The invention relates to a lens apparatus.
The current development trend of a projector is toward high brightness and high resolution. Additionally, the projector is developed to have zoom capability in accordance with different application requirements, so that a lens apparatus therein is developed to have large aperture, high resolution and zoom capability. However, the known lens apparatus can't satisfy such requirements. Therefore, a lens apparatus needs a new structure in order to meet the requirements of large aperture, high resolution and zoom capability at the same time.
The invention provides a lens apparatus to solve the above problems. The lens apparatus of the invention is provided with characteristics of a decreased F-number, an increased resolution, and a capability to zoom, and still has a good optical performance.
The lens apparatus in accordance with the invention includes a first lens group, a second lens group, a third lens group and a fourth lens group. The first lens group includes a first lens with negative refractive power and a second lens with negative refractive power, wherein the first lens includes a convex surface facing an image side and a concave surface facing an objective side. The second lens group includes a third lens with positive refractive power. The third lens group includes a fourth lens with positive refractive power. The fourth lens group includes a fifth lens with negative refractive power, a sixth lens with positive refractive power and a seventh lens with positive refractive power, wherein the seventh lens includes a convex surface facing the image side. The first lens, the second lens, the third lens, the fourth lens, the fifth lens, the sixth lens and the seventh lens are arranged in order from the image side to the objective side along an optical axis. The lens apparatus satisfies: −2.28<fLG1/f<−0.59, where f is an effective focal length of the lens apparatus, and fLG1 is an effective focal length of the first lens group.
In another embodiment, the second lens includes a concave surface facing the objective side, the fourth lens includes a convex surface facing the image side, the fifth lens includes a concave surface facing the image side, the sixth lens includes a convex surface facing the image side, and the seventh lens includes a convex surface facing the objective side.
In yet another embodiment, the second lens includes a convex surface or a concave surface facing the image side, the third lens includes a convex surface or a concave surface facing the image side, the fourth lens includes a convex surface or a flat surface facing the objective side, the fifth lens includes a concave surface or a flat surface facing the objective side, and the sixth lens includes a convex surface or a flat surface facing the objective side.
In another embodiment, the first lens group is with negative refractive power and the fourth lens group is with positive refractive power.
In yet another embodiment, the second lens comprises a convex surface or a concave surface facing the image side; the third lens comprises a convex surface or a concave surface facing the image side; the fourth lens comprises a convex surface or a flat surface facing the objective side; the fifth lens comprises a concave surface or a flat surface facing the objective side; and the sixth lens comprises a convex surface or a flat surface facing the objective side.
In another embodiment, the first lens group further comprises an eighth lens disposed between the image side and the first lens, and the eighth lens is with positive refractive power and comprises a convex surface facing the image side and a concave surface facing the objective side.
In yet another embodiment, the second lens group is with positive refractive power, and the third lens group is with positive refractive power.
In another embodiment, the second lens comprises a concave surface facing the objective side, and comprises a convex surface or another concave surface facing the image side; the third lens comprises a convex surface or a concave surface facing the image side; the fourth lens comprises a convex surface facing the image side, and comprises another convex surface or a flat surface facing the objective side; the fifth lens comprises a concave surface facing the image side, and comprises another concave surface or a flat surface facing the objective side; the sixth lens comprises a convex surface facing the image side, and comprises another convex surface or a flat surface facing the objective side; and the seventh lens comprises a convex surface facing the objective side.
In yet another embodiment, the first lens group further comprises an eighth lens disposed between the image side and the first lens, and the eighth lens is with positive refractive power and comprises a convex surface facing the image side and a concave surface facing the objective side.
In another embodiment, the lens apparatus satisfies −9.6≤TTL/fLG1≤−5.19, 29 mm<f1+f3<90 mm, or 1.77<f3/f<12 where fLG1 is the effective focal length of the first lens group, TTL is a distance between an image side surface of a lens closest to the image side and an objective side surface of the seventh lens along the optical axis, f is the effective focal length of the lens apparatus, f3 is a focal length of the third lens, and f1 is a focal length of the first lens.
In yet another embodiment, the lens apparatus satisfies 2≤Vd6/Vd3≤4, 8.16 mm<|TS1ST−TS3S10<|22.92 mm, 5.22<TS1ST/TSTS15<8.23, or −2.54<T7ob/fLG1<−1.3 where Vd3 is an Abbe number of the third lens, Vd6 is an Abbe number of the sixth lens, TS1ST is a distance between an image side surface of a lens closest to the image side and the stop along the optical axis, TS3S10 is a distance between an image side surface of the second lens and an image side surface of the fifth lens along the optical axis, TSTS15 is a distance between the stop and an objective side surface of the seventh lens along the optical axis, fLG1 is the effective focal length of the first lens group, and T7ob is a distance between an objective side surface of the seventh lens and an object along the optical axis.
In another embodiment, at least one of the first lens group, the second lens group, the third lens group and the fourth lens group is movable along the optical axis, the fifth lens and the sixth lens are cemented together, and the lens apparatus is a projection lens.
In yet another embodiment, the lens apparatus satisfies 2≤Vd6/Vd3≤4, where Vd3 is an Abbe number of the third lens, and Vd6 is an Abbe number of the sixth lens.
In another embodiment, the lens apparatus satisfies 29 mm<|f1+f3<90 mm; and 1.77<f3/f<12, where f is the effective focal length of the lens apparatus, f3 is a focal length of the third lens, and f1 is a focal length of the first lens.
In yet another embodiment, the lens apparatus satisfies −9.6≤TTL/fLG1≤−5.19, where fLG1 is the effective focal length of the first lens group, and TTL is a distance between an image side surface of a lens closest to the image side and an objective side surface of the seventh lens along the optical axis.
In another embodiment, the fourth lens group further comprises a stop disposed between the fourth lens and the fifth lens, and the lens apparatus satisfies 8.16 mm<|TS1ST−TS3S10|<22.92 mm, or 5.22<TS1ST TSTS15<8.23, where TS1ST is a distance between an image side surface of a lens closest to the image side and the stop along the optical axis, TS3S10 is a distance between an image side surface of the second lens and an image side surface of the fifth lens along the optical axis, and TSTS15 is a distance between the stop and an objective side surface of the seventh lens along the optical axis.
In yet another embodiment, the lens apparatus satisfies −2.54<T7ob/fLG1<−1.3, where fLG1 is the effective focal length of the first lens group, and T7ob is a distance between an objective side surface of the seventh lens and an object along the optical axis.
In another embodiment, at least one of the first lens group, the second lens group, the third lens group and the fourth lens group is movable along the optical axis, the fifth lens and the sixth lens are cemented together, and the lens apparatus is a projection lens.
In yet another embodiment, the lens apparatus satisfies −9.6≤TTL/fLG1−5.19, where fLG1 is the effective focal length of the first lens group, and TTL is a distance between an image side surface of a lens closest to the image side and an objective side surface of the seventh lens along the optical axis.
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:
A lens apparatus in accordance with many embodiments of the invention includes a first lens group, a second lens group, a third lens group and a fourth lens group. The first lens group includes a first lens with negative refractive power and a second lens with negative refractive power, and the first lens includes a convex surface facing an image side and a concave surface facing an objective side. The second lens group includes a third lens with positive refractive power, and the third lens includes a convex surface facing the objective side. The third lens group includes a fourth lens with positive refractive power. The fourth lens group includes a fifth lens with negative refractive power, a sixth lens with positive refractive power and a seventh lens with positive refractive power. The seventh lens includes a convex surface facing the image side. The first lens, the second lens, the third lens, the fourth lens, the fifth lens, the sixth lens and the seventh lens are arranged in order from the image side to the objective side along an optical axis.
In one or more embodiments of the invention, the first lens group is with negative refractive power.
In one or more embodiments of the invention, the first lens group can include more lenses. For example, the first lens group can further include an eighth lens with positive refractive power and disposed between the image side and the first lens.
In one or more embodiments of the invention, the second lens group is with positive refractive power.
In one or more embodiments of the invention, the third lens group is with positive refractive power.
In one or more embodiments of the invention, the fourth lens group is with positive refractive power.
In one or more embodiments of the invention, the fourth lens group can further include a stop disposed between the third lens group and the fifth lens.
In one or more embodiments of the invention, at least one lens of at least one of the first to fourth lens groups can includes a spherical surface.
In one or more embodiments of the invention, at least one lens of at least one of the first to fourth lens groups can includes at least one aspheric surface. The aspheric surface sag z of each lens can be calculated by the following formula:
z=ch
2/{1+[1−(k+1)c2h2]1/2}+Ah4+Bh6+Ch8+Dh10+Eh12+Fh14+Gh16
where c is a curvature, h is a vertical distance from any points on lens surface to the optical axis, k is a conic constant, and A-G are aspheric coefficients.
In one or more embodiments of the invention, all of the lenses of the first lens group are made of glass material, or parts of the lenses are made of glass material. Alternatively, the aspheric lenses in the lens apparatus are made of glass material or plastic material.
In one or more embodiments of the invention, the lens apparatus is a zoom lens or a prime lens.
The lens apparatus of the invention satisfies at least one of the following conditions:
−2.28<fLG1/f<−0.59 (1)
1.5≤Vd6/Vd3≤4.5 (2)
29 mm<|f1+f3|<90 mm (3)
−44.4 mm<f1+f3<90 mm (4)
1.77<f3/f<12 (5)
−9.6≤TTL/fLG1≤−5.19 (6)
8.16 mm<|TS1ST−TS3S10|<22.92 mm (7)
8.16 mm<TS1ST−TS3S10<22.92 mm (8)
5.22<TS1ST/TSTS15<8.23 (9)
−2.54<T7ob/fLG1<−1.3 (10)
By such arrangement, the lens apparatus can be effectively improved to have a reduced diameter, increased brightness, increased resolution and corrected aberration.
In the above-described conditions, if the condition (1) is modified to be −1.9<fLG1/f<−0.74, then a better effect is obtained.
In the above-described conditions, if the condition (2) is modified to be 2≤Vd6/Vd3≤4 or 2.4≤Vd6/Vd3≤3.6, then a better effect is obtained.
In the above-described conditions, if the condition (3) is modified to be 37 mm≤f1+f3≤75 mm, than a better effect is obtained.
In the above-described conditions, if the condition (4) is modified to be −37 mm≤f1+f3≤75 mm, then a better effect is obtained.
In the above-described conditions, if the condition (5) is modified to be 2.21≤f3/f<10.82, then a better effect is obtained.
In the above-described conditions, if the condition (6) is modified to be −8≤TTL/fLG1≤−5.19, then a better effect is obtained.
In the above-described conditions, if the condition (7) is modified to be 10.2 mm≤|TS1ST−TS3S10|≤19.1 mm, then a better effect is obtained.
In the above-described conditions, if the condition (8) is modified to be 10.2 mm≤TS1ST−TS3S10≤19.1 mm, then a better effect is obtained.
In the above-described conditions, if the condition (9) is modified to be 6≤TS1ST/TSTS15≤7, then a better effect is obtained.
A lens apparatus in accordance with a first embodiment of the invention is described herein. Referring to
The first lens L11 can be, for example, with negative refractive power. The first lens L11 can be, for example, a meniscus lens, an image side surface S11 thereof can be, for example, a convex surface, and an objective side surface S12 thereof can be, for example, a concave surface. The image side surface S11 can be, for example, a spherical surface, and the objective side surface S12 can be, for example, a spherical surface.
The second lens L12 can be, for example, with negative refractive power. The second lens L12 can be, for example, a meniscus lens, an image side surface S13 thereof can be, for example, a convex surface, and an objective side surface S14 thereof can be, for example, a concave surface. The image side surface S13 can be, for example, an aspheric surface, and the objective side surface S14 can be, for example, an aspheric surface.
The third lens L13 can be, for example, with positive refractive power. The third lens L13 can be, for example, a meniscus lens, an image side surface S15 thereof can be, for example, a concave surface, and an objective side surface S16 thereof can be, for example, a convex surface. The image side surface S15 can be, for example, a spherical surface, and the objective side surface S16 can be, for example, a spherical surface.
The fourth lens L14 can be, for example, with positive refractive power. The fourth lens L14 can be, for example, a biconvex lens, an image side surface S17 thereof can be, for example, a convex surface, and an objective side surface S18 thereof can be, for example, a convex surface. The image side surface S17 can be, for example, a spherical surface, and the objective side surface S18 can be, for example, a spherical surface.
The fifth lens L15 can be, for example, with negative refractive power. The fifth lens L15 can be, for example, a biconcave lens, an image side surface S110 thereof can be, for example, a concave surface, and an objective side surface S111 thereof can be, for example, a concave surface. The image side surface S110 can be, for example, a spherical surface, and the objective side surface S111 can be, for example, a spherical surface.
The sixth lens L16 can be, for example, with positive refractive power. The sixth lens L16 can be, for example, a planoconvex lens, an image side surface S112 thereof can be, for example, a convex surface, and an objective side surface S113 thereof can be, for example, a flat surface. The image side surface S112 can be, for example, a spherical surface, and the objective side surface S113 can be, for example, a spherical surface.
The seventh lens L17 can be, for example, with positive refractive power. The seventh lens L17 can be, for example, a biconvex lens, an image side surface S114 thereof can be, for example, a convex surface, and an objective side surface S115 thereof can be, for example, a convex surface. The image side surface S114 can be, for example, an aspheric surface, and the objective side surface S115 can be, for example, an aspheric surface.
An objective side surface S116 of the optical filter OF1 can be, for example, a flat surface, and an image side surface S117 of the optical filter OF1 can be, for example, a flat surface.
An objective side surface S118 of the cover glass CG1 can be, for example, a flat surface, and an image side surface S119 of the cover glass CG1 can be, for example, a flat surface.
By the design of the above lenses, the stop ST1 and at least one of the conditions (1)-(10) satisfied, the lens apparatus 1 is able to have the lens diameter effectively reduced, brightness and resolution effectively increased, and aberration effectively corrected.
During operation, light from an object IS1 travels to the image side finally. By changing a distance D1G1G2 between the first lens group LG11 and the second lens group LG12, a distance D1G2G3 between the second lens group LG12 and the third lens group LG13 and a distance D1G3G4 between the third lens group LG13 and the fourth lens group LG14, the effective focal length of the lens apparatus 1 can be adjusted. When the first lens group LG11 is moved along the optical axis OA1 to change the distance D1G1G2 and/or the distance D1G2G3, the lens apparatus 1 is focusing. In order to achieve the above purposes and effectively enhance the optical performance, the lens apparatus 1 in accordance with the first embodiment of the invention is provided with the optical specifications shown in Table 1, which include curvature of each lens surface, distance between adjacent surface, refractive index of each lens, Abbe number of each lens and focal length of each lens. Table 1 shows that the lens apparatus 1 at a wide-angle end has the effective focal length equal to 9.7 mm and F-number equal to 1.94, and the lens apparatus 1 at a telephoto end has the effective focal length equal to 11.6 mm and F-number equal to 2.04.
Table 2 shows that the optical specifications of the aspheric surface of each lens shown in Table 1, wherein k is a conic constant and A-G are aspheric coefficients.
Table 3 shows the optical specifications of the lens apparatus 1 and calculated values corresponding to the conditions (1)-(10). It can be seen from Table 3 that the lens apparatus 1 can meet requirements of the conditions (1)-(10).
It can be seen from
It can be seen from
It is obvious that the field curvature and the distortion of the lens apparatus 1 can be corrected effectively, and the relative illumination, the resolution and the depth of focus of the lens apparatus 1 can meet the requirements. Therefore, the lens apparatus 1 is capable of good optical performance.
Referring to
The difference between the second embodiment and the first embodiment as shown in
By the design of the above lenses, the stop ST2 and at least one of the conditions (1)-(10) satisfied, the lens apparatus 2 is able to have the lens diameter effectively reduced, brightness and resolution effectively increased, and aberration effectively corrected.
During operation, light from an object IS2 travels to the image side finally. By changing a distance D2G1G2 between the first lens group LG21 and the second lens group LG22, a distance D2G2G3 between the second lens group LG22 and the third lens group LG23 and a distance D2G3G4 between the third lens group LG23 and the fourth lens group LG24, the effective focal length of the lens apparatus 2 can be adjusted. When the first lens group LG21 is moved along the optical axis OA2 to change the distance D2G1G2, the lens apparatus 2 is focusing.
In order to achieve the above purposes and effectively enhance the optical performance, the lens apparatus 2 of the second embodiment of the invention is provided with the optical specifications shown in Table 4, which include curvature of each lens surface, distance between adjacent surface, refractive index of each lens, Abbe number of each lens and effective focal length of each lens. Table 4 shows that the lens apparatus 2 at a wide-angle end has the effective focal length equal to 12.0 mm and F-number equal to 1.94, and the lens apparatus 2 at a telephoto end has the effective focal length equal to 15.4 mm and F-number equal to 2.13.
Table 5 shows that the optical specifications of the aspheric surface of each lens shown in Table 4, wherein k is a conic constant and A-G are aspheric coefficients.
Table 6 shows the optical specifications of the lens apparatus 2 and calculated values corresponding to the conditions (1)-(10). It can be seen from Table 6 that the lens apparatus 2 can meet requirements of the conditions (1)-(10).
The lens apparatus 2 can also meet the requirements of optical performance as seen in
It is obvious that the field curvature and the distortion of the lens apparatus 2 can be corrected effectively, and the relative illumination, the resolution and the depth of focus of the lens apparatus 2 can meet the requirements. Therefore, the lens apparatus 2 is capable of good optical performance.
In another embodiment of the invention, the fifth lens and the sixth lens of the fourth lens group can be designed to be a cemented lens.
Referring to
The difference between the third embodiment and the first embodiment as shown in
By the design of the above lenses, the stop ST3 and at least one of the conditions (1)-(10) satisfied, the lens apparatus 3 is able to have the lens diameter effectively reduced, brightness and resolution effectively increased, and aberration effectively corrected.
During operation, light from an object IS3 travels to the image side finally. By changing a distance D3G1G2 between the first lens group LG31 and the second lens group LG32, a distance D3G2G3 between the second lens group LG32 and the third lens group LG33 and a distance D3G3G4 between the third lens group LG33 and the fourth lens group LG34, the effective focal length of the lens apparatus 3 can be adjusted. When the first lens group LG31 is moved along the optical axis OA3 to change the distance D3G1G2, the lens apparatus 3 is focusing.
In order to achieve the above purposes and effectively enhance the optical performance, the lens apparatus 3 of the third embodiment of the invention is provided with the optical specifications shown in Table 7, which include curvature of each lens surface, distance between adjacent surface, refractive index of each lens, Abbe number of each lens and focal length of each lens. Table 7 shows that the lens apparatus 3 at a wide-angle end has the effective focal length equal to 15.4 mm and F-number equal to 1.94, and the lens apparatus 3 at a telephoto end has the effective focal length equal to 18.5 mm and F-number equal to 2.05. The fifth lens L35 and the sixth lens L36 are cemented together.
Table 8 shows that the optical specifications of the aspheric surface of each lens shown in Table 7, wherein k is a conic constant and A-G are aspheric coefficients.
Table 9 shows the optical specifications of the lens apparatus 3 and calculated values corresponding to the conditions (1)-(10). It can be seen from Table 9 that the lens apparatus 3 can meet requirements of the conditions (1)-(10).
The lens apparatus 3 can also meet the requirements of optical performance as seen in
It is obvious that the field curvature and the distortion of the lens apparatus 3 can be corrected effectively, and the relative illumination, the resolution and the depth of focus of the lens apparatus 3 can meet the requirements. Therefore, the lens apparatus 3 is capable of good optical performance.
Referring to
The difference between the fourth embodiment and the first embodiment as shown in
During operation, light from an object IS4 travels to the image side finally. By changing a distance D4G1G2 between the first lens group LG41 and the second lens group LG42, a distance D4G2G3 between the second lens group LG42 and the third lens group LG43 and a distance D4G3G4 between the third lens group LG43 and the fourth lens group LG44, the effective focal length of the lens apparatus 4 can be adjusted. When the first lens group LG41 is moved along the optical axis OA4 to change the distance D4G1G2, the lens apparatus 4 is focusing.
By the design of the above lenses, the stop ST4 and at least one of the conditions (1)-(10) satisfied, the lens apparatus 4 is able to have the lens diameter effectively reduced, brightness and resolution effectively increased, and aberration effectively corrected.
In order to achieve the above purposes and effectively enhance the optical performance, the lens apparatus 4 of the fourth embodiment of the invention is provided with the optical specifications shown in Table 10, which include curvature of each lens surface, distance between adjacent surface, refractive index of each lens, Abbe number of each lens and effective focal length of each lens. Table 10 shows that the lens apparatus 4 at a wide-angle end has the effective focal length equal to 12.0 mm and F-number equal to 1.94, and the lens apparatus 4 at a telephoto end has the effective focal length equal to 14.4 mm and F-number equal to 2.07.
Table 11 shows the optical specifications of the lens apparatus 4 and calculated values corresponding to the conditions (1)-(10). It can be seen from Table 11 that the lens apparatus 4 can meet requirements of the conditions (1)-(10).
The lens apparatus 4 can also meet the requirements of optical performance as seen in
It is obvious that the field curvature and the distortion of the lens apparatus 4 can be corrected effectively, and the relative illumination, the resolution and the depth of focus of the lens apparatus 4 can meet the requirements. Therefore, the lens apparatus 4 is capable of good optical performance.
Although the objective side surface S42 of the eighth lens L48 of the above-described lens apparatus 4 is a concave surface, the invention is not limited thereto. That is to say, the objective side surface of the eighth lens can be adjusted according to the requirement of actual application. In other embodiments of the invention, the objective side surface of the eighth lens can be designed as a flat surface. If it is desired to improve the wide-angle performance of the lens apparatus, the value of the curvature of the objective side surface of the eighth lens can be increased. If it is desired to improve the telephoto performance of the lens apparatus, the effective focal length of the lens apparatus can be slightly increased and the objective side surface of the eighth lens can be designed as a convex surface.
Number | Date | Country | Kind |
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201910171477.9 | Mar 2019 | CN | national |