WO2022000536A1 - 摄像模组 - Google Patents

摄像模组 Download PDF

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Publication number
WO2022000536A1
WO2022000536A1 PCT/CN2020/101466 CN2020101466W WO2022000536A1 WO 2022000536 A1 WO2022000536 A1 WO 2022000536A1 CN 2020101466 W CN2020101466 W CN 2020101466W WO 2022000536 A1 WO2022000536 A1 WO 2022000536A1
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WO
WIPO (PCT)
Prior art keywords
lens assembly
camera module
coil
shake
module according
Prior art date
Application number
PCT/CN2020/101466
Other languages
English (en)
French (fr)
Inventor
史卫领
郭顺
王洪兴
Original Assignee
诚瑞光学(常州)股份有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 诚瑞光学(常州)股份有限公司 filed Critical 诚瑞光学(常州)股份有限公司
Publication of WO2022000536A1 publication Critical patent/WO2022000536A1/zh

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Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B7/00Mountings, adjusting means, or light-tight connections, for optical elements
    • G02B7/02Mountings, adjusting means, or light-tight connections, for optical elements for lenses
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B5/00Adjustment of optical system relative to image or object surface other than for focusing
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules

Definitions

  • the utility model relates to the technical field of optical imaging, in particular to a camera module.
  • optical lenses are widely used in various electronic products.
  • light is directly taken in from the object side, and passes through the lens assembly to the image side along the optical axis, and the object is imaged through the lens assembly.
  • jitter causes the optical axis path of the lens assembly to deviate from the normal optical axis path, resulting in reduced image clarity. Therefore, various anti-shake solutions have emerged to solve the problem of lens assembly jitter.
  • the anti-shake driving assembly is installed on the side of the lens assembly, and the position of the lens assembly is adjusted by lateral thrust.
  • the bottom of the lens assembly has a fulcrum structure, and the lens assembly rotates around the fulcrum structure when the orientation is adjusted.
  • the purpose of the present invention is to provide a camera module to solve the technical problems that the existing camera module increases the overall structure width of the camera module and needs to provide a fulcrum structure at the bottom of the lens assembly.
  • a camera module comprising a housing with an accommodating cavity, a lens assembly arranged in the accommodating cavity, and a lens assembly for connecting the lens assembly and the accommodating cavity.
  • An elastic support member of the housing and an anti-shake driving member disposed in the accommodating cavity for driving the tilting movement of the lens assembly, the anti-shake driving member is provided at the lower end of the accommodating cavity and located in the Between the housing and the lens assembly, the anti-shake driver includes a coil and a soft magnetic sheet corresponding to the coil and arranged at intervals.
  • the housing includes a side plate circumferentially arranged around the lens assembly, a bottom plate arranged at one end of the side plate, and a top plate arranged at the other end of the side plate, and the top plate is provided with the lens a through hole corresponding to the component, the side plate, the bottom plate and the top plate are enclosed to form the accommodating cavity, the soft magnetic sheet is fixed on the bottom of the lens assembly, and the coil is fixed on the bottom plate; Alternatively, the coil is fixed on the bottom of the lens assembly, and the soft magnetic sheet is fixed on the bottom plate.
  • the coil and the soft magnetic sheet are arranged in parallel and facing each other.
  • the plane where the coil is located is perpendicular to the direction of the optical axis.
  • the coil is in the shape of a racetrack, and the soft magnetic sheet is in a rectangular shape.
  • the anti-shake driving member further includes an iron core, and the iron core is embedded in the coil.
  • At least two anti-shake driving members are provided, which are arranged adjacent to the anti-shake driving members at intervals.
  • three anti-shake driving members are provided and are arranged at equal intervals along the circumference of the bottom of the lens assembly.
  • the elastic support member includes an elastic connecting portion, a first annular portion fixed to the lens assembly, and a second annular portion fixed to the side plate, the elastic connecting portion is connected to the first annular portion between the annular portion and the second annular portion.
  • each elastic connecting portion extends from the first annular portion to the second annular portion along an arc-shaped track.
  • the beneficial effects of the present invention are as follows: (1) by disposing the anti-shake driver including the coil and the soft magnetic sheet at the lower end of the accommodating cavity and between the housing and the lens assembly, that is, at the bottom of the lens assembly, The size of the camera module in the width direction is reduced; (2) When the coil of the anti-shake driver is energized, an attractive force will be generated between the coil and the soft magnetic sheet, and the size of the current of each coil can be controlled, and each anti-shake driver can be controlled The size of the driving force of the component, so that the corresponding parts of the lens component and the anti-shake driving component are affected by the driving forces of different sizes. Under the action of all the driving forces of different sizes, the lens component will tilt and move to compensate for the external factors.
  • the camera module provided by the present invention not only reduces the size of the camera module in the width direction, but also does not need to provide a fulcrum structure therein.
  • FIG. 1 is a schematic structural diagram of a camera module provided in Embodiment 1 of the present invention.
  • Fig. 2 is a sectional view along line A-A in Fig. 1;
  • FIG. 3 is a schematic structural diagram of the camera module provided by Embodiment 1 of the present invention with the bottom plate removed;
  • FIG. 4 is a schematic structural diagram of a lens assembly, an elastic support member, and an anti-shake driving member provided in Embodiment 1 of the present invention
  • FIG. 5 is a cross-sectional view of the camera module provided in the second embodiment of the present invention and the camera module provided in the first embodiment at the same position;
  • FIG. 6 is a schematic structural diagram of the camera module provided by Embodiment 2 of the present invention with the bottom plate removed;
  • FIG. 7 is a cross-sectional view of the camera module provided in the third embodiment of the present invention and the camera module provided in the first embodiment at the same position;
  • FIG. 8 is a schematic structural diagram of the camera module provided by Embodiment 3 of the present invention with the bottom plate removed;
  • FIG. 9 is a cross-sectional view of the camera module provided in the fourth embodiment of the present invention and the camera module provided in the first embodiment at the same position;
  • FIG. 10 is a schematic structural diagram of the camera module provided by Embodiment 4 of the present invention with the bottom plate removed.
  • a camera module 100 provided by an embodiment of the present invention includes a housing 1 having an accommodating cavity 11 , a lens assembly 2 disposed in the accommodating cavity 11 , and a lens assembly for connecting the lens assembly. 2 and the elastic supporting member 3 of the housing 1 and the anti-shake driving member 4 arranged in the accommodating cavity 11 for driving the tilting movement of the lens assembly 2.
  • the anti-shake driver 4 includes a coil 41 and a soft magnetic sheet 42 corresponding to the coil 41 and arranged at intervals.
  • the lens assembly 2 is supported in the housing 1 to avoid collision with the housing 1; That is, it is located at the bottom of the lens assembly 2, which reduces the size of the camera module 100 in the width direction; when the coil 41 of the anti-shake driver 4 is energized, an attractive force is generated between the coil 41 and the soft magnetic sheet 42, and the control coil
  • the magnitude of the current of 41 can control the size of the attractive force of the anti-shake driver 4, so that the corresponding parts of the lens assembly 2 and the anti-shake driver 4 can be affected by different sizes of attractive forces.
  • the force of the elastic support 3 on the lens assembly 2 causes the lens assembly 2 to generate a tilting motion to compensate for the jitter caused by external factors, thereby realizing the anti-shake function of the lens assembly 2.
  • the camera module 100 has an anti-shake function in the realization of At the same time, it is not necessary to provide another fulcrum structure at the bottom of the lens assembly 2 so that the lens assembly 2 can rotate around the fulcrum structure when the azimuth is adjusted. Therefore, the camera module 100 provided by the embodiment of the present invention not only reduces the size in the width direction, but also does not need to provide a fulcrum structure at the bottom thereof.
  • the housing 1 includes a side plate 13 circumferentially disposed around the lens assembly 2 , a bottom plate 12 disposed at one end of the side plate 13 , and a top plate 14 disposed at the other end of the side plate 13 .
  • the top plate 14 is provided with a through hole 141 corresponding to the lens assembly 2 .
  • the side plate 13 is enclosed with the bottom plate 12 and the top plate 14 to form the accommodation cavity 11 ;
  • the soft magnetic sheet 42 is fixed on the bottom of the lens assembly 2
  • the coil 41 is fixed on the bottom plate 12 .
  • the coil 41 and the soft magnetic sheet 42 are arranged in parallel and facing each other, and the force generated after the coil is energized can be most efficiently used for anti-shake.
  • the plane where the coil 41 is located is perpendicular to the optical axis direction (the direction indicated by the Z axis in FIG. 1 is the normal optical axis direction).
  • the coil 41 is in the shape of a racetrack, and the soft magnetic sheet 42 is in the shape of a rectangle. It can be understood that the coil 41 and the soft magnetic sheet 42 can also be in other shapes.
  • the anti-shake driver 4 further includes an iron core 43 , and the iron core 43 is embedded in the coil 41 .
  • the iron core 43 is embedded in the coil 41 .
  • At least two anti-shake driving members 4 are provided, and adjacent anti-shake driving members 4 are arranged at intervals.
  • at least two anti-shake drivers 4 between the bottom of the lens assembly 2 and the bottom plate 12, when the coil 41 of the anti-shake driver 4 is energized, an attractive force will be generated between the coil 41 and the soft magnetic sheet 42, and control
  • the magnitude of the current of each coil 41 can control the magnitude of the driving force of each anti-shake driver 4 to the lens assembly 2, so that the corresponding parts of the lens assembly 2 and each anti-shake driver 4 are subjected to different driving forces. Under the action of all the driving forces, the lens assembly 2 will tilt and move to compensate for the jitter caused by external factors, thereby realizing the anti-shake function of the lens assembly 2 .
  • FIG. 3 and FIG. 4 there are three anti-shake driving members 4 , which are arranged at equal intervals along the circumference of the bottom of the lens assembly 2 , and the anti-shake operation is easier to control.
  • the number of the anti-shake driving members 4 is not limited to the three shown in FIG. 3 and FIG. 4 , but may also be four, five, etc.
  • the arrangement of the anti-shake driving members 4 is also It is not limited to the arrangement in FIG. 3 and FIG. 4 , it can be arranged symmetrically or asymmetrically.
  • the elastic support member 3 includes an elastic connecting portion 31 , a first annular portion 32 fixed to the lens assembly 2 , and a second annular portion 33 fixed to the side plate 13 , and the elastic connecting portion 31 is connected to the first annular portion 32 . between the annular portion 32 and the second annular portion 33 . At least two elastic connecting portions 31 are provided, and each elastic connecting portion 31 extends from the first annular portion 32 to the second annular portion 33 along an arc-shaped track.
  • the camera module 100 further includes a circuit board 5 for power supply, and the circuit board 5 is inserted through the casing 1 . In this embodiment, the circuit board 5 passes through the side plate 13 .
  • FIGS. 5 and 6 Please refer to FIGS. 5 and 6 .
  • the difference between this embodiment and the first embodiment is that the coil 41 is provided on the lens assembly 2 , and the soft magnetic sheet 42 is provided on the bottom plate 12 .
  • Other technical contents are the same and will not be repeated here.
  • 5 is a cross-sectional view of the camera module provided in this embodiment, and the cross-sectional position is the same as that of the camera module provided in the first embodiment.
  • FIGS. 7 and 8 Please refer to FIGS. 7 and 8 .
  • the difference between this embodiment and the first embodiment is that the iron core 43 is not embedded in the coil 41 , and other technical contents are the same, which will not be repeated here.
  • 7 is a cross-sectional view of the camera module provided in this embodiment, and the cross-sectional position is the same as the cross-sectional position of the camera module provided in the first embodiment.
  • FIG. 9 is a cross-sectional view of the camera module provided in this embodiment, and the cross-sectional position is the same as the cross-sectional position of the camera module provided in the first embodiment.

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Multimedia (AREA)
  • Signal Processing (AREA)
  • Optics & Photonics (AREA)
  • Adjustment Of Camera Lenses (AREA)

Abstract

一种摄像模组,包括具有容置腔的壳体、设于所述容置腔内的透镜组件、用于连接所述透镜组件与所述壳体的弹性支撑件以及设于所述容置腔内用于驱动所述透镜组件倾斜运动的防抖驱动件,所述防抖驱动件设于所述容置腔的下端、且位于所述壳体与所述透镜组件之间,所述防抖驱动件包括线圈以及与所述线圈对应且间隔设置的软磁片。提供的摄像模组不仅减小其宽度方向的尺寸,而且无需在其内另设支点结构。

Description

摄像模组
【技术领域】
本实用新型涉及光学成像技术领域,尤其涉及一种摄像模组。
【背景技术】
随着成像技术的发展以及具有成像功能的电子产品的兴起,光学透镜被广泛地应用在各种电子产品中。一般光线都是直接从物侧摄入,沿着光轴直线通过透镜组件到达像侧,通过透镜组件来对物体进行成像。但是,在拍摄过程时,经常会有抖动,使透镜组件的光轴路径偏离正常的光轴路径,造成图像清晰度降低,因此,出现了多种防抖方案以解决透镜组件抖动的问题。然而,现有方案均是通过将防抖驱动组件安装在透镜组件的侧面,通过侧向推力来调整透镜组件的位置。另外,透镜组件的底部有一个支点结构,方位调整时透镜组件绕该支点结构转动。该方案增加了摄像模组整体结构宽度方向的尺寸,而且,还需要底部支点结构才能方便的实现透镜组件的角度调整。
因此,有必要提供一种减小摄像模组整体结构宽度尺寸且无需在透镜组件底部另设支点结构、小型化、可方便的、全方位的调整透镜组件位置的摄像模组。
【实用新型内容】
本实用新型的目的在于提供一种摄像模组,以解决现有的摄像模组增加摄像模组整体结构宽度尺寸以及在透镜组件底部需另设支点结构的技术问题。
本实用新型的目的之一提供的技术方案如下:一种摄像模组,包括具有容置腔的壳体、设于所述容置腔内的透镜组件、用于连接所述透镜组件与所述壳体的弹性支撑件以及设于所述容置腔内用于驱动所述透镜组件倾斜运动的防抖驱动件,所述防抖驱动件设于所述容置腔的下端、且位于所述壳体与所述透镜组件之间,所述防抖驱动件包括线圈以及与所述线圈对应且间隔设置的软磁片。
进一步地,所述壳体包括围绕所述透镜组件周向设置的侧板、设置于所述侧板一端的底板及设置于所述侧板另一端的顶板,所述顶板设有与所述透镜组件对应的通孔,所述侧板与所述底板、所述顶板围合形成所述容置腔,所述软磁片固定于所述透镜组件的底部,所述线圈固定于所述底板;或者,所述线圈固定于所述透镜组件的底部,所述软磁片固定于所述底板。
进一步地,所述线圈与所述软磁片平行且正对设置。
进一步地,所述线圈所在平面垂直于光轴方向。
进一步地,所述线圈呈跑道形状,所述软磁片呈矩形。
进一步地,所述防抖驱动件还包括铁芯,所述铁芯嵌设于所述线圈内。
进一步地,所述防抖驱动件设有至少两个,相邻所述防抖驱动件间隔设置。
进一步地,所述防抖驱动件设有三个且沿所述透镜组件底部周向等间距设置。
进一步地,所述弹性支撑件包括弹性连接部、固定于所述透镜组件的第一环状部以及固定于所述侧板的第二环状部,所述弹性连接部连接于所述第一环状部与所述第二环状部之间。
进一步地,所述弹性连接部设有至少两个,每个所述弹性连接部从所述第一环状部沿弧形轨迹延伸至所述第二环状部。
本实用新型的有益效果在于:(1)通过将包括线圈和软磁片的防抖驱动件设于容置腔的下端、且位于壳体与透镜组件之间,即设于透镜组件的底部,减小了摄像模组在宽度方向的尺寸;(2)当对防抖驱动件的线圈通电,线圈与软磁片之间会产生吸引力,控制各线圈电流的大小,可以控制各防抖驱动件的驱动力的大小,从而使透镜组件与防抖驱动件对应的部位受到大小不同的驱动力的作用,在所有大小不同的驱动力的作用下,透镜组件会产生倾斜移动以补偿由外界因素引起的抖动,进而实现透镜组件的防抖功能,因此,在实现摄像模组具有防抖功能的同时又不需要在透镜组件底部另设支点结构使透镜组件在方位调整时绕该支点结构转动。因此,本实用新型提供的摄像模组不仅减小其宽度方向的尺寸,而且无需在其内另设支点结构。
【附图说明】   
图1为本实用新型实施例一提供的摄像模组的结构示意图;
图2为图1中沿线A-A的剖视图;
图3为本实用新型实施例一提供的摄像模组去除底板的结构示意图;
图4为本实用新型实施例一提供的透镜组件、弹性支撑件以及防抖驱动件相配合的结构示意图;
图5为本实用新型实施例二提供的摄像模组与实施例一提供的摄像模组相同位置的剖视图;
图6为本实用新型实施例二提供的摄像模组去除底板的结构示意图;
图7为本实用新型实施例三提供的摄像模组与实施例一提供的摄像模组相同位置的剖视图;
图8为本实用新型实施例三提供的摄像模组去除底板的结构示意图;
图9为本实用新型实施例四提供的摄像模组与实施例一提供的摄像模组相同位置的剖视图;
图10本实用新型实施例四提供的摄像模组去除底板的结构示意图。
图中:100、摄像模组;1、壳体;11、容置腔;12、底板;13、侧板;14、顶板;141、通孔;2、透镜组件;3、弹性支撑件;31、弹性连接部;32、第一环状部;33、第二环状部;4、防抖驱动件;41、线圈;42、软磁片;43、铁芯;5、电路板。
【具体实施方式】 
下面结合图1至图10对本实用新型作详细描述。
实施例一
请参阅图1至图4,本实用新型实施例提供的一种摄像模组100,包括具有容置腔11的壳体1、设于容置腔11内的透镜组件2、用于连接透镜组件2与壳体1的弹性支撑件3以及设于容置腔11内用于驱动透镜组件2倾斜运动的防抖驱动件4,防抖驱动件4设于容置腔11的下端、且位于所述壳体1与透镜组件2之间,防抖驱动件4包括线圈41以及与线圈41对应且间隔设置的软磁片42。通过设置弹性支撑件3,将透镜组件2支撑于壳体1内,避免与壳体1碰撞;通过将包括线圈41和软磁片42的防抖驱动件4设于容置腔11的下端,即设于透镜组件2的底部,减小了摄像模组100在宽度方向的尺寸;当对防抖驱动件4的线圈41通电,线圈41与软磁片42之间会产生吸引力,控制线圈41的电流大小,可以控制防抖驱动件4的吸引力的大小,从而使透镜组件2与防抖驱动件4对应的部位可以受到大小不同的吸引力的作用,在吸引力的作用下,结合弹性支撑件3对透镜组件2的作用力,透镜组件2会产生倾斜运动以补偿由外界因素引起的抖动,进而实现透镜组件2的防抖功能,因此,在实现摄像模组100具有防抖功能的同时又不需要在透镜组件2底部另设支点结构使透镜组件2在方位调整时绕该支点结构转动。因此,本实用新型实施例提供的摄像模组100不仅减小其宽度方向的尺寸,而且无需在其底部另设支点结构。
壳体1包括围绕透镜组件2周向设置的侧板13、设置于侧板13一端的底板12及设置于侧板13另一端的顶板14,顶板14设置有与透镜组件2对应的通孔141,侧板13与底板12、顶板14围合形成容置腔11;软磁片42固定于透镜组件2的底部,线圈41固定于底板12。
在本实施例中,线圈41与软磁片42平行且正对设置,线圈通电后产生的作用力能被最高效的运用于防抖。线圈41所在平面垂直于光轴方向(图1中Z轴所指示的方向为正常的光轴方向)。
优选地,线圈41呈跑道形状,软磁片42呈矩形。可以理解,线圈41和软磁片42也可以为其他形状。
优选地,防抖驱动件4还包括铁芯43,铁芯43嵌设于线圈41内。通过在线圈41内嵌设铁芯43,使线圈41的磁力线更加聚集,增大磁性。
优选地,防抖驱动件4设有至少两个,相邻防抖驱动件4间隔设置。通过将至少两个防抖驱动件4设于透镜组件2的底部与底板12之间,当对防抖驱动件4的线圈41通电,线圈41与软磁片42之间会产生吸引力,控制各线圈41电流的大小,可以控制各防抖驱动件4对透镜组件2的驱动力的大小,从而使透镜组件2与各防抖驱动件4对应的部位受到大小不同的驱动力的作用,在所有驱动力的作用下,透镜组件2会产生倾斜移动以补偿由外界因素引起的抖动,进而实现透镜组件2的防抖功能。
请参阅图3和图4,防抖驱动件4设有三个,沿透镜组件2底部周向等间距设置,防抖动作更易于控制。在其他实施例中,防抖驱动件4的数量不限于图3和图4中所示的三个,也可以是四个、五个等等,另外,防抖驱动件4的排布方式也不限于图3和图4中的排布方式,可以对称设置,也可以非对称设置。
在本实施例中,弹性支撑件3包括弹性连接部31、固定于透镜组件2的第一环状部32以及固定于侧板13的第二环状部33,弹性连接部31连接于第一环状部32与第二环状部33之间。弹性连接部31设有至少两个,每个弹性连接部31从第一环状部32沿弧形轨迹延伸至第二环状部33。摄像模组100还包括用于供电的电路板5,电路板5穿设于壳体1。在本实施例中,电路板5穿设于侧板13。
实施例二
请参阅图5和图6,本实施例与实施例一的区别在于,线圈41设于透镜组件2,软磁片42设于底板12,其他技术内容相同,在此不再赘述。其中,图5是本实施例提供的摄像模组的剖视图,剖视位置与实施例一提供的摄像模组的剖视位置相同。
实施例三
请参阅图7和图8,本实施例与实施例一的区别在于,线圈41内未嵌设铁芯43,其他技术内容相同,在此不再赘述。其中,图7是本实施例提供的摄像模组的剖视图,剖视位置与实施例一提供的摄像模组的剖视位置相同。
实施例四
请参阅图9和图10,本实施例与实施例二的区别在于,线圈41内未嵌设铁芯43,其他技术内容相同,在此不再赘述。其中,图9是本实施例提供的摄像模组的剖视图,剖视位置与实施例一提供的摄像模组的剖视位置相同。
以上所述仅是本实用新型的实施方式,在此应当指出,对于本领域的普通技术人员来说,在不脱离本实用新型创造构思的前提下,还可以做出改进,但这些均属于本实用新型的保护范围。 

Claims (10)

  1. 一种摄像模组,其特征在于,包括具有容置腔的壳体、设于所述容置腔内的透镜组件、用于连接所述透镜组件与所述壳体的弹性支撑件以及设于所述容置腔内用于驱动所述透镜组件倾斜运动的防抖驱动件,所述防抖驱动件设于所述容置腔的下端、且位于所述壳体与所述透镜组件之间,所述防抖驱动件包括线圈以及与所述线圈对应且间隔设置的软磁片。
  2. 根据权利要求1所述的摄像模组,其特征在于,所述壳体包括围绕所述透镜组件周向设置的侧板、设置于所述侧板一端的底板及设置于所述侧板另一端的顶板,所述顶板设有与所述透镜组件对应的通孔,所述侧板与所述底板、所述顶板围合形成所述容置腔;所述软磁片固定于所述透镜组件的底部,所述线圈固定于所述底板;或者,所述线圈固定于所述透镜组件的底部,所述软磁片固定于所述底板。
  3. 根据权利要求1所述的摄像模组,其特征在于,所述线圈与所述软磁片平行且正对设置。
  4. 根据权利要求3所述的摄像模组,其特征在于,所述线圈所在平面垂直于光轴方向。
  5. 根据权利要求1至4任一项所述的摄像模组,其特征在于,所述线圈呈跑道形状,所述软磁片呈矩形。
  6. 根据权利要求5所述的摄像模组,其特征在于,所述防抖驱动件还包括铁芯,所述铁芯嵌设于所述线圈内。
  7. 根据权利要求1所述的摄像模组,其特征在于,所述防抖驱动件设有至少两个,相邻所述防抖驱动件间隔设置。
  8. 根据权利要求7所述的摄像模组,其特征在于,所述防抖驱动件设有三个且沿所述透镜组件底部周向等间距设置。
  9. 根据权利要求2所述的摄像模组,其特征在于,所述弹性支撑件包括弹性连接部、固定于所述透镜组件的第一环状部以及固定于所述侧板的第二环状部,所述弹性连接部连接于所述第一环状部与所述第二环状部之间。
  10. 根据权利要求9所述的摄像模组,其特征在于,所述弹性连接部设有至少两个,每个所述弹性连接部从所述第一环状部沿弧形轨迹延伸至所述第二环状部。
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