The present disclosure relates to the field of optical imaging technologies, and particularly to an imaging lens, a camera module and a camera.
A lens is an important part of an optical imaging system, which is now one of the standard configurations for terminals, such as mobile phones, tablets, security monitoring equipment, and driving recorders. In recent years, with the continuous development of mobile information technologies, the demand for terminals increases continuously, and the number of lenses mounted on the terminal is also increased.
As the users are keen on thinner and lighter terminals, and in order to obtain better imaging effects of such terminals, imaging lenses are required to not only satisfy miniaturization but also have a wide field of view. However, in the related art, the current imaging lenses on the market are unable to achieve a good balance between miniaturization and the wide field of view; therefore, the field of view is generally sacrificed after the miniaturization of the lens, or there is a large volume after a wide field of view of the lens is obtained.
According to embodiments of the present disclosure, an imaging lens is provided. The imaging lens includes five lenses, and from an object side to an imaging plane, the five lenses are as follows:
According to the embodiments of the present disclosure, a camera module is provided, which includes the above-mentioned imaging lens and an image sensor opposite to the imaging lens.
According to the embodiments of the present disclosure, a camera is provided, which includes the camera module mentioned above, a processor and a memory. The camera module is configured to capture one or more images. The processor is configured to process the captured one or more images. The memory is configured to store the captured one or more images.
The following specific embodiments will further illustrate the present disclosure in conjunction with the above-mentioned drawings.
In order to facilitate understanding of the present disclosure, the present disclosure will be described comprehensively below with reference to the related drawings. Various embodiments of the present disclosure are shown in the drawings. However, the present disclosure can be implemented in many different forms and is not limited to the embodiments described herein. Rather, the purpose of these embodiments is to make the present disclosure more thorough and comprehensive.
Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the technical field of the present disclosure. The terms used in the description of the present disclosure herein are only for the purpose of describing specific embodiments, and are not intended to limit the present disclosure. The terms “and/or” as used herein include any of one or more listed items and all combinations thereof.
Referring to
In this embodiment, the first lens 1, the second lens 3, the third lens 4, the fourth lens 5 and the fifth lens 6 are all aspherical lenses, and the surface shape of each aspherical lens satisfies an expression:
Further, the imaging lens satisfies an expression:
|R4/R3|>1.1; (1)
Further, the imaging lens satisfies an expression:
1<R6/R5<4; (2)
Further, the imaging lens satisfies an expression:
0<(CT1±CT2+CT3+CT4+CT5)/Td<1; (3)
Further, the imaging lens satisfies an expression:
(V3−V5)<7; (4)
Further, the imaging lens satisfies an expression:
−3.5<f1/f<−2.5; (5)
Further, the imaging lens satisfies an expression:
0<f2/f3<1; (6)
Further, the imaging lens satisfies an expression:
0<(R7+R8)/(R7−R8)<1; (7)
Further, the imaging lens satisfies an expression:
0<Td/ImgH<1; (8)
Further, the imaging lens satisfies an expression:
0<f34/f<1; (9)
Further, the second lens 3 satisfies an expression:
1≤CT2/ET2≤1.5,
where CT2 represents the center thickness of the second lens 3, and ET2 represents an edge thickness of the second lens 3.
Further, the fourth lens 5 satisfies an expression:
CT4/ET4≥3,
where CT4 represents the center thickness of the fourth lens 5, and ET4 represents an edge thickness of the fourth lens 5.
Further, the fifth lens 6 satisfies an expression:
CT5/ET5≤0.5,
where CT5 represents the center thickness of the fifth lens 6, and ET5 represents an edge thickness of the fifth lens 6.
Further, the center thickness of the fourth lens 5 is greater than that of each of the first lens 1, the second lens 3, the third lens 4 and the fifth lens 6.
Further, the edge thickness of the fifth lens 6 is greater than that of each of the first lens 1, the second lens 3, the third lens 4 and the fourth lens 5.
Further, the maximum diameter of the stop 2 is smaller than that of each of the first lens 1, the second lens 3, the third lens 4, the fourth lens 5 and the fifth lens 6. The maximum diameter of the fifth lens 6 is greater than that of each of the first lens 1, the second lens 3, the third lens 4, and the fourth lens 5.
Referring to Table 1-1, parameters related to various lenses of the imaging lens in this embodiment are shown, where R represents a radius of curvature, d represents a spacing distance between the optical surfaces, nd represents the refractivity of the material, and Vd represents an Abbe number of the material.
Referring to Tables 1-2-A and 1-2-B, coefficients of various aspherical surfaces of the imaging lens in this embodiment are shown.
Referring to
In summary, in the imaging lens provided by this embodiment, five lenses with specific refractive powers are adopted, and specific surface shapes and coordination thereof are adopted. In this way, a wide field of view is provided, and meanwhile, a compact structure, a short total length and a good imaging quality are enabled, thereby achieving a good balance between miniaturization and the wide field of view of the lens. In addition, each of the lenses is an aspherical lens, which provides the following advantages:
Referring to
Referring to Table 2-1, parameters related to various lenses of the imaging lens in this embodiment are shown.
Referring to Tables 2-2-A and 2-2-B, coefficients of various aspherical surfaces of the imaging lens in this embodiment are shown.
Referring to
Referring to
Referring to Table 3-1, parameters related to various lenses of the imaging lens in this embodiment are shown.
Referring to Tables 3-2-A and 3-2-B, coefficients of various aspherical surfaces of the imaging lens in this embodiment are shown.
Referring to
Referring to
Referring to Table 4-1, parameters related to various lenses of the imaging lens in this embodiment are shown.
Referring to Tables 4-2-A and 4-2-B, coefficients of various aspherical surfaces of the imaging lens in this embodiment are shown.
Referring to
Referring to Table 5, optical characteristics and values of above expressions corresponding to above four embodiments are shown. The optical characteristics include the focal length f of the system, the aperture number F #, the total optical length TTL, and the field of view (FOV) 2θ.
It should be noted that, the imaging lens of any of the above Embodiments 1-4 can be applied in terminal devices such as mobile phones, tablets, security monitoring equipment, and driving recorders.
In the imaging lens provided by the embodiments of the present disclosure, five lenses with specific refractive powers are adopted, and specific surface shapes and coordination thereof are adopted. In this way, a wide field of view is provided, and meanwhile, a compact structure, a short total length and a good imaging quality are enabled, thereby achieving a good balance between miniaturization and the wide field of view of the lens.
Referring to
Referring to
The above embodiments only illustrate several implementations of the present disclosure, and the descriptions thereof are specific and detailed, but they should not be understood as limiting the scope of the present disclosure. It should be noted that, for those of ordinary skill in the art, several variants and modifications can be made without departing from the concept of the present disclosure, and they all fall within the protection scope of the present disclosure. Therefore, the protection scope of the patent of the present disclosure should be subject to the appended claims.
Number | Date | Country | Kind |
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201910592465.3 | Jul 2019 | CN | national |
This application is a continuation-in-part of an international application No. PCT/CN2020/078023 filed on Mar. 5, 2020. This international application claims priority to a Chinese patent application No. 201910592465.3 filed on Jul. 3, 2019. The entirety of the two applications is hereby incorporated into this application by reference.
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Number | Date | Country | |
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20220121014 A1 | Apr 2022 | US |
Number | Date | Country | |
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Parent | PCT/CN2020/078023 | Mar 2020 | WO |
Child | 17565420 | US |