Optical lens, camera module, and electronic device
In accordance with an embodiment, an optical lens includes a plurality of lenses that are sequentially arranged from an object side of the optical lens to an image side of the optical lens. A first lens of the plurality of lenses is a lens bent towards the image side and has a negative focal power; and an object-side surface of at least one of the lenses comprises at least one inflection point.
1 . An optical lens, comprising:
a first lens, a second lens, a third lens, a fourth lens, a fifth lens, a sixth lens, and a seventh lens that are sequentially arranged from an object side of the optical lens to an image side of the optical lens, wherein:
the first lens is a lens bent towards the image side, and the first lens has a negative focal power,
each of the first lens, the second lens, the third lens, the fourth lens, the fifth lens, the sixth lens and the seventh lens comprises an object-side surface facing the object side and an image-side surface facing the image side,
the object-side surface and the image-side surface of each of the sixth lens and the seventh lens are free-form surfaces,
the object-side surface of the sixth lens or the object-side surface of the seventh lens comprises at least one inflection point, and the optical lens meets the following relationship:
FOV≥125°, and |DIST|≤40%,
where FOV is a field of view of the optical lens, and DIST is a distortion parameter of imaging of the optical lens,
a combined focal power of the second lens and the third lens is a positive focal power,
a combined focal power of the fourth lens and the fifth lens is a negative focal power, and
a combined focal power of the sixth lens and the seventh lens is a negative focal power.
2 . The optical lens according to claim 1 , wherein the object-side surface of the first lens comprises at least one inflection point.
3 . The optical lens according to claim 1 , wherein the optical lens meets the following relationship:
0.5≤| D 1/ IMH|≤ 1.5, where
D1 is a diameter of the first lens, and IMH is a diagonal length of an effective pixel region on an imaging plane of the optical lens.
4 . The optical lens according to claim 1 , wherein the optical lens meets the following relationship:
1.5≤ F #≤ 2.8, where
F # is an aperture F-number of the optical lens.
5 . The optical lens according to claim 1 , wherein the optical lens meets the following relationship:
0.8≤|TTL/ IMH |≤1.5, where
TTL is a total track length of the optical lens, and IMH is a diagonal length of an effective pixel region on an imaging plane of the optical lens.
6 . The optical lens according to claim 1 , wherein the optical lens meets the following relationship:
0.1 ≤|f /TTL|≤0.4, where
f is a focal length of the optical lens, and TTL is a total track length of the optical lens.
7 . The optical lens according to claim 1 , wherein the optical lens meets the following relationship:
1.5≤| f 1/ f|≤ 2, where
f1 is a focal length of the first lens, and f is a focal length of the optical lens.
8 . The optical lens according to claim 1 , wherein the optical lens meets the following relationship:
2.5≤| f 7/ f|≤ 4, where
f7 is a focal length of the seventh lens, and f is the focal length of the optical lens.
9 . The optical lens according to claim 1 , wherein the fourth lens and the seventh lens each have a negative focal power.
10 . A camera, comprising:
an optical lens, comprising:
a first lens, a second lens, a third lens, a fourth lens, a fifth lens, a sixth lens, and a seventh lens that are sequentially arranged from an object side of the optical lens to an image side of the optical lens, wherein:
the first lens is a lens bent towards the image side, and the first lens has a negative focal power,
each of the first lens, the second lens, the third lens, the fourth lens, the fifth lens, the sixth lens and the seventh lens comprises an object-side surface facing the object side and an image-side surface facing the image side,
the object-side surface and the image-side surface of each of the sixth lens and the seventh lens are free-form surfaces,
the object-side surface of the sixth lens or the object-side surface of the seventh lens comprises at least one inflection point, and the optical lens meets the following relationship:
FOV≥125°, and |DIST|≤40%,
where FOV is a field of view of the optical lens, and DIST is a distortion parameter of imaging of the optical lens,
a combined focal power of the second lens and the third lens is a positive focal power,
a combined focal power of the fourth lens and the fifth lens is a negative focal power, and
a combined focal power of the sixth lens and the seventh lens is a negative focal power; and
a photosensitive element located on the image side of the optical lens, wherein the optical lens is configured to project light from the object side of the optical lens to the photosensitive element.
11 . The camera according to claim 10 , wherein the object-side surface of the first lens comprises at least one inflection point.
12 . The camera according to claim 10 , wherein the optical lens meets the following relationship:
0.5≤| D 1/ IMH|≤ 1.5,
where D1 is a diameter of the first lens, and IMH is a diagonal length of an effective pixel region on an imaging plane of the optical lens.
13 . The camera according to claim 10 , wherein the optical lens meets the following relationship:
1.5≤ F #≤ 2.8,
where F # is an aperture F-number of the optical lens.
14 . The camera according to claim 10 , wherein the optical lens meets the following relationship:
0.8≤|TTL/ IMH |≤1.5,
where TTL is a total track length of the optical lens, and IMH is a diagonal length of an effective pixel region on an imaging plane of the optical lens.
15 . An electronic device, comprising:
an image processor; and
a camera communicatively connected to the image processor, the camera is configured to: obtain image data and input the image data into the image processor, and the image processor is configured to process the image data output by the camera to the image processor, wherein the camera comprises:
an optical lens, comprising a first lens, a second lens, a third lens, a fourth lens, a fifth lens, a sixth lens, and a seventh lens that are sequentially arranged from an object side of the optical lens to an image side of the optical lens, wherein:
the first lens is a lens bent towards the image side, and the first lens has a negative focal power,
each of the first lens, the second lens, the third lens, the fourth lens, the fifth lens, the sixth lens and the seventh lens comprises an object-side surface facing the object side and an image-side surface facing the image side,
the object-side surface and the image-side surface of each of the sixth lens and the seventh lens are free-form surfaces, and
the object-side surface of the sixth lens or the object-side surface of the seventh lens comprises at least one inflection point, and the optical lens meets the following relationship:
FOV≥125°, and |DIST|≤40%,
where FOV is a field of view of the optical lens, and DIST is a distortion parameter of imaging of the optical lens,
a combined focal power of the second lens and the third lens is a positive focal power,
a combined focal power of the fourth lens and the fifth lens is a negative focal power, and
a combined focal power of the sixth lens and the seventh lens is a negative focal power; and
a photosensitive element located on the image side of the optical lens, wherein the optical lens is configured to project light from the object side of the optical lens to the photosensitive element.
16 . The electronic device according to claim 15 , wherein the object-side surface of the first lens comprises at least one inflection point.
17 . The electronic device according to claim 15 , wherein the optical lens meets the following relationship:
0.5≤| D 1/ IMH|≤ 1.5,
where D1 is a diameter of the first lens, and IMH is a diagonal length of an effective pixel region on an imaging plane of the optical lens.
18 . The electronic device according to claim 15 , wherein the optical lens meets the following relationship:
1.5≤ F #≤ 2.8,
where F # is an aperture F-number of the optical lens.
19 . The electronic device according to claim 15 , wherein the optical lens meets the following relationship: 0.8≤|TTL/IMH|≤1.5,
where TTL is a total track length of the optical lens, and IMH is a diagonal length of an effective pixel region on an imaging plane of the optical lens.
20 . The electronic device according to claim 15 , wherein the optical lens meets the following relationship:
1.5≤| f 1/ f|≤ 2, where
f1 is a focal length of the first lens, and f is a focal length of the optical lens.