A large aperture miniaturized wide-angle lens
By designing a combination of negative and positive diopter lenses and aspherical lenses, the problem that existing lenses cannot be used on long flange distance cinema cameras was solved, achieving wide-angle, large aperture and fast focusing effects.
Patent Information
- Application Number
- CN202411975784.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2044-12-31
AI Technical Summary
Existing lenses cannot be used on cinema cameras with long flange distances, and most lenses have short flange distances, making it impossible to achieve wide-angle and large-aperture effects.
A miniaturized wide-angle lens with a large aperture was designed, comprising a first lens group with negative refractive power, a second lens group with positive refractive power, and a third lens group with positive refractive power. Combined with an aspherical lens and a focusing lens, it meets specific focal length ratio and aperture position conditions to achieve miniaturization and wide-angle effect.
It achieves wide-angle, large-aperture, and fast focusing effects on cinema cameras with long flange distances, and possesses excellent optical performance.
Smart Images

Figure CN119535748B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of photographic lenses, and in particular relates to a large-aperture miniaturized wide-angle lens. Background Art
[0002] In recent years, the demand for video capture has increased year by year, and interchangeable-lens micro-single cameras and digital video cameras have become widely used. However, the applicant has discovered that most lenses currently on the market are full-frame wide-angle lenses with an F-number of F / 2 or greater, and most of them are short-flange focal length lenses for micro-single cameras. These short-flange focal length lenses cannot be adapted for use with long-flange focal length movie cameras. Summary of the Invention
[0003] In order to solve the above problems existing in the prior art, the present invention provides a large aperture miniaturized wide-angle lens.
[0004] In order to solve the above technical problems, the present invention adopts the following technical solutions:
[0005] The present invention provides a large aperture miniaturized wide-angle lens, which comprises, from the object side to the image side, a first lens group with negative refractive power, a second lens group with positive refractive power, and a third lens group with positive refractive power; wherein,
[0006] The first lens group includes a first sub-lens group with negative refractive power and a second sub-lens group with positive refractive power;
[0007] An aperture is provided between the second lens group and the third lens group, and the second lens group includes a focusing lens, which is used for focusing at long and short distances;
[0008] The first lens group further includes at least one aspheric lens, the focal length of the aspheric lens is EFL_ASP, and satisfies the following conditional expression:
[0009] -6≤EFL_ASP / EFL≤-2;
[0010] 1.5≤EFL_ASP / EFL_G11≤4.5;
[0011] Where EFL is the focal length of the entire optical system at infinity; EFL_G11 is the focal length of the first sub-lens group in the first lens group.
[0012] Furthermore, the position of the aperture satisfies the following conditional formula:
[0013] 1.6≤L / S_IL≤1.9;
[0014] Where S_IL is the distance from the aperture to the imaging plane; L is the distance from the object side of the first rod lens of the first lens group to the imaging plane.
[0015] Furthermore, the focal lengths of the first lens group, the second lens group, and the third lens group satisfy the following conditional formula:
[0016] 1≤|EFL_G3 / EFL_G1|≤1.8;
[0017] 0.8≤|EFL_G3 / EFL_G2|≤1.4;
[0018] Among them, EFL_G1 is the focal length of the first lens group; EFL_G2 is the focal length of the second lens group; EFL_G3 is the focal length of the third lens group.
[0019] Furthermore, the focal length of the focusing lens in the second lens group satisfies the following conditional formula:
[0020] -8.5≤EFL_LF / EFL≤-3.8;
[0021] Where EFL_LF is the focal length of the focusing lens in the second lens group, and EFL is the focal length of the entire optical system at infinity.
[0022] Furthermore, the focal lengths of the first sub-lens group and the second sub-lens group in the first lens group satisfy the following conditional formula:
[0023] -12≤EFL_G12 / EFL_G11≤-6;
[0024] Where EFL_G11 is the focal length of the first sub-lens group; EFL_G12 is the focal length of the second sub-lens group.
[0025] Furthermore, the third lens group includes at least one aspherical lens.
[0026] Furthermore, the first lens group is composed of lenses L11 to L16 arranged in sequence from the object side to the image side, wherein the lenses L11 and L12 constitute a first sub-lens group, the lenses L13 to L16 constitute a second sub-lens group, the second lens group is composed of a focusing lens LF, a lens L22, and a lens L23 arranged in sequence from the object side to the image side, and the third lens group is composed of lenses L31 to L37 arranged in sequence from the object side to the image side;
[0027] Moreover, the ratio of the focal length of the aspheric lens EFL_ASP in the first lens group to the focal length EFL of the entire optical system at infinity is -3.25, and the ratio to the focal length of the first sub-lens group EFL_G11 is 2.38; the ratio of the distance from the object side of the lens L11 to the image side of the lens L23 to the distance from the aperture to the image side of the lens L37 is 1.78; the ratio of the focal length of the third lens group to the first lens group and the second lens group is 1.28 and 1.18 respectively; the ratio of the focal length of the focusing lens LF in the second lens group to the focal length of the entire optical system at infinity is -7.72; the ratio of the focal length of the second sub-lens group to the first sub-lens group is -8.94.
[0028] Alternatively, the first lens group consists of lenses L11 to L17 arranged in sequence from the object side to the image side, wherein the lenses L11 to L3 constitute a first sub-lens group, and the lenses L14 to L17 constitute a second sub-lens group; the second lens group consists of lens L21, focusing lens LF, and lens L23 arranged in sequence from the object side to the image side; and the third lens group consists of lenses L31 to L38 arranged in sequence from the object side to the image side;
[0029] Moreover, the focal length of the aspheric lens in the first lens group is EFL_ASP, which has a ratio of -5.08 to the focal length EFL of the entire optical system at infinity, and a ratio of 4.08 to the focal length EFL_G11 of the first sub-lens group; the ratio of the distance from the object side of the lens L11 to the image side of the lens L23 to the distance from the aperture to the image side of the lens L38 is 1.73; the ratios of the focal lengths of the third lens group to the first lens group and the second lens group are 1.69 and 1.26 respectively; the ratio of the focal length of the focusing lens LF in the second lens group to the focal length of the entire optical system at infinity is -6.6; and the ratio of the focal lengths of the second sub-lens group to the first sub-lens group is -11.78.
[0030] Alternatively, the first lens group consists of lenses L11 to L16 arranged in sequence from the object side to the image side, wherein the lenses L11 to L13 constitute a first sub-lens group, and the lenses L14 to L16 constitute a second sub-lens group; the second lens group consists of a focus lens LF, a lens L22, and a lens L23 arranged in sequence from the object side to the image side; and the third lens group consists of lenses L31 to L38 arranged in sequence from the object side to the image side;
[0031] Moreover, the focal length of the aspheric lens in the first lens group is EFL_ASP, which has a ratio of -4.42 to the focal length EFL of the entire optical system at infinity, and a ratio of 3.49 to the focal length EFL_G11 of the first sub-lens group; the ratio of the distance from the object side of the lens L11 to the image side of the lens L23 to the distance from the aperture to the image side of the lens L38 is 1.71; the ratios of the focal lengths of the third lens group to the first lens group and the second lens group are 1.39 and 1 respectively; the ratio of the focal length of the focusing lens LF in the second lens group to the focal length of the entire optical system at infinity is -4.4; and the ratio of the focal lengths of the second sub-lens group to the first sub-lens group is -7.62.
[0032] Beneficial effects of the present invention:
[0033] Through the above technical solution, the lens of the present invention has the advantages of a large aperture, fixed focal length, and wide angle of view of an aspherical surface. It is an imaging lens with a large aperture, a long flange focal distance, single-element focusing, and excellent optical performance. It can achieve wide angle, large aperture, and fast focusing on a movie camera with a long flange focal distance. BRIEF DESCRIPTION OF THE DRAWINGS
[0034] Figure 1 1 is an optical structure diagram of a large aperture miniaturized wide-angle lens according to the first embodiment of the present invention;
[0035] Figure 2 Graphs of spherical aberration, field curvature, and distortion of the large-aperture, miniaturized wide-angle lens according to the first embodiment of the present invention when the focal length is infinite;
[0036] Figure 3 Graphs of spherical aberration, field curvature, and distortion of the large-aperture, miniaturized wide-angle lens according to the first embodiment of the present invention when the focal length is close;
[0037] Figure 4 is a Rayfan diagram of the large aperture miniaturized wide-angle lens according to the first embodiment of the present invention when the focal length is infinite;
[0038] Figure 5 is a Rayfan diagram of the large aperture miniaturized wide-angle lens according to the first embodiment of the present invention when the focal length is close;
[0039] Figure 6 This is an optical structure diagram of a large aperture, miniaturized wide-angle lens according to a second embodiment of the present invention;
[0040] Figure 7 Graphs of spherical aberration, field curvature, and distortion of the large-aperture, miniaturized wide-angle lens according to the second embodiment of the present invention when the focal length is infinite;
[0041] Figure 8Graphs of spherical aberration, field curvature, and distortion of the large-aperture, miniaturized wide-angle lens according to the second embodiment of the present invention when the focal length is close;
[0042] Figure 9 is a Rayfan diagram of the large aperture miniaturized wide-angle lens according to the second embodiment of the present invention when the focal length is infinite;
[0043] Figure 10 is a Rayfan diagram of the large aperture miniaturized wide-angle lens according to the second embodiment of the present invention when the focal length is close;
[0044] Figure 11 1 is an optical structure diagram of a large aperture, miniaturized wide-angle lens according to a third embodiment of the present invention;
[0045] Figure 12 Graphs of spherical aberration, field curvature, and distortion of the large-aperture, miniaturized wide-angle lens according to the third embodiment of the present invention when the focal length is infinite;
[0046] Figure 13 Graphs of spherical aberration, field curvature, and distortion of the large-aperture, miniaturized wide-angle lens according to the third embodiment of the present invention when the focal length is close;
[0047] Figure 14 is a Rayfan diagram of the large aperture miniaturized wide-angle lens according to the third embodiment of the present invention when the focal length is infinite;
[0048] Figure 15 This is a Rayfan diagram of the large aperture miniaturized wide-angle lens according to the third embodiment of the present invention when the focal length is close. DETAILED DESCRIPTION
[0049] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0050] The large aperture miniaturized wide-angle lens of the present invention comprises, from the object side to the image side, a first lens group with negative refractive power, a second lens group with positive refractive power, and a third lens group with positive refractive power. The focal lengths of the first lens group, the second lens group, and the third lens group satisfy the following conditional equations (4) and (5), so that the refractive power of the third lens group and the second lens group can be balanced, taking into account both tolerance sensitivity and performance, and achieving high quality while miniaturizing the entire lens.
[0051] 1≤|EFL_G3 / EFL_G1|≤1.8 (4);
[0052] 0.8≤|EFL_G3 / EFL_G2|≤1.4 (5);
[0053] Among them, EFL_G1 is the focal length of the first lens group; EFL_G2 is the focal length of the second lens group; EFL_G3 is the focal length of the third lens group.
[0054] When the focal length ratio of the third lens group to the first lens group exceeds the lower limit of the conditional expression (4) 1≤|EFL_G3 / EFL_G1|≤1.8, the refractive index of the third lens group will be too strong, and the bending angle of the light on each lens will be too large, which will be detrimental to the tolerance sensitivity of the aberration correction; when the focal length ratio of the third lens group to the first lens group exceeds the upper limit of the conditional expression (4) 1≤|EFL_G3 / EFL_G1|≤1.8, the refractive index of the first lens group will be too strong, and the bending angle of the large-angle light on each lens will be too large, which will place high requirements on the processing of the lenses and make it difficult to maximize the yield.
[0055] When the focal length ratio of the third lens group to the second lens group exceeds the lower limit of the conditional expression (5) 0.8≤|EFL_G3 / EFL_G2|≤1.4, the refractive index of the third lens group will be too strong and the tolerance sensitivity will increase, which is not conducive to mass production. When the focal length ratio of the third lens group to the second lens group exceeds the upper limit of the conditional expression (5) 0.8≤|EFL_G3 / EFL_G2|≤1.4, the refractive index of the second lens group will be too strong and the tolerance sensitivity will increase, which is also not conducive to mass production.
[0056] The first lens group includes a first sub-lens group with negative refractive power and a second sub-lens group with positive refractive power. In order to achieve good correction of various aberrations at a large aperture, the focal lengths of the first sub-lens group and the second sub-lens group satisfy the following conditional formula (7):
[0057] -12≤EFL_G12 / EFL_G11≤-6 (7);
[0058] Where EFL_G11 is the focal length of the first sub-lens group; EFL_G12 is the focal length of the second sub-lens group.
[0059] When the focal length ratio of the second sub-lens group to the first sub-lens group exceeds the lower limit of the conditional expression (7) -12≤EFL_G12 / EFL_G11≤-6, the refractive power of the second sub-lens group in the first lens group will be too weak, which is not conducive to the correction of chromatic aberration and spherical aberration under large aperture; when the focal length ratio of the second sub-lens group to the first sub-lens group exceeds the upper limit of the conditional expression (7) -12≤EFL_G12 / EFL_G11≤-6, the refractive power of the first sub-lens group in the first lens group G1 will be too strong, resulting in a large amount of residual aberration, which is not conducive to balancing various aberrations in the rear lens group (i.e., the second lens group G2 and the third lens group G3).
[0060] Preferably, in order to achieve a close aperture between the front lens and the rear lens of the large aperture miniaturized wide-angle lens of the present invention, the aperture is set in the middle of the lens. Specifically, the aperture is set between the second lens group and the third lens group, and the position of the aperture satisfies the following conditional formula (3):
[0061] 1.6≤L / S_IL≤1.9 (3);
[0062] Where S_IL is the distance from the aperture to the imaging plane; L is the distance from the object side of the first rod lens of the first lens group to the imaging plane.
[0063] When the ratio of the distance from the object side of the first rod lens of the first lens group to the image side of the last rod lens of the third lens group to the distance from the aperture to the image side of the last rod lens of the third lens group exceeds the lower limit of the conditional formula (3) 1.6≤L / S_IL≤1.9, the position of the aperture (STOP) will be closer to the object side, resulting in the entrance pupil position being closer to the object side, thereby causing the third lens group behind the aperture to become larger, and aberrations are difficult to correct well; when the ratio of the distance from the object side of the first rod lens of the first lens group to the image side of the last rod lens of the third lens group to the distance from the aperture to the image side of the last rod lens of the third lens group exceeds the upper limit of the conditional formula (3) 1.6≤L / S_IL≤1.9, the position of the aperture (STOP) will be closer to the image side, resulting in the entrance pupil position being closer to the image side, thereby causing the aperture of the first lens group and the second lens group in front of the aperture to become larger, making it difficult to achieve miniaturization of the entire lens.
[0064] Preferably, in order to achieve fast focusing and simplified structural design, the second lens group includes a focusing lens, which is used for focusing at long and short distances; the focal length of the focusing lens satisfies the following conditional formula (6):
[0065] -8.5≤EFL_LF / EFL≤-3.8 (6);
[0066] Where EFL_LF is the focal length of the focusing lens in the second lens group, and EFL is the focal length of the entire optical system at infinity.
[0067] When the ratio of the focal length of the focusing lens (LF) to the focal length of the entire optical system at infinity exceeds the lower limit of the conditional formula (6) -8.5≤EFL_LF / EFL≤-3.8, the refractive index of the focusing lens (LF) is too low, and the moving distance becomes longer during the focusing process, which is not conducive to fast focusing; when the ratio of the focal length of the focusing lens LF to the focal length of the entire optical system at infinity exceeds the upper limit of the conditional formula (6) -8.5≤EFL_LF / EFL≤-3.8, the refractive index of the focusing lens (LF) is too high, and various aberrations increase too quickly during the focusing process, which is not conducive to close-range focusing.
[0068] The first lens group further includes at least one aspheric lens, preferably a meniscus aspheric lens ASP, the focal length of the aspheric lens is EFL_ASP, and the aspheric lens satisfies the following conditions (1) and (2):
[0069] -6≤EFL_ASP / EFL≤-2 (1);
[0070] 1.5≤EFL_ASP / EFL_G11≤4.5 (2);
[0071] Where EFL is the focal length of the entire optical system at infinity; EFL_G11 is the focal length of the first sub-lens group in the first lens group.
[0072] When the ratio of the focal length of the aspheric lens in the first lens group, EFL_ASP, to the focal length EFL of the entire optical system at infinity exceeds the lower limit of the conditional expression (1) -6≤EFL_ASP / EFL≤-2, the refractive power of the aspheric lens in the first lens group will be too weak, which is not conducive to the correction of distortion and other aberrations; when the ratio of the focal length of the aspheric lens in the first lens group, EFL_ASP, to the focal length EFL of the entire optical system at infinity exceeds the upper limit of the conditional expression (1), the refractive power of the aspheric lens in the first lens group will be too strong, the center-edge thickness ratio will be too high, the arc height of the lens will be very large, and the production will be very difficult with the current level of glass aspheric processing, the yield rate will be low, and the assembly sensitivity will be high, making the installation and adjustment particularly difficult.
[0073] When the ratio of the focal length EFL_ASP of the aspheric lens in the first lens group to the focal length EFL_G11 of the first sub-lens group exceeds the lower limit of the conditional expression (2) 1.5≤EFL_ASP / EFL_G11≤4.5, the refractive power of the aspheric lens in the first lens group will be too strong, and the refractive index and processing requirements of the aspheric lens will be high; when the ratio of the focal length EFL_ASP of the aspheric lens in the first lens group to the focal length EFL_G11 of the first sub-lens group exceeds the upper limit of the conditional expression (2), the number of lenses in the first lens group will increase and the volume will increase, which is not conducive to miniaturization and weight reduction.
[0074] The shape of the aspheric lens is defined as:
[0075] r is the radial coordinate starting from the optical axis;
[0076] Z is the offset in the direction of the optical axis starting from the intersection of the aspheric surface and the optical axis;
[0077] c is the curvature of the reference sphere of the aspheric surface;
[0078] k is the conic coefficient of the aspheric surface;
[0079] α2 is the fourth-order coefficient of the aspheric surface;
[0080] α3 is the sixth-order coefficient of the aspheric surface;
[0081] α4 is the 8th-order coefficient of the aspheric surface;
[0082] α5 is the 10th-order coefficient of the aspheric surface;
[0083] α6 is the 12th-order coefficient of the aspheric surface;
[0084] α7 is the 14th-order coefficient of the aspheric surface;
[0085] and,
[0086] .
[0087] Compared with the prior art, the present invention, through the above-mentioned solution, enables a large aperture, miniaturized wide-angle lens to have excellent optical performance. At the same time, by arranging an aspheric lens with strong refractive power in the first lens group, the volume of the first lens group is reduced, and the lens has the advantages of a large aperture, a fixed focal length, and a wide angle of the aspheric surface, thereby achieving a wide-angle effect. In addition, by arranging the aperture relatively close to the object side, the entrance pupil position is brought forward, achieving the purpose of miniaturization and wide angle, so that the photographic lens of the present invention can achieve wide angle, large aperture, and fast focus on a movie camera with a long flange focal length.
[0088] In addition, the third lens group includes at least one aspherical lens, and the focal length of the aspherical lens of the third lens group satisfies the following conditional formula:
[0089] By adding an aspherical lens to the third lens group, the distortion is further reduced, the distortion caused by the wide-angle lens is reduced, and the field curvature is controlled, thereby improving the lens performance.
[0090] The large aperture miniaturized wide-angle lens of the present invention will be further described below through examples and comparative examples. Example
[0091] like Figure 1As shown, the large-aperture, miniaturized wide-angle lens described in Example 1 of the present invention includes, from the object side to the image side, a first lens group G1 with negative refractive power, a second lens group G2 with positive refractive power, and a third lens group G3 with positive refractive power. The aperture (Stop) is disposed between the second lens group G2 and the third lens group G3. The first lens group G1 consists of lenses L11 to L16, arranged in sequence from the object side to the image side. Lenses L11 and L12 constitute the first sub-lens group G11, and lenses L13 to L16 constitute the second sub-lens group G12. The second lens group G2 consists of a focusing lens LF, lenses L22, and lenses L23, arranged in sequence from the object side to the image side. The third lens group G3 consists of lenses L31 to L37, arranged in sequence from the object side to the image side. When an object moves from infinity to a close distance, the focusing lens LF in the second lens group G2 moves to achieve focus.
[0092] The structure of the optical system of the large aperture miniaturized wide-angle lens of the first embodiment is specifically shown in Table 1 below.
[0093] Table 1
[0094] lens surface RDY THI Refractive index Nd Abbe number Vd Object side of lens L11 40.11 2.20 1.8042 46.50 Image side of lens L11 19.79 5.63 Object side of lens L12 34.38 2.2 1.5883 61.28 Image side surface of lens L12 17.07 10.63 Object side surface of lens L13 -57.09 2.20 1.5503 75.49 The image side surface of lens L13 and the object side surface of lens L14 38.92 6.48 2.0508 26.94 Image side surface of lens L14 -154.28 1.50 Object side of lens L15 -51.06 2.20 1.9459 17.98 The image side surface of lens L15 and the object side surface of lens L16 107.90 4.83 2.0010 29.13 Image side of lens L16 -85.60 3.57 Object side of focusing lens LF -41.16 2.20 1.5927 35.44 Image side of focusing lens LF -81.26 0.10 Object side surface of lens L22 34.01 8.66 1.5503 75.49 Image side surface of lens L22 -67.06 3.42 Object side surface of lens L23 74.51 3.96 1.9861 16.48 Image side surface of lens L23 372.96 1.92 Aperture surface infinity 2.37 Object side surface of lens L31 -94.88 5.94 1.5503 75.49 The image side surface of lens L31 and the object side surface of lens L32 -21.31 2.20 1.8830 40.80 Image side surface of lens L32 -129.57 3.27 Object side of lens L33 -16.14 2.39 1.8088 40.97 Image side surface of lens L33 -20.88 2.37 Object-side surface of lens L34 340.55 9.34 1.5503 75.49 Image side surface of lens L34 -25.42 0.01 Object side of lens L35 -51.18 5.58 1.5503 75.49 Image side of lens L35 -31.58 0.01 Object side of lens L36 298.24 2.20 1.9515 29.82 The image side surface of lens L36 and the object side surface of lens L37 35.22 12.42 1.5928 68.62 Image side of lens L37 -49.88 31.0 Protect the object side of the glass lens infinity 0.1 1.5168 64.16 Protect the image side of the glass lens infinity 0.1
[0095] In Table 1, RDY (mm) is the radius of curvature of the lens surface, THI (mm) is the distance between the lenses and the lens thickness, Nd is the refractive index of each lens for the d-line, and Vd is the Abbe number of the lens. The focal length of the entire optical system is 18.6, and the aperture coefficient (Fno) is 1.43.
[0096] The values corresponding to the various coefficients of the aspheric lens in the first embodiment are shown in Table 2 below.
[0097] Table 2
[0098] lens surface K <![CDATA[α2]]> <![CDATA[α3]]> <![CDATA[α4]]> <![CDATA[α5]]> <![CDATA[α6]]> <![CDATA[α7]]> Object side of lens L12 0 2.5784e-05 -1.1013e-07 3.5258e-10 -5.5802e-13 4.3538e-16 Image side surface of lens L12 -1.71 4.9871e-05 -1.4641e-07 2.5970e-10 7.7728e-14 -1.0243e-15 Object side of lens L33 0 8.0594e-05 4.4034e-07 -3.9528e-09 1.3325e-11 -1.1642e-14 Image side surface of lens L33 0 8.1216e-05 3.8245e-07 -3.0718e-09 9.0172e-12 -9.9449e-15
[0099] When THI(10) and THI(12) are equal to different values, the corresponding imaging distances are shown in Table 3, corresponding to infinity and 250 mm respectively.
[0100] Table 3
[0101] Photography distance ∞ 250mm THI(10) 3.567 1.4838 THI(12) 0.100 2.1829
[0102] After testing, the spherical aberration, field curvature and distortion of the large aperture miniaturized wide-angle lens of the first embodiment when focusing at infinity are as follows: Figure 2 As shown, the Rayfan of each field of view is as follows Figure 4 As shown in the figure, the spherical aberration, field curvature and distortion at close focusing distance are as follows: Figure 3 As shown, the Rayfan of each field of view is as follows Figure 5 shown. Example
[0103] like Figure 6 As shown, the large-aperture, miniaturized wide-angle lens described in Example 2 of the present invention includes, from the object side to the image side, a first lens group G1 with negative refractive power, a second lens group G2 with positive refractive power, and a third lens group G3 with positive refractive power. The aperture (Stop) is disposed between the second lens group G2 and the third lens group G3. The first lens group G1 consists of lenses L11 to L17, arranged in sequence from the object side to the image side. Lenses L11 to L3 constitute a first sub-lens group G11, and lenses L14 to L17 constitute a second sub-lens group G12. The second lens group G2 consists of lens L21, a focusing lens LF, and a lens L23, arranged in sequence from the object side to the image side. The third lens group G3 consists of lenses L31 to L38, arranged in sequence from the object side to the image side. When an object moves from infinity to a close distance, the focusing lens LF in the second lens group G2 moves to achieve focus.
[0104] The structure of the optical system of the large aperture miniaturized wide-angle lens of the second embodiment is specifically shown in Table 4 below.
[0105] Table 4
[0106] lens surface RDY THI Refractive index Nd Abbe number Vd Object side of lens L11 44.04 1.7 1.8040 46.57 Image side of lens L11 22.19 6.10 Object side of lens L12 31.17 1.70 1.9228 20.88 Image side surface of lens L12 23.16 3.07 Object side surface of lens L13 39.41 3.30 1.4965 81.53 Image side surface of lens L13 20.83 9.88 Object side of lens L14 -46.53 1.7 1.5503 75.49 The image side surface of lens L14 and the object side surface of lens L15 37.80 7.41 1.7303 32.23 Image side of lens L15 -118.00 1.73 Object side of lens L16 40.77 8.46 1.6989 30.05 The image side surface of lens L16 and the object side surface of lens L17 -31.65 1.70 1.9228 18.89 Image side of lens L17 124.40 1.05 The object side of lens L21 is adjusted -645.77 3.04 1.6476 33.84 The image side of lens L21 is adjusted -94.40 3.74 Object side of the focusing lens LF -60.36 1.7 1.7858 43.93 Image side of the focal lens LF -163.29 0.15 Object side surface of lens L23 42.77 6.39 1.8696 20.01 Image side surface of lens L23 -89.55 1.50 Aperture surface infinity 3.95 Object side surface of lens L31 103.38 6.96 1.5503 75.49 The image side surface of lens L31 and the object side surface of lens L32 -23.58 1.70 1.7282 28.32 Image side surface of lens L32 119.58 5.68 Object side of lens L33 -11.29 2.26 1.9515 29.82 Image side surface of lens L33 -15.33 0.94 Object-side surface of lens L34 9369.69 8.96 1.4965 81.53 Image side surface of lens L34 -22.90 0.15 Object side of lens L35 -66.16 5.95 1.5503 75.49 Image side of lens L35 -30.71 0.15 Object-side surface of lens L36 -130.40 1.70 1.8545 25.15 Image side of lens L36 76.19 0.62 Object side of lens L37 95.24 8.89 1.5503 75.49 Image side of lens L37 -47.23 0.10 Object side of lens L38 -104.16 3.55 1.8697 20.01 Image side of lens L38 -66.11 33.2 Protect the object side of the glass lens infinity 2.8 1.5168 64.16 Protect the image side of the glass lens infinity 0.1
[0107] In Table 4, RDY (mm) is the radius of curvature of the lens surface, THI (mm) is the distance between the lenses and the lens thickness, Nd is the refractive index of each lens for the d-line, and Vd is the Abbe number of the lens. The focal length of the entire optical system is 18.6, and the aperture coefficient (Fno) is 1.50.
[0108] The values corresponding to the various coefficients of the aspheric lens in the second embodiment are shown in Table 5 below.
[0109] Table 5
[0110] lens surface K <![CDATA[α2]]> <![CDATA[α3]]> <![CDATA[α4]]> <![CDATA[α5]]> <![CDATA[α6]]> <![CDATA[α7]]> Object side surface of lens L13 0 3.1597e-05 -1.0689e-07 2.7986e-10 -3.3530e-13 Image side surface of lens L13 0 1.1185e-05 -1.7835e-07 3.3977e-10 -6.7704e-13 Object side surface of lens L33 -1.01 7.6603e-05 8.2952e-07 -1.0253e-08 4.4065e-11 -7.2322e-14 Image side surface of lens L33 -0.93 9.0796e-05 6.2620e-07 -5.8838e-09 1.8979e-11 -1.8973e-14 -1.4807e-17
[0111] When THI(10) and THI(12) are equal to different values, the corresponding imaging distances are shown in Table 6, corresponding to infinity and 250 mm respectively.
[0112] Table 6
[0113] Photography distance ∞ 250mm THI(14) 3.73 2.23 THI(16) 0.15 1.65
[0114] After testing, the spherical aberration, field curvature and distortion of the large aperture miniaturized wide-angle lens described in the second embodiment when focusing at infinity are as follows: Figure 7 As shown, the Rayfan of each field of view is as follows Figure 9 As shown in the figure, the spherical aberration, field curvature and distortion at close focusing distance are as follows: Figure 8As shown, the Rayfan of each field of view is as follows Figure 10 shown. Example
[0115] like Figure 11 As shown, the large aperture, miniaturized wide-angle lens described in Embodiment 3 of the present invention includes, from the object side to the image side, a first lens group G1 with negative refractive power, a second lens group G2 with positive refractive power, and a third lens group G3 with positive refractive power. The aperture (Stop) is disposed between the second lens group G2 and the third lens group G3. The first lens group G1 consists of lenses L11 to L16, arranged in sequence from the object side to the image side, wherein lenses L11 to L13 constitute a first sub-lens group G11, and lenses L14 to L16 constitute a second sub-lens group G12. The second lens group G2 consists of a focusing lens LF, lens L22, and lens L23, arranged in sequence from the object side to the image side. The third lens group G3 consists of lenses L31 to L38, arranged in sequence from the object side to the image side. When an object moves from infinity to a close distance, lenses LF in the second lens group G2 move to achieve focus.
[0116] The structure of the optical system of the large aperture miniaturized wide-angle lens described in the third embodiment is specifically shown in Table 7 below.
[0117] Table 7
[0118] lens surface RDY THI Refractive index Nd Abbe number Vd Object side of lens L11 45.00 2.12 1.9108 35.25 Image side of lens L11 23.61 6.26 Object-side surface of lens L12 30.55 2.63 1.9108 35.25 Image side surface of lens L12 23.41 4.04 Object side surface of lens L13 62.24 3.53 1.5891 61.25 Image side surface of lens L13 26.69 10.06 Object-side surface of lens L14 -42.35 1.72 1.4370 95.10 The image side surface of lens L14 and the object side surface of lens L15 36.11 11.33 1.8545 25.15 The image side surface of lens L15 and the object side surface of lens L16 -28.98 2.21 1.9459 17.98 Image side of lens L16 -130.23 7.12 Object side of focusing lens LF -45.86 1.72 1.9537 32.31 Image side of focusing lens LF -113.04 0.54 Object side surface of lens L22 37.12 7.23 1.5503 75.49 Image side surface of lens L22 -118.35 0.15 Object side surface of lens L23 79.27 4.34 1.9459 17.98 Image side surface of lens L23 -407.37 1.61 Aperture surface infinity 3.12 Object side surface of lens L31 86.38 7.25 1.4370 95.10 The image side surface of lens L31 and the object side surface of lens L32 -25.06 3.02 1.7704 29.73 Image side surface of lens L32 -181.44 7.12 Object side of lens L33 -12.01 3.04 1.8088 40.97 Image side surface of lens L33 -17.40 1.46 Object-side surface of lens L34 163.91 8.70 1.4370 95.10 Image side surface of lens L34 -27.66 0.15 Object side of lens L35 -255.97 7.32 1.5503 75.49 Image side of lens L35 -34.28 0.15 Object side of lens L36 -997.14 1.70 1.9537 32.31 Image side of lens L36 54.77 3.15 Object side of lens L37 472.32 5.82 1.5503 75.49 Image side of lens L37 -62.66 0.15 Object-side surface of lens L38 179.61 5.33 1.5928 68.62 Image side of lens L38 -95.92 33.11 Protect the object side of the glass lens infinity 2.81 1.5168 64.16 Protect the image side of the glass lens infinity 0.1
[0119] In Table 7, RDY (mm) is the radius of curvature of the lens surface, THI (mm) is the distance between the lenses and the lens thickness, Nd is the refractive index of each lens for the d-line, and Vd is the Abbe number of the lens. The focal length of the entire optical system is 18.6, and the aperture factor (Fno) is 1.55.
[0120] The values corresponding to the various coefficients of the aspheric lens in the second embodiment are shown in Table 8 below.
[0121] Table 8
[0122] lens surface K <![CDATA[α2]]> <![CDATA[α3]]> <![CDATA[α4]]> <![CDATA[α5]]> <![CDATA[α6]]> <![CDATA[α7]]> Object side surface of lens L13 0 5.3017e-5 -1.8956e-7 5.5099e-10 -9.6779e-13 7.2671e-16 Image side surface of lens L13 0.75 3.9440e-05 -2.3971e-07 4.8772e-10 -8.3866e-13 1.7088e-16 Object side of lens L33 -1.08 5.4692e-05 4.3360e-07 -4.0021e-09 1.1736e-11 -4.7118e-15 -2.6676e-17 Image side surface of lens L33 -1.45 5.8474e-05 3.3557e-07 -2.3910e-09 6.1563e-12 -5.4322e-15 -2.0798e-18
[0123] When THI(10) and THI(12) are equal to different values, the corresponding imaging distances are shown in Table 9, corresponding to infinity and 250 mm respectively.
[0124] Table 9
[0125] Photography distance ∞ 250mm THI(10) 7.12 5.60 THI(12) 0.54 2.03
[0126] After testing, the spherical aberration, field curvature and distortion of the large aperture miniaturized wide-angle lens described in the third embodiment when focusing at infinity are as follows: Figure 12 As shown, the Rayfan of each field of view is as follows Figure 14 As shown in the figure, the spherical aberration, field curvature and distortion at close focusing distance are as follows: Figure 13 As shown, the Rayfan of each field of view is as follows Figure 15 shown.
[0127] Furthermore, the large aperture miniaturized wide-angle lenses described in Examples 1 to 3 of the present invention satisfying Conditions (1) to (7) are shown in Table 10 below.
[0128] Table 10
[0129] Example 1 Example 2 Example 3 Conditional formula (1): -6 ≤ EFL_ASP / EFL ≤ -2 -3.25 -5.08 -4.42 Conditional formula (2): 1.5 ≤ EFL_ASP / EFL_G11 ≤ 4.5 2.38 4.08 3.49 Conditional expression (3): 1.6≤L / S_IL≤1.9 1.78 1.73 1.71 Conditional formula (4): 1≤|EFL_G3 / EFL_G1|≤1.8 1.28 1.69 1.39 Conditional formula (5): 0.8≤|EFL_G3 / EFL_G2|≤1.4 1.18 1.26 1 Conditional expression (6): -8.5≤EFL_LF / EFL≤-3.8 -7.72 -6.6 -4.4 Conditional formula (7): -12≤EFL_G12 / EFL_G11≤-6 -8.94 -11.78 -7.62
[0130] As can be seen from the above embodiments 1 to 3, the photographic lens has a large aperture, a long flange focal length, single-element focusing, and excellent optical performance, and can achieve wide angle, large aperture, and fast focusing on a movie camera with a long flange focal length.
[0131] The above is a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications are also considered to be within the scope of protection of the present invention.
Claims
1. A large aperture miniaturized wide-angle lens, characterized in that: The lens is composed of a first lens group with negative refractive power, a second lens group with positive refractive power, and a third lens group with positive refractive power, which are arranged from the object side to the image side. The first lens group is composed of lenses L11 to L16 arranged in sequence from the object side to the image side, wherein the lenses L11 and L12 constitute a first sub-lens group, and the lenses L13 to L16 constitute a second sub-lens group. The refractive power of the first sub-lens group is negative, and the refractive power of the second sub-lens group is positive. The refractive powers of the lenses L11 to L13 and L15 are negative, and the refractive powers of the lenses L14 and L16 are positive. The second lens group consists of a focusing lens LF, a lens L22, and a lens L23, which are arranged in sequence from the object side to the image side. The focusing lens LF is used for focusing at long and short distances. The refractive power of the focusing lens LF is negative, and the refractive powers of the lenses L22 and L23 are positive. The third lens group is composed of lenses L31 to L37 arranged in sequence from the object side to the image side, the refractive powers of the lenses L32, L33, and L36 are negative, and the refractive powers of the lenses L31, L34, L35, and L37 are positive; An aperture is provided between the second lens group and the third lens group; The first lens group further includes at least one aspherical lens, the focal length of the aspherical lens is EFL_ASP, and satisfies the following conditional expression: EFL_ASP / EFL=-3.25; EFL_ASP / EFL_G11=2.38; Where EFL is the focal length of the entire optical system at infinity; EFL_G11 is the focal length of the first sub-lens group in the first lens group.
2. The large aperture miniaturized wide-angle lens according to claim 1, characterized in that: The position of the aperture satisfies the following conditional formula: L / S_IL=1.78; Where S_IL is the distance from the aperture to the imaging plane; L is the distance from the object side of the first rod lens of the first lens group to the imaging plane.
3. The large aperture miniaturized wide-angle lens according to claim 2, characterized in that: The focal lengths of the first lens group, the second lens group, and the third lens group satisfy the following conditional equations: |EFL_G3 / EFL_G1|=1.28; |EFL_G3 / EFL_G2|=1.18; Among them, EFL_G1 is the focal length of the first lens group; EFL_G2 is the focal length of the second lens group; EFL_G3 is the focal length of the third lens group.
4. The large aperture miniaturized wide-angle lens according to claim 3, wherein: The focal length of the focusing lens in the second lens group satisfies the following conditional formula: EFL_LF / EFL=-7.72; Where EFL_LF is the focal length of the focusing lens in the second lens group, and EFL is the focal length of the entire optical system at infinity.
5. The large aperture miniaturized wide-angle lens according to claim 4, characterized in that: The focal lengths of the first sub-lens group and the second sub-lens group in the first lens group satisfy the following conditional formula: EFL_G12 / EFL_G11=-8.94; Where EFL_G11 is the focal length of the first sub-lens group; EFL_G12 is the focal length of the second sub-lens group.
6. The large aperture miniaturized wide-angle lens according to any one of claims 1 to 5, characterized in that: The third lens group includes at least one aspherical lens.
7. A large aperture miniaturized wide-angle lens, characterized in that: The lens is composed of a first lens group with negative refractive power, a second lens group with positive refractive power, and a third lens group with positive refractive power, which are arranged from the object side to the image side. The first lens group is composed of lenses L11 to L17 arranged in sequence from the object side to the image side, wherein the lenses L11 to L3 constitute a first sub-lens group, and the lenses L14 to L17 constitute a second sub-lens group. The refractive power of the first sub-lens group is negative, and the refractive power of the second sub-lens group is positive. The refractive powers of the lenses L11 to L14 and L17 are negative, and the refractive powers of the lenses L15 and L16 are positive. The second lens group is composed of a lens L21, a focusing lens LF, and a lens L23 arranged in sequence from the object side to the image side. The focusing lens LF is used for focusing at long and short distances. The refractive power of the focusing lens LF is negative. The refractive powers of the lens L21 and the lens L23 are positive. The third lens group is composed of lenses L31 to L38 arranged in sequence from the object side to the image side, the refractive powers of lenses L32, L33, and L36 are negative, and the refractive powers of lenses L31, L34, L35, L37, and L38 are positive; An aperture is provided between the second lens group and the third lens group; The first lens group further includes at least one aspherical lens, the focal length of the aspherical lens is EFL_ASP, and satisfies the following conditional expression: EFL_ASP / EFL=-5.08; EFL_ASP / EFL_G11=4.08; Where EFL is the focal length of the entire optical system at infinity; EFL_G11 is the focal length of the first sub-lens group in the first lens group.
8. The large aperture miniaturized wide-angle lens according to claim 7, wherein: The position of the aperture satisfies the following conditional formula: L / S_IL=1.73; Where S_IL is the distance from the aperture to the imaging plane; L is the distance from the object side of the first rod lens of the first lens group to the imaging plane.
9. The large aperture miniaturized wide-angle lens according to claim 8, characterized in that: The focal lengths of the first lens group, the second lens group, and the third lens group satisfy the following conditional equations: |EFL_G3 / EFL_G1|=1.69; |EFL_G3 / EFL_G2|=1.26; Among them, EFL_G1 is the focal length of the first lens group; EFL_G2 is the focal length of the second lens group; EFL_G3 is the focal length of the third lens group.
10. The large aperture miniaturized wide-angle lens according to claim 9, characterized in that: The focal length of the focusing lens in the second lens group satisfies the following conditional formula: EFL_LF / EFL=-6.6; Where EFL_LF is the focal length of the focusing lens in the second lens group, and EFL is the focal length of the entire optical system at infinity.
11. The large aperture miniaturized wide-angle lens according to claim 10, wherein: The focal lengths of the first sub-lens group and the second sub-lens group in the first lens group satisfy the following conditional formula: EFL_G12 / EFL_G11=-11.78; Where EFL_G11 is the focal length of the first sub-lens group; EFL_G12 is the focal length of the second sub-lens group.
12. The large aperture miniaturized wide-angle lens according to any one of claims 7 to 11, characterized in that: The third lens group includes at least one aspherical lens.
13. A large aperture miniaturized wide-angle lens, characterized in that: The lens is composed of a first lens group with negative refractive power, a second lens group with positive refractive power, and a third lens group with positive refractive power, which are arranged from the object side to the image side. The first lens group is composed of lenses L11 to L16 arranged in sequence from the object side to the image side, wherein the lenses L11 to L13 constitute a first sub-lens group, and the lenses L14 to L16 constitute a second sub-lens group. The refractive power of the first sub-lens group is negative, and the refractive power of the second sub-lens group is positive. The refractive powers of the lenses L11 to L14 and L16 are negative, and the refractive power of the lens L15 is positive. The second lens group consists of a focusing lens LF, a lens L22, and a lens L23, which are arranged in sequence from the object side to the image side. The focusing lens LF is used for focusing at long and short distances. The refractive power of the focusing lens LF is negative, and the refractive powers of the lenses L22 and L23 are positive. The third lens group is composed of lenses L31 to L38 arranged in sequence from the object side to the image side, the refractive powers of lenses L32, L33, and L36 are negative, and the refractive powers of lenses L31, L34, L35, L37, and L38 are positive; An aperture is provided between the second lens group and the third lens group; The first lens group further includes at least one aspheric lens, the focal length of the aspheric lens is EFL_ASP, and satisfies the following conditional expression: EFL_ASP / EFL=-4.42; EFL_ASP / EFL_G11=3.49; Where EFL is the focal length of the entire optical system at infinity; EFL_G11 is the focal length of the first sub-lens group in the first lens group.
14. The large aperture miniaturized wide-angle lens according to claim 13, wherein: The position of the aperture satisfies the following conditional formula: L / S_IL=1.71; Where S_IL is the distance from the aperture to the imaging plane; L is the distance from the object side of the first rod lens of the first lens group to the imaging plane.
15. The large aperture miniaturized wide-angle lens according to claim 14, wherein: The focal lengths of the first lens group, the second lens group, and the third lens group satisfy the following conditional equations: |EFL_G3 / EFL_G1|=1.39; |EFL_G3 / EFL_G2|=1; Among them, EFL_G1 is the focal length of the first lens group; EFL_G2 is the focal length of the second lens group; EFL_G3 is the focal length of the third lens group.
16. The large aperture miniaturized wide-angle lens according to claim 15, wherein: The focal length of the focusing lens in the second lens group satisfies the following conditional formula: EFL_LF / EFL=-4.4; Where EFL_LF is the focal length of the focusing lens in the second lens group, and EFL is the focal length of the entire optical system at infinity.
17. The large aperture miniaturized wide-angle lens according to claim 16, wherein: The focal lengths of the first sub-lens group and the second sub-lens group in the first lens group satisfy the following conditional formula: EFL_G12 / EFL_G11=-7.62; Where EFL_G11 is the focal length of the first sub-lens group; EFL_G12 is the focal length of the second sub-lens group.
18. The large aperture miniaturized wide-angle lens according to any one of claims 13 to 17, wherein: The third lens group includes at least one aspherical lens.
Citation Information
Patent Citations
Ultra-wide-angle large-aperture aspheric lens
CN114578528A
Large-aperture internal focusing type long-focus photographic lens
CN118671951A