CN110361841A - Camera optical camera lens - Google Patents

Camera optical camera lens Download PDF

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Publication number
CN110361841A
CN110361841A CN201910581777.4A CN201910581777A CN110361841A CN 110361841 A CN110361841 A CN 110361841A CN 201910581777 A CN201910581777 A CN 201910581777A CN 110361841 A CN110361841 A CN 110361841A
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China
Prior art keywords
lens
camera
curvature
axis
optical camera
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CN201910581777.4A
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CN110361841B (en
Inventor
王康
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AAC Technologies Pte Ltd
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AAC Technologies Pte Ltd
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    • 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
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B13/00Optical objectives specially designed for the purposes specified below
    • G02B13/18Optical objectives specially designed for the purposes specified below with lenses having one or more non-spherical faces, e.g. for reducing geometrical aberration

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Lenses (AREA)

Abstract

The present invention relates to field of optical lens, disclose a kind of camera optical camera lens, the camera optical camera lens sequentially includes from object side to image side: the first lens with positive refracting power, the second lens with negative refracting power, the third lens with positive refracting power, the 4th lens with negative refracting power, and the 5th lens with positive refracting power;The Abbe number of first lens is v1, the Abbe number of second lens is v2, with a thickness of d1 on the axis of first lens, with a thickness of d3 on the axis of second lens, with a thickness of d5 on the axis of the third lens, with a thickness of d7 on the axis of the 4th lens, with a thickness of d9 on the axis of 5th lens, the system total focal length of the camera optical camera lens is f, and the focal length of first lens is f1, meets following relationship: 2.80≤v1/v2≤4.20;1.00≤(d3+d5+d7+d9)/d1≤1.50;0.45≤f1/f≤0.70.While camera optical camera lens provided by the invention has favorable optical performance, meet the design requirement of large aperture, long-focus, ultrathin.

Description

Camera optical camera lens
[technical field]
The present invention relates to field of optical lens, in particular to a kind of to be suitable for the hand-held terminals such as smart phone, digital camera The camera optical camera lens of the photographic devices such as equipment and monitor, PC camera lens.
[background technique]
In recent years, with the rise of smart phone, the demand for minimizing phtographic lens is increasingly improved, 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 having 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 mostly uses three-chip type or four-piece type saturating Mirror structure.However, with the development of technology and users on diversity increases, constantly contracting in the elemental area of sensor devices It is small, and in the case where requirement continuous improvement of the system to image quality, five chip lens arrangements occur gradually over lens design and work as In, although five common chip lens have had preferable optical property, its focal power, lens spacing and lens shape Being arranged still has certain irrationality, causes lens arrangement while with favorable optical performance, is unable to satisfy big light Circle, long-focus, the design requirement of ultrathin.
[summary of the invention]
In view of the above-mentioned problems, the purpose of the present invention is to provide a kind of camera optical camera lenses, with favorable optical performance While, meet the design requirement of large aperture, long-focus, ultrathin.
In order to solve the above technical problems, embodiments of the present invention provide a kind of camera optical camera lens, it is described to take the photograph As optical lens sequentially includes from object side to image side: the first lens with positive refracting power, the second lens with negative refracting power, The third lens with positive refracting power, the 4th lens with negative refracting power, and the 5th lens with positive refracting power;
The Abbe number of first lens is v1, and the Abbe numbers of second lens is v2, on the axis of first lens With a thickness of d1, with a thickness of d3 on the axis of second lens, with a thickness of d5 on the axis of the third lens, the 4th lens With a thickness of d7 on axis, with a thickness of d9 on the axis of the 5th lens, the system total focal length of the camera optical camera lens is f, described The focal length of first lens is f1, meets following relationship:
2.80≤v1/v2≤4.20;
1.00≤(d3+d5+d7+d9)/d1≤1.50;
0.45≤f1/f≤0.70。
Preferably, distance d4 on the second lens image side surface to the axis of the third lens object side, and meet following Relational expression:
3.00≤d3/d4≤5.00。
Preferably, the radius of curvature of the 4th lens object side is R7, the radius of curvature of the 4th lens image side surface For R8, and meet following relationship:
-10.00≤(R7+R8)/(R7-R8)≤-1.00。
Preferably, the radius of curvature of the first lens object side is R1, the radius of curvature of the first lens image side surface Optics overall length for R2 and the camera optical camera lens is TTL, and meets following relationship:
-3.02≤(R1+R2)/(R1-R2)≤-0.34;
0.09≤d1/TTL≤0.31。
Preferably, the focal length of second lens is f2, and the radius of curvature of the second lens object side is R3, described the The radius of curvature of two lens image side surfaces is R4 and the optics overall length of the camera optical camera lens is TTL, and meets following relationship Formula:
-0.86≤f2/f≤-0.22;
0.53≤(R3+R4)/(R3-R4)≤2.23;
0.04≤d3/TTL≤0.24。
Preferably, the focal length of the third lens is f3, and the radius of curvature of the third lens object side is R5, described the The radius of curvature of three lens image side surfaces is R6 and the optics overall length of the camera optical camera lens is TTL, and meets following relationship Formula:
0.24≤f3/f≤1.69;
-22.66≤(R5+R6)/(R5-R6)≤-1.71;
0.01≤d5/TTL≤0.06。
Preferably, the focal length of the 4th lens is f4 and the optics overall length of the camera optical camera lens is TTL, and Meet following relationship:
-5.05≤f4/f≤-0.52;
0.01≤d7/TTL≤0.05。
Preferably, the focal length of the 5th lens is f5, and the radius of curvature of the 5th lens object side is R9, Yi Jisuo The radius of curvature for stating the 5th lens image side surface is R10 and the optics overall length of the camera optical camera lens is TTL, and under satisfaction Column relational expression:
0.53≤f5/f≤2.84;
-8.56≤(R9+R10)/(R9-R10)≤-0.42;
0.02≤d9/TTL≤0.14。
Preferably, the optics overall length of the camera optical camera lens is TTL, and meets following relationship:
TTL/f≤1.00。
Preferably, the burnt number of the camera optical camera lens is Fno, and meets following relationship:
f≥14mm;
Fno≤2.6。
The beneficial effects of the present invention are: camera optical camera lens according to the present invention has favorable optical performance, and big light Circle, long-focus, the characteristic of ultrathin, are particularly suitable for the cell-phone camera being made of photographing elements such as CCD, CMOS of high pixel Lens assembly and WEB pick-up lens.
[Detailed description of the invention]
To describe the technical solutions in the embodiments of the present invention more clearly, make required in being described below to embodiment Attached drawing is briefly described, it should be apparent that, drawings in the following description are only some embodiments of the invention, for For those of ordinary skill in the art, without creative efforts, it can also be obtained according to these attached drawings other Attached drawing, in which:
Fig. 1 is the structural schematic diagram of the camera optical camera lens of embodiment one;
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 and distortion schematic diagram of camera optical camera lens shown in FIG. 1;
Fig. 5 is the structural schematic diagram of the camera optical camera lens of embodiment two;
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 and distortion schematic diagram of camera optical camera lens shown in fig. 5;
Fig. 9 is the structural schematic diagram of the camera optical camera lens of embodiment three;
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 and distortion schematic diagram of camera optical camera lens shown in Fig. 9.
[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 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 make reader more fully understand the present invention.But even if without these technical details and base In the various changes and modifications of following embodiment, claimed technical solution of the invention also may be implemented.
(first embodiment)
Attached drawing is please referred to, 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 five lens.Specifically, the camera optical camera lens 10, by object Side to image side sequentially includes: aperture S1, the first lens L1 with positive refracting power, the second lens L2 with negative refracting power, tool There are the third lens L3, the 4th lens L4 with negative refracting power of positive refracting power and with the 5th lens L5 of positive refracting power. It may be provided with the optical elements such as optical filtering piece (filter) GF between 5th lens L5 and image planes Si.
In the present embodiment, the Abbe number for defining the first lens L1 is v1, the Abbe number of the second lens L2 For v2, meet following relationship: 2.80≤v1/v2≤4.20;Define the first lens L1 abbe number and the second lens L2 color The ratio for dissipating coefficient facilitates chromatic aberration correction, improves system imaging performance.
It defines on the axis of the first lens L1 with a thickness of d1, with a thickness of d3 on the axis of the second lens L2, described With a thickness of d5 on the axis of three lens L3, with a thickness of d7 on the axis of the 4th lens L4, thickness on the axis of the 5th lens L5 For d9, and meet following relationship: 1.00≤(d3+d5+d7+d9)/d1≤1.50;When (d3+d5+d7+d9)/d1 meets condition When, can appropriately configured each lens thickness, be conducive to eyeglass molding and assembling.
The system total focal length for defining the camera optical camera lens 10 is f, and the focal length of the first lens L1 is f1, and is met Following relationship: 0.45≤f1/f≤0.70;Define the total focal length of the first lens L1 focal length Yu the camera optical camera lens 10 Ratio, Performance of Optical System is helped to improve within the scope of conditional.
Distance d4 on the second lens L2 image side surface to the axis of the third lens L3 object side is defined, and is met following Relational expression: 3.00≤d3/d4≤5.00.The second lens L2 thickness and the second lens L2 are defined between air between the third lens L3 Gauge from ratio, be conducive in compressibility overall length.
The radius of curvature for defining the 4th lens L4 object side is R7, the radius of curvature of the 4th lens L4 image side surface For R8, and meet following relationship: -10.00≤(R7+R8)/(R7-R8)≤- 1.00;The shape of the 4th lens L4 is defined, The deviation degree that light passes through eyeglass can be mitigated, aberration is effectively reduced.
The radius of curvature for defining the first lens L1 object side is R1, the radius of curvature of the first lens L1 image side surface For R2, meet following relationship: -3.02≤(R1+R2)/(R1-R2)≤- 0.34;The rationally shape of the first lens L1 of control, makes System spherical aberration can effectively be corrected by obtaining the first lens L1.
The optics overall length for defining the camera optical camera lens 10 is TTL, and meets following relationship: 0.09≤d1/TTL≤ 0.31, it is advantageously implemented ultrathin.
The focal length for defining the second lens L2 is f2, and meets following relationship: -0.86≤f2/f≤- 0.22 passes through By the negative power control of the second lens L2 in zone of reasonableness, be conducive to the aberration for correcting optical system.
The radius of curvature for defining the second lens L2 object side is R3, the radius of curvature of the second lens L2 image side surface For R4, and meet following relationship: 0.53≤(R3+R4)/(R3-R4)≤2.23 is, it is specified that the shape of the second lens L2, in model When enclosing interior, as camera lens develops to ultra-thin wide angle, be conducive to the axis colouring Aberration Problem that makes corrections.
It defines on the axis of the second lens L2 and is with a thickness of the optics overall length of d3 and the camera optical camera lens 10 TTL, and meet following relationship: 0.04≤d3/TTL≤0.24 is advantageously implemented ultrathin.
The focal length for defining the third lens L3 is f3, and meets following relationship: 0.24≤f3/f≤1.69 pass through light The reasonable distribution of focal power, so that system has preferable image quality and lower sensibility.
The radius of curvature for defining the third lens L3 object side is the curvature of R5 and the third lens L3 image side surface Radius is R6, meet following relationship: -22.66≤(R5+R6)/(R5-R6)≤- 1.71 is, it is specified that the shape of the third lens L3 Shape can mitigate the deviation degree that light passes through eyeglass, effectively reduce aberration in conditional prescribed limit.
Define on the axis of the third lens L3 with a thickness of the optics overall length of d5 and the camera optical camera lens be TTL, And meet following relationship: 0.01≤d5/TTL≤0.06 is advantageously implemented ultrathin.
The focal length for defining the 4th lens L4 is f4, meets following relationship: -5.05≤f4/f≤- 0.52, it is specified that The ratio of 4th lens L4 focal length and system total focal length, by the reasonable distribution of focal power, so that system has preferably imaging Quality and lower sensibility.
It defines on the axis of the 4th lens L4 and is with a thickness of the optics overall length of d7 and the camera optical camera lens 10 TTL, and meet following relationship: 0.01≤d7/TTL≤0.05 is advantageously implemented ultrathin.
The focal length for defining the 5th lens L5 is f5, meets following relationship: 0.53≤f5/f≤2.84.Thoroughly to the 5th The restriction of mirror L5 can effectively make the light angle of pick-up lens gentle, reduce tolerance sensitivities.
The radius of curvature for defining the 5th lens L5 object side is the curvature of R9 and the 5th lens L5 image side surface Radius is R10, and meets following relationship: -8.56≤(R9+R10)/(R9-R10)≤- 0.42.Define the 5th lens L5's Shape when in range, with ultrathin, the development of wide angle, is conducive to the problems such as drawing the aberration at angle outside correction axis.
It defines on the axis of the 5th lens L5 and is with a thickness of the optics overall length of d9 and the camera optical camera lens 10 TTL, and meet following relationship: 0.02≤d9/TTL≤0.14 is advantageously implemented ultrathin.
In present embodiment, the optics overall length TTL of camera optical camera lens 10 is less than or equal to 16.41 millimeters, is conducive to reality Existing ultrathin.
It is designed in this way, the optics overall length TTL of whole camera optical camera lens 10 is enabled to shorten as far as possible, maintain miniaturization Characteristic.
Further, TTL is the optics overall length of camera optical camera lens 10, and f is the system total focal length of camera optical camera lens 10, Meet following relationship: TTL/f≤1.00 are advantageously implemented ultrathin;And meeting following relationship: f >=14mm realizes focal length Away from design;Fno is the ratio of burnt number namely effective focal length and entrance pupil aperture, meets following relationship: Fno≤2.6, favorably In realizing large aperture, so that imaging performance is good.Above-mentioned relation ought be met, so that camera optical camera lens 10 is realized with good While good optical imagery performance, moreover it is possible to meet the design requirement of ultrathin, long-focus, large aperture;According to the optical lens 10 Characteristic, which is particularly suitable for the mobile phone camera lens being made of photographing elements such as CCD, CMOS of high pixel Component and WEB pick-up lens.
Camera optical camera lens 10 of the invention will be illustrated with example below.The documented following institute of symbol in each example Show.Distance on focal length, axis, radius of curvature, thickness on axis, point of inflexion position, stationary point position unit be mm.
TTL: optics overall length (distance on the object side to the axis of imaging surface of the first lens L1), unit mm;
Preferably, it is also provided with the point of inflexion and/or stationary point on the object side of the lens and/or image side surface, with full The imaging demand of sufficient high-quality, specific implementable solution are joined lower described.
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: being center radius of curvature when the radius of curvature of optical surface, lens;The curvature of the object side of R1: the first lens L1 half Diameter;
The radius of curvature of the image side surface of R2: the first lens L1;
The radius of curvature of the object side of R3: the second lens L2;
The radius of curvature of the image side surface of R4: the second lens L2;
The radius of curvature of R5: the third lens L3 object side;
R6: the radius of curvature of the image side surface of the third lens L3;
The radius of curvature of the object side of R7: the four lens L4;
The radius of curvature of the image side surface of R8: the four lens L4;
The radius of curvature of the object side of R9: the five lens L5;
The radius of curvature of the image side surface of R10: the five lens L5;
R11: the radius of curvature of the object side of optical filtering piece GF;
R12: the radius of curvature of the image side surface of optical filtering piece GF;
D: distance on the axis on the axis of lens between thickness and lens;
Distance on the axis of the object side of d0: aperture S1 to first lens L1;
Thickness on the axis of d1: the first lens L1;
Distance on the image side surface of d2: the first lens L1 to the axis of the object side of the second lens L2;
Thickness on the axis of d3: the second lens L2;
Distance on the image side surface of d4: the second lens L2 to the axis of the object side of the third lens L3;
D5: thickness on the axis of the third lens L3;
D6: distance on the axis of the image side surface of the third lens L3 to the object side of the 4th lens L4;
Thickness on the axis of d7: the four lens L4;
Distance on the image side surface of d8: the four lens L4 to the axis of the object side of the 5th lens L5;
Thickness on the axis of d9: the five lens L5;
Distance on the image side surface of d10: the five lens L5 to the axis of the object side of optical filtering piece GF;
D11: thickness on the axis of optical filtering piece GF;
D12: distance on the image side surface to the axis of image planes of optical filtering piece GF;
The refractive index of nd:d line;
The refractive index of the d line of nd1: the first lens L1;
The refractive index of the d line of nd2: the second lens L2;
The refractive index of nd3: the third lens L3 d line;
The refractive index of the d line of nd4: the four lens L4;
The refractive index of the d line of nd5: the five lens L5;
Ndg: the refractive index of the d line of optical filtering piece GF;
Vd: Abbe number;
The Abbe number of v1: the first lens L1;
The Abbe number of v2: the second lens L2;
V3: the Abbe number of the third lens L3;
The Abbe number of v4: the four lens L4;
The Abbe number of v5: the five lens L5;
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.
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 respectively represent object side and the image side surface of the first lens L1, and P2R1, P2R2 respectively represent The object side of two lens L2 and image side surface, P3R1, P3R2 respectively represent object side and the image side surface of the third lens L3, P4R1, P4R2 respectively represents object side and the image side surface of the 4th lens L4, P5R1, P5R2 respectively represent the 5th lens L5 object side and Image side surface." point of inflexion position " field corresponding data is the point of inflexion set by each lens surface to 10 optical axis of camera optical camera lens Vertical range." stationary point position " field corresponding data is stationary point set by each lens surface to 10 optical axis of camera optical camera lens Vertical range.
[table 3]
Point of inflexion number Point of inflexion position 1 Point of inflexion position 2
P1R1 1 2.815 0
P1R2 1 1.145 0
P2R1 0 0 0
P2R2 0 0 0
P3R1 2 0.985 1.825
P3R2 2 0.725 1.845
P4R1 1 1.055 0
P4R2 1 0.965 0
P5R1 1 0.365 0
P5R2 0 0 0
[table 4]
Stationary point number Stationary point position 1
P1R1 0 0
P1R2 1 1.645
P2R1 0 0
P2R2 0 0
P3R1 0 0
P3R2 1 1.375
P4R1 1 1.915
P4R2 1 1.865
P5R1 1 0.635
P5R2 0 0
Fig. 2 shows light the taking the photograph by first embodiment that wavelength is 470nm, 510nm, 555nm, 610nm and 650nm As the axial aberration schematic diagram after optical lens 10, it is 470nm, 510nm, 555nm, 610nm and 650nm that Fig. 3, which shows wavelength, Camera optical camera lens 10 of the light by first embodiment after ratio chromatism, schematic diagram.Fig. 4 is then shown, and wavelength is The curvature of field and distortion schematic diagram after camera optical camera lens 10 of the light of 555nm by first embodiment, the curvature of field S of Fig. 4 is arc Swear the curvature of field in direction, T is the curvature of field of meridian direction.
The table 13 occurred afterwards show in each embodiment one, two, three in various numerical value and conditional as defined in parameter institute Corresponding 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 5.750mm, and full filed image height is 2.62mm, the field angle of diagonal is 19.72 °, so that 10 wide angle of camera optical camera lens, ultrathin, on axis, The outer chromatic aberation of axis sufficiently makes corrections, and has outstanding optical signature.
(second embodiment)
Second embodiment is essentially identical with first embodiment, and symbol meaning is identical with first embodiment, this second The structure type of the camera optical camera lens 20 of embodiment please join shown in Fig. 5, only list difference below.
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]
Point of inflexion number Point of inflexion position 1 Point of inflexion position 2 Point of inflexion position 3
P1R1 1 2.835 0 0
P1R2 1 1.515 0 0
P2R1 0 0 0 0
P2R2 0 0 0 0
P3R1 2 1.115 1.515 0
P3R2 2 1.065 1.605 0
P4R1 3 0.635 1.565 1.865
P4R2 2 0.635 1.925 0
P5R1 3 0.605 1.695 1.995
P5R2 1 0.305 0 0
[table 8]
Stationary point number Stationary point position 1
P1R1 0 0
P1R2 1 2.275
P2R1 0 0
P2R2 0 0
P3R1 0 0
P3R2 0 0
P4R1 1 1.285
P4R2 1 1.205
P5R1 1 1.115
P5R2 1 0.535
Fig. 6 shows light the taking the photograph by second embodiment that wavelength is 470nm, 510nm, 555nm, 610nm and 650nm As the axial aberration schematic diagram after optical lens 20, it is 470nm, 510nm, 555nm, 610nm and 650nm that Fig. 7, which shows wavelength, Camera optical camera lens 20 of the light by second embodiment after ratio chromatism, schematic diagram.Fig. 8 is then shown, and wavelength is The curvature of field and distortion schematic diagram after camera optical camera lens 20 of the light of 555nm by second embodiment.
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 5.742mm, and full filed image height is 2.62mm, the field angle of diagonal is 19.84 °, so that 20 wide angle of camera optical camera lens, ultrathin, on axis, The outer chromatic aberation of axis sufficiently makes corrections, and has outstanding optical signature.
(third embodiment)
Third embodiment and first embodiment are essentially identical, and symbol meaning is identical with first embodiment, the third The structure type of the camera optical camera lens 30 of embodiment please join shown in Fig. 9, only list difference below.
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 0 0 0
P1R2 1 1.045 0
P2R1 0 0 0
P2R2 2 1.795 2.085
P3R1 2 1.425 1.965
P3R2 0 0 0
P4R1 1 0.805 0
P4R2 1 0.865 0
P5R1 1 0.695 0
P5R2 1 0.765 0
[table 12]
Stationary point number Stationary point position 1
P1R1 0 0
P1R2 1 1.945
P2R1 0 0
P2R2 0 0
P3R1 0 0
P3R2 0 0
P4R1 1 1.505
P4R2 1 1.635
P5R1 1 1.205
P5R2 1 1.385
Figure 10 shows the light that wavelength is 470nm, 510nm, 555nm, 610nm and 650nm and passes through first embodiment Axial aberration schematic diagram after camera optical camera lens 30, Figure 11 show wavelength be 470nm, 510nm, 555nm, 610nm and Ratio chromatism, schematic diagram after camera optical camera lens 30 of the light of 650nm by first embodiment.Figure 12 is then shown, wavelength For the curvature of field and distortion schematic diagram after camera optical camera lens 30 of the light by third embodiment of 555nm.
Following table 13 lists the numerical value that each conditional is corresponded in present embodiment according to the above conditions.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 5.749mm, and full filed image height is 2.62mm, the field angle of diagonal is 19.64 °, so that 30 wide angle of camera optical camera lens, ultrathin, on axis, The outer chromatic aberation of axis sufficiently makes corrections, and has outstanding optical signature.
[table 13]
Parameter and conditional Embodiment 1 Embodiment 2 Embodiment 3
f 14.950 14.930 14.948
f1 7.928 9.555 6.871
f2 -5.238 -6.399 -4.900
f3 7.230 16.787 12.312
f4 -11.662 -37.728 -36.778
f5 22.834 15.854 28.316
f12 215.842 70.557 134.753
v1/v2 3.64 3.04 4.14
(d3+d5+d7+d9)/d1 1.11 1.40 1.46
f1/f 0.53 0.64 0.46
Fno 2.60 2.60 2.60
It will be understood by those skilled in the art that the respective embodiments described above are to realize specific embodiment party of the invention Formula, and in practical applications, can to it, various changes can be made in the form and details, without departing from spirit and model of the invention It encloses.

Claims (10)

1. a kind of camera optical camera lens, which is characterized in that the camera optical camera lens sequentially includes from object side to image side: having just First lens of refracting power, the second lens with negative refracting power, the third lens with positive refracting power, with negative refracting power 4th lens, and the 5th lens with positive refracting power;
The Abbe number of first lens is v1, and the Abbe number of second lens is v2, thickness on the axis of first lens For d1, with a thickness of d3 on the axis of second lens, with a thickness of d5 on the axis of the third lens, on the axis of the 4th lens With a thickness of d7, with a thickness of d9 on the axis of the 5th lens, the system total focal length of the camera optical camera lens is f, described first The focal length of lens is f1, and meets following relationship:
2.80≤v1/v2≤4.20;
1.00≤(d3+d5+d7+d9)/d1≤1.50;
0.45≤f1/f≤0.70。
2. camera optical camera lens according to claim 1, which is characterized in that the second lens image side surface to the third Distance d4 on the axis of lens object side, and meet following relationship:
3.00≤d3/d4≤5.00。
3. camera optical camera lens according to claim 1, which is characterized in that the radius of curvature of the 4th lens object side Radius of curvature for R7, the 4th lens image side surface is R8, and meets following relationship:
-10.00≤(R7+R8)/(R7-R8)≤-1.00。
4. camera optical camera lens according to claim 1, which is characterized in that the radius of curvature of the first lens object side For R1, the radius of curvature of the first lens image side surface is R2 and the optics overall length of the camera optical camera lens is TTL, and Meet following relationship:
-3.02≤(R1+R2)/(R1-R2)≤-0.34;
0.09≤d1/TTL≤0.31。
5. camera optical camera lens according to claim 1, which is characterized in that the focal length of second lens is f2, described The radius of curvature of second lens object side is R3, and the radius of curvature of the second lens image side surface is R4 and the shooting light The optics overall length for learning camera lens is TTL, and meets following relationship:
-0.86≤f2/f≤-0.22;
0.53≤(R3+R4)/(R3-R4)≤2.23;
0.04≤d3/TTL≤0.24。
6. camera optical camera lens according to claim 1, which is characterized in that the focal length of the third lens is f3, described The radius of curvature of the third lens object side is R5, and the radius of curvature of the third lens image side surface is R6 and the shooting light The optics overall length for learning camera lens is TTL, and meets following relationship:
0.24≤f3/f≤1.69;
-22.66≤(R5+R6)/(R5-R6)≤-1.71;
0.01≤d5/TTL≤0.06。
7. camera optical camera lens according to claim 1, which is characterized in that the focal length of the 4th lens is f4, and The optics overall length of the camera optical camera lens is TTL, and meets following relationship:
-5.05≤f4/f≤-0.52;
0.01≤d7/TTL≤0.05。
8. camera optical camera lens according to claim 1, which is characterized in that the focal length of the 5th lens is f5, described The radius of curvature of 5th lens object side is R9 and the radius of curvature of the 5th lens image side surface is R10 and described takes the photograph As the optics overall length of optical lens is TTL, and meet following relationship:
0.53≤f5/f≤2.84;
-8.56≤(R9+R10)/(R9-R10)≤-0.42;
0.02≤d9/TTL≤0.14。
9. camera optical camera lens according to claim 1, which is characterized in that the optics overall length of the camera optical camera lens is TTL, and meet following relationship:
TTL/f≤1.00。
10. camera optical camera lens according to claim 1, which is characterized in that the burnt number of the camera optical camera lens is Fno, and meet following relationship:
f≥14mm;
Fno≤2.6。
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CN114740604A (en) * 2022-04-26 2022-07-12 江西晶超光学有限公司 Optical system, camera module and electronic equipment
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CN106371198A (en) * 2015-07-24 2017-02-01 大立光电股份有限公司 Optical camera lens group, image pickup device and electronic device
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CN106980169A (en) * 2016-12-14 2017-07-25 瑞声科技(新加坡)有限公司 Camera optical camera lens
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