CN108089290A - Camera optical camera lens - Google Patents

Camera optical camera lens Download PDF

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Publication number
CN108089290A
CN108089290A CN201711151287.8A CN201711151287A CN108089290A CN 108089290 A CN108089290 A CN 108089290A CN 201711151287 A CN201711151287 A CN 201711151287A CN 108089290 A CN108089290 A CN 108089290A
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CN
China
Prior art keywords
lens
camera
curvature
optical camera
camera optical
Prior art date
Legal status (The legal status 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 status listed.)
Granted
Application number
CN201711151287.8A
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Chinese (zh)
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CN108089290B (en
Inventor
寺岡弘之
张磊
王燕妹
赵静
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Chengrui Optics Changzhou Co Ltd
Original Assignee
AAC Technologies Pte Ltd
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.)
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Priority to CN201711151287.8A priority Critical patent/CN108089290B/en
Priority to JP2018000109A priority patent/JP6529616B1/en
Priority to US15/862,702 priority patent/US10606029B2/en
Publication of CN108089290A publication Critical patent/CN108089290A/en
Application granted granted Critical
Publication of CN108089290B publication Critical patent/CN108089290B/en
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Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B13/00Optical objectives specially designed for the purposes specified below
    • G02B13/001Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras
    • G02B13/0015Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design
    • G02B13/002Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design having at least one aspherical surface
    • G02B13/0045Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design having at least one aspherical surface having five or more lenses
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B13/00Optical objectives specially designed for the purposes specified below
    • G02B13/06Panoramic objectives; So-called "sky lenses" including panoramic objectives having reflecting surfaces

Abstract

The present invention relates to field of optical lens, disclose a kind of camera optical camera lens, which sequentially includes from object side to image side:First lens, the second lens, the 3rd lens, the 4th lens, the 5th lens and the 6th lens;Second lens have negative refracting power, and the 3rd lens have positive refracting power;And meet following relationship:0.5≤f1/f≤10;1.7≤n4≤2.2;1.7≤n5≤2.2;0.01≤d7/TTL≤0.2.While the camera optical camera lens can obtain high imaging performance, low TTL is obtained.

Description

Camera optical camera lens
Technical field
It is more particularly to a kind of to be suitable for the hand-held terminals such as smart mobile phone, digital camera the present invention relates to field of optical lens The camera optical camera lens of the photographic devices such as equipment and monitor, PC camera lenses.
Background technology
In recent years, with the rise of smart mobile phone, the demand for minimizing phtographic lens increasingly improves, and general phtographic lens Sensor devices nothing more than being that photosensitive coupled apparatus (Charge Coupled Device, CCD) or Complimentary Metal-Oxide are partly led Two kinds of body device (Complementary Metal-OxideSemicondctor Sensor, CMOS Sensor), and due to half Conductor manufacturing process technology progresses greatly so that the Pixel Dimensions of sensor devices reduce, along with electronic product is good with function now And light and short external form is development trend, therefore, the miniaturization pick-up lens for possessing good image quality becomes at present Mainstream in the market.To obtain preferable image quality, the camera lens that tradition is equipped on mobile phone camera uses three-chip type or four more Formula lens arrangement.Also, with the development of technology and increasing for users on diversity, sensor devices elemental area not It is disconnected to reduce, and in the case that requirement of the system to image quality is continuously improved, five chips, six chips, seven chip lens arrangements by Gradually appear among lens design.The wide-angle that there is outstanding optical signature, ultra-thin and chromatic aberation fully to make corrections for active demand is taken the photograph As camera lens.
The content of the invention
In view of the above-mentioned problems, it is an object of the invention to provide a kind of camera optical camera lenses, high imaging performance can obtained While, meet the requirement of ultrathin and wide angle.
In order to solve the above technical problems, embodiments of the present invention provide a kind of camera optical camera lens, the shooting light Camera lens is learned, is sequentially included from object side to image side:First lens, the second lens, the 3rd lens, the 4th lens, the 5th lens and 6th lens;Second lens have negative refracting power, and the 3rd lens have positive refracting power;
The focal length of the camera optical camera lens is f, and the focal lengths of first lens is f1, the refractive index of the 4th lens For n4, the refractive index of the 5th lens is n5, and thickness is d7 on the axis of the 4th lens, the light of the camera optical camera lens Overall length is TTL, meets following relationship:
0.5≤f1/f≤10;
1.7≤n4≤2.2;
1.7≤n5≤2.2;
0.01≤d7/TTL≤0.2。
Embodiment of the present invention in terms of existing technologies, by the configuration mode of said lens, using in focal length, folding Penetrate rate, the optics overall length of camera optical camera lens, have in the data of thickness and radius of curvature on axis particular kind of relationship lens it is common Cooperation, enables camera optical camera lens to meet the requirement of ultrathin and wide angle while high imaging performance is obtained.
Preferably, first lens have positive refracting power, and in paraxial for convex surface, image side surface is in paraxial for object side Concave surface;
The radius of curvature of the first lens object side is R1, and the radius of curvature of the first lens image side surface is R2, with And thickness is d1 on the axis of first lens, and meet following relationship:
-4.21≤(R1+R2)/(R1-R2)≤-1.32;
0.21≤d1≤0.65。
Preferably, object side in paraxial for convex surface, image side surface in it is paraxial be concave surface;
The focal length of the camera optical camera lens is f, and the focal length of second lens is f2, the second lens object side Radius of curvature is R3, and the radius of curvature of the second lens image side surface is R4, and thickness is d3 on the axis of second lens, and full Sufficient following relationship:
-5.89≤f2/f≤-1.74;
1.64≤(R3+R4)/(R3-R4)≤6.94;
0.10≤d3≤0.61。
Preferably, the object side of the 3rd lens is convex surface in paraxial place, and image side surface is convex surface in paraxial place;
The focal length of the camera optical camera lens is f, and the focal length of the 3rd lens is f3, the 3rd lens object side Radius of curvature is R5, and the radius of curvature of the 3rd lens image side surface is R6, and thickness is d5 on the axis of the 3rd lens, and full Sufficient following relationship:
0.70≤f3/f≤2.26;
0.12≤(R5+R6)/(R5-R6)≤0.46;
0.25≤d5≤0.98。
Preferably, the 4th lens have a negative refracting power, and in paraxial for concave surface, image side surface is in paraxial for object side Convex surface;
The focal length of the camera optical camera lens is f, and the focal length of the 4th lens is f4, the 4th lens object side Radius of curvature is R7, and the radius of curvature of the 4th lens image side surface is R8, and thickness is d7 on the axis of the 4th lens, and full Sufficient following relationship:
-5.84≤f4/f≤-1.12;
-9.05≤(R7+R8)/(R7-R8)≤-1.20;
0.18≤d7≤0.58。
Preferably, the 5th lens have positive refracting power, and object side is in paraxial for convex surface;
The focal length of the camera optical camera lens is f, and the focal length of the 5th lens is f5, the 5th lens object side Radius of curvature is R9, and the radius of curvature of the 5th lens image side surface is R10, and thickness is d9 on the axis of the 5th lens, and Meet following relationship:
0.49≤f5/f≤2.16;
-3.81≤(R9+R10)/(R9-R10)≤-0.58;
0.22≤d9≤0.86。
Preferably, the 6th lens have a negative refracting power, and in paraxial for concave surface, image side surface is in paraxial for object side Convex surface;
The focal length of the camera optical camera lens is f, and the focal length of the 6th lens is f6, the 6th lens object side Radius of curvature is R11, and the radius of curvature of the 6th lens image side surface is R12, and thickness is d11 on the axis of the 6th lens, And meet following relationship:
-1.38≤f6/f≤-0.44;
-2.37≤(R11+R12)/(R11-R12)≤-0.74;
0.12≤d11≤0.54。
Preferably, the focal length of the camera optical camera lens is the combined focal length of f, first lens and second lens For f12, and meet following relationship:
0.84≤f12/f≤2.80。
Preferably, the optics overall length TTL of the camera optical camera lens is less than or equal to 5.72 millimeters.
Preferably, the aperture F numbers of the camera optical camera lens are less than or equal to 2.27
The beneficial effects of the present invention are:Camera optical camera lens according to the present invention has outstanding optical characteristics, ultra-thin, Wide-angle and chromatic aberation fully makes corrections, is particularly suitable for the cell-phone camera mirror being made of photographing elements such as CCD, CMOS of high pixel Head assembly and WEB pick-up lens.
Description of the drawings
Fig. 1 is the structure diagram of the camera optical camera lens of first embodiment of the invention;
Fig. 2 is the axial aberration schematic diagram of camera optical camera lens shown in Fig. 1;
Fig. 3 is the ratio chromatism, schematic diagram of camera optical camera lens shown in Fig. 1;
Fig. 4 is the curvature of field of camera optical camera lens shown in Fig. 1 and distortion schematic diagram;
Fig. 5 is the structure diagram of the camera optical camera lens of second embodiment of the invention;
Fig. 6 is the axial aberration schematic diagram of camera optical camera lens shown in Fig. 5;
Fig. 7 is the ratio chromatism, schematic diagram of camera optical camera lens shown in Fig. 5;
Fig. 8 is the curvature of field of camera optical camera lens shown in Fig. 5 and distortion schematic diagram;
Fig. 9 is the structure diagram of the camera optical camera lens of third embodiment of the invention;
Figure 10 is the axial aberration schematic diagram of camera optical camera lens shown in Fig. 9;
Figure 11 is the ratio chromatism, schematic diagram of camera optical camera lens shown in Fig. 9;
Figure 12 is the curvature of field of camera optical camera lens shown in Fig. 9 and distortion schematic diagram.
Specific embodiment
To make the object, technical solutions and advantages of the present invention clearer, below in conjunction with attached drawing to each reality of the present invention The mode of applying is explained in detail.However, it will be understood by those skilled in the art that in each embodiment of the present invention, Many technical details are proposed in order to which reader is made to more fully understand the present invention.But even if without these technical details and base Many variations and modification in following embodiment, can also realize claimed technical solution of the invention.
(first embodiment)
Refer to the attached drawing, the present invention provides a kind of camera optical camera lenses 10.Fig. 1 show first embodiment of the invention Camera optical camera lens 10, the camera optical camera lens 10 include six lens.Specifically, the camera optical camera lens 10, by object side Sequentially include to image side:Aperture S1, the first lens L1, the second lens L2, the 3rd lens L3, the 4th lens L4, the 5th lens L5 And the 6th lens L6.It may be provided with the optical elements such as optical filtering piece (filter) GF between 6th lens L6 and image planes Si.
First lens L1 is plastic material, and the second lens L2 is plastic material, and the 3rd lens L3 is plastic material, and the 4th thoroughly Mirror L4 is glass material, and the 5th lens L5 is glass material, and the 6th lens L6 is plastic material.
The second lens L2 has negative refracting power, and the 3rd lens L3 has positive refracting power;
Here, the focal length of the whole camera optical camera lens 10 of definition is f, the focal length of the first lens L1 is f1,0.5≤ F1/f≤10 are, it is specified that the positive refracting power of the first lens L1.During more than lower limit specified value, sent out although being conducive to camera lens to ultrathin Exhibition, but the positive refracting power of the first lens L1 can too strong, it is difficult to make corrections aberration the problems such as, while be unfavorable for camera lens to wide angle hair Exhibition.On the contrary, when being more than upper limit specified value, the positive refracting power of the first lens can become weak, and camera lens is difficult to develop to ultrathin.It is preferred that , meet 0.91≤f1/f≤1.41.
The refractive index of the 4th lens L4 is defined as n4,1.7≤n4≤2.2, it is specified that the refractive index of the 4th lens L4, It is more advantageous to developing to ultrathin within this range, while beneficial to amendment aberration.Preferably, 1.708≤n4≤2.151 are met.
The refractive index of the five lens L5 is defined as n5,1.7≤n5≤2.2, it is specified that the refractive index of the 5th lens L5, It is more advantageous to developing to ultrathin in the range of this, while beneficial to amendment aberration.Preferably, 1.706≤n5≤1.957 are met.
It is d7 to define on the axis of the 4th lens L4 thickness, and the optics overall length of camera optical camera lens is TTL, 0.01≤ D7/TTL≤0.2, it is specified that on the axis of the 4th lens L4 thickness and the optics overall length TTL of camera optical camera lens 10 ratio, have Beneficial to realization ultrathin.Preferably, 0.04≤d7/TTL≤0.137 is met.
When the focal length of camera optical camera lens 10 of the present invention, the focal length of each lens, the refractive index of associated lens, shooting light It learns the optics overall length of camera lens, when thickness and radius of curvature meet above-mentioned relation formula on axis, can have videography optical lens first 10 High-performance, and meet the design requirement of low TTL.
In present embodiment, the object side of the first lens L1 is convex surface in paraxial place, and image side surface is concave surface in paraxial place, tool There is positive refracting power.
The radius of curvature of first lens L1 objects side is R1, and the radius of curvature of the first lens L1 image side surfaces is R2, under satisfaction Row relational expression:- 4.21≤(R1+R2)/(R1-R2)≤- 1.32 rationally control the shape of the first lens so that the first lens energy It is enough effectively to correct system spherical aberration;Preferably, -2.63≤(R1+R2)/(R1-R2)≤- 1.65.
Thickness is d1 on the axis of first lens L1, meets following relationship:0.21≤d1≤0.65 is advantageously implemented ultra-thin Change.Preferably, 0.34≤d1≤0.52.
In present embodiment, the object side of the second lens L2 is convex surface in paraxial place, and image side surface is concave surface in paraxial place, tool There is negative refracting power.
The focal length of whole camera optical camera lens 10 is f, and the second lens L2 focal lengths are f2, meet following relationship:-5.89≤ F2/f≤- 1.74, by controlling the negative power of the second lens L2 in zone of reasonableness, rationally effectively to balance by having The spherical aberration and the curvature of field amount of system that first lens L1 of positive light coke is generated.Preferably, -3.68≤f2/f≤- 2.17.
The radius of curvature of second lens L2 objects side is R3, and the radius of curvature of the second lens L2 image side surfaces is R4, under satisfaction Row relational expression:1.64≤(R3+R4)/(R3-R4)≤6.94 are, it is specified that the shape of the second lens L2, when outside scope, with mirror Head develops to ultra-thin wide angle, it is difficult to the axis that makes corrections colouring Aberration Problem.Preferably, 2.62≤(R3+R4)/(R3-R4)≤5.56.
Thickness is d3 on the axis of second lens L2, meets following relationship:0.10≤d3≤0.61 is advantageously implemented ultra-thin Change.Preferably, 0.16≤d3≤0.48.
In present embodiment, the object side of the 3rd lens L3 is convex surface in paraxial place, and image side surface is convex surface in paraxial place, tool There is positive refracting power.
The focal length of whole camera optical camera lens 10 is f, and the 3rd lens L3 focal length f3 meet following relationship:0.70≤f3/ F≤2.26 are conducive to the ability that system obtains the good balance curvature of field, effectively to promote image quality.Preferably, 1.11≤f3/f ≤1.80。
The radius of curvature of 3rd lens L3 objects side is R5, and the radius of curvature of the 3rd lens L3 image side surfaces is R6, under satisfaction Row relational expression:0.12≤(R5+R6)/(R5-R6)≤0.46 can effectively control the shape of the 3rd lens L3, be conducive to the 3rd thoroughly Mirror L3 is molded, and avoids causing to be molded the generation of bad and stress due to the surface curvature of the 3rd lens L3 is excessive.Preferably, 0.19 ≤(R5+R6)/(R5-R6)≤0.37。
Thickness is d5 on the axis of 3rd lens L3, meets following relationship:0.25≤d5≤0.98 is advantageously implemented ultra-thin Change.Preferably, 0.40≤d5≤0.78.
In present embodiment, the object side of the 4th lens L4 is concave surface in paraxial place, and image side surface is convex surface in paraxial place, tool There is negative refracting power.
The focal length of whole camera optical camera lens 10 is f, and the 4th lens L4 focal length f4 meet following relationship:-5.84≤ F4/f≤- 1.12, pass through the reasonable distribution of focal power so that system has preferable image quality and relatively low sensibility.It is excellent Choosing, -3.65≤f4/f≤- 1.40.
The radius of curvature R 7 of 4th lens L4 objects side, the radius of curvature R 8 of the 4th lens L4 image side surfaces meet following pass It is formula:- 9.05≤(R7+R8)/(R7-R8)≤- 1.20, it is specified that be the 4th lens L4 shape, when outside scope, with super The development of thin wide angle, it is difficult to the problems such as drawing the aberration at angle outside the axis that makes corrections.Preferably, -5.66≤(R7+R8)/(R7-R8)≤- 1.50。
Thickness is d7 on the axis of 4th lens L4, meets following relationship:0.18≤d7≤0.58 is advantageously implemented ultra-thin Change.Preferably, 0.29≤d7≤0.46.
In present embodiment, the object side of the 5th lens L5 is convex surface in paraxial place, has positive refracting power.
The focal length of whole camera optical camera lens 10 is f, and the 5th lens L5 focal lengths are f5, meet following relationship:0.49≤ F5/f≤2.16, can be effectively so that the light angle of pick-up lens be gentle to limiting for the 5th lens L5, and reduction tolerance is sensitive Degree.Preferably, 0.78≤f5/f≤1.73.
The radius of curvature of 5th lens L5 objects side is R9, and the radius of curvature of the 5th lens L5 image side surfaces is R10, under satisfaction Row relational expression:- 3.81≤(R9+R10)/(R9-R10)≤- 0.58, it is specified that be the 5th lens L5 shape, in condition and range When outer, as ultra-thin wide angle develops, it is difficult to the problems such as drawing the aberration at angle outside the axis that makes corrections.Preferably, -2.38≤(R9+R10)/ (R9-R10)≤-0.73。
Thickness is d9 on the axis of 5th lens L5, meets following relationship:0.22≤d9≤0.86 is advantageously implemented ultra-thin Change.Preferably, 0.35≤d9≤0.68.
In present embodiment, the object side of the 6th lens L6 is concave surface in paraxial place, and image side surface is convex surface in paraxial place, tool There is negative refracting power.
The focal length of whole camera optical camera lens 10 is f, and the 6th lens L6 focal length f6 meet following relationship:-1.38≤ F6/f≤- 0.44, passes through the reasonable distribution of focal power so that system has preferable image quality and relatively low sensibility.It is excellent Choosing, -0.86≤f6/f≤- 0.55.
The radius of curvature of 6th lens L6 objects side is R11, and the radius of curvature of the 6th lens L6 image side surfaces is R12, is met Following relationship:- 2.37≤(R11+R12)/(R11-R12)≤- 0.74, it is specified that be the 6th lens L6 shape, in condition When outside scope, as ultra-thin wide angle develops, it is difficult to the problems such as drawing the aberration at angle outside the axis that makes corrections.Preferably, -1.48≤(R11+ R12)/(R11-R12)≤-0.92。
Thickness is d11 on the axis of 6th lens L6, meets following relationship:0.12≤d11≤0.54 is advantageously implemented super Thinning.Preferably, 0.18≤d11≤0.43.
In the present embodiment, the focal length of the camera optical camera lens is f, the combination of first lens and second lens Focal length is f12, and meets following relationship:0.84≤f12/f≤2.80.Whereby, can eliminate the aberration of camera optical camera lens with It distorts, and camera optical camera lens back focal length can be suppressed, maintain the miniaturization of image lens system group.Preferably, 1.34≤f12/f≤ 2.24。
In present embodiment, the optics overall length TTL of camera optical camera lens 10 is less than or equal to 5.72 millimeters, is advantageously implemented Ultrathin.Preferably, the optics overall length TTL of camera optical camera lens 10 is less than or equal to 5.46 millimeters.
In present embodiment, the aperture F numbers of camera optical camera lens 10 are less than or equal to 2.27.Large aperture, imaging performance are good. Preferably, the aperture F numbers of camera optical camera lens 10 are less than or equal to 2.22.
It is so designed that, the optics overall length TTL of whole camera optical camera lens 10 is enabled to shorten as far as possible, maintains miniaturization Characteristic.
The camera optical camera lens 10 of the present invention will be illustrated with example below.The recorded following institute of symbol in each example Show.The unit of distance, radius and center thickness is mm.
TTL:Optical length (distance on the object side of the 1st lens L1 to the axis of imaging surface);
Preferably, the point of inflexion and/or stationary point are also provided on the object side of the lens and/or image side surface, with full The imaging demand of sufficient high-quality, specifically can embodiment, join lower described.
Shown below according to first embodiment of the invention camera optical camera lens 10 design data, focal length, distance, The unit of radius and center thickness is mm.
Table 1, table 2 show the design data of the camera optical camera lens 10 of first embodiment of the invention.
【Table 1】
Wherein, the meaning of each symbol is as follows.
S1:Aperture;
R:Radius of curvature centered on when the radius of curvature of optical surface, lens;
R1:The radius of curvature of the object side of first lens L1;
R2:The radius of curvature of the image side surface of first lens L1;
R3:The radius of curvature of the object side of second lens L2;
R4:The radius of curvature of the image side surface of second lens L2;
R5:The radius of curvature of the object side of 3rd lens L3;
R6:The radius of curvature of the image side surface of 3rd lens L3;
R7:The radius of curvature of the object side of 4th lens L4;
R8:The radius of curvature of the image side surface of 4th lens L4;
R9:The radius of curvature of the object side of 5th lens L5;
R10:The radius of curvature of the image side surface of 5th lens L5;
R11:The radius of curvature of the object side of 6th lens L6;
R12:The radius of curvature of the image side surface of 6th lens L6;
R13:The radius of curvature of the object side of optical filtering piece GF;
R14:The radius of curvature of the image side surface of optical filtering piece GF;
d:Distance on axis on the axis of lens between thickness and lens;
d0:Aperture S1 is to distance on the axis of the object side of the first lens L1;
d1:Thickness on the axis of first lens L1;
d2:The image side surface of first lens L1 is to distance on the axis of the object side of the second lens L2;
d3:Thickness on the axis of second lens L2;
d4:The image side surface of second lens L2 is to distance on the axis of the object side of the 3rd lens L3;
d5:Thickness on the axis of 3rd lens L3;
d6:The image side surface of 3rd lens L3 is to distance on the axis of the object side of the 4th lens L4;
d7:Thickness on the axis of 4th lens L4;
d8:The image side surface of 4th lens L4 is to distance on the axis of the object side of the 5th lens L5;
d9:Thickness on the axis of 5th lens L5;
d10:The image side surface of 5th lens L5 is to distance on the axis of the object side of the 6th lens L6;
d11:Thickness on the axis of 6th lens L6;
d12:The image side surface of 6th lens L6 is to distance on the axis of the object side of optical filtering piece GF;
d13:Thickness on the axis of optical filtering piece GF;
d14:The image side surface of optical filtering piece GF is to distance on the axis of image planes;
nd:The refractive index of d lines;
nd1:The refractive index of the d lines of first lens L1;
nd2:The refractive index of the d lines of second lens L2;
nd3:The refractive index of the d lines of 3rd lens L3;
nd4:The refractive index of the d lines of 4th lens L4;
nd5:The refractive index of the d lines of 5th lens L5;
nd6:The refractive index of the d lines of 6th lens L6;
ndg:The refractive index of the d lines of optical filtering piece GF;
vd:Abbe number;
v1:The Abbe number of first lens L1;
v2:The Abbe number of second lens L2;
v3:The Abbe number of 3rd lens L3;
v4:The Abbe number of 4th lens L4;
v5:The Abbe number of 5th lens L5;
v6:The Abbe number of 6th lens L6;
vg:The Abbe number of optical filtering piece GF.
Table 2 shows the aspherical surface data of each lens in the camera optical camera lens 10 of first embodiment of the invention.
【Table 2】
Wherein, k is circular cone coefficient, and A4, A6, A8, A10, A12, A14, A16 are asphericity coefficients.
IH:Image height
Y=(x2/R)/[1+{1-(k+1)(x2/R2)}1/2]+A4x4+A6x6+A8x8+A10x10+A12x12+A14x14+ A16x16 (1)
For convenience, each lens face is aspherical using aspherical shown in above-mentioned formula (1).But this hair The bright aspherical polynomial form for being not limited to the formula (1) expression.
Table 3, table 4 show the point of inflexion of each lens and stationary point in the camera optical camera lens 10 of first embodiment of the invention Design data.Wherein, P1R1, P1R2 represent object side and the image side surface of the first lens P1 respectively, and P2R1, P2R2 represent respectively The object side of two lens L2 and image side surface, P3R1, P3R2 represent object side and the image side surface of the 3rd lens L3 respectively, P4R1, P4R2 represents object side and the image side surface of the 4th lens L4 respectively, P5R1, P5R2 represent respectively the 5th lens L5 object side and Image side surface, P6R1, P6R2 represent object side and the image side surface of the 6th lens L6 respectively." point of inflexion position " field corresponding data is The point of inflexion set by each lens surface is to the vertical range of 10 optical axis of camera optical camera lens." stationary point position " field corresponding data For the stationary point set by each lens surface to the vertical range of 10 optical axis of camera optical camera lens.
【Table 3】
Point of inflexion number Point of inflexion position 1 Point of inflexion position 2 Point of inflexion position 3
P1R1 1 0.865
P1R2 1 0.365
P2R1 3 0.385 0.585 0.905
P2R2 0
P3R1 2 0.405 1.055
P3R2 0
P4R1 2 1.015 1.375
P4R2 2 1.015 1.575
P5R1 1 0.655
P5R2 3 0.225 0.795 2.245
P6R1 1 1.515
P6R2 1 2.605
【Table 4】
Fig. 2, Fig. 3 respectively illustrate shooting light of light of the wavelength for 486nm, 588nm and 656nm Jing Guo first embodiment Learn axial aberration and ratio chromatism, schematic diagram after camera lens 10.Fig. 4 then shows that the light that wavelength is 588nm is real by first The curvature of field after the camera optical camera lens 10 of mode and distortion schematic diagram are applied, the curvature of field S of Fig. 4 is the curvature of field in sagitta of arc direction, and T is meridian The curvature of field in direction.
The table 13 occurred afterwards is shown in each example 1,2,3 in various numerical value and conditional corresponding to defined parameter Value.
As shown in table 13, first embodiment meets each conditional.
In the present embodiment, the Entry pupil diameters of the camera optical camera lens are 1.874mm, and full filed image height is 3.928mm, the field angle of diagonal are 86.20 °, wide-angle, ultra-thin, and on axis, the outer chromatic aberation of axis fully makes corrections, and have Outstanding optical signature.
(second embodiment)
Second embodiment is essentially identical with first embodiment, and symbol meaning is identical with first embodiment, below only List difference.
Table 5, table 6 show the design data of the camera optical camera lens 20 of second embodiment of the invention.
【Table 5】
Table 6 shows the aspherical surface data of each lens in the camera optical camera lens 20 of second embodiment of the invention.
【Table 6】
Table 7, table 8 show the point of inflexion of each lens and stationary point in the camera optical camera lens 20 of second embodiment of the invention Design data.
【Table 7】
【Table 8】
Stationary point number Stationary point position 1
P1R1 0
P1R2 1 0.755
P2R1 0
P2R2 0
P3R1 1 0.655
P3R2 0
P4R1 0
P4R2 0
P5R1 1 1.145
P5R2 1 1.225
P6R1 0
P6R2 0
Fig. 6, Fig. 7 respectively illustrate shooting light of light of the wavelength for 486nm, 588nm and 656nm Jing Guo second embodiment Learn axial aberration and ratio chromatism, schematic diagram after camera lens 20.Fig. 8 then shows that the light that wavelength is 588nm is real by second Apply the curvature of field after the camera optical camera lens 20 of mode and distortion schematic diagram.
As shown in table 13, second embodiment meets each conditional.
In the present embodiment, the Entry pupil diameters of the camera optical camera lens are 1.914mm, and full filed image height is 3.928mm, the field angle of diagonal are 85.39 °, wide-angle, ultra-thin, and on axis, the outer chromatic aberation of axis fully makes corrections, and have Outstanding optical signature.
(the 3rd embodiment)
3rd embodiment and first embodiment are essentially identical, and symbol meaning is identical with first embodiment, below only List difference.
Table 9, table 10 show the design data of the camera optical camera lens 30 of third embodiment of the invention.
【Table 9】
Table 10 shows the aspherical surface data of each lens in the camera optical camera lens 30 of third embodiment of the invention.
【Table 10】
Table 11, table 12 show the point of inflexion of each lens in the camera optical camera lens 30 of third embodiment of the invention and stay Point design data.
【Table 11】
Point of inflexion number Point of inflexion position 1 Point of inflexion position 2
P1R1 1 0.825
P1R2 1 0.435
P2R1 1 0.955
P2R2 0
P3R1 2 0.355 1.065
P3R2 0
P4R1 2 0.965 1.325
P4R2 2 1.035 1.535
P5R1 1 0.655
P5R2 1 0.825
P6R1 1 1.585
P6R2 1 2.495
【Table 12】
Stationary point number Stationary point position 1
P1R1 0
P1R2 1 0.785
P2R1 0
P2R2 0
P3R1 1 0.575
P3R2 0
P4R1 0
P4R2 0
P5R1 1 1.085
P5R2 1 1.225
P6R1 0
P6R2 0
Figure 10, Figure 11 respectively illustrate camera shooting of light of the wavelength for 486nm, 588nm and 656nm Jing Guo the 3rd embodiment Axial aberration and ratio chromatism, schematic diagram after optical lens 30.Figure 12 then shows that the light that wavelength is 588nm passes through the 3rd The curvature of field and distortion schematic diagram after the camera optical camera lens 30 of embodiment.
Following table 13 lists the numerical value that each conditional is corresponded in present embodiment according to above-mentioned condition formula.Obviously, this reality The imaging optical system for applying mode meets above-mentioned conditional.
In the present embodiment, the Entry pupil diameters of the camera optical camera lens are 1.994mm, and full filed image height is 3.928mm, the field angle of diagonal are 82.98 °, wide-angle, ultra-thin, and on axis, the outer chromatic aberation of axis fully makes corrections, and have Outstanding optical signature.
【Table 13】
It will be understood by those skilled in the art that the respective embodiments described above are to realize the specific embodiment party of the present invention Formula, and in practical applications, can to it, various changes can be made in the form and details, without departing from the spirit and model of the present invention It encloses.

Claims (10)

1. a kind of camera optical camera lens, which is characterized in that the camera optical camera lens is sequentially included from object side to image side:First Lens, the second lens, the 3rd lens, the 4th lens, the 5th lens and the 6th lens;Second lens have negative flexion Power, the 3rd lens have positive refracting power;
The focal length of the camera optical camera lens is f, and the focal length of first lens is f1, and the refractive index of the 4th lens is N4, the refractive index of the 5th lens are n5, and thickness is d7 on the axis of the 4th lens, the optics of the camera optical camera lens Overall length is TTL, meets following relationship:
0.5≤f1/f≤10;
1.7≤n4≤2.2;
1.7≤n5≤2.2;
0.01≤d7/TTL≤0.2。
2. camera optical camera lens according to claim 1, which is characterized in that first lens have positive refracting power, Object side in paraxial for convex surface, image side surface in it is paraxial be concave surface;
The radius of curvature of the first lens object side is R1, and the radius of curvature of the first lens image side surface is R2, Yi Jisuo It is d1 to state thickness on the axis of the first lens, and meets following relationship:
-4.21≤(R1+R2)/(R1-R2)≤-1.32;
0.21≤d1≤0.65。
3. camera optical camera lens according to claim 1, which is characterized in that its object side is in paraxial for convex surface, image side Face is in paraxial for concave surface;
The focal length of the camera optical camera lens is f, and the focal lengths of second lens is f2, the curvature of the second lens object side Radius is R3, and the radius of curvature of the second lens image side surface is R4, and thickness is d3 on the axis of second lens, and under meeting Row relational expression:
-5.89≤f2/f≤-1.74;
1.64≤(R3+R4)/(R3-R4)≤6.94;
0.10≤d3≤0.61。
4. camera optical camera lens according to claim 1, which is characterized in that the object side of the 3rd lens is convex in paraxial place Face, image side surface are convex surface in paraxial place;
The focal length of the camera optical camera lens is f, and the focal lengths of the 3rd lens is f3, the curvature of the 3rd lens object side Radius is R5, and the radius of curvature of the 3rd lens image side surface is R6, and thickness is d5 on the axis of the 3rd lens, and under meeting Row relational expression:
0.70≤f3/f≤2.26;
0.12≤(R5+R6)/(R5-R6)≤0.46;
0.25≤d5≤0.98。
5. camera optical camera lens according to claim 1, which is characterized in that the 4th lens have negative refracting power, Object side in paraxial for concave surface, image side surface in it is paraxial be convex surface;
The focal length of the camera optical camera lens is f, and the focal lengths of the 4th lens is f4, the curvature of the 4th lens object side Radius is R7, and the radius of curvature of the 4th lens image side surface is R8, and thickness is d7 on the axis of the 4th lens, and under meeting Row relational expression:
-5.84≤f4/f≤-1.12;
-9.05≤(R7+R8)/(R7-R8)≤-1.20;
0.18≤d7≤0.58。
6. camera optical camera lens according to claim 1, which is characterized in that the 5th lens have positive refracting power, Object side is in paraxial for convex surface;
The focal length of the camera optical camera lens is f, and the focal lengths of the 5th lens is f5, the curvature of the 5th lens object side Radius is R9, and the radius of curvature of the 5th lens image side surface is R10, and thickness is d9 on the axis of the 5th lens, and is met Following relationship:
0.49≤f5/f≤2.16;
-3.81≤(R9+R10)/(R9-R10)≤-0.58;
0.22≤d9≤0.86。
7. camera optical camera lens according to claim 1, which is characterized in that the 6th lens have negative refracting power, Object side in paraxial for concave surface, image side surface in it is paraxial be convex surface;
The focal length of the camera optical camera lens is f, and the focal lengths of the 6th lens is f6, the curvature of the 6th lens object side Radius is R11, and the radius of curvature of the 6th lens image side surface is R12, and thickness is d11 on the axis of the 6th lens, and full Sufficient following relationship:
-1.38≤f6/f≤-0.44;
-2.37≤(R11+R12)/(R11-R12)≤-0.74;
0.12≤d11≤0.54。
8. camera optical camera lens according to claim 1, which is characterized in that the focal length of the camera optical camera lens be f, institute The combined focal length for stating the first lens and second lens is f12, and meets following relationship:
0.84≤f12/f≤2.80。
9. camera optical camera lens according to claim 1, which is characterized in that the optics overall length of the camera optical camera lens TTL is less than or equal to 5.72 millimeters.
10. camera optical camera lens according to claim 1, which is characterized in that the aperture F numbers of the camera optical camera lens are small In or equal to 2.27.
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JP2018000109A JP6529616B1 (en) 2017-11-18 2018-01-04 Shooting optical lens
US15/862,702 US10606029B2 (en) 2017-11-18 2018-01-05 Camera optical lens

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