CN213957734U - Optical imaging lens - Google Patents

Optical imaging lens Download PDF

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CN213957734U
CN213957734U CN202120199972.3U CN202120199972U CN213957734U CN 213957734 U CN213957734 U CN 213957734U CN 202120199972 U CN202120199972 U CN 202120199972U CN 213957734 U CN213957734 U CN 213957734U
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lens
optical imaging
imaging lens
focal length
radius
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闻人建科
戴付建
赵烈烽
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Zhejiang Sunny Optics Co Ltd
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Zhejiang Sunny Optics Co Ltd
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Abstract

The application discloses optical imaging lens includes following preface from object side to image side along optical axis: a first lens having a negative refractive power, an object-side surface of which is convex; a second lens having a positive optical power; a third lens; a fourth lens having a positive optical power; a fifth lens having a negative optical power; a sixth lens having positive optical power; and a seventh lens. The maximum field angle FOV of the optical imaging lens satisfies the following conditions: tan (FOV/3) is not less than 0.9; and the total effective focal length f of the optical imaging lens, the radius of curvature R9 of the object-side surface of the fifth lens, and the radius of curvature R10 of the image-side surface of the fifth lens satisfy: -3.0< f/R9+ f/R10< -1.5.

Description

Optical imaging lens
Technical Field
The present application relates to the field of optical elements, and more particularly, to an optical imaging lens.
Background
In recent years, portable electronic products having a camera function have been increasingly developed, and the quality of an image formed by a lens as an important component of a camera system has been receiving more and more attention.
With the rapid development of camera systems of portable electronic products, higher requirements are put on optical imaging lenses. In order to provide a high-quality photographing function to a user in all directions, a large-field optical imaging lens having a better resolution and a more satisfactory imaging effect has become a trend of lens development. The wide-angle lens has the characteristics of large field angle and long scene depth, so that the wide-angle lens can easily bring a sense of perspective to a photographer and is favorable for enhancing the infectivity of pictures. However, the wide-angle lens generally has large distortion and vertical axis chromatic aberration, resulting in poor imaging effect. How to realize the super-wide angle of the lens while improving distortion and vertical axis chromatic aberration is one of the problems to be solved urgently in the field of lenses.
SUMMERY OF THE UTILITY MODEL
The present application provides an optical imaging lens, sequentially comprising, from an object side to an image side along an optical axis: a first lens having a negative refractive power, an object-side surface of which is convex; a second lens having a positive optical power; a third lens; a fourth lens having a positive optical power; a fifth lens having a negative optical power; a sixth lens having positive optical power and a seventh lens. The maximum field angle FOV of the optical imaging lens satisfies the following conditions: tan (FOV/3) is not less than 0.9; and the total effective focal length f of the optical imaging lens, the radius of curvature R9 of the object-side surface of the fifth lens, and the radius of curvature R10 of the image-side surface of the fifth lens satisfy: -3.0< f/R9+ f/R10< -1.5.
In one embodiment, the total effective focal length f of the optical imaging lens, the radius of curvature R5 of the object-side surface of the third lens, and the radius of curvature R6 of the image-side surface of the third lens may satisfy: 2.0< f/R5+ f/R6 is less than or equal to-1.4.
In one embodiment, the total effective focal length f of the optical imaging lens and the effective focal length f7 of the seventh lens may satisfy: -0.1< f/f7< 0.5.
In one embodiment, the effective focal length f2 of the second lens and the effective focal length f4 of the fourth lens may satisfy: 3.5< f2/f4< 4.0.
In one embodiment, the effective focal length f6 of the sixth lens and the effective focal length f4 of the fourth lens satisfy: 2.0< f6/f4< 4.0.
In one embodiment, the effective focal length f1 of the first lens and the separation distance T12 of the first lens and the second lens on the optical axis can satisfy: -3.0< f1/T12< -2.0.
In one embodiment, a separation distance T56 between the fifth lens and the sixth lens on the optical axis and a separation distance T67 between the sixth lens and the seventh lens on the optical axis may satisfy: 1.5< T56/T67< 2.0.
In one embodiment, the radius of curvature R1 of the object-side surface of the first lens and the radius of curvature R2 of the image-side surface of the first lens may satisfy: 4.0< R1/R2< 5.0.
In one embodiment, the radius of curvature R4 of the image-side surface of the second lens and the radius of curvature R3 of the object-side surface of the second lens may satisfy: 0< | R3+ R4|/(R3-R4) < 0.3.
In one embodiment, the radius of curvature R7 of the object-side surface of the fourth lens, the radius of curvature R8 of the image-side surface of the fourth lens, and the center thickness CT4 of the fourth lens on the optical axis may satisfy: 0.9< (R7+ R8)/CT4< 2.0.
In one embodiment, the total effective focal length f of the optical imaging lens and the effective focal length f3 of the third lens satisfy: f/| f3| < 0.1.
In one embodiment, the effective focal length f5 of the fifth lens and the combined focal length f45 of the fourth and fifth lenses may satisfy: -1.2. ltoreq. f5/f45< -0.5.
In one embodiment, the optical imaging lens further includes a diaphragm, and the maximum effective radius DT11 of the object side surface of the first lens and the maximum effective radius DTs of the diaphragm satisfy: 3.0< DT11/DTs < 4.5.
In one embodiment, the optical imaging lens further includes a diaphragm, and the maximum effective radius DTs of the diaphragm and the half ImgH of the diagonal length of the effective pixel area on the imaging surface of the optical imaging lens satisfy: 0< DTs/ImgH is less than or equal to 0.2.
Another aspect of the present disclosure provides an optical imaging lens, in order from an object side to an image side along an optical axis, comprising: a first lens having a negative refractive power, an object-side surface of which is convex; a second lens having a positive optical power; a third lens; a fourth lens having a positive optical power; a fifth lens having a negative optical power; a sixth lens having positive optical power; and a seventh lens. The maximum field angle FOV of the optical imaging lens satisfies the following conditions: tan (FOV/3) is not less than 0.9; and the effective focal length f1 of the first lens is separated from the first lens and the second lens by a distance T12 on the optical axis, which satisfies: -3.0< f1/T12< -2.0.
In one embodiment, the total effective focal length f of the optical imaging lens, the radius of curvature R5 of the object-side surface of the third lens, and the radius of curvature R6 of the image-side surface of the third lens may satisfy: 2.0< f/R5+ f/R6 is less than or equal to-1.4.
In one embodiment, the total effective focal length f of the optical imaging lens and the effective focal length f7 of the seventh lens may satisfy: -0.1< f/f7< 0.5.
In one embodiment, the effective focal length f2 of the second lens and the effective focal length f4 of the fourth lens may satisfy: 3.5< f2/f4< 4.0.
In one embodiment, the effective focal length f6 of the sixth lens and the effective focal length f4 of the fourth lens satisfy: 2.0< f6/f4< 4.0.
In one embodiment, a separation distance T56 between the fifth lens and the sixth lens on the optical axis and a separation distance T67 between the sixth lens and the seventh lens on the optical axis may satisfy: 1.5< T56/T67< 2.0.
In one embodiment, the radius of curvature R1 of the object-side surface of the first lens and the radius of curvature R2 of the image-side surface of the first lens may satisfy: 4.0< R1/R2< 5.0.
In one embodiment, the radius of curvature R4 of the image-side surface of the second lens and the radius of curvature R3 of the object-side surface of the second lens may satisfy: 0< | R3+ R4|/(R3-R4) < 0.3.
In one embodiment, the radius of curvature R7 of the object-side surface of the fourth lens, the radius of curvature R8 of the image-side surface of the fourth lens, and the center thickness CT4 of the fourth lens on the optical axis may satisfy: 0.9< (R7+ R8)/CT4< 2.0.
In one embodiment, the total effective focal length f of the optical imaging lens and the effective focal length f3 of the third lens satisfy: f/| f3| < 0.1.
In one embodiment, the effective focal length f5 of the fifth lens and the combined focal length f45 of the fourth and fifth lenses may satisfy: -1.2. ltoreq. f5/f45< -0.5.
In one embodiment, the optical imaging lens further includes a diaphragm, and the maximum effective radius DT11 of the object side surface of the first lens and the maximum effective radius DTs of the diaphragm satisfy: 3.0< DT11/DTs < 4.5.
In one embodiment, the optical imaging lens further includes a diaphragm, and the maximum effective radius DTs of the diaphragm and the half ImgH of the diagonal length of the effective pixel area on the imaging surface of the optical imaging lens satisfy: 0< DTs/ImgH is less than or equal to 0.2.
The optical imaging lens has the beneficial effects of large field angle, high imaging quality, high resolution and the like by adopting a seven-piece lens framework and reasonably distributing the focal power, the surface type, the central thickness of each lens, the on-axis distance between each lens and the like.
Drawings
Other features, objects, and advantages of the present application will become more apparent from the following detailed description of non-limiting embodiments when taken in conjunction with the accompanying drawings. In the drawings:
fig. 1 shows a schematic structural view of an optical imaging lens according to embodiment 1 of the present application;
fig. 2A to 2C show an axial chromatic aberration curve, an astigmatism curve, and a distortion curve of the optical imaging lens of embodiment 1, respectively;
fig. 3 is a schematic structural view showing an optical imaging lens according to embodiment 2 of the present application;
fig. 4A to 4C show an axial chromatic aberration curve, an astigmatism curve, and a distortion curve of the optical imaging lens of embodiment 2, respectively;
fig. 5 is a schematic structural view showing an optical imaging lens according to embodiment 3 of the present application;
fig. 6A to 6C show an axial chromatic aberration curve, an astigmatism curve, and a distortion curve of the optical imaging lens of embodiment 3, respectively;
fig. 7 is a schematic structural view showing an optical imaging lens according to embodiment 4 of the present application;
fig. 8A to 8C show an axial chromatic aberration curve, an astigmatism curve, and a distortion curve of the optical imaging lens of embodiment 4, respectively;
fig. 9 is a schematic structural view showing an optical imaging lens according to embodiment 5 of the present application;
fig. 10A to 10C show an axial chromatic aberration curve, an astigmatism curve, and a distortion curve of the optical imaging lens of embodiment 5, respectively;
fig. 11 is a schematic structural view showing an optical imaging lens according to embodiment 6 of the present application;
fig. 12A to 12C show an axial chromatic aberration curve, an astigmatism curve, and a distortion curve of the optical imaging lens of embodiment 6, respectively;
fig. 13 is a schematic structural view showing an optical imaging lens according to embodiment 7 of the present application;
fig. 14A to 14C show an axial chromatic aberration curve, an astigmatism curve, and a distortion curve, respectively, of an optical imaging lens of embodiment 7;
fig. 15 is a schematic structural view showing an optical imaging lens according to embodiment 8 of the present application; and
fig. 16A to 16C show an axial chromatic aberration curve, an astigmatism curve, and a distortion curve of the optical imaging lens of embodiment 8, respectively.
Detailed Description
For a better understanding of the present application, various aspects of the present application will be described in more detail with reference to the accompanying drawings. It should be understood that the detailed description is merely illustrative of exemplary embodiments of the present application and does not limit the scope of the present application in any way. Like reference numerals refer to like elements throughout the specification. The expression "and/or" includes any and all combinations of one or more of the associated listed items.
It should be noted that in this specification, the expressions first, second, third, etc. are used only to distinguish one feature from another, and do not represent any limitation on the features. Thus, the first lens discussed below may also be referred to as the second lens or the third lens without departing from the teachings of the present application.
In the drawings, the thickness, size, and shape of the lens have been slightly exaggerated for convenience of explanation. In particular, the shapes of the spherical or aspherical surfaces shown in the drawings are shown by way of example. That is, the shape of the spherical surface or the aspherical surface is not limited to the shape of the spherical surface or the aspherical surface shown in the drawings. The figures are purely diagrammatic and not drawn to scale.
Herein, the paraxial region refers to a region near the optical axis. If the lens surface is convex and the convex position is not defined, it means that the lens surface is convex at least in the paraxial region; if the lens surface is concave and the concave position is not defined, it means that the lens surface is concave at least in the paraxial region. The surface of each lens closest to the object is called the object side surface of the lens, and the surface of each lens closest to the imaging surface is called the image side surface of the lens.
It will be further understood that the terms "comprises," "comprising," "has," "having," "includes" and/or "including," when used in this specification, specify the presence of stated features, elements, and/or components, but do not preclude the presence or addition of one or more other features, elements, components, and/or groups thereof. Moreover, when a statement such as "at least one of" appears after a list of listed features, the entirety of the listed features is modified rather than modifying individual elements in the list. Furthermore, when describing embodiments of the present application, the use of "may" mean "one or more embodiments of the present application. Also, the term "exemplary" is intended to refer to an example or illustration.
Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
It should be noted that the embodiments and features of the embodiments in the present application may be combined with each other without conflict. The present application will be described in detail below with reference to the embodiments with reference to the attached drawings.
The features, principles, and other aspects of the present application are described in detail below.
The optical imaging lens according to an exemplary embodiment of the present application may include, for example, seven lenses having optical powers, i.e., a first lens, a second lens, a third lens, a fourth lens, a fifth lens, a sixth lens, and a seventh lens. The seven lenses are arranged in sequence from the object side to the image side along the optical axis. In the first to seventh lenses, any adjacent two lenses may have an air space therebetween.
In an exemplary embodiment, the first lens may have a negative power; the second lens may have a positive optical power; the third lens may have a positive optical power or a negative optical power; the fourth lens may have a positive optical power; the fifth lens may have a negative optical power; the sixth lens may have a positive optical power; the seventh lens may have a positive power or a negative power. The imaging quality of the optical imaging lens can be effectively improved by reasonably distributing the positive and negative focal powers of all the lenses of the optical imaging lens.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy tan (FOV/3) ≧ 0.9, where FOV is the maximum field angle of the optical imaging lens. The optical imaging lens satisfies: tan (FOV/3) is not less than 0.9, and the optical imaging lens has the characteristic of large field angle. More specifically, the FOV may satisfy: tan (FOV/3) is not less than 0.95.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy-3.0 < f/R9+ f/R10< -1.5, where f is a total effective focal length of the optical imaging lens, R9 is a radius of curvature of an object-side surface of the fifth lens, and R10 is a radius of curvature of an image-side surface of the fifth lens. The optical imaging lens meets the requirements of-3.0 < f/R9+ f/R10< -1.5, and the spherical aberration contribution of the fifth lens can be controlled within a reasonable range, so that the optical imaging lens has higher on-axis imaging resolution capability. More specifically, f, R9, and R10 may satisfy: f/R9+ f/R10 is not less than-2.5 and not more than-1.6.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy-2.0 < f/R5+ f/R6 ≦ -1.4, where f is a total effective focal length of the optical imaging lens, R5 is a radius of curvature of an object-side surface of the third lens, and R6 is a radius of curvature of an image-side surface of the third lens. The optical imaging lens meets the condition that f/R5 and f/R6 are more than-2.0 and less than or equal to-1.4, and the emergent angle of a light path passing through the third lens can be reduced, so that the sensitivity of the third lens to the optical imaging lens is effectively reduced.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy-0.1 < f/f7<0.5, where f is an overall effective focal length of the optical imaging lens, and f7 is an effective focal length of the seventh lens. The optical imaging lens meets the requirements that-0.1 < f/f7<0.5, and the contribution amount of the thickness of the seventh lens to the curvature of field is within a reasonable range.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy 3.5< f2/f4<4.0, where f2 is an effective focal length of the second lens and f4 is an effective focal length of the fourth lens. The optical imaging lens satisfies: 3.5< f2/f4<4.0, the decentration sensitivity of the second lens and the fourth lens can be effectively reduced, and the assembly yield of the optical imaging lens is improved.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy 2.0< f6/f4<4.0, where f6 is an effective focal length of the sixth lens and f4 is an effective focal length of the fourth lens. The optical imaging lens satisfies: 2.0< f6/f4<4.0, the decentration sensitivity of the sixth lens relative to the fourth lens can be effectively reduced, and the assembly yield of the optical imaging lens is improved. More specifically, f6 and f4 may satisfy: f6/f4 is more than or equal to 2.4 and less than or equal to 3.8.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy-3.0 < f1/T12< -2.0, where f1 is an effective focal length of the first lens and T12 is a separation distance of the first lens and the second lens on an optical axis. The optical imaging lens satisfies: 3.0< f1/T12< -2.0, the space ratio of the first lens and the second lens can be reasonably controlled, the assembly process of the lens is favorably ensured, and the miniaturization of the optical imaging lens is favorably realized.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy 1.5< T56/T67<2.0, where T56 is a separation distance of the fifth lens and the sixth lens on the optical axis, and T67 is a separation distance of the sixth lens and the seventh lens on the optical axis. The optical imaging lens satisfies: 1.5< T56/T67<2.0, which is beneficial to the processing and forming process of the fifth lens and the sixth lens, so that the optical imaging lens has better processability and is beneficial to realizing the miniaturization of the optical imaging lens.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy 4.0< R1/R2<5.0, where R1 is a radius of curvature of an object-side surface of the first lens and R2 is a radius of curvature of an image-side surface of the first lens. The optical imaging lens satisfies: 4.0< R1/R2<5.0, which is favorable for the optical imaging lens to have a larger field angle. More specifically, R1 and R2 may satisfy: 4.5 is less than or equal to R1/R2 and less than 5.0.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy 0< | R3+ R4|/(R3-R4) <0.3, where R4 is a radius of curvature of an image-side surface of the second lens and R3 is a radius of curvature of an object-side surface of the second lens. The optical imaging lens satisfies: 0< | R2+ R3|/(R2-R3) <0.3, and the on-axis chromatic aberration and spherical aberration of the optical imaging lens can be reasonably controlled.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy 0.9< (R7+ R8)/CT4<2.0, where R7 is a radius of curvature of an object-side surface of the fourth lens, R8 is a radius of curvature of an image-side surface of the fourth lens, and CT4 is a center thickness of the fourth lens on an optical axis. The optical imaging lens satisfies: 0.9< (R7+ R8)/CT4<2.0, can reduce the sensitivity of the optical imaging lens, avoid the strict tolerance requirement, simultaneously can reasonably control the chromatic aberration contribution of the fourth lens, and is beneficial to reducing the on-axis chromatic aberration of the optical imaging lens. More specifically, R7, R8, and CT4 may satisfy: 0.9< (R7+ R8)/CT4 is less than or equal to 1.8.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy f/| f3| <0.1, where f is the total effective focal length of the optical imaging lens, and f3 is the effective focal length of the third lens. The optical imaging lens satisfies: f/| f3| <0.1 is advantageous for increasing the maximum field angle of the optical imaging lens and simultaneously for reducing the decentering sensitivity of the third lens.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy-1.2 ≦ f5/f45< -0.5, where f5 is an effective focal length of the fifth lens, and f45 is a combined focal length of the fourth lens and the fifth lens. The optical imaging lens satisfies: f5/f45< -0.5 is more than or equal to-1.2, so that when the light rays of each field of view of the optical imaging lens reach an imaging surface, the CRA (Chief Ray Angle) of the photosensitive chip is better matched, and the imaging quality of the optical imaging lens is ensured.
In an exemplary embodiment, the optical imaging lens of the present application may further include a diaphragm, which may be disposed at an appropriate position as needed, for example, between the third lens and the fourth lens. The optical imaging lens can satisfy 3.0< DT11/DTs <4.5, where DT11 is the maximum effective radius of the object side surface of the first lens and DTs is the maximum effective radius of the diaphragm. The optical imaging lens satisfies: 3.0< DT11/DTs <4.5, which is beneficial to realizing the miniaturization of the optical imaging lens and reducing the distortion of the optical imaging lens.
In an exemplary embodiment, the optical imaging lens of the present application may satisfy 0< DTs/ImgH ≦ 0.2, where DTs is a maximum effective radius of the diaphragm and ImgH is a half of a diagonal length of an effective pixel area on an imaging plane of the optical imaging lens. The optical imaging lens satisfies: the DTs/ImgH is more than 0 and less than or equal to 0.2, so that the optical imaging lens has a larger aperture, and the shooting capability of the optical imaging lens in a dark environment is favorably improved. More specifically, DTs and ImgH may satisfy: DTs/ImgH is more than or equal to 0.1 and less than or equal to 0.2.
In an exemplary embodiment, the optical imaging lens may further include a filter for correcting color deviation and/or a protective glass for protecting a photosensitive element located on an imaging surface.
The optical imaging lens according to the above-described embodiment of the present application may employ a plurality of lenses, for example, seven lenses as described above. By reasonably distributing the focal power, the surface type, the central thickness of each lens, the on-axis distance between each lens and the like, the volume of the optical imaging lens can be effectively reduced, the sensitivity of the optical imaging lens is reduced, and the machinability of a camera lens group is improved, so that the optical imaging lens is more beneficial to production and processing and is suitable for portable electronic products. The optical imaging lens according to the embodiment of the present application can have an ultra-wide angle with improved distortion and vertical axis chromatic aberration.
In the embodiment of the present application, at least one of the mirror surfaces of each lens is an aspherical mirror surface, that is, at least one of the object-side surface of the first lens to the image-side surface of the seventh lens is an aspherical mirror surface. The aspheric lens is characterized in that: the curvature varies continuously from the center of the lens to the periphery of the lens. Unlike a spherical lens having a constant curvature from the center of the lens to the periphery of the lens, an aspherical lens has better curvature radius characteristics, and has advantages of improving distortion aberration and improving astigmatic aberration. After the aspheric lens is adopted, the aberration generated during imaging can be eliminated as much as possible, thereby improving the imaging quality. Optionally, at least one of an object-side surface and an image-side surface of each of the first lens, the second lens, the third lens, the fourth lens, the fifth lens, the sixth lens, and the seventh lens is an aspheric mirror surface. Optionally, each of the first, second, third, fourth, fifth, sixth, and seventh lenses has an object-side surface and an image-side surface that are aspheric mirror surfaces.
However, it will be appreciated by those skilled in the art that the number of lenses constituting an optical imaging lens may be varied to achieve the various results and advantages described in the present specification without departing from the claimed subject matter. For example, although seven lenses are exemplified in the embodiment, the optical imaging lens is not limited to include seven lenses. The optical imaging lens may also include other numbers of lenses, if desired.
Specific examples of an optical imaging lens applicable to the above-described embodiments are further described below with reference to the drawings.
Example 1
An optical imaging lens according to embodiment 1 of the present application is described below with reference to fig. 1 to 2C. Fig. 1 shows a schematic structural diagram of an optical imaging lens according to embodiment 1 of the present application.
As shown in fig. 1, the optical imaging lens, in order from an object side to an image side along an optical axis, comprises: a first lens E1, a second lens E2, a third lens E3, a stop STO, a fourth lens E4, a fifth lens E5, a sixth lens E6, a seventh lens E7, and a filter E8.
The first lens element E1 has negative power, and has a convex object-side surface S1 and a concave image-side surface S2. The second lens element E2 has positive power, and has a convex object-side surface S3 and a convex image-side surface S4. The third lens element E3 has negative power, and has a concave object-side surface S5 and a convex image-side surface S6. The fourth lens element E4 has positive power, and has a convex object-side surface S7 and a convex image-side surface S8. The fifth lens element E5 has negative power, and has a concave object-side surface S9 and a convex image-side surface S10. The sixth lens element E6 has positive power, and has a concave object-side surface S11 and a convex image-side surface S12. The seventh lens element E7 has positive power, and has a convex object-side surface S13 and a concave image-side surface S14. Filter E8 has an object side S15 and an image side S16. The optical imaging lens has an imaging surface S17, and light from the object passes through the respective surfaces S1 to S16 in order and is finally imaged on the imaging surface S17.
Table 1 shows a basic parameter table of the optical imaging lens of embodiment 1, in which the units of the radius of curvature, the thickness, and the focal length are all millimeters (mm).
Figure BDA0002914876090000061
Figure BDA0002914876090000071
TABLE 1
In embodiment 1, the value of the total effective focal length f of the optical imaging lens is 1.66mm, and the value of the maximum field angle FOV is 134.6 °.
In embodiment 1, the object-side surface and the image-side surface of any one of the first lens E1 through the seventh lens E7 are aspheric surfaces, and the surface shape x of each aspheric lens can be defined by, but is not limited to, the following aspheric surface formula:
Figure BDA0002914876090000072
wherein x is the rise of the distance from the aspheric surface vertex to the aspheric surface vertex when the aspheric surface is at the position with the height of h along the optical axis direction; c is the paraxial curvature of the aspheric surface, c being 1/R (i.e., paraxial curvature c is the inverse of radius of curvature R in table 1 above); k is a conic coefficient; ai is the correction coefficient of the i-th order of the aspherical surface. Table 2 below shows the high-order term coefficients A that can be used for the aspherical mirror surfaces S1 to S14 in example 14、A6、A8、A10、A12、A14、A16、A18、A20、A22、A24、A26、A28And A30
Figure BDA0002914876090000073
Figure BDA0002914876090000081
TABLE 2
Fig. 2A shows an on-axis chromatic aberration curve of the optical imaging lens of embodiment 1, which represents the convergent focus deviation of light rays of different wavelengths after passing through the lens. Fig. 2B shows an astigmatism curve representing a meridional field curvature and a sagittal field curvature of the optical imaging lens of embodiment 1. Fig. 2C shows a distortion curve of the optical imaging lens of embodiment 1, which represents distortion magnitude values corresponding to different angles of view. As can be seen from fig. 2A to 2C, the optical imaging lens according to embodiment 1 can achieve good imaging quality.
Example 2
An optical imaging lens according to embodiment 2 of the present application is described below with reference to fig. 3 to 4C. In this embodiment and the following embodiments, descriptions of parts similar to those of embodiment 1 will be omitted for the sake of brevity. Fig. 3 shows a schematic structural diagram of an optical imaging lens according to embodiment 2 of the present application.
As shown in fig. 3, the optical imaging lens, in order from an object side to an image side along an optical axis, comprises: a first lens E1, a second lens E2, a third lens E3, a stop STO, a fourth lens E4, a fifth lens E5, a sixth lens E6, a seventh lens E7, and a filter E8.
The first lens element E1 has negative power, and has a convex object-side surface S1 and a concave image-side surface S2. The second lens element E2 has positive power, and has a convex object-side surface S3 and a convex image-side surface S4. The third lens element E3 has positive power, and has a concave object-side surface S5 and a convex image-side surface S6. The fourth lens element E4 has positive power, and has a convex object-side surface S7 and a convex image-side surface S8. The fifth lens element E5 has negative power, and has a concave object-side surface S9 and a convex image-side surface S10. The sixth lens element E6 has positive power, and has a convex object-side surface S11 and a convex image-side surface S12. The seventh lens element E7 has positive power, and has a convex object-side surface S13 and a concave image-side surface S14. Filter E8 has an object side S15 and an image side S16. The optical imaging lens has an imaging surface S17, and light from the object passes through the respective surfaces S1 to S16 in order and is finally imaged on the imaging surface S17.
In embodiment 2, the value of the total effective focal length f of the optical imaging lens is 1.68mm, and the value of the maximum field angle FOV is 132.6 °.
Table 3 shows a basic parameter table of the optical imaging lens of embodiment 2, in which the units of the radius of curvature, the thickness, and the focal length are all millimeters (mm). Table 4 shows high-order term coefficients that can be used for each aspherical mirror surface in example 2, wherein each aspherical mirror surface type can be defined by formula (1) given in example 1 above.
Figure BDA0002914876090000082
Figure BDA0002914876090000091
TABLE 3
Flour mark A4 A6 A8 A10 A12 A14 A16
S1 -7.9771E-03 6.1062E-02 -2.0538E-02 3.4865E-03 -3.6136E-04 2.4472E-05 -1.1236E-06
S2 1.6396E-01 1.2532E-01 3.6123E-02 2.2831E-02 1.0466E-02 8.0510E-03 4.3090E-03
S3 -2.4407E-02 7.7974E-03 -1.5523E-03 7.2916E-04 -3.7552E-04 -3.4617E-05 1.8766E-05
S4 4.2874E-02 -2.9871E-03 -2.0064E-04 2.4117E-04 -2.4752E-04 9.0995E-05 1.3199E-06
S5 4.4617E-02 -7.4582E-03 1.4924E-03 -1.9637E-04 7.9429E-05 1.4948E-06 -1.2209E-05
S6 4.0820E-02 -6.6522E-03 1.6035E-03 -3.2849E-04 1.1822E-04 -3.3883E-05 -1.3755E-06
S7 1.9434E-02 -3.6166E-03 7.5758E-04 -2.0777E-04 3.3805E-05 -2.2465E-05 -2.4778E-06
S8 8.5603E-02 -1.0072E-02 2.1343E-03 5.7928E-05 -1.7803E-04 5.4996E-05 6.2458E-05
S9 9.4212E-02 -1.5348E-02 1.9699E-03 1.8864E-04 -1.1308E-04 1.5055E-04 5.9433E-05
S10 7.8410E-02 -3.1861E-03 1.2727E-03 3.5087E-05 1.0964E-04 9.7435E-05 -3.8235E-05
S11 -5.0160E-01 3.3947E-02 -2.6976E-02 1.1789E-02 -8.2943E-03 3.8173E-03 -2.6680E-03
S12 -2.9820E-01 1.8086E-01 -5.9147E-02 3.0875E-02 -2.0189E-02 8.7024E-03 -4.9762E-03
S13 -2.4810E+00 6.5851E-01 -2.0902E-01 6.2251E-02 -3.2368E-02 4.5691E-03 -6.1074E-03
S14 -5.4757E-01 -1.5283E-01 9.8691E-02 -9.5116E-02 4.8881E-02 -2.4564E-02 1.4535E-02
Flour mark A18 A20 A22 A24 A26 A28 A30
S1 3.4002E-08 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00
S2 3.3381E-03 1.8038E-03 1.2949E-03 7.4543E-04 4.3001E-04 2.2264E-04 5.6509E-05
S3 1.6559E-05 6.4496E-06 -9.5827E-06 3.0428E-06 -3.9968E-07 1.8779E-08 0.0000E+00
S4 1.6360E-05 -1.0854E-05 1.1313E-06 -1.3234E-06 8.7831E-07 -1.3515E-07 0.0000E+00
S5 -4.0566E-06 4.1889E-06 -1.0092E-06 9.0266E-08 0.0000E+00 0.0000E+00 0.0000E+00
S6 -2.9850E-06 4.0061E-06 -1.3061E-06 1.7272E-07 -7.5775E-09 0.0000E+00 0.0000E+00
S7 -1.2684E-07 2.3562E-06 2.0241E-06 -1.8510E-06 4.4540E-07 -3.3096E-08 0.0000E+00
S8 4.8626E-06 -2.7595E-05 3.8035E-06 3.4750E-06 -1.0869E-06 6.2876E-08 0.0000E+00
S9 5.2547E-05 -4.0012E-05 -6.3303E-06 -7.0675E-06 7.2548E-06 -9.1354E-07 0.0000E+00
S10 1.4917E-05 -3.1449E-05 -5.2853E-06 -8.7501E-06 2.0890E-06 3.8421E-06 0.0000E+00
S11 3.6103E-04 -1.0853E-03 -5.2108E-05 -4.8577E-04 -5.0378E-05 -1.9096E-04 -1.5957E-06
S12 1.2721E-03 -5.1071E-04 3.2440E-04 1.7366E-05 3.0478E-06 4.9092E-07 0.0000E+00
S13 2.7947E-03 -2.7283E-03 1.7839E-03 -1.7305E-03 -7.0674E-05 -2.6552E-06 -2.9313E-07
S14 -6.8807E-03 1.9023E-03 -7.8771E-04 6.4525E-04 -2.2524E-04 2.0915E-05 9.0375E-07
TABLE 4
Fig. 4A shows an on-axis chromatic aberration curve of the optical imaging lens of embodiment 2, which represents the convergent focus deviation of light rays of different wavelengths after passing through the lens. Fig. 4B shows an astigmatism curve representing meridional field curvature and sagittal field curvature of the optical imaging lens of embodiment 2. Fig. 4C shows a distortion curve of the optical imaging lens of embodiment 2, which represents distortion magnitude values corresponding to different angles of view. As can be seen from fig. 4A to 4C, the optical imaging lens according to embodiment 2 can achieve good imaging quality.
Example 3
An optical imaging lens according to embodiment 3 of the present application is described below with reference to fig. 5 to 6C. Fig. 5 shows a schematic structural diagram of an optical imaging lens according to embodiment 3 of the present application.
As shown in fig. 5, the optical imaging lens, in order from an object side to an image side along an optical axis, comprises: a first lens E1, a second lens E2, a third lens E3, a stop STO, a fourth lens E4, a fifth lens E5, a sixth lens E6, a seventh lens E7, and a filter E8.
The first lens element E1 has negative power, and has a convex object-side surface S1 and a concave image-side surface S2. The second lens element E2 has positive power, and has a convex object-side surface S3 and a convex image-side surface S4. The third lens element E3 has negative power, and has a concave object-side surface S5 and a convex image-side surface S6. The fourth lens element E4 has positive power, and has a convex object-side surface S7 and a convex image-side surface S8. The fifth lens element E5 has negative power, and has a concave object-side surface S9 and a convex image-side surface S10. The sixth lens element E6 has positive power, and has a concave object-side surface S11 and a convex image-side surface S12. The seventh lens element E7 has positive power, and has a convex object-side surface S13 and a convex image-side surface S14. Filter E8 has an object side S15 and an image side S16. The optical imaging lens has an imaging surface S17, and light from the object passes through the respective surfaces S1 to S16 in order and is finally imaged on the imaging surface S17.
In embodiment 3, the value of the total effective focal length f of the optical imaging lens is 1.77mm, and the value of the maximum field angle FOV is 134.6 °.
Table 5 shows a basic parameter table of the optical imaging lens of embodiment 3, in which the units of the radius of curvature, the thickness, and the focal length are all millimeters (mm). Table 6 shows high-order term coefficients that can be used for each aspherical mirror surface in example 3, wherein each aspherical mirror surface type can be defined by formula (1) given in example 1 above.
Figure BDA0002914876090000101
TABLE 5
Figure BDA0002914876090000102
Figure BDA0002914876090000111
TABLE 6
Fig. 6A shows an on-axis chromatic aberration curve of the optical imaging lens of embodiment 3, which represents the convergent focus deviation of light rays of different wavelengths after passing through the lens. Fig. 6B shows an astigmatism curve representing meridional field curvature and sagittal field curvature of the optical imaging lens of embodiment 3. Fig. 6C shows a distortion curve of the optical imaging lens of embodiment 3, which represents distortion magnitude values corresponding to different angles of view. As can be seen from fig. 6A and 6C, the optical imaging lens according to embodiment 3 can achieve good imaging quality.
Example 4
An optical imaging lens according to embodiment 4 of the present application is described below with reference to fig. 7 to 8C. Fig. 7 shows a schematic structural diagram of an optical imaging lens according to embodiment 4 of the present application.
As shown in fig. 7, the optical imaging lens, in order from an object side to an image side along an optical axis, comprises: a first lens E1, a second lens E2, a third lens E3, a stop STO, a fourth lens E4, a fifth lens E5, a sixth lens E6, a seventh lens E7, and a filter E8.
The first lens element E1 has negative power, and has a convex object-side surface S1 and a concave image-side surface S2. The second lens element E2 has positive power, and has a convex object-side surface S3 and a convex image-side surface S4. The third lens element E3 has positive power, and has a concave object-side surface S5 and a convex image-side surface S6. The fourth lens element E4 has positive power, and has a convex object-side surface S7 and a convex image-side surface S8. The fifth lens element E5 has negative power, and has a concave object-side surface S9 and a convex image-side surface S10. The sixth lens element E6 has positive power, and has a convex object-side surface S11 and a convex image-side surface S12. The seventh lens element E7 has negative power, and has a convex object-side surface S13 and a concave image-side surface S14. Filter E8 has an object side S15 and an image side S16. The optical imaging lens has an imaging surface S17, and light from the object passes through the respective surfaces S1 to S16 in order and is finally imaged on the imaging surface S17.
In embodiment 4, the value of the total effective focal length f of the optical imaging lens is 2.01mm, and the value of the maximum field angle FOV is 133.4 °.
Table 7 shows a basic parameter table of the optical imaging lens of embodiment 4, in which the units of the radius of curvature, the thickness, and the focal length are all millimeters (mm). Table 8 shows high-order term coefficients that can be used for each aspherical mirror surface in example 4, wherein each aspherical mirror surface type can be defined by formula (1) given in example 1 above.
Figure BDA0002914876090000121
TABLE 7
Figure BDA0002914876090000122
Figure BDA0002914876090000131
TABLE 8
Fig. 8A shows an on-axis chromatic aberration curve of the optical imaging lens of embodiment 4, which represents the convergent focus deviation of light rays of different wavelengths after passing through the lens. Fig. 8B shows an astigmatism curve representing meridional field curvature and sagittal field curvature of the optical imaging lens of embodiment 4. Fig. 8C shows a distortion curve of the optical imaging lens of embodiment 4, which represents distortion magnitude values corresponding to different angles of view. As can be seen from fig. 8A to 8C, the optical imaging lens according to embodiment 4 can achieve good imaging quality.
Example 5
An optical imaging lens according to embodiment 5 of the present application is described below with reference to fig. 9 to 10C. Fig. 9 shows a schematic structural diagram of an optical imaging lens according to embodiment 5 of the present application.
As shown in fig. 9, the optical imaging lens, in order from an object side to an image side along an optical axis, comprises: a first lens E1, a second lens E2, a third lens E3, a stop STO, a fourth lens E4, a fifth lens E5, a sixth lens E6, a seventh lens E7, and a filter E8.
The first lens element E1 has negative power, and has a convex object-side surface S1 and a concave image-side surface S2. The second lens element E2 has positive power, and has a convex object-side surface S3 and a convex image-side surface S4. The third lens element E3 has negative power, and has a concave object-side surface S5 and a convex image-side surface S6. The fourth lens element E4 has positive power, and has a convex object-side surface S7 and a convex image-side surface S8. The fifth lens element E5 has negative power, and has a concave object-side surface S9 and a convex image-side surface S10. The sixth lens element E6 has positive power, and has a concave object-side surface S11 and a convex image-side surface S12. The seventh lens element E7 has positive power, and has a convex object-side surface S13 and a convex image-side surface S14. Filter E8 has an object side S15 and an image side S16. The optical imaging lens has an imaging surface S17, and light from the object passes through the respective surfaces S1 to S16 in order and is finally imaged on the imaging surface S17.
In embodiment 5, the value of the total effective focal length f of the optical imaging lens is 1.78mm, and the value of the maximum field angle FOV is 134.5 °.
Table 9 shows a basic parameter table of the optical imaging lens of embodiment 5, in which the units of the radius of curvature, the thickness, and the focal length are all millimeters (mm). Table 10 shows high-order term coefficients that can be used for each aspherical mirror surface in example 5, wherein each aspherical mirror surface type can be defined by formula (1) given in example 1 above.
Figure BDA0002914876090000132
Figure BDA0002914876090000141
TABLE 9
Flour mark A4 A6 A8 A10 A12 A14 A16
S1 8.2947E-02 -9.8607E-03 1.0543E-03 -7.7847E-05 4.0301E-06 -1.3762E-07 0.0000E+00
S2 2.6298E-01 7.2504E-02 2.6481E-02 1.3921E-02 7.4039E-03 4.3580E-03 2.6279E-03
S3 4.4793E-03 3.2181E-03 -1.1829E-03 2.9501E-04 -1.0040E-04 1.1877E-06 3.7326E-06
S4 1.7966E-02 -1.1997E-03 -2.7655E-04 3.0053E-04 -1.3405E-04 1.4565E-05 -5.0402E-06
S5 3.5159E-02 -2.6536E-03 6.7640E-04 -2.2895E-04 -2.1726E-07 2.1202E-05 4.6402E-06
S6 1.4311E-02 -1.8632E-03 4.4793E-04 -2.2421E-04 6.0561E-05 -9.5815E-06 8.4135E-06
S7 2.3636E-03 -1.1953E-03 2.1580E-05 -2.9324E-05 -1.5070E-05 5.3025E-06 -8.3268E-06
S8 4.2086E-02 -1.3578E-02 3.1955E-03 -4.4020E-05 1.7430E-04 -1.0823E-04 -2.9528E-05
S9 1.0660E-01 -2.0643E-02 7.4053E-03 2.1172E-04 4.6091E-04 -1.1446E-04 -7.2792E-05
S10 1.2236E-01 -1.4484E-02 5.3265E-03 -5.8126E-04 2.1407E-04 -2.6370E-05 -2.3648E-05
S11 -2.4432E-01 5.7257E-03 -1.3673E-02 5.3075E-03 -2.3832E-03 9.8725E-04 -4.3461E-04
S12 -1.5884E-01 1.2125E-01 -3.2711E-02 1.6812E-02 -5.7391E-03 1.7169E-03 -9.6107E-04
S13 -1.2058E+00 3.2547E-01 -8.3374E-02 1.6658E-02 -2.0828E-04 -9.8393E-05 -6.1645E-04
S14 -3.0549E-01 -4.8606E-02 5.7424E-02 -5.6117E-02 3.5333E-02 -1.7789E-02 8.4256E-03
Flour mark A18 A20 A22 A24 A26 A28 A30
S1 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00
S2 1.6172E-03 1.0016E-03 6.1677E-04 3.7281E-04 2.1618E-04 1.1861E-04 4.8830E-05
S3 1.7821E-05 -3.2963E-06 -3.7916E-06 1.0217E-06 0.0000E+00 0.0000E+00 0.0000E+00
S4 1.0126E-05 -4.4501E-06 6.0585E-07 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00
S5 -3.5347E-06 3.3712E-08 8.2509E-08 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00
S6 -1.2610E-05 1.1511E-05 -5.2225E-06 1.0905E-06 -7.7815E-08 0.0000E+00 0.0000E+00
S7 1.1441E-05 -3.8379E-06 1.8199E-06 -7.2056E-07 0.0000E+00 0.0000E+00 0.0000E+00
S8 4.0884E-05 3.6624E-06 -3.9931E-06 -3.6594E-07 0.0000E+00 0.0000E+00 0.0000E+00
S9 3.1327E-05 1.1651E-05 -1.3450E-05 -1.0464E-06 0.0000E+00 0.0000E+00 0.0000E+00
S10 1.3111E-05 6.8727E-06 -6.2184E-06 3.0252E-07 0.0000E+00 0.0000E+00 0.0000E+00
S11 3.0314E-04 -9.4175E-05 3.6932E-05 -3.7706E-05 -5.5606E-07 0.0000E+00 0.0000E+00
S12 3.6041E-04 -2.2439E-05 -2.9037E-05 -2.7604E-06 -3.5598E-07 0.0000E+00 0.0000E+00
S13 1.2493E-03 -1.1019E-03 2.7918E-04 -7.5570E-05 -6.2560E-06 -7.6785E-07 0.0000E+00
S14 -2.9978E-03 6.1219E-04 -5.5381E-05 9.0596E-07 0.0000E+00 0.0000E+00 0.0000E+00
Table 10 fig. 10A shows an on-axis chromatic aberration curve of the optical imaging lens of example 5, which represents the convergent focus deviation of light rays of different wavelengths after passing through the lens. Fig. 10B shows an astigmatism curve representing meridional field curvature and sagittal field curvature of the optical imaging lens of embodiment 5. Fig. 10C shows a distortion curve of the optical imaging lens of embodiment 5, which represents distortion magnitude values corresponding to different angles of view. As can be seen from fig. 10A to 10C, the optical imaging lens according to embodiment 5 can achieve good imaging quality.
Example 6
An optical imaging lens according to embodiment 6 of the present application is described below with reference to fig. 11 to 12C. Fig. 11 shows a schematic structural view of an optical imaging lens according to embodiment 6 of the present application.
As shown in fig. 11, the optical imaging lens, in order from an object side to an image side along an optical axis, comprises: a first lens E1, a second lens E2, a third lens E3, a stop STO, a fourth lens E4, a fifth lens E5, a sixth lens E6, a seventh lens E7, and a filter E8.
The first lens element E1 has negative power, and has a convex object-side surface S1 and a concave image-side surface S2. The second lens element E2 has positive power, and has a convex object-side surface S3 and a convex image-side surface S4. The third lens element E3 has positive power, and has a concave object-side surface S5 and a convex image-side surface S6. The fourth lens element E4 has positive power, and has a convex object-side surface S7 and a convex image-side surface S8. The fifth lens element E5 has negative power, and has a concave object-side surface S9 and a convex image-side surface S10. The sixth lens element E6 has positive power, and has a convex object-side surface S11 and a convex image-side surface S12. The seventh lens element E7 has positive power, and has a convex object-side surface S13 and a convex image-side surface S14. Filter E8 has an object side S15 and an image side S16. The optical imaging lens has an imaging surface S17, and light from the object passes through the respective surfaces S1 to S16 in order and is finally imaged on the imaging surface S17.
In embodiment 6, the value of the total effective focal length f of the optical imaging lens is 1.66mm, and the value of the maximum field angle FOV is 133.6 °.
Table 11 shows a basic parameter table of the optical imaging lens of embodiment 6, in which the units of the radius of curvature, the thickness, and the focal length are all millimeters (mm). Table 12 shows high-order term coefficients that can be used for each aspherical mirror surface in example 6, wherein each aspherical mirror surface type can be defined by formula (1) given in example 1 above.
Figure BDA0002914876090000151
Figure BDA0002914876090000161
TABLE 11
Flour mark A4 A6 A8 A10 A12 A14 A16
S1 -5.9941E-03 5.9614E-02 -2.0029E-02 3.4015E-03 -3.5251E-04 2.3854E-05 -1.0931E-06
S2 1.6751E-01 1.2404E-01 3.6343E-02 2.2999E-02 1.0597E-02 8.0350E-03 4.3533E-03
S3 -2.2042E-02 7.4710E-03 -1.3956E-03 5.4431E-04 -3.7136E-04 -8.1112E-06 2.1823E-05
S4 4.1723E-02 -2.8399E-03 -6.2578E-05 9.8280E-05 -1.9707E-04 8.0480E-05 8.5275E-06
S5 4.3137E-02 -7.2206E-03 1.3871E-03 -1.9869E-04 8.3300E-05 -1.4236E-06 -7.3730E-06
S6 3.9744E-02 -6.5873E-03 1.5350E-03 -3.1327E-04 1.1254E-04 -2.6810E-05 -6.5356E-07
S7 1.7426E-02 -2.9193E-03 6.0686E-04 -1.4561E-04 2.9415E-05 -1.1547E-05 -2.7100E-06
S8 8.8690E-02 -1.1142E-02 2.2892E-03 7.8418E-05 -2.2897E-04 4.5380E-05 8.8306E-05
S9 9.7580E-02 -1.6398E-02 2.2562E-03 4.6828E-05 -1.1811E-04 1.1709E-04 1.1681E-04
S10 7.8305E-02 -3.2256E-03 1.4777E-03 -2.0420E-04 1.9395E-04 1.0899E-04 1.1130E-05
S11 -4.9306E-01 3.3743E-02 -2.8001E-02 1.1655E-02 -8.5925E-03 3.9080E-03 -2.5715E-03
S12 -2.7485E-01 1.8567E-01 -6.1243E-02 3.0547E-02 -2.1836E-02 8.8346E-03 -5.5049E-03
S13 -2.4142E+00 6.4418E-01 -1.8500E-01 6.4411E-02 -2.4626E-02 6.5063E-03 -4.6945E-03
S14 1.4321E-01 -4.1637E-01 1.7186E-01 -1.4894E-01 7.0715E-02 -3.6487E-02 2.4095E-02
Flour mark A18 A20 A22 A24 A26 A28 A30
S1 3.2989E-08 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00 0.0000E+00
S2 3.3308E-03 1.8244E-03 1.3002E-03 7.5006E-04 4.3151E-04 2.2282E-04 5.5039E-05
S3 2.1194E-05 -1.5195E-06 -6.4691E-06 2.5293E-06 -3.6427E-07 1.8123E-08 0.0000E+00
S4 9.6569E-06 -7.8210E-06 1.5647E-07 -7.0698E-07 6.2095E-07 -9.9484E-08 0.0000E+00
S5 -5.2832E-06 3.9964E-06 -9.2754E-07 8.9992E-08 0.0000E+00 0.0000E+00 0.0000E+00
S6 -4.4977E-06 4.0380E-06 -1.1539E-06 1.4021E-07 -5.7725E-09 0.0000E+00 0.0000E+00
S7 -5.8828E-07 8.8971E-07 7.3744E-07 -5.1048E-07 1.0002E-07 -6.1647E-09 0.0000E+00
S8 3.6496E-06 -4.1552E-05 1.2365E-05 1.4370E-06 -9.1048E-07 6.2115E-08 0.0000E+00
S9 4.8472E-05 -6.2365E-05 -2.7553E-06 -1.0154E-06 4.7057E-06 -7.1573E-07 0.0000E+00
S10 -1.1935E-05 -4.7643E-05 -3.8884E-06 -3.6770E-06 7.2553E-07 4.1996E-06 0.0000E+00
S11 4.9997E-04 -1.0200E-03 -1.2016E-05 -4.5551E-04 -3.7775E-05 -1.6560E-04 -1.3913E-06
S12 1.6149E-03 -3.9307E-04 4.6572E-04 2.7785E-05 4.8229E-06 7.2349E-07 2.7021E-08
S13 3.3294E-03 -2.1643E-03 2.2336E-03 -1.0031E-03 -3.3353E-05 -6.1344E-09 -7.5849E-08
S14 -1.0751E-02 4.3543E-03 -1.8680E-03 7.9842E-04 -2.4821E-04 2.7025E-05 1.2951E-06
TABLE 12
Fig. 12A shows an on-axis chromatic aberration curve of the optical imaging lens of embodiment 6, which represents the convergent focus deviation of light rays of different wavelengths after passing through the lens. Fig. 12B shows an astigmatism curve representing meridional field curvature and sagittal field curvature of the optical imaging lens of embodiment 6. Fig. 12C shows a distortion curve of the optical imaging lens of embodiment 6, which represents distortion magnitude values corresponding to different angles of view. As can be seen from fig. 12A to 12C, the optical imaging lens according to embodiment 6 can achieve good imaging quality.
Example 7
An optical imaging lens according to embodiment 7 of the present application is described below with reference to fig. 13 to 14C. Fig. 13 is a schematic structural view showing an optical imaging lens according to embodiment 7 of the present application.
As shown in fig. 13, the optical imaging lens, in order from an object side to an image side along an optical axis, comprises: a first lens E1, a second lens E2, a third lens E3, a stop STO, a fourth lens E4, a fifth lens E5, a sixth lens E6, a seventh lens E7, and a filter E8.
The first lens element E1 has negative power, and has a convex object-side surface S1 and a concave image-side surface S2. The second lens element E2 has positive power, and has a convex object-side surface S3 and a convex image-side surface S4. The third lens element E3 has negative power, and has a concave object-side surface S5 and a convex image-side surface S6. The fourth lens element E4 has positive power, and has a convex object-side surface S7 and a convex image-side surface S8. The fifth lens element E5 has negative power, and has a concave object-side surface S9 and a convex image-side surface S10. The sixth lens element E6 has positive power, and has a concave object-side surface S11 and a convex image-side surface S12. The seventh lens element E7 has positive power, and has a convex object-side surface S13 and a concave image-side surface S14. Filter E8 has an object side S15 and an image side S16. The optical imaging lens has an imaging surface S17, and light from the object passes through the respective surfaces S1 to S16 in order and is finally imaged on the imaging surface S17.
In embodiment 7, the value of the total effective focal length f of the optical imaging lens is 1.67mm, and the value of the maximum field angle FOV is 134.6 °.
Table 13 shows a basic parameter table of the optical imaging lens of embodiment 7, in which the units of the radius of curvature, the thickness, and the focal length are all millimeters (mm). Table 14 shows high-order term coefficients that can be used for each aspherical mirror surface in example 7, wherein each aspherical mirror surface type can be defined by formula (1) given in example 1 above.
Figure BDA0002914876090000171
Watch 13
Figure BDA0002914876090000172
Figure BDA0002914876090000181
TABLE 14
Fig. 14A shows an on-axis chromatic aberration curve of the optical imaging lens of embodiment 7, which represents the convergent focus deviation of light rays of different wavelengths after passing through the lens. Fig. 14B shows an astigmatism curve representing meridional field curvature and sagittal field curvature of the optical imaging lens of embodiment 7. Fig. 14C shows a distortion curve of the optical imaging lens of embodiment 7, which represents distortion magnitude values corresponding to different angles of view. As can be seen from fig. 14A to 14C, the optical imaging lens according to embodiment 7 can achieve good imaging quality.
Example 8
An optical imaging lens according to embodiment 8 of the present application is described below with reference to fig. 15 to 16C. Fig. 15 shows a schematic structural diagram of an optical imaging lens according to embodiment 8 of the present application.
As shown in fig. 15, the optical imaging lens, in order from an object side to an image side along an optical axis, comprises: a first lens E1, a second lens E2, a third lens E3, a stop STO, a fourth lens E4, a fifth lens E5, a sixth lens E6, a seventh lens E7, and a filter E8.
The first lens element E1 has negative power, and has a convex object-side surface S1 and a concave image-side surface S2. The second lens element E2 has positive power, and has a convex object-side surface S3 and a convex image-side surface S4. The third lens element E3 has positive power, and has a concave object-side surface S5 and a convex image-side surface S6. The fourth lens element E4 has positive power, and has a convex object-side surface S7 and a convex image-side surface S8. The fifth lens element E5 has negative power, and has a concave object-side surface S9 and a convex image-side surface S10. The sixth lens element E6 has positive power, and has a convex object-side surface S11 and a convex image-side surface S12. The seventh lens element E7 has positive power, and has a convex object-side surface S13 and a convex image-side surface S14. Filter E8 has an object side S15 and an image side S16. The optical imaging lens has an imaging surface S17, and light from the object passes through the respective surfaces S1 to S16 in order and is finally imaged on the imaging surface S17.
In embodiment 8, the value of the total effective focal length f of the optical imaging lens is 1.66mm, and the value of the maximum field angle FOV is 133.3 °.
Table 15 shows a basic parameter table of the optical imaging lens of embodiment 8, in which the units of the radius of curvature, the thickness, and the focal length are all millimeters (mm). Table 16 shows high-order term coefficients that can be used for each aspherical mirror surface in example 8, wherein each aspherical mirror surface type can be defined by formula (1) given in example 1 above.
Figure BDA0002914876090000191
Watch 15
Figure BDA0002914876090000192
Figure BDA0002914876090000201
TABLE 16
Fig. 16A shows an on-axis chromatic aberration curve of the optical imaging lens of embodiment 8, which represents the convergent focus deviation of light rays of different wavelengths after passing through the lens. Fig. 16B shows an astigmatism curve representing meridional field curvature and sagittal field curvature of the optical imaging lens of embodiment 8. Fig. 16C shows a distortion curve of the optical imaging lens of embodiment 8, which represents distortion magnitude values corresponding to different angles of view. As can be seen from fig. 16A to 16C, the optical imaging lens according to embodiment 8 can achieve good imaging quality.
In summary, examples 1 to 8 each satisfy the relationship shown in table 17.
Conditional expression (A) example 1 2 3 4 5 6 7 8
tan(FOV/3) 1.00 0.97 1.00 0.98 0.99 0.98 1.00 0.98
f/R9+f/R10 -2.10 -1.78 -2.15 -2.10 -2.10 -1.74 -2.11 -1.76
f/R5+f/R6 -1.76 -1.52 -1.80 -1.81 -1.77 -1.47 -1.77 -1.50
f/f7 0.02 0.27 0.06 -0.02 0.07 0.30 0.02 0.29
f2/f4 3.67 3.69 3.65 3.91 3.61 3.72 3.65 3.69
f6/f4 2.54 3.78 2.78 3.77 2.79 3.70 2.58 3.75
f1/T12 -2.76 -2.24 -2.83 -2.74 -2.83 -2.24 -2.76 -2.23
T56/T67 1.84 1.68 1.80 1.73 1.80 1.64 1.81 1.67
R1/R2 4.91 4.58 4.78 4.92 4.80 4.62 4.91 4.63
|R3+R4|/(R3-R4) 0.23 0.20 0.19 0.09 0.20 0.23 0.24 0.20
(R7+R8)/CT4 0.96 1.72 0.98 1.38 1.01 1.73 0.95 1.72
f/|f3| 0.02 0.06 0.02 0.06 0.01 0.05 0.02 0.05
f5/f45 -1.19 -0.82 -1.16 -1.10 -1.15 -0.84 -1.20 -0.82
DT11/DTs 3.21 4.17 3.25 3.47 3.30 4.24 3.19 4.22
DTs/ImgH 0.20 0.15 0.19 0.17 0.19 0.15 0.20 0.15
TABLE 17
The present application also provides an imaging device whose electron photosensitive element may be a photo-coupled device (CCD) or a complementary metal oxide semiconductor device (CMOS). The imaging device may be a stand-alone imaging device such as a digital camera or an imaging module integrated on a mobile electronic device such as a mobile phone. The imaging device is equipped with the optical imaging lens described above.
The above description is only a preferred embodiment of the application and is illustrative of the principles of the technology employed. It will be appreciated by a person skilled in the art that the scope of protection covered by the present application is not limited to the embodiments with a specific combination of the features described above, but also covers other embodiments with any combination of the features described above or their equivalents without departing from the scope of the present application. For example, the above features may be replaced with (but not limited to) features having similar functions disclosed in the present application.

Claims (27)

1. The optical imaging lens assembly, in order from an object side to an image side along an optical axis, comprises:
a first lens having a negative refractive power, an object-side surface of which is convex;
a second lens having a positive optical power;
a third lens;
a fourth lens having a positive optical power;
a fifth lens having a negative optical power;
a sixth lens having positive optical power; and
a seventh lens;
wherein the maximum field angle FOV of the optical imaging lens satisfies:
tan (FOV/3) is not less than 0.9; and
the total effective focal length f of the optical imaging lens, the curvature radius R9 of the object side surface of the fifth lens and the curvature radius R10 of the image side surface of the fifth lens satisfy:
-3.0<f/R9+f/R10<-1.5。
2. the optical imaging lens of claim 1, wherein the total effective focal length f of the optical imaging lens, the radius of curvature R5 of the object-side surface of the third lens, and the radius of curvature R6 of the image-side surface of the third lens satisfy:
-2.0<f/R5+f/R6≤-1.4。
3. the optical imaging lens of claim 1, wherein the total effective focal length f of the optical imaging lens and the effective focal length f7 of the seventh lens satisfy:
-0.1<f/f7<0.5。
4. the optical imaging lens of claim 1, wherein the effective focal length f2 of the second lens and the effective focal length f4 of the fourth lens satisfy:
3.5<f2/f4<4.0。
5. the optical imaging lens of claim 1, wherein the effective focal length f6 of the sixth lens and the effective focal length f4 of the fourth lens satisfy:
2.0<f6/f4<4.0。
6. the optical imaging lens of claim 1, wherein the effective focal length f1 of the first lens is separated from the first and second lenses on the optical axis by a distance T12 that satisfies:
-3.0<f1/T12<-2.0。
7. the optical imaging lens according to claim 1, wherein a separation distance T56 between the fifth lens and the sixth lens on the optical axis and a separation distance T67 between the sixth lens and the seventh lens on the optical axis satisfy:
1.5<T56/T67<2.0。
8. the optical imaging lens of claim 1, wherein the radius of curvature R1 of the object-side surface of the first lens and the radius of curvature R2 of the image-side surface of the first lens satisfy:
4.0<R1/R2<5.0。
9. the optical imaging lens of claim 1, wherein the radius of curvature R4 of the image side surface of the second lens and the radius of curvature R3 of the object side surface of the second lens satisfy:
0<|R3+R4|/(R3-R4)<0.3。
10. the optical imaging lens of claim 1, wherein a radius of curvature R7 of an object-side surface of the fourth lens, a radius of curvature R8 of an image-side surface of the fourth lens, and a center thickness CT4 of the fourth lens on the optical axis satisfy:
0.9<(R7+R8)/CT4<2.0。
11. the optical imaging lens of claim 1, wherein the total effective focal length f of the optical imaging lens and the effective focal length f3 of the third lens satisfy:
f/|f3|<0.1。
12. the optical imaging lens of claim 1, wherein an effective focal length f5 of the fifth lens and a combined focal length f45 of the fourth lens and the fifth lens satisfy:
-1.2≤f5/f45<-0.5。
13. the optical imaging lens according to any one of claims 1 to 12, characterized in that the optical imaging lens further comprises a diaphragm, and the maximum effective radius DT11 of the object side surface of the first lens and the maximum effective radius DTs of the diaphragm satisfy:
3.0<DT11/DTs<4.5。
14. the optical imaging lens according to any one of claims 1 to 12, characterized in that the optical imaging lens further comprises a diaphragm, and the maximum effective radius DTs of the diaphragm and the half ImgH of the diagonal length of the effective pixel area on the imaging surface of the optical imaging lens satisfy:
0<DTs/ImgH≤0.2。
15. the optical imaging lens assembly, in order from an object side to an image side along an optical axis, comprises:
a first lens having a negative refractive power, an object-side surface of which is convex;
a second lens having a positive optical power;
a third lens;
a fourth lens having a positive optical power;
a fifth lens having a negative optical power;
a sixth lens having positive optical power; and
a seventh lens;
wherein the maximum field angle FOV of the optical imaging lens satisfies:
tan (FOV/3) is not less than 0.9; and
an effective focal length f1 of the first lens is separated from the first and second lenses on the optical axis by a distance T12 that satisfies:
-3.0<f1/T12<-2.0。
16. the optical imaging lens of claim 15, wherein the total effective focal length f of the optical imaging lens, the radius of curvature R5 of the object-side surface of the third lens, and the radius of curvature R6 of the image-side surface of the third lens satisfy:
-2.0<f/R5+f/R6≤-1.4。
17. the optical imaging lens of claim 15, wherein the total effective focal length f of the optical imaging lens and the effective focal length f7 of the seventh lens satisfy:
-0.1<f/f7<0.5。
18. the optical imaging lens of claim 15, wherein the effective focal length f2 of the second lens and the effective focal length f4 of the fourth lens satisfy:
3.5<f2/f4<4.0。
19. the optical imaging lens of claim 15, wherein the effective focal length f6 of the sixth lens and the effective focal length f4 of the fourth lens satisfy:
2.0<f6/f4<4.0。
20. the optical imaging lens of claim 15, wherein a separation distance T56 between the fifth lens and the sixth lens on the optical axis and a separation distance T67 between the sixth lens and the seventh lens on the optical axis satisfy:
1.5<T56/T67<2.0。
21. the optical imaging lens of claim 15, wherein the radius of curvature R1 of the object-side surface of the first lens and the radius of curvature R2 of the image-side surface of the first lens satisfy:
4.0<R1/R2<5.0。
22. the optical imaging lens of claim 15, wherein the radius of curvature R4 of the image side surface of the second lens and the radius of curvature R3 of the object side surface of the second lens satisfy:
0<|R3+R4|/(R3-R4)<0.3。
23. the optical imaging lens of claim 15, wherein a radius of curvature R7 of an object-side surface of the fourth lens, a radius of curvature R8 of an image-side surface of the fourth lens, and a center thickness CT4 of the fourth lens on the optical axis satisfy:
0.9<(R7+R8)/CT4<2.0。
24. the optical imaging lens of claim 15, wherein the total effective focal length f of the optical imaging lens and the effective focal length f3 of the third lens satisfy:
f/|f3|<0.1。
25. the optical imaging lens of claim 15, wherein the effective focal length f5 of the fifth lens and the combined focal length f45 of the fourth lens and the fifth lens satisfy:
-1.2≤f5/f45<-0.5。
26. the optical imaging lens according to any one of claims 15 to 25, characterized in that the optical imaging lens further comprises a diaphragm, and the maximum effective radius DT11 of the object side surface of the first lens and the maximum effective radius DTs of the diaphragm satisfy:
3.0<DT11/DTs<4.5。
27. the optical imaging lens according to any one of claims 15 to 25, characterized in that the optical imaging lens further comprises a diaphragm, and the maximum effective radius DTs of the diaphragm and the half ImgH of the diagonal length of the effective pixel area on the imaging surface of the optical imaging lens satisfy:
0<DTs/ImgH≤0.2。
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN115128781A (en) * 2022-08-30 2022-09-30 江西联创电子有限公司 Optical lens

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN115128781A (en) * 2022-08-30 2022-09-30 江西联创电子有限公司 Optical lens

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