USRE47791E1 - Imaging lens - Google Patents
Imaging lens Download PDFInfo
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- USRE47791E1 USRE47791E1 US15/876,281 US201815876281A USRE47791E US RE47791 E1 USRE47791 E1 US RE47791E1 US 201815876281 A US201815876281 A US 201815876281A US RE47791 E USRE47791 E US RE47791E
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B13/00—Optical objectives specially designed for the purposes specified below
- G02B13/001—Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras
- G02B13/0015—Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design
- G02B13/002—Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design having at least one aspherical surface
- G02B13/0045—Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design having at least one aspherical surface having five or more lenses
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B9/00—Optical objectives characterised both by the number of the components and their arrangements according to their sign, i.e. + or -
- G02B9/60—Optical objectives characterised both by the number of the components and their arrangements according to their sign, i.e. + or - having five components only
Definitions
- the present application is a continuation reissue application of the application Ser. No. 15/154,052, issued as U.S. Pat. No. RE46,946, which is a continuation reissue application of the application Ser. No. 14/642,942, issued as U.S. Pat. No. RE46,034, which is an application for reissue of U.S. Pat. No. 8,411,376.
- the present application has co-pending continuation reissue application Ser. Nos. 15/872,170 and 15/874,200.
- the present invention relates to an imaging lens for forming an image on an imaging element such as a CCD sensor and a CMOS sensor.
- the present invention relates to an imaging lens suitable for mounting in a relatively small camera such as a cellular phone, a digital still camera, a portable information terminal, a security camera, an onboard camera, and a network camera.
- An imaging lens to be mounted in a small camera has been required to have a high resolution lens configuration suitable for a recently developed imaging element with a high resolution, as well as to use a fewer number of lenses.
- a three-lens imaging lens has been frequently used as such an imaging lens.
- an imaging element has higher resolution, it is more difficult to obtain sufficient performances only with three lenses.
- another lens configuration a four-lens configuration or a five-lens configuration, has been applied.
- An imaging lens disclosed in Patent Reference has been known as an imaging lens having such a five-lens configuration.
- the imaging lens disclosed in Patent Reference includes a positive first lens having a convex surface on the object side; a second lens having a negative meniscus shape that directs a concave surface on the image side; a third lens having a positive meniscus shape that directs a convex surface on the image side; a negative fourth lens in which both surfaces have an aspheric shape and a surface thereof on the image side near an optical axis is concave; and a positive or negative fifth lens, in which both surfaces are aspheric shape, in this order from the object side.
- an object of the present invention is to provide an imaging lens with a small size capable of properly correcting aberration.
- an imaging lens includes a first lens having positive refractive power; a second lens having negative refractive power; a third lens having negative refractive power; a fourth lens having positive refractive power; and a fifth lens having negative refractive power in this order from the object side to the image side.
- the first lens is shaped to form a biconvex lens and the second lens is shaped to form a lens that directs a concave surface on the object side.
- the first lens is shaped to form a biconvex lens. Therefore, it is possible to set the refractive power of the first lens relatively strong, so that it is possible to suitably attain miniaturization of an imaging lens.
- this first lens having positive refractive power, there remains a concern of generation of field curvature.
- disposing on the image side of the first lens the second lens having negative refractive power so as to direct the concave surface on the object side it is possible to reduce worsening of the field curvature generated at the first lens. Therefore, according to the imaging lens of this invention, despite the small size, it is possible to satisfactorily correct the aberrations.
- a shape of the third lens for example, it may be possible to choose a shape of a meniscus lens that directs a concave surface on the object side.
- a shape of the fourth lens for example, it may be possible to choose a shape of a biconvex lens.
- conditional expression (3) it is possible to keep the axial chromatic aberration and off-axis chromatic aberration stable while satisfactorily correcting those chromatic aberrations. If the conditional expression (3) is not satisfied, the axial chromatic aberrations at short wavelengths increase in the minus direction in relative to that of the reference wavelength, and the aberration is insufficiently corrected.
- the Abbe's number of the third lens is set to a small value in order to improve such insufficient correction of chromatic aberration, the axial chromatic aberration is satisfactorily corrected, but the off-axis chromatic aberration of magnification is excessively corrected and worsened.
- this limit in the acceptance angle of an incoming light beam is provided as certain range around principal light beam (e.g. ⁇ 25° of the principal light beam).
- the imaging lens with the aforementioned configuration when the whole lens system has a focal length f and a distance on the optical axis from a surface of the first lens on the object side to a surface of the fifth lens on the image side is ⁇ d, it is preferred to satisfy the following conditional expression (5) also in view of miniaturization of an imaging lens: ⁇ d/f ⁇ 1.2 (5)
- the imaging lens has a configuration that satisfies the conditional expression (6), a position of a principal point of the optical system moves towards the object side, so that it is possible to attain miniaturization of an imaging lens while keeping the focal length long.
- it is effective to satisfy the conditional expression (5) also as a means to supplement insufficient correction of axial chromatic aberration.
- the imaging lens of the invention it is possible to both reduce the size of the imaging lens and correct the aberration properly, thereby making it possible to provide the imaging lens with the small size capable of correcting aberrations properly.
- FIG. 1 is a schematic sectional view showing a configuration of an imaging lens in Numerical Data Example 1;
- FIG. 2 is an aberration diagram showing a lateral aberration of the imaging lens in Numerical Data Example 1;
- FIG. 3 is an aberration diagram showing a spherical aberration, an astigmatism, and a distortion of the imaging lens in Numerical Data Example 1;
- FIG. 4 is a schematic sectional view showing a configuration of an imaging lens in Numerical Data Example 2;
- FIG. 5 is an aberration diagram showing a lateral aberration of the imaging lens in Numerical Data Example 2;
- FIG. 6 is an aberration diagram showing a spherical aberration, an astigmatism, and a distortion of the imaging lens in Numerical Data Example 2;
- FIG. 7 is a schematic sectional view showing a configuration of an imaging lens in Numerical Data Example 3;
- FIG. 8 is an aberration diagram showing a lateral aberration of the imaging lens in Numerical Data Example 3;
- FIG. 9 is an aberration diagram showing a spherical aberration, an astigmatism, and a distortion of the imaging lens in Numerical Data Example 3;
- FIG. 10 is a schematic sectional view showing a configuration of an imaging lens in Numerical Data Example 4.
- FIG. 11 is an aberration diagram showing a lateral aberration of the imaging lens in Numerical Data Example 4.
- FIG. 12 is an aberration diagram showing a spherical aberration, an astigmatism, and a distortion of the imaging lens in Numerical Data Example 4;
- FIG. 13 is a schematic sectional view showing a configuration of an imaging lens in Numerical Data Example 5;
- FIG. 14 is an aberration diagram showing a lateral aberration of the imaging lens in Numerical Data Example 5.
- FIG. 15 is an aberration diagram showing a spherical aberration, an astigmatism, and a distortion of the imaging lens in Numerical Data Example 5.
- FIGS. 1, 4, and 7, and 10 are schematic sectional views showing image lenses in Numerical Data Examples 1 to 4 according to the embodiment, respectively. Since a basic lens configuration is the same among the Numerical Data Examples 1 to 4, the lens configuration of the embodiments will be described with reference to the lens sectional view of Numerical Data Example 1.
- the imaging lens of the embodiment includes an aperture stop ST; a first lens L 1 having positive refractive power; a second lens L 2 having negative refractive power; a third lens L 3 having negative refractive power; a fourth lens L 4 having positive refractive power; and a fifth lens L 5 having negative refractive power, which are arranged in this order from an object side to an image side of the imaging lens.
- a cover glass 10 is provided between the fifth lens L 5 and the image plane of an imaging element. It is noted that the cover glass 10 may be optionally omitted.
- the first lens L 1 is a biconvex lens
- the second lens L 2 is a meniscus lens that directs a concave surface on the object side.
- These first lens L 1 and the second lens L 2 satisfy the following conditional expressions (1) to (3): 0.7 ⁇ f12/f ⁇ 1.4 (1) 0.2 ⁇
- conditional expressions (1) to (3) it is possible to obtain the following effects respectively.
- conditional expression (1) it is possible to keep the field curvature and coma aberration stable while keeping the whole length of the imaging lens short.
- conditional expression (2) it is possible to keep the axial chromatic aberration and spherical aberration stable.
- conditional expression (3) it is possible to keep the axial chromatic aberration and off-axis chromatic aberration stable while properly correcting those chromatic aberrations.
- the third lens L 3 is shaped to form a meniscus lens that directs a concave surface on the object side and the fourth lens L 4 is shaped to form a biconvex lens.
- the fifth lens L 5 is shaped to form a biconcave lens.
- a surface thereof on the image side is shaped to form an aspheric shape, which is concaved on the image side near the optical axis and is convex on the image side at the periphery, i.e. aspheric shape having an inflection point. Because of this, an incident angle of a light beam emitted from the fifth lens L 5 to an image plane is restrained.
- the lens surfaces of all lenses are formed to be an aspheric surface as necessary.
- the aspheric surfaces of the lens surfaces may be expressed as follows.
- the lens surfaces of all lenses are formed to be an aspheric surface as necessary, and aspheric surface shapes applied in theses lens surfaces are expressed by the following formula similarly to this embodiment:
- ⁇ d Distance on the optical axis from a surface of the first lens L 1 on the object side to a surface of the fifth lens L 5 on the image side.
- conditional expressions (4) to (6) When the conditional expressions (4) to (6) are satisfied, it is possible to obtain the following effects respectively.
- conditional expression (4) it is possible to keep the maximum angle of emergence of the off-axis principal light beam small, while keeping each aberration stable.
- conditional expression (5) it is possible to attain miniaturization of the imaging lens.
- conditional expression (6) it is possible to attain miniaturization of the imaging lens while keeping the focal length long.
- conditional expressions (1) to (6) it is not necessary to satisfy all of the above conditional expressions (1) to (6).
- any single one of the conditional expressions (1) to (6) is individually satisfied, it is possible to obtain an effect corresponding to the respective conditional expression.
- f represents a focal length of a whole lens system
- Fno represents an F number
- ⁇ represents a half angle of view, respectively.
- i represents a surface number counted from the object side
- R represents a curvature radius
- d represents a distance between lens surfaces (an on-axis surface spacing) along the optical axis
- Nd represents a refractive index for a d line
- ⁇ d represents Abbe's number at the d line.
- the aspheric surfaces are indicated with surface numbers affixed with * (asterisk).
- FIG. 2 shows the lateral aberration that corresponds to the half angle of view ⁇ in the imaging lens of Numerical Data Example 1 by dividing into a tangential direction and sagittal direction (which is also the same in FIGS. 5, 8, and 11 ).
- FIG. 3 shows a spherical aberration SA (mm), an astigmatism AS (mm), and a distortion DIST (%), respectively.
- the Offence against the Sine Condition is also indicated for the spherical aberration diagram in addition to the aberrations at the respective wavelengths of 587.56 nm, 435.84 nm, 656.27 nm, 486.13 nm, and 546.07 nm.
- the aberration on the sagittal image surface S and the aberration on the tangential image surface T are respectively indicated (which are the same in FIGS. 6, 9, and 12 ).
- FIG. 5 shows the lateral aberration that corresponds to the half angle of view ⁇ in the imaging lens of Numerical Data Example 2
- FIG. 6 shows the spherical aberration SA (mm), the astigmatism AS (mm), and the distortion DIST (%), respectively.
- SA spherical aberration
- AS mm
- DIST distortion DIST
- FIG. 8 shows the lateral aberration that corresponds to the half angle of view ⁇ in the imaging lens of Numerical Data Example 3
- FIG. 9 shows the spherical aberration SA (mm), the astigmatism AS (mm), and the distortion DIST (%), respectively.
- SA spherical aberration
- AS mm
- DIST distortion DIST
- FIG. 11 shows the lateral aberration that corresponds to the half angle of view ⁇ in the imaging lens of Numerical Data Example 4
- FIG. 12 shows the spherical aberration SA (mm), the astigmatism AS (mm), and the distortion DIST (%), respectively.
- SA spherical aberration
- AS mm
- DIST distortion DIST
- the imaging lens of this embodiment includes an aperture stop ST; a first lens L 1 having positive refractive power; a second lens L 2 having negative refractive power; a third lens L 3 having negative refractive power; a fourth lens L 4 having positive refractive power; and a fifth lens L 5 having negative refractive power, which are arranged in this order from the object side towards the image side of an imaging lens.
- a cover glass 10 is provided between the fifth lens L 5 and the image plane.
- the second lens L 2 is a biconcave lens
- the first lens L 1 and the second lens L 2 are combined as shown in FIG. 13 .
- the lens configuration like this it is possible to more suitably correct chromatic aberration.
- the first lens L 1 is biconvex lens
- the second lens L 2 is a biconcave lens
- those lenses are combined.
- the third lens L 3 is a meniscus lens that directs a concave surface on the object side
- the fourth lens L 4 is a biconvex lens.
- the fifth lens L 5 is a biconcave lens, and a surface thereof on the image side is formed to be an aspheric shape having an inflection point.
- the imaging lens is configured to satisfy the following conditional expressions (1) to (6) similarly to the first embodiment.
- ⁇ d Distance on the optical axis from a surface of the first lens L 1 on the object side to a surface of the fifth lens L 5 on the image side.
- f is a focal length of the whole lens system
- Fno represents an F number
- ⁇ represents a half angle of view, respectively.
- i represents a surface number counted from the object side
- R represents a curvature radius
- d is a distance between lens surfaces
- Nd on the optical axis is refractive index for a d line
- ⁇ d is Abbe's number at a d line, respectively.
- the aspheric surfaces are indicated with surface numbers affixed with * (asterisk).
- the imaging lens of Numerical Data Example 5 satisfies the conditional expressions (1) to (6).
- FIG. 14 shows the lateral aberration that corresponds to the half angle of view ⁇ in the imaging lens of Numerical Data Example 5, and FIG. 15 shows the spherical aberration SA (mm), the astigmatism AS (mm), and the distortion DIST (%), respectively.
- SA spherical aberration
- AS mm
- DIST distortion DIST
- the imaging lens of the respective embodiments is applied to an imaging optical system of a cellular phone, a digital still camera, a portable information terminal, a security camera, an onboard camera, a network camera, and the like, it is possible to obtain the high performance and the small size for the camera or the like.
- the imaging lens of the invention shall not be limited to the above-described embodiments.
- the fifth lens L 5 is configured to have an inflection point so as to restrain the incident angle of a light beam into an imaging element.
- a lens surface of the fifth lens L 5 may be formed in a aspheric shape that does not have an inflection point, or one surface or both surfaces of the fifth lens L 5 may be formed with a spherical surface(s).
- the invention may be applicable to the imaging lens of a device that is required to have a small size and satisfactory aberration correction ability, e.g., the imaging lenses used in the cellular phones, the digital still cameras, and the like.
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Abstract
0.7<f12/f<1.4
0.2<|f1/f2|<0.6
15<νd1−νd2
0.4<f4/f<1.0
Σd/f<1.2
|f5/f|<1.0
Description
0.7<f12/f<1.4 (1)
0.2<|f1/f2|<0.6 (2)
15<νd1−νd2 (3)
0.4<f4/f<1.0 (4)
Σd/f<1.2 (5)
|f5/f|<1.0 (6)
0.7<f12/f<1.4 (1)
0.2<|f1/f2|<0.6 (2)
15<νd1−νd2 (3)
The imaging lens according to this embodiment satisfies the following conditional expressions (4) to (6) in addition to the aforementioned conditional expressions (1) to (3):
0.4<f4/f<1.0 (4)
Σd/f<1.2 (5)
|f5/f|<1.0 (6)
Basic lens data are shown below. |
f = 3.903 mm, Fno = 2.805, ω = 31.59° |
Unit: mm |
Surface Data |
Surface | ||||
Number i | R | d | Nd | νd |
(Object) | ∞ | ∞ | ||
1 (Stop) | ∞ | 0 | ||
2* | 1.571 | 0.5500 | 1.52470 | 56.2 (=νd1) |
3* | −7.132 | 0.1500 | ||
4 | −3.521 | 0.3000 | 1.61420 | 26.0 (=νd2) |
5* | −19.595 | 0.2800 | ||
6* | −1.823 | 0.2800 | 1.58500 | 29.0 |
7* | −5.912 | 0.3600 | ||
8* | 3.357 | 0.8500 | 1.52470 | 56.2 |
9* | −1.613 | 0.3000 | ||
10* | −2.617 | 0.3300 | 1.52470 | 56.2 |
11* | 3.067 | 0.3000 | ||
12 | ∞ | 0.1500 | 1.51633 | 64.12 |
13 | ∞ | 0.8823 | ||
(Image plane) | ∞ | |||
f1 = 2.508 |
f2 = −7.038 |
f12 = 3.573 |
f4 = 2.206 |
f5 = −2.639 |
Σd = 3.400 |
Aspheric Surface Data |
Second Surface | ||
k = −1.544427E−01, | A4 = 1.976046E−02, | A6 = −1.793809E−02 |
Third Surface | ||
k = 1.063940, | A4 = 4.713006E−03, | A6 = −2.945120E−02 |
Fifth Surface | ||
k = 1.415349E+02, | A4 = −2.371673E−02, | A6 = 1.311554E−02 |
Sixth Surface | ||
k = −2.723790, | A4 = −1.147380E−02, | A6 = −4.130846E−02, |
A8 = −3.948624E−03, | A10 = 5.021037E−02 | |
Seventh Surface | ||
k = −9.933691, | A4 = 3.758781E−03, | A6 = 1.719515E−02, |
A8 = 1.736953E−02, | A10 = 1.092378E−02 | |
Eighth Surface | ||
k = −2.241293E+01, | A4 = −2.578027E−02, | A6 = −7.694008E−03, |
A8 = −1.375408E−03, | A10 = 6.496087E−04 | |
Ninth Surface | ||
k = 6.248352E−02, | A4 = 1.165596E−01, | A6 = −3.911326E−02, |
A8 = 1.261679E−02, | A10 = 1.134638E−04 | |
Tenth Surface | ||
k = 1.999301, | A4 = 3.503592E−02, | A6 = −3.907364E−02, |
A8 = 1.551177E−02, | A10 = −3.231912E−03 | |
Eleventh Surface | ||
k = 2.223974E−01, | A4 = −9.602329E−02, | A6 = 7.338596E−03, |
A8 = −1.181135E−03, | A10 = −3.315528E−04 | |
Values of the conditional expressions (1) to (6) are as follows: |
f12/f = 0.915 |
|f1/f2| = 0.356 |
νd1 − νd2 = 30.2 |
f4/f = 0.565 |
Σd/f = 0.871 |
|f5/f| = 0.676 |
Basic lens data are shown below. |
f = 3.899 mm, Fno = 2.800, ω = 32.67° |
Unit: mm |
Surface data |
Surface | ||||
Number i | R | d | Nd | νd |
(Object) | ∞ | ∞ | ||
1 (Stop) | ∞ | 0 | ||
2* | 1.604 | 0.5500 | 1.52470 | 56.2 (=νd1) |
3* | −8.437 | 0.1500 | ||
4 | −3.456 | 0.3000 | 1.61420 | 26.0 ( =νd2) |
5* | −18.051 | 0.2800 | ||
6* | −1.948 | 0.2800 | 1.58500 | 29.0 |
7* | −4.589 | 0.3000 | ||
8* | 3.916 | 0.8000 | 1.52470 | 56.2 |
9* | −1.597 | 0.2500 | ||
10* | −2.618 | 0.3300 | 1.52470 | 56.2 |
11* | 3.256 | 0.3000 | ||
12 | ∞ | 0.1500 | 1.51633 | 64.12 |
13 | ∞ | 1.0397 | ||
(Image | ∞ | |||
plane) | ||||
f1 = 2.618 |
f2 = −7.014 |
f12 = 3.817 |
f4 = 2.276 |
f5 = −2.713 |
Σd = 3.240 |
Aspheric Surface Data |
Second Surface | ||
k = −1.439472E−01, | A4 = 2.032875E−02, | A6 = −1.399217E−02 |
Third Surface | ||
k = 1.913498, | A4 = 4.854973E−03, | A6 = −1.585207E−02 |
Fifth Surface | ||
k = 2.521344E+02, | A4 = −2.591410E−02, | A6 = 3.798179E−03 |
Sixth Surface | ||
k = −3.165513, | A4 = −7.669636E−03, | A6 = −4.014852E−02, |
A8 = 5.980691E−03, | A10 = 3.235352E−02 | |
Seventh Surface | ||
k = −3.803800, | A4 = 1.097028E−03, | A6 = 1.770991E−02, |
A8 = 1.736123E−02, | A10 = 1.453023E−02 | |
Eighth Surface | ||
k = −5.618736E+01, | A4 = −3.829839E−02, | A6 = −1.530875E−02, |
A8 = −3.059261E−03, | A10 = 4.242948E−04 | |
Ninth Surface | ||
k = 8.069668E−02, | A4 = 1.050962E−01, | A6 = −4.000834E−02, |
A8 = 1.262215E−02, | A10 = −9.911318E−05 | |
Tenth Surface | ||
k = 2.019736, | A4 = 4.417573E−02, | A6 = −3.888932E−02, |
A8 = 1.333875E−02, | A10 = −4.117009E−03 | |
Eleventh Surface | ||
k = 8.429077E−01, | A4 = −9.283294E−02, | A6 = 9.981823E−03, |
A8 = −1.869262E−03, | A10 = −4.558872E−04 | |
Values of each conditional expression are as follows: |
f12/f = 0.979 |
|f1/f2| = 0.373 |
νd1 − νd2 = 30.2 |
f4/f = 0.584 |
Σd/f = 0.831 |
|f5/f| = 0.696 |
Basic lens data are shown below. |
f = 3.907 mm, Fno = 2.805, ω = 32.64° |
Unit: mm |
Surface Data |
Surface | ||||
Number i | R | d | Nd | νd |
(Object) | ∞ | ∞ | ||
1 (Stop) | ∞ | 0 | ||
2* | 1.575 | 0.5500 | 1.52470 | 56.2 (= νd1) |
3* | −7.276 | 0.1500 | ||
4 | −3.502 | 0.3000 | 1.61420 | 26.0 (= νd2) |
5* | −19.883 | 0.2800 | ||
6* | −1.831 | 0.2800 | 1.58500 | 29.0 |
7* | −5.761 | 0.3600 | ||
8* | 3.400 | 0.8500 | 1.52470 | 56.2 |
9* | −1.611 | 0.3000 | ||
10* | −2.619 | 0.3300 | 1.52470 | 56.2 |
11* | 3.153 | 0.3000 | ||
12 | ∞ | 0.1500 | 1.51633 | 64.12 |
13 | ∞ | 0.9013 | ||
(Image | ∞ | |||
plane) | ||||
f1 = 2.521 |
f2 = −6.969 |
f12 = 3.615 |
f4 = 2.212 |
f5 = −2.674 |
Σd = 3.400 |
Aspheric Surface Data |
Second Surface | ||
k = −1.709914E−01, | A4 = 1.904787E−02, | A6 = −1.792465E−02 |
Third Surface | ||
k = 7.046181, | A4 = 2.542724E−03, | A6 = −2.853682E−02 |
Fifth Surface | ||
k = 1.341757E+02, , | A4 = −2.342623E−02 | A6 = 1.151604E−02 |
Sixth Surface | ||
k = −2.664785, | A4 = −1.221495E−02, | A6 = −4.161820E−02, |
A8 = −3.480280E−03, | A10 = 4.712500E−02 | |
Seventh Surface | ||
k = −1.007092E+01, | A4 = 3.857254E−03, | A6 = 1.729519E−02, |
A8 = 1.721151E−02, | A10 = 1.079714E−02 | |
Eighth Surface | ||
k = −2.440426E+01, | A4 = −2.565446E−02, | A6 = −8.232621E−03, |
A8 = −1.561612E−03, | A10 = 6.144595E−03 | |
Ninth Surface | ||
k = 6.497601E−02, | A4 = 1.149186E−01, | A6 = −3.897702E−02, |
A8 = 1.270717E−02, | A10 = 1.210040E−04 | |
Tenth Surface | ||
k = 1.994817, | A4 = 3.657337E−02, | A6 = −3.934563E−02, |
A8 = 1.507533E−02, | A10 = −3.504426E−03 | |
Eleventh Surface | ||
k = 3.526177E−02, | A4 = −9.652400E−02, | A6 = 7.275239E−03, |
A8 = −1.425736E−03, | A10 = −3.842309E−04 | |
Values of the conditional expressions (1) to (6) are as follows: |
f12/f = 0.925 |
|f1/f2| = 0.362 |
νd1 − νd2 = 30.2 |
f4/f = 0.566 |
Σd/f = 0.870 |
|f5/f| = 0.684 |
Basic lens data are shown below. |
f = 3.848 mm, Fno = 2.805, ω = 30.32° |
Unit: mm |
Surface Data |
Surface | ||||
Number i | R | d | Nd | νd |
(Object) | ∞ | ∞ | ||
1 (Stop) | ∞ | 0 | ||
2* | 1.566 | 0.5500 | 1.52470 | 56.2 (=νd1) |
3* | −7.023 | 0.1500 | ||
4 | −3.536 | 0.3000 | 1.61420 | 26.0 (=νd2) |
5* | −19.676 | 0.2800 | ||
6* | −1.837 | 0.2800 | 1.52470 | 56.2 |
7* | −6.033 | 0.3600 | ||
8* | 3.302 | 0.8500 | 1.52470 | 56.2 |
9* | −1.614 | 0.3000 | ||
10* | −2.639 | 0.3300 | 1.58500 | 29.0 |
11* | 2.922 | 0.3000 | ||
12 | ∞ | 0.5000 | 1.51633 | 64.12 |
13 | ∞ | 0.5310 | ||
(Image plane) | ∞ | |||
f1 = 2.495 |
f2 = −7.068 |
f12 = 3.539 |
f4 = 2.197 |
f5 = −2.320 |
Σd = 3.400 |
Aspheric Surface Data |
Second Surface | ||
k = −1.514551E−01, | A4 = 2.041462E−02, | A6 = −2.332746E−02 |
Third Surface | ||
k = 4.107515E−02, | A4 = 5.196393E−03, | A6 = −3.559135E−02 |
Fifth Surface | ||
k = 8.917948E+01, | A4 = −2.298304E−02, | A6 = 1.782019E−02 |
Sixth Surface | ||
k = −2.682345, | A4 = −1.244876E−02, | A6 = −4.412886E−02, |
A8 = −8.375465E−03, | A10 = 5.365573E−02 | |
Seventh Surface | ||
k = −1.211874E+01, | A4 = 4.641584E−03, | A6 = 1.781682E−02, |
A8 = 1.808663E−02, | A10 = 1.095189E−02 | |
Eighth Surface | ||
k = −1.915006E+01, | A4 = −2.420006E−02, | A6 = −6.347979E−03, |
A8 = −8.744578E−04, | A10 = 8.120666E−04 | |
Ninth Surface | ||
k = 6.472730E−02, | A4 = 1.202224E−01, | A6 = −3.910233E−02, |
A8 = 1.241952E−02, | A10 = 4.587975E−05 | |
Tenth Surface | ||
k = 1.948054, | A4 = 3.123665E−02, | A6 = −3.881734E−02, |
A8 = 1.645138E−02, | A10 = −2.866062E−03 | |
Eleventh Surface | ||
k = 1.218782, | A4 = −9.899569E−02, | A6 = 7.341671E−03, |
A8 = −9.793363E−04, | A10 = −3.286655E−04 | |
Values of the conditional expressions (1) to (6) are as follows: |
f12/f = 0.920 |
|f1/f2| = 0.353 |
νd1 − νd2 = 30.2 |
f4/f = 0.571 |
Σd/f = 0.884 |
|f5/f| = 0.603 |
0.7<f12/f<1.4 (1)
0.2<|f1/f2|<0.6 (2)
15<νd1−νd2 (3)
0.4<f4/f<1.0 (4)
Σd/f<1.2 (5)
|f5/f|<1.0 (6)
Basic lens data are shown below. |
f = 3.871 mm, Fno = 2.800, ω = 30.17° |
Unit: mm |
Surface Data |
Surface | ||||
Number i | R | d | Nd | νd |
(Object) | ∞ | ∞ | ||
1 (Stop) | ∞ | 0 | ||
2* | 2.393 | 0.5000 | 1.67790 | 55.5(=νd1) |
3 | −3.334 | 0.3000 | 1.66446 | 36.0(=νd2) |
4 | 41.657 | 0.4272 | ||
5* | −1.904 | 0.2640 | 1.58500 | 29.0 |
6* | −4.245 | 0.6695 | ||
7* | 4.525 | 0.8798 | 1.52470 | 56.2 |
8* | −1.707 | 0.4993 | ||
9* | −2.515 | 0.3234 | 1.58500 | 29.0 |
10* | 3.495 | 0.1000 | ||
11 | ∞ | 0.5000 | 1.51633 | 64.12 |
12 | ∞ | 0.5945 | ||
(Image | ∞ | |||
plane) | ||||
f1 = 2.130 |
f2 = −4.633 |
f12 = 3.660 |
f4 = 2.483 |
f5 = −2.451 |
Σd = 3.863 |
Aspheric Surface Data |
Second Surface | ||
k = 2.191111, | A4 = −9.435404E−03, | A6 = −3.285189E−02, |
A8 = 3.672070E−02, | A10 = −3.270308E−02 | |
Fifth Surface | ||
k = −1.984333, | A4 = −1.805977E−02, | A6 = −2.675334E−02, |
A8 = 7.933052E−04, | A10 = 1.631158E−02 | |
Sixth Surface | ||
k = −5.661022E−01, | A4 = −1.709355E−02, | A6 = −1.717627E−03, |
A8 = −5.550278E−03, | A10 = 4.049249E−03 | |
Seventh Surface | ||
k = −4.220498, | A4 = −8.6408444E−03, | A6 = −8.170485E−04, |
A8 = −6.511240E−05, | A10 = 2.033590E−05 | |
Eighth Surface | ||
k = 3.300032E−02, | A4 = 1.125967E−01, | A6 = −3.672376E−02, |
A8 = 1.170047E−02, | A10 = 3.409990E−04 | |
Ninth Surface | ||
k = 1.781895, | A4 =6.458725E−03, | A6 = −5.275346E−02, |
A8 = 1.858108E−02, | A10 = −1.882214E−03 | |
Tenth Surface | ||
k = −5.273886E−01, | A4 = −9.506179E−02, | A6 = 6.538888E−03, |
A8 = −7.519095E−04, | A10 = 1.760657E−05 | |
Values of each conditional expression are as follows: |
f12/f = 0.945 |
|f1/f2| = 0.460 |
νd1 − νd2 = 19.5 |
f4/f = 0.641 |
Σd/f = 0.998 |
|f5/f| = 0.633 |
Claims (37)
0.7<f12/f<1.4.
0.2<f1/f21<0.6.
15<νd1−νd2.
0.4<f4/f<1.0.
Σd/f<1.2.
|f5/f|<1.0.
0.4<f4/f<1.0.
0.7<f12/f<1.4.
0.2<|f1/f2|<0.6.
15<νd1−νd2.
Σd/f<1.2.
|f5/f1<1.0.
|f5/f1<1.0.
0.7<f12/f<1.4.
0.2<|f1/f21<0.6.
15<νd1−νd2.
0.4<f4/f<1.0.
Σd/f<1.2.
15<νd1−νd2,
Σd/f<1.2,
0.7<f12/f<1.4.
0.2<|f1/f2|<0.6.
0.4<f4/f<1.0.
|f5/f|<1.0.
|f5/f|<1.0,
Σd/f<1.2,
0.7<f12/f<1.4.
0.2<|f1/f2|<0.6.
15<νd1−νd2.
0.4<f4/f<1.0.
15<νd1−νd2,
Σd/f<1.2,
0.7<f12/f<1.4.
0.2<|f1/f2|<0.6.
0.4<f4/f<1.0.
|f5/f|<1.0.
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JP2008-329285 | 2008-12-25 | ||
JPPCT/JP2009/200900 | 2009-12-11 | ||
US13/168,145 US8411376B2 (en) | 2008-12-25 | 2011-06-24 | Imaging lens |
US14/642,942 USRE46034E1 (en) | 2008-12-25 | 2015-03-10 | Imaging lens |
US15/154,052 USRE46946E1 (en) | 2008-12-25 | 2016-05-13 | Imaging lens |
US15/876,281 USRE47791E1 (en) | 2008-12-25 | 2018-01-22 | Imaging lens |
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US14/642,942 Active USRE46034E1 (en) | 2008-12-25 | 2015-03-10 | Imaging lens |
US15/154,052 Active USRE46946E1 (en) | 2008-12-25 | 2016-05-13 | Imaging lens |
US15/872,170 Active USRE47699E1 (en) | 2008-12-25 | 2018-01-16 | Imaging lens |
US15/874,200 Active USRE47700E1 (en) | 2008-12-25 | 2018-01-18 | Imaging lens |
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US14/642,942 Active USRE46034E1 (en) | 2008-12-25 | 2015-03-10 | Imaging lens |
US15/154,052 Active USRE46946E1 (en) | 2008-12-25 | 2016-05-13 | Imaging lens |
US15/872,170 Active USRE47699E1 (en) | 2008-12-25 | 2018-01-16 | Imaging lens |
US15/874,200 Active USRE47700E1 (en) | 2008-12-25 | 2018-01-18 | Imaging lens |
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JP (1) | JP5201679B2 (en) |
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- 2008-12-25 JP JP2008329285A patent/JP5201679B2/en active Active
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- 2009-12-11 CN CN2009801501885A patent/CN102246080B/en active Active
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Also Published As
Publication number | Publication date |
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USRE47699E1 (en) | 2019-11-05 |
JP2010152042A (en) | 2010-07-08 |
US8411376B2 (en) | 2013-04-02 |
USRE47700E1 (en) | 2019-11-05 |
JP5201679B2 (en) | 2013-06-05 |
USRE46034E1 (en) | 2016-06-21 |
WO2010073522A1 (en) | 2010-07-01 |
US20110249347A1 (en) | 2011-10-13 |
CN102246080A (en) | 2011-11-16 |
USRE46946E1 (en) | 2018-07-10 |
CN102246080B (en) | 2013-10-09 |
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