CN105700112A - Optical imaging lens and electronic device employing same - Google Patents

Optical imaging lens and electronic device employing same Download PDF

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Publication number
CN105700112A
CN105700112A CN201410696207.7A CN201410696207A CN105700112A CN 105700112 A CN105700112 A CN 105700112A CN 201410696207 A CN201410696207 A CN 201410696207A CN 105700112 A CN105700112 A CN 105700112A
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lens
optical axis
optical
optical imaging
imaging lens
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CN201410696207.7A
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CN105700112B (en
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许圣伟
唐子健
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Genius Electronic Optical Xiamen Co Ltd
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Genius Electronic Optical Xiamen Co Ltd
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Abstract

The invention relates to an optical lens. The invention discloses an optical imaging lens which sequentially comprises a first lens, a diaphragm, a second lens, a third lens, a fourth lens and a fifth lens along an optical axis from an object side to an image side, wherein each lens has an object plane and an image plane. The optical imaging lens meets the conditional expression (T1+T3)/Gaa>=1.2. The invention further discloses an electronic device comprising a housing and an image module mounted in the housing. The image module comprises the optical imaging lens, a lens cone for arranging the optical imaging lens, a module holder unit for arranging the lens cone, and an image sensor arranged at the image side of the optical imaging lens. The optical imaging lens and the electronic device are used for optical photography.

Description

Optical imaging lens and apply the electronic installation of this optical imaging lens
Technical field
The invention relates to a kind of optical lens, particularly relate to a kind of optical imaging lens and apply the electronic installation of this optical imaging lens。
Background technology
In recent years, the universal of the portable electronic product such as mobile phone and digital camera makes image module correlation technique flourish, this image module mainly comprises optical imaging lens, the assemblies such as module rear seat unit (moduleholderunit) and sensor (sensor), and the slim light and handyization trend of mobile phone and digital camera also allows the miniature requirement of image module more and more high, along with photosensitive coupling component (ChargeCoupledDevice, referred to as CCD) or Complimentary Metal-Oxide semiconductor subassembly (ComplementaryMetal-OxideSemiconductor, referred to as CMOS) technological progress and result of scaling, the optical lens being loaded in image module is also required to correspondingly shorten length, but in order to avoid photographic effects and Quality Down, still good optical property is taken into account when shortening the length of optical lens。But the most important characteristic of optical lens is nothing more than being exactly image quality and volume。
Japanese Patent No. JP5397538 and Taiwan patent publication No. TW201305651 all discloses a kind of optical lens being made up of five lens, the thing side of its first lens is all bigger to imaging surface distance on optical axis, the system length making this optical lens cannot effectively be contracted to certain length, to meet mobile phone and the design requirement of digital camera slimming。
In sum, the technical difficulty of microminiaturized camera lens substantially exceeds conventional lenses, therefore how to produce the optical lens meeting consumption electronic products demand, and continues to promote its image quality, is always up the target that this area all circles are earnestly pursued for a long time。
Summary of the invention
Therefore, the purpose of the present invention, namely providing a kind of when shortening lens system length, it still is able to possess the optical imaging lens of good optical property。
Then optical imaging lens of the present invention, one first lens, an aperture, one second lens, one the 3rd lens, one the 4th lens are sequentially comprised from thing side to image side along an optical axis, and one the 5th lens, and these first lens to the 5th lens all have a refractive index, and include one respectively towards thing side and the thing side making imaging light pass through and one towards image side and the image side surface that makes imaging light pass through。
This thing side of these the first lens has a convex surface part being positioned at circumference near zone, and this image side surface of these the first lens has a convex surface part being positioned at optical axis near zone;These second lens are plastic material;This thing side of 3rd lens has a concave part being positioned at circumference near zone;4th lens have positive refractive index, and this thing side of the 4th lens has a concave part being positioned at optical axis near zone;And the 5th this thing sides of lens there is a convex surface part being positioned at optical axis near zone and be positioned at the concave part of circumference near zone。
Wherein, this optical imaging lens has the lens of refractive index and only has five, this the first lens thickness on optical axis is T1,3rd lens thickness on optical axis is T3, these first lens are Gaa to the 5th lens four the air gap summations on optical axis, and meet (T1+T3)/Gaa 1.2。
Having the beneficial effects that of optical imaging lens of the present invention: the thing side of above lens or the concaveconvex shape of image side surface design and arrangement, make this optical imaging lens when shortening system length, still possess the optical property that can effectively overcome aberration, and preferably image quality is provided。
Therefore, another object of the present invention, namely providing a kind of electronic installation being applied to aforesaid optical imaging lens。
Then, the electronic installation of the present invention, comprise a casing, and one is arranged on image module in this casing。
This image module includes just like aforementioned described optical imaging lens, one for the lens barrel arranged for this optical imaging lens, a module rear seat unit for arranging for this lens barrel, and an image sensor being arranged at this optical imaging lens image side。
Having the beneficial effects that of electronic installation of the present invention: by loading the image module with aforesaid optical imaging lens in this electronic installation, in order to this imaging lens when shortening system length, it still is able to provide the advantage of good optical property, more slim light and handy electronic installation is made when not sacrificing optical property, make the present invention have good Practical Performance concurrently and contribute to the structural design of compactization, and higher-quality consumption demand can be met。
Accompanying drawing explanation
Other the feature of the present invention and effect, clearly present in describing in detail in the embodiment with reference to accompanying drawing, wherein:
Fig. 1 is a schematic diagram, and the surface structure of lens is described;
Fig. 2 is a schematic diagram, and face type concaveconvex structure and the light focus of lens are described;
Fig. 3 is a schematic diagram, and the surface structure of the lens of an example one is described;
Fig. 4 is a schematic diagram, and the surface structure of the lens of an example two is described;
Fig. 5 is a schematic diagram, and the surface structure of the lens of an example three is described;
Fig. 6 is a configuration schematic diagram, and a first embodiment of optical imaging lens of the present invention is described;
Fig. 7 is the longitudinal spherical aberration of this first embodiment and every aberration diagram;
Fig. 8 is a tabular drawing, and the optical data of each lens of this first embodiment is described;
Fig. 9 is a tabular drawing, and the asphericity coefficient of each lens of this first embodiment is described;
Figure 10 is a configuration schematic diagram, and one second embodiment of optical imaging lens of the present invention is described;
Figure 11 is the longitudinal spherical aberration of this second embodiment and every aberration diagram;
Figure 12 is a tabular drawing, and the optical data of each lens of this second embodiment is described;
Figure 13 is a tabular drawing, and the asphericity coefficient of each lens of this second embodiment is described;
Figure 14 is a configuration schematic diagram, and one the 3rd embodiment of optical imaging lens of the present invention is described;Figure 15 is the longitudinal spherical aberration of the 3rd embodiment and every aberration diagram;
Figure 16 is a tabular drawing, and the optical data of each lens of the 3rd embodiment is described;
Figure 17 is a tabular drawing, and the asphericity coefficient of each lens of the 3rd embodiment is described;
Figure 18 is a configuration schematic diagram, and one the 4th embodiment of optical imaging lens of the present invention is described;
Figure 19 is the longitudinal spherical aberration of the 4th embodiment and every aberration diagram;
Figure 20 is a tabular drawing, and the optical data of each lens of the 4th embodiment is described;
Figure 21 is a tabular drawing, and the asphericity coefficient of each lens of the 4th embodiment is described;
Figure 22 is a configuration schematic diagram, and one the 5th embodiment of optical imaging lens of the present invention is described;
Figure 23 is the longitudinal spherical aberration of the 5th embodiment and every aberration diagram;
Figure 24 is a tabular drawing, and the optical data of each lens of the 5th embodiment is described;
Figure 25 is a tabular drawing, and the asphericity coefficient of each lens of the 5th embodiment is described;
Figure 26 is a configuration schematic diagram, and a sixth embodiment of optical imaging lens of the present invention is described;
Figure 27 is the longitudinal spherical aberration of this sixth embodiment and every aberration diagram;
Figure 28 is a tabular drawing, and the optical data of each lens of this sixth embodiment is described;
Figure 29 is a tabular drawing, and the asphericity coefficient of each lens of this sixth embodiment is described;
Figure 30 is a configuration schematic diagram, and one the 7th embodiment of optical imaging lens of the present invention is described;
Figure 31 is the longitudinal spherical aberration of the 7th embodiment and every aberration diagram;
Figure 32 is a tabular drawing, and the optical data of each lens of the 7th embodiment is described;
Figure 33 is a tabular drawing, and the asphericity coefficient of each lens of the 7th embodiment is described;
Figure 34 is a tabular drawing, and this first embodiment optical parametric to the 7th embodiment of this five chips optical imaging lens is described;
Figure 35 is a tabular drawing, and this first embodiment optical parametric to the 7th embodiment of this five chips optical imaging lens is described;
Figure 36 is a cross-sectional schematic, and a first embodiment of electronic installation of the present invention is described;And
Figure 37 is a cross-sectional schematic, and one second embodiment of electronic installation of the present invention is described。
Detailed description of the invention
Before the present invention is described in detail, it shall be noted that in the following description content, similar assembly is to be identically numbered to represent。
" lens have positive refractive index (or negative refractive index) " described in this section of description, refers to that described lens are with the refractive index on first-order theory Theoretical Calculation optical axis out for just (or being negative)。This image side surface, thing side is defined as the scope that imaging light passes through, wherein imaging light includes chief ray (chiefray) Lc and rim ray (marginalray) Lm, as shown in Figure 1, I is optical axis and this lens are radially symmetrical with this optical axis I for axis of symmetry, light is optical axis near zone A by the region on optical axis, the region that rim ray passes through is circumference near zone C, in addition, these lens also comprise an extension E (i.e. circumference near zone C region radially outward), with being loaded in an optical imaging lens for this battery of lens, desirable imaging light can't pass through this extension E, but the structure of this extension E and shape are not limited to this, below example is the extension asking accompanying drawing succinctly all to eliminate part。In more detail, it is determined that the method for the scope in face shape or optical axis near zone, circumference near zone or multiple region such as following some:
1. refer to Fig. 1, it is lens sectional views radially。With this sectional view, when judging the scope of aforementioned areas, defining a central point is an intersection point with optical axis I on this lens surface, and a transfer point be on this lens surface a bit, and vertical with optical axis by a tangent line of this point。If there being multiple transfer point radially outward, then it is sequentially the first transfer point, the second transfer point, and effectively partly imitating the transfer point radially farthest from optical axis on footpath is N transfer point。Ranging for optical axis near zone between central point and the first transfer point, N transfer point region radially outward is circumference near zone, and centre can be complied with each transfer point and be distinguished different regions。Additionally, effective radius is rim ray Lm and the vertical dimension in lens surface intersection to optical axis I。
2. as in figure 2 it is shown, the shape in this region is concavo-convex determines (light focus decision procedure) with the intersection point parallel through the light in this region (or light extension line) Yu optical axis I in image side or thing side。For example, when light is by behind this region, light can focus on towards image side, and with the Focus Club position of optical axis in image side, for instance R point in Fig. 2, then this region is convex surface part。Otherwise, if light is by behind this certain region, light can be dispersed, the focus of its extension line and optical axis is in thing side, for instance M point in Fig. 2, then this region is concave part, so central point is convex surface part between the first transfer point, the first transfer point region radially outward is concave part;As shown in Figure 2, namely this transfer point is the separation that convex surface part turns concave part, and therefore this region of definable and the region of the inner side in this region radially adjacent, have different face shapes with this transfer point for boundary。Additionally, if the face shape of optical axis I near zone judges the judgment mode that can comply with these those skilled in the art, concavo-convex with the positive negative judgement of R value (referring to paraxial radius of curvature, be often referred to the R value on the lens data storehouse (lensdata) in optical software)。With thing side, when R value is timing, it is determined that for convex surface part, when R value is for time negative, it is determined that for concave part;With image side surface, when R value is timing, it is determined that for concave part, when R value is for time negative, it is determined that for convex surface part, it is concavo-convex identical with light focus decision procedure that the method determines。
3. if, without transfer point on this lens surface, this optical axis I near zone is defined as the 0~50% of effective radius, and circumference near zone is defined as the 50~100% of effective radius。
Consulting Fig. 3, the surface, lens image side of an example one only has the first transfer point on effective radius, then the firstth district is optical axis I near zone, and the secondth district is circumference near zone。The R value of this lens image side surface is just, therefore judges that optical axis I near zone has a concave part;The face shape of circumference near zone is different with the inside region being radially close to this region。That is, circumference near zone is different with the face shape of optical axis I near zone;This circumference near zone cording has a convex surface part。
Consulting Fig. 4, the lens thing side surface of an example two has first and second transfer point on effective radius, then the firstth district is optical axis I near zone, and the 3rd district is circumference near zone。The R value of this lens thing side is just, therefore judges that optical axis near zone is convex surface part;Region (the secondth district) between the first transfer point and the second transfer point has a concave part, and circumference near zone (the 3rd district) has a convex surface part。
Consulting Fig. 5, the lens thing side surface of an example three is without transfer point on effective radius, and now with effective radius 0%~50% for optical axis I near zone, 50%~100% is circumference near zone。Owing to the R value of optical axis I near zone is just, so thing side has a convex surface part at optical axis I near zone;And without transfer point between circumference near zone and optical axis I near zone, therefore circumference near zone has a convex surface part。
Consult Fig. 6 and Fig. 8, one first embodiment of optical imaging lens 10 of the present invention, one first lens 3, aperture 2,1 second lens 4, the 3rd lens 5, the 4th lens 6, the 5th lens 7 and an optical filter 9 is sequentially comprised from thing side to image side along an optical axis I。When the light sent by a thing to be captured enters this optical imaging lens 10, and via these first lens 3, this aperture 2, these the second lens the 4, the 3rd lens the 5, the 4th lens the 6, the 5th lens 7, and after this optical filter 9, an image can be formed at an imaging surface 100 (ImagePlane)。This optical filter 9 is infrared filter (IRCutFilter), for preventing the infrared transmitting in light from affecting image quality to this imaging surface 100。Supplementary notes, thing side is directed towards the side of this thing to be captured, and image side is directed towards the side of this imaging surface 100。
Wherein, these first lens 3, these the second lens the 4, the 3rd lens the 5, the 4th lens the 6, the 5th lens 7, and this optical filter 9 is all respectively provided with one towards thing side and the thing side 31,41,51,61,71,91 that makes imaging light pass through, and one towards image side and makes the image side surface 32,42,52,62,72,92 that imaging light passes through。Wherein, these thing sides 31,41,51,61,71 and these image side surface 32,42,52,62,72 are all aspheric surface。
In addition, in order to meet the light-weighted demand of product, these first lens 3 to the 5th lens 7 are all to be possessed refractive index and is all made by plastic material, but the material of these the first lens the 3, the 3rd lens the 5, the 4th lens the 6, the 5th lens 7 is still not limited system。
These first lens 3 have positive refractive index。This thing side 31 of these the first lens 3 is a convex surface, and there is a convex surface part 311 being positioned at optical axis I near zone and be positioned at the convex surface part 312 of circumference near zone, this image side surface 32 of these the first lens 3 is a convex surface, and has a convex surface part 321 being positioned at optical axis I near zone and and be positioned at the convex surface part 322 of circumference near zone。
These second lens 4 have negative refractive index。This thing side 41 of these the second lens 4 is a concave surface, and there is a concave part 411 being positioned at optical axis I near zone and be positioned at the concave part 412 of circumference near zone, this image side surface 42 of these the second lens 4 has a convex surface part 422 being positioned at circumference near zone in the concave part 421 and of optical axis I near zone。
3rd lens 5 have negative refractive index, this thing side 51 of 3rd lens 5 has a convex surface part 511 being positioned at optical axis I near zone and and is positioned at the concave part 512 of circumference near zone, and this image side surface 52 of the 3rd lens 5 has a concave part 521 being positioned at optical axis I near zone and and is positioned at the convex surface part 522 of circumference near zone。
4th lens 6 have positive refractive index。This thing side 61 of 4th lens 6 is a concave surface, and there is a concave part 611 being positioned at optical axis I near zone and be positioned at the concave part 612 of circumference near zone, this image side surface 62 of 4th lens 6 is a convex surface, and has a convex surface part 621 being positioned at optical axis I near zone and and be positioned at the convex surface part 622 of circumference near zone。
5th lens 7 have negative refractive index。This thing side 71 of 5th lens 7 has a convex surface part 711 being positioned at optical axis I near zone, and the concave part 712 being positioned at circumference near zone, this image side surface 72 of the 5th lens 7 has a concave part 721 being positioned at optical axis near zone and and is positioned at the convex surface part 722 of circumference near zone。
In the present first embodiment, only said lens has refractive index。
Other detailed optical data of this first embodiment are as shown in Figure 8, and the total system focal length (effectivefocallength of this first embodiment, it is called for short EFL) for 2.21mm, half angle of view (halffieldofview, be called for short HFOV) be 38.8974 °, f-number (Fno) be 2.2, its system length is 3.333mm。Wherein, this system length refer to by this thing side 31 of these the first lens 3 to this imaging surface 100 on optical axis I distance。
In addition, these first lens 3, these the second lens the 4, the 3rd lens the 5, the 4th lens 6, and the 5th lens 7 thing side 31,41,51,61,71 and image side surface 32,42,52,62,72, amount to ten faces be all aspheric surface, and these aspheric surfaces be according to following equation define:
Z ( Y ) = Y 2 R / ( 1 + 1 - ( 1 + K ) Y 2 R 2 ) + Σ i = 1 n a 2 i × Y 2 i - - - ( 1 )
Wherein:
Y: the distance of the point in aspheric curve and optical axis I;
Z: the aspheric degree of depth (in aspheric surface, distance optical axis I is the point of Y, be tangential on aspheric surface optical axis I the tangent plane on summit, vertical dimension between the two);
R: the radius of curvature of lens surface;
K: conical surface coefficient (conicconstant);
a2i: 2i rank asphericity coefficient。
The thing side 31 of these the first lens 3 is to every asphericity coefficient in formula (1) of the image side surface 72 of the 5th lens 7 as shown in Figure 9。Wherein, in Fig. 9, field number 31 represents the asphericity coefficient of the thing side 31 that it is the first lens 3, and the rest may be inferred for other field。
It addition, in the optical imaging lens 10 of this first embodiment the relation between each important parameter is as shown in FIG. 34 and 35。
Wherein,
T1 is this first lens 3 thickness on optical axis I;
T2 is this second lens 4 thickness on optical axis I;
T3 is the 3rd lens 5 thickness on optical axis I;
T4 is the 4th lens 6 thickness on optical axis I;
T5 is the 5th lens 7 thickness on optical axis I;
G12 is the air gap between these first lens 3 and this second lens 4 on optical axis I;
G23 is the air gap between these the second lens 4 and the 3rd lens 5 on optical axis I;
G34 is the air gap between the 3rd lens 5 and the 4th lens 6 on optical axis I;
G45 is the air gap between the 4th lens 6 and the 5th lens 7 on optical axis I;
Gaa is these first lens 3 to the 5th lens 7 five the air gap summations on optical axis I, the i.e. sum of G12, G23, G34, G45;
ALT is these first lens 3, this second lens the 4, the 3rd lens the 5, the 4th lens 6 and the 5th lens 7 thickness summation on optical axis I, i.e. the sum of T1, T2, T3, T4, T5;
TTL is that this thing side 31 of these the first lens 3 is to this imaging surface 100 distance on optical axis I;
BFL is that this image side surface 72 of the 5th lens 7 is to this imaging surface 100 distance on optical axis I;And
EFL is the system focal of this optical imaging lens 10。
It addition, re-define:
G5F is the air gap between the 5th lens 7 and this optical filter 9 on optical axis I;
TF is this optical filter 9 thickness on optical axis I;
GFP is the air gap between this optical filter 9 and this imaging surface 100 on optical axis I;
F1 is the focal length of these the first lens 3;
F2 is the focal length of these the second lens 4;
F3 is the focal length of the 3rd lens 5;
F4 is the focal length of the 4th lens 6;
F5 is the focal length of the 5th lens 7;
N1 is the refractive index of these the first lens 3;
N2 is the refractive index of these the second lens 4;
N3 is the refractive index of the 3rd lens 5;
N4 is the refractive index of the 4th lens 6;
N5 is the refractive index of the 5th lens 7;
υ 1 is the Abbe number (Abbenumber) of these the first lens 3, and Abbe number is alternatively referred to as abbe number;
υ 2 is the Abbe number of these the second lens 4;
υ 3 is the Abbe number of the 3rd lens 5;
υ 4 is the Abbe number of the 4th lens 6;And
υ 5 is the Abbe number of the 5th lens 7。
Coordinate again and consult Fig. 7, a the accompanying drawing of () illustrates the longitudinal spherical aberration (longitudinalsphericalaberration) of this first embodiment, b the accompanying drawing of () and (c) is then described separately this first embodiment astigmatic image error (astigmatismaberration) about the sagitta of arc (sagittal) direction on imaging surface 100, and the astigmatic image error in meridian (tangential) direction, the accompanying drawing of (d) then illustrates this first embodiment distortion aberration (distortionaberration) on imaging surface 100。In longitudinal spherical aberration pictorial image 7 (a) of this first embodiment, curve formed by each wavelength all very close to and to centre close, illustrate that the Off-axis-light of each wavelength differing heights all concentrates near imaging point, be can be seen that by the skewness magnitude level of the curve of each wavelength, the imaging point deviation of the Off-axis-light of differing heights controls within the scope of ± 0.01mm, therefore the present embodiment is obviously improved the spherical aberration of phase co-wavelength really, in addition, three kinds to represent wavelength distance to each other also fairly close, the image space representing different wave length light is quite concentrated, thus make chromatic aberration also obtain and be obviously improved。
In two astigmatic image errors diagrams of Fig. 7 (b) and 7 (c), three kinds represent wavelength focal length variations amount in whole field range drop on ± 0.02mm in, illustrate that the optical system of this first embodiment can effectively eliminate aberration。The distortion aberration accompanying drawing of Fig. 7 (d) then show the distortion aberration of this first embodiment maintain ± scope of 2.5% in, illustrate that the distortion aberration of this first embodiment has met the image quality requirement of optical system, illustrate that this first embodiment is compared to existing optical lens accordingly, when system length foreshortens to 3.333mm, still it is provided that preferably image quality, therefore this first embodiment can when maintaining favorable optical performance, shorten lens length and expand shooting angle, to realize the product design of slimming more。
Consulting Figure 10, for one second embodiment of optical imaging lens 10 of the present invention, it is substantially similar with this first embodiment, only more or less some difference of the parameter between each optical data, asphericity coefficient and these lens 3,4,5,6,7。At this it is noted that in order to clearly illustrate drawing, Figure 10 omits the label of the concave part identical with first embodiment and convex surface part。
As shown in figure 12, and the total system focal length of this second embodiment is 2.21mm to its detailed optical data, and half angle of view (HFOV) is 38.8163 °, f-number (Fno) is 2.2, and system length is then 3.383mm。
As shown in figure 13, then it is that the thing side 31 of these the first lens 3 of this second embodiment is to every asphericity coefficient in formula (1) of the image side surface 72 of the 5th lens 7。
It addition, in this optical imaging lens 10 of this second embodiment the relation between each important parameter is as shown in FIG. 34 and 35。
Coordinate and consult Figure 11, by the longitudinal spherical aberration of (a), (b), (c) astigmatic image error, and the distortion aberration accompanying drawing of (d) can be seen that this second embodiment also can maintain favorable optical performance。
Can learning via described above, this second embodiment is in that compared to the advantage of this first embodiment: this second embodiment therefore yield more easily fabricated than this first embodiment is higher。
Consult Figure 14, one the 3rd embodiment for optical imaging lens 10 of the present invention, it is substantially similar with this first embodiment, only more or less some is different for the parameter between each optical data, asphericity coefficient and these lens 3,4,5,6,7, and this thing side 61 of the 4th lens 6 has a concave part 611 being positioned at optical axis I near zone and and is positioned at the convex surface part 613 of circumference near zone。At this it is noted that in order to clearly illustrate drawing, the label of the concave part that in Figure 14, clipped is identical with first embodiment and convex surface part。
As shown in figure 16, and the total system focal length of this third embodiment is 2.21mm to its detailed optical data, and half angle of view (HFOV) is 38.9252 °, f-number (Fno) is 2.2, and system length is then 3.235mm。
As shown in figure 17, then it is that the thing side 31 of these the first lens 3 of the 3rd embodiment is to every asphericity coefficient in formula (1) of the image side surface 72 of the 5th lens 7。
It addition, in this optical imaging lens 10 of the 3rd embodiment the relation between each important parameter is as shown in FIG. 34 and 35。
Coordinate and consult Figure 15, by the longitudinal spherical aberration of (a), (b), (c) astigmatic image error, and the distortion aberration accompanying drawing of (d) can be seen that this third embodiment also can maintain favorable optical performance。
Can learn via described above, 3rd embodiment is in that compared to the advantage of this first embodiment: the system length of the 3rd embodiment less than the system length of this first embodiment, the 3rd embodiment half angle of view more than the half angle of view of this first embodiment, and the 3rd embodiment therefore yield more easily fabricated than this first embodiment is higher。
Consulting Figure 18, for one the 4th embodiment of optical imaging lens 10 of the present invention, it is substantially similar with this first embodiment, only more or less some difference of the parameter between each optical data, asphericity coefficient and these lens 3,4,5,6,7。At this it is noted that in order to clearly illustrate drawing, Figure 18 omits the label of the concave part identical with first embodiment and convex surface part。
As shown in figure 20, and the total system focal length of this 4th embodiment is 2.21mm to its detailed optical data, and half angle of view (HFOV) is 38.89997 °, f-number (Fno) is 2.2, and system length is then 3.195mm。
As shown in figure 21, then it is that the thing side 31 of these the first lens 3 of the 4th embodiment is to every asphericity coefficient in formula (1) of the image side surface 72 of the 5th lens 7。
It addition, in this optical imaging lens 10 of the 4th embodiment the relation between each important parameter is as shown in FIG. 34 and 35。
Coordinate and consult Figure 19, by the longitudinal spherical aberration of (a), (b), (c) astigmatic image error, and the distortion aberration accompanying drawing of (d) can be seen that this 4th embodiment also can maintain favorable optical performance。
Can learn via described above, 4th embodiment is in that compared to the advantage of this first embodiment: the system length of the 4th embodiment less than the system length of this first embodiment, the 4th embodiment half angle of view more than the half angle of view of this first embodiment, and the 4th embodiment therefore yield more easily fabricated than this first embodiment is higher。
Consult Figure 22, one the 5th embodiment for optical imaging lens 10 of the present invention, it is substantially similar with this first embodiment, only more or less some is different for the parameter between each optical data, asphericity coefficient and these lens 3,4,5,6,7, and this thing side 61 of the 4th lens 6 has a concave part 611 being positioned at optical axis I near zone and and is positioned at the convex surface part 613 of circumference near zone。At this it is noted that in order to clearly illustrate drawing, the label of the concave part that in Figure 22, clipped is identical with first embodiment and convex surface part。
As shown in figure 24, and the total system focal length of this fifth embodiment is 2.21mm to its detailed optical data, and half angle of view (HFOV) is 38.8915 °, f-number (Fno) is 2.2, and system length is then 3.344mm。
As shown in figure 25, then it is that the thing side 31 of these the first lens 3 of the 5th embodiment is to every asphericity coefficient in formula (1) of the image side surface 72 of the 5th lens 7。
It addition, in this optical imaging lens 10 of the 5th embodiment the relation between each important parameter is as shown in FIG. 34 and 35。
Coordinate and consult Figure 23, by the longitudinal spherical aberration of (a), (b), (c) astigmatic image error, and the distortion aberration accompanying drawing of (d) can be seen that this fifth embodiment also can maintain favorable optical performance。
Can learning via described above, the 5th embodiment is in that compared to the advantage of this first embodiment: the 5th embodiment therefore yield more easily fabricated than this first embodiment is higher。
Consult Figure 26, a sixth embodiment for optical imaging lens 10 of the present invention, it is substantially similar with this first embodiment, only more or less some is different for the parameter between each optical data, asphericity coefficient and these lens 3,4,5,6,7, and this thing side 61 of the 4th lens 6 has a concave part 611 being positioned at optical axis I near zone and and is positioned at the convex surface part 613 of circumference near zone。At this it is noted that in order to clearly illustrate drawing, the label of the concave part that in Figure 26, clipped is identical with first embodiment and convex surface part。
As shown in figure 28, and the total system focal length of this sixth embodiment is 2.21mm to its detailed optical data, and half angle of view (HFOV) is 39.0488 °, f-number (Fno) is 2.2, and system length is then 3.314mm。
As shown in figure 29, then it is that the thing side 31 of these the first lens 3 of this sixth embodiment is to every asphericity coefficient in formula (1) of the image side surface 72 of the 5th lens 7。
It addition, in this optical imaging lens 10 of this sixth embodiment the relation between each important parameter is as shown in FIG. 34 and 35。
Coordinate and consult Figure 27, by the longitudinal spherical aberration of (a), (b), (c) astigmatic image error, and the distortion aberration accompanying drawing of (d) can be seen that this sixth embodiment also can maintain favorable optical performance。
Can learn via described above, this sixth embodiment is in that compared to the advantage of this first embodiment: the system length of this sixth embodiment less than the system length of this first embodiment, this sixth embodiment half angle of view more than the half angle of view of this first embodiment, and the image quality of this sixth embodiment is also better than the image quality of this first embodiment, finally this sixth embodiment therefore yield more easily fabricated than this first embodiment is higher。
Consult Figure 30, one the 7th embodiment for optical imaging lens 10 of the present invention, it is substantially similar with this first embodiment, only more or less some is different for the parameter between each optical data, asphericity coefficient and these lens 3,4,5,6,7, and this thing side 61 of the 4th lens 6 has a concave part 611 being positioned at optical axis I near zone and and is positioned at the convex surface part 613 of circumference near zone。At this it is noted that in order to clearly illustrate drawing, the label of the concave part that in Figure 30, clipped is identical with first embodiment and convex surface part。
As shown in figure 32, and the total system focal length of this 7th embodiment is 2.21mm to its detailed optical data, and half angle of view (HFOV) is 38.9129 °, f-number (Fno) is 2.2, and system length is then 3.262mm。
As shown in figure 33, then it is that the thing side 31 of these the first lens 3 of the 7th embodiment is to every asphericity coefficient in formula (1) of the image side surface 72 of the 5th lens 7。
It addition, in this optical imaging lens 10 of the 7th embodiment the relation between each important parameter is as shown in FIG. 34 and 35。
Coordinate and consult Figure 31, by the longitudinal spherical aberration of (a), (b), (c) astigmatic image error, and the distortion aberration accompanying drawing of (d) can be seen that this 7th embodiment also can maintain favorable optical performance。
Can learn via described above, 7th embodiment is in that compared to the advantage of this first embodiment: the system length of the 7th embodiment less than the system length of this first embodiment, the 7th embodiment half angle of view more than the half angle of view of this first embodiment, and the 7th embodiment therefore yield more easily fabricated than this first embodiment is higher。
Coordinate again and consult Figure 34 and Figure 35, tabular drawing for every optical parametric of above-mentioned seven embodiments, when relational expression when between the every optical parametric in optical imaging lens 10 of the present invention meets following condition formulae, when system length shortens, still suffer from preferably optical property performance, when making the present invention be applied to relevant portable electronic devices, the product of slimming more can be made:
(1) in order to reach the system length shortening this optical imaging lens 10, the air gap between lens thickness and lens is reduced by this optical imaging lens 10 composition design as far as possible, but consider the different degree of difficulty of lens combination, the degree that the air gap between lens generally can reduce is little compared with the degree that lens thickness can reduce, therefore the numerical definiteness that can satisfy the following conditional expression, this optical imaging lens 10 can have advantageous configurations。T5/G23 1.8, T5/G45 8.5, T3/G23 1.5, (T2+T3)/G23 2.4, (T1+T2)/G34 7, (T1+T3)/G34 6.5, (T1+T5)/G34 8, (T1+T2)/G12 16, ALT/G45 51, ALT/G34 19, preferably, 1.3 T5/G23 1.8, 1.7 T5/G45 8.5, 0.8 T3/G23 1.4, 1.5 (T2+T3)/G23 2.4, 3.5 (T1+T2)/G34 6.0, 4.0 (T1+T3)/G34 6.0, 4.5 (T1+T5)/G34 8.0, 10.0 (T1+T2)/G12 14.0, 10.0 ALT/G45 40.0, 11.0 ALT/G34 19.0。
(2) with aforementioned, although lens thickness ought to become little, but it is also contemplated that the difficulty of lens combination, the air gap sum total Gaa between itself and lens still needs to maintain a suitable ratio, therefore the numerical definiteness that can satisfy the following conditional expression, this optical imaging lens 10 can have advantageous configurations。(T1+T3)/Gaa 1.2, it is preferred that, 1.2 (T1+T3)/Gaa 1.4。
(3) with aforementioned, although the degree that lens thickness can reduce is big compared to the air gap between lens, but the refractive index of the 4th lens 6 is just, and its optics effective diameter is bigger, therefore the degree that the thickness of the 4th lens 6 can reduce is less, if therefore can satisfy the following conditional expression, this optical imaging lens 10 can have preferably imaging effect when length is shorter。(G34+G45)/T4 0.75, it is preferred that, 0.1 (G34+G45)/T4 0.6。
(4) owing to the thing side 61 of the 4th lens 6 is concave part 611 at optical axis I near zone, therefore between the 3rd lens 5 and the 4th lens 6, the air gap G34 on optical axis I can design bigger, Gaa is summed up compared to the air gap between lens, the amplitude that G34 can reduce is less, if therefore satisfy the following conditional expression, the length of this optical imaging lens 10 can be shortened。Gaa/G34 5, it is preferred that, 3.0 Gaa/G34 4.5。
(5) with aforementioned, G34 is little compared to the amplitude that can reduce of the air gap G23 on optical axis I between these the second lens 4 and the 3rd lens 5, if therefore satisfy the following conditional expression, the length of this optical imaging lens 10 can be shortened。G23/G34 2.3, it is preferred that, 1.0 G23/G34 2.5。
(6) in reducing the process of length of this optical imaging lens 10, because the refractive index of the 4th lens 6 is just, and its optics effective diameter is bigger, so compared to the thickness T2 of these the second lens 4, the degree that the thickness T4 of the 4th lens can reduce is less, if therefore satisfy the following conditional expression, this optical imaging lens 10 can have and preferably configures。T2/T4 0.5, it is preferred that, 0.2 T2/T4 0.5。
(7) when the length of this optical imaging lens 10 more contracting heals in short-term, the effective focal length EFL of this optical imaging lens 10 can diminish, if can satisfy the following conditional expression, this image side surface 72 that can make the 5th lens 7 drops on suitable scope to this imaging surface 100 distance BFL on optical axis I, makes this optical imaging lens 10 have preferably effect。EFL/BFL 2.65, it is preferred that, 2.3 EFL/BFL 2.65。
But, because the unpredictability of design of Optical System, under the framework of the present invention, meet above-mentioned conditional energy it is preferable that the contraction in length of optical imaging lens of the present invention 10, f-number reduce, the angle of visual field increases, image quality promotes, or the shortcoming assembling Yield lmproved and improving prior art。
Conclude above-mentioned, optical imaging lens 10 of the present invention, following effect and advantage can be obtained, therefore the purpose of the present invention can be reached:
One, by convex surface part 321 at optical axis I near zone of this thing side 31 of these the first lens 3 convex surface part 312 at circumference near zone and image side surface 32 thereof, can effectively focusing on light, collocation aperture 2 between these first lens 3 and this second lens 4 contributes to expanding the visual field of this optical imaging lens 10。
Two, by this thing side 51 of the 3rd lens 5 the refractive index of concave part the 512, the 4th lens 6 of circumference near zone be just and its this thing side 61 can eliminate the curvature of field and distortion in the concave part 611 of optical axis I near zone, reduce imaging aberration。By this thing side 71 convex surface part 711 at optical axis I near zone of the 5th lens 7 and the concave part 712 at circumference near zone, it is collocated with each other to revise the incident angle injecting imaging surface, and the collocation of the face type of above lens can ensure that the image quality of this optical imaging lens 10。Second lens 4 then advantageously reduce manufacturing cost for plastic material and alleviate weight。
Three, the present invention is by the control of relevant design parameter, whole system is made to have preferably elimination aberration ability, such as eliminate the ability of spherical aberration, coordinate concaveconvex shape design and the arrangement of these lens 3,4,5,6,7 thing sides 31,41,51,61,71 or image side surface 32,42,52,62,72 again, make this optical imaging lens 10 when shortening system length, still possess the optical property that can effectively overcome chromatic aberration, and preferably image quality is provided。
Four, by the explanation of aforementioned seven embodiments, show the design of optical imaging lens 10 of the present invention, the system length of its these embodiments all can shorten to less than below 3.5mm, compared to existing optical imaging lens, the camera lens of the application present invention can produce the product of more slimming, makes the present invention have the economic benefit accorded with the demands of the market。
Consulting Figure 36, for a first embodiment of the electronic installation 1 of this optical imaging lens 10 of application of aforementioned, this electronic installation 1 comprises a casing 11, and one is arranged on image module 12 in this casing 11。It is only, for mobile phone, this electronic installation 1 is described at this, but the pattern of this electronic installation 1 is not limited。
This image module 12 includes this optical imaging lens 10, one foregoing for module rear seat unit 120 for arranging for this lens barrel 21 of the lens barrel 21, that arranges for this optical imaging lens 10, and an image sensor 130 being arranged at this optical imaging lens 10 image side。This imaging surface 100 (see Fig. 6) is formed at this image sensor 130。
This module rear seat unit 120 has a camera lens back seat 121, and one is arranged at image sensor back seat 122 between this camera lens back seat 121 and this image sensor 130。Wherein, this lens barrel 21 is to be coaxially disposed along an axis II with this camera lens back seat 121, and this lens barrel 21 is arranged at inside this camera lens back seat 121。
Consult Figure 37, for one second embodiment of the electronic installation 1 of this optical imaging lens 10 of application of aforementioned, main difference is that of this electronic installation 1 of this second embodiment and this first embodiment: this module rear seat unit 120 is voice coil motor (VCM) pattern。This camera lens back seat 121 has outside one and this lens barrel 21 to fit and the first pedestal 123, of arranging along an axis III the second pedestal 124, along this axis III and around this first pedestal 123 arranged outside is arranged on outside this first pedestal 123 and inside this second pedestal 124 between coil 125, and one be arranged on outside this coil 125 and inside this second pedestal 124 between magnet assembly 126。
First pedestal 123 of this camera lens back seat 121 can move along this axis III with this lens barrel 21 and this optical imaging lens 10 being arranged in this lens barrel 21。This image sensor back seat 122 then fits with this second pedestal 124。Wherein, this optical filter 9 is then provided in this image sensor back seat 122。Other modular constructions of second embodiment of this electronic installation 1 are then similar with this electronic installation 1 of first embodiment, do not repeat them here。
By installing this optical imaging lens 10, owing to the system length of this optical imaging lens 10 can effectively shorten, the thickness making the first embodiment of this electronic installation 1 and the second embodiment can relative decrease and then make the product of more slimming, and remain able to provide good optical property and image quality, thereby, make this electronic installation 1 of the present invention except having the economic benefit reducing casing raw material dosage, moreover it is possible to meet compact product design trend and consumption demand。
Although specifically showing in conjunction with preferred embodiment and describing the present invention; but those skilled in the art should be understood that; in the spirit and scope without departing from appended claims invention defined; the present invention can be made a variety of changes in the form and details, be protection scope of the present invention。

Claims (17)

1. an optical imaging lens, one first lens, an aperture, one second lens, one the 3rd lens, one the 4th lens are sequentially comprised from thing side to image side along an optical axis, and one the 5th lens, and these first lens to the 5th lens all have a refractive index, and include one respectively towards thing side and the thing side making imaging light pass through and one towards image side and the image side surface that makes imaging light pass through;
This thing side of these the first lens has a convex surface part being positioned at circumference near zone, and this image side surface of these the first lens has a convex surface part being positioned at optical axis near zone;
These second lens are plastic material;
This thing side of 3rd lens has a concave part being positioned at circumference near zone;
4th lens have positive refractive index, and this thing side of the 4th lens has a concave part being positioned at optical axis near zone;And
This thing side of 5th lens has a convex surface part being positioned at optical axis near zone and and is positioned at the concave part of circumference near zone;
Wherein, this optical imaging lens has the lens of refractive index and only has five, this the first lens thickness on optical axis is T1,3rd lens thickness on optical axis is T3, these first lens are Gaa to the 5th lens four the air gap summations on optical axis, and meet (T1+T3)/Gaa 1.2。
2. optical imaging lens as claimed in claim 1, it is characterised in that: this second lens thickness on optical axis is T2, and the 4th lens thickness on optical axis is T4, and also meets following condition formulae: T2/T4 0.5。
3. optical imaging lens as claimed in claim 2, it is characterized in that: these first lens, these second lens, the 3rd lens, the 4th lens and the 5th lens thickness summation on optical axis are ALT, between 4th lens and the 5th lens, the air gap on optical axis is G45, and also meets following condition formulae: ALT/G45 51。
4. optical imaging lens as claimed in claim 3, it is characterised in that: between the 3rd lens and the 4th lens, the air gap on optical axis is G34, and also meets following condition formulae: (T1+T2)/G34 7.0。
5. optical imaging lens as claimed in claim 1, it is characterized in that: this second lens thickness on optical axis is T2, between these first lens and this second lens, the air gap on optical axis is G12, and also meets following condition formulae: (T1+T2)/G12 16。
6. optical imaging lens as claimed in claim 5, it is characterised in that: between these the second lens and the 3rd lens, the air gap on optical axis is G23, and also meets following condition formulae: T3/G23 1.5。
7. optical imaging lens as claimed in claim 6, it is characterized in that: these first lens, these second lens, the 3rd lens, the 4th lens and the 5th lens thickness summation on optical axis are ALT, between 3rd lens and the 4th lens, the air gap on optical axis is G34, and also meets following condition formulae: ALT/G34 19。
8. optical imaging lens as claimed in claim 1, it is characterized in that: the 4th lens thickness on optical axis is T4, between 3rd lens and the 4th lens, the air gap on optical axis is G34, between 4th lens and the 5th lens, the air gap on optical axis is G45, and also meets following condition formulae: (G34+G45)/T4 0.75。
9. optical imaging lens as claimed in claim 8, it is characterised in that: between these the second lens and the 3rd lens, the air gap on optical axis is G23, and also meets following condition formulae: G23/G34 2.3。
10. optical imaging lens as claimed in claim 1, it is characterised in that: the 5th lens thickness on optical axis is T5, and between these the second lens and the 3rd lens, the air gap on optical axis is G23, and also meets following condition formulae: T5/G23 1.8。
11. optical imaging lens as claimed in claim 10, it is characterised in that: between the 3rd lens and the 4th lens, the air gap on optical axis is G34, and also meets following condition formulae: (T1+T5)/G34 8。
12. optical imaging lens as claimed in claim 11, it is characterised in that: the system focal of this optical imaging lens is EFL, and this image side surface of the 5th lens is BFL to imaging surface distance on optical axis, and also meets following condition formulae: EFL/BFL 2.65。
13. optical imaging lens as claimed in claim 1, it is characterised in that: between the 3rd lens and the 4th lens, the air gap on optical axis is G34, and also meets following condition formulae: Gaa/G34 5。
14. optical imaging lens as claimed in claim 13, it is characterised in that: the 5th lens thickness on optical axis is T5, and between the 4th lens and the 5th lens, the air gap on optical axis is G45, and also meets following condition formulae: T5/G45 8.5。
15. optical imaging lens as claimed in claim 1, it is characterized in that: this second lens thickness on optical axis is T2, between these the second lens and the 3rd lens, the air gap on optical axis is G23, and also meets following condition formulae: (T2+T3)/G23 2.4。
16. optical imaging lens as claimed in claim 15, it is characterised in that: between the 3rd lens and the 4th lens, the air gap on optical axis is G34, and also meets following condition formulae: (T1+T3)/G34 6.5。
17. an electronic installation, comprise:
One casing;And
One image module, it is mounted in this casing, and including just like the optical imaging lens according to any one of claim 1 to 16, one for the lens barrel arranged for this optical imaging lens, a module rear seat unit for arranging for this lens barrel, and the image sensor of image side being arranged at this optical imaging lens。
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