USPatent applicationPatented

Camera optical lens

Granted 6 Oct 2020 · 2 office actions

Life of the application

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Abstract

The present disclosure discloses a camera optical lens. The camera optical lens includes, in an order from an object side to an image side, a first lens, a second lens having a positive refractive power, a third lens having a negative refractive power, a fourth lens, a fifth lens, and a sixth lens. The first lens is made of plastic material, the second lens is made of plastic material, the third lens is made of glass material, the fourth lens is made of glass material, the fifth lens is made of plastic material, and the sixth lens is made of plastic material. The camera optical lens further satisfies specific conditions.

Description

10 parts
›FIELD OF THE PRESENT DISCLOSURE

The present disclosure relates to optical lens, in particular to a camera optical lens suitable for handheld devices such as smart phones and digital cameras and imaging devices.

›DESCRIPTION OF RELATED ART

With the emergence of smart phones in recent years, the demand for miniature camera lens is increasing day by day, but the photosensitive devices of general camera lens are no other than Charge Coupled Device (CCD) or Complementary metal-Oxide Semiconductor Sensor (CMOS sensor), and as the progress of the semiconductor manufacturing technology makes the pixel size of the photosensitive devices shrink, coupled with the current development trend of electronic products being that their functions should be better and their shape should be thin and small, miniature camera lens with good imaging quality therefor has become a mainstream in the market. In order to obtain better imaging quality, the lens that is traditionally equipped in mobile phone cameras adopts a three-piece or four-piece lens structure. And, with the development of technology and the increase of the diverse demands of users, and under this circumstances that the pixel area of photosensitive devices is shrinking steadily and the requirement of the system for the imaging quality is improving constantly, the five-piece, six-piece and seven-piece lens structure gradually appear in lens design. There is an urgent need for ultra-thin wide-angle camera lenses which have good optical characteristics and the chromatic aberration of which is fully corrected.

›BRIEF DESCRIPTION OF THE DRAWINGS

Many aspects of the exemplary embodiments can be better understood with reference to the following drawings. The components in the drawing are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present disclosure.

FIG. 1 is a schematic diagram of a camera optical lens in accordance with a first embodiment of the present invention;

FIG. 2 shows the longitudinal aberration of the camera optical lens shown in FIG. 1 ;

FIG. 3 shows the lateral color of the camera optical lens shown in FIG. 1 ;

FIG. 4 presents a schematic diagram of the field curvature and distortion of the camera optical lens shown in FIG. 1 ;

FIG. 5 is a schematic diagram of a camera optical lens in accordance with a second embodiment of the present invention;

FIG. 6 presents the longitudinal aberration of the camera optical lens shown in FIG. 5 ;

FIG. 7 presents the lateral color of the camera optical lens shown in FIG. 5 ;

FIG. 8 presents the field curvature and distortion of the camera optical lens shown in FIG. 5 ;

FIG. 9 is a schematic diagram of a camera optical lens in accordance with a third embodiment of the present invention;

FIG. 10 presents the longitudinal aberration of the camera optical lens shown in FIG. 9 ;

FIG. 11 presents the lateral color of the camera optical lens shown in FIG. 9 ;

FIG. 12 presents the field curvature and distortion of the camera optical lens shown in FIG. 9 .

›DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS

The present disclosure will hereinafter be described in detail with reference to several exemplary embodiments. To make the technical problems to be solved, technical solutions and beneficial effects of the present disclosure more apparent, the present disclosure is described in further detail together with the figure and the embodiments. It should be understood the specific embodiments described hereby is only to explain the disclosure, not intended to limit the disclosure.

›Embodiment 1 · 1 of 4

As referring to FIG. 1 , the present invention provides a camera optical lens 10 . FIG. 1 shows the camera optical lens 10 of embodiment 1 of the present invention, the camera optical lens 10 comprises 6 lenses. Specifically, from the object side to the image side, the camera optical lens 10 comprises in sequence: an aperture S1, a first lens L 1 , a second lens L 2 , a third lens L 3 , a fourth lens L 4 , a fifth lens L 5 , and a sixth lens L 6 . Optical element like optical filter GF can be arranged between the sixth lens L 6 and the image surface Si. The first lens L 1 is made of plastic material, the second lens L 2 is made of plastic material, the third lens L 3 is made of glass material, the fourth lens L 4 is made of glass material, the fifth lens L 5 is made of plastic material, and the sixth lens L 6 is made of plastic material.

The second lens L 2 has a positive refractive power, and the third lens L 3 has a negative refractive power.

Here, the focal length of the whole camera optical lens 10 is defined as f, the focal length of the first lens is defined as f1. The camera optical lens 10 further satisfies the following condition: 0.5≤f1/f≤10. Condition 0.5≤f1/f≤10 fixes the positive refractive power of the first lens L 1 . If the upper limit of the set value is exceeded, although it benefits the ultra-thin development of lenses, but the positive refractive power of the first lens L 1 will be too strong, problem like aberration is difficult to be corrected, and it is also unfavorable for wide-angle development of lens. On the contrary, if the lower limit of the set value is exceeded, the positive refractive power of the first lens L 1 becomes too weak, it is then difficult to develop ultra-thin lenses. Preferably, the following condition shall be satisfied, 1.012≤f1/f≤8.66.

The refractive power of the third lens L 3 is defined as n3. Here the following condition should satisfied: 1.7≤n3≤2.2. This condition fixes the refractive power of the third lens L 3 , and refractive power within this range benefits the ultra-thin development of lenses, and it also benefits the correction of aberration. Preferably, the following condition shall be satisfied, 1.704≤n3≤2.12.

The refractive power of the fourth lens L 4 is defined as n4. Here the following condition should satisfied: 1.7≤n4≤2.2. This condition fixes the refractive power of the fourth lens L 4 , and refractive power within this range benefits the ultra-thin development of lenses, and it also benefits the correction of aberration. Preferably, the following condition shall be satisfied, 1.705≤n4≤2.13.

In this embodiment, the first lens L has a positive refractive power with a convex object side surface relative to the proximal axis and a concave image side surface relative to the proximal axis.

The curvature radius of the object side surface of the first lens L 1 is defined as R1, the curvature radius of the image side surface of the first lens L 1 is defined as R2. The camera optical lens 10 further satisfies the following condition: −20.54≤(R1+R2)/(R1−R2)≤−1.95, which fixes the shape of the first lens L 1 . When the value is beyond this range, with the development into the direction of ultra-thin and wide-angle lenses, problem like aberration of the off-axis picture angle is difficult to be corrected. Preferably, the condition −12.84≤(R1+R2)/(R1−R2)≤−2.43 shall be satisfied.

The thickness on-axis of the first lens L 1 is defined as d1, and the total optical length of the camera optical lens 10 is defined as TTL. The following condition: 0.02≤d1/TTL≤0.11 should be satisfied. This condition fixes the ratio between the thickness on-axis of the first lens L 1 and the total optical length TTL. When the condition is satisfied, it is beneficial for realization of the ultra-thin lens. Preferably, the condition 0.04≤d1/TTL≤0.09 shall be satisfied.

In this embodiment, the second lens L 2 has a positive refractive power with a convex object side surface relative to the proximal axis and a concave image side surface relative to the proximal axis.

The focal length of the whole camera optical lens 10 is f, the focal length of the second lens L 2 is f2. The following condition should be satisfied: 0.66≤f2/f≤4.03. When the condition is satisfied, the positive refractive power of the second lens L 2 is controlled within reasonable scope, the spherical aberration caused by the first lens L 1 which has positive refractive power and the field curvature of the system then can be reasonably and effectively balanced. Preferably, the condition 1.05≤f2/f≤3.22 should be satisfied.

The curvature radius of the object side surface of the second lens L 2 is defined as R3, the curvature radius of the image side surface of the second lens L 2 is defined as R4. The following condition should be satisfied: −3.78≤(R3+R4)/(R3−R4)≤−0.99, which fixes the shape of the second lens L 2 and can effectively correct aberration of the camera optical lens. Preferably, the following condition shall be satisfied, −2.36≤(R3+R4)/(R3−R4)≤−1.23.

The thickness on-axis of the second lens L 2 is defined as d3, and the total optical length of the camera optical lens 10 is defined as TTL. The following condition: 0.06≤d3/TTL≤0.18 should be satisfied. This condition fixes the ratio between the thickness on-axis of the second lens L 2 and the total optical length TTL. When the condition is satisfied, it is beneficial for realization of the ultra-thin lens. Preferably, the condition 0.09≤d3/TTL≤0.15 shall be satisfied.

In this embodiment, the third lens L 3 has a negative refractive power with a convex object side surface relative to the proximal axis and a concave image side surface relative to the proximal axis.

The focal length of the whole camera optical lens 10 is f, the focal length of the third lens L 3 is f3. The following condition should be satisfied: −4.25≤f3/f≤−0.98, by which the field curvature of the system then can be reasonably and effectively balanced. Preferably, the condition −2.65≤f3/f≤−1.22 should be satisfied.

›Embodiment 1 · 2 of 4

The curvature radius of the object side surface of the third lens L 3 is defined as R5, the curvature radius of the image side surface of the third lens L 3 is defined as R6. The following condition should be satisfied: 1.58≤(R5+R6)/(R5−R6)≤5.29, by which, with the development into the direction of ultra-thin and wide-angle lenses, problem like aberration of the off-axis picture angle is difficult to be corrected. Preferably, the following condition shall be satisfied, 2.53≤(R5+R6)/(R5−R6)≤4.23.

The thickness on-axis of the third lens L 3 is defined as d5, and the total optical length of the camera optical lens 10 is defined as TTL. The following condition: 0.02≤d5/TTL≤0.07 should be satisfied. This condition fixes the ratio between the thickness on-axis of the third lens L 3 and the total optical length TTL. When the condition is satisfied, it is beneficial for realization of the ultra-thin lens. Preferably, the condition 0.04≤d5/TTL≤0.06 shall be satisfied.

In this embodiment, the fourth lens L 4 has a positive refractive power with a convex object side surface and a convex image side surface relative to the proximal axis.

The focal length of the whole camera optical lens 10 is f, the focal length of the fourth lens L 4 is f4. The following condition should be satisfied: 0.71≤f4/f≤2.88, which can effectively reduce the sensitivity of lens group used in camera and further enhance the imaging quality. Preferably, the condition 1.13≤f4/f≤2.31 should be satisfied.

The curvature radius of the object side surface of the fourth lens L 4 is defined as R7, the curvature radius of the image side surface of the fourth lens L 4 is defined as R8. The following condition should be satisfied: −1.19≤(R7+R8)/(R7−R8)≤−0.17, by which, with the development into the direction of ultra-thin and wide-angle lenses, problem like aberration of the off-axis picture angle is difficult to be corrected. Preferably, the following condition shall be satisfied, −0.75≤(R7+R8)/(R7−R8)≤−0.21.

The thickness on-axis of the fourth lens L 4 is defined as d7, and the total optical length of the camera optical lens 10 is defined as TTL. The following condition: 0.04≤d7/TTL≤0.16 should be satisfied. This condition fixes the ratio between the thickness on-axis of the fourth lens L 4 and the total optical length TTL. When the condition is satisfied, it is beneficial for realization of the ultra-thin lens. Preferably, the condition 0.07≤d7/TTL≤0.12 shall be satisfied.

In this embodiment, the fifth lens L 5 has a negative refractive power with a concave object side surface and a convex image side surface relative to the proximal axis.

The focal length of the whole camera optical lens 10 is f, the focal length of the fifth lens L 5 is f5. The following condition should be satisfied: −5.64≤f5/f≤−1.8, which can effectively smooth the light angles of the camera and reduce the tolerance sensitivity. Preferably, the condition −3.53≤f5/f≤−2.25 should be satisfied.

The curvature radius of the object side surface of the fifth lens L 5 is defined as R9, the curvature radius of the image side surface of the fifth lens L 5 is defined as R10. The following condition should be satisfied: −5.84≤(R9+R10)/(R9−R10)≤−1.64, by which, the shape of the fifth lens L 5 is fixed, further, with the development into the direction of ultra-thin and wide-angle lenses, problem like aberration of the off-axis picture angle is difficult to be corrected. Preferably, the following condition shall be satisfied, −3.65≤(R9+R10)/(R9−R10)≤−2.05.

The thickness on-axis of the fifth lens L 5 is defined as d9, and the total optical length of the camera optical lens 10 is defined as TTL. The following condition: 0.03≤d9/TTL≤0.11 should be satisfied. This condition fixes the ratio between the thickness on-axis of the fifth lens L 5 and the total optical length TTL. When the condition is satisfied, it is beneficial for realization of the ultra-thin lens. Preferably, the condition 0.04≤d9/TTL≤0.08 shall be satisfied.

In this embodiment, the sixth lens L 6 has a positive refractive power with a convex object side surface and a concave image side surface relative to the proximal axis.

The focal length of the whole camera optical lens 10 is f, the focal length of the sixth lens L 6 is f6. The following condition should be satisfied: 3.7≤f6/f≤14.25, which can effectively reduce the sensitivity of lens group used in camera and further enhance the imaging quality. Preferably, the condition 5.93≤f6/f≤11.4 should be satisfied.

The curvature radius of the object side surface of the sixth lens L 6 is defined as R11, the curvature radius of the image side surface of the sixth lens L 6 is defined as R12. The following condition should be satisfied: 6.43≤(R11+R12)/(R11−R12)≤28.29, by which, the shape of the sixth lens L 6 is fixed, further, with the development into the direction of ultra-thin and wide-angle lenses, problem like aberration of the off-axis picture angle is difficult to be corrected. Preferably, the following condition shall be satisfied, 10.28≤(R11+R12)/(R11−R12)≤22.63.

The thickness on-axis of the sixth lens L 6 is defined as d11, and the total optical length of the camera optical lens 10 is defined as TTL. The following condition: 0.09≤d11/TTL≤0.28 should be satisfied. This condition fixes the ratio between the thickness on-axis of the sixth lens L 6 and the total optical length TTL. When the condition is satisfied, it is beneficial for realization of the ultra-thin lens. Preferably, the condition 0.14≤d11/TTL≤0.23 shall be satisfied.

The focal length of the whole camera optical lens 10 is f, the combined focal length of the first lens L 1 and the second lens L 2 is f12. The following condition should be satisfied: 0.5≤f12/f≤1.71, which can effectively avoid the aberration and field curvature of the camera optical lens, and can suppress the rear focal length for realizing the ultra-thin lens. Preferably, the condition 0.79≤f12/f≤1.36 should be satisfied.

In this embodiment, the total optical length TTL of the camera optical lens 10 is less than or equal to 5.91 mm, it is beneficial for the realization of ultra-thin lenses. Preferably, the total optical length TTL of the camera optical lens 10 is less than or equal to 5.64 mm.

›Embodiment 1 · 3 of 4

In this embodiment, the aperture F number of the camera optical lens 10 is less than or equal to 2.06. A large aperture has better imaging performance. Preferably, the aperture F number of the camera optical lens 10 is less than or equal to 2.02.

With such design, the total optical length TTL of the whole camera optical lens 10 can be made as short as possible, thus the miniaturization characteristics can be maintained.

In the following, an example will be used to describe the camera optical lens 10 of the present invention. The symbols recorded in each example are as follows. The unit of distance, radius and center thickness is mm.

TTL: Optical length (the distance on-axis from the object side surface of the first lens L 1 to the image surface).

Preferably, inflexion points and/or arrest points can also be arranged on the object side surface and/or image side surface of the lens, so that the demand for high quality imaging can be satisfied, the description below can be referred for specific implementable scheme.

The design information of the camera optical lens 10 in the first embodiment of the present invention is shown in the following, the unit of the focal length, distance, radius and center thickness is mm.

The design information of the camera optical lens 10 in the first embodiment of the present invention is shown in the tables 1 and 2.

Where:

In which, the meaning of the various symbols is as follows.

S1: Aperture;

R: The curvature radius of the optical surface, the central curvature radius in case of lens;

R1: The curvature radius of the object side surface of the first lens L 1 ;

R2: The curvature radius of the image side surface of the first lens L 1 ;

R3: The curvature radius of the object side surface of the second lens L 2 ;

R4: The curvature radius of the image side surface of the second lens L 2 ;

R5: The curvature radius of the object side surface of the third lens L 3 ;

R6: The curvature radius of the image side surface of the third lens L 3 ;

R7: The curvature radius of the object side surface of the fourth lens L 4 ;

R8: The curvature radius of the image side surface of the fourth lens L 4 ;

R9: The curvature radius of the object side surface of the fifth lens L 5 ;

R10: The curvature radius of the image side surface of the fifth lens L 5 ;

R11: The curvature radius of the object side surface of the sixth lens L 6 ;

R12: The curvature radius of the image side surface of the sixth lens L 6 ;

R13: The curvature radius of the object side surface of the optical filter GF;

R14: The curvature radius of the image side surface of the optical filter GF;

d: The thickness on-axis of the lens and the distance on-axis between the lens;

d0: The distance on-axis from aperture S1 to the object side surface of the first lens L 1 ;

d1: The thickness on-axis of the first lens L 1 ;

d2: The distance on-axis from the image side surface of the first lens L 1 to the object side surface of the second lens L 2 ;

d3: The thickness on-axis of the second lens L 2 ;

d4: The distance on-axis from the image side surface of the second lens L 2 to the object side surface of the third lens L 3 ;

d5: The thickness on-axis of the third lens L 3 ;

d6: The distance on-axis from the image side surface of the third lens L 3 to the object side surface of the fourth lens L 4 ;

d7: The thickness on-axis of the fourth lens L 4 ;

d8: The distance on-axis from the image side surface of the fourth lens L 4 to the object side surface of the fifth lens L 5 ;

d9: The thickness on-axis of the fifth lens L 5 ;

d10: The distance on-axis from the image side surface of the fifth lens L 5 to the object side surface of the sixth lens L 6 ;

d11: The thickness on-axis of the sixth lens L 6 ;

d12: The distance on-axis from the image side surface of the sixth lens L 6 to the object side surface of the optical filter GF;

d13: The thickness on-axis of the optical filter GF;

d14: The distance on-axis from the image side surface to the image surface of the optical filter GF;

nd: The refractive power of the d line;

nd1: The refractive power of the d line of the first lens L 1 ;

nd2: The refractive power of the d line of the second lens L 2 ;

nd3: The refractive power of the d line of the third lens L 3 ;

nd4: The refractive power of the d line of the fourth lens L 4 ;

nd5: The refractive power of the d line of the fifth lens L 5 ;

nd6: The refractive power of the d line of the sixth lens L 6 ;

ndg: The refractive power of the d line of the optical filter GF;

vd: The abbe number;

v1: The abbe number of the first lens L 1 ;

v2: The abbe number of the second lens L 2 ;

v3: The abbe number of the third lens L 3 ;

v4: The abbe number of the fourth lens L 4 ;

v5: The abbe number of the fifth lens L 5 ;

v6: The abbe number of the sixth lens L 6 ;

vg: The abbe number of the optical filter GF.

Table 2 shows the aspherical surface data of the camera optical lens 10 in the embodiment 1 of the present invention.

Among them, K is a conic index, A4, A6, A8, A10, A12, A14, A16 are aspheric surface indexes.

IH: Image height

y =( x 2 /R )/[1+{1−( k+ 1)( x 2 /R 2 )} 1/2 ]+ A 4 x 4 +A 6 x 6 +A 8 x 8 +A 10 x 10 +A 12 x 12 +A 14 x 14 +A 16 x 16   (1)

For convenience, the aspheric surface of each lens surface uses the aspheric surfaces shown in the above condition (1). However, the present invention is not limited to the aspherical polynomials form shown in the condition (1).

Table 3 and table 4 show the inflexion points and the arrest point design data of the camera optical lens 10 lens in embodiment 1 of the present invention. In which, P1R1 and P1R2 represent respectively the object side surface and image side surface of the first lens L 1 , P2R1 and P2R2 represent respectively the object side surface and image side surface of the second lens L 2 , P3R1 and P3R2 represent respectively the object side surface and image side surface of the third lens L 3 , P4R1 and P4R2 represent respectively the object side surface and image side surface of the fourth lens L 4 , P5R1 and P5R2 represent respectively the object side surface and image side surface of the fifth lens L 5 , P6R1 and P6R2 represent respectively the object side surface and image side surface of the sixth lens L 6 . The data in the column named “inflexion point position” are the vertical distances from the inflexion points arranged on each lens surface to the optic axis of the camera optical lens 10 . The data in the column named “arrest point position” are the vertical distances from the arrest points arranged on each lens surface to the optic axis of the camera optical lens 10 .

›Embodiment 1 · 4 of 4

FIG. 2 and FIG. 3 show the longitudinal aberration and lateral color schematic diagrams after light with a wavelength of 486.1 nm, 587.6 nm and 656.3 nm passes the camera optical lens 10 in the first embodiment. FIG. 4 shows the field curvature and distortion schematic diagrams after light with a wavelength of 587.6 nm passes the camera optical lens 10 in the first embodiment, the field curvature S in FIG. 4 is a field curvature in the sagittal direction, T is a field curvature in the meridian direction.

Table 13 shows the various values of the embodiments 1, 2, 3, and the values corresponding with the parameters which are already specified in the conditions.

As shown in Table 13, the first embodiment satisfies the various conditions.

In this embodiment, the pupil entering diameter of the camera optical lens is 2.141 mm, the full vision field image height is 3.512 mm, the vision field angle in the diagonal direction is 78.72°, it has wide-angle and is ultra-thin, its on-axis and off-axis chromatic aberrations are fully corrected, and it has excellent optical characteristics.

›Embodiment 2

Embodiment 2 is basically the same as embodiment 1, the meaning of its symbols is the same as that of embodiment 1, in the following, only the differences are described.

Table 5 and table 6 show the design data of the camera optical lens 20 in embodiment 2 of the present invention.

Table 6 shows the aspherical surface data of each lens of the camera optical lens 20 in embodiment 2 of the present invention.

Table 7 and table 8 show the inflexion points and the arrest point design data of the camera optical lens 20 lens in embodiment 2 of the present invention.

FIG. 6 and FIG. 7 show the longitudinal aberration and lateral color schematic diagrams after light with a wavelength of 486.1 nm, 587.6 nm and 656.3 nm passes the camera optical lens 20 in the second embodiment. FIG. 8 shows the field curvature and distortion schematic diagrams after light with a wavelength of 587.6 nm passes the camera optical lens 20 in the second embodiment.

As shown in Table 13, the second embodiment satisfies the various conditions.

In this embodiment, the pupil entering diameter of the camera optical lens is 2.022 mm, the full vision field image height is 3.512 mm, the vision field angle in the diagonal direction is 81.94°, it has wide-angle and is ultra-thin, its on-axis and off-axis chromatic aberrations are fully corrected, and it has excellent optical characteristics.

›Embodiment 3

Embodiment 3 is basically the same as embodiment 1, the meaning of its symbols is the same as that of embodiment 1, in the following, only the differences are described.

Table 9 and table 10 show the design data of the camera optical lens in embodiment 3 of the present invention.

Table 10 shows the aspherical surface data of each lens of the camera optical lens 30 in embodiment 3 of the present invention.

Table 11 and table 12 show the inflexion points and the arrest point design data of the camera optical lens 30 lens in embodiment 3 of the present invention.

FIG. 10 and FIG. 11 show the longitudinal aberration and lateral color schematic diagrams after light with a wavelength of 486.1 nm, 587.6 nm and 656.3 nm passes the camera optical lens 30 in the third embodiment. FIG. 12 shows the field curvature and distortion schematic diagrams after light with a wavelength of 587.6 nm passes the camera optical lens 30 in the third embodiment.

As shown in Table 13, the third embodiment satisfies the various conditions.

In this embodiment, the pupil entering diameter of the camera optical lens is 2.022 mm, the full vision field image height is 3.512 mm, the vision field angle in the diagonal direction is 81.95°, it has wide-angle and is ultra-thin, its on-axis and off-axis chromatic aberrations are fully corrected, and it has excellent optical characteristics.

It is to be understood, however, that even though numerous characteristics and advantages of the present exemplary embodiments have been set forth in the foregoing description, together with details of the structures and functions of the embodiments, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms where the appended claims are expressed.

›Tables in the description — 8
TABLE 1
Rdndνd
S1∞d0=−0.235
R12.107d1=0.393nd11.5988ν138.00
R24.253d2=0.039
R34.500d3=0.620nd21.5534ν255.90
R414.595d4=0.033
R54.898d5=0.247nd31.7083ν323.50
R62.543d6=0.221
R77.278d7=0.508nd41.7100ν455.80
R8−28.826d8=0.435
R9−3.988d9=0.379nd51.6417ν521.40
R10−8.582d10=0.259
R111.693d11=1.010nd61.5431ν655.70
R121.448d12=0.504
R13∞d13=0.210ndg1.5168νg64.17
R14∞d14=0.497
TABLE 2
Conic IndexAspherical Surface Index
kA4A6A8A10A12A14A16
R11.8948E−01−0.010452711−0.004139775−0.0168643710.013809348−0.0084514630.005369733−0.001477426
R29.0210E+00−0.015600484−0.0482904870.0334570950.003928235−0.0125305370.004917379−0.001503653
R33.0592E+000.020529757−0.0311918940.0115066230.041660785−0.027647099−0.0019062060.000938531
R4−6.1632E+02−0.0329702990.014615214−0.135833450.0704884880.015314832−0.0133553260.000929013
R5−2.1839E+00−0.12952649−0.001133739−0.039387831−0.0336787220.087018539−0.0312761130.001717185
R6−9.4880E+00−0.0278766490.03514033−0.127461960.1987427−0.129646670.0319340990.000275883
R7−1.1293E+02−0.002442618−0.0155348210.066590672−0.05639501−0.0020243680.025058277−0.00938845
R8−1.2945E+03−0.002726803−0.0766347960.12542749−0.0970724780.042292054−0.006646668−0.000234832
R9−5.7156E+010.1428158−0.291340160.39322118−0.438745170.30509686−0.115910360.01802542
R10−8.0950E+02−0.0848694730.20086002−0.26249220.17474201−0.0651252651.27E−02−9.97E−04
R11−6.8328E+00−0.0848694730.028126036−0.0035672554.28012E−055.15E−053.44E−06−1.21E−06
R12−3.7220E+00−0.126499220.017291078−0.0027050350.0001767842.51E−06−6.46E−071.65E−09
TABLE 5
Rdndνd
S1∞d0=−0.163
R12.979d1=0.243nd11.5033ν138.00
R23.622d2=0.046
R32.985d3=0.645nd21.6830ν255.90
R415.464d4=0.039
R55.168d5=0.249nd31.7100ν323.50
R62.741d6=0.266
R77.079d7=0.468nd41.7100ν455.80
R8−11.945d8=0.517
R9−3.854d9=0.289nd51.6232ν521.40
R10−9.118d10=0.403
R111.658d11=0.918nd61.5853ν655.70
R121.430748d12=0.511
R13∞d13=0.210ndg1.5168νg64.17
R14∞d14=0.504
TABLE 6
Conic IndexAspherical Surface Index
kA4A6A8A10A12A14A16
R11.9276E+000.0174912050.000721157−0.0177678640.011545311−0.0103805930.004308664−0.001435027
R27.9346E+000.011939991−0.0431494190.0348848980.003261865−0.0143516240.002506298−0.004035901
R31.1067E+000.012793029−0.0355696950.0074671490.040000331−0.027813404−0.0014945910.001501186
R4−1.6413E+02−0.0377047780.014728202−0.133010150.0718046850.015495705−0.0133386540.00088352
R57.6024E−02−0.1275306−0.000382357−0.039769817−0.033876770.08698492−0.0312433380.001758881
R6−1.0587E+01−0.034647540.022136472−0.132327420.19800965−0.129845690.031636754−4.85449E−05
R7−4.3325E+01−0.005804022−0.0194707020.06561118−0.056339749−0.0019069650.024834596−0.009666695
R8−2.2566E+02−0.000549284−0.0739926640.12645829−0.0968546530.042237491−0.006757718−0.00030909
R9−2.3889E+010.14046571−0.290002780.39334249−0.43877520.30504462−0.115941220.018012643
R10−9.4744E+02−0.0822478690.20020739−0.262580260.17478057−0.0650985771.27E−02−9.95E−04
R11−4.5500E+00−0.0822478690.027832423−0.0036798772.57875E−054.98E−053.51E−06−1.12E−06
R12−3.5563E+00−0.123501460.017772789−0.0027011610.0001758292.40E−06−6.54E−071.73E−09
TABLE 7 — Inflexion
point numberInflexion point position 1Inflexion point position 2
P1R110.995
P1R211.025
P2R111.005
P2R210.345
P3R120.3551.035
P3R220.6051.185
P4R110.975
P4R210.835
P5R111.395
P5R2
P6R110.545
P6R210.705
TABLE 9
Rdndνd
S1∞d0=−0.209
R12.101d1=0.395nd11.5418ν146.60
R24.287d2=0.046
R34.411d3=0.643nd21.6489ν240.66
R415.071d4=0.029
R54.601d5=0.237nd32.0391ν322.99
R62.567d6=0.219
R77.655d7=0.557nd42.0604ν469.00
R8−27.690d8=0.424
R9−3.796d9=0.357nd51.6775ν536.18
R10−7.745d10=0.346
R111.690d11=1.021nd61.5018ν634.48
R121.519742d12=0.448
R13∞d13=0.210ndg1.5168νg64.17
R14∞d14=0.441
TABLE 10
Conic IndexAspherical Surface Index
kA4A6A8A10A12A14A16
R12.0340E−01−0.009891674−0.003915523−0.0169750360.013713966−0.009054560.005167401−0.001930358
R28.6904E+00−0.015834422−0.0489871190.0334769560.003873403−0.0124844740.004883498−0.001507377
R33.1546E+000.020779461−0.0309785550.0117943760.041655964−0.027591158−0.0018738440.000955108
R4−6.3317E+02−0.0338019440.014378418−0.134946230.0705424710.015165176−0.0133397550.000929004
R5−2.0751E+00−0.1265172−0.001068734−0.039295671−0.0335747640.086611861−0.0313629880.001715551
R6−9.8795E+00−0.0288235910.034263898−0.128748410.19835453−0.129388710.0319308790.000270128
R7−1.7055E+020.001359967−0.0140571820.067570596−0.055698328−0.0020499480.025263057−0.009429526
R8−1.5612E+03−0.002663746−0.0763074330.12531437−0.0975696920.04212206−0.006698142−0.000235619
R9−4.4643E+010.14722808−0.288031430.39309733−0.439313490.30473401−0.115980040.018076332
R10−5.1552E+01−0.0714835780.19992187−0.263095090.17495761−0.0651419761.26E−02−1.00E−03
R11−9.3029E+00−0.0714835780.028034865−0.0035628084.56758E−055.17E−053.88E−06−1.04E−06
R12−3.6495E+00−0.130716990.018287514−0.0027205570.000166211.68E−06−6.10E−071.99E−08
TABLE 13
Embodiment 1Embodiment 2Embodiment 3
f4.2824.0444.044
f16.52629.6037.147
f211.5055.3059.389
f3−7.804−8.589−5.943
f48.2336.3255.702
f5−11.995−10.942−11.406
f640.66636.31129.964
f124.2394.5994.148
(R1 + R2)/(R1 − R2)−2.96410.269−2.921
(R3 + R4)/(R3 − R4)−1.892−1.478−1.828
(R5 + R6)/(R5 − R6)3.1593.2593.525
(R7 + R8)/(R7 − R8)−0.597−0.256−0.567
(R9 + R10)/−2.736−2.464−2.922
(R9 − R10)
(R11 + R12)/(R11 −12.85513.59018.857
R12)
f1/f1.5247.3201.767
f2/f2.6871.3122.322
f3/f−1.823−2.124−1.470
f4/f1.9231.5641.410
f5/f−2.802−2.706−2.821
f6/f9.4988.9797.410
f12/f0.9901.1371.026
d10.3930.2430.395
d30.6200.6450.643
d50.2470.2490.237
d70.5080.4680.557
d90.3790.2890.357
d111.0100.9181.021
Fno2.0002.0002.000
TTL5.3565.3085.373
d1/TTL0.0730.0460.074
d3/TTL0.1160.1210.120
d5/TTL0.0460.0470.044
d7/TTL0.0950.0880.104
d9/TTL0.0710.0540.066
d11/TTL0.1890.1730.190
n11.59881.50331.5418
n21.55341.68301.6489
n31.70831.71002.0391
n41.71001.71002.0604
n51.64171.62321.6775
n61.54311.58531.5018
v138.000038.000046.6007
v255.900055.900040.6563
v323.500023.500022.9934
v455.800055.800069.0004
v521.400021.400036.1816
v655.700055.700034.4762

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IPC · International Patent Classification
Section G — Physics
  • G02B9/62
  • G02B13/00

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