The present invention relates to a lens assembly, in particular to the lens assembly applied to an electronic viewfinder.
The field of view of today's electronic viewfinder is mostly less than 30 degrees, which can no longer meet today's requirements. The present invention proposes a lens assembly including a new structure which can increase the field of view, increase the resolution, correct the aberration, and correct the chromatic aberration effectively. When applied to an electronic viewfinder, it can increase the field of view of the electronic viewfinder to about 45 degrees.
The invention provides a lens assembly to solve the above problems. The lens assembly of the invention is provided with characteristics of an increased field of view, an increased resolution, and still has a good optical performance.
The lens assembly in accordance with an exemplary embodiment of the invention includes a first lens, a second lens, a third lens, and a cover glass. The first lens is with positive refractive power and includes a convex surface facing an image side. The second lens is a meniscus lens with refractive power. The third lens is with positive refractive power and includes a convex surface facing the image side. The first lens, the second lens, the third lens, and the cover glass are arranged in order from the image side to an object side along a first optical axis. The lens assembly satisfies at least one of the following conditions: 0.6<f/TTL<0.8; 0.85<(f+BFL)/TTL<1.2; 0.36<(f−BFL)/TTL<0.55; 1.6<(TTL+BFL)/f<1.95; 0.5<(TTL-BFL)/f<1.15; wherein f is an effective focal length of the lens assembly, TTL is an interval from an image side surface of the first lens to a lighting surface along the first optical axis, and BFL is an interval from an object side surface of the lens closest to the object side to an image side surface of the cover glass along the first optical axis.
In another exemplary embodiment, the lens assembly further includes a fourth lens, wherein the fourth lens is with negative refractive power and includes a concave surface facing the object side.
In yet another exemplary embodiment, the fourth lens is disposed between the third lens and the cover glass.
In another exemplary embodiment, the first lens is a biconvex lens and further includes another convex surface facing the object side.
In yet another exemplary embodiment, wherein the second lens is with negative refractive power and includes a concave surface facing the image side and a convex surface facing the object side; the third lens is a biconvex lens and further includes another convex surface facing the object side; and the fourth lens is a biconcave lens and further includes another concave surface facing the image side.
In another exemplary embodiment, wherein the second lens further includes a convex surface facing the image side and a concave surface facing the object side; the third lens is a meniscus lens and further includes a concave surface facing the object side; and the fourth lens is a meniscus lens and further includes a convex surface facing the image side.
In yet another exemplary embodiment, wherein the third lens and the fourth lens are cemented; the first lens is a single lens instead of a cemented lens; the second lens is a single lens instead of a cemented lens; and an interval is disposed between the first lens and the second lens.
In another exemplary embodiment, the fourth lens further includes an image side surface facing the image side, wherein the image side surface does not include an inflection point; and the concave surface of the fourth lens does not include an inflection point.
In yet another exemplary embodiment, the first lens and the second lens can move \ b along the first optical axis for focusing.
In another exemplary embodiment, the lens assembly further includes a lens group, wherein the lens group is arranged along a second optical axis, and the first optical axis and the second optical axis are not coaxial.
In yet another exemplary embodiment, the lens assembly further includes an image sensor element, wherein the image sensor element is arranged along a second optical axis, and the first optical axis and the second optical axis are not coaxial.
In another exemplary embodiment, the lens assembly further includes a display source disposed between the cover glass and the object side, wherein the position of the display source overlaps with the lighting surface; and the cover glass and the display source are arranged in order from the image side to the object side along the first optical axis.
In yet another exemplary embodiment, the fourth lens is disposed between the second lens and the third lens.
In another exemplary embodiment, the first lens is a meniscus lens and further includes a concave surface facing the object side.
In yet another exemplary embodiment, wherein the second lens is with positive refractive power and includes a convex surface facing the image side and a concave surface facing the object side; the fourth lens is a meniscus lens and further includes a convex surface facing the image side; and the third lens is a biconvex lens and further includes another convex surface facing the object side.
In another exemplary embodiment, wherein the first lens is a single lens instead of a cemented lens; the second lens is a single lens instead of a cemented lens; and an interval is disposed between the first lens and the second lens.
In yet another exemplary embodiment, wherein the convex surface of the third lens does not include an inflection point; and the another convex surface of the third lens does not include an inflection point.
In another exemplary embodiment, the first lens and the second lens can move along the first optical axis for focusing.
In yet another exemplary embodiment, the lens assembly further includes a display source disposed between the cover glass and the object side, wherein the position of the display source overlaps with the lighting surface; and the cover glass and the display source are arranged in order from the image side to the object side along the first optical axis.
In another exemplary embodiment, the first lens, the second lens, the third lens, and the fourth lens can move synchronously along the optical axis for focusing.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
The following description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
The present invention provides a lens assembly including a first lens, a second lens, a third lens, and a cover glass. The first lens is with positive refractive power and includes a convex surface facing an image side. The second lens is a meniscus lens with refractive power. The third lens is with positive refractive power and includes a convex surface facing the image side. The first lens, the second lens, the third lens, and the cover glass are arranged in order from the image side to an object image side along a first optical axis. The lens assembly satisfies at least one of the following conditions: 0.6<f/TTL<0.8; 0.85<(f+BFL)/TTL<1.2; 0.36<(f−BFL)/TTL<0.55; 1.6<(TTL+BFL)/f<1.95; 0.5<(TTL−BFL)/f<1.15; wherein f is an effective focal length of the lens assembly, TTL is an interval from an image side surface of the first lens to a lighting surface along the first optical axis, and BFL is an interval from an object side surface of the lens closest to the object side to an image side surface of the cover glass along the first optical axis.
Referring to Table 1, Table 2, Table 4, Table 5, Table 7, and Table 8, wherein Table 1, Table 4, and Table 7 show optical specification in accordance with a first, second, and third embodiments of the invention, respectively and Table 2, Table and Table 8 show aspheric coefficients of each aspheric lens in Table 1, Table 4, and Table 7, respectively.
The first lenses L11, L21, L31 are biconvex lenses with positive refractive power and made of glass material, wherein the image side surfaces S12, S22, S32 are convex surfaces, the object side surfaces S13, S23, S33 are convex surfaces, and both of the image side surfaces S12, S22, S32 and object side surfaces S13, S23, S33 are aspheric surfaces.
The second lenses L12, L22, L32 are meniscus lenses with negative refractive power and made of glass material, wherein both of the image side surfaces S14, S24, S34 and object side surfaces S15, S25, S35 are aspheric surfaces.
The third lenses L13, L23, L33 are with positive refractive power and made of glass material, wherein the image side surfaces S16, S26, S36 are convex surfaces.
The fourth lenses L14, L24, L34 are with negative refractive power and made of glass material, wherein the object side surfaces S18, S29, S39 are concave surfaces.
In addition, the lens assemblies 1, 2, and 3 satisfy at least one of the following conditions:
0.6<f/TTL<0.8; (1)
0.85<(f+BFL)/TTL<1.2; (2)
0.36<(f−BFL)/TTL<0.55; (3)
1.6<(TTL+BFL)/f<1.95; (4)
0.5<(TTL−BFL)/f<1.15; (5)
A detailed description of a lens assembly in accordance with a first embodiment of the invention is as follows. Referring to
According to the foregoing, wherein: the image side surface S14 is a concave surface and the object side surface S15 is a convex surface for the second lens L12; the third lens L13 is a biconvex lens, wherein the object side surface S17 is a convex surface and both of the image side surface S16 and object side surface S17 are spherical surfaces; the fourth lens L14 is a biconcave lens, wherein the image side surface S17 is a concave surface and both of the image side surface S17 and object side surface S18 are spherical surfaces; the third lens L13 is cemented with the fourth lens L14; and both of the image side surface S19 and object side surface S110 of the cover glass CG1 are plane surfaces.
With the above design of the lenses, stop ST1, and at least one of the conditions (1)-(5) satisfied, the lens assembly 1 can have an effective increased field of view, an effective increased resolution, an effective corrected aberration, and an effective corrected chromatic aberration.
Table 1 shows the optical specification of the lens assembly 1 in
The aspheric surface sag z of each aspheric lens in table 1 can be calculated by the following formula:
z=ch
2/{1+[1−(k+1)c2h2]1/2}+Ah4+Bh6+Ch8+Dh10
where c is curvature, h is the vertical distance from the lens surface to the optical axis, k is conic constant and A, B, C, and D are aspheric coefficients.
In the first embodiment, the conic constant k and the aspheric coefficients A, B, C, D of each aspheric lens are shown in Table 2.
Table 3 shows the parameters and condition values for conditions (1)-(5) in accordance with the first embodiment of the invention. It can be seen from Table 3 that the lens assembly 1 of the first embodiment satisfies the conditions (1)-(5).
In addition, the lens assembly 1 of the first embodiment can meet the requirements of optical performance as seen in
Referring to
According to the foregoing, wherein: the image side surface S24 is a concave surface and the object side surface S25 is a convex surface for the second lens L22; the third lens L23 is a biconvex lens, wherein the object side surface S27 is a convex surface and both of the image side surface S26 and object side surface S27 are spherical surfaces; the fourth lens L24 is a biconcave lens, wherein the image side surface S28 is a concave surface and both of the image side surface S28 and object side surface S29 are aspheric surfaces; and both of the image side surface S210 and object side surface S211 of the cover glass CG2 are plane surfaces.
With the above design of the lenses, stop ST2, and at least one of the conditions (1)-(5) satisfied, the lens assembly 2 can have an effective increased field of view, an effective increased resolution, an effective corrected aberration, and an effective corrected chromatic aberration.
Table 4 shows the optical specification of the lens assembly 2 in
The definition of aspheric surface sag z of each aspheric lens in table 4 is the same as that of in Table 1, and is not described here again.
In the second embodiment, the conic constant k and the aspheric coefficients A, B, C, D of each aspheric lens are shown in Table 5.
Table 6 shows the parameters and condition values for conditions (1)-(5) in accordance with the second embodiment of the invention. It can be seen from Table 6 that the lens assembly 2 of the second embodiment satisfies the conditions (1)-(5).
In addition, the lens assembly 2 of the second embodiment can meet the requirements of optical performance as seen in
Referring to
According to the foregoing, wherein: the image side surface S34 is a convex surface and the object side surface S35 is a concave surface for the second lens L32; the third lens L33 is a meniscus lens, wherein the object side surface S37 is a concave surface and both of the image side surface S36 and object side surface S37 are aspheric surfaces; the fourth lens L34 is a meniscus lens, wherein the image side surface S38 is a convex surface and both of the image side surface S38 and object side surface S39 are aspheric surfaces; and both of the image side surface S310 and object side surface S311 of the cover glass CG3 are plane surfaces.
With the above design of the lenses, stop ST3, and at least one of the conditions (1)-(5) satisfied, the lens assembly 3 can have an effective increased field of view, an effective increased resolution, an effective corrected aberration, and an effective corrected chromatic aberration.
Table 7 shows the optical specification of the lens assembly 3 in
The definition of aspheric surface sag z of each aspheric lens in table 7 is the same as that of in Table 1, and is not described here again.
In the third embodiment, the conic constant k and the aspheric coefficients A, B, C, D of each aspheric lens are shown in Table 8.
Table 9 shows the parameters and condition values for conditions (1)-(5) in accordance with the third embodiment of the invention. It can be seen from Table 9 that the lens assembly 3 of the third embodiment satisfies the conditions (1)-(5).
In addition, the lens assembly 3 of the third embodiment can meet the requirements of optical performance as seen in
Referring to
The first lens L41 is a meniscus lens with positive refractive power and made of glass material, wherein the image side surface S42 is a convex surface, the object side surface S43 is a concave surface, and both of the image side surface S42 and object side surface S43 are aspheric surfaces.
The second lens L42 is a meniscus lens with positive refractive power and made of glass material, wherein the image side surface S44 is a convex surface, the object side surface S45 is a concave surface, and both of the image side surface S44 and object side surface S45 are aspheric surfaces.
The fourth lens L44 is a meniscus lens with negative refractive power and made of glass material, wherein the image side surface S46 is a convex surface, the object side surface S47 is a concave surface, and both of the image side surface S46 and object side surface S47 are aspheric surfaces.
The third lens L43 is a biconvex lens with positive refractive power and made of glass material, wherein the image side surface S48 is a convex surface, the object side surface S49 is a convex surface, and both of the image side surface S48 and object side surface S49 are aspheric surfaces.
Both of the image side surface S410 and object side surface S411 of the optical filter OF4 are plane surfaces.
Both of the image side surface S412 and object side surface S413 of the cover glass CG4 are plane surfaces.
With the above design of the lenses, stop ST4, and at least one of the conditions (1)-(5) satisfied, the lens assembly 4 can have an effective increased field of view, an effective increased resolution, an effective corrected aberration, and an effective corrected chromatic aberration.
Table 10 shows the optical specification of the lens assembly 4 in
The aspheric surface sag z of each aspheric lens in table 10 can be calculated by the following formula:
z=ch
2/{1+[1−(k+1)c2h2]1/2}+Ah4+Bh6+Ch8+Dh10+Eh12+Fh14
where c is curvature, h is the vertical distance from the lens surface to the optical axis, k is conic constant and A, B, C, D, E, and F are aspheric coefficients.
In the fourth embodiment, the conic constant k and the aspheric coefficients A, B, C, D, E, F of each aspheric lens are shown in Table 11.
Table 12 shows the parameters and condition values for conditions (1)-(5) in accordance with the fourth embodiment of the invention. It can be seen from Table 12 that the lens assembly 4 of the fourth embodiment satisfies the conditions (1)-(5).
In the above embodiments, the lens assemblies include 4 lenses, but it can be understood that a lens group can also be added and the lens group is arranged along a second optical axis, wherein the first optical axis and the second optical axis are not coaxial, and falls into the scope of the invention.
In the above embodiments, the lens assemblies can also be added an image sensor element and the image sensor element is arranged along a second optical axis, wherein the first optical axis and the second optical axis are not coaxial, and falls into the scope of the invention.
While the invention has been described by way of example and in terms of the preferred embodiment(s), it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
Number | Date | Country | Kind |
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111124102 | Jun 2022 | TW | national |