The present invention relates to a compact, light-weight imaging lens suitable for imaging apparatuses having a solid state imaging device such as a charged coupled device (CCD) and complementary metal oxide semiconductor (CMOS).
In recent years, imaging apparatuses that can be mounted in vehicles (vehicle-mounted cameras) have become prevalent. Highly reliable lenses that are compact, have a simple configuration, and produce bright images are demanded for vehicle-mounted cameras. For example, since the interior of the vehicle may be subject to extremely high temperatures, a configuration that does not employ cemented lenses, which are easily affected by temperature changes, is preferred. Further, some approaches adopt a high dynamic camera as a vehicle-mounted camera and use a scheme to recognize a person or an object in a captured image. In order to accurately recognize a person or an object, a scheme to control stray light and ghosting occurring at imaging elements and lens surfaces, even if light from the headlights of an oncoming vehicle directly enters the camera when this recognition is performed is further demanded.
Since one objective is to capture images while the vehicle is in motion, pan-focus lenses, which reduce the driving portion and do not focus according to the distance of the object, are often adopted as the imaging lens in vehicle-mounted cameras. Additionally, with vehicle-mounted cameras, since light from the headlights of an oncoming vehicle may directly enter the camera at night, a scheme to control stray light and ghosting occurring at imaging elements and lens surfaces is demanded.
Various imaging lenses have been proposed that can be mounted to a vehicle-mounted camera, that are compact, have a simple configuration, and produce bright images (see, for example, Patent Documents 1 and 2).
[Patent Document 2] Japanese Patent Application Laid-Open Publication No. H6-308384
The imaging lens recited in Patent Document 1 has a simple configuration, but correction of spherical aberration is insufficient. A further disadvantage is that, the position of the exit pupil is near the image plane and thus, the angle of incidence of light rays to the image plane is large and if a solid-state imaging device such as a CCD or CMOS is used, the amount of nearby light may drop.
The imaging lens recited in Patent Document 2 is a large diameter lens of F 2.0 and produces bright images, but also has a problem in that correction of spherical aberration is insufficient. A further disadvantage is that, the position of the exit pupil is near the image plane and thus, the angle of incidence of light rays to the image plane is large and if a solid-state imaging device such as a CCD or CMOS is used, the amount of nearby light may drop.
To solve the problems associated with the conventional technologies, an object of the present invention is to provide a compact, high performance imaging lens capable of excellent correction of various types of aberration occurring at the lenses and controlling ghosting occurring at imaging devices and lens surfaces.
To solve the problems above and achieve an object, an imaging lens according to the invention of the claim 1 includes, sequentially from an object side, a negative first lens, a positive second lens, a negative third lens, and a positive fourth lens having a convex surface on the image side. The imaging lens is further characterized by satisfying the conditional expressions below.
θ≧30° (1)
f/R
1≧0.3 (2)
Where, θ is the absolute value of an angle formed by a marginal ray of the central beam emitted from the last lens surface of the imaging lens and the normal to the lens at the position where the ray is emitted, f is the focal length of the imaging lens, and R1 is the radius of curvature of a first lens surface in the imaging lens.
The invention cited in claim 1 enables effective control of ghosting occurring between the last lens surface of the imaging lens and the imaging element, and between the lens surface nearest the object and the imaging element.
The imaging lens according to the invention of claim 2 is based on the invention cited in claim 1 and characterized by satisfying the conditional expression below, where the refractive index at the d-line of the first lens is n1.
n1≧1.51 (3)
The invention cited in claim 2 enables ghosting that occurs between the lens surface nearest the object and the imaging element to be more effectively controlled, in an imaging lens satisfying the conditions cited in claim 1.
The imaging lens according to the invention of claim 3 is based on the invention cited in claim 1 and characterized in that an aspheric surface is formed on at least one surface of the second lens.
The invention cited in claim 3 enables effective correction of spherical aberration.
The imaging lens according to the invention of claim 4 is based on the invention cited in claim 1 and characterized in that the second lens is configured by a biconvex lens.
The invention cited in claim 4 enables the refractive power of the second lens in the imaging lens to be increased and enables more effective correction of spherical aberration.
The imaging lens according to the invention of claim 5 is based on any one of the inventions cited in claims 1 to 4 and characterized in that the first lens is configured by a meniscus lens disposed with the convex surface on the object side.
The invention cited in claim 5 enables a reduction in ghosting caused by light reflected to the image side by the lens surface nearest the object.
The imaging lens according to the invention of claim 6 includes sequentially from the object side, a positive first lens group, a negative second lens group, a positive third lens group, and a fourth lens group configured by a meniscus lens disposed with the concave surface on the object side. The imaging lens is further characterized by satisfying the conditional expressions below.
BF/L≧0.3 (4)
θ≧15.0° (5)
Where, BF is the back focal length of the imaging lens, L is the distance from the first lens surface in the imaging lens to the image plane, θ is the absolute value of the angle formed by a marginal ray of the central beam emitted from the last lens surface of the imaging lens and the normal to the lens at the position where the ray is emitted.
The invention cited in claim 6 enables effective control of ghosting occurring between the last lens surface of the imaging lens and the imaging device.
The imaging lens according to the invention of claim 7 is based on the invention cited in claim 6 and characterized by satisfying the conditional expression below, where the focal length of the imaging lens is f and in the imaging lens, the radius of curvature of the lens surface nearest the object and is R1.
f/R
1≧0.5 (6)
The invention cited in claim 7 enables effective control of ghosting caused by light that is reflected from the imaging device and re-reflected by the lens surface nearest the object.
The imaging lens according to the invention of claim 8 is based on the invention cited in claim 6 and characterized by satisfying the conditional expression below, where the interval between the third lens group and the fourth lens group is D3-4.
D
3-4
/f≦0.08 (7)
The invention cited in claim 8 enables a compact imaging lens to be achieved and excellent correction of field curvature.
The imaging lens according to the invention of claim 9 is based on the invention cited in claim 6 and characterized by satisfying the conditional expression below, where the refractive index at the d-line of the third lens group is n3.
n3≧1.72 (8)
The invention cited in claim 9 enables image formation performance to be maintained by keeping the position of the image plane fixed.
The imaging lens according to the invention of claim 10 is based on the invention cited in claim 6 and characterized by satisfying the conditional expression below, where the focal length of the image-side lens surface of the third lens group is f3.
2.0≧f/f3≧1.35 (9)
The invention cited in claim 10 enables excellent correction of spherical aberration occurring primarily at the second lens group of the imaging lens.
The imaging lens according to the invention of claim 11 is based on any one of the inventions cited in claims 6 to 10 and characterized in that the third lens group is configured by a biconvex lens.
The invention cited in claim 11 enables the refractive power of the third lens group of the imaging lens to be increased and facilitates more effective correction of the spherical aberration occurring at the second lens group.
The present invention enables a compact, high performance imaging lens to be provided that controls ghosting occurring between the last lens surface and the imaging element as well as ghosting caused by light reflected from the lens surface nearest the object, and that enables excellent control of various types of aberration occurring at the lenses.
Preferred embodiments of an imaging lens according to the present invention are explained in detail below.
An imaging lens according to a first embodiment of the present invention will be described. The imaging lens according to the first embodiment includes, sequentially from an object side, a negative first lens, a positive second lens, a negative third lens, and a positive fourth lens having a convex surface on the image side.
The imaging apparatus according to the first embodiment is assumed to be utilized in a digital video camera. In general, the optical receiving surface of the imaging element in digital video cameras has a high reflectance on the order of several 10 percent; therefore, reflected light causes ghosting to occur. To control the occurrence of such ghosting, special consideration must be given to the configuration of the imaging lens.
The imaging lens according to the first embodiment preferably satisfies the conditional expression below, where θ is the absolute value of the angle between marginal ray of the central beam emitted from the last lens surface and the normal to the lens at the position where the ray is emitted.
θ≧30° (1)
Conditional expression (1) prescribes the direction in which the last lens surface of the imaging lens re-reflects light reflected by the optical receiving surface of the imaging element. By satisfying conditional expression (1), the light re-reflected by the last lens surface of the imaging lens can reduce the brightness of the ghost light opposite to a direction away from an optical axis. In considering conditional expression (1), parallel plates such as an image plane cover glass and filter are not included at the last lens surface of the imaging lens.
The imaging lens according to the present embodiment preferably satisfies the conditional expression below, where the focal length of the imaging lens is f, and in the imaging lens, the radius of curvature of the lens surface nearest the object is R1.
f/R
1≧0.3 (2)
Conditional expression (2) prescribes for the imaging lens, a radius of curvature of the lens surface nearest the object. By satisfying conditional expression (2), the radius of curvature of the lens surface nearest the object is reduced. Light reflected by the optical receiving surface of the imaging element is re-reflected by the lens surface nearest the object, but since the radius of curvature is small, the reflected light follows a path different from that of incident light. Hence, upon reaching the imaging element as ghost light, the re-reflected light is significantly diffused, thereby preventing the reflected light from being pronounced as a ghost.
The imaging lens according to the present embodiment can effectively control the occurrence of ghosting, by satisfying conditional expressions (1) and (2).
Further, the imaging lens according to the present embodiment preferably satisfies the conditional expression below, where the refractive index at the d-line of the first lens is n1.
n1≧1.51 (3)
Conditional expression (3) prescribes the refraction index of the first lens. Assuming that conditional expressions (1) and (2) are satisfied, by further satisfying conditional expression (3), ghosting occurring between the lens surface nearest the object and the imaging element can be more effectively controlled.
Furthermore, in the imaging lens according to the present embodiment, an aspheric surface is preferably formed on at least one surface of the second lens, whereby spherical aberration can be effectively corrected.
In the imaging lens according to the present embodiment, correction can be made more effective by forming the second lens to be a biconvex lens, i.e., by forming the second lens to be a biconvex lens, the refractive power of the second lens in the imaging lens increases, enabling more effective correction of spherical aberration.
In the imaging lens according to the present embodiment, the first lens may be a meniscus lens disposed with the convex surface on the object side, whereby ghosting caused by light reflected to the image side by the lens surface nearest the object can be reduced.
The imaging lens according to the present embodiment has the characteristics described above; whereby, the imaging lens is a compact, high performance lens capable of controlling ghosting that occurs between the last lens surface and the imaging element and ghosting caused by light reflected to the image side by the lens surface nearest the object and further capable of correcting well various types of aberration occurring at the lenses. By using a lens having a suitable aspheric surface in the configuration of the imaging lens, various types of aberration can be corrected effectively using fewer lens elements and reductions in the size, weight, and cost of the optical system can be facilitated. Furthermore, since the imaging lens does not employ a cemented lens, even if rapid temperature changes occur, no deterioration of optical performance results.
Examples of the imaging lens according to the first embodiment will be described.
Various values related to the imaging lens according to the first example are indicated below.
Focal length for entire imaging lens (f)=6.9
F number=2.5
Half angle of view (ω)=28.2°
Object distance (distance from first lens surface of imaging lens to object)=60000
Radius of curvature of first lens surface in imaging lens (R1)=13.0000
(Values related to conditional expression (1))
Absolute value of angle formed by marginal ray of central beam emitted from last lens surface of imaging lens and normal to lens at position where ray is emitted (θ)=31.2°
(Values related to conditional expression (2))
f/R1=0.53
(Values related to conditional expression (3))
Refractive index at d-line of the first lens L11
(n1)=1.51680
r1=13.0000
d1=0.7 nd1=1.51680 νd1=64.2
r2=3.2383
d2=2.75
r3=∞ (aperture stop)
d3=2.1
r4=6.3709 (aspheric surface)
d4=2.8 nd2=1.69384 νd2=53.13
r5=−4.8172 (aspheric surface)
d5=0.58
r6=35.5172
d6=0.6 nd3 1.92286 νd3=20.88
r7=5.2019
d7=1.1
r8=−8.2593
d8=1.9 nd4=1.69680 νd5=55.53
r9=−4.9919
d9=7.9
r10=∞ (image plane)
Constant of the cone (ε) and aspheric coefficients (A, B, C, D, E)
(fourth plane)
(fifth plane)
Various values related to the imaging lens according to the second example are indicated below.
Focal length for entire imaging lens (f)=6.9
F number=2.5
Half angle of view (ω)=28.2°
Object distance (distance from first lens surface of imaging lens to object)=60000
Radius of curvature of first lens surface in imaging lens (R1)=13.0000
(Values related to conditional expression (1))
Absolute value of angle formed by marginal ray of central beam emitted from last lens surface of imaging lens and normal to lens at position where ray is emitted (θ)=31.8°
(Values related to conditional expression (2))
f/R
1=0.53
(Values related to conditional expression (3))
Refractive index at d-line of the first lens L21
(n1)=1.51680
r1=13.0000
d1=0.7 nd1=1.51680 νd1=64.2
r2=3.2277
d2=3.55
r3=∞ (aperture stop)
d3=1.3
r4=6.0200 (aspheric surface)
d4=2.8 nd2=1.69384 νd2=53.13
r5=−5.0752 (aspheric surface)
d5=0.58
r6=35.5172
d6=0.6 nd3=1.92286 νd3=20.88
r7=5.2019
d7=1.1
r8=−8.0171
d8=1.9 nd4=1.69384 νd5=53.13
r9=−4.8484 (aspheric surface)
d9=7.9
r10=∞ (image plane)
Constant of the cone (ε) and aspheric coefficients (A, B, C, D, E)
(fourth plane)
(fifth plane)
(ninth plane)
Various values related to the imaging lens according to the third example are indicated below.
Focal length for entire imaging lens (f)=6.8
F number=2.0
Half angle of view (ω)=28.6°
Object distance (distance from first lens surface of imaging lens to object)=60000
Radius of curvature of first lens surface in imaging lens
(R1)=15.2000
(Values related to conditional expression (1))
Absolute value of angle formed by marginal ray of central beam emitted from last lens surface of imaging lens and normal to lens at position where ray is emitted (θ)=36.5°
(Values related to conditional expression (2))
f/R
1=0.45
(Values related to conditional expression (3))
Refractive index at d-line of first lens L31 (n1)=1.51680
r1=15.2000
d1=0.7 nd1=1.48749 νd1=70.2
r2=4.0055
d2=3.78
r3=∞ (aperture stop)
d3=2.75
r4=6.0760 (aspheric surface)
d4=2.7 nd2=1.69350 νd2=53.2
r5=−5.6341 (aspheric surface)
d5=0.69
r6=175.6315
d6=0.6 nd3=1.92286 νd3=20.88
r7=5.8520
d7=1.2
r8=−7.6570 (aspheric surface)
d8=2.0 nd4=1.69350 νd5=53.2
r9=−4.7627 (aspheric surface)
d9=7.1
r10=∞ (image plane)
Constant of the cone (ε) and aspheric coefficients (A, B, C, D, E)
(fourth plane)
(fifth plane)
(eighth plane)
(ninth plane)
Among the values for the examples above, r1, r2, . . . indicate radii of curvature for each lens, diaphragm surface, etc.; d1, d2, . . . indicate the thickness of the lenses, diaphragm, etc. or the distance between surfaces thereof; nd1, nd2, . . . indicate the refraction index of each lens with respect to the d-line (λ=587.56 nm); νd1, νd2, . . . indicate the Abbe number with respect to the d-line (λ=587.56 nm) of each lens.
Each of the aspheric surfaces above can be expressed by the following equation, where with respect to the vertex as a point of reference, H is the height perpendicular to the optical axis and X(H) is the change in H along the direction of optical axis.
R is paraxial radii of curvature; c is constant of the cone; A, B, C, D, and E are the second, fourth, sixth, eighth, and tenth aspheric coefficients, respectively.
As described, by satisfying the conditional expressions above, the examples of the imaging lens herein are able to control ghosting occurring between the lens surface nearest the object and the imaging element and ghosting caused by light reflected to the image side by the lens surface nearest the object, without sacrifice to the compact-size of the optical system or high optical performance.
Further, since the examples of the imaging lens herein employ a lens having a suitable aspheric surface, effective correction of various types of aberration can be performed using fewer lens elements and reductions in the size, weight, and cost of the optical system can be facilitated.
As the examples of the imaging lens herein do not employ a cemented lens, even if rapid temperature changes occur, no deterioration of optical performance results.
An imaging lens according to a second embodiment will be described. The imaging lens according to the second embodiment includes sequentially from the object side, a positive first lens group, a negative second lens group, a positive third lens group, and a fourth lens group configured by a meniscus lens disposed with the concave surface on the object side.
The imaging lens according to the second embodiment, similar to the first embodiment, is assumed to be utilized in a digital video camera. In general, the optical receiving surface of the imaging element in digital video cameras has a high reflectance on the order of several 10 percent; therefore, reflected light causes ghosting to occur. To control the occurrence of such ghosting, special consideration must be given to the configuration of the imaging lens.
The imaging lens according to the present embodiment, preferably satisfies the conditional expression below, where BF is the back focal length and L is the distance from the first lens surface in the imaging lens to the image plane.
BF/L≧0.3 (4)
Conditional expression (4) prescribes a condition to control the occurrence of ghosting between the last lens surface of the imaging lens and the imaging element. By satisfying conditional expression (4), the last lens surface of the imaging lens is disposed at a position that is somewhat away from the imaging element disposed at the position of the image plane. Consequently, light reflected by the optical receiving surface of the imaging element is significantly dispersed, reaches the last lens surface of the imaging lens and is again reflected; therefore the reflected beam, which is the cause of ghosting, is significantly dispersed, reducing the brightness thereof and thereby, preventing the image from being negatively affected.
The imaging lens according to the present embodiment preferably satisfies the conditional expression below, where the absolute value of an angle formed by a marginal ray of the central beam emitted from the last lens surface of the imaging lens and the normal to the lens at the position where the ray is emitted is θ.
θ≧15.0 ° (5)
Conditional expression (5) prescribes the direction in which the last lens surface of the imaging lens re-reflects the light reflected by the optical receiving surface of the imaging element. By satisfying conditional expression (5), the light re-reflected by the last lens surface of the imaging lens can further reduce the brightness of the ghost light opposite to a direction away from an optical axis.
By satisfying conditional expressions (4) and (5), the imaging lens according to the present embodiment can effectively control the occurrence of ghosting. In considering conditional expressions (4) and (5), parallel plates such as an image plane cover glass and filter are not included at the last lens surface of the imaging lens.
The imaging lens according to the present embodiment preferably satisfies the conditional expression below, where the focal length of the imaging lens is f and the radius of curvature of a first lens surface in the imaging lens is R1.
f/R
1≧0.5 (6)
Conditional expression (6) prescribes for the imaging lens, a radius of curvature of the lens surface nearest the object. By satisfying conditional expression (6), the radius of curvature of the lens surface nearest the object is reduced. Light reflected by the optical receiving surface of the imaging element is re-reflected by the lens surface nearest the object, but since the radius of curvature is small, the reflected light follows a path different from that of incident light. Hence, upon reaching the imaging element as ghost light, the re-reflected light is a significantly diffused, thereby preventing the reflected light from being pronounced as a ghost.
The imaging lens according to the present embodiment preferably satisfies the conditional expression below, where the interval between the third lens group and the fourth lens group is D3-4.
D
3-4
/f≧0.08 (7)
Conditional expression (7) prescribes the distance between the third lens group and the fourth lens group. By satisfying conditional expression (7), a compact imaging lens can be achieved as well as excellent correction of field curvature.
The imaging lens according to the present embodiment preferably satisfies the conditional expression below, where the refractive index at d-line of the third lens group is n3.
n3≧1.72 (8)
Conditional expression (8) prescribes the refraction index for the third lens group. By satisfying conditional expression (8), the flatness of the image plane can be ensured and image formation performance can be maintained by keeping the position of the image plane fixed. In particular, since for pan focus lenses, consistency of the position of the image plane is preferable, the condition prescribed by conditional expression (8) is particularly important. Furthermore, below the lower limit of conditional expression (8), the flatness of the image plane degrades and thus, is undesirable.
The imaging lens according to the present embodiment preferably satisfies the conditional expression below, where the focal length of image-side surface of the third lens group is f3.
2.0≧f/f3≧1.35 (9)
Conditional expression (9) prescribes, for the imaging lens, the focal length of image-side surface of the third lens group. By satisfying conditional expression (9), spherical aberration primarily occurring at the second lens group can be corrected well. Below the lower limit of conditional expression (9), spherical aberration primarily occurring at the second lens group cannot be entirely corrected. Meanwhile, above the upper limit of conditional expression (9), over-correction occurs and thus, is undesirable.
If the third lens group of the imaging lens according to the present embodiment is configured by a biconvex lens, more effective correction is possible. That is, by configuring the third lens group by a biconvex lens, the refractive power of the third lens group increases, whereby spherical aberration occurring at the second lens group can be corrected more effectively.
The imaging lens according to the present embodiment has the characteristics described above; whereby, the imaging lens is a compact, high performance lens capable of controlling ghosting that occurs between the last lens surface and the imaging element and ghosting caused by light reflected by the lens surface nearest the object and further capable of correcting well various types of aberration occurring at the lenses. By using a lens having a suitable aspheric surface in the configuration of the imaging lens, various types of aberration can be corrected effectively using fewer lens elements and reductions in the size, weight, and cost of the optical system can be facilitated. Furthermore, since the imaging lens does not employ a cemented lens, even if rapid temperature changes occur, no deterioration of optical performance results.
Examples of the imaging lens according to the second embodiment will be described.
Various values related to the imaging lens according to the fourth example are indicated below.
Focal length for entire imaging lens (f)=12.0
Focal length of image-side surface of third lens group G13 (f3)=6.57
F number=2.0
Half angle of view (ω)=17.5°
Object distance (distance from first lens surface of
imaging lens to object)=11260
Back focal length of imaging lens (BF)=6.88
Distance from first lens surface in imaging lens to image plane (L)=16.47
Radius of curvature of first lens surface in imaging lens (R1)=6.3
Interval between third lens group G13 and fourth lens group G14 (D3-4)=0.56
(Values related to conditional expression (4))
BF/L=0.41
(Values related to conditional expression (5))
Absolute value of angle formed by marginal ray of central beam emitted from last lens surface of imaging lens and normal to lens at position where ray is emitted (θ)=19.7
(Values related to conditional expression (6))
f/R
1=1.90
(Values related to conditional expression (7))
D
3-4
/f=0.047
(Values related to conditional expression (8))
Refractive index at d-line of the third lens group G13 (n3)=1.88300
(Values related to conditional expression (9))
f/f
3=1.83
r1=6.3
d1=1.9 nd1=1.77250 νd1=49.60
r2=63.75
d2=0.52
r3=∞ (aperture stop)
d3=1.12
r4=−8.672
d4=0.6 nd2=1.84666 νd2=23.78
r5=6.05
d5=0.54
r6=13.65
d6=2.85 nd3=1.88300 νd3=40.78
r7=−5.77
d7=0.56
r8=−14.114 (aspheric surface)
d8=1.5 nd4=1.58313 νd4=59.38
r9=−57.581 (aspheric surface)
d9=6.88
r10=∞ (image plane)
Constant of the cone (ε) and aspheric coefficients (A, B, C, D, E)
(eighth plane)
(ninth plane)
Various values related to the imaging lens according to the fifth example are indicated below.
Focal length for entire imaging lens (f)=12.13
Focal length of image-side surface of third lens group G23 (f3)=6.82
F number=2.0
Half angle of view (ω)=17.5°
Object distance (distance from first lens surface of imaging lens to object)=11260
Back focal length of imaging lens (BF)=6.87
Distance from first lens surface in imaging lens to image plane (L)=16.31
Radius of curvature of first lens surface in imaging lens (R1)=6.12
Interval between third lens group G23 and fourth lens group G24 (D3-4)=0.33
(Values related to conditional expression (4))
BF/L=0.42
(Values related to conditional expression (5))
Absolute value of angle formed by marginal ray of central beam emitted from last lens surface of imaging lens and normal to lens at position where ray is emitted (θ)=21.5°
(Values related to conditional expression (6))
f/R
1=1.98
(Values related to conditional expression (7))
D
3-4/f=0.027
(Values related to conditional expression (8))
refractive index at d-line of third lens group G23
(n3)=1.74320
(Values related to conditional expression (9))
f/f
3=1.78
r1=6.12
d1=1.9 nd1=1.77250 νd1=49.60
r2=104.5
d2=0.51
r3=∞ (aperture stop)
d3=1.07
r4=−9.129
d4=0.6 nd2=1.84666 νd2=23.78
r5=6.685
d5=0.68
r6=17.86
d6=2.85 nd3=1.74320 νd3=49.31
r7=−5.05
d7=0.33
r8=−15.346 (aspheric surface)
d8=1.5 nd4=1.58313 νd4=59.38
r9=−57.581 (aspheric surface)
d9=6.87
r10=∞ (image plane)
Constant of the cone (ε) and aspheric coefficients (A, B, C, D, E)
(eighth plane)
(ninth plane)
Various values related to the imaging lens according to the sixth example are indicated below.
Focal length for entire imaging lens (f)=12.0
Focal length of image-side surface of third lens group G33 (f3)=7.24
F number=2.0
Half angle of view (ω)=17.5°
Object distance (distance from first lens surface of imaging lens to object)=11260
Back focal length of imaging lens (BF)=6.89
Distance from first lens surface in imaging lens to image plane (L)=20.05
Radius of curvature of first lens surface in imaging lens (R1)=23.5
Interval between third lens group G33 and fourth lens group G34 (D3-4)=0.1
(Values related to conditional expression (4))
BF/L=0.33
(Values related to conditional expression (5))
Absolute value of angle formed by marginal ray of central beam emitted from last lens surface of imaging lens and normal to lens at position where ray is emitted (θ)=20.6
(Values related to conditional expression (6))
f/R
1=0.51
(Values related to conditional expression (7))
D
3-4
/f=0.008
(Values related to conditional expression (8))
refractive index at d-line of third lens group G33
(n3)=1.88300
(Values related to conditional expression (9))
f/f
3=1.66
r1=23.5
d1=1.7 nd1=1.77250 νd1=49.60
r2=−45.62
d2=1.1
r3=5.5
d3=1.7 nd2=1.74320 νd2=49.31
r4=5.77
d4=1.4
r5=−7.93
d5=0.6 nd3=1.84666 νd3=23.78
r6=7.93
d6=0.4
r7=19.5
d7=3.15 nd4=1.88300 νd4=40.78
r8=−6.36
d8=0.1
r9=−1000.0 (aspheric surface)
d9=3.0 nd5=1.58313 νd5=59.38
r10=−22.917 (aspheric surface)
d10=6.89
r11=∞ (image plane)
Constant of the cone (ε) and aspheric coefficients (A, B, C, D, E)
(ninth plane)
(tenth plane)
Among the values for the examples above, r1, r2, . . . indicate radii of curvature for each lens, aperture stop surface, etc.; d1, d2, . . . indicate the thickness of the lenses, diaphragm, etc. or the distance between surfaces thereof; nd1, nd2, . . . indicate the refraction index of each lens with respect to the d-line (λ=587.6 nm); νd1, νd2, . . . indicate the Abbe number with respect to the d-line (λ=587.6 nm) of each lens.
Each of the aspheric surfaces above can be expressed by the following equation, where with respect to the vertex as a point of reference, H is the height perpendicular to the optical axis and X(H) is the change in H along the direction of optical axis.
R is paraxial radii of curvature; ε is constant of the cone; A, B, C, D, and E are the second, fourth, sixth, eighth, and tenth aspheric coefficients, respectively.
As described, by satisfying the conditional expressions above, the examples of the imaging lens herein are able to control ghosting occurring between the last lens surface and the imaging element and ghosting caused by light reflected by the lens surface nearest the object, without sacrifice to the compact-size of the optical system or high optical performance.
Further, since the examples of the imaging lens herein employ a lens having a suitable aspheric surface, effective correction of various types of aberration can be performed using fewer lens elements and reductions in the size, weight, and cost of the optical system can be facilitated.
As the examples of the imaging lens herein do not employ a cemented lens, even if rapid temperature changes occur, no deterioration of optical performance results.
As described, the imaging lens of the present invention is useful in digital video cameras having solid state imaging devices and is particularly applicable to vehicle-mounted cameras susceptible to high temperatures.
Number | Date | Country | Kind |
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2008-102707 | Apr 2008 | JP | national |
2008-109278 | Apr 2008 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2008/072668 | 12/12/2008 | WO | 00 | 10/7/2010 |