The present disclosure relates to a lens assembly.
The development of lens assembly nowadays is tending toward having a large aperture. Additionally, the lens assembly is developed to have high resolution and resistance to environmental temperature change in accordance with different application requirements. However, the known lens assembly can't satisfy such requirements. Therefore, the lens assembly needs a new structure in order to meet the requirements of large aperture, high resolution, and resistance to environmental temperature change at the same time.
The invention provides a lens assembly to solve the above problems. The lens assembly of the invention is provided with characteristics of a decreased F-number, an increased resolution, a resisted environmental temperature change, and still has a good optical performance.
According to an embodiment, the present disclosure provides a lens assembly including a first lens, a second lens, a third lens, a fourth lens, a fifth lens and a sixth lens. The first lens has negative refractive power and includes a concave surface facing an image side. The second lens has positive refractive power and includes a convex surface facing an object side. The third lens has positive refractive power. The fourth lens has negative refractive power. The fifth lens is a meniscus lens with positive refractive power. The sixth lens has positive refractive power and includes a concave surface facing the image side. The first to sixth lenses are arranged in order from the object side to the image side along an optical axis. An air gap is between the third lens and the fourth lens.
According to another embodiment, the present disclosure provides a lens assembly including a first lens, a second lens, a third lens, a fourth lens, a fifth lens and a sixth lens. The first lens has negative refractive power and includes a concave surface facing an image side. The second lens has positive refractive power and includes a convex surface facing an object side. The third lens has positive refractive power. The fourth lens has negative refractive power. The fifth lens is a meniscus lens with positive refractive power. The sixth lens has positive refractive power and includes a concave surface facing the image side. The first to sixth lenses are arranged in order from the object side to the image side along an optical axis. The lens assembly satisfies: 6 mm<f4+f6<12 mm; wherein f4 is a focal length in mm of the fourth lens and f6 is a focal length in mm of the sixth lens.
In one of the above embodiments, the third lens includes a convex surface facing the object side and a convex surface facing the image side, the fourth lens includes a concave surface facing the object side and a concave surface facing the image side.
In one of the above embodiments, the lens assembly further includes a stop disposed between the third lens and the fourth lens.
In one of the above embodiments, the first lens, the second lens or the third lens includes at least one spherical glass lens.
In one of the above embodiments, the lens assembly satisfies: 120<Vd1+Vd3<140; wherein Vd1 is an Abbe number of the first lens and Vd3 is an Abbe number of the third lens.
In one of the above embodiments, the first lens further includes a concave surface facing the object side, the second lens further includes a convex surface facing the image side.
In one of the above embodiments, the lens assembly satisfies: −7<R22/R2148; wherein R21 is the radius of curvature of the object side surface of the first lens and R22 is the radius of curvature of the image side surface of the second lens.
In one of the above embodiments, the fifth lens comprises a concave surface facing the object side and a convex surface facing the image side, the sixth lens further comprises a convex surface facing the object side.
In one of the above embodiments, the first lens further includes a convex surface facing the object side, the second lens further includes a concave surface facing the image side.
In one of the above embodiments, the fourth lens, the fifth lens or the sixth lens includes at least one spherical glass lens.
In one of the above embodiments, the lens assembly satisfies: 3.9<TTL/BFL<6; wherein TTL is an interval from an object side surface of the first lens to the image plane along the optical axis and BFL is an interval from an image side surface of the sixth lens to an image plane along the optical axis.
In one of the above embodiments, the lens assembly satisfies: 0.4<(f3±f4)/f<0.62; wherein f3 is an effective focal length of the third lens, f4 is an effective focal length of the fourth lens, and f is the effective focal length of the lens assembly.
In one of the above embodiments, the lens assembly satisfies: 6 mm<f4+f6<12 mm; wherein f4 is an effective focal length of the fourth lens, f6 is an effective focal length in mm of the sixth lens.
In one of the above embodiments, the lens assembly satisfies: 0.05<f123/f456<0.22; wherein f123 is an effective focal length of a combination of the first lens, the second lens and the third lens, and f456 is an effective focal length of a combination of the fourth lens, the fifth lens and the sixth lens.
The above objects, features and advantages of the present disclosure will be more clearly understood from the following detailed description taken in conjunction with exemplary embodiments and the accompanying drawings.
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, a fourth lens, a fifth lens and a sixth lens. The first lens has negative refractive power and includes a concave surface facing an image side. The second lens has positive refractive power and includes a convex surface facing an object side. The third lens has positive refractive power. The fourth lens has negative refractive power. The fifth lens is a meniscus lens with positive refractive power. The sixth lens has positive refractive power and includes a concave surface facing the image side. The first to sixth lenses are arranged in order from the object side to an image side along an optical axis. An air gap is between the third lens and the fourth lens.
In the aforesaid lens assembly, every two lens elements of the first lens element, the second lens element, the third lens element, the fourth lens element, the fifth lens element, and the sixth lens element have at least one air gap in between. Each of the first through the sixth lens elements is a single and non-cemented lens element. That is, any two lens elements adjacent to each other are not cemented, and there is a space between the two lens elements. Moreover, the manufacturing process of the cemented lenses is more complex than the non-cemented lenses. In particular, a second surface of one lens element and a first surface of the following lens element need to have an accurate curvature to ensure these two lens elements will be highly cemented. However, during the cementing process, those two lens elements might not be highly cemented due to displacement and it is thereby not favorable for the image quality of the imaging optical system. Therefore, the lens assembly of the present disclosure provides six non-cemented lens elements for improving the problem generated by the cemented lens elements.
Referring to Table 1, Table 3, Table 5, and Table 7, wherein Table 1, Table 3, Table 5, and Table 7 show optical specification in accordance with a first, second, third, and fourth embodiments of the invention respectively.
The first lens L11, L21, L31, L41 are with negative refractive power and made of glass material, wherein the image side surfaces S12, S22, S32, S42 are concave surfaces, and the object side surfaces S11, S21, S31, S41 and the image side surfaces S12, S22, S32, S42 are spherical surfaces.
The second lens L12, L22, L32, L42 are with positive refractive power and made of glass material, wherein the object side surfaces S13, S23, S33, S43 are convex surfaces, and the object side surfaces S13, S23, S33, S43 and the image side surfaces S14, S24, S34, S44 are spherical surfaces.
The third lens L13, L23, L33, L43 are biconvex lenses with positive refractive power and made of glass material, wherein the object side surfaces S15, S25, S35, S45 are convex surfaces, the image side surfaces S16, S26, S36, S46 are convex surfaces, and the object side surfaces S15, S25, S35, S45 and the image side surfaces S16, S26, S36, S46 are spherical surfaces.
The fourth lens L14, L24, L34, L44 are biconcave lenses with negative refractive power and made of glass material, wherein the object side surfaces S18, S28, S38, S48 are concave surfaces, the image side surfaces S19, S29, S39, S49 are concave surfaces, and the object side surfaces S18, S28, S38, S48 and the image side surfaces S19, S29, S39, S49 are spherical surfaces.
The fifth lens L15, L25, L35, L45 are meniscus lenses with positive refractive power and made of glass material, wherein the object side surfaces S110, S210, S310, S410 are concave surfaces, the image side surfaces S111, S211, S311, S411 are convex surfaces, and the object side surfaces S110, S210, S310, S410 and the image side surfaces S111, S211, S311, S411 are spherical surfaces.
The sixth lens L16, L26, L36, L46 are meniscus lenses with positive refractive power and made of glass material, wherein the object side surfaces S112, S212, S312, S412 are convex surfaces, the image side surfaces S113, S213, S313, S413 are concave surfaces, and the object side surfaces S112, S212, S312, S412 and the image side surfaces S113, S213, S313, S413 are spherical surfaces.
In addition, the lens assembly 1, 2, 3, 4 satisfy at least one of the following conditions:
120<Vd1+Vd3<140 (1)
0.4<(f3+f4)/f<0.62 (2)
−7<R22/R21<48 (3)
6 mm<f4+f6<12 mm (4)
3.9<TTL/BFL<6 (5)
0.05<f123/f456<0.22 (6)
Wherein Vd1 is the Abbe number of the first lens L11, L21, L31, L41 for the first to fourth embodiments, Vd3 is the Abbe number of the third lens L13, L23, L33, L43 for the first to fourth embodiments, f3 is an effective focal length of the third lenses L13, L23, L33, L43 for the first to fourth embodiments, f4 is an effective focal length of the fourth lenses L14, L24, L34, L44 for the first to fourth embodiments, f6 is an effective focal length of the sixth lenses L16, L26, L36, L46 for the first to fourth embodiments, f is an effective focal length of the lens assemblies 1, 2, 3, 4 for the first to fourth embodiments, f123 is the effective focal length of the combination of the first lens L11, L21, L31 L41, second lens L12, L22, L32, L42, and the third lens L13, L23, L33. L43 for the first to fourth embodiments, f456 is the effective focal length of the combination of the fourth lens L14, L24, L34, L44, fifth lens L15, L25, L35, L45, and the sixth lens L16, L26, L36, L46 for the first to fourth embodiments, R21 is the radius of curvature of an object-side surface S13, S23, S33, S43 of the first lens L12, L22, L32, L42 for the first to fourth embodiments, R22 is the radius of curvature of an object-side surface S14, S24, S34, S44 of the first lens L12, L22, L32, L42 for the first to fourth embodiments, TTL is an interval in mm from the object side surfaces S11 S21, S31, S41 of the first lenses L11, L21, L31, L41 to the image planes IMA1, MA2, IMA3, IMA4 along the optical axes OA1, OA2, OA3, OA4 respectively for the first to fourth embodiments, and BFL is an interval in mm from the image side surfaces S113, S213, S313, 5413 of the sixth lenses L16, L26, L36, L46 to the image planes IMA1, IMA2, IMA3, IMA4 along the optical axes OA1, OA2, OA3, OA4 respectively for the first to fourth embodiments. With the lens assemblies 1, 2, 3, 4 satisfying at least one of the above conditions (1)-(6), the F-number can be effectively decreased, the resolution can be effectively increased, the environmental temperature change can be effectively resisted, the aberration can be effectively corrected, and the chromatic aberration can be effectively corrected.
When the condition (1): 120<Vd1+Vd3<140 is satisfied, the chromatic aberration can be better corrected to improve image quality.
When the condition (2): 0.4<(f3+f4)/f<0.62 is satisfied, the manufacturing sensitivity can be decreased to improve image quality.
When the condition (3): −7<R22/R21<48 is satisfied, the sensitivity of the second lens can be decreased to improve image quality.
When the condition (5): 3.9<TTL/BFL<6 is satisfied, the back focal length is longer, which is beneficial to the assembly and manufacturing of the lens assembly.
A detailed description of a lens assembly in accordance with a first embodiment of the invention is as follows. Referring to
According to paragraphs [0022]-[0031], wherein: the first lens L11 is a biconcave lens, wherein the object side surface S11 is a concave surface; the second lens L12 is a biconvex lens, wherein the image side surface S14 is a convex surface; both of the object side surface S114 and image side surface S115 of the optical filter OF1 are plane surfaces; and both of the object side surface S116 and image side surface S117 of the cover glass CG1 are plane surfaces.
With the above design of the lenses and stop ST1 and at least any one of the conditions (1)-(6) satisfied, the lens assembly 1 can have an effective decreased F-number, an effective increased resolution, an effective resisted environmental temperature change, an effective corrected aberration, and is capable of an effective corrected chromatic aberration.
Table 1 shows the optical specification of the lens assembly 1 in
Table 2 shows the parameters and condition values for conditions (1)-(6) in accordance with the first embodiment of the invention. It can be seen from Table 2 that the lens assembly 1 of the first embodiment satisfies the conditions (1)-(6).
By the above arrangements of the lenses and stop ST1, the lens assembly 1 of the first embodiment can meet the requirements of optical performance as seen in
It is obvious that the field curvature and the distortion of the lens assembly 1 of the first embodiment can be corrected effectively, and the resolution of the lens assembly of the first embodiment can meet the requirement. Therefore, the lens assembly 1 of the first embodiment is capable of good optical performance.
Referring to
According to paragraphs [0022]-[0031], wherein: the first lens L21 is a biconcave lens, wherein the object side surface S21 is a concave surface; the second lens L22 is a biconvex lens, wherein the image side surface S24 is a convex surface; both of the object side surface S214 and image side surface S215 of the optical filter OF2 are plane surfaces; and both of the object side surface S216 and image side surface S217 of the cover glass CG2 are plane surfaces.
With the above design of the lenses and stop ST2 and at least any one of the conditions (1)-(6) satisfied, the lens assembly 2 can have an effective decreased F-number, an effective increased resolution, an effective resisted environmental temperature change, an effective corrected aberration, and is capable of an effective corrected chromatic aberration.
Table 3 shows the optical specification of the lens assembly 2 in
Table 4 shows the parameters and condition values for conditions (1)-(6) in accordance with the second embodiment of the invention. It can be seen from Table 4 that the lens assembly 2 of the second embodiment satisfies the conditions (1)-(6).
By the above arrangements of the lenses and stop ST2, the lens assembly 2 of the second embodiment can meet the requirements of optical performance as seen in
It is obvious that the field curvature and the distortion of the lens assembly 2 of the second embodiment can be corrected effectively, and the resolution of the lens assembly 2 of the second embodiment can meet the requirement. Therefore, the lens assembly 2 of the second embodiment is capable of good optical performance.
Referring to
According to paragraphs [0022]-[0031], wherein: the first lens L31 is a biconcave lens, wherein the object side surface S31 is a concave surface; the second lens L32 is a biconvex lens, wherein the image side surface S34 is a convex surface; both of the object side surface S314 and image side surface S315 of the optical filter OF3 are plane surfaces; and both of the object side surface S316 and image side surface S317 of the cover glass CG3 are plane surfaces.
With the above design of the lenses and stop ST3 and at least any one of the conditions (1)-(6) satisfied, the lens assembly 3 can have an effective decreased F-number, an effective increased resolution, an effective resisted environmental temperature change, an effective corrected aberration, and is capable of an effective corrected chromatic aberration.
Table 5 shows the optical specification of the lens assembly 3 in
Table 6 shows the parameters and condition values for conditions (1)-(6) in accordance with the third embodiment of the invention. It can be seen from Table 6 that the lens assembly 3 of the third embodiment satisfies the conditions (1)-(6).
By the above arrangements of the lenses and stop ST3, the lens assembly 3 of the third embodiment can meet the requirements of optical performance as seen in
It is obvious that the field curvature and the distortion of the lens assembly 3 of the third embodiment can be corrected effectively, and the resolution of the lens assembly 3 of the third embodiment can meet the requirement. Therefore, the lens assembly 3 of the third embodiment is capable of good optical performance.
Referring to
According to paragraphs [0022]-[0031], wherein: the first lens L41 is a meniscus lens, wherein the object side surface S41 is a convex surface; the second lens L42 is a meniscus lens, wherein the image side surface S44 is a concave surface; both of the object side surface S414 and image side surface S415 of the optical filter OF4 are plane surfaces; and both of the object side surface S416 and image side surface S417 of the cover glass CG4 are plane surfaces.
With the above design of the lenses and stop ST4 and at least any one of the conditions (1)-(6) satisfied, the lens assembly 4 can have an effective decreased F-number, an effective increased resolution, an effective resisted environmental temperature change, an effective corrected aberration, and is capable of an effective corrected chromatic aberration.
Table 7 shows the optical specification of the lens assembly 4 in
Table 8 shows the parameters and condition values for conditions (1)-(6) in accordance with the fourth embodiment of the invention. It can be seen from Table 8 that the lens assembly 4 of the fourth embodiment satisfies the conditions (1)-(6).
By the above arrangements of the lenses and stop ST4, the lens assembly 4 of the fourth embodiment can meet the requirements of optical performance as seen in
It is obvious that the longitudinal aberration, the field curvature, the distortion and the lateral color of the lens assembly 4 of the fourth embodiment can be corrected effectively, and the relative illumination, the resolution and the depth of focus of the lens assembly 4 of the fourth embodiment can meet the requirement. Therefore, the lens assembly 4 of the fourth embodiment is capable of good optical performance.
It should be understood that although the present disclosure has been described with reference to the above preferred embodiments, these embodiments are not intended to retrain the present disclosure. It will be apparent to one of ordinary skill in the art that various changes or modifications to the described embodiments can be made without departing from the spirit of the present disclosure. Accordingly, the scope of the present disclosure is defined by the attached claims.
Number | Date | Country | Kind |
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202010962796.4 | Sep 2020 | CN | national |