Optical lens
Through the combination of nine-piece lens structure and specific optical power, the imaging problem of motion camera lenses in low-light environments is solved, and optical lenses with miniaturization, large field angle, large aperture, and high imaging quality are realized, improving imaging quality and reducing production costs.
Patent Information
- Application Number
- CN202510615823.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-14
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2045-05-14
AI Technical Summary
The imaging quality of existing sports camera lenses has decreased and insufficient dynamic range in low-light environments, and the size and weight of the lens module have increased, and the increase in the field of view angle has led to difficulty in correcting system aberrations, deterioration in imaging quality, poor light transmission performance, and smaller imaging target surfaces.
The nine-piece lens structure is adopted, with a specific power and surface shape matching, including the first lens with negative power, the second lens with positive power, etc., and reasonably allocate the power and the total optical length, use a diaphragm and filter, and a glued lens combination, and use a glass-plastic hybrid lens material, and an aspherical lens design to correct aberration.
It has achieved miniaturization, large field of view, large image surface, large aperture, and high imaging quality, which has improved the imaging quality of the lens in a low-light environment, reduced production costs and processing difficulty, and improved imaging quality.
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Figure CN120122319B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of imaging lenses, and in particular to an optical lens. Background Art
[0002] In the field of modern motion image capture, high-performance portable optical systems are a core requirement. Currently, most action camera lenses on the market use large-aperture, ultra-wide-angle designs to accommodate high-speed motion scenes and extreme environments. However, these traditional optical structures generally suffer from reduced image quality in low-light environments and insufficient dynamic range. Furthermore, to improve image stabilization performance, complex optical compensation mechanisms are often employed, resulting in increased size and weight of the lens module, which not only limits the device's suitability for extreme motion scenes but also significantly increases production and maintenance costs. Furthermore, the increased field of view of the lens makes it difficult to correct for system aberrations and reduces image quality. The lens's relatively small aperture and poor light transmission make it incapable of adapting to darker environments. Furthermore, the existing lens's small imaging target area makes it difficult to meet market demand. Summary of the Invention
[0003] In view of the above problems, an object of the present invention is to provide an optical lens having the advantage of excellent imaging quality.
[0004] The technical solution adopted in the present invention is:
[0005] An optical lens, comprising nine lenses, including the following elements in order from the object side to the imaging surface along the optical axis:
[0006] a first lens having negative optical power and a concave image-side surface;
[0007] a second lens having positive optical power;
[0008] a third lens having positive optical power;
[0009] a fourth lens element having positive optical power;
[0010] a fifth lens element having negative optical power, whose object-side surface is convex and whose image-side surface is concave;
[0011] a sixth lens element having positive refractive power, whose object-side surface is convex and whose image-side surface is convex;
[0012] a seventh lens element having negative optical power;
[0013] an eighth lens having negative optical power;
[0014] The ninth lens has negative optical power.
[0015] Further preferably, the total optical length TTL of the optical lens and the effective focal length f of the optical lens satisfy: 4.3 < TTL / f < 7.2; the total optical length TTL of the optical lens and the true image height IH corresponding to the maximum field angle of the optical lens satisfy: 1.7 < TTL / IH < 2.9.
[0016] Further preferably, the maximum field angle FOV of the optical lens and the f-number Fno of the optical lens satisfy: 60° < FOV / Fno < 70°; the true image height IH corresponding to the maximum field angle of the optical lens and the entrance pupil diameter EPD of the optical lens satisfy: 5.4 < IH / EPD < 6.6.
[0017] Further preferably, the true image height IH corresponding to the maximum field angle of the optical lens and the effective focal length f of the optical lens satisfy: 2.1 < IH / f < 2.8; the effective focal length f of the optical lens and the back focal length BFL of the optical lens satisfy: 0.25 < BFL / f < 0.6.
[0018] Further preferably, the effective focal length f of the optical lens and the focal length f1 of the first lens satisfy: -2 < f1 / f < -1.4; the effective focal length f of the optical lens and the focal length f9 of the ninth lens satisfy: -50 < f9 / f < -5.3.
[0019] Further preferably, the effective focal length f of the optical lens and the focal length f3 of the third lens satisfy: 14 < f3 / f < 651; the curvature radius R5 of the object side of the third lens and the curvature radius R6 of the image side of the third lens satisfy: 0.36 < R5 / R6 < 1.1.
[0020] Further preferably, the effective focal length f of the optical lens and the focal length f5 of the fifth lens satisfy: -1.9 < f5 / f < -1.1; the curvature radius R9 of the object side of the fifth lens and the curvature radius R10 of the image side of the fifth lens satisfy: 0.1 < (R9 - R10) / (R9 + R10) < 0.6.
[0021] Further preferably, the effective focal length f of the optical lens and the focal length f6 of the sixth lens satisfy: 0.7 < f6 / f < 1; the curvature radius R11 of the object side of the sixth lens and the curvature radius R12 of the image side of the sixth lens satisfy: -1 < (R11 + R12) / (R11 - R12) < -0.3.
[0022] Further preferably, the effective focal length f of the optical lens and the focal length f7 of the seventh lens satisfy: -50 < f7 / f < -4.5; the curvature radius R13 of the object side surface of the seventh lens and the curvature radius R14 of the image side surface of the seventh lens satisfy: 0.01 < R13 / R14 < 5.96.
[0023] Further preferably, the combined focal length f1234 of the first lens, the second lens, the third lens and the fourth lens and the effective focal length f of the optical lens satisfy: 1.2 < f1234 / f < 2.8; the combined focal length f56789 of the fifth lens, the sixth lens, the seventh lens, the eighth lens and the ninth lens and the effective focal length f of the optical lens satisfy: 3.5 < f56789 / f < 32. <000XX0>The optical lens provided by the present invention adopts nine lenses with specific optical powers. Through specific surface shape combinations and reasonable optical power distributions, it can improve the imaging quality of the optical lens, reduce aberration, improve the imaging quality of the optical lens, and enable the lens to have one or more advantages such as miniaturization, large field angle, large image plane, large aperture, and high imaging quality. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The above and / or additional aspects and advantages of the present invention will become obvious and easy to understand from the description of the embodiments in conjunction with the following drawings, where:
[0026] Figure 1 is a schematic structural diagram of the optical lens in Embodiment 1 of the present invention.
[0027] Figure 2 is a MTF curve graph of the optical lens in Embodiment 1 of the present invention.
[0028] Figure 3 is a schematic structural diagram of the optical lens in Embodiment 2 of the present invention.
[0029] Figure 4 is a MTF curve graph of the optical lens in Embodiment 2 of the present invention.
[0030] Figure 5 is a schematic structural diagram of the optical lens in Embodiment 3 of the present invention.
[0031] Figure 6 is a MTF curve graph of the optical lens in Embodiment 3 of the present invention.
[0032] Figure 7 is a schematic structural diagram of the optical lens in Embodiment 4 of the present invention.
[0033] Figure 8 is a MTF curve graph of the optical lens in Embodiment 4 of the present invention.
[0034] Figure 9 Schematic diagram of the structure of the optical lens in Example 5 of the present invention.
[0035] Figure 10 This is the MTF curve of the optical lens in Example 5 of the present invention.
[0036] Figure 11 Schematic diagram of the structure of the optical lens in Example 6 of the present invention.
[0037] Figure 12 This is the MTF curve of the optical lens in Example 6 of the present invention.
[0038] Figure 13 Schematic diagram of the structure of the optical lens in Example 7 of the present invention.
[0039] Figure 14 This is the MTF curve of the optical lens in Example 7 of the present invention.
[0040] Figure 15 Schematic diagram of the structure of the optical lens in Example 8 of the present invention.
[0041] Figure 16 This is the MTF curve of the optical lens in Example 8 of the present invention.
[0042] Figure 17 Schematic diagram of the structure of the optical lens in Example 9 of the present invention.
[0043] Figure 18 This is an MTF curve diagram of the optical lens in Example 9 of the present invention.
[0044] Figure 19 Schematic diagram of the structure of the optical lens in Example 10 of the present invention.
[0045] Figure 20 This is an MTF curve diagram of the optical lens in Example 10 of the present invention.
[0046] Figure 21 Schematic diagram of the structure of the optical lens in Example 11 of the present invention.
[0047] Figure 22 This is the MTF curve of the optical lens in Example 11 of the present invention.
[0048] Figure 23 Schematic diagram of the structure of the optical lens in Example 12 of the present invention.
[0049] Figure 24 This is the MTF curve of the optical lens in Example 12 of the present invention.
[0050] Figure 25Schematic diagram of the structure of the optical lens in Example 13 of the present invention.
[0051] Figure 26 This is an MTF curve diagram of the optical lens in Example 13 of the present invention.
[0052] The following specific embodiments will further illustrate the present invention in conjunction with the above-mentioned drawings. DETAILED DESCRIPTION
[0053] 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 these detailed descriptions are merely descriptions of embodiments of the present application and are not intended to limit the scope of the present application in any way. Throughout the specification, the same reference numerals refer to the same elements. The expression "and / or" includes any and all combinations of one or more of the associated listed items.
[0054] It should be noted that in this specification, the terms "first," "second," "third," etc., are used solely to distinguish one feature from another and do not limit the features. Thus, the first lens discussed below could also be referred to as the second lens or the third lens without departing from the teachings of the present invention.
[0055] In the drawings, the thickness, size, and shape of the lenses are slightly exaggerated for ease of illustration. Specifically, the shapes of the spherical and aspherical surfaces shown in the drawings are provided by way of example. That is, the shapes of the spherical and aspherical surfaces are not limited to those shown in the drawings. The drawings are for illustration only and are not drawn strictly to scale.
[0056] In this article, the paraxial region refers to the area near the optical axis. If a lens surface is convex and the location of the convex surface is undefined, it means that the lens surface is convex at least in the paraxial region. If a lens surface is concave and the location of the concave surface is undefined, it means that the lens surface is concave at least in the paraxial region. The surface of each lens closest to the subject is called the object-side surface of the lens, and the surface of each lens closest to the imaging plane is called the image-side surface of the lens.
[0057] It should also be understood that the terms "comprises," "including," "having," "includes," and / or "comprising," when used in this specification, indicate the presence of the stated features, elements, and / or components, but do not preclude the presence or addition of one or more other features, elements, components, and / or combinations thereof. In addition, when expressions such as "at least one of..." appear after a list of listed features, they modify the entire list of features rather than modifying the individual elements in the list. In addition, when describing embodiments of the present application, "may" is used to mean "one or more embodiments of the present application." And, the term "exemplary" is intended to refer to an example or illustration.
[0058] Unless otherwise defined, all terms used herein (including technical and scientific terms) have the same meaning as commonly understood by those skilled in the art to which this application belongs. It should also be understood that terms (such as those defined in commonly used dictionaries) should be interpreted as having a meaning consistent with their meaning in the context of the relevant technology and will not be interpreted in an idealized or overly formal sense unless expressly defined as such herein.
[0059] It should be noted that, in the absence of conflict, the embodiments and features of the embodiments in this application can be combined with each other. The present application will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.
[0060] The optical lens provided in an embodiment of the present invention comprises nine lenses, which are arranged 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, and a ninth lens.
[0061] In some embodiments, the first lens may have negative optical power, its object-side surface may be concave or convex, and its image-side surface may be concave. The second lens may have positive optical power, its object-side surface may be concave or convex, and its image-side surface may be concave or convex. The third lens may have positive optical power, the third lens may be a meniscus lens, its object-side surface may be concave or convex, and its image-side surface may be concave or convex. The fourth lens may have positive optical power, its object-side surface may be concave or convex, and its image-side surface may be concave or convex. The fifth lens may have negative optical power, its object-side surface may be convex, and its image-side surface may be concave. The sixth lens may have positive optical power, its object-side surface may be convex, and its image-side surface may be convex. The seventh lens may have negative optical power, the seventh lens may be a meniscus lens, its object-side surface may be concave or convex, and its image-side surface may be concave or convex. The eighth lens element may have negative optical power, and its object-side surface may be concave or convex, and its image-side surface may be concave or convex. The ninth lens element may have negative optical power, and its object-side surface may be concave or convex, and its image-side surface may be concave or convex.
[0062] In some embodiments, the optical lens may further include an aperture, which may be located between the fourth and fifth lenses. It is understood that the aperture is used to limit the amount of light entering, thereby changing the brightness of the image. Furthermore, when the aperture is located between the fourth and fifth lenses, it can effectively distribute the functions of the first through ninth lenses. For example, the first, second, third, and fourth lenses can be used to receive a greater amount of light, while the fifth through ninth lenses can be used to correct aberrations, thus balancing the structure of the entire optical system. Furthermore, when the aperture is located between the fourth and fifth lenses, it facilitates the correction of aperture aberrations.
[0063] In some embodiments, the optical lens may further include a filter, which is disposed between the ninth lens and the imaging surface. The filter is used to filter out interfering light and prevent the interfering light from reaching the imaging surface of the optical lens and affecting normal imaging.
[0064] In some embodiments, the fifth lens and the sixth lens may be glued together to form a glued 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, and improve the imaging quality of the optical lens; it can also reduce the assembly sensitivity of the optical lens, thereby reducing the processing difficulty of the optical lens and improving the assembly yield of the optical lens.
[0065] In some embodiments, the total optical length TTL of the optical lens and the effective focal length f of the optical lens satisfy: 4.3 < TTL / f < 7.2. Meeting the above range can effectively limit the length of the lens and is beneficial to the miniaturization of the optical lens. More specifically, 4.48 < TTL / f < 7.01.
[0066] In some embodiments, the total optical length TTL of the optical lens and the true image height IH corresponding to the maximum field angle of the optical lens satisfy: 1.7 < TTL / IH < 2.9. Meeting the above range ensures that the lens has a larger image plane under the same total length of the lens, can match a larger-size imaging chip to achieve high-definition imaging, and better realizes the balance between the small total length and the large image plane of the lens. More specifically, 1.87 < TTL / IH < 2.73.
[0067] In some embodiments, the maximum field angle FOV of the optical lens and the aperture value Fno of the optical lens satisfy: 60° < FOV / Fno < 70°. Meeting the above range limits the optical lens to have a suitable field angle and aperture value, can collect light at a large angle and obtain good imaging quality. More specifically, 64.21° < FOV / Fno < 66.68°.
[0068] In some embodiments, the true image height IH corresponding to the maximum field angle of the optical lens and the entrance pupil diameter EPD of the optical lens satisfy: 5.4 < IH / EPD < 6.6. Meeting the above range can increase the width of the light beam entering the optical lens, improve the brightness at the image plane of the optical lens, and avoid the generation of vignetting. More specifically, 5.51 < IH / EPD < 6.53.
[0069] In some embodiments, the true image height IH corresponding to the maximum field angle of the optical lens and the effective focal length f of the optical lens satisfy: 2.1 < IH / f < 2.8. Meeting the above range controls the image height and focal length of the optical lens within a reasonable range, helps the optical lens to have the characteristic of a large image plane, and improves the imaging quality. More specifically, 2.28 < IH / f < 2.7.
[0070] In some embodiments, the effective focal length f of the optical lens and the back focal length BFL of the optical lens satisfy: 0.25 < BFL / f < 0.6. Meeting the above range defines that the optical lens has an appropriate back focus, facilitating the reasonable arrangement of the positions of each lens and reducing the processing and assembly difficulty. More specifically, 0.27 < BFL / f < 0.58.
[0071] In some embodiments, the effective focal length f of the optical lens and the focal length f1 of the first lens satisfy: -2 < f1 / f < -1.4; the radius of curvature R2 of the image side surface of the first lens and the effective focal length f of the optical lens satisfy: 0.8 < R2 / f < 1.19. Meeting the above range, by setting the first lens to have a negative refractive power and the image side surface to be concave, it is beneficial for the first lens to receive a larger angle of light and collect as much light as possible to enter the rear optical system, achieving a large field of view while increasing the light flux. More specifically, -1.9 < f1 / f < -1.51.
[0072] In some embodiments, the effective focal length f of the optical lens and the focal length f9 of the ninth lens satisfy: -50 < f9 / f < -5.3. Meeting the above range, setting the ninth lens to have a negative refractive power can effectively balance various aberrations generated by the front lens group, and at the same time is beneficial for increasing the divergence degree of light, increasing the area of light entering the imaging surface, achieving large target surface imaging of the lens, and improving the imaging quality of the optical lens. More specifically, -48.37 < f9 / f < -5.39.
[0073] In some embodiments, the effective focal length f of the optical lens and the focal length f3 of the third lens satisfy: 14 < f3 / f < 651; 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: 0.36 < R5 / R6 < 1.1. Meeting the above range can make the third lens have an appropriate positive optical power and have a meniscus shape, which is beneficial for improving the light converging ability of the optical lens, and at the same time can balance various aberrations generated by the optical lens, and improve the imaging quality of the optical lens. More specifically, 14.91 < f3 / f < 650.86.
[0074] In some embodiments, the effective focal length f of the optical lens and the focal length f5 of the fifth lens satisfy: -1.9 < f5 / f < -1.1; 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: 0.1 < (R9 - R10) / (R9 + R10) < 0.6; the radius of curvature R9 of the object side surface of the fifth lens and the effective focal length f of the optical lens satisfy: 1.05 < R9 / f < 1.46; the radius of curvature R10 of the image side surface of the fifth lens and the effective focal length f of the optical lens satisfy: 0.53 < R10 / f < 0.65. Satisfying the above ranges can make the fifth lens have an appropriate negative optical power and a suitable surface shape, which can balance various aberrations generated by the optical lens and improve the imaging quality of the optical lens. More specifically, -1.77 < f5 / f < -1.23; 0.27 < (R9 - R10) / (R9 + R10) < 0.41.
[0075] In some embodiments, the effective focal length f of the optical lens and the focal length f6 of the sixth lens satisfy: 0.7 < f6 / f < 1; the radius of curvature R11 of the object side surface of the sixth lens and the radius of curvature R12 of the image side surface of the sixth lens satisfy: -1 < (R11 + R12) / (R11 - R12) < -0.3; the radius of curvature R11 of the object side surface of the sixth lens and the effective focal length f of the optical lens satisfy: 0.53 < R11 / f < 0.65; the radius of curvature R12 of the image side surface of the sixth lens and the effective focal length f of the optical lens satisfy: -11.64 < R12 / f < -1.8. Satisfying the above ranges defines that the sixth lens has a positive optical power and a suitable surface shape, which is beneficial to light convergence. And the cooperation of the sixth lens with positive optical power and the fifth lens with negative optical power can adjust the optical path difference between different fields of view, improve the resolution, and is beneficial to making the light enter the rear lens smoothly, further reducing the field curvature and correcting the off-axis aberrations of the optical lens. More specifically, 0.79 < f6 / f < 0.97; -0.91 < (R11 + R12) / (R11 - R12) < -0.49.
[0076] In some embodiments, the effective focal length f of the optical lens and the focal length f7 of the seventh lens satisfy: -50 < f7 / f < -4.5; the radius of curvature R13 of the object side surface of the seventh lens and the radius of curvature R14 of the image side surface of the seventh lens satisfy: 0.01 < R13 / R14 < 5.96. Satisfying the above ranges, setting the seventh lens to have a negative refractive power and a meniscus surface shape can effectively balance various aberrations generated by the front lens group.
[0077] In some embodiments, the combined focal length f1234 of the first lens, the second lens, the third lens, and the fourth lens and the effective focal length f of the optical lens satisfy: 1.2 < f1234 / f < 2.8; the combined focal length f56789 of the fifth lens, the sixth lens, the seventh lens, the eighth lens, and the ninth lens and the effective focal length f of the optical lens satisfy: 3.5 < f56789 / f < 32. The combined focal length f1234 of the first lens, the second lens, the third lens, and the fourth lens and the combined focal length f56789 of the fifth lens, the sixth lens, the seventh lens, the eighth lens, and the ninth lens satisfy: 0.03 < f1234 / f56789 < 0.75. Satisfying the above ranges, by reasonably setting the focal lengths of the lens groups before and after the aperture, it is beneficial to balance various aberrations generated by the lens group before the aperture and improve the overall imaging quality. More specifically, 1.37 < f1234 / f < 2.68; 3.61 < f56789 / f < 31.77.
[0078] In some embodiments, the overall optical length TTL of the optical lens and the sum ∑CT of the central thicknesses of the first lens to the ninth lens along the optical axis satisfy: 0.47 < ∑CT / TTL < 0.62. Satisfying the above range can effectively compress the overall length of the optical lens and is beneficial to the structural design and production process of the optical lens.
[0079] In some embodiments, the sum ∑CT of the central thicknesses of the first lens to the ninth lens along the optical axis and the effective focal length f of the optical lens satisfy: 2.51 < ΣCT / f < 4.32. Satisfying the above range can effectively correct the field curvature and distortion of the optical lens and improve the imaging quality of the optical lens.
[0080] In some embodiments, the clear aperture d1 of the object side surface of the first lens, the true image height IH corresponding to the maximum field angle of the optical lens, and the maximum field angle FOV of the optical lens satisfy: 0.18 < d1 / (IH / 2) / tan(FOV / 2) < 0.26. Satisfying the above range can have a small front aperture while satisfying the optical lens with a large field angle and a large image plane.
[0081] In some embodiments, the focal length f2 of the second lens and the effective focal length f of the optical lens satisfy: 3 < f2 / f < 14. Satisfying the above range limits the second lens to have an appropriate positive optical power, has the effect of converging light rays, reduces the height of peripheral light rays, and is beneficial to reducing the aperture of the rear lens. More specifically, 3.17 < f2 / f < 13.28.
[0082] In some embodiments, the effective focal length f of the optical lens and the focal length f4 of the fourth lens satisfy: 2.2 < f4 / f < 4.7. Meeting the above range and setting the fourth lens to have a positive refractive power is beneficial to converging light while correcting the field curvature and distortion of the optical lens, and improving the imaging quality of the optical lens. More specifically, 2.32 < f4 / f < 4.54.
[0083] In some embodiments, the effective focal length f of the optical lens and the focal length f8 of the eighth lens satisfy: -16 < f8 / f < -2.4. Meeting the above range and setting the eighth lens to have a negative refractive power is beneficial to increasing the divergence degree of light, increasing the area of light entering the imaging surface, achieving large-format imaging of the lens, and improving the imaging quality of the optical lens. More specifically, -15.65 < f8 / f < -2.5.
[0084] In some embodiments, the optical lens satisfies the following conditional expressions: 3.5 mm < f < 5.2 mm; 1.4 mm < EPD < 2.2 mm; 22 mm < TTL < 28 mm; 2.3 < Fno < 2.6; 30° < CRA < 60°; 1.1 mm < BFL < 2.3 mm; 150° < FOV < 170°; 9.5 mm < IH < 12.5 mm. In the above conditional expressions, f represents the effective focal length of the optical lens, EPD represents the entrance pupil diameter of the optical lens, TTL represents the overall optical length of the optical lens, Fno represents the aperture value of the optical lens, CRA represents the chief ray angle of incidence of the optical lens, BFL represents the back focal length of the optical lens, FOV represents the maximum field angle of the optical lens, and IH represents the true image height corresponding to the maximum field angle of the optical lens. Meeting the above range, the optical lens has at least one or more advantages such as miniaturization, large image surface, large aperture, and large field angle. More specifically, 3.71 mm < f < 5.03 mm; 1.52 mm < EPD < 2.1 mm; 22.14 mm < TTL < 27.2 mm; 2.39 < Fno < 2.5; 30.71° < CRA < 57.57°; 1.22 mm < BFL < 2.18 mm; 159° < FOV < 161°; 9.98 mm < IH < 11.98 mm.
[0085] In some embodiments, the lens material in the optical lens provided by the present invention may be glass or plastic. When the material of the lens is plastic, the production cost can be effectively reduced. On the other hand, when the material of the lens is glass, the geometric chromatic aberration of the optical system can be effectively corrected by the low dispersion characteristic of the glass itself. The optical lens of the present invention adopts a nine-piece glass-plastic mixed lens structure, which can improve thermal stability. Specifically, the seventh lens adopts a plastic lens; the eighth lens and the ninth lens adopt plastic or glass lenses; the first lens, the second lens, the third lens, the fourth lens, the fifth lens, and the sixth lens are all glass lenses; the use of a glass-plastic mixed structure can effectively reduce costs, correct aberrations, reduce volume, and provide a more cost-effective optical lens product.
[0086] In some embodiments, the first, second, third, fourth, fifth, sixth, seventh, eighth, and ninth lenses may be spherical or aspherical lenses. Compared to spherical lenses, aspherical structures can effectively reduce the aberrations of the optical system, thereby reducing the number and size of lenses and achieving better miniaturization. More specifically, in the optical lens provided by the present invention, the first, second, seventh, eighth, and ninth lenses may be aspherical lenses, and the third, fourth, fifth, and sixth lenses may be spherical lenses.
[0087] In various embodiments of the present invention, when the lens is an aspheric lens, the shapes of the aspheric surfaces of the optical lens satisfy the following equations:
[0088] ;
[0089] Where z is the distance between the surface and the vertex in the direction of the optical axis, h is the distance from the optical axis to the surface, c is the curvature of the surface vertex, K is the quadratic surface coefficient, and B, C, D, E, and F are the fourth-order, sixth-order, eighth-order, tenth-order, and twelfth-order surface coefficients, respectively.
[0090] The present invention is further illustrated below with reference to several embodiments. In each embodiment, the thickness, radius of curvature, and material selection of each lens in the optical lens vary; for details, please refer to the parameter tables of each embodiment. The following embodiments are merely preferred embodiments of the present invention, but the present invention is not limited thereto. Any other changes, substitutions, combinations, or simplifications that do not deviate from the novelties of the present invention shall be considered equivalent replacements and are included within the scope of protection of the present invention.
[0091] Example 1
[0092] See also Figure 1, shown is a schematic structural diagram of the optical lens 100 provided in Example 1 of the present invention. The optical lens 100 includes, in order from the object side to the imaging surface along the optical axis: a first lens L1, a second lens L2, a third lens L3, a fourth lens L4, an aperture ST, a fifth lens L5, a sixth lens L6, a seventh lens L7, an eighth lens L8, a ninth lens L9 and a filter G1.
[0093] The first lens L1 has negative refractive power, its object-side surface S1 is concave, and its image-side surface S2 is concave;
[0094] The second lens L2 has positive refractive power, its object-side surface S3 is convex, and its image-side surface S4 is convex;
[0095] The third lens L3 has positive refractive power, its object-side surface S5 is concave, and its image-side surface S6 is convex;
[0096] The fourth lens L4 has positive refractive power, its object-side surface S7 is convex, and its image-side surface S8 is concave;
[0097] The fifth lens L5 has negative refractive power, its object-side surface S9 is convex, and its image-side surface is concave;
[0098] The sixth lens L6 has positive refractive power, its object-side surface is convex, and its image-side surface S11 is convex;
[0099] The fifth lens L5 and the sixth lens L6 form a cemented lens group with positive refractive power. That is, the cemented surface between the image-side surface of the fifth lens L5 and the object-side surface of the sixth lens L6 is S10.
[0100] The seventh lens L7 has negative refractive power, its object-side surface S12 is concave, and its image-side surface S13 is convex;
[0101] The eighth lens L8 has negative refractive power, its object-side surface S14 is concave, and its image-side surface S15 is concave;
[0102] The ninth lens L9 has negative refractive power, its object-side surface S16 is convex, and its image-side surface S17 is concave;
[0103] The object-side surface S18 and the image-side surface S19 of the filter G1 are both flat surfaces;
[0104] The imaging surface S20 is a plane.
[0105] The seventh lens L7 and the eighth lens L8 are plastic aspherical lenses; the third lens L3, the fourth lens L4, the fifth lens L5, and the sixth lens L6 are glass spherical lenses; and the first lens L1, the second lens L2, and the ninth lens L9 are glass aspherical lenses.
[0106] The relevant parameters of each lens in the optical lens 100 in Example 1 are shown in Table 1-1.
[0107] Table 1-1
[0108]
[0109] The surface parameters of the aspheric lens of the optical lens 100 in Example 1 are shown in Table 1-2.
[0110] Table 1-2
[0111]
[0112] In this embodiment, the MTF curve of the optical lens 100 is as follows: Figure 2 shown. Figure 2 The MTF (Modulation Transfer Function) curve for Example 1 is shown. It represents the degree of lens imaging modulation at different spatial frequencies across the field of view. The horizontal axis represents spatial frequency (lp / mm), and the vertical axis represents the MTF value. As can be seen from the graph, the MTF value of this example is consistently above 0.3 across the entire field of view. Within the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, demonstrating excellent imaging quality and detail resolution at both low and high frequencies.
[0113] Example 2
[0114] See also Figure 3 , shown is a schematic structural diagram of the optical lens 200 provided in Example 2 of the present invention. Compared with Example 1, the main differences between this embodiment and Example 1 are: the object-side surface S1 of the first lens L1 is a convex surface; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0115] The relevant parameters of each lens in the optical lens 200 in Example 2 are shown in Table 2-1.
[0116] Table 2-1
[0117]
[0118] The surface parameters of the aspheric lens of the optical lens 200 in Example 2 are shown in Table 2-2.
[0119] Table 2-2
[0120]
[0121] In this embodiment, the MTF curve of the optical lens 200 is as follows: Figure 4 As shown. Figure 4As can be seen, the MTF value of this embodiment is above 0.25 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, achieving good imaging quality and detail resolution in both low-frequency and high-frequency conditions.
[0122] Example 3
[0123] See also Figure 5 , shown is a schematic structural diagram of an optical lens 300 provided in Example 3 of the present invention. Compared with Example 1, this embodiment has the following main differences: the image-side surface S4 of the second lens L2 is concave; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0124] The relevant parameters of each lens in the optical lens 300 in Example 3 are shown in Table 3-1.
[0125] Table 3-1
[0126]
[0127] The surface parameters of the aspheric lens of the optical lens 300 in Example 3 are shown in Table 3-2.
[0128] Table 3-2
[0129]
[0130] In this embodiment, the MTF curve of the optical lens 300 is as follows: Figure 6 As shown. Figure 6 As can be seen, the MTF value of this embodiment is above 0.4 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, achieving good imaging quality and detail resolution in both low-frequency and high-frequency conditions.
[0131] Example 4
[0132] See also Figure 7 , shown is a schematic structural diagram of an optical lens 400 provided in Example 4 of the present invention. Compared with Example 1, this embodiment mainly differs in that: the object-side surface S3 of the second lens L2 is concave; the eighth lens L8 is a glass aspherical lens; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0133] The relevant parameters of each lens in the optical lens 400 in Example 4 are shown in Table 4-1.
[0134] Table 4-1
[0135]
[0136] The surface parameters of the aspheric lens of the optical lens 400 in Example 4 are shown in Table 4-2.
[0137] Table 4-2
[0138]
[0139] In this embodiment, the MTF curve of the optical lens 400 is as follows: Figure 8 As shown. Figure 8 As can be seen, the MTF value of this embodiment is above 0.4 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, achieving good imaging quality and detail resolution in both low-frequency and high-frequency conditions.
[0140] Example 5
[0141] See also Figure 9 , shown is a schematic structural diagram of an optical lens 500 provided in Example 5 of the present invention. Compared with Example 1, this embodiment has the following main differences: the image-side surface S4 of the second lens element L2 is a concave surface; the object-side surface S5 of the third lens element L3 is a convex surface; the image-side surface S6 of the third lens element L3 is a concave surface; the image-side surface S8 of the fourth lens element L4 is a convex surface; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0142] The relevant parameters of each lens in the optical lens 500 in Example 5 are shown in Table 5-1.
[0143] Table 5-1
[0144]
[0145] The surface parameters of the aspheric lens of the optical lens 500 in Example 5 are shown in Table 5-2.
[0146] Table 5-2
[0147]
[0148] In this embodiment, the MTF curve of the optical lens 500 is as follows: Figure 10 As shown. Figure 10 As can be seen, the MTF value of this embodiment is above 0.3 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, achieving good imaging quality and detail resolution in both low-frequency and high-frequency conditions.
[0149] Example 6
[0150] See also Figure 11, shown is a schematic structural diagram of an optical lens 600 provided in Example 6 of the present invention. Compared with Example 1, this embodiment has the following main differences: the object-side surface S1 of the first lens L1 is a convex surface; the image-side surface S8 of the fourth lens L4 is a convex surface; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0151] The relevant parameters of each lens in the optical lens 600 in Example 6 are shown in Table 6-1.
[0152] Table 6-1
[0153]
[0154] The surface parameters of the aspheric lens of the optical lens 600 in Example 6 are shown in Table 6-2.
[0155] Table 6-2
[0156]
[0157] In this embodiment, the MTF curve of the optical lens 600 is as follows: Figure 12 As shown. Figure 12 As can be seen, the MTF value of this embodiment is above 0.3 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, achieving good imaging quality and detail resolution in both low-frequency and high-frequency conditions.
[0158] Example 7
[0159] See also Figure 13 , shown is a schematic structural diagram of an optical lens 700 provided in Example 7 of the present invention. Compared with Example 1, this embodiment has the following main differences: the object-side surface S7 of the fourth lens L4 is concave; the image-side surface S8 of the fourth lens L4 is convex; the image-side surface S15 of the eighth lens L8 is convex; the eighth lens L8 is a glass aspherical lens; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0160] The relevant parameters of each lens in the optical lens 700 in Example 7 are shown in Table 7-1.
[0161] Table 7-1
[0162]
[0163] The surface parameters of the aspheric lens of the optical lens 700 in Example 7 are shown in Table 7-2.
[0164] Table 7-2
[0165]
[0166] In this embodiment, the MTF curve of the optical lens 700 is as follows: Figure 14 As shown. Figure 14 As can be seen, the MTF value of this embodiment is above 0.38 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, demonstrating good imaging quality and detail resolution in both low-frequency and high-frequency conditions.
[0167] Example 8
[0168] See also Figure 15 , shown is a schematic structural diagram of an optical lens 800 provided in Example 8 of the present invention. Compared with Example 1, this embodiment mainly differs from Example 1 in that: the object-side surface S1 of the first lens L1 is a convex surface; the object-side surface S12 of the seventh lens L7 is a convex surface; and the image-side surface S13 of the seventh lens L7 is a concave surface; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0169] The relevant parameters of each lens in the optical lens 800 in Example 8 are shown in Table 8-1.
[0170] Table 8-1
[0171]
[0172] The surface parameters of the aspheric lens of the optical lens 800 in Example 8 are shown in Table 8-2.
[0173] Table 8-2
[0174]
[0175] In this embodiment, the MTF curve of the optical lens 800 is as follows: Figure 16 As shown. Figure 16 As can be seen, the MTF value of this embodiment is above 0.3 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, achieving good imaging quality and detail resolution in both low-frequency and high-frequency conditions.
[0176] Example 9
[0177] See also Figure 17 , shown is a schematic structural diagram of an optical lens 900 provided in Example 9 of the present invention. Compared with Example 1, this embodiment mainly differs in that: the object-side surface S14 of the eighth lens L8 is a convex surface; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0178] The relevant parameters of each lens in the optical lens 900 in Example 9 are shown in Table 9-1.
[0179] Table 9-1
[0180]
[0181] The surface parameters of the aspheric lens of the optical lens 900 in Example 9 are shown in Table 9-2.
[0182] Table 9-2
[0183]
[0184] In this embodiment, the MTF curve of the optical lens 900 is as follows: Figure 18 As shown. Figure 18 As can be seen, the MTF value of this embodiment is above 0.3 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, achieving good imaging quality and detail resolution in both low-frequency and high-frequency conditions.
[0185] Example 10
[0186] See also Figure 19 , shown is a schematic structural diagram of an optical lens 1000 provided in Example 10 of the present invention. Compared with Example 1, this embodiment mainly differs from Example 1 in that: the object-side surface S1 of the first lens L1 is a convex surface; the image-side surface S15 of the eighth lens L8 is a convex surface; the eighth lens L8 is a glass aspherical lens; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0187] The relevant parameters of each lens in the optical lens 1000 in Example 10 are shown in Table 10-1.
[0188] Table 10-1
[0189]
[0190] The surface parameters of the aspheric lens of the optical lens 1000 in Example 10 are shown in Table 10-2.
[0191] Table 10-2
[0192]
[0193] In this embodiment, the MTF curve of the optical lens 1000 is as follows: Figure 20 As shown. Figure 20As can be seen, the MTF value of this embodiment is above 0.45 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, demonstrating good imaging quality and detail resolution at both low and high frequencies.
[0194] Example 11
[0195] See also Figure 21 , shown is a schematic structural diagram of an optical lens 1100 provided in Example 11 of the present invention. Compared with Example 1, this embodiment mainly differs in that: the object-side surface S16 of the ninth lens L9 is concave; the image-side surface S17 of the ninth lens L9 is convex; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0196] The relevant parameters of each lens in the optical lens 1100 in Example 11 are shown in Table 11-1.
[0197] Table 11-1
[0198]
[0199] The surface parameters of the aspheric lens of the optical lens 1100 in Example 11 are shown in Table 11-2.
[0200] Table 11-2
[0201]
[0202] In this embodiment, the MTF curve of the optical lens 1100 is as follows: Figure 22 As shown. Figure 22 As can be seen, the MTF value of this embodiment is above 0.3 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, achieving good imaging quality and detail resolution in both low-frequency and high-frequency conditions.
[0203] Example 12
[0204] See also Figure 23 , shown is a schematic structural diagram of an optical lens 1200 provided in Example 12 of the present invention. Compared with Example 1, this embodiment mainly differs in that: the object-side surface S16 of the ninth lens element L9 is concave; the eighth lens element L8 is a glass aspherical lens; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0205] The relevant parameters of each lens in the optical lens 1200 in Example 12 are shown in Table 12-1.
[0206] Table 12-1
[0207]
[0208] The surface parameters of the aspheric lens of the optical lens 1200 in Example 12 are shown in Table 12-2.
[0209] Table 12-2
[0210]
[0211] In this embodiment, the MTF curve of the optical lens 1200 is as follows: Figure 24 As shown. Figure 24 As can be seen, the MTF value of this embodiment is above 0.3 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, achieving good imaging quality and detail resolution in both low-frequency and high-frequency conditions.
[0212] Example 13
[0213] See also Figure 25 , shown is a schematic structural diagram of an optical lens 1300 provided in Example 13 of the present invention. Compared with Example 1, this embodiment has the following main differences: the image-side surface S8 of the fourth lens L4 is convex; the ninth lens L9 is a plastic aspheric lens; and the optical parameters such as the curvature radius of each lens surface and the lens thickness are different.
[0214] The relevant parameters of each lens in the optical lens 1300 in Example 13 are shown in Table 13-1.
[0215] Table 13-1
[0216]
[0217] The surface parameters of the aspheric lens of the optical lens 1300 in Example 13 are shown in Table 13-2.
[0218] Table 13-2
[0219]
[0220] In this embodiment, the MTF curve of the optical lens 1300 is as follows: Figure 26 As shown. Figure 26 As can be seen, the MTF value of this embodiment is above 0.48 throughout the entire field of view. In the range of 0 to 160 lp / mm, the MTF curve decreases evenly and smoothly from the center to the edge of the field of view, demonstrating good imaging quality and detail resolution at both low and high frequencies.
[0221] Please refer to Table 14-1 and Table 14-2, which show the optical characteristics corresponding to the above embodiments, including the effective focal length f, total optical length TTL, aperture value Fno, real image height IH corresponding to the maximum field of view angle, maximum field of view angle FOV, and the numerical value corresponding to each conditional expression in each embodiment.
[0222] Table 14-1
[0223]
[0224] Table 14-2
[0225]
[0226] In summary, the optical lens provided by the present invention uses nine lenses with specific optical powers. Through the combination of specific surface shapes and reasonable optical power distribution, it is possible to improve the imaging quality of the optical lens, reduce aberrations, and improve the imaging quality of the optical lens, so that the lens has one or more advantages such as miniaturization, a large field of view, a large image surface, a large aperture, and high imaging quality.
[0227] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "examples," "specific examples," or "some examples" means that a specific feature, structure, material, or characteristic described in conjunction with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, schematic representations of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0228] The above-described embodiments merely illustrate several implementations of the present invention, and while their descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art would be able to make numerous variations and improvements without departing from the spirit of the present invention, all of which fall within the scope of protection of the present invention. Therefore, the scope of protection of the present invention shall be determined by the appended claims.
Claims
1. An optical lens, comprising nine lenses, characterized in that: It sequentially includes from the object side to the imaging surface along the optical axis: A first lens with a negative optical power, whose image side is concave; A second lens with a positive optical power; A third lens with a positive optical power; A fourth lens with a positive optical power; A fifth lens with a negative optical power, whose object side is convex and whose image side is concave; A sixth lens with a positive optical power, whose object side is convex and whose image side is convex; A seventh lens with a negative optical power; An eighth lens with a negative optical power; A ninth lens with a negative optical power; The maximum field angle FOV of the optical lens and the aperture value Fno of the optical lens satisfy: 60° < FOV / Fno < 70°.
2. The optical lens according to claim 1, wherein: The overall optical length TTL of the optical lens and the effective focal length f of the optical lens satisfy: 4.3 < TTL / f < 7.2; The overall optical length TTL of the optical lens and the true image height IH corresponding to the maximum field angle of the optical lens satisfy: 1.7 < TTL / IH < 2.
9.
3. The optical lens according to claim 1, wherein: The combined focal length f1234 of the first lens, the second lens, the third lens and the fourth lens and the combined focal length f56789 of the fifth lens, the sixth lens, the seventh lens, the eighth lens and the ninth lens satisfy: 0.03 < f1234 / f56789 < 0.75; The true image height IH corresponding to the maximum field angle of the optical lens and the entrance pupil diameter EPD of the optical lens satisfy: 5.4 < IH / EPD < 6.
6.
4. The optical lens according to claim 1, wherein: The true image height IH corresponding to the maximum field angle of the optical lens and the effective focal length f of the optical lens satisfy: 2.1 < IH / f < 2.8; The effective focal length f of the optical lens and the back focal length BFL of the optical lens satisfy: 0.25 < BFL / f < 0.
6.
5. The optical lens according to claim 1, wherein: The effective focal length f of the optical lens and the focal length f1 of the first lens satisfy: -2 < f1 / f < -1.4; The effective focal length f of the optical lens and the focal length f9 of the ninth lens satisfy: -50 < f9 / f < -5.
3.
6. The optical lens according to claim 1, wherein: The effective focal length f of the optical lens and the focal length f3 of the third lens satisfy: 14 < f3 / f < 651; The curvature radius R5 of the object side of the third lens and the curvature radius R6 of the image side of the third lens satisfy: 0.36 < R5 / R6 < 1.
1.
7. The optical lens according to claim 1, wherein: The effective focal length f of the optical lens and the focal length f5 of the fifth lens satisfy: -1.9 < f5 / f < -1.1; The curvature radius R9 of the object side of the fifth lens and the curvature radius R10 of the image side of the fifth lens satisfy: 0.1 < (R9 - R10) / (R9 + R10) < 0.
6.
8. The optical lens according to claim 1, wherein: The effective focal length f of the optical lens and the focal length f6 of the sixth lens satisfy: 0.7 < f6 / f < 1; The curvature radius R11 of the object side of the sixth lens and the curvature radius R12 of the image side of the sixth lens satisfy: -1 < (R11 + R12) / (R11 - R12) < -0.
3.
9. The optical lens according to claim 1, wherein: The effective focal length f of the optical lens and the focal length f7 of the seventh lens satisfy: -50 < f7 / f < -4.5; the object-side curvature radius R13 of the seventh lens and the image-side curvature radius R14 of the seventh lens satisfy: 0.01 < R13 / R14 < 5.
96.
10. The optical lens according to claim 1, wherein: The combined focal length f1234 of the first lens, the second lens, the third lens, and the fourth lens and the effective focal length f of the optical lens satisfy: 1.2 < f1234 / f < 2.8; the combined focal length f56789 of the fifth lens, the sixth lens, the seventh lens, the eighth lens, and the ninth lens and the effective focal length f of the optical lens satisfy: 3.5 < f56789 / f < 32.
Citation Information
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