LARGE APERTURE ANAMORPHIC LENS
20220050271 · 2022-02-17
Assignee
Inventors
Cpc classification
G02B13/18
PHYSICS
International classification
G02B13/00
PHYSICS
Abstract
A large aperture anamorphic lens includes a cylindrical lens group arranged in a direction from an object side to an image side. The cylindrical lens group includes a anamorphic group and together form an imaging group. The anamorphic group includes a first lens, a second lens, and a third lens arranged in a direction of an object side to an image side. The first lens and the second lens may be a negative optical power cylindrical lens, and the third lens may be a positive optical power cylindrical lens. Through the optical characteristics of the cylindrical lens in the anamorphic group, the entering horizontal light is compressed while the vertical light path maintains unchanged. The imaging group comprehensively corrects the light so that the horizontal field of view angle is increased by about 33% to achieve a magnification by 1.33 times for an anamorphic shooting.
Claims
1: A large aperture anamorphic lens comprising: An anamorphic group comprising cylindrical lenses and an imaging group comprising spherical lenses, wherein the anamorphic group and the imaging group are dispose with respect from an object side to an image side; wherein the anamorphic group, from the object side to the image side, sequentially arranges a first lens (1), a second lens (2), and a third lens (3), wherein the first lens (1) and the second lens (2) comprise cylindrical lenses with negative focal power, wherein the third lens (3) comprises a positive focal power cylindrical lens; wherein the imaging group comprise a fourth lens (4) and to an N-th lens in an order along a direction of an optical path toward the image side; wherein N is a natural number greater than or equal to 10; wherein lenses of the imaging group comprise a focal power distribution meeting a relationship of:
300<abs(f.sub.1-3/f.sub.4-N);
30 millimeter (mm)<f.sub.4-N<40 mm;
1.20<f.sub.4-N/f.sub.1-3<1.50; wherein f comprises a focal length of lenses in an X direction, where the subscript number of f represents a number of the nth lenses of the anamorphic lens, thus f.sub.1 comprises the focal length in the X direction of the first lens, and f.sub.1-N comprises the combined focal length of the first to Nth lenses in the X direction of N number of lenses.
2: The large aperture anamorphic lens according to claim 1, wherein the imaging group comprises a fourth lens (4), a fifth lens (5), a sixth lens (6), The seventh lens (7), the eighth lens (8), the ninth lens (9), the tenth lens (10), the eleventh lens (11), and the twelfth lens (12).
3: The large aperture anamorphic lens according to claim 2, wherein the focal power distribution of the lenses constituting the anamorphic group and the lenses constituting the imaging group comprise the following relationship:
−1.40<f.sub.2-3/f.sub.1<−1.25;
1.50<f.sub.4-7/f.sub.4-12<2.60;
0.60<f.sub.8-12/f.sub.4-12<0.80;
0.90<f.sub.10-12/f.sub.8-12<1.30; wherein f comprises a focal length of lenses in an X direction, where the subscript number of f represents a number of the 12th lenses of the anamorphic lens, thus f.sub.1 comprises the focal length in the X direction of the first lens, and f.sub.1-12 comprises the combined focal length of the first to 12th lenses in the X direction of twelve lenses.
4: The large aperture anamorphic lens according to claim 3, wherein the fourth lens (4), the seventh lens (7), the eighth lens (8), and the twelfth lens (12) comprise spherical lenses with negative focal power, and wherein the fifth lens (5), the sixth lens (6), the ninth lens (9), the tenth lens (10) and the eleven lenses (11) comprise positive focal power spherical lenses.
5: The large aperture anamorphic lens according to claim 3, wherein the second lens (2) and the third lens (3) are configured to be joined together.
6: The large aperture anamorphic lens according to claim 2, wherein the sixth lens (6) and the seventh lens (7) are configured to be joined together.
7. The large aperture anamorphic lens according to claim 2 wherein the eighth lens (8) and the ninth lens (9) are configured to be joined together.
8. The large aperture anamorphic lens according to claim 2, wherein the eleventh lens (11) and the twelfth lens (12) are configured to be joined together.
9: The large aperture anamorphic lens according to claim 2, wherein a length of the anamorphic lens is less than 115 mm, and a maximum outer diameter of the anamorphic lens is less than 80 mm.
10. The large aperture anamorphic lens according to claim 2, wherein the anamorphic lens has a focal length in a Y direction of 35 mm and an aperture of 1.8.
11. The large aperture anamorphic lens according to claim 2, wherein a mass of the anamorphic lens is less than 700 gram (g).
Description
DESCRIPTION OF THE DRAWINGS
[0028] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the drawings needed to be used in embodiments or the description of the prior art are briefly introduced below. Obviously, the drawings in the following are some embodiments of the present invention. For those of ordinary skill in the art, other drawings may be obtained based on these drawings without undue creative labor.
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035] The following lists the labels for the reference numbers:
[0036] 1—first lens; 2—second lens; 3—third lens; 4—fourth lens; 5—fifth lens; 6—sixth lens; 7—seventh lens; 8—eighth lens; 9—ninth lens; 10—tenth lens; 11—eleventh lens; 12—twelfth lens; 13—anamorphic group; 14—imaging group.
DETAILED DESCRIPTION
[0037] The technical solution of the present invention may be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments may be part of the present invention, but not all of them. Based on the embodiments of the present invention, all other embodiments obtained by a person of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0038] In the description of the present invention, it is noted that the terms “center”, “up”, “down”, “left”, “right”, “vertical”, “horizontal”, “inside”, “outside”, etc., are meant to indicate orientation or positional relationship and they may be based on the orientation or positional relationship shown in the drawings, and may only be for the convenience of describing the present invention and simplified description, and does not indicate or imply that the device or element referred to must have a specific orientation, a specific construction and operation as they are not be construed as limiting the invention. In addition, the terms “first,” “second,” and “third” may be used for descriptive purposes only, and should not be construed to indicate or imply relative importance.
[0039] In the description of embodiments of the present invention, it is noted that the terms “installation”, “connected”, and “connected” should be understood in a broad sense unless otherwise specified and limited. For example, they may be fixed connections or removable, connected or integrated; it may be mechanical or electrical; it may be directly connected, or it may be indirectly connected through an intermediate medium, or it may be the internal communication of two elements. For those of ordinary skill in the art, the specific meanings of the above terms of embodiments of the present invention may be understood in a case-by-case basis.
[0040] In addition, the technical features involved in the different embodiments of the present invention described below may be combined with each other as long as they do not conflict with each other.
Example 1
[0041] As shown in
[0042] In one embodiment, the first lens 1, the second lens 2, and the third lens 3 may be cylindrical lenses. The second lens 2 and the third lens 3 may be joined together. Together with the first lens 1 to form an anamorphic group 13. The fourth lens 4, the fifth lens 5, the sixth lens 6, the seventh lens 7, the eighth lens 8, the ninth lens 9, the tenth lens 10, the eleventh lens 11 and the twelfth lens 12 may form an imaging group 14.
[0043] In one embodiment, the first lens 1 may be a negative optical power cylindrical lens, the second lens 2 may be a negative cylindrical lens, and the third lens 3 may be a positive optical power cylindrical lens.
[0044] In a further embodiment, the fourth lens 4, the fifth lens 5, the sixth lens 6, the seventh lens 7, the eighth lens 8, the ninth lens 9, the tenth lens 10, the eleventh lens 11 and the twelfth lens 12 may be spherical lens. In one embodiment, the fourth lens 4, the seventh lens 7, the eighth lens 8, and the twelfth lens 12 may be all negative optical power spherical lenses. In another embodiment, the five lenses 5, the sixth lens 6, the ninth lens 9, the tenth lens 10, and the eleventh lens 11 may be all positive focal degree spherical lens. In yet another embodiment, the sixth lens 6 and the seventh lens 7 may be joined together; the eighth lens 8 and the ninth lens 9 may be joined together; and the eleventh lens 11 and the twelfth lens 12 may be joined together.
[0045] In one embodiment, the lenses that may be joined together may be consider as a unit. In this embodiment, the second lens 2 and the third lens 3 may be joined together; the sixth lens 6 and the seventh lens 7 may be joined together; the eighth lens 8 and the ninth lens 9 may be joined together; and the eleventh lens 11 and the twelfth lens 12 may be joined together. Therefore, in such an embodiment, the anamorphic lens may be composed of 12 lenses and 8 groups.
[0046] In a further embodiment, the combinations of the second lens 2 and the third lens 3, the sixth lens 6 and the seventh lens 7, the eighth lens 8 and the ninth lens 9, the eleventh lens 11 and the twelfth lens 12 are not specific limitation. For example, in this embodiment, the joining method may be via bonding. As an alternative embodiment, based on the spirit and scope of the present invention, in order to distinguish it from embodiments of the present application, the above-mentioned combination methods may be modified, such as lamination, gluing, integrated molding, or the like. After such bonding, the shape of the composite or combined lens may then be appropriately adjusted according to the above examples. Therefore, these alternative approaches may also be within the scope and spirit of the invention.
[0047] In one embodiment, specific numerical values of the actual parameters of each lens are not specifically limited. In this embodiment, the power of each lens or lens group may satisfy the following mathematical relationship:
300<abs(f.sub.1-3/f.sub.4-12);
30 mm<f.sub.4-12<40 mm;
1.20<f.sub.4-12/f.sub.1-12<1.50;
−1.40<f.sub.2-3/f.sub.1<−1.30;
1.50<f.sub.4-7/f.sub.4-12<2.60;
0.60<f.sub.8-12/f.sub.4-12<0.80;
0.90≤f.sub.10-12/f.sub.8-12<1.30;
[0048] Where, f may represent a focal length of the lens in X direction (e.g., horizontal direction), where the subscript number of f represents a number of the twelve lenses of the anamorphic lens. For example, f.sub.1 may be the focal length in the X direction of the first lens, and f.sub.1-12 may be the combined focal length of the first to 12th lenses in the X direction of twelve lenses, and so on.
[0049] The following table may The actual parameters of each lens of this embodiment that meet the above mathematical relationship are listed below:
TABLE-US-00001 Surface radius Thickness Refractive Abbe Mass Lens Shape (mm) (mm) index Number (g) First lens Cylindrical −198.20 2.50 1.653 57.43 44.20 Cylindrical 49.70 8.98 Second Cylindrical 245.30 14.00 1.718 23.80 72.20 lens Third Cylindrical 36.26 15.71 1.916 31.10 46.60 lens Cylindrical −190.26 7.50 Fourth Spherical −35.89 1.20 1.697 25.02 14.00 lens Spherical −62.48 0.30 Fifth lens Spherical 110.14 4.66 1.804 46.59 9.20 Spherical −64.77 3.75 Sixth Spherical 23.61 3.62 1.903 35.84 7.60 lens Seventh Spherical 71.94 7.46 1.620 30.80 11.20 lens Spherical 13.06 4.37 Light bar inf 6.41 Eighth Spherical −11.59 1.20 1.879 25.37 4.30 lens Ninth Spherical 137.18 6.41 1.785 47.79 12.50 lens Spherical −17.17 0.30 Tenth Spherical 185.55 5.95 1.912 34.31 8.50 lens Spherical −35.19 0.24 Eleventh Spherical 87.43 7.61 1.760 49.55 14.20 lens Twelfth Spherical −30.20 1.20 1.913 33.44 8.40 lens Spherical −133.01 18.30
[0050] In one aspect, the first through the third lenses may be cylindrical lenses and the fourth through the twelfth lenses are spherical lenses.
[0051] In one aspect, before applying the anamorphic lens of the invention, a field of view of a given 35 mm lens with f/stop of 1.8 as the focal length is: V (vertical) 25.42 degree, H (horizontal) 37.39 degree.
[0052] After applying the anamorphic lens of embodiments of the invention, the field of view of the given 35 mm lens with f/stop of 1.8 as the focal length is: V (vertical) 25.42 degree, H (horizontal) 49.85 degree.
[0053] The angle of view of the contrast test field of view is unchanged in the vertical direction, and the angle of field deformation in the horizontal direction comparison is: 49.85/37.39=1.333.
[0054] In such an embodiment, the actual width ratio is in the range of 2.35-2.40, so the anamorphic ratio is 1.33. For example, the horizontal field of view angle is increased by 33%, so that 1.33 times anamorphic shooting may be achieved.
[0055] According to embodiments of the invention, when the anamorphic lens according to aspects of the invention is manufactured, the length of the anamorphic lens itself is less than 115 mm, with a maximum outer diameter less than 80 mm, and a mass less than 700 g. Such dimension is far smaller than similar type photographic camera interchangeable lenses, and, at the same time, it is far smaller than the professional cinema anamorphic lenses of the same specifications on the market.
[0056] In a further embodiment, no limitation is directed to the materials used for the lenses. For example, embodiments of the invention may use optical grade glasses for the lenses.
[0057] Moreover, the lens of the present application may be designed to be compatible with the bayonet of various brands of camera in the market according to the actual use's specification, so as to achieve personalized customization and universal use.
Example 2
[0058] As shown in
Example 3
[0059] As shown in
[0060] Obviously, the foregoing embodiments may merely be an example with clear description and not as a limitation. For those of ordinary skill in the art, other different forms of changes or modifications may be made on the basis of the above description. Some of the obvious changes or modifications may include, as listed below:
[0061] In one embodiment, based on Example 1, the joined sixth lens 6 and the seventh lens 7 may be divided into two independent lenses.
[0062] In one embodiment, based on Example 2, the fourth lens 4 and the fifth lens 5 may be joined or combined into one lens.
[0063] In one embodiment, based on Example 1, the joined eighth lens 8 and the ninth lens 9 may be divided into two independent lenses.
[0064] In one embodiment, based on Example 1 and Example 2, the joined eleventh lens 11 and the twelfth lens 12 may be combined into one lens.
[0065] In one embodiment, based on Example 1 and Example 2, the fifth lens 5 and the eleventh lens 10 may be easily split into two or more lenses, as long as the optical power of the split lens group is within the range of the original optical power. Other modifications based on above examples may be within the scope of the invention.
[0066] There is no need and cannot be exhaustive for all implementations. However, the obvious changes or variations introduced thereby are still within the protection scope created by the present invention.