Vehicle-mounted lens optical system and camera module applied by same
By designing a vehicle-mounted lens optical system composed of five lenses, the existing circumferential lens has solved the problems of poor imaging effects and complex structure, achieving stable performance at ultra-wide angle, small diameter, large aperture and temperature, and improving imaging quality and competitiveness.
Patent Information
- Application Number
- CN202421712688.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-19
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-07-19
AI Technical Summary
The imaging effect of existing circumferential lenses is not ideal, especially in darker night conditions, and the structure is complex and large in size, making it difficult to meet market demand.
An on-board lens optical system was designed, consisting of five lenses. By reasonably allocating the lens power, optimizing lens aberration, improving imaging quality, and having the characteristics of stable performance at ultra-wide angle, small diameter, large aperture and temperature.
It achieves higher imaging quality and stronger competitiveness, meets the use needs of ultra-wide angle and high aperture, while maintaining the advantages of miniaturization and simple structure.
Smart Images

Figure CN222866949U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of optical imaging, and in particular to a vehicle-mounted lens optical system and a camera module using the same. Background Art
[0002] In recent years, with the increasing popularity of intelligent driving, surround-view lenses are increasingly used in various vehicles. However, the imaging effect of surround-view lenses is generally not ideal, especially in darker conditions such as at night, and it is difficult to meet the use requirements. In terms of appearance, the existing surround-view lenses have problems of complex structure and large size. Providing miniaturized vehicle-mounted surround-view lenses will be more competitive in the market. Utility Model Content
[0003] In order to overcome the problems of poor imaging effect and complex structure of existing surround-view lenses, the present application provides a vehicle-mounted lens optical system, which is mainly composed of five mirror lenses and has the characteristics of ultra-wide angle, small aperture, large aperture and stable performance under temperature. Among them, the configuration of large aperture can increase the amount of light entering the optical system and higher imaging quality, making it more competitive among lenses of the same type.
[0004] A vehicle-mounted lens optical system, comprising a first lens, a second lens, a third lens, a fourth lens, and a fifth lens in sequence from an object plane to an image plane along an optical axis;
[0005] The object side of the first lens is convex, the image side is concave, and its optical power is negative;
[0006] The object side of the second lens is convex or concave, the image side is concave, and its optical power is negative;
[0007] The object side and the image side of the third lens are both convex, and its optical power is positive;
[0008] The object side of the fourth lens is convex, the image side is concave, and its optical power is negative;
[0009] The object side and the image side of the fifth lens are both convex surfaces, and its optical power is positive.
[0010] Preferably, each lens of the optical system satisfies the following conditions:
[0011] -5.1mm<f1<-3.2mm;
[0012] -3.5mm<f2<-2.5mm;
[0013] 3.6mm<f3<4.3mm;
[0014] -2mm<f4<-1.5mm;
[0015] 1.5mm<f5<1.7mm;
[0016] Among them, f1 is the focal length of the first lens, f2 is the focal length of the second lens, f3 is the focal length of the third lens, f4 is the focal length of the fourth lens, and f5 is the focal length of the fifth lens.
[0017] Preferably, each lens of the optical system satisfies the following conditions:
[0018] Nd1>1.85,Vd1<30;
[0019] Nd2>1.51,Vd2>54.21;
[0020] Nd3>1.81,Vd3<25;
[0021] Nd4>1.6,Vd4<21;
[0022] Nd5<1.6,Vd5>50.5;
[0023] Among them, Nd1 is the refractive index of the first lens, Vd1 is the Abbe number of the first lens; Nd2 is the refractive index of the second lens, Vd2 is the Abbe number of the second lens; Nd3 is the refractive index of the third lens, Vd3 is the Abbe number of the third lens; Nd4 is the refractive index of the fourth lens, Vd4 is the Abbe number of the fourth lens; Nd5 is the refractive index of the fifth lens, Vd5 is the Abbe number of the fifth lens.
[0024] Preferably, the maximum angle CRA of the full-field chief ray of the optical system incident on the image plane satisfies: CRA <17°.
[0025] Preferably, the curvature radius R1 of the object surface side of the first lens satisfies: 10<R1<19.
[0026] Preferably, the curvature radius R1 of the object surface side of the fifth lens satisfies: R1 < 0.95.
[0027] Preferably, the total optical length TTL of the optical system satisfies: TTL ≤ 18.5 mm.
[0028] Preferably, the third lens is a glass lens.
[0029] Preferably, the F number of the optical system is: 1.9≤F number≤2.1.
[0030] Preferably, the full field of view FOV of the optical system satisfies: 97.5°≤ FOV≤ 100.5°.
[0031] Preferably, the aperture is arranged between the third lens and the fourth lens.
[0032] Preferably, the fourth lens and the fifth lens are bonded together to form a combined lens.
[0033] On the other hand, an embodiment of the present application further provides a camera module, comprising at least an optical lens, wherein the above-mentioned vehicle-mounted lens optical system is installed in the optical lens.
[0034] Compared with the prior art, the beneficial effects of this application are as follows:
[0035] The utility model provides a vehicle-mounted lens optical system and a camera module applied thereto, which are mainly composed of five lenses, wherein the object surface side of the first lens is convex, the image surface side is concave, and the optical focal length is negative, the object surface side of the second lens is convex or concave, the image surface side is concave, and the optical focal length is negative, the object surface side and the image surface side of the third lens are both convex, and the optical focal length is positive, the object surface side of the fourth lens is convex, the image surface side is concave, and the optical focal length is negative, the object surface side and the image surface side of the fifth lens are both convex, and the optical focal length is positive, the number of lenses is reasonable, the structure is simple, and the optical focal length of the lenses is reasonably distributed, the lens aberration is optimized, the imaging quality of the optical system is improved, the lens has the characteristics of ultra-wide angle, small aperture, large aperture, stable performance under temperature, etc., and has stronger competitiveness among lenses of the same type. BRIEF DESCRIPTION OF THE DRAWINGS
[0036] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for describing the embodiments.
[0037] Figure 1 It is a structural schematic diagram of the optical system or camera module of Example 1 of the present application;
[0038] Figure 2 is an astigmatism and distortion curve diagram of the optical system or camera module of Example 1 of the present application;
[0039] Figure 3 is an MTF curve diagram of the optical system or camera module of Example 1 of the present application;
[0040] Figure 4 It is a structural schematic diagram of an optical system or a camera module according to Embodiment 2 of the present application;
[0041] Figure 5 is an astigmatism and distortion curve diagram of the optical system or camera module of Example 2 of the present application;
[0042] Figure 6 is an MTF curve diagram of the optical system or camera module of Example 2 of the present application;
[0043] Figure 7 It is a structural schematic diagram of an optical system or a camera module according to Embodiment 3 of the present application;
[0044] Figure 8 is an astigmatism and distortion curve diagram of the optical system or camera module of Example 3 of the present application;
[0045] Fig. 9 It is an MTF curve diagram of the optical system or camera module of Example 3 of the present application. DETAILED DESCRIPTION
[0046] like Figure 1-9 As shown, the present application provides a vehicle-mounted lens, which is composed of a first lens 1, a second lens 2, a third lens 3, an aperture 6, a fourth lens 4, a fifth lens 5, and an infrared filter 7 in sequence from the object plane to the image plane 8 along the optical axis.
[0047] The object side of the first lens is convex, the image side is concave, and its optical power is negative;
[0048] The object side of the second lens is convex or concave, the image side is concave, and its optical power is negative;
[0049] The object side and the image side of the third lens are both convex, and its optical power is positive;
[0050] The object side of the fourth lens is convex, the image side is concave, and its optical power is negative;
[0051] The object side and the image side of the fifth lens are both convex, and its optical power is positive.
[0052] The optical system of the embodiment of the present application is mainly composed of 5 lenses. The object side of the first lens is convex, the image side is concave, and the optical power is negative. The object side of the second lens is convex or concave, the image side is concave, and the optical power is negative. The object side and image side of the third lens are both convex, and the optical power is positive. The object side of the fourth lens is convex, the image side is concave, and the optical power is negative. The object side and image side of the fifth lens are both convex, and the optical power is positive. The number of lenses is reasonable and the structure is simple. By reasonably allocating the optical power of the lenses, optimizing the lens aberrations, and improving the imaging quality of the optical system, the lens has the characteristics of ultra-wide angle, small aperture, large aperture, stable performance under temperature, etc., and has stronger competitiveness among lenses of the same type.
[0053] Further, as a preferred embodiment of the present invention but not limiting, each lens of the optical system satisfies the following conditions, wherein f1 is the focal length of the first lens, f2 is the focal length of the second lens, f3 is the focal length of the third lens, f4 is the focal length of the fourth lens, and f5 is the focal length of the fifth lens:
[0054] -5.1mm<f1<-3.2mm. This design can make the first lens 1 have a large negative focal length, which is beneficial to reducing the astigmatism and field curvature of the optical system;
[0055] -3.5mm<f2<-2.5mm, by constraining the ratio of the focal power of the second lens 2 to the effective focal length of the optical imaging system within a reasonable range, the spherical aberration of the system is fine-tuned and controlled, thereby effectively improving the imaging quality of the system;
[0056] 3.6mm<f3<4.3mm, by constraining the ratio of the focal power of the third lens 3 to the effective focal length of the optical imaging system within a reasonable range, the optical system has the advantages of wide angle, large aperture, small size and excellent temperature characteristics;
[0057] -2mm<f4<-1.5mm, by constraining the ratio of the focal power of the fourth lens 4 to the effective focal length of the optical imaging system within a reasonable range, the spherical aberration of the system is fine-tuned and controlled, thereby effectively improving the imaging quality of the system;
[0058] 1.5mm<f5<1.7mm, by constraining the ratio of the optical power of the fifth lens 5 to the effective focal length of the optical imaging system within a reasonable range, the configured vehicle-mounted surround view optical system has the advantages of wide angle, small aperture, large aperture and excellent temperature characteristics, compact structure, easy processing and installation, and at the same time, the configuration of large aperture can increase the amount of light entering the optical system and higher imaging quality.
[0059] Furthermore, the refractive index Nd1 and the Abbe number Vd1 of the first lens 1 satisfy: Nd1>1.85, Vd1<30. This design can effectively reduce chromatic aberration, optimize lens aberration, and thus effectively improve the imaging quality of the system.
[0060] Furthermore, the refractive index Nd2 and the Abbe number Vd2 of the second lens 2 satisfy: Nd2>1.51, Vd2>54.21. This design can effectively reduce chromatic aberration, optimize lens aberration, and thus effectively improve the imaging quality of the system.
[0061] Furthermore, the refractive index Nd3 and the Abbe number Vd3 of the third lens 3 satisfy: Nd3>1.81, Vd3<25. This design can effectively reduce chromatic aberration, optimize lens aberration, and thus effectively improve the imaging quality of the system.
[0062] Furthermore, the refractive index Nd4 and the Abbe number Vd4 of the fourth lens 4 satisfy: Nd4>1.6, Vd4<21. This design can effectively reduce chromatic aberration, optimize lens aberration, and thus effectively improve the imaging quality of the system.
[0063] Furthermore, the refractive index Nd5 and the Abbe number Vd5 of the fifth lens 5 satisfy: Nd5<1.6, Vd5>50.5. This design can effectively reduce chromatic aberration, optimize lens aberration, and thus effectively improve the imaging quality of the system.
[0064] Further, as a preferred embodiment of the present invention but not a limitation, the maximum angle CRA of the full-field chief light of the optical system incident on the image plane satisfies: CRA < 17°. This design can make the CRA of the lens more consistent with the CRA of the chip, thereby improving the photosensitivity efficiency of the chip.
[0065] Further, as a preferred embodiment of the present invention but not limitation, the curvature radius R1 of the object side of the first lens satisfies: 10 < R1 < 19. By controlling the object side of the first lens 1, the total deflection angle of the object side of the first lens 1 at the edge field of view can be reasonably controlled within a reasonable range.
[0066] Further, as a preferred embodiment of the present invention but not limitation, the curvature radius R1 of the object side of the fifth lens satisfies: R1 < 0.95. By limiting the curvature radius of the object side of the fifth lens 5, the shape of the fifth lens 5 can be effectively constrained, thereby effectively improving the imaging quality of the system.
[0067] Further, as a preferred embodiment of the present invention but not a limitation, the total optical length TTL of the optical system satisfies: TTL ≤ 18.5 mm. This design can reduce the total optical length and effectively miniaturize the lens.
[0068] Further, as a preferred embodiment of the present invention but not limiting, the third lens is a glass lens, and this design can improve the performance under high and low temperature conditions;
[0069] Further, as a preferred embodiment of the present invention but not limiting, the F number and FOV of the optical system satisfy: 1.9≤F number≤2.1, 97.5°≤FOV≤100.5°, the configuration of the large aperture can increase the amount of light entering the optical system and higher imaging quality, and the ultra-wide angle meets the user's use needs;
[0070] Further, as a preferred embodiment of the present invention but not limiting, the fourth lens and the fifth lens are bonded together to form a combined lens;
[0071] The refractive index Nd4 and Abbe number Vd4 of the fourth lens, as well as the refractive index Nd5 and Abbe number Vd5 of the fifth lens, satisfy: Nd4>1.6, Vd4<21; Nd5<1.6, Vd5>50.5; this design increases the difference between the refractive index and the Abbe number of the lens, which can effectively reduce chromatic aberration.
[0072] Specifically, as a preferred embodiment of the present invention but not limiting, Figure 1-3As shown, in this embodiment 1, the focal length of the first lens 1 is f1=-4.076mm, the focal length of the second lens 2 is f2=-3.18mm, the focal length of the third lens 3 is f3=4.17mm, the focal length of the fourth lens 4 is f4=-1.817mm, the focal length of the fifth lens 5 is f5=1.62mm, the total optical length TTL=17.94mm, and the surface type, curvature radius, thickness and material parameters of each lens are shown in Table 1:
[0073] Table 1: Basic parameters of the optical system of Example 1
[0074]
[0075] In the above Table 1, along the optical axis from the object plane to the image plane 8, OBJ is the object plane; S1 and S2 correspond to the two surfaces of the first lens 1; S3 and S4 correspond to the two surfaces of the second lens 2; S5 and S6 correspond to the two surfaces of the third lens 3; S8 and S9 correspond to the two surfaces of the fourth lens 4; S9 and S10 correspond to the two surfaces of the fifth lens 5; STO is the position of the aperture 6; S11 and S12 correspond to the two surfaces of the filter 7; IMA corresponds to the image plane 8.
[0076] Further, in Table 1, the object side and image side of any one of the second lens 2, the fourth lens 4, and the fifth lens 5 are aspherical surfaces, and the surface shape of each aspherical lens can be defined by but not limited to the following aspherical formula:
[0077]
[0078] Wherein, x is the distance from the corresponding point on the aspherical surface to the plane tangent to the vertex of the surface, h is the distance from the corresponding point on the aspherical surface to the optical axis, c is the curvature of the vertex of the aspherical surface, k is the cone coefficient, and Ai is the coefficient corresponding to the i-th high-order term in the aspherical surface shape formula. Table 2 shows the cone coefficients and high-order term coefficients A4, A6, A8, A10, A12, A14, A16, A18 and A20 of each aspherical surface that can be used in Example 1.
[0079] Table 2: Aspheric surface related values of the lens surface of Example 1
[0080]
[0081] Figure 2 The astigmatism and distortion curves of the optical imaging lens of Example 1 are shown, where astigmatism represents the meridional image curvature and the sagittal image curvature, and distortion represents the distortion magnitude values corresponding to different image heights; Figure 3 The MTF curve of the optical imaging lens of Example 1 is shown, which represents the MTF values in the meridian direction and sagittal direction of different fields of view at different spatial frequencies. Figure 2 and Figure 3 It can be seen that the optical imaging system provided in Example 1 can achieve good imaging quality and has higher imaging quality.
[0082] Specifically, as a preferred embodiment of the present invention but not limiting, Figure 4-6 As shown, in this embodiment 2, the focal length f1 of the first lens 1 is -4.01 mm, the focal length f2 of the second lens 2 is -2.88 mm, the focal length f3 of the third lens 3 is 4.1 mm, the focal length f4 of the fourth lens 4 is -1.98 mm, the focal length f5 of the fifth lens 5 is 1.65 mm, the total optical length TTL is 17.91 mm, and the surface type, curvature radius, thickness and material parameters of each lens are shown in Table 3:
[0083] Table 3: Basic parameters of the optical system of Example 2
[0084]
[0085] In the above Table 3, along the optical axis from the object plane to the image plane 8, OBJ is the object plane; S1 and S2 correspond to the two surfaces of the first lens 1; S3 and S4 correspond to the two surfaces of the second lens 2; S5 and S6 correspond to the two surfaces of the third lens 3; S8 and S9 correspond to the two surfaces of the fourth lens 4; S9 and S10 correspond to the two surfaces of the fifth lens 5; STO is the position of the aperture 6; S11 and S12 correspond to the two surfaces of the filter 7; IMA corresponds to the image plane 8.
[0086] Further, in Table 3, the object side and image side of any one of the second lens 2, the fourth lens 4, and the fifth lens 5 are aspherical surfaces, and the surface shape of each aspherical lens can be defined by but not limited to the following aspherical formula:
[0087]
[0088] Wherein, x is the distance from the corresponding point on the aspherical surface to the plane tangent to the vertex of the surface, h is the distance from the corresponding point on the aspherical surface to the optical axis, c is the curvature of the vertex of the aspherical surface, k is the cone coefficient, and Ai is the coefficient corresponding to the i-th high-order term in the aspherical surface shape formula. Table 4 shows the cone coefficients and high-order term coefficients A4, A6, A8, A10, A12, A14, A16, A18 and A20 of each aspherical surface that can be used in Example 2.
[0089] Table 4: Aspheric surface related values of lens surface in Example 2
[0090]
[0091] Figure 5The astigmatism and distortion curves of the optical imaging lens of Example 2 are shown, where astigmatism represents the meridional image curvature and the sagittal image curvature, and distortion represents the distortion magnitude values corresponding to different image heights; Figure 6 The MTF curve of the optical imaging lens of Example 2 is shown, which represents the MTF values in the meridian direction and sagittal direction of different fields of view at different spatial frequencies. Figure 5 and Figure 6 It can be seen that the optical imaging system provided in Example 2 can achieve good imaging quality and has higher imaging quality.
[0092] Specifically, as a preferred embodiment of the present invention but not limiting, Figure 7-9 As shown, in this embodiment 3, the focal length f1 of the first lens 1 is -4.13mm, the focal length f2 of the second lens 2 is -3.01mm, the focal length f3 of the third lens 3 is 4.1mm, the focal length f4 of the fourth lens 4 is -1.77mm, the focal length f5 of the fifth lens 5 is 1.65mm, the total optical length TTL is 17.93mm, and the surface type, curvature radius, thickness and material parameters of each lens are shown in Table 5:
[0093] Table 5: Basic parameters of the optical system of Example 3
[0094]
[0095] In the above Table 5, along the optical axis from the object plane to the image plane 8, OBJ is the object plane; S1 and S2 correspond to the two surfaces of the first lens 1; S3 and S4 correspond to the two surfaces of the second lens 2; S5 and S6 correspond to the two surfaces of the third lens 3; S8 and S9 correspond to the two surfaces of the fourth lens 4; S9 and S10 correspond to the two surfaces of the fifth lens 5; STO is the position of the aperture 6; S11 and S12 correspond to the two surfaces of the filter 7; IMA corresponds to the image plane 8.
[0096] Further, in Table 5, the object side surface and the image side surface of any one of the second lens 2, the fourth lens 4, and the fifth lens 5 are aspherical surfaces, and the surface shape of each aspherical lens can be defined by but not limited to the following aspherical surface formula:
[0097]
[0098] Wherein, x is the distance from the corresponding point on the aspheric surface to the plane tangent to the vertex of the surface, h is the distance from the corresponding point on the aspheric surface to the optical axis, c is the curvature of the vertex of the aspheric surface, k is the cone coefficient, and Ai is the coefficient corresponding to the i-th high-order term in the aspheric surface shape formula. Table 6 shows the cone coefficients and high-order term coefficients A4, A6, A8, A10, A12, A14, A16, A18 and A20 of each aspheric surface that can be used in Example 3.
[0099] Table 6: Aspheric surface related values of lens surface in Example 3
[0100]
[0101] Figure 8 The astigmatism and distortion curves of the optical imaging lens of Example 3 are shown, where astigmatism represents the meridional image curvature and the sagittal image curvature, and distortion represents the distortion magnitude values corresponding to different image heights; Fig. 9 The MTF curve of the optical imaging lens of Example 3 is shown, which represents the MTF values in the meridian direction and sagittal direction of different fields of view at different spatial frequencies. Figure 8 and Fig. 9 It can be seen that the optical imaging system provided in Example 3 can achieve good imaging quality and has higher imaging quality.
[0102] Further, in Examples 1-3, the basic data are as follows:
[0103] Table 7: Basic data of Examples 1-3
[0104]
[0105] A camera module comprises at least an optical lens, in which the above-mentioned vehicle-mounted optical system is installed. The vehicle-mounted lens of the present invention has the characteristics of ultra-wide angle, small aperture, large aperture and stable performance under temperature, and has stronger competitiveness among the same type of lenses.
[0106] As described above, one or more implementation methods are provided in combination with specific contents, and the specific implementation of the utility model is not limited to these descriptions. Any method, structure, etc. similar to or identical to the method, structure, etc. of the utility model, or a number of technical deductions or replacements based on the concept of the utility model, shall be regarded as the protection scope of the utility model.
Claims
1. A vehicle-mounted lens optical system, comprising a first lens, a second lens, a third lens, a fourth lens, and a fifth lens in sequence from the object plane to the image plane along the optical axis, characterized in that: The object side of the first lens is convex, the image side is concave, and its optical power is negative; The object side of the second lens is convex or concave, the image side is concave, and its optical power is negative; The object side and the image side of the third lens are both convex, and its optical power is positive; The object side of the fourth lens is convex, the image side is concave, and its optical power is negative; The object side and the image side of the fifth lens are both convex surfaces, and its optical power is positive.
2. The vehicle-mounted lens optical system according to claim 1, characterized in that: Each lens of the optical system meets the following conditions: -5.1mm<f1<-3.2mm; -3.5mm<f2<-2.5mm; 3.6mm<f3<4.3mm; -2mm<f4<-1.5mm; 1.5mm<f5<1.7mm; Among them, f1 is the focal length of the first lens, f2 is the focal length of the second lens, f3 is the focal length of the third lens, f4 is the focal length of the fourth lens, and f5 is the focal length of the fifth lens.
3. The vehicle-mounted lens optical system according to claim 1, characterized in that: Each lens of the optical system meets the following conditions: Nd1>1.85,Vd1<30; Nd2>1.51,Vd2>54.21; Nd3>1.81,Vd3<25; Nd4>1.6,Vd4<21; Nd5<1.6,Vd5>50.5; Among them, Nd1 is the refractive index of the first lens, Vd1 is the Abbe number of the first lens; Nd2 is the refractive index of the second lens, Vd2 is the Abbe number of the second lens; Nd3 is the refractive index of the third lens, Vd3 is the Abbe number of the third lens; Nd4 is the refractive index of the fourth lens, Vd4 is the Abbe number of the fourth lens; Nd5 is the refractive index of the fifth lens, Vd5 is the Abbe number of the fifth lens.
4. The vehicle-mounted lens optical system according to any one of claims 1 to 3, characterized in that: The maximum angle CRA of the full-field chief ray incident on the image plane of the optical system satisfies: CRA < 17°.
5. The vehicle-mounted lens optical system according to any one of claims 1 to 3, characterized in that: The curvature radius R1 of the object surface side of the first lens satisfies: 10 < R1 < 19; and / or The curvature radius R1 of the object surface side of the fifth lens satisfies: R1 < 0.
95.
6. The vehicle-mounted lens optical system according to any one of claims 1 to 3, characterized in that: The total optical length TTL of the optical system satisfies: TTL ≤ 18.5 mm.
7. The vehicle-mounted lens optical system according to any one of claims 1 to 3, characterized in that: The third lens is a glass lens.
8. The vehicle-mounted lens optical system according to any one of claims 1 to 3, characterized in that: The F number of the optical system: 1.9 ≤ F number ≤ 2.1; and / or The full field of view FOV of the optical system satisfies: 97.5°≤ FOV≤ 100.5°.
9. The vehicle-mounted lens optical system according to any one of claims 1 to 3, characterized in that: The aperture is disposed between the third lens and the fourth lens; and / or The fourth lens and the fifth lens are bonded together to form a combined lens.
10. A camera module, comprising at least an optical lens, characterized in that: The optical lens is equipped with the vehicle-mounted lens optical system according to any one of claims 1 to 9.
Citation Information
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