IP Library › Granted Patent US 12,216,250
Granted Patent B2
US 12,216,250 · App. 17/529,880 · Granted Feb 4, 2025

Optical imaging lens assembly

Inventors: Fujian Dai (Yuyao, CN); Wuchao Xu (Yuyao, CN); Liefeng Zhao (Yuyao, CN)
Assignee: Zhejiang Sunny Optics Co., Ltd
G02B13/0045G02B9/64
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Quick Facts
Patent No.
US 12,216,250
App. No.
17/529,880
Granted
Feb 4, 2025
Kind
B2
Abstract

An optical imaging lens assembly, along an optical axis from an object side to an image side, sequentially includes: first to seventh lenses. The first lens has refractive power; the third lens has a concave object-side surface and a convex image-side surface; the fourth lens has negative refractive power, an object-side surface of the fourth lens is a concave surface, and an image-side surface of the fourth lens is a concave surface; the fifth lens has refractive power. The optical imaging lens assembly satisfies: TTL/ImgH≤1.5; and FOV>100°, where, TTL is a distance from an object-side surface of the first lens to an imaging plane of the optical imaging lens assembly on the optical axis, ImgH is half of a diagonal length of an effective pixel area on the imaging plane, and FOV is a maximum field-of-view of the optical imaging lens assembly.

Claims (60)

1. An optical imaging lens assembly, along an optical axis from an object side to an image side, sequentially comprising:

a first lens having refractive power;

a second lens;

a third lens, an object-side surface of the third lens being a concave surface, and an image-side surface of the third lens being a convex surface;

a fourth lens having negative refractive power, an object-side surface of the fourth lens being a concave surface, and an image-side surface of the fourth lens being a concave surface;

a fifth lens having refractive power;

a sixth lens having positive refractive power; and

a seventh lens having negative refractive power,

the optical imaging lens assembly satisfying:

TTL /Img H≤ 1.5; and

FOV>100°,

wherein, TTL is a distance from an object-side surface of the first lens to an imaging plane of the optical imaging lens assembly on the optical axis, ImgH is half of a diagonal length of an effective pixel area on the imaging plane, and FOV is a maximum field-of-view of the optical imaging lens assembly.

2. The optical imaging lens assembly according to claim 1 , wherein, the fifth lens has a convex object-side surface and a concave image-side surface.

3. The optical imaging lens assembly according to claim 1 , wherein, 0.5<R10/f<1.0,

wherein, R10 is a radius of curvature of an image-side surface of the fifth lens, and f is an effective focal length of the optical imaging lens assembly.

4. The optical imaging lens assembly according to claim 1 , wherein, 3.5<|f4×tan (FOV/2)|/R9<5.5,

wherein, f4 is an effective focal length of the fourth lens, FOV is the maximum field-of-view of the optical imaging lens assembly, and R9 is a radius of curvature of an object-side surface of the fifth lens.

5. The optical imaging lens assembly according to claim 1 , wherein, 2.0≤f12/f≤3.2,

wherein, f12 is a combined focal length of the first lens and the second lens, and f is an effective focal length of the optical imaging lens assembly.

6. The optical imaging lens assembly according to claim 1 , wherein, 2.0≤(CT4+CT5)/T45≤4.5,

wherein, CT4 is a center thickness of the fourth lens along the optical axis, CT5 is a center thickness of the fifth lens along the optical axis, and T45 is a spacing distance between the fourth lens and the fifth lens along the optical axis.

7. The optical imaging lens assembly according to claim 1 , wherein, 3.4≤SAG62/SAG61≤9.8,

wherein, SAG61 is an axial distance from an intersection of an object-side surface of the sixth lens and the optical axis to a vertex of an effective radius of the object-side surface of the sixth lens, and SAG62 is an axial distance from an intersection of an image-side surface of the sixth lens and the optical axis to a vertex of an effective radius of the image-side surface of the sixth lens.

8. The optical imaging lens assembly according to claim 1 , wherein, 3.0≤f2/f123+f3/f123≤4.5,

wherein, f2 is an effective focal length of the second lens, f3 is an effective focal length of the third lens, and f123 is a combined focal length of the first lens, the second lens, and the third lens.

9. The optical imaging lens assembly according to claim 1 , wherein, 0.5≤f2/f3≤1.5,

wherein, f2 is an effective focal length of the second lens, and f3 is an effective focal length of the third lens.

10. The optical imaging lens assembly according to claim 1 , wherein, 1.0≤(CT1+CT2+CT3+CT4+CT5)/(CT6+CT7)≤1.5,

wherein, CT1 is a center thickness of the first lens along the optical axis, CT2 is a center thickness of the second lens along the optical axis, CT3 is a center thickness of the third lens along the optical axis, CT4 is a center thickness of the fourth lens along the optical axis, CT5 is a center thickness of the fifth lens along the optical axis, CT6 is a center thickness of the sixth lens along the optical axis, and CT7 is a center thickness of the seventh lens along the optical axis.

11. The optical imaging lens assembly according to claim 1 , wherein,-4.0≤(R5+R6)/f3≤−1.0,

wherein, R5 is a radius of curvature of the object-side surface of the third lens, R6 is a radius of curvature of the image-side surface of the third lens, and f3 is an effective focal length of the third lens.

12. The optical imaging lens assembly according to claim 1 , wherein, 1.5≤ΣCT/Σ≤2.3,

wherein, ΣAT is a sum of spacing distances of any two adjacent lenses from the first lens to the seventh lens along the optical axis, and ΣCT is a sum of center distances of the first lens to the seventh lens respectively along the optical axis.

13. An optical imaging lens assembly, along an optical axis from an object side to an image side, sequentially comprising:

a first lens having refractive power;

a second lens;

a third lens, an object-side surface of the third lens being a concave surface, and an image-side surface of the third lens being a convex surface;

a fourth lens;

a fifth lens having refractive power;

a sixth lens having positive refractive power; and

a seventh lens having negative refractive power,

the optical imaging lens assembly satisfying:

TTL /Img H≤ 1.5;

FOV>100°; and

0<( R 9 +R 10)/ f< 2.0,

wherein, TTL is a distance from an object-side surface of the first lens to an imaging plane of the optical imaging lens assembly on the optical axis, ImgH is half of a diagonal length of an effective pixel area on the imaging plane, FOV is a maximum field-of-view of the optical imaging lens assembly, R9 is a radius of curvature of an object-side surface of the fifth lens, R10 is a radius of curvature of an image-side surface of the fifth lens, and f is an effective focal length of the optical imaging lens assembly.

14. The optical imaging lens assembly according to claim 13 , wherein, 0.5<R10/f<1.0,

wherein, R10 is the radius of curvature of the image-side surface of the fifth lens, and f is the effective focal length of the optical imaging lens assembly.

15. The optical imaging lens assembly according to claim 13 , wherein, 3.5<|f4×tan (FOV/2)|/R9<5.5,

wherein, f4 is an effective focal length of the fourth lens, FOV is the maximum field-of-view of the optical imaging lens assembly, and R9 is the radius of curvature of the object-side surface of the fifth lens.

16. The optical imaging lens assembly according to claim 13 , wherein, 2.0≤f12/f≤3.2,

wherein, f12 is a combined focal length of the first lens and the second lens, and fis the effective focal length of the optical imaging lens assembly.

17. The optical imaging lens assembly according to claim 13 , wherein, 2.0≤(CT4+CT5)/T45≤4.5,

wherein, CT4 is a center thickness of the fourth lens along the optical axis, CT5 is a center thickness of the fifth lens along the optical axis, and T45 is a spacing distance between the fourth lens and the fifth lens along the optical axis.

18. The optical imaging lens assembly according to claim 13 , wherein, 3.4≤SAG62/SAG61≤9.8,

wherein, SAG61 is an axial distance from an intersection of an object-side surface of the sixth lens and the optical axis to a vertex of an effective radius of the object-side surface of the sixth lens, and SAG62 is an axial distance from an intersection of an image-side surface of the sixth lens and the optical axis to a vertex of an effective radius of the image-side surface of the sixth lens.

19. The optical imaging lens assembly according to claim 13 , wherein, 3.0≤f2/f123+f3/f123≤4.5,

wherein, f2 is an effective focal length of the second lens, f3 is an effective focal length of the third lens, and f123 is a combined focal length of the first lens, the second lens, and the third lens.

20. The optical imaging lens assembly according to claim 13 , wherein, 0.5<f2/f3≤1.5,

wherein, f2 is an effective focal length of the second lens, and f3 is an effective focal length of the third lens.

Priority Claims (1)
CN 202011519323.3 · Dec 21, 2020 · national
Continuity (1)
Related Publication 20220196983A1 · Jun 23, 2022
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