WO2020258308A1 - 镜头模组 - Google Patents

镜头模组 Download PDF

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Publication number
WO2020258308A1
WO2020258308A1 PCT/CN2019/093881 CN2019093881W WO2020258308A1 WO 2020258308 A1 WO2020258308 A1 WO 2020258308A1 CN 2019093881 W CN2019093881 W CN 2019093881W WO 2020258308 A1 WO2020258308 A1 WO 2020258308A1
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WO
WIPO (PCT)
Prior art keywords
lens
lens barrel
barrel
lenses
light
Prior art date
Application number
PCT/CN2019/093881
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English (en)
French (fr)
Inventor
韦传冬
Original Assignee
瑞声光学解决方案私人有限公司
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 瑞声光学解决方案私人有限公司 filed Critical 瑞声光学解决方案私人有限公司
Priority to PCT/CN2019/093881 priority Critical patent/WO2020258308A1/zh
Priority to CN201921031305.3U priority patent/CN210166605U/zh
Publication of WO2020258308A1 publication Critical patent/WO2020258308A1/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
    • G03B11/00Filters or other obturators specially adapted for photographic purposes

Definitions

  • This application relates to the field of electronic technology, and in particular to a lens module.
  • lens modules are set on mobile phones and tablet electronic devices to realize photographing and video recording functions.
  • the lens closest to the object side is usually installed partially protruding from the lens barrel. Therefore, when the lens module of this structure is used for imaging, there will often be a lot of stray light.
  • the peripheral wall of the end of the lens protruding out of the lens barrel is incident on other lenses inside the lens barrel, which interferes with the imaging of other lenses inside the lens barrel, and ultimately leads to poor imaging quality of the lens module .
  • a lens module includes:
  • a lens barrel the lens barrel has a light transmission hole, and the light transmission hole communicates with the inside of the lens barrel;
  • a plurality of lenses are sequentially stacked and arranged in the lens barrel from the object side to the image side and along the axial direction of the lens barrel, and the plurality of lenses include the first lens closest to the object side ,
  • the first lens includes an optical part and a fixing part extending around the optical part, part of the optical part protrudes out of the lens barrel through the light transmission hole;
  • the first shading member is arranged around an end of the optical part protruding from the lens barrel.
  • the object side surface of the optical part includes an arc-shaped surface and a side surface bent and extended from the arc-shaped surface and surrounding the arc-shaped surface, and the first shading member is arranged to surround the entire side surface .
  • the first shading member includes a main body part ringed on the side surface and a fixed part extending from the main body part and clamped between the fixing part of the first lens and the lens barrel. Between the clamping part.
  • the first shading member further includes a chamfer, the chamfer is provided at an end of the main body part away from the clamping part, and the chamfer is used to hold the optical part
  • the curved surface restricts the first lens from moving up and down along the axial direction of the lens barrel in the lens barrel.
  • the main body part, the clamping part and the chamfer are integrally formed.
  • the plurality of lenses further includes at least one second lens, and the first lens and the at least one second lens extend from the object side to the image side and along the axial direction of the lens barrel Stacked in sequence, the lens module further includes a second shading member, and the second shading member is sandwiched between the fixing portion of the first lens and the adjacent second lens.
  • the lens module further includes a third shading member, and the third shading member is sandwiched between any two adjacent second lenses.
  • the lens barrel includes a first barrel wall and a second barrel wall bent and extended from the first barrel wall, and the light transmission hole is opened on the first barrel wall.
  • the optical part of the first lens protrudes out of the lens barrel is provided with a first shading member around the end, the first shading member can reflect and absorb the optical part of the first lens protruding out of the lens barrel.
  • the stray light around one end prevents the stray light from passing through the optical part of the first lens protruding out of the lens barrel. Stray light interferes with the imaging of other lenses inside the lens barrel, greatly improving the overall imaging performance of the lens module.
  • FIG. 1 is a schematic structural diagram of a lens module in an embodiment of the present application
  • Fig. 2 is an enlarged schematic diagram of A in Fig. 1.
  • the lens module 10 in an embodiment includes a lens barrel 100, a plurality of lenses 200, and a first shading member 300.
  • the lens barrel 100 has a light-transmitting hole 110, the light-transmitting hole 110 and the inside of the lens barrel 100 Connected.
  • a plurality of lenses 200 are sequentially stacked in the lens barrel 100 from the object side to the image side and along the axial direction of the lens barrel 100.
  • the plurality of lenses 200 include the first lens 220 closest to the object side, and the first lens 220 includes optical Part 222 and a fixing part 224 extending around the optical part 222, part of the optical part 222 passes through the light-transmitting hole 110 and protrudes out of the lens barrel 100; the first shading member 300 is disposed on the optical part 222 protruding from the lens barrel 100 Around one end, the first shading member 300 is used to reflect and absorb stray light around one end of the optical part 222 protruding from the lens barrel 100.
  • a first shading member 300 is provided around one end, and the first shading member 300 can reflect and absorb the optical portion of the first lens 220 222 stray light protruding from the periphery of the outer end of the lens barrel 100 to prevent the stray light from passing through the optical portion 222 of the first lens 220 protruding from the outer end of the lens barrel 100 and entering the other inside the lens barrel 100
  • stray light can be better eliminated, and the stray light can prevent the interference of the imaging of other lenses 200 inside the lens barrel 100, and greatly improve the overall imaging performance of the lens module 10.
  • the lens barrel 100 includes a first barrel wall 120 and a second barrel wall 130 bent and extended from the first barrel wall 120.
  • the light transmission hole 110 is formed on the first barrel wall 120.
  • the second tube wall 130 includes an inner wall surface 132 facing the inside of the lens barrel 100 and an outer wall surface 134 disposed opposite to the inner wall surface 132.
  • the inner wall surface 132 is provided with a plurality of steps 136 recessed from the inner wall surface 132 toward the outer wall surface 134 , Multiple steps 136 are used to place multiple lenses 200.
  • each step 136 is arranged coaxially with the light transmission hole 110, so as to further prevent the stray light from affecting the lens 200 in the lens barrel 100.
  • the imaging caused interference which improves the overall imaging performance of the lens module 10.
  • the object side surface of the optical portion 222 includes an arc-shaped surface 226 and a side surface 228 that extends from the arc-shaped surface 226 and surrounds the arc-shaped surface 226.
  • the first light shielding member 300 is provided to surround the entire side surface 228. This configuration can increase the coverage of the side surface 228 by the first shading member 300, and prevent the stray light entering through the light transmission hole 110 from being incident on the other lenses 200 inside the lens barrel 100 from the side surface 228, ensuring the lens module 10 Overall imaging performance.
  • the first shading member 300 includes a main body portion 320 that is arranged around the side surface 228 and extends outward from the main body portion 320 and is clamped between the fixing portion 224 of the first lens 220 and the lens barrel 110 The clamping part 340. Specifically, the clamping portion 340 is sandwiched between the fixing portion 224 of the first lens 220 and the inner side wall of the first cylindrical wall 120.
  • the first shading member 300 further includes a chamfer 360, the chamfer 360 is provided at an end of the main body 320 away from the clamping portion 340, and the chamfer 360 is used to press the arc surface 226 of the optical portion 222 to limit the first
  • the lens 220 moves up and down in the lens barrel 100 along the axial direction of the lens barrel 100.
  • the main body 320, the clamping portion 340, and the chamfer 360 jointly form a hollow cap-shaped structure, and on the premise of effectively shielding stray light, the first shading member 300 can be made as thin and light as possible.
  • the main body 320, the clamping portion 340, and the chamfer 360 are integrally formed to facilitate the overall processing of the first shading member 300.
  • the plurality of lenses 200 further includes at least one second lens 240.
  • the first lens 220 and the at least one second lens 240 are sequentially from the object side to the image side and along the axial direction of the lens barrel 100.
  • the aforementioned lens module 10 further includes a second shading member 400, which is sandwiched between the fixing portion 224 of the first lens 220 and the adjacent second lens 240, and the second shading member 400 is used for The stray light in the lens barrel 100 is reflected and absorbed to further improve the overall imaging performance of the lens module 10.
  • the second shading member 400 may be arranged in a hollow ring structure, and, on the premise of effectively shielding stray light, the second shading member 400 may also be made as thin and light as possible.
  • the aforementioned lens module 10 further includes a third shading member 500.
  • the third shading member 500 is sandwiched between any two adjacent second lenses 240.
  • the third shading member 500 is used for It reflects and absorbs the stray light in the lens barrel 100 to further improve the overall imaging performance of the lens module 10. It is understandable that the third shading member 500 can be arranged in a hollow ring structure, and the number and position of the third shading member 500 can be determined according to actual needs. Under the premise of effectively shielding stray light, the The three shading parts 500 are made as thin and light as possible.
  • the distance between any two adjacent second lenses 240 can be adjusted along the axial direction of the lens barrel 100 to meet the requirements of the lens module 10 under different optical environmental conditions. Actual usage requirements.

Abstract

一种镜头模组(10),包括镜筒(100)、多个镜片(200)及第一遮光件(300),镜筒(100)具有透光孔(110),透光孔(110)与镜筒(100)的内部相连通;多个镜片(200)从物侧至像侧并沿镜筒(100)的轴向的方向依次层叠设置于镜筒(100)内,多个镜片(200)包括最靠近物侧的第一镜片(220),第一镜片(220)包括光学部(222)及环绕光学部(222)延伸的固定部(224),部分光学部(222)穿过透光孔(110)凸出于镜筒(100)的外部;第一遮光件(300)设置于光学部(222)凸出于镜筒(100)外的一端的周围。镜头模组(10)可以较好地消除杂散光,避免杂散光对镜筒(100)内部的其他镜片的成像造成干扰,大大提高镜头模组(10)整体的成像性能。

Description

镜头模组 技术领域
本申请涉及电子技术领域,尤其涉及一种镜头模组。
背景技术
随着科技的不断发展,手机和平板等电子设备集成了越来越多的功能,例如,在手机和平板电子设备上设置镜头模组,以实现拍照和摄像功能。
技术问题
当前镜头模组为了减小其自身的整体体积,通常将其最靠近物侧的镜片采用部分凸出镜筒的安装方式,因此在利用该结构的镜头模组进行成像时,往往会有大量杂散光透过该镜片凸出于镜筒外的一端的周壁射入至镜筒内部的其他镜片上,从而对该镜筒内部的其他镜片的成像造成干扰,最终导致该镜头模组的成像质量较差。
技术解决方案
基于此,有必要提供一种能够避免杂散光对镜筒内部的镜片的成像造成干扰的镜头模组。
一种镜头模组,包括:
镜筒,所述镜筒具有透光孔,所述透光孔与所述镜筒的内部相连通;
多个镜片,多个所述镜片从物侧至像侧并沿所述镜筒的轴向的方向依次层叠设置于所述镜筒内,多个所述镜片包括最靠近物侧的第一镜片,所述第一镜片包括光学部及环绕所述光学部延伸的固定部,部分所述光学部穿过所述透光孔凸出于所述镜筒的外部;及
第一遮光件,设置于所述光学部凸出于所述镜筒外的一端的周围。
在其中一个实施例中,所述光学部的物侧面包括弧形面及自所述弧形面弯折延伸且环绕所述弧形面的侧面,所述第一遮光件设置包围整个所述侧面。
在其中一个实施例中,所述第一遮光件包括环设于所述侧面的主体部及自所述主体部向外延伸并夹持于所述第一镜片的固定部与所述镜筒之间的夹持部。
在其中一个实施例中,所述主体部与所述侧面之间存在间隙。
在其中一个实施例中,所述主体部与形成所述透光孔的孔壁之间存在间隙。
在其中一个实施例中,所述第一遮光件还包括倒角,所述倒角设置于所述主体部远离所述夹持部的一端,所述倒角用于压持所述光学部的弧形面,以限制所述第一镜片在所述镜筒内沿所述镜筒的轴向的上下移动。
在其中一个实施例中,所述主体部、所述夹持部及所述倒角一体成型。 
在其中一个实施例中,多个所述镜片还包括至少一个第二镜片,所述第一镜片和至少一个所述第二镜片从物侧至像侧并沿所述镜筒的轴向的方向依次层叠设置,所述镜头模组还包括第二遮光件,所述第二遮光件夹设于所述第一镜片的固定部和相邻的所述第二镜片之间。
在其中一个实施例中,所述第二镜片为多个,所述镜头模组还包括第三遮光件,所述第三遮光件夹设于任意相邻两个所述第二镜片之间。
在其中一个实施例中,所述镜筒包括第一筒壁及自所述第一筒壁弯折延伸的第二筒壁,所述透光孔开设于所述第一筒壁上。
有益效果
上述镜头模组,由于第一镜片的光学部凸出于镜筒外的一端的周围设置有第一遮光件,第一遮光件能够反射和吸收第一镜片的光学部凸出于镜筒外的一端的周围的杂散光,避免该杂散光透过第一镜片的光学部凸出于镜筒外的一端的周壁射入至镜筒内部的其他镜片上,从而可以较好地消除杂散光,避免杂散光对镜筒内部的其他镜片的成像造成干扰,大大提高镜头模组整体的成像性能。
附图说明
图1是本申请一实施例中的镜头模组的结构示意图;
图2为图1中A处的放大示意图。
本发明的实施方式
下面结合附图和实施方式对本申请作进一步说明。
如图1所示,一实施例中的镜头模组10包括镜筒100、多个镜片200及第一遮光件300,镜筒100具有透光孔110,透光孔110与镜筒100的内部相连通。多个镜片200从物侧至像侧并沿镜筒100的轴向的方向依次层叠设置于镜筒100内,多个镜片200包括最靠近物侧的第一镜片220,第一镜片220包括光学部222及环绕光学部222延伸的固定部224,部分光学部222穿过透光孔110凸出于镜筒100的外部;第一遮光件300设置于光学部222凸出于镜筒100外的一端的周围,第一遮光件300用于反射和吸收光学部222凸出于镜筒100外的一端的周围的杂散光。
上述镜头模组10,由于第一镜片220的光学部222凸出于镜筒100外的一端的周围设置有第一遮光件300,第一遮光件300能够反射和吸收第一镜片220的光学部222凸出于镜筒100外的一端的周围的杂散光,避免该杂散光透过第一镜片220的光学部222凸出于镜筒100外的一端的周壁射入至镜筒100内部的其他镜片200上,从而可以较好地消除杂散光,避免杂散光对镜筒100内部的其他镜片200的成像造成干扰,大大提高镜头模组10整体的成像性能。
如图1所示,镜筒100包括第一筒壁120及自第一筒壁120弯折延伸的第二筒壁130,透光孔110开设于第一筒壁120上。进一步地,第二筒壁130包括朝向镜筒100内部的内壁面132及与内壁面132相对设置的外壁面134,内壁面132上设有自内壁面132朝向外壁面134凹陷的多个台阶136,多个台阶136用于放置多个镜片200。为了进一步地避免杂散光穿过透光孔110进入至镜筒100内的镜片200上,各个台阶136与透光孔110同轴设置,从而能够进一步地避免杂散光对镜筒100内的镜片200的成像造成干扰,提高镜头模组10整体的成像性能。
如图1及图2所示,光学部222的物侧面包括弧形面226及自弧形面226弯折延伸且环绕弧形面226的侧面228,第一遮光件300设置包围整个侧面228。如此设置,从而可以增大第一遮光件300对侧面228的遮盖范围,避免由透光孔110进入的杂散光由侧面228射入至镜筒100内部的其他镜片200上,确保镜头模组10整体的成像性能。
如图2所示,进一步地,第一遮光件300包括环设于侧面228的主体部320及自主体部320向外延伸并夹持于第一镜片220的固定部224与镜筒110之间的夹持部340。具体的,夹持部340夹设于第一镜片220的固定部224和第一筒壁120的内侧壁之间。
如图2所示,进一步地,主体部320与侧面228之间存在间隙。更进一步地,主体部320与形成透光孔110的孔壁之间存在间隙。
进一步地,第一遮光件300还包括倒角360,倒角360设置于主体部320远离夹持部340的一端,倒角360用于压持光学部222的弧形面226,以限制第一镜片220在镜筒100内沿镜筒100的轴向的上下移动。在本实施例中,主体部320、夹持部340及倒角360共同形成中空的帽状结构,并且在有效遮挡杂散光的前提下,还可以将第一遮光件300尽量做得轻薄。进一步地,主体部320、夹持部340及倒角360一体成型,以便于第一遮光件300的整体加工。
如图1所示,进一步地,多个镜片200还包括至少一个第二镜片240,第一镜片220和至少一个第二镜片240从物侧至像侧并沿镜筒100的轴向的方向依次层叠设置,上述镜头模组10还包括第二遮光件400,第二遮光件400夹设于第一镜片220的固定部224和相邻的第二镜片240之间,第二遮光件400用于反射和吸收镜筒100内的杂散光,以进一步提高镜头模组10整体的成像性能。可以理解的是,第二遮光件400可以设置为中空的环状结构,并且,在有效遮挡杂散光的前提下,还可以将第二遮光件400尽量做得轻薄。
进一步地,第二镜片240为多个,上述镜头模组10还包括第三遮光件500,第三遮光件500夹设于任意相邻两个第二镜片240之间,第三遮光件500用于反射和吸收镜筒100内的杂散光,以进一步提高镜头模组10整体的成像性能。可以理解的是,第三遮光件500可以设置为中空的环状结构,第三遮光件500的数量和位置可以根据实际情况的需要来决定,在有效遮挡杂散光的前提下,还可以将第三遮光件500尽量做得轻薄。
进一步地,通过改变第三遮光件500的厚度,以使任意相邻两个第二镜片240之间的间距沿镜筒100的轴向可调,满足镜头模组10在不同光学环境条件下的实际使用需求。
以上的仅是本申请的实施方式,在此应当指出,对于本领域的普通技术人员来说,在不脱离本申请创造构思的前提下,还可以做出改进,但这些均属于本申请的保护范围。

Claims (10)

  1. 一种镜头模组,其特征在于,包括:
    镜筒,所述镜筒具有透光孔,所述透光孔与所述镜筒的内部相连通;
    多个镜片,多个所述镜片从物侧至像侧并沿所述镜筒的轴向的方向依次层叠设置于所述镜筒内,多个所述镜片包括最靠近物侧的第一镜片,所述第一镜片包括光学部及环绕所述光学部延伸的固定部,部分所述光学部穿过所述透光孔凸出于所述镜筒的外部;及
    第一遮光件,设置于所述光学部凸出于所述镜筒外的一端的周围。
  2. 根据权利要求1所述的镜头模组,其特征在于,所述光学部的物侧面包括弧形面及自所述弧形面弯折延伸且环绕所述弧形面的侧面,所述第一遮光件设置包围整个所述侧面。
  3. 根据权利要求2所述的镜头模组,其特征在于,所述第一遮光件包括环设于所述侧面的主体部及自所述主体部向外延伸并夹持于所述第一镜片的固定部与所述镜筒之间的夹持部。
  4. 根据权利要求3所述的镜头模组,其特征在于,所述主体部与所述侧面之间存在间隙。
  5. 根据权利要求3所述的镜头模组,其特征在于,所述主体部与形成所述透光孔的孔壁之间存在间隙。
  6. 根据权利要求3所述的镜头模组,其特征在于,所述第一遮光件还包括倒角,所述倒角设置于所述主体部远离所述夹持部的一端,所述倒角用于压持所述光学部的弧形面,以限制所述第一镜片在所述镜筒内沿所述镜筒的轴向的上下移动。
  7. 根据权利要求6所述的镜头模组,其特征在于,所述主体部、所述夹持部及所述倒角一体成型。
  8. 根据权利要求1所述的镜头模组,其特征在于,多个所述镜片还包括至少一个第二镜片,所述第一镜片和至少一个所述第二镜片从物侧至像侧并沿所述镜筒的轴向的方向依次层叠设置,所述镜头模组还包括第二遮光件,所述第二遮光件夹设于所述第一镜片的固定部和相邻的所述第二镜片之间。
  9. 根据权利要求8所述的镜头模组,其特征在于,所述第二镜片为多个,所述镜头模组还包括第三遮光件,所述第三遮光件夹设于任意相邻两个所述第二镜片之间。
  10. 根据权利要求1所述的镜头模组,其特征在于,所述镜筒包括第一筒壁及自所述第一筒壁弯折延伸的第二筒壁,所述透光孔开设于所述第一筒壁上。
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CN212181219U (zh) * 2020-11-23 2020-12-18 常州市瑞泰光电有限公司 镜头模组
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