Optical lens

By designing an optical lens with an eight-lens structure and optimizing the lens surface shape and optical power, the imaging problem of automotive optical lenses under low-light conditions was solved, achieving high-pixel and high-resolution imaging effects.

CN117492181BActive Publication Date: 2025-12-12JIANGXI LIANCHUANG ELECTRONICS CO LTD
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Patent Information

Application Number
CN202311814890.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-12-27
Publication Date
2025-12-12
Estimated Expiration
2043-12-27

AI Technical Summary

Technical Problem

Existing automotive optical lenses perform poorly in low-light conditions, making it difficult to meet the high pixel and high resolution requirements of ADAS systems.

Method used

Design an eight-lens structure, including a combination of negative and positive optical powers, to control the light path, reduce aberrations, and improve image quality by optimizing the lens surface shape and optical power combination.

Benefits of technology

Under low-light conditions, the optical lens significantly improves image quality, has good aberration correction, and enhances image quality and resolution.

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Abstract

The application provides an optical lens, which comprises eight lenses in sequence along an optical axis from an object side to an imaging surface, and the eight lenses comprise: a first lens with negative optical power, wherein an image side of the first lens is a concave surface; a second lens with negative optical power, wherein an object side of the second lens is a concave surface; a third lens with positive optical power, wherein an object side of the third lens is a convex surface, and an image side of the third lens is a concave surface; a fourth lens with positive optical power, wherein both an object side and an image side of the fourth lens are convex surfaces; a fifth lens with positive optical power, wherein both an object side and an image side of the fifth lens are convex surfaces; a sixth lens with negative optical power, wherein both an object side and an image side of the sixth lens are concave surfaces; a seventh lens with positive optical power, wherein both an object side and an image side of the seventh lens are convex surfaces; and an eighth lens with negative optical power. The optical lens provided by the application improves the imaging quality of the optical lens, reduces aberration and improves the imaging quality of the optical lens through reasonable configuration of the surface types of the lenses and reasonable matching of the optical powers.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of imaging lenses, in particular to an optical lens. BACKGROUND

[0002] With the continuous improvement of people's requirements for driving experience, vehicle application type optical lenses are increasingly used in intelligent driving, and vehicle optical lenses are continuously improving in the automotive industry.

[0003] Advanced Driver Assistance System (ADAS) plays an important role in intelligent driving, which collects environmental information through various lenses combined with sensors to ensure the safety of drivers. In addition to the requirements of optical lenses for the existing ADAS system, such as light and thin shape, high pixel, high resolution and other characteristics, the optical lens is also required to be able to clearly image under low illumination conditions, so it is necessary to develop an optical lens with good imaging effect. SUMMARY

[0004] In view of the above problems, the purpose of the present application is to provide an optical lens with the advantages of excellent imaging quality.

[0005] To achieve the above purpose, the technical scheme adopted by the present application is:

[0006] An optical lens, a total of eight lenses, including in order along the optical axis from the object side to the imaging surface:

[0007] The first lens with negative focal power, the image side is concave;

[0008] The second lens with negative focal power, the object side is concave;

[0009] The third lens with positive focal power, the object side is convex, and the image side is concave;

[0010] The fourth lens with positive focal power, the object side and the image side are both convex;

[0011] The fifth lens with positive focal power, the object side and the image side are both convex;

[0012] The sixth lens with negative focal power, the object side and the image side are both concave;

[0013] The seventh lens with positive focal power, the object side and the image side are both convex;

[0014] The eighth lens with negative focal power;

[0015] The object side curvature radius R5 of the third lens and the image side curvature radius R6 of the third lens satisfy: -4.0<(R5+R6) / (R5-R6)<0.

[0016] Further preferably, a radius of curvature R3 of an object side surface of the second lens and a radius of curvature R4 of an image side surface of the second lens satisfy: -4.0 < (R3+R4) / (R3-R4) < 0.

[0017] Further preferably, a total track length TTL of the optical lens and a sum ∑CT of central thicknesses of the first lens to the eighth lens along the optical axis respectively satisfy: 0.55 < ∑CT / TTL < 0.65.

[0018] Further preferably, a sagittal height Sag15 of an object side surface of the eighth lens and a half diameter d15 of the object side surface satisfy: -0.3 < Sag15 / d15 < -0.05.

[0019] Further preferably, a sagittal height Sag16 of an image side surface of the eighth lens and a half diameter d16 of the image side surface satisfy: -0.25 < Sag16 / d16 < 0.

[0020] Further preferably, a maximum field of view FOV of the optical lens, a real image height IH corresponding to the maximum field of view, and a half diameter D1 of the object side surface of the first lens satisfy: 0.7 < D1 / IH / tan(FOV / 2) < 1.0.

[0021] Further preferably, a total track length TTL of the optical lens and an effective focal length f satisfy: TTL / f < 6.0.

[0022] Further preferably, a maximum field of view FOV of the optical lens and an effective focal length f satisfy: 10.0° / mm < FOV / f < 15.0° / mm.

[0023] Further preferably, a focal length f1 of the first lens and an effective focal length f of the optical lens satisfy: -3.5 < f1 / f < -1.2.

[0024] Further preferably, a focal length f8 of the eighth lens and an effective focal length f of the optical lens satisfy: -20.0 < f8 / f < -5.5.

[0025] The optical lens provided by the present application improves the imaging quality of the optical lens, reduces aberration, and improves the imaging quality of the optical lens by reasonable configuration of each lens surface and reasonable matching of optical power. BRIEF DESCRIPTION OF DRAWINGS

[0026] The above and / or additional aspects and advantages of the present application will become apparent and be readily understood from the following description, taken in conjunction with the following drawings, in which:

[0027] Figure 1 FIG. 1 is a structure schematic diagram of an optical lens according to an embodiment of the present application. FIG. 1 is a structure schematic diagram of an optical lens according to an embodiment of the present application.

[0028] Figure 2 Field curvature curve of the optical lens in the embodiment 1 of the present application.

[0029] Figure 3 F-Tanθ distortion curve of the optical lens in the embodiment 1 of the present application.

[0030] Figure 4 Relative illumination curve of the optical lens in the embodiment 1 of the present application.

[0031] Figure 5 MTF curve of the optical lens in the embodiment 1 of the present application.

[0032] Figure 6 Axial aberration curve of the optical lens in the embodiment 1 of the present application.

[0033] Figure 7 Vignetting curve of the optical lens in the embodiment 1 of the present application.

[0034] Figure 8 Structure diagram of the optical lens in the embodiment 2 of the present application.

[0035] Figure 9 Field curvature curve of the optical lens in the embodiment 2 of the present application.

[0036] Figure 10 F-Tanθ distortion curve of the optical lens in the embodiment 2 of the present application.

[0037] Figure 11 Relative illumination curve of the optical lens in the embodiment 2 of the present application.

[0038] Figure 12 MTF curve of the optical lens in the embodiment 2 of the present application.

[0039] Figure 13 Axial aberration curve of the optical lens in the embodiment 2 of the present application.

[0040] Figure 14 Vignetting curve of the optical lens in the embodiment 2 of the present application.

[0041] Figure 15 Structure diagram of the optical lens in the embodiment 3 of the present application.

[0042] Figure 16 Field curvature curve of the optical lens in the embodiment 3 of the present application.

[0043] Figure 17 F-Tanθ distortion curve of the optical lens in the embodiment 3 of the present application.

[0044] Figure 18A relative illumination curve for the optical lens of Example 3 of the present application.

[0045] Figure 19 An MTF curve for the optical lens of Example 3 of the present application.

[0046] Figure 20 An axial aberration curve for the optical lens of Example 3 of the present application.

[0047] Figure 21 A lateral chromatic aberration curve for the optical lens of Example 3 of the present application.

[0048] Figure 22 A structure diagram of an optical lens of Example 4 of the present application.

[0049] Figure 23 A field curvature curve for the optical lens of Example 4 of the present application.

[0050] Figure 24 An F-TanΘ distortion curve for the optical lens of Example 4 of the present application.

[0051] Figure 25 A relative illumination curve for the optical lens of Example 4 of the present application.

[0052] Figure 26 An MTF curve for the optical lens of Example 4 of the present application.

[0053] Figure 27 An axial aberration curve for the optical lens of Example 4 of the present application.

[0054] Figure 28 A lateral chromatic aberration curve for the optical lens of Example 4 of the present application.

[0055] The present application will be further described with reference to the following detailed description taken in connection with the accompanying drawings. DETAILED DESCRIPTION

[0056] For a better understanding of the present application, various aspects of the present application will be described in relation to the annexed drawings. It is to be understood that these details are merely illustrative of current embodiments of the application and are in no way limiting of the scope of the application. Throughout the specification, like drawing references will be used for like features. The expression "and / or" includes any and all combinations of one or more of the associated listed items.

[0057] It should be noted that the terms first, second, third, etc. are used herein only to distinguish one element from another and do not imply any limitation on the features. Thus, a first lens discussed below could also be termed a second lens or a third lens without departing from the teachings of the present application.

[0058] In the drawings, the thickness, size, and shape of the lenses have been exaggerated slightly for ease of explanation. Specifically, the shape of the spherical or aspherical surface shown in the drawings is shown by way of example. That is, the shape of the spherical or aspherical surface is not limited to the shape of the spherical or aspherical surface shown in the drawings. The drawings are merely examples and are not drawn to scale.

[0059] In this document, the paraxial region refers to a region near the optical axis. If the lens surface is convex and the position of the convex surface is not specified, it means that the lens surface is convex at least in the paraxial region. If the lens surface is concave and the position of the concave surface is not specified, it means that the lens surface is concave at least in the paraxial region. The surface of each lens closest to the object is referred to as the object side surface of the lens, and the surface of each lens closest to the imaging surface is referred to as the image side surface of the lens.

[0060] It should also be understood that the words "comprise", "comprising", "include", "including", and / or "contain", 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. In addition, when descriptive terms such as "at least one of' appear in a list of items, the modifier "at least one of' modifies each item in the list, and does not modify the list as a whole. Furthermore, when describing embodiments of the present application, the word "may" means "one or more embodiments of the present application". Also, the word "exemplary" is intended to mean an example or an illustration.

[0061] 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 should also be understood that the terms 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.

[0062] It should be noted that the embodiments in the present application and the features in the embodiments can be combined with each other without conflict. The present application will be described in detail below with reference to the drawings and in combination with embodiments.

[0063] The optical lens of the embodiment of the present application comprises, in order from the object side to the imaging surface along the optical axis: a first lens, a second lens, a third lens, a fourth lens, a fifth lens, a sixth lens, a seventh lens, an eighth lens, a filter, and a protective glass. A diaphragm is provided between the third lens and the fourth lens or between the fourth lens and the fifth lens.

[0064] In some embodiments, the first lens can have negative focal power, with a concave image side. The second lens can have negative focal power, with a concave object side. The third lens can have positive focal power, with a convex object side and a concave image side. The fourth lens can have positive focal power, with both the object side and the image side being convex. The fifth lens can have positive focal power, with both the object side and the image side being convex. The sixth lens can have negative focal power, with both the object side and the image side being concave. The seventh lens can have positive focal power, with both the object side and the image side being convex. The eighth lens can have negative focal power.

[0065] In some embodiments, the object side curvature radius R5 of the third lens and the image side curvature radius R6 of the third lens satisfy: -4.0 < (R5+R6) / (R5-R6) < 0. Satisfying the above range can control the smoothness of the light path, reduce the energy loss in the light transmission process, reduce the difficulty of off-axis aberration correction, and improve the imaging quality of the optical lens.

[0066] In some embodiments, the object side curvature radius R3 of the second lens and the image side curvature radius R4 of the second lens satisfy: -4.0 < (R3+R4) / (R3-R4) < 0. Satisfying the above range can control the smoothness of the light path, reduce the degree of deflection of the light passing through the lens, reduce the difficulty of off-axis aberration correction, and improve the imaging quality of the optical lens.

[0067] In some embodiments, the total length TTL of the optical lens and the sum ∑CT of the center thicknesses of the first lens to the eighth lens along the optical axis satisfy: 0.55 < ∑CT / TTL < 0.65. Satisfying the above range can compress the total length of the optical system, so that the structure of the system is more compact.

[0068] In some embodiments, the object side sag height Sag15 of the eighth lens and the object side half entrance pupil diameter d15 satisfy: -0.3 < Sag15 / d15 < -0.05. The image side sag height Sag16 of the eighth lens and the image side half entrance pupil diameter d16 satisfy: -0.25 < Sag16 / d16 < 0. Satisfying the above range can converge the edge field of view light, which helps to optimize the imaging performance in low light conditions and provide better image brightness and contrast.

[0069] In some embodiments, the maximum field of view angle FOV of the optical lens, the real image height IH corresponding to the maximum field of view angle, and the object side entrance pupil diameter D1 of the first lens satisfy: 0.7 < D1 / IH / tan(FOV / 2) < 1.0. Satisfying the above range can ensure the balance between the size of the optical lens and the field of view angle and the image plane.

[0070] In some embodiments, the optical total track length TTL of the optical lens and the effective focal length f satisfy: TTL / f < 6.0. Satisfying the above range can effectively limit the length of the lens.

[0071] In some embodiments, the effective focal length f of the optical lens, the maximum field of view FOV, and the real image height IH corresponding to the maximum field of view satisfy: 0.5 < (IH / 2) / (f*tan(FOV / 2)) < 0.7. Satisfying the above requirement indicates that the optical distortion of the optical lens is well controlled, and the resolving power of the optical lens is improved.

[0072] In some embodiments, the maximum field of view FOV of the optical lens and the aperture value FNO satisfy: 55° < FOV / FNO < 80°. Satisfying the above requirement is conducive to expanding the field of view of the optical lens and increasing the aperture of the optical lens, is conducive to the optical lens to obtain more scene information, meets the needs of large-range detection, and is conducive to improving the problem that the relative brightness of the edge field of view decreases rapidly, so as to also be conducive to obtaining more scene information.

[0073] In some embodiments, the effective focal length f of the optical lens and the real image height IH corresponding to the maximum field of view satisfy: 1.5 < IH / f < 1.9. Satisfying the above range can realize high pixels and improve the imaging quality of the optical lens.

[0074] In some embodiments, the effective focal length f of the optical lens and the optical back focal length BFL satisfy: BFL / f > 0.5. Satisfying the above range can reduce the interference of aberrations such as coma and coma, improve the resolution and clarity of imaging, and improve the stability of the optical lens.

[0075] In some embodiments, the maximum field of view FOV of the optical lens and the effective focal length f satisfy: 10.0° / mm < FOV / f < 15.0° / mm. Satisfying the above range makes the optical lens capable of shooting a farther target.

[0076] In some embodiments, the focal length f1 of the first lens and the effective focal length f of the optical lens satisfy: -3.5 < f1 / f < -1.2. Satisfying the above range can balance the working aperture of the first lens and the size of the image surface and the field of view.

[0077] In some embodiments, the focal length f2 of the second lens and the effective focal length f of the optical lens satisfy: -6.5 < f2 / f < -1.0. Satisfying the above range can make the second lens have appropriate negative focal length, increase the field of view, and improve the imaging quality of the optical lens.

[0078] In some embodiments, the focal length f3 of the third lens and the effective focal length f of the optical lens satisfy: 2.5 < f3 / f < 6.5. Satisfying the above range, the third lens can have appropriate positive refractive power, which is conducive to improving the light converging capability of the optical lens, and can balance various aberrations generated by the optical lens, thereby improving the imaging quality of the optical lens.

[0079] In some embodiments, the effective focal length f of the optical lens and the focal length f4 of the fourth lens satisfy: 1.0 < f4 / f < 2.5. Satisfying the above range, the fourth lens can have appropriate positive refractive power, which is conducive to improving the light converging capability of the optical lens, and can balance the aberrations of the optical lens, thereby improving the imaging quality of the optical lens.

[0080] In some embodiments, the effective focal length f of the optical lens and the focal length f5 of the fifth lens satisfy: 1.0 < f5 / f < 2.0. Satisfying the above range, the fifth lens can have appropriate positive refractive power, which is conducive to improving the light converging capability of the optical lens, and can balance the aberrations of the optical lens, thereby improving the imaging quality of the optical lens.

[0081] In some embodiments, the effective focal length f of the optical lens and the focal length f6 of the sixth lens satisfy: -1.5 < f6 / f < -0.5. Satisfying the above range, the sixth lens can have appropriate negative refractive power, which can make the light trend transition smoothly, thereby improving the imaging quality of the optical lens.

[0082] In some embodiments, the effective focal length f of the optical lens and the focal length f7 of the seventh lens satisfy: 1.8 < f7 / f < 2.0. Satisfying the above range, the seventh lens can have appropriate positive refractive power, which can effectively transfer more light beams to the imaging surface, and can balance the aberrations of the optical lens, thereby improving the imaging quality of the optical lens.

[0083] In some embodiments, the focal length f8 of the eighth lens and the effective focal length f of the optical lens satisfy: -20.0 < f8 / f < -5.5. Satisfying the above range, the light trend can be controlled to be smooth, the angle between the chief ray of the edge field of view and the optical axis can be reduced to reduce the spot diameter and improve the aberration; at the same time, the imaging area of the optical lens can be increased, and the imaging quality of the optical lens can be improved.

[0084] In some embodiments, the fifth lens, the sixth lens and the seventh lens can be bonded to form a bonded lens, which can effectively correct the chromatic aberration of the optical lens, reduce the eccentricity sensitivity of the optical lens, balance the aberration of the optical lens, improve the imaging quality of the optical lens, reduce the assembly sensitivity of the optical lens, and further reduce the processing difficulty of the optical lens, thereby improving the assembly yield of the optical lens.

[0085] In some embodiments, the sixth lens and the seventh lens can be bonded to form a bonded lens, which can effectively correct chromatic aberration of the optical lens, reduce sensitivity of the optical lens to decentration, balance aberration of the optical lens, and improve imaging quality of the optical lens; and can also reduce assembly sensitivity of the optical lens, thereby reducing process difficulty of the optical lens and improving assembly yield of the optical lens.

[0086] In order to make the system have better optical performance, a plurality of aspheric lenses are used in the lens, and each aspheric surface shape of the optical lens satisfies the following equation:

[0087]

[0088] Wherein, z is the distance of the curved surface to the vertex of the curved surface in the direction of the optical axis, h is the distance from the optical axis to the curved surface, c is the curvature of the vertex of the curved surface, K is the quadratic surface coefficient, A, B, C, D, E, F are the second-order, fourth-order, sixth-order, eighth-order, tenth-order, and twelfth-order curved surface coefficients, respectively.

[0089] The application will be further described in the following embodiments. In each embodiment, the thickness, the radius of curvature, and the material selection of each lens in the optical lens are different, and the specific differences can be referred to the parameter table of each embodiment. The following embodiments are only preferred embodiments of the application, but the embodiments of the application are not limited to the following embodiments only, and any change, replacement, combination or simplification made without departing from the innovative points of the application should be regarded as equivalent replacement mode, and all are included in the protection scope of the application.

[0090] Embodiment 1

[0091] Please refer to Figure 1 , which is a structure schematic diagram of the optical lens provided in the embodiment 1 of the application, and the optical lens comprises, along the optical axis from the object side to the imaging surface, a first lens L1, a second lens L2, a third lens L3, a diaphragm ST, a fourth lens L4, a fifth lens L5, a sixth lens L6, a seventh lens L7, an eighth lens L8, a filter G1, and a protective glass G2.

[0092] The first lens L1 has negative focal power, the object side surface S1 is a convex surface, and the image side surface S2 is a concave surface;

[0093] The second lens L2 has negative focal power, the object side surface S3 is a concave surface, and the image side surface S4 is a convex surface;

[0094] The third lens L3 has positive focal power, the object side surface S5 is a convex surface, and the image side surface S6 is a concave surface;

[0095] The diaphragm ST;

[0096] The fourth lens L4 has positive refractive power, and both the object side S7 and the image side S8 are convex surfaces;

[0097] The fifth lens L5 has positive refractive power, and both the object side S9 and the image side S10 are convex surfaces;

[0098] The sixth lens L6 has negative refractive power, and both the object side S10 and the image side S11 are concave surfaces;

[0099] The seventh lens L7 has positive refractive power, and both the object side S11 and the image side S12 are convex surfaces;

[0100] The fifth lens L5, the sixth lens L6 and the seventh lens L7 form a cemented lens group, that is, the cemented surface of the image side of the fifth lens L5 and the object side of the sixth lens L6 is S10, and the cemented surface of the image side of the sixth lens L6 and the object side of the seventh lens L7 is S11;

[0101] The eighth lens L8 has negative refractive power, and the object side S13 is a concave surface, and the image side S14 is a convex surface;

[0102] The object side S15 and the image side S16 of the filter G1 are both flat surfaces;

[0103] The object side S17 and the image side S18 of the protective glass G2 are both flat surfaces;

[0104] The imaging surface S19 is a flat surface.

[0105] The related parameters of the lenses in the optical lens in Embodiment 1 are shown in Table 1-1.

[0106] Table 1-1

[0107]

[0108] The surface type parameters of the aspherical lenses of the optical lens in Embodiment 1 are shown in Table 1-2.

[0109] Table 1-2

[0110]

[0111]

[0112] In this embodiment, the field curvature curve, the F-Tanθ distortion curve, the relative luminance curve, the MTF curve, the axial aberration curve and the transverse chromatic aberration curve of the optical lens are shown in FIGS. 1-1 to 1-6, respectively. Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 6 、 Figure 7

[0113] ​Figure 2 The field curvature curve of Example 1 is shown, which represents the curvature of light rays of different wavelengths on the meridional image surface and sagittal image surface, the horizontal axis represents the offset (unit: mm), and the vertical axis represents the half field angle (unit: °). As can be seen from the figure, the field curvature of the meridional image surface and the sagittal image surface is controlled within -0.06mm~0.03mm, which shows that the optical lens can well correct the field curvature.

[0114] Figure 3 The F-Tanθ distortion curve of Example 1 is shown, which represents the F-Tanθ distortion of light rays of different wavelengths at different image heights on the imaging surface, the horizontal axis represents the F-Tanθ distortion value (unit: %), and the vertical axis represents the half field angle (unit: °). As can be seen from the figure, the F-Tanθ distortion of the optical lens is controlled within -40%~0, the image compression in the edge angle region is relatively flat, and the clarity of the expanded image is effectively improved.

[0115] Figure 4 The relative luminance curve of Example 1 is shown, which represents the relative luminance value of different field angles on the imaging surface, the horizontal axis represents the half field angle (unit: °), and the vertical axis represents the relative luminance (unit: %). As can be seen from the figure, the relative luminance value of the optical lens is still greater than 80% at the maximum half field angle, which shows that the optical lens has good relative luminance.

[0116] Figure 5 The MTF (Modulation Transfer Function) curve of Example 1 is shown, which represents the imaging modulation degree of the lens at different spatial frequencies under each field of view, the horizontal axis represents the spatial frequency (unit: lp / mm), and the vertical axis represents the MTF value. As can be seen from the figure, the MTF value of the present embodiment is above 0.5 within the full field of view, and within the range of 0~160lp / mm, the MTF curve uniformly and smoothly decreases from the center to the edge of the field of view, and has good imaging quality and good detail resolution ability in low frequency and high frequency conditions.

[0117] Figure 6 The axial aberration curve of Example 1 is shown, which represents the aberration of each wavelength on the optical axis at the imaging surface, the horizontal axis represents the axial aberration value (unit: μm), and the vertical axis represents the normalized pupil radius. As can be seen from the figure, the offset of the axial aberration is controlled within -25μm~10μm, which shows that the optical lens can well correct the axial aberration.

[0118] Figure 7The vertical axis represents the value of the vertical chromatic aberration of each wavelength relative to the central wavelength (0.55 μm) (unit: μm), and the longitudinal axis represents the normalized field of view. As can be seen from the figure, the vertical chromatic aberration of the longest wavelength and the shortest wavelength is controlled within -1 μm-1.5 μm, which indicates that the optical lens can very well correct the chromatic aberration of the edge field of view and the secondary spectrum of the entire image surface.

[0119] Embodiment 2

[0120] Referring to Figure 8 , a structure schematic view of the optical lens provided in Embodiment 2 of the present application is shown, and the optical lens of the present embodiment is substantially the same as that of Embodiment 1, with the difference mainly being that the object side S1 of the first lens L1 is a concave surface, and the optical parameters such as the curvature radius, aspheric coefficient, thickness, etc. of each lens surface type are different.

[0121] The related parameters of each lens in the optical lens in Embodiment 2 are shown in Table 2-1.

[0122] Table 2-1

[0123]

[0124] The surface type parameters of the aspheric lens of the optical lens in Embodiment 2 are shown in Table 2-2.

[0125] Table 2-2

[0126]

[0127]

[0128] In the present embodiment, the field curvature curve, F-Tanθ distortion curve, relative luminance curve, MTF curve, axial aberration curve, and vertical chromatic aberration curve of the optical lens are shown in Figure 9 , Figure 10 , Figure 11 , Figure 12 , Figure 13 , Figure 14 respectively.

[0129] Figure 9 The field curvature curve of Embodiment 2 is shown, which indicates the bending degree of the light rays of different wavelengths on the meridional image surface and the sagittal image surface, the horizontal axis represents the offset (unit: mm), and the longitudinal axis represents the half field of view (unit: °). As can be seen from the figure, the field curvature of the meridional image surface and the sagittal image surface is controlled within -0.06-0.02 mm, which indicates that the optical lens can well correct the field curvature.

[0130] Figure 10F-Tanθ distortion curve of embodiment 2 is shown, which represents F-Tanθ distortion of light rays of different wavelengths at different image heights on the imaging plane, the horizontal axis represents F-Tanθ distortion value (unit: %), and the vertical axis represents half field angle (unit: °). As can be seen from the figure, the F-Tanθ distortion of the optical lens is controlled within -40%~0, the image compression in the edge angle region is relatively gentle, and the clarity of the expanded image is effectively improved.

[0131] Figure 11 The relative luminance curve of embodiment 2 is shown, which represents the relative luminance value of different field angles on the imaging plane, the horizontal axis represents the half field angle (unit: °), and the vertical axis represents the relative luminance (unit: %). As can be seen from the figure, the relative luminance value of the optical lens is still greater than 70% at the maximum half field angle, which indicates that the optical lens has good relative luminance.

[0132] Figure 12 The MTF (Modulation Transfer Function) curve of embodiment 2 is shown, which represents the imaging modulation degree of the lens at different spatial frequencies under each field of view, the horizontal axis represents the spatial frequency (unit: lp / mm), and the vertical axis represents the MTF value. As can be seen from the figure, the MTF value of the embodiment is above 0.4 within the full field of view, and in the range of 0~160 lp / mm, the MTF curve uniformly and smoothly decreases from the center to the edge field of view, and has good imaging quality and good detail resolution ability in low and high frequency cases.

[0133] Figure 13 The axial aberration curve of embodiment 2 is shown, which represents the aberration of each wavelength on the optical axis at the imaging plane, the horizontal axis represents the axial aberration value (unit: μm), and the vertical axis represents the normalized pupil radius. As can be seen from the figure, the offset of the axial aberration is controlled within -15 μm~10 μm, which indicates that the optical lens can better correct the axial aberration.

[0134] Figure 14 The axial aberration curve of embodiment 2 is shown, which represents the aberration of each wavelength on the optical axis at the imaging plane, the horizontal axis represents the axial aberration value (unit: μm), and the vertical axis represents the normalized pupil radius. As can be seen from the figure, the offset of the axial aberration is controlled within -15 μm~10 μm, which indicates that the optical lens can better correct the axial aberration.

[0135] Embodiment 3

[0136] Please refer to Figure 15Figure 3 shows a structural schematic diagram of an optical lens provided in Embodiment 3 of the present application. The optical lens of this embodiment is substantially the same as that of Embodiment 1, except that the object side S1 of the first lens L1 is a concave surface, and the optical parameters such as the curvature radius, asphericity coefficient, thickness, etc. of each lens surface are different.

[0137] The related parameters of each lens in the optical lens of Embodiment 3 are shown in Table 3-1.

[0138] Table 3-1

[0139]

[0140] The surface profile parameters of the aspheric lenses of the optical lens of Embodiment 3 are shown in Table 3-2.

[0141] Table 3-2

[0142]

[0143]

[0144] In this embodiment, the field curvature curve, F-Tanθ distortion curve, relative luminance curve, MTF curve, axial aberration curve, and transverse chromatic aberration curve of the optical lens are shown in Figures 3-1, 3-2, 3-3, 3-4, 3-5, and 3-6, respectively. Figure 16 Figure 17 Figure 18 Figure 19 Figure 20 Figure 21

[0145] Figure 16 Figure 3-1 shows the field curvature curve of Embodiment 3, which represents the curvature of the meridional image surface and sagittal image surface of light rays of different wavelengths, with the horizontal axis representing the offset (unit: mm) and the vertical axis representing the half field angle (unit: °). As can be seen from the figure, the field curvature of the meridional image surface and sagittal image surface is controlled within -0.03-0.02 mm, which indicates that the optical lens can well correct the field curvature.

[0146] Figure 17 Figure 3-2 shows the F-Tanθ distortion curve of Embodiment 3, which represents the F-Tanθ distortion of light rays of different wavelengths at different image heights on the imaging surface, with the horizontal axis representing the F-Tanθ distortion value (unit: %) and the vertical axis representing the half field angle (unit: °). As can be seen from the figure, the F-Tanθ distortion of the optical lens is controlled within -50%-0, the image compression in the edge angle region is relatively flat, and the clarity of the expanded image is effectively improved.

[0147] Figure 18 ​​​​​​The relative luminance curve of the embodiment 3 is shown, which represents the relative luminance values of different field angles on the imaging surface, the horizontal axis represents the half field angle (unit: °), and the vertical axis represents the relative luminance (unit: %). As can be seen from the figure, the relative luminance value of the optical lens is still greater than 80% at the maximum half field angle, which indicates that the optical lens has good relative luminance.

[0148] Figure 19 The MTF (modulation transfer function) curve of the embodiment 3 is shown, which represents the lens imaging modulation degree of different spatial frequencies under each field of view, the horizontal axis represents the spatial frequency (unit: lp / mm), and the vertical axis represents the MTF value. As can be seen from the figure, the MTF value of the embodiment is above 0.4 within the full field of view, and in the range of 0-160 lp / mm, the MTF curve uniformly and smoothly decreases from the center to the edge field of view, and has good imaging quality and good detail resolution ability in the case of low frequency and high frequency.

[0149] Figure 20 The axial aberration curve of the embodiment 3 is shown, which represents the axial aberration of each wavelength on the optical axis at the imaging surface, the horizontal axis represents the axial aberration value (unit: μm), and the vertical axis represents the normalized pupil radius. As can be seen from the figure, the offset of the axial aberration is controlled within-10 μm-5 μm, which indicates that the optical lens can better correct the axial aberration.

[0150] Figure 21 The axial aberration curve of the embodiment 3 is shown, which represents the axial aberration of each wavelength on the optical axis at the imaging surface, the horizontal axis represents the axial aberration value (unit: μm), and the vertical axis represents the normalized pupil radius. As can be seen from the figure, the offset of the axial aberration is controlled within-10 μm-5 μm, which indicates that the optical lens can better correct the axial aberration.

[0151] Embodiment 4

[0152] Please refer to Figure 22 , which is a structural schematic diagram of the optical lens provided in the embodiment 4 of the present application, which comprises, along the optical axis from the object side to the imaging surface, a first lens L1, a second lens L2, a third lens L3, a fourth lens L4, a stop ST, a fifth lens L5, a sixth lens L6, a seventh lens L7, an eighth lens L8, a filter G1 and a protective glass G2.

[0153] The first lens L1 has a negative focal power, the object side S1 is a convex surface, and the image side S2 is a concave surface;

[0154] The second lens L2 has a negative focal power, and the object side S3 and the image side S4 are both concave surfaces;

[0155] The third lens L3 has positive refractive power, the object side S5 is a convex surface, and the image side S6 is a concave surface;

[0156] The diaphragm ST;

[0157] The fourth lens L4 has positive refractive power, the object side S7 and the image side S8 are both convex surfaces;

[0158] The fifth lens L5 has positive refractive power, the object side S9 and the image side S10 are both convex surfaces;

[0159] The sixth lens L6 has negative refractive power, the object side S11 and the image side S12 are both concave surfaces;

[0160] The seventh lens L7 has positive refractive power, the object side S12 and the image side S13 are both convex surfaces;

[0161] The sixth lens L6 and the seventh lens L7 form a cemented lens group, and the cemented surface of the image side of the sixth lens L6 and the object side of the seventh lens L7 is S12;

[0162] The eighth lens L8 has negative refractive power, the object side S14 is a convex surface, and the image side S15 is a concave surface;

[0163] The object side S16 and the image side S17 of the filter G1 are both flat surfaces;

[0164] The object side S18 and the image side S19 of the protective glass G2 are both flat surfaces;

[0165] The imaging surface S20 is a flat surface.

[0166] The related parameters of the lenses in the optical lens in Embodiment 4 are shown in Table 4-1.

[0167] Table 4-1

[0168]

[0169]

[0170] The surface type parameters of the aspherical lens of the optical lens in Embodiment 4 are shown in Table 4-2.

[0171] Table 4-2

[0172] Figure 23 K A B C D E F S7 1.91E+01 0.00E+00 -3.48E-04 -1.02E-05 4.20E-07 -2.13E-08 4.15E-10 S8 3.48E-01 0.00E+00 -1.22E-04 5.51E-06 -7.64E-08 -5.06E-09 1.84E-10 S9 -3.00E+01 0.00E+00 6.06E-05 2.64E-06 -1.78E-07 3.31E-09 -2.88E-11 S10 5.44E-01 0.00E+00 -2.02E-04 2.86E-06 9.49E-08 -3.48E-09 3.42E-11 S14 -3.00E+01 0.00E+00 -3.80E-04 -2.43E-05 6.81E-07 -1.26E-08 1.06E-10 S15 -4.19E+00 0.00E+00 -8.82E-04 3.35E-06 7.12E-08 -1.63E-09 1.24E-11

[0173] In this embodiment, the field curvature curve, the F-Tanθ distortion curve, the relative luminance curve, the MTF curve, the axial aberration curve, and the off-axis chromatic aberration curve of the optical lens are respectively as shown in Figure 24 、 Figure 25 、 Figure 26 ,Figure 27 、 Figure 28 、 Figure 23 as shown in FIG. 4.

[0174] Figure 24 FIG. 4 shows the field curvature curve of the optical lens of the embodiment 4, which represents the curvature of the meridional image surface and sagittal image surface of light rays of different wavelengths, the horizontal axis represents the offset (unit: mm), and the vertical axis represents the half field angle (unit: °). As can be seen from the figure, the field curvature of the meridional image surface and the sagittal image surface is controlled within -0.15-0.06 mm, which indicates that the optical lens can well correct the field curvature.

[0175] Figure 25 FIG. 4 shows the F-Tanθ distortion curve of the optical lens of the embodiment 4, which represents the F-Tanθ distortion of light rays of different wavelengths at different image heights on the imaging surface, the horizontal axis represents the F-Tanθ distortion value (unit: %), and the vertical axis represents the half field angle (unit: °). As can be seen from the figure, the F-Tanθ distortion of the optical lens is controlled within -35%-0, the image compression in the edge angle region is relatively gentle, and the clarity of the expanded image is effectively improved.

[0176] Figure 26 FIG. 4 shows the relative illumination curve of the optical lens of the embodiment 4, which represents the relative illumination value of different field angles on the imaging surface, the horizontal axis represents the half field angle (unit: °), and the vertical axis represents the relative illumination (unit: %). As can be seen from the figure, the relative illumination value of the optical lens is still greater than 70% at the maximum half field angle, which indicates that the optical lens has good relative illumination.

[0177] Figure 27 FIG. 4 shows the MTF (modulation transfer function) curve of the optical lens of the embodiment 4, which represents the imaging modulation degree of the lens at different spatial frequencies under each field of view, the horizontal axis represents the spatial frequency (unit: lp / mm), and the vertical axis represents the MTF value. As can be seen from the figure, the MTF value of the embodiment is above 0.4 within the full field of view, and in the range of 0-160 lp / mm, the MTF curve uniformly and smoothly decreases from the center to the edge of the field of view, and has good imaging quality and good detail resolution ability in the case of low frequency and high frequency.

[0178] Figure 28 FIG. 4 shows the axial aberration curve of the optical lens of the embodiment 4, which represents the aberration of each wavelength on the optical axis at the imaging surface, the horizontal axis represents the axial aberration value (unit: μm), and the vertical axis represents the normalized pupil radius. As can be seen from the figure, the offset of the axial aberration is controlled within -30 μm-15 μm, which indicates that the optical lens can well correct the axial aberration.

[0179] ​The vertical color aberration curve of embodiment 4 is shown, which represents the color aberration of each wavelength at different image heights on the imaging plane relative to the central wavelength (0.55 μm), the horizontal axis represents the vertical color aberration value of each wavelength relative to the central wavelength (unit: μm), and the vertical axis represents the normalized field angle. As can be seen from the figure, the vertical color aberration of the longest wavelength and the shortest wavelength is controlled within ±3 μm, which indicates that the optical lens can very well correct the color aberration of the edge field and the secondary spectrum of the entire image plane.

[0180] Referring to Table 5, the optical characteristics of the above-mentioned embodiments are shown, including the effective focal length f, the total optical length TTL, the aperture value FNO, the real image height IH, the chief ray angle of incidence CRA, the object side light entrance diameter D1 of the first lens, the maximum field angle FOV of the optical lens, and the numerical values corresponding to each conditional expression in each embodiment.

[0181] Table 5

[0182]

[0183]

[0184] In summary of the above embodiments, the optical lens provided by the present application improves the imaging quality of the optical lens, reduces aberration, and improves the imaging quality of the optical lens by reasonable configuration of the surface shape of each lens and reasonable matching of the optical power.

[0185] In the description of the present specification, the description of the terms "one embodiment", "some embodiments", "an example", "a specific example", or "some examples" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. In the present specification, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.

[0186] The above-described embodiments only express several embodiments of the present application, which are described in a more specific and detailed manner, but should not be understood as limiting the scope of the patent of the present application. It should be noted that for ordinary skilled persons in the art, several modifications and improvements can be made without departing from the concept of the present application, which are all within the protection scope of the present application. Therefore, the protection scope of the patent of the present application should be subject to the appended claims.

Claims

1. An optical lens, eight pieces of lenses in total, characterized in that, In order from the object side to the imaging plane along the optical axis, the optical lens comprises in sequence: a first lens with negative refractive power, an image side surface of which is a concave surface; a second lens with negative refractive power, an object side surface of which is a concave surface; a third lens with positive refractive power, an object side surface of which is a convex surface and an image side surface of which is a concave surface; a fourth lens with positive refractive power, both an object side surface and an image side surface of which are convex surfaces; a fifth lens with positive refractive power, both an object side surface and an image side surface of which are convex surfaces; a sixth lens with negative refractive power, both an object side surface and an image side surface of which are concave surfaces; a seventh lens with positive refractive power, both an object side surface and an image side surface of which are convex surfaces; an eighth lens with negative refractive power; a radius of curvature R5 of the object side surface of the third lens and a radius of curvature R6 of the image side surface of the third lens satisfy: -4.0 < (R5+R6) / (R5-R6) < 0; a maximum field of view FOV of the optical lens and an effective focal length f of the optical lens satisfy: 10.0° / mm < FOV / f < 15.0° / mm.

2. The optical lens of claim 1, wherein, a radius of curvature R3 of the object side surface of the second lens and a radius of curvature R4 of the image side surface of the second lens satisfy: -4.0 < (R3+R4) / (R3-R4) < 0.

3. The optical lens of claim 1, wherein, a total length TTL of the optical lens and a sum ∑CT of central thicknesses of the first lens to the eighth lens along the optical axis satisfy: 0.55 < ∑CT / TTL < 0.

65.

4. The optical lens of claim 1, wherein, an object side surface sagittal height Sag15 of the eighth lens and an object side surface half entrance pupil diameter d15 satisfy: -0.3 < Sag15 / d15 < -0.

05.

5. The optical lens of claim 1, wherein, an image side surface sagittal height Sag16 of the eighth lens and an image side surface half entrance pupil diameter d16 satisfy: -0.25 < Sag16 / d16 < 0.

6. The optical lens of claim 1, wherein, a maximum field of view FOV of the optical lens, a real image height IH corresponding to the maximum field of view, and an object side surface entrance pupil diameter D1 of the first lens satisfy: 0.7 < D1 / IH / tan(FOV / 2) < 1.

0.

7. The optical lens of claim 1, wherein, a total length TTL of the optical lens and an effective focal length f satisfy: TTL / f < 6.

0.

8. The optical lens of claim 1, wherein, an effective focal length f of the optical lens and a real image height IH corresponding to a maximum field of view of the optical lens satisfy: 1.5 < IH / f < 1.

9.

9. The optical lens of claim 1, wherein, a focal length f1 of the first lens and an effective focal length f of the optical lens satisfy: -3.5 < f1 / f < -1.

2.

10. The optical lens of claim 1, wherein, a focal length f8 of the eighth lens and an effective focal length f of the optical lens satisfy: -20.0 < f8 / f < -5.5.

Citation Information

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