraction movement of the movable sleeve, after the movable sleeve has initially moved a certain distance, the free end of the sleeve protrusion abuts against the upper side of the shoulder. This distance is available for focusing during operation, while preventing the sleeve protrusion from obstructing the movement of the lens components during focusing.

[0030] Furthermore, the optical lens includes at least two lens components, wherein a shoulder is formed on the first lens component, the second lens component is disposed below the first lens component, and the pop-out mechanism is disposed between the first lens component and the second lens component. When the movable sleeve performs the extension movement, the pop-out mechanism causes the first lens component and the second lens component to move apart, and allows the upper side of the shoulder to at least partially abut against the free end of the sleeve protrusion, thereby pushing the movable sleeve to move axially upward until the upper limit stop mechanism is activated.

[0031] Furthermore, the pop-out mechanism includes an elastic member and a support rod for guiding and supporting the elastic member. The elastic member is capable of driving the first lens component and the second lens component to move apart through elastic preload.

[0032] Furthermore, the upper limit stop mechanism includes a first stop element fixed relative to the first lens component and a second stop element fixed relative to the second lens component. The upper limit stop mechanism limits the extension length of the lens component through the mutual limiting function of the two stop elements.

[0033] Furthermore, the upper limit stop mechanism can be at least partially accommodated in the second space.

[0034] Furthermore, the lower limit stop mechanism includes a lower stop element fixed relative to the fixed base. The lower limit stop mechanism / lower stop element is provided to ensure a suitable distance between the optical lens and the upper surface of the photosensitive assembly, while preventing collisions during lens extension / retraction and / or focusing movements.

[0035] Furthermore, the second lens component is fixed to the fixed base, and the lower stop element is composed of the second lens component or a part thereof.

[0036] Optionally or additionally, the lens unit is equipped with a variable aperture device, which is fixed to the upper end of the optical lens and housed within the first space.

[0037] According to a second aspect of the present invention, a camera module is provided, comprising:

[0038] As mentioned above, the lens unit, and

[0039] A photosensitive component, comprising a carrier, a circuit board, and a photosensitive chip attached to the circuit board;

[0040] The lens unit is mounted on the support frame of the photosensitive component via its mounting base.

[0041] Furthermore, there is a first gap between the transparent cover plate and the upper surface of the optical lens, a second gap between each lens component and / or each lens element of the optical lens, and a third gap between the lower surface of the optical lens and the topmost component of the photosensitive assembly, wherein at least the first gap and the second gap are variable.

[0042] Furthermore, when the camera module is working, the movable sleeve and the optical lens are extended, and at least the first gap and the second gap can be controlled to change between their respective maximum and minimum values ​​to adjust the distance between each lens component and / or each lens element of the optical lens relative to the photosensitive chip in the optical axis direction, thereby realizing the focusing function after the optical lens is extended.

[0043] Furthermore, the third gap can also be controlled to vary between its maximum and minimum values ​​to adjust the distance between the lens components and / or lenses of the optical lens relative to the photosensitive chip in the optical axis direction.

[0044] Furthermore, when the camera module is not in operation, the movable sleeve and the optical lens are retracted, and the first gap, the second gap, and the third gap can be reduced to and kept to a minimum, thereby achieving the most compact storage structure for the optical lens in standby mode.

[0045] Furthermore, the minimum value of the second gap is 0.

[0046] Furthermore, the photosensitive component also includes a filter, which constitutes the topmost component of the photosensitive component.

[0047] Furthermore, the photosensitive component also includes a third driving device, which can at least drive the photosensitive chip to move in a plane perpendicular to the optical axis, so as to simultaneously achieve image stabilization adjustment of the lens.

[0048] According to a third aspect of the present invention, an electronic device is provided, which includes the camera module as described above, and the electronic device may be a smartphone, tablet computer or other portable device.

[0049] It goes without saying that the features and advantages of the lens unit provided in the first aspect of the present invention are also applicable to the camera module provided in the second aspect of the present invention and the electronic device provided in the third aspect of the present invention. Attached Figure Description

[0050] Some exemplary embodiments of the invention are illustrated in the accompanying drawings. The embodiments and drawings disclosed herein should be considered illustrative rather than restrictive. It is also worth noting that, for clarity of illustration, some structural details in the drawings are not drawn to scale.

[0051] Figure 1This is a cross-sectional schematic diagram of a camera module in working state according to a preferred embodiment of the present invention;

[0052] Figure 2 This is a cross-sectional schematic diagram of a camera module in standby mode according to a preferred embodiment of the present invention;

[0053] Figure 3 This is an exploded view of the components of a camera module according to a preferred embodiment of the present invention;

[0054] Figure 4 This is a cross-sectional schematic diagram of a camera module in working state according to another preferred embodiment of the present invention;

[0055] Figure 5 This is a cross-sectional schematic diagram of a camera module in standby mode according to another preferred embodiment of the present invention;

[0056] Figure 6 This is an exploded view of the components of a camera module according to another preferred embodiment of the present invention. Detailed Implementation

[0057] The following description is used to illustrate the technical solutions of the present invention, so that those skilled in the art can implement the present invention. The preferred embodiments described below are merely examples, and those skilled in the art can conceive of other obvious variations. The basic principles of the present invention defined in the following description can be applied to other embodiments, modifications, improvements, equivalents, and other technical solutions that do not depart from the spirit and scope of the present invention. Furthermore, it is worth noting that the features, structures, or characteristics described in conjunction with a particular embodiment are not necessarily limited to that specific implementation, nor are they mutually exclusive with other embodiments. Within the capabilities of those skilled in the art, different combinations of features in different embodiments can be considered.

[0058] The terms "first," "second," etc., used in the specification and claims are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising," "including," and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, product, or apparatus that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or apparatuses. In the description of this application, the terms "longitudinal," "transverse," "axial," "radial," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," etc., indicate orientation or positional relationships based on the orientation or positional relationships shown in the drawings. They are only for the convenience of describing the invention and simplifying the description, and do not mean that the corresponding device or element must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, the above terms should not be construed as limiting the invention. In addition, the term "a" should be understood as "at least one" or "one or more", that is, in one embodiment, the number of a certain element can be one, while in another embodiment, the number of the element can be multiple. In other words, the term "a" should not be understood as a limitation on the quantity.

[0059] Unless otherwise specified, all terms used herein (including technical and scientific terms) have the same meaning as commonly understood by one of ordinary skill in the art and may be interpreted in the context of their application in the relevant technical description.

[0060] This invention proposes a telescopic design for the CG (Cover Glass). When the camera module is in operation, the CG extends using a telescopic structure, and an elastic element at the lens end allows the optical lens to move a certain distance away from the image sensor, meeting the TTL requirements for imaging large-size (e.g., one inch or larger) sensors and enabling the module to capture images. After capturing images, the telescopic structure retracts the CG back to its initial position, simultaneously compressing the distance between the image sensor and the optical lens, restoring them to their initial state. This reduces the overall height of the camera module when it is not in operation. This design effectively resolves the inherent contradiction between improving the imaging quality of large-size image sensors and the inherent height of the module itself, allowing terminal devices equipped with this camera module to achieve a slimmer and lighter design. It enhances the overall aesthetics while fulfilling its imaging function, meeting market demands and improving user satisfaction.

[0061] Based on the above design concept, after analyzing the methods for reducing the height of large-size chips in camera modules, four spatial distances in the existing module design can be optimized, in descending order of height: ① the height H1 of the lens body and the compression of the lens gap; ② the height H2 between the bottom surface of the optical lens and the photosensitive component; ③ the distance H3 between the CG and the end face of the lens; ④ the height H4 of the photosensitive component itself. After analysis and comparison, the current photosensitive component already adopts a design of photosensitive chip + steel sheet, which has limited height reduction distance. Therefore, the main focus is on optimizing the heights of H1, H2, and H3. The main design concept is to ensure that H1, H2, and H3 meet the imaging distance requirements when in working state, and to minimize the distance between H1, H2, and H3 when not in working state, thereby reducing the height when not in working state and meeting the trend of thinner and lighter terminal devices.

[0062] Therefore, as Figure 1-6 As shown, the present invention proposes a lens unit 100a, including an optical lens 20 and a cover plate assembly. The optical lens includes at least one lens component with at least one lens element. The cover plate assembly includes a cover plate support and a transparent cover plate 10 embedded in the cover plate support. The transparent cover plate 10 covers the optical lens 20 and is coaxially arranged with the optical lens 20. The transparent cover plate 10 is made of a light-transmitting material to transmit light and protect the optical lens 20. The area of ​​the transparent cover plate 10 perpendicular to the optical axis is larger than the cross-section of the light beam entering the optical lens 20, so that when an external force is applied to the lens unit 100a, it first acts on the transparent cover plate 10 to protect the optical lens 20 and improve the reliability of the lens unit and the camera module.

[0063] The cover plate support is constructed as a movable sleeve 413, which is axially movable relative to the fixed base 417 of the lens unit in the direction of the lens optical axis. The sleeve includes an end wall and a peripheral wall. The end wall has a through hole 41342 for embedding the transparent cover plate 10. The area of ​​the through hole 41342 perpendicular to the optical axis is larger than the cross-section of the light beam entering the optical lens, preventing the sleeve support from blocking light. The peripheral wall extends downward around the periphery of the end wall, and its bottom extends outward to form a movable sleeve portion 4132, which is connected to the first driving device 41.

[0064] The cover plate support raises the transparent cover plate 10 above the optical lens 20. Meanwhile, the movable sleeve 413 can be made of plastic material. Plastic material has better pressure resistance and damage resistance than glass, so that when external force is applied to the retractable module, more of the external force is applied to the movable sleeve, thereby improving the reliability of the retractable module.

[0065] The sleeve end wall has a sleeve protrusion 4134 extending downward around the sleeve through hole 41342. A central first space is formed inside the sleeve protrusion 4134, and a peripheral second space is formed between the outer side of the sleeve protrusion 4134 and the inner side of the sleeve peripheral wall, below the sleeve protrusion 4134, and outward to the inner side of the sleeve peripheral wall. The inner diameter of the sleeve protrusion 4134 is larger than the aperture of the upper end face of the lens, which can reserve clearance for lens focusing and protect the upper end face of the first lens component through the first space, improving the reliability of the lens unit and the camera module. The optical lens 20 can be at least partially accommodated in the first space with its upper end face. The second space can be used to place other components, saving space, reducing the height of the camera module, and realizing the miniaturization of the camera module.

[0066] The sleeve protrusion 4134 can be constructed as a ring protrusion structure or a block structure evenly distributed in a circumferential direction to form a first space and a second space inside the sleeve.

[0067] According to the structural requirements of the present invention, the downward extension length of the sleeve protrusion 4134 is less than the downward extension length of the sleeve peripheral wall. For example, the downward extension length of the sleeve protrusion 4134 can be selected as 1 / 4 to 2 / 3 of the downward extension length of the sleeve peripheral wall, so as to accommodate the lens component and the like within the movable sleeve 413, effectively forming an isolation effect between its internal components and the outside world.

[0068] According to one embodiment of the present invention, the first space is constructed as a cylindrical hole, the diameter D1 of which is larger than the upper end diameter d of the optical lens 20. Preferably, the diameter D1 of the cylindrical hole can be selected to be 1.05 to 2.50 times the upper end diameter d of the optical lens 20.

[0069] Optionally, the radial dimension of the outer side of the sleeve protrusion 4134 is 1.10 to 1.50 times the diameter of the cylindrical hole.

[0070] Preferably, the radial dimension of the outer side of the sleeve protrusion 4134 gradually decreases from the sleeve end wall to the free end of the sleeve protrusion 4134, forming a shape as shown in the figure. Figure 1 , 2 as well as Figure 4 , 5 The tapered surface shown can, for example, form a suitable draft angle, facilitating manufacturing.

[0071] According to the structural requirements of the present invention, the radial dimension of the inner side of the sleeve peripheral wall is larger than the radial dimension of the outer side of the sleeve protrusion 4134. Preferably, the radial dimension of the inner side of the sleeve peripheral wall can be selected as 1.10 to 2.00 times the radial dimension of the outer side of the sleeve protrusion 4134. This forms a second space of suitable size between the inner side of the sleeve peripheral wall and the outer side of the sleeve protrusion 4134, which can be used to accommodate components such as motors and stop parts, as will be further explained below.

[0072] According to a preferred embodiment of the present invention, the axial movement of the movable sleeve 413 includes a retraction movement that brings the movable sleeve 413 closer to the fixed base 417 and a protrusion movement that moves it away from the fixed base 417.

[0073] It should be noted that the retraction motion is a downward axial motion, and the extension motion is an upward axial motion.

[0074] According to this preferred embodiment of the invention, the lens unit 100a further includes at least one first drive device 41 for driving the movable sleeve 413 to perform the retraction movement and at least one pop-out mechanism 30 for pushing the movable sleeve 413 to perform the extension movement.

[0075] Furthermore, the first driving device 41 includes a fixed part fixed to the fixed base 417 and a movable part connected to the movable sleeve 413. The movable sleeve 413 has at least one actuating connection end on the outer side of its sleeve peripheral wall, and the actuating connection end is connected to the movable part of the first driving device 41. Even further, the first driving device 41 includes a stepper motor and a transmission part for transmission.

[0076] According to a preferred embodiment of the present invention, the actuating connection end is a first movable connection end 41321, the stepper motor serves as a drive device 41211, and the transmission part includes a gear device 41221 and a transmission screw 41222. The movable part is a transmission component 413211 that cooperates with the transmission screw 41222, which can be a nut component. In particular, the external structure of the transmission component 413211 matches the first movable connection end 41321, so that it does not rotate relative to the first movable connection end 41321 during operation. Thus, the first drive device 41 is an actuation structure similar to a "screw and nut transmission mechanism". Specifically, the first driving device has the following structure and operation: the stepper motor acts as the driver 41211, driving the gear device 41221 and the transmission screw 41222 to rotate. Since the transmission component 413211 is a non-rotatable nut component, the transmission component 413211 moves axially up and down along the transmission screw 41222, driving the movable sleeve 413 to perform an extension or retraction movement.

[0077] According to the structure of the preferred embodiment described above, a guide connection end is provided on the outer side of the movable sleeve 413, at a radially opposite position to the actuating connection end (first movable connection end 41321). Preferably, two guide connection ends can be provided, such as... Figure 3 The second movable connection end 41322 and the third movable connection end 41323 shown in Figure 6 can be positioned according to the actual situation, such as radially opposed or without affecting the position of other components.

[0078] According to one embodiment of the present invention, the lens unit 100a includes at least one guide mechanism for guiding the axial movement of the movable sleeve 413. The guide mechanism includes a guide rod 4151 fixed to the fixed base 417 and a guide groove or guide hole disposed on the movable sleeve. The guide rod 4151 matches the guide groove or guide hole, and when the movable sleeve 413 performs axial movement, the guide groove or guide hole can slide along the guide rod 4151. Figure 3 Or as shown in diagram 6, the guide groove or guide hole is constructed on the guide connection end (second movable connection end 41322).

[0079] According to a preferred embodiment of the present invention, at least one lens component of the optical lens 20 is provided on its side with at least one second driving device 42 for adjusting the axial position of the lens component or its lens elements when the movable sleeve 413 is extended. This second driving device 42 is particularly located on the periphery of the optical lens and is primarily used for focusing during the shooting process, such as an SMA drive device or a voice coil motor. Furthermore, the second driving device 42 is at least partially accommodated within the second space.

[0080] According to a preferred embodiment of the present invention, the lens unit includes an upper limit stop mechanism and a lower limit stop mechanism for limiting the axial movement stroke of the movable sleeve 413, wherein at least the upper limit stop mechanism is at least partially accommodated in the second space.

[0081] Furthermore, at least one lens component of the optical lens has at least one shoulder 24 that protrudes radially outward relative to the upper end of the optical lens on its side. When the movable sleeve 413 performs the retraction movement, the free end of the sleeve protrusion 4134 can at least partially abut against the upper side of the shoulder 24, thereby pushing the lens component of the optical lens to move axially downward until the lower limit stop mechanism is activated.

[0082] according to Figure 1 and Figure 2 In a preferred embodiment of the present invention shown, the shoulder 24 is formed on the lens barrel of the lens component. A gap exists between the lower surface of the sleeve protrusion 4134 and the shoulder 24 of the first lens barrel, providing space for the optical lens to move along the optical axis, preventing collisions during focusing, and improving the reliability of the camera module's extension and retraction. Simultaneously, this gap also provides space for the variable aperture device to be activated, facilitating the circuitry of the variable aperture.

[0083] During the retraction movement of the movable sleeve 413, the free end of the sleeve protrusion 4134 only comes into contact with the upper side of the shoulder 24 after the movable sleeve 413 has initially moved a certain distance. Therefore, the distance between the free end of the sleeve protrusion 4134 and the shoulder 24 can be used for focusing in the working state, or in other words, to prevent the sleeve protrusion 4134 from obstructing the movement of the lens components when focusing in the working state, or to prevent collision between the shoulder 24 and the sleeve protrusion 4134 when focusing in the working state.

[0084] according to Figure 4 and Figure 5 In another preferred embodiment of the invention shown, at least one lens component of the optical lens 20 is provided on its side with at least one second drive device 42 for adjusting the axial position of the lens component or its lens elements when the movable sleeve 413 is extended. The shoulder 24 is formed by the housing of the second drive device 42 or a part thereof, and can be used to prevent excessive movement of the optical lens during the extension movement. In the non-operating state, the second drive device 42 can be partially accommodated in the aforementioned second space, reducing the motor shoulder height and thus reducing the height of the camera module.

[0085] According to one embodiment of the present invention, the optical lens is configured as a split optical lens, including at least a first lens component 21 and a second lens component 22, wherein a shoulder 24 is formed on the first lens component 21, the second lens component 22 is disposed below the first lens component 21, and the pop-out mechanism 30 is disposed between the first lens component 21 and the second lens component 22. When the movable sleeve 413 performs the extension movement, the pop-out mechanism 30 causes the first lens component 21 and the second lens component 22 to move apart, and causes the upper side of the shoulder 24 to at least partially abut against the free end of the sleeve protrusion 4134, thereby pushing the movable sleeve to move upward along the axial direction until the upper limit stop mechanism is activated.

[0086] Preferably, the pop-out mechanism 30 includes an elastic member 31 and a support rod 32 for guiding and supporting the elastic member. The elastic member 31 can drive the first lens component 21 and the second lens component 22 to move apart through elastic preload. The elastic member is, for example, a helical spring, which can be fitted onto the support rod 32.

[0087] According to one embodiment of this application, the upper stop mechanism includes a first stop element 25 fixed relative to the first lens component 21 and a second stop element 26 fixed relative to the second lens component 22.

[0088] In such Figure 1 and Figure 2 In a preferred embodiment shown, the first lens component 21 includes a first lens barrel and a first lens group, and the second lens component 22 includes a second lens barrel and a second lens group. The first lens group is disposed within the first lens barrel, which protects the first lens group. The second lens group is disposed within the second lens barrel, which protects the second lens group. The shoulder 24 is integrally formed with the first lens barrel.

[0089] The upper limit stop mechanism includes a second stop element 26 fixed above the edge of the second lens component 22 and a first stop element 25 fixed below the shoulder 24. The second stop element 26 is higher than the first stop element 25. The second stop element 26 may be an annular structure. The upper end of the second stop element 26 includes a protrusion extending in the axial direction. When the outer edge of the first stop element 25 can move upward, it just abuts against the protrusion of the second stop element 26.

[0090] In such Figure 4 and Figure 5In another preferred embodiment shown, the first lens component 21 includes a first lens barrel and a first lens group, and the second lens component 22 includes a second lens barrel and a second lens group. The first lens group is disposed within the first lens barrel, which can be used to protect the first lens group, and the second lens group is disposed within the second lens barrel, which can be used to protect the second lens group.

[0091] A second drive component 42 is provided on the outer side of the first lens barrel, which can be a type of AF motor. In this embodiment, the maximum outer diameter of the second lens component 22 is greater than the maximum outer diameter of the second drive device 42, so as to keep the size of the lens unit in the x / y direction (that is, the radial direction, or the direction perpendicular to the optical axis of the lens) within a small range.

[0092] The upper limit stop mechanism includes a first stop element 25 and a second stop element 26 that cooperate with each other. The second stop element 26 is higher than the first stop element 25. The second stop element 26 can be a ring structure. The bottom of the second stop element 26 is connected to the outer edge of the second lens component 22 or the position where the second lens component 22 is connected to the fixed base 417. The upper end of the second stop element includes a protrusion extending in the axial direction. The first stop element can be a ring structure with an L-shaped cross-section. The diameter of the outer circumference of the first stop element is slightly smaller than the diameter of the inner circumference of the second stop element to facilitate their installation. The first stop element can be fixed to the side and bottom of the second drive device 42 for synchronous movement and can also protect the second drive part in the X, Y, and Z directions. The top of the first stop element 25 can just abut against the protrusion of the second stop element 26. The lower surface of the first stop element 25 can be recessed inward to accommodate the support rod 32. The first lens component 22 and the second driving device 42 are supported above the second lens component 22 by the elastic mechanism 30 and the upper limit stop mechanism. The second space formed between the outer side of the sleeve protrusion 4134 and the inner side of the movable sleeve 413 can accommodate the second stop element 26, saving space and making the camera module more compact.

[0093] In any of the above embodiments, the first stop element 25 is disposed between the pop-out mechanism 30 and the shoulder 24, and the lower surface of the first stop element 25 may be provided with an inward recess for accommodating the support rod 32 of the pop-out mechanism 30.

[0094] like Figure 5 As shown, in this embodiment, the second stop element 26 can extend at least partially between the outer side of the sleeve protrusion 4134 and the inner side of the sleeve peripheral wall when the movable sleeve 413 is retracted (corresponding to the standby state).

[0095] By cooperating with the first and second stop elements, the first lens component 21 and the second drive device 42 can be effectively stopped and limited when they are bounced upwards.

[0096] In this embodiment, the lower limit stop mechanism includes a lower stop element 27 fixed relative to the fixed base 417.

[0097] Under the concept of the present invention, a lower limit stop mechanism / lower stop element 27 is provided to ensure that there is a suitable distance between the optical lens (especially its second lens component 22) and the photosensitive component 100b or the filter, while preventing the two from colliding during lens extension and / or focusing movements.

[0098] In this embodiment, the second lens component 22 is fixed to the fixed base 417, and the lower stop element 27 is composed of the second lens component 22 or a part thereof.

[0099] According to any embodiment of the present invention, the lens unit may be equipped with a variable aperture device 70, which is fixed to the upper end of the optical lens 20 and housed within the first space. For this, see [link to relevant documentation]. Figure 1-3 The embodiment shown. Of course, in Figure 4-6 In the illustrated embodiment, such a variable aperture device may also be provided depending on the specific design and usage requirements.

[0100] The variable aperture device 70 includes a variable aperture fixing part, aperture blades, a variable aperture driving part, and a variable aperture electrical connection part. The variable aperture fixing part is fixed to the upper surface and side wall of the first lens barrel. The aperture blades of the variable aperture extend inward to above the first lens component 21. The aperture blades are located on the light path of the lens unit and are used to change the size of the variable aperture to adjust the amount of light entering the lens unit. The variable aperture is set on the upper end face of the first lens component. Since the chip size in this invention is relatively large, the lens size will increase, and the module size will also increase accordingly. In order to meet the requirements of miniaturization of the camera module, the module size needs to be reduced, resulting in poor resolution when shooting at close range. The variable aperture is needed to compensate for the poor close-range imaging when shooting with a large chip. The shoulder 24 (the platform on the upper surface of the first lens barrel) creates a receiving space. The variable aperture device is placed within this space, allowing it to descend from the upper surface of the first lens barrel to the side, reducing the height of the lens unit and camera module, resulting in a more compact overall structure. The sleeve protrusion 4134, the transparent cover plate 10, and the first lens barrel together form a receiving space. This space houses part of the first lens component 21 and the variable aperture device 70. The receiving space provides room for the variable aperture device 70 to move while protecting the lens end face and the variable aperture device, improving the reliability of the lens elements and camera module.

[0101] The height of the sleeve protrusion 4134 along the optical axis is greater than the height of the variable aperture along the optical axis, resulting in a gap between the upper surface of the variable aperture and the transparent cover plate 10. This prevents the variable aperture from colliding with the transparent cover plate 10 during subsequent extension and retraction, thus preventing damage to the lens unit. A gap exists between the outer side of the variable aperture and the inner side of the sleeve protrusion 4134 to allow space for deformation of the variable aperture during operation.

[0102] The present invention also provides a camera module 100, including a lens unit 100a as described above, and a photosensitive component 100b, the photosensitive component 100b including a carrier frame, a circuit board 61 and a photosensitive chip 62 attached to the circuit board 61; wherein the lens unit is mounted on the carrier frame of the photosensitive component 100b via its fixing base 417.

[0103] According to one embodiment of the present invention, a first gap S1 exists between the transparent cover plate 10 and the upper surface of the optical lens 20, a second gap S2 exists between each lens component and / or each lens element of the optical lens 20, and a third gap S3 exists between the lower surface of the optical lens 20 and the topmost member of the photosensitive assembly 100b, wherein at least the first gap S1 and the second gap S2 are variable. The third gap S3 can also be controlled to vary between its maximum and minimum values ​​to adjust the distance of each lens component and / or each lens element of the optical lens 20 relative to the photosensitive chip 62 in the optical axis direction.

[0104] Specifically, see, for example Figure 1 and Figure 2 or Figure 4 and Figure 5 There is a first gap S1 between the transparent cover plate 10 and the upper surface of the first lens component 21, a second gap S2 between the first lens component 21 and the second lens component 22, and a third gap S3 between the second lens component 22 and the photosensitive component 100b.

[0105] When the camera module is working, the movable sleeve 413 and the optical lens 20 are extended, and at least the first gap S1 and the second gap S2 can be controlled to change between their respective maximum and minimum values ​​to adjust the distance between the first lens component 21 and the second lens component 22 in the optical axis direction relative to the photosensitive chip 62, so as to achieve focusing based on the structure of the present invention.

[0106] When the camera module is not in operation, the movable sleeve 413 and the optical lens 20 are retracted, and the first gap S1, the second gap S2 and the third gap S3 can be reduced to and kept to a minimum, achieving a compact storage structure.

[0107] Preferably, the minimum value of the second gap S2 is 0.

[0108] Additionally, the photosensitive component 100b further includes a filter, which constitutes the topmost component of the photosensitive component 100b. Preferably, the photosensitive component 100b further includes a third driving device 50, capable of driving the photosensitive chip 62 to move in a plane perpendicular to the optical axis. The third driving device 50 is mainly a photosensitive chip image stabilization component, including a chip image stabilization fixing part, a chip image stabilization movable part, a driving element SMA, etc. The chip image stabilization movable part is connected to the photosensitive component. When the photosensitive chip movable part moves relative to its fixing part, it can drive the photosensitive chip to move, thereby realizing the image stabilization (OIS) function of the photosensitive chip. For this, see [link to relevant documentation]. Figure 4-6 The embodiment shown. Of course, in Figure 1-3 In the illustrated embodiment, depending on the specific design and usage requirements, such a third drive device can also be provided to achieve the anti-shake function.

[0109] In addition, the photosensitive component 100b also includes electronic components, etc. The photosensitive chip 62 is fixed to the upper surface of the circuit board and is in communication with it. The electronic components are distributed on the side of the photosensitive chip 62. The electronic components and the part connecting the photosensitive chip 62 to the circuit board 61 are molded through a molding process. The molded base formed has a filter mounting position on its cross section. That is, the molded base molds the electronic components inside it, which can effectively reduce the overall height of the photosensitive component.

[0110] As an example, based on the corresponding structures of the components described above, the working process of the two embodiments shown in the figure will be explained in detail below.

[0111] (one) Figure 1 , Figure 2 A preferred embodiment shown

[0112] (i) The camera module is composed of Figure 2 The standby state shown enters as follows Figure 1 The working status shown

[0113] The pop-out mechanism 30 causes the first lens component 21 and the second lens component 22 to move apart, and the optical lens 20 moves upward along the optical axis. This allows the upper side of the shoulder 24 to at least partially abut against the free end of the sleeve protrusion 4134, thereby pushing the movable sleeve 413 to move upward along the axis and perform an extension movement until the top of the first stop element 25 abuts against the second stop element 26, that is, the upper limit stop mechanism is activated. During this process, the movable sleeve 413 can achieve a maximum stroke of L1 through the first driving device 41. The first lens component 21 of the optical lens can move axially relative to the second lens component 22 through the action of the pop-out mechanism, with a maximum stroke of L2. The variable range of the first gap S1 between the transparent cover plate 10 and the upper end face of the first lens component 21 of the optical lens is ΔS1. The second gap S2 between the first lens component 21 and the second lens component 22 increases, with a variable range of ΔS2, which can be between 0 and L2. The second lens component 22 can move axially relative to the fixed base 417, so that the third gap S3 between the lower end face of the second lens component 22 and the filter can also change under the action of the second driving device 42.

[0114] (ii) The camera module is composed of Figure 1 The working state shown enters as follows Figure 2 Standby status shown

[0115] The first driving device 41's driving device 41211 (stepper motor) drives the transmission screw 41222 to rotate via the gear device 41221. The transmission component 413211 moves downward along the optical axis along the transmission screw 41222, causing the movable sleeve 413 to move axially relative to the fixed base 417, thus performing a retraction movement. During the retraction movement of the movable sleeve 413, after the movable sleeve 413 has initially moved a certain distance, the free end of the sleeve protrusion 4134 abuts against the upper side of the shoulder 24, thereby pushing the first lens component 21 of the optical lens to move axially downward until the bottom of the second lens component 22 abuts against the lower stop element 27, that is, the lower limit stop mechanism is activated.

[0116] (two) Figure 4 , Figure 5 Another preferred embodiment shown

[0117] (i) The camera module is composed of Figure 5 The standby state shown enters as follows Figure 4 The working status shown

[0118] The pop-out mechanism 30 causes the first lens component 21 and the second lens component 22 to move apart, and the optical lens 20 moves upward along the optical axis. It also causes the upper side of the second drive device 42 to push the free end of the sleeve protrusion 4134, so that the first lens component 21 and the movable sleeve 413 both move upward along the axial direction to perform the extension movement. At the same time, the top of the first stop element 25 abuts against the second stop element 26, that is, the upper limit stop mechanism is activated. During this process, the movable sleeve 413 can achieve a maximum stroke of L1 through the first driving device 41. The first lens component 21 of the optical lens can move axially relative to the second lens component 22 through the action of the pop-out mechanism, with a maximum stroke of L2. The variable range of the first gap S1 between the transparent cover plate 10 and the upper end face of the first lens component 21 of the optical lens is ΔS1. The second gap S2 between the first lens component 21 and the second lens component 22 increases, with a variable range of ΔS2, which can be between 0 and L2. The second lens component 22 can move axially relative to the fixed base 417, so that the third gap S3 between the lower end face of the second lens component 22 and the filter can also change under the action of the second driving device 42.

[0119] In this embodiment, since focusing is performed by moving the first lens component 21 up and down along the optical axis, the second driving device 42 does not move with focusing when the first lens component 21 is focusing. Therefore, there is no need to reserve space between the lower surface of the sleeve protrusion 4134 and the upper surface of the second driving device 42. The sleeve protrusion 4134 abuts against the second driving device 42, and the two move together.

[0120] (ii) The camera module is composed of Figure 4 The working state shown enters as follows Figure 5 Standby status shown

[0121] The first driving device 41's driving device 41211 (stepper motor) drives the transmission screw 41222 to rotate via the gear device 41221. The transmission component 413211 moves downward along the optical axis along the transmission screw 41222, causing the movable sleeve 413 to move axially relative to the fixed base 417, thus performing a retraction movement. During the retraction movement of the movable sleeve 413, the free end of the sleeve protrusion 4134 of the movable sleeve 413 abuts against the upper side of the shoulder 24, thereby pushing the first lens component 21 of the optical lens to move axially downward. The first lens component 21 moves closer to the second lens component 22, and the second driving device 42 presses down the first stop element 25, thereby axially compressing the pop-up mechanism 30 until the bottom of the second lens component 22 abuts against the lower stop element 27, that is, the lower limit stop mechanism is activated. When not in operation, the distance between H1, H2, and H3 can be minimized, reducing their height when not in operation, making the camera module structure more compact, and meeting the trend of thinner and lighter terminal devices that are compatible with it.

[0122] The telescopic module of the CG in this design utilizes a stepper motor to drive the CG cover plate to extend and retract along the optical axis. This, combined with elastic components and support rods positioned between the optical lenses, allows the module to operate as follows: When in operation, the stepper motor drives the CG to rise along the optical axis. Under the action of the elastic components, the distance between the optical lenses increases to meet the TTL requirements for imaging. After shooting, the stepper motor drives the CG to move in the opposite direction to the optical axis, compressing the distance between the first and second lens assemblies and returning them to their initial state, maintaining an overall height reduction, thus completing one shooting process.

[0123] Meanwhile, during the actual shooting process, when the TTL of the optical lens meets the imaging requirements of the large-size chip, in order to further improve the image quality, a second driving element, namely the AF motor, is used on the optical lens to achieve focusing, making the captured photos clearer; a third driving element, namely the chip stabilization motor, is used on the image sensor to correct shake during the shooting process, thus completing a high-quality shooting process. In other words, the CG telescopic module provided by this solution uses the first driving element to resolve the contradiction between the large-size chip and the module height, allowing the overall module to remain compact; the second driving element resolves the focusing position during the large-size chip imaging process, driving only the optical lens for focusing, reducing the driving force requirement while solving the problem of image sharpness; the third driving element solves the image stabilization problem of the large-size chip, placing the driving element only on the image sensor end of the camera module, so that it only drives the image sensor to move, compared to driving the entire optical lens to achieve image stabilization. This setup can meet the image stabilization requirements with less driving force, while also achieving miniaturization.

[0124] In summary, the CG telescopic module provided in this solution offers a better solution for imaging large-size chips, which aligns with the current trend in camera module development.

[0125] The present invention also provides an electronic device, comprising an electronic device body and at least one camera module 100 disposed on the electronic device body, wherein the camera module 100 has the same structure and function as the telescopic module in the preferred embodiment described above. The camera module is mounted on the electronic device body and can serve as a front-facing camera or a rear-facing camera. Optionally, in this preferred embodiment of the present invention, the electronic device may be, but is not limited to, a mobile phone, computer, tablet computer, and other shooting devices with shooting functions, such as smart wearable devices, monitoring devices, etc.

[0126] While exemplary embodiments of the present invention have been described above, those skilled in the art should understand that various changes and modifications can be made to the exemplary embodiments of the present invention without departing from the spirit and scope of the invention, and all such changes and modifications are included within the scope of protection of the present invention.

[0127] The above description is merely a preferred embodiment of this application and an explanation of the technical principles employed. Those skilled in the art should understand that the scope of the invention involved in this application is not limited to technical solutions formed by specific combinations of the above-described technical features, but should also cover other technical solutions formed by arbitrary combinations of the above-described technical features or their equivalents without departing from the inventive concept. For example, technical solutions formed by substituting the above-described features with (but not limited to) technical features with similar functions disclosed in this application.

Claims

1. A lens unit, comprising: An optical lens, comprising at least one lens component having a lens element, and A cover plate assembly, comprising a cover plate support and a transparent cover plate fitted into the cover plate support, the transparent cover plate covering the optical lens; The feature is that the cover plate support is constructed as a movable sleeve, which is capable of axial movement relative to the fixed base of the lens unit in the direction of the lens optical axis, and includes: The sleeve end wall has a through hole for embedding the transparent cover plate, and The sleeve peripheral wall extends downward around the periphery of the sleeve end wall. The sleeve end wall is provided with a sleeve protrusion extending downward around the through hole. The downward extension length of the sleeve protrusion is less than the downward extension length of the sleeve peripheral wall. A central first space is formed inside the sleeve protrusion. A peripheral second space is formed between the outer side of the sleeve protrusion and the inner side of the sleeve peripheral wall, below the sleeve protrusion, and outward to the inner side of the sleeve peripheral wall. The optical lens is at least partially housed in the first space with its upper end portion. The lens unit includes an upper limit stop mechanism and a lower limit stop mechanism for limiting the axial movement stroke of the movable sleeve, and at least the upper limit stop mechanism is at least partially accommodated in the second space; At least one lens component of the optical lens has at least one shoulder that protrudes radially outward relative to the upper end of the optical lens on its side. When the movable sleeve performs a retraction movement, the free end of the sleeve protrusion can at least partially abut against the upper side of the shoulder, thereby pushing the lens component of the optical lens to move axially downward until the lower limit stop mechanism is activated.

2. The lens unit according to claim 1, characterized in that, The first space is constructed as a cylindrical hole, the diameter of which is larger than the diameter of the upper end of the optical lens.

3. The lens unit according to claim 1, characterized in that, The axial movement of the movable sleeve includes a retraction movement that brings the movable sleeve closer to the fixed base and a extension movement that moves it away from the fixed base.

4. The lens unit according to claim 3, characterized in that, The lens unit includes at least one first drive device for driving the movable sleeve to perform the retraction movement and at least one pop-out mechanism for pushing the movable sleeve to perform the extension movement.

5. The lens unit according to claim 4, characterized in that, The first driving device includes a movable part connected to the movable sleeve.

6. The lens unit according to claim 5, characterized in that, The movable sleeve has at least one actuating connection end on the outer side of its sleeve peripheral wall, and the actuating connection end is connected to the movable part of the first driving device.

7. The lens unit according to claim 4, characterized in that, The first driving device includes a stepper motor.

8. The lens unit according to any one of claims 3 to 7, characterized in that, At least one lens component of the optical lens is provided on the side with at least one second drive device for adjusting the axial position of the lens component or its lens when the movable sleeve is extended.

9. The lens unit according to claim 8, characterized in that, The second drive unit is at least partially housed in the second space.

10. The lens unit according to claim 4, characterized in that, At least one lens component of the optical lens is provided on its side with at least one second drive device for adjusting the axial position of the lens component or its lens element when the movable sleeve is extended, and the shoulder is formed by the housing of the second drive device or a part thereof.

11. The lens unit according to claim 4, characterized in that, The shoulder is formed on the lens barrel of the lens component.

12. The lens unit according to claim 10 or 11, characterized in that, During the retraction movement of the movable sleeve, the free end of the sleeve protrusion abuts against the upper side of the shoulder only after the movable sleeve has initially moved a certain distance.

13. The lens unit according to claim 10 or 11, characterized in that, The optical lens includes at least two lens components, wherein a shoulder is formed on a first lens component, a second lens component is disposed below the first lens component, and a pop-out mechanism is disposed between the first lens component and the second lens component. When the movable sleeve performs the extension movement, the pop-out mechanism causes the first lens component and the second lens component to move apart, and allows the upper side of the shoulder to at least partially abut against the free end of the sleeve protrusion, thereby pushing the movable sleeve to move axially upward until the upper limit stop mechanism is activated.

14. The lens unit according to claim 13, characterized in that, The pop-out mechanism includes an elastic member and a support rod for guiding and supporting the elastic member. The elastic member can drive the first lens component and the second lens component to move apart through elastic preload.

15. The lens unit according to claim 13, characterized in that, The upper limit stop mechanism includes a first stop element fixed relative to the first lens component and a second stop element fixed relative to the second lens component.

16. The lens unit according to claim 15, characterized in that, The upper limit stop mechanism can be at least partially accommodated in the second space.

17. The lens unit according to claim 15 or 16, characterized in that, The lower limit stop mechanism includes a lower stop element fixed relative to the fixed base.

18. The lens unit according to claim 17, characterized in that, The second lens component is fixed to the fixed base, and the lower stop element is composed of the second lens component or a part thereof.

19. The lens unit according to any one of claims 1 to 7, 9 to 11, 14 to 16, and 18, characterized in that, The lens unit is equipped with a variable aperture device, which is fixed to the upper end of the optical lens and housed in the first space.

20. A camera module, comprising: The lens unit as described in any one of claims 1 to 19, and A photosensitive component, comprising a carrier, a circuit board, and a photosensitive chip attached to the circuit board; The lens unit is mounted on the support frame of the photosensitive component via its mounting base.

21. The camera module according to claim 20, characterized in that, There is a first gap between the transparent cover plate and the upper surface of the optical lens, a second gap between each lens component and / or each lens element of the optical lens, and a third gap between the lower surface of the optical lens and the topmost component of the photosensitive assembly, wherein at least the first gap and the second gap are variable.

22. The camera module according to claim 21, characterized in that, When the camera module is in operation, the movable sleeve and the optical lens are extended, and at least the first gap and the second gap are controllably varied between their respective maximum and minimum values ​​to adjust the distance of each lens component and / or lens element of the optical lens relative to the photosensitive chip in the optical axis direction.

23. The camera module according to claim 22, characterized in that, The third gap can also be controlled to vary between its maximum and minimum values ​​to adjust the distance between the lens components and / or lenses of the optical lens relative to the photosensitive chip in the optical axis direction.

24. The camera module according to claim 21, characterized in that, When the camera module is not in operation, the movable sleeve and optical lens are retracted, and the first gap, the second gap and the third gap can be reduced to and kept to a minimum.

25. The camera module according to any one of claims 21 to 24, characterized in that, The minimum value of the second gap is 0.

26. The camera module according to any one of claims 21 to 24, characterized in that, The photosensitive component also includes a filter, which constitutes the topmost component of the photosensitive component.

27. The camera module according to any one of claims 20 to 24, characterized in that, The photosensitive component also includes a third driving device, which is at least capable of driving the photosensitive chip to move in a plane perpendicular to the optical axis.

28. An electronic device comprising a camera module as described in any one of claims 20 to 27.