Imaging lens, imaging device, and information processing device

By optimizing the optical system of multi-lens combination, the problem of existing shooting lenses being difficult to take into account wide-angle field of view, brightness, high performance and miniaturization is solved, and an efficient and economical shooting lens design is achieved, suitable for high-demand applications such as video distribution and communication.

CN120065458APending Publication Date: 2025-05-30LENOVO (SINGAPORE) PTE LTD
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Patent Information

Application Number
CN202411736090.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2023-11-30
Filing Date
2024-11-29
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

Existing photographing lenses are difficult to take into account the requirements of wide-angle field of view, brightness, high performance and miniaturization, especially in video distribution and communication, which require wider and higher performance photographing lenses.

Method used

An optical system consisting of a first lens, an aperture stop, a second lens, a third lens and a fourth lens are adopted to optimize the focal length of each lens and the refractive index of the material to meet specific conditions to achieve the balance between spherical aberration and astigmatism.

Benefits of technology

It realizes wide-angle field of view, bright, high-performance and small shooting lenses, suitable for video shooting and other high-demand shooting applications, improving productivity and reducing production costs.

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Abstract

Provided are an imaging lens, an imaging device, and an information processing device which are capable of having a wide angle of view, and which are bright, high-performance, and compact. An imaging lens (100) includes, in order from an object side, first to fourth lenses (L1 to L4), and an aperture stop (S) disposed between the first lens (L1) and the second lens (L2). The first lens (L1) is a positive lens having a convex surface facing the object side, the second lens (L2) is a positive or negative lens having an inflection point on at least one surface and having a small deviation ratio, the third lens (L3) is a positive lens having a convex surface facing the image surface side and having an inflection point at the periphery of the lens, and the fourth lens (L4) is a negative lens having a concave surface on the image surface side and having an inflection point at the periphery of the lens.
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Description

Technical Field

[0001] The present disclosure relates to a photographing lens, a photographing apparatus, and an information processing apparatus. Background Art

[0002] In recent years, photographing apparatuses such as digital cameras, digital video cameras, and cameras for smartphones, which include a single photographing element such as a CCD (Charge Coupled Device) or a CMOS (Complementary Metal Oxide Semiconductor) and a photographing lens, have been popularized.

[0003] The high pixelization of the single photographing elements used in these photographing apparatuses has been continuously developed. Along with the high pixelization of the single photographing element, higher optical performance is also required for the photographing lens.

[0004] In addition, in recent years, in a PC (Personal Computer) provided with a photographing apparatus, video is distributed and communicated via the Web. Therefore, in the photographing apparatus, miniaturization considering portability has also been realized. The photographing apparatuses required in the market are mainly apparatuses that have both high performance and miniaturization. For the photographing lens, not only high performance but also miniaturization is required. Therefore, there is known a photographing lens that achieves both high performance and miniaturization (for example, refer to Patent Document 1 and Patent Document 2).

[0005] Patent Document 1: Japanese Patent Application Laid-Open No. 2017-513034;

[0006] Patent Document 2: Japanese Patent Application Laid-Open No. 2015-106155.

[0007] In addition, in recent years, in the case of distributing and communicating video via the Web, it is desired to be able to photograph with a wider field of view angle than that of conventional photographing lenses. Therefore, there is a desire for a photographing lens with a wider field of view angle, brighter, higher performance, and smaller size than conventional photographing lenses. Summary of the Invention

[0008] The present disclosure has been made in view of the above, and an object thereof is to provide a photographing lens, a photographing apparatus, and an information processing apparatus having a wide field of view angle, being bright, having high performance, and being small in size.

[0009] In order to solve the above problems and achieve the object, the imaging lens according to the first aspect of the present disclosure includes: a first lens to a fourth lens, arranged in order from the object side; and an aperture stop, arranged between the first lens and the second lens. The first lens is a positive lens with a convex surface facing the object side, the second lens is a positive or negative lens having an inflection point on at least one surface and a small deviation ratio, the third lens is a positive lens with a convex surface facing the image side and having an inflection point at the lens peripheral part, and the fourth lens is a negative lens with a concave surface on the image side and having an inflection point at the peripheral part. When the focal length of the first lens is set as f1, the focal length of the fourth lens is set as f4, and the focal length of the entire optical system is set as f, the conditions (1) and (2) are satisfied:

[0010] 0.45 < |f / f1| < 0.70 ··· (1)

[0011] 0.30 < |f4 / f1| < 0.50 ··· (2).

[0012] In addition, the imaging device according to the second aspect of the present disclosure includes the above imaging lens and a single imaging element that receives the image formed by the imaging lens and generates an imaging signal.

[0013] In addition, the information processing device according to the third aspect of the present disclosure includes the above imaging device and a display unit that displays an image corresponding to the imaging signal generated by the imaging device.

[0014] According to the present disclosure, there is an effect that an imaging lens with a wide field of view angle, bright, high performance and small size can be provided. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 It is a diagram showing the lens configuration of the imaging lens according to Embodiment 1 of the present disclosure.

[0016] Figure 2A It is an aberration diagram of the imaging lens according to Embodiment 1 of the present disclosure.

[0017] Figure 2B It is the MTF of the imaging lens according to Embodiment 1 of the present disclosure.

[0018] Figure 2C It is the distortion grid of the imaging lens according to Embodiment 1 of the present disclosure.

[0019] Figure 3 It is a diagram showing the lens configuration of the imaging lens according to Embodiment 2 of the present disclosure.

[0020] Figure 4A It is an aberration diagram of the imaging lens according to Embodiment 2 of the present disclosure.

[0021] Figure 4Bis the MTF of the photographing lens according to Embodiment 2 of the present disclosure.

[0022] Figure 4C is the distortion grid of the photographing lens according to Embodiment 2 of the present disclosure.

[0023] Figure 5 is a diagram showing the lens configuration of the photographing lens according to Embodiment 3 of the present disclosure.

[0024] Figure 6A is the aberration diagram of the photographing lens according to Embodiment 3 of the present disclosure.

[0025] Figure 6B is the MTF of the photographing lens according to Embodiment 3 of the present disclosure.

[0026] Figure 6C is the distortion grid of the photographing lens according to Embodiment 3 of the present disclosure.

[0027] Figure 7 is a diagram showing the lens configuration of the photographing lens according to Embodiment 4 of the present disclosure.

[0028] Figure 8A is the aberration diagram of the photographing lens according to Embodiment 4 of the present disclosure.

[0029] Figure 8B is the MTF of the photographing lens according to Embodiment 4 of the present disclosure.

[0030] Figure 8C is the distortion grid of the photographing lens according to Embodiment 4 of the present disclosure.

[0031] Figure 9 is a diagram showing the lens configuration of the photographing lens according to Embodiment 5 of the present disclosure.

[0032] Figure 10A is the aberration diagram of the photographing lens according to Embodiment 5 of the present disclosure.

[0033] Figure 10B is the MTF of the photographing lens according to Embodiment 5 of the present disclosure.

[0034] Figure 10C is the distortion grid of the photographing lens according to Embodiment 5 of the present disclosure.

[0035] Figure 11 is a diagram showing the lens configuration of the photographing lens according to Embodiment 6 of the present disclosure.

[0036] Figure 12A is the aberration diagram of the photographing lens according to Embodiment 6 of the present disclosure.

[0037] Figure 12B is the MTF of the photographing lens according to Embodiment 6 of the present disclosure.

[0038] Figure 12C It is the distortion grid of the imaging lens of Embodiment 6 of the present disclosure.

[0039] Figure 13 It is a diagram showing the lens configuration of the imaging lens of Embodiment 7 of the present disclosure.

[0040] Figure 14A It is the aberration diagram of the imaging lens of Embodiment 7 of the present disclosure.

[0041] Figure 14B

[0042] Figure 14C It is the distortion grid of the imaging lens of Embodiment 7 of the present disclosure.

[0043] Figure 15 It is a diagram showing the lens configuration of the imaging lens of Embodiment 8 of the present disclosure.

[0044] Figure 16A It is the aberration diagram of the imaging lens of Embodiment 8 of the present disclosure.

[0045] Figure 16B

[0046] Figure 16C

[0047] It is the distortion grid of the imaging lens of Embodiment 8 of the present disclosure. Figure 17

[0048] It is a diagram showing the lens configuration of the imaging lens of Embodiment 9 of the present disclosure. Figure 18A

[0049] It is the aberration diagram of the imaging lens of Embodiment 9 of the present disclosure. Figure 18B

[0050] Figure 18C

[0051] Figure 19 It is the distortion grid of the imaging lens of Embodiment 9 of the present disclosure.

[0052] Figure 20A It is a diagram showing the lens configuration of the imaging lens of Embodiment 10 of the present disclosure.

[0053] Figure 20B It is the aberration diagram of the imaging lens of Embodiment 10 of the present disclosure.

[0054] Figure 20C ​​​​It is the distortion grid of the photographing lens according to Embodiment 10 of the present disclosure.

[0055] Figure 21 It is a diagram showing the lens configuration of the photographing lens according to Embodiment 11 of the present disclosure.

[0056] Figure 22A It is the aberration diagram of the photographing lens according to Embodiment 11 of the present disclosure.

[0057] Figure 22B It is the MTF of the photographing lens according to Embodiment 11 of the present disclosure.

[0058] Figure 22C It is the distortion grid of the photographing lens according to Embodiment 11 of the present disclosure.

[0059] Figure 23 It is a diagram showing the schematic configuration of the information processing apparatus of the photographing apparatus including the photographing lens having each embodiment of the present disclosure.

[0060] Figure 24 It is shown Figure 23 of the schematic configuration of the photographing apparatus.

[0061] Figure 25 It is a block diagram showing the functional configuration of the information processing apparatus of the photographing apparatus including the photographing lens having each embodiment of the present disclosure.

[0062] 30... Information processing apparatus, 31... Photographing apparatus, 100... Photographing lens, L1... First lens, L2... Second lens, L3... Third lens, L4... Fourth lens, G1... First lens group, G2... Second lens group, S... Aperture stop, CG... Glass cover. Detailed embodiments

[0063] Hereinafter, the photographing lens, the photographing apparatus, and the information processing apparatus of the present disclosure will be described with reference to the drawings. In addition, the present disclosure is not limited by the following embodiments. In addition, the respective drawings referred to in the following description are schematically shown only to the extent that the content of the present disclosure can be understood. That is, the present disclosure is not limited only to the shapes, sizes, and positional relationships illustrated in the respective drawings. In addition, the same reference numerals are added to the same parts and detailed descriptions are omitted.

[0064] [Embodiment]

[0065] Figure 1 , Figure 3 , Figure 5 , Figure 7 , Figure 9 , Figure 11 , Figure 13 , Figure 15 ,Figure 17 , Figure 19 and Figure 21 are cross-sectional views showing the lens configurations of the photographing lenses according to Embodiments 1 to 11. In each cross-sectional view, the left side is the object side (front), and the right side is the image side (rear).

[0066] The photographing lens 100 of each embodiment includes a first lens L1, a second lens L2, a third lens L3, and a fourth lens L4 arranged in order from the object side to the image side. Further, the photographing lens 100 includes an aperture stop S (STOP) disposed between the first lens L1 and the second lens L2.

[0067] In addition, in Figure 1 , Figure 3 , Figure 5 , Figure 7 , Figure 9 , Figure 11 , Figure 13 , Figure 15 , Figure 17 , Figure 19 and Figure 21 , the reference numerals 1 to 9 attached to any one of the first lens L1 to the fourth lens L4 and the aperture stop S indicate the surfaces of the respective lenses or stops. Hereinafter, these surfaces will be referred to as surfaces 1 to 9 in order from the object side toward the image side. Surface 3 is the surface of the aperture stop S. And, in Figure 1 , Figure 3 , Figure 5 , Figure 7 , Figure 9 , Figure 11 , Figure 13 , Figure 15 , Figure 17 , Figure 19 and Figure 21 , the reference numeral CG represents a transparent parallel plate equivalent to a member composed of at least one of a cover glass of a single photographing element and various filter glasses. The incident side surface of the transparent parallel plate CG is referred to as surface 10, and the image side surface is referred to as surface 11.

[0068] The photographing lens 100 has, in order from the closest to the object side, a positive lens of the first lens L1, the aperture stop S, a positive or negative power of the second lens L2, the third lens L3 is composed of a positive lens, and the fourth lens L4 is composed of a negative lens. Further, if the lens group from the aperture stop S to the object side of the photographing lens 100 is defined as the first lens group G1, and the lens group from the aperture stop S to the image plane side is defined as the second lens group G2, the photographing lens 100 has a so-called positive·positive lens configuration. In this configuration, the distance between the exit pupil and the image plane can be sufficiently obtained, so that good telecentricity on the image side can be achieved, and correction of spherical aberration and coma aberration can be facilitated.

[0069] The first lens L1 is a positive meniscus lens with its convex surface facing the object side, and it may have an inflection point at the lens peripheral part on the image plane side. Here, the inflection point of the peripheral part refers to the area including the position from 60% to 80% of the aperture of the first lens L1 relative to the image plane 2 side from the optical axis toward the outer edge.

[0070] The second lens L2 is composed of a positive or negative lens having at least one inflection point on one surface and a relatively small deviation ratio, but it may also have inflection points on both surfaces.

[0071] The third lens L3 is composed of a positive lens with its convex surface facing the image plane side and having an inflection point at the lens peripheral part on the object side surface.

[0072] The fourth lens L4 is composed of a negative lens with its concave surface on the image plane side and having an inflection point at the peripheral part.

[0073] All of the first lens L1 to the fourth lens L4 configured in this way are aspherical lenses, each having the characteristic of an aspherical shape. And by making the first lens L1 and the fourth lens L4 have an inflection point shape, it is possible to highly correct aberration in a state where the thickness (total length) in the light direction of the photographing lens 100 is thin.

[0074] In addition, regarding the material of the lens, as shown in the embodiment, an optical plastic material or a glass material is used.

[0075] Figure 2A ~C、 Figure 4A ~C、 Figure 6A ~C、 Figure 8A ~C、 Figure 10A ~C、 Figure 12A ~C、 Figure 14A ~C、 Figure 16A ~C、 Figure 18A ~C and Figure 20A~C are the longitudinal aberration diagrams, MTFs, and distortion grids of the imaging lens 100 of Embodiments 1 to 10, respectively. In the spherical aberration diagram, the amounts of spherical aberration for the d-line (yellow: wavelength 587.6 nm), g-line (blue: wavelength 435.8 nm), and C-line (red: 653.3 nm) are shown, respectively. Additionally, in the astigmatism diagram, the solid line S represents the amount of astigmatism on the sagittal image plane, and the dashed line T represents the amount of astigmatism on the tangential image plane. Also, in the distortion aberration diagram, only the amount of distortion aberration for the d-line is shown. Additionally, Angle (deg) represents the imaging semi-field angle (°). Also, in the MTF, at frequencies of 1 / 4Ny and 1 / 2Ny, the long dashed-dotted line represents the MTF of the sagittal image plane at 1 / 4Ny, the thick dashed line represents the MTF of the tangential image plane at 1 / 4Ny, the long dashed-three-dotted line represents the MTF of the sagittal image plane at 1 / 2Ny, and the thin dashed line represents the MTF of the tangential image plane at 1 / 2Ny. Also, regarding the distortion grid, the thin line represents the paraxial (Paraxial FOV) (ideal) grid, and the thick line represents the realistic (Actual FOV) (actual) grid.

[0076] Next, the conditions of the imaging lens 100 of each embodiment will be described.

[0077] When the focal length of the first lens L1 is set to f1, the focal length of the fourth lens L4 is set to f4, and the focal length of the entire optical system is set to f, the imaging lens 100 of each embodiment satisfies the following conditions (1) and (2).

[0078] 0.45 < |f / f1| < 0.70 ··· (1)

[0079] 0.25 < |f4 / f1| < 0.50 ··· (2)

[0080] Condition (1) is a conditional expression related to the focal length of the entire imaging lens 100 and the power of the first lens L1.

[0081] When f / f1 is below the lower limit of condition (1), there is a tendency for the focal length of the entire system to become shorter, so it is advantageous for wider angle, but since astigmatism tends to become excessive and distortion aberration also tends to become larger, it is difficult to achieve the desired performance. Additionally, when f / f1 is above the upper limit of condition (1), there is a tendency to improve spherical aberration and astigmatism, but since the field angle tends to become narrower, the performance desired by the embodiments of the present disclosure cannot be achieved, so it is not preferred. Therefore, by satisfying condition (1), the imaging lens 100 can achieve a balance between short form (low profile) and high performance.

[0082] Condition (2) is a conditional expression related to the positive power of the first lens L1 and the negative power of the fourth lens L4.

[0083] When |f4 / f1| is below the lower limit of condition (2), astigmatism tends to be excessive and spherical aberration is also generated to a large extent, so it is difficult to achieve the desired performance. In addition, when |f4 / f1| is above the upper limit of condition (2), spherical aberration tends to be too small, so the balance with astigmatism is broken and it is difficult to achieve the desired performance.

[0084] That is, by satisfying condition (1) and condition (2), the photographing lens 100 can achieve a balance between spherical aberration and astigmatism, and realize a bright, high-performance and small (compact) photographing lens 100. Here, small means reducing the thickness by shortening the overall length of the photographing lens 100 in the optical axis direction and reducing the aperture of the photographing lens 100.

[0085] In addition, when the refractive index of the material of the first lens L1 with respect to the d-line is set to N1 and the refractive index of the material of the fourth lens L4 with respect to the d-line is set to N4, the photographing lens 100 of each embodiment satisfies condition (3).

[0086] N1 < N4 ··· (3)

[0087] Condition (3) is a condition that defines the relationship between the refractive index N1 of the material of the first lens L1 and the refractive index N4 of the material of the fourth lens L4.

[0088] The first lens L1 is a positive lens, and the fourth lens L4 is a negative lens. In the present invention, in order to make the chromatic aberration appropriate and balance the miniaturization, it is formed of a material with a refractive index such that the refractive index N1 of the first lens L1 is smaller than the refractive index N4 of the fourth lens L4, and by satisfying condition (3), the desired good chromatic aberration can be achieved.

[0089] In addition, when the refractive index of the material of the first lens L1 with respect to the d-line is set to N1, the photographing lens 100 of each embodiment satisfies condition (4).

[0090] 1.49 < N1 < 1.55 ··· (4)

[0091] When the refractive index N1 is below the lower limit of condition (4), the optical performance is further improved, but the cost becomes high, so it is not preferred. In addition, when the refractive index N1 is above the upper limit of condition (4), since the optical performance affects the chromatic aberration, it is not preferred. Thus, by making the photographing lens 100 satisfy condition (4) and achieving a balance between cost and chromatic aberration, a bright, high-performance and small (compact) photographing lens 100 can be realized.

[0092] In addition, when the refractive index of the material of the fourth lens L4 with respect to the d-line is set to N4, the photographing lens 100 of each embodiment satisfies condition (5).

[0093] 1.63 < N4 < 1.67 ··· (5)

[0094] When the refractive index N4 is below the lower limit of condition (5), or when the refractive index N4 is above the upper limit of condition (5), the balance of chromatic aberration is broken. Considering the balance between cost and chromatic aberration, by satisfying condition (5), a bright, high-performance, and compact photographing lens 100 can be achieved.

[0095] In addition, the photographing lens 100 in each embodiment satisfies condition (20) when the lens from the aperture stop S to the object side is the first lens group G1 and the lens from the aperture stop S to the image plane side is the second lens group G2.

[0096] 0.5 < |f1 / f2| < 2.0 ··· (20)

[0097] Condition (20) is a relational expression of the power of the first lens group G1 and the power of the second lens group G2.

[0098] In the photographing lens 100 of each embodiment, when f1 / f2 is below the lower limit of condition (20), since the power of f2 becomes weaker relative to f1, it is likely to have insufficient aberration correction. In particular, due to the insufficient aberration correction, it is not preferable. In addition, when f1 / f2 is above the upper limit of condition (20), since the power of f2 becomes stronger relative to f1, especially spherical aberration tends to deteriorate. Thus, high performance can be achieved by satisfying condition (20). In addition, the embodiments of the present disclosure are also valid when G1 is multiple or a cemented lens.

[0099] In addition, the photographing lens 100 of each embodiment satisfies condition (21) when the lens interval of the aperture stop S is DL1L2 and the overall optical length is OAL.

[0100] 0.8 < DL1L2 / OAL < 1.5 ··· (21)

[0101] Condition (21) is a relational expression of the lens interval of the aperture stop S and the overall optical length.

[0102] In the photographing lens 100 of each embodiment, when DL1L2 / OAL is below the lower limit of condition (21), since the relative lens interval of the aperture stop S becomes smaller, it is advantageous for miniaturization, but it is not preferable because it disrupts the balance of the overall aberration. In addition, when it is above the upper limit of condition (7), there is a tendency for the interval of the aperture stop S to become relatively wider, disrupting the power balance, so aberration is generated significantly and it is not preferable. In addition, since the embodiment of the present disclosure has an aperture stop S between the lenses, an appropriate lens interval is required. Conditional expression (21) is a balance formula of the lens interval and aberration, and it is preferably within the conditional range.

[0103] In addition, the photographing lens 100 of each embodiment satisfies condition (6) when the focal length of the entire optical system (photographing lens 100) is set to f and the overall length of the optical system (long side direction of the photographing lens 100) is set to OAL.

[0104] 0.55 < f / OAL < 0.75 ··· (6)

[0105] Condition (6) is a condition for achieving the balance between the focal length f of the entire optical system and the overall length OAL.

[0106] In the photographing lens 100 of each embodiment, when f / OAL is below the lower limit of condition (6), although further wide-angleization can be achieved, there is a tendency for the front spherical diameter to become larger, so there is a concern about causing an increase in size. In addition, when f / OAL is above the upper limit of condition (6), the overall length of the optical system becomes smaller but it is difficult to widen the field angle. The photographing lens 100 that satisfies condition (6) can achieve miniaturization in size and wide-angleization of the field angle.

[0107] In addition, the photographing lens 100 of each embodiment satisfies condition (7) when the overall length of the optical system is set to OAL and the optical effective diameter of the lens (first lens L1) disposed closest to the object side is set to EfD1.

[0108] 2.3 < OAL / EfD1 < 2.9 ··· (7)

[0109] Condition (7) is a condition for achieving the balance between the overall length of the lens and the front spherical diameter of the lens (first lens L1).

[0110] When OAL / EfD1 is below the lower limit of condition (7), miniaturization of the optical system (shortening in the optical axis direction) is achieved, but it is difficult to achieve a wide field angle. When OAL / EfD1 is above the upper limit of condition (7), the performance of the optical system is improved, but it is difficult to achieve miniaturization (shortening in the optical axis direction). The photographing lens 100 can achieve miniaturization (shortening in the optical axis direction) and high performance by satisfying condition (7).

[0111] In addition, when the exit pupil position is set to EXP and the image height is set to IH, the imaging lens of each embodiment satisfies condition (8).

[0112] -0.90<EXP / IH<-0.65···(8)

[0113] Condition (8) is the condition for optimizing the light incident angle on the image plane.

[0114] When EXP / IH is below the lower limit of condition (8), there is a tendency for the light incident angle to become lower, but it is difficult to shorten the overall length of the optical system for miniaturization. In addition, when EXP / IH is above the upper limit of condition (8), there is a tendency for the light incident angle to become higher. Therefore, the imaging lens 100 can be miniaturized by satisfying condition (8).

[0115] In addition, when the focal length of the first lens L1 is set to f1 and the focal length of the second lens L2 is set to f2, the imaging lens of each embodiment satisfies condition (9).

[0116] 0.01<|f1 / f2|<0.30···(9)

[0117] Condition (9) is a condition related to the balance of the focal lengths of the first lens L1 and the second lens L2.

[0118] When |f1 / f2| is below the lower limit of condition (9), the lens power of f2 relative to f1 becomes weaker, so it is easy for spherical aberration and distortion aberration to be insufficiently corrected, and it is difficult to achieve high performance. In addition, when |f1 / f2| is above the upper limit of condition (9), astigmatism tends to increase, so it is not preferable. Therefore, the imaging lens 100 can achieve high performance by satisfying condition (9).

[0119] In addition, when the focal length of the first lens L1 is set to f1 and the focal length of the third lens L3 is set to f3, the imaging lens 100 of each embodiment satisfies condition (10).

[0120] 0.25<f3 / f1<0.45···(10)

[0121] Condition (10) is a conditional expression related to the positive power of the first lens L1 and the positive power of the third lens L3.

[0122] When f3 / f1 is below the lower limit of condition (10), astigmatism tends to be excessive, and distortion aberration and coma aberration are also generated to a large extent, making it difficult to achieve the desired performance. In addition, when f3 / f1 is above the upper limit of condition (10), spherical aberration tends to be too small, so the balance with astigmatism is broken, and it is difficult to achieve the desired performance.

[0123] In addition, when the focal length of the third lens L3 is set to f3 and the focal length of the fourth lens is set to f4, the photographing lens 100 of each embodiment satisfies condition (11).

[0124] 0.7 < |f3 / f4| < 1.2 ··· (11)

[0125] Condition (11) is a conditional expression related to the power of the third lens L3 and the power of the fourth lens L4.

[0126] When f3 / f4 is below the lower limit of condition (11), astigmatism tends to be excessive and distortion aberration also tends to increase, so it is difficult to achieve the desired performance. In addition, when f3 / f4 is above the upper limit of condition (11), the overall focal length becomes larger and the field angle tends to be a clamping angle, so there is a tendency to improve astigmatism and distortion aberration, but since spherical aberration tends to increase, it is difficult to achieve the desired performance. Therefore, by satisfying condition (11), the photographing lens 100 can achieve a balance between short form factor (low profile) and high performance.

[0127] 〔Imaging device〕

[0128] Next, an embodiment of an information processing device (PC) having an imaging device using the imaging lens 100 of each embodiment as an imaging optical system will be described.

[0129] Figure 23 It is a diagram showing a schematic configuration of an information processing device having an imaging device with the imaging lens 100 of each embodiment. Figure 24 It shows Figure 23 the schematic configuration of the imaging device. Figure 25 It is a block diagram showing the functional configuration of an information processing device having an imaging device with the imaging lens of each embodiment.

[0130] Figures 23 to 25 The information processing device 30 shown at least includes an imaging device 31, a signal processing unit 32, an image processing unit 33, a control unit 34, a display unit 35, a storage unit 36, a communication unit 37, an input unit 38, and an audio input / output unit 39.

[0131] Under the control of the control unit 34, the imaging device 31 generates an imaging signal by imaging a prescribed field region and outputs the imaging signal to the signal processing unit 32. As Figure 24As shown, the photographing device 31 includes at least a cover 311, the photographing lens 100 of each embodiment, and a single photographing element 312. The photographing device 31 is disposed on the front side of the information processing device 30. Specifically, the photographing device 31 is disposed at a position where a user of the information processing device 30 can be photographed. Of course, the disposition position of the photographing device 31 can be appropriately changed according to the shape, size, and usage mode of the information processing device 30.

[0132] The cover 311 is constituted by a glass cover or the like as a member for preventing dirt and dust on the photographing lens 100. Further, the information processing device 30 may further provide a cover or the like that opens and closes according to a user operation to the cover 311.

[0133] The single photographing element 312 receives an image of a photographed object imaged by the photographing lens 100 and generates a photographing signal by performing photoelectric conversion. The single photographing element 312 is constituted by a CCD sensor, a CMOS sensor, or the like. Preferably, the single photographing element 312 arranges effective pixels of 8 million pixels or more, so-called 4K or more (3840×2160 or more), in a two-dimensional matrix shape.

[0134] The signal processing unit 32, under the control of the control unit 34, performs A / D conversion processing or the like on the photographing signal input from the single photographing element 312 to convert it into a digital photographing signal and outputs it to the image processing unit 33. For example, the signal processing unit 32 is constituted by a DSP (Digital Signal Processor).

[0135] The image processing unit 33, under the control of the control unit 34, performs prescribed image processing on the digital photographing signal input from the signal processing unit 32 and outputs it to the display unit 35 or the storage unit 36. For example, the image processing unit 33 is constituted by a GPU (Graphics Processing Unit). Here, the prescribed image processing refers to electrical correction processing of shadows, white balance adjustment processing, trimming processing of the center part of the image, noise reduction processing, and the like.

[0136] The control unit 34 controls each unit constituting the information processing device 30. The control unit 34 includes a processor and a memory. The processor is constituted by a CPU or an FPGA (Field-Programmable Gate Array). The memory is constituted by a RAM (Random Access Memory) or a ROM (Read Only Memory).

[0137] The display unit 35, under the control of the control unit 34, displays the video during shooting for which the image processing unit 33 has performed image processing, the captured image, the still image corresponding to the image signal stored in the storage unit 36, and various information related to the information processing device 30.

[0138] The storage unit 36 stores various information related to the information processing device 30, the programs executed by the information processing device 30, and the captured signals (RAW data or JPEG data) captured by the imaging device 31. The storage unit 36 is constituted by, for example, a flash memory, an SSD (Solid State Drive), an HDD (Hard Disk Drive), and a memory card.

[0139] The communication unit 37, under the control of the control unit 34, transmits the captured signal captured by the imaging device 31 to the outside via a network according to a prescribed communication standard, and receives various information input from the outside. The communication unit 37 uses, for example, communication standards based on 3GPP (registered trademark), 4G, LTE, 5G, WiMAX, and Wi-Fi (registered trademark) formulated by IEEE.

[0140] The input unit 38 accepts the operation input of the user and outputs operation information corresponding to the accepted operation to the control unit 34. The input unit 38 is constituted by, for example, a touch panel, a keyboard, and a mouse.

[0141] The audio input / output unit 39, under the control of the control unit 34, accepts the input of external sound, converts it into an audio signal, and outputs it to the storage unit 36 or the communication unit 37. In addition, the audio input / output unit 39, under the control of the control unit 34, converts the audio signal input from the storage unit 36 or the communication unit 37 and outputs it to the outside. The audio input / output unit 39 is constituted by a microphone and a speaker.

[0142] The information processing device 30 configured as described above can communicate with an external device in high definition of 4K using the imaging device 31 having the imaging lens 100 via Web communication over a network.

[0143] In addition, in the embodiment, a PC is described as an example of the information processing device 30, but the imaging device 31 can be applied to, for example, an imaging device of a tablet terminal, a mobile phone, or the like. Of course, the imaging device 31 can also be applied to a Web camera or the like that can communicate with a PC or the like by wire or wirelessly.

[0144] According to the embodiment described above, an information processing device with a wide field of view, bright, high-performance, and small size can be realized.

[0145] In addition, according to the embodiment, a half field of view angle of approximately 50° can be achieved by four lenses.

[0146] In addition, according to the embodiment, since the photographing lens 100 can achieve a wide-angle field of view angle, has a small F number, and is a high-performance and small-sized photographing lens, in the case of video shooting, it can cope with shooting in various environments such as a dark environment and high-speed shooting.

[0147] In addition, according to the embodiment, since a wide-angle field of view angle can be achieved, and it is a bright, high-performance and small-sized photographing lens, the matching between the incident angle in the light-receiving element of the single photographing element and the light incident on the light-receiving surface can be improved on the image side.

[0148] In addition, according to the embodiment, since a bright, high-performance and small-sized photographing lens with a half field of view angle of approximately 50° can be constituted by four lenses, for example, it can be used as a single-focus lens used in mobile phones such as smart phones and PCs. Therefore, in the case of video shooting requiring a high pixel count of 4K or more (3840×2160 or more), compared with conventional photographing lenses, sufficient aberration correction can be performed, and the required performance can be satisfied.

[0149] In addition, according to the embodiment, since a bright, high-performance and small-sized photographing lens with a half field of view angle of approximately 50° can be constituted by four lenses, the overall length in the optical axis direction of the photographing lens 100 can be shortened, and the lens diameter can also be reduced, thereby achieving miniaturization. As a result, the refractive power of the miniaturized lens becomes smaller, and the influence of manufacturing errors and assembly errors can be reduced. As a result, productivity can be improved, and production costs can be suppressed.

[0150] In addition, by appropriately combining a plurality of constituent elements disclosed in the information processing device according to the embodiment of the present disclosure, various inventions can be formed. For example, several constituent elements may be deleted from all the constituent elements described in the information processing device according to the embodiment of the present disclosure above. And the constituent elements described in the information processing device according to the embodiment of the present disclosure above may be appropriately combined.

[0151] In addition, in the information processing device according to the embodiment of the present disclosure, the above-mentioned "section" can be replaced with "unit" or "circuit", etc. For example, the control section can be replaced with a control unit or a control circuit.

[0152] In addition, a program for causing the information processing device according to the embodiment of the present disclosure to execute is recorded in a computer-readable recording medium such as a CD-ROM, a floppy disk (FD), a CD-R, a DVD (Digital Versatile Disk), a USB medium, and a flash memory in a file data format that can be installed or executed and provided.

[0153] In addition, the program executed by the information processing apparatus according to the embodiments of the present disclosure may also be configured to be stored in a computer connected to a network such as the Internet and provided by downloading it via the network.

[0154]

Embodiment

[0155] Hereinafter, Embodiments 1 to 10 of the photographing lens 100 corresponding to Embodiments 1 to 10 will be shown.

[0156] The meanings of the symbols in each embodiment are as follows.

[0157] f: Focal length of the entire lens system

[0158] fl: Focal length of each lens

[0159] FNo.: Numerical aperture (F-number)

[0160] R: Curvature radius of the surface

[0161] D: Surface interval

[0162] Nd: Refractive index for d-line

[0163] Vd: Abbe number for d-line

[0164] SD: Effective radius

[0165] In the case where the depth in the optical axis direction is set to X, the height from the optical axis is set to H, the paraxial curvature radius is set to R, the conic constant is set to k, and the aspherical coefficient of higher order is set to CN (N is an even number of 4 or more), the aspherical surface is expressed by the following well-known formula (15) using the aspherical coefficient.

[0166] X = (H 2 / R) / [1 + {1 - k(H / r) 2} 1 / 2 + Σ N=4:even CNH N ···(15)

[0167] Here, Σ N≧4:even means the sum for N being an even number of 4 or more.

[0168] [Embodiment 1]

[0169] f = 1.8 mm, FNo. = 2.2, HFOV = 51.5°

[0170] The data of Embodiment 1 is shown in Table 1.

[0171]

Table 1

[0172]

[0173] The data of the aspherical surface is as follows.

[0174]

Table 2

[0175] 1 2 4 5 Conic constant (k) 7.2596.E-01 2.4219.E-01 2.0118.E-01 3.2194.E-01 Fourth-order coefficient 1.3775.E+00 4.1289.E+00 4.9708.E+00 3.1061.E+00 Sixth-order coefficient -7.2285.E-01 2.7241.E+01 -2.9373.E+01 -3.5287.E+01 Eighth-order coefficient 6.8871.E-02 -1.6357.E-01 -6.8115.E-01 -2.5163.E-01 Tenth-order coefficient -5.5264.E-01 -2.4749.E-01 -4.4200.E-01 -9.9602.E-02 Twelfth-order coefficient 1.9681.E+00 -1.5339.E-01 1.2045.E-02 3.9435.E-02 Fourteenth-order coefficient -4.5354.E+00 -4.6701.E+00 -2.6586.E+00 1.3638.E-01 Sixteenth-order coefficient 3.5860.E-01 -1.6132.E+00 -1.2589.E+00 1.6595.E-01 Eighteenth-order coefficient -1.7969.E-03 -3.8351.E+00 -3.4796.E+00 5.6107.E-02 Twentieth-order coefficient 0.0000.E+00 0.0000.E+00 0.0000.E+00 0.0000.E+00

[0176] 6 7 8 9 Conic constant (k) -2.1907.E-01 -1.9710.E+00 1.5012.E+00 3.1145.E+00 Fourth-order coefficient -4.5648.E+00 -5.0735.E-01 6.6615.E-01 3.2108.E-01 Sixth-order coefficient 6.2460.E+00 -2.8158.E+00 -8.2369.E+00 -3.1474.E+00 Eighth-order coefficient 6.9747.E-02 -3.0184.E-01 -7.2422.E-02 -1.7485.E-01 Tenth-order coefficient 1.8171.E-02 3.7977.E-02 -2.4891.E-01 6.4337.E-02 Twelfth-order coefficient 2.1225.E-02 7.9645.E-03 2.2490.E-01 -1.3301.E-02 Fourteenth-order coefficient -1.1530.E-02 -1.4252.E-02 -6.0869.E-02 8.0878.E-04 Sixteenth-order coefficient -1.4302.E-02 9.6615.E-03 -3.1537.E-04 9.8576.E-05 Eighteenth-order coefficient 8.8156.E-03 2.9507.E-02 5.1245.E-05 -4.3259.E-05 Twentieth-order coefficient 0.0000.E+00 0.0000.E+00 0.0000.E+00 0.0000.E+00

[0177] In the above description of the aspherical surface, for example, "5.1245.E-05" means "5.1245 * 10^-5". The same applies to other embodiments below.

[0178] The parameter values of each condition are as follows. In addition, EP: entrance pupil position is also described in Table 3.

[0179]

Table 3

[0180] Item Value EFL 1.73 Fno 2.20 OAL 2.91 IH 2.28 EfD1 1.07 Half FOV 51.43 EP 0.22 EXP -1.95 f1 3.70 f2 -13.49 f3 0.98 f4 -1.24 N1 1.5365 N2 1.6328 N3 1.5365 N4 1.6328 F1 3.70 F2 2.49 DL1L2 0.286

[0181] In this table, in addition to conditional expressions (1) to (11), (20), and (21), (12) to (14) are also described as references.

[0182]

Table 4

[0183] Conditional expression Value Lower limit Upper limit (1) f / f1 0.466 0.45 0.7 (2) |f4 / f1| 0.333 0.3 0.5 (3) N1 < N4 Refer to Table 3 (4) N1 1.536 1.49 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.593 0.55 0.75 (7) OAL / EfD1 2.721 2.3 2.9 (8) EXP / IH --0.853 -0.9 --0.65 (9) |f1 / f2| 0.275 0.01 0.3 (10) f3 / f1 0.264 0.25 0.45 (11) |f3 / f4| 0.792 0.7 1.2 (12) |f4 / f2| 0.092 0.01 0.15 (13) |f3 / f2| 0.073 0.01 0.17 (14) OAL / 2 * IH 0.637 0.61 0.65 (20) |F1 / F2| 1.491 0.5 2 (21) DL1L2 / OAL 0.098 0.8 1.5

[0184] In addition, the meanings of the conditional expressions (12) to (14) are as follows.

[0185] 0.01 < |f4 / f2| < 0.15 ···(12)

[0186] Regarding conditional expression (12), f2 represents the focal length of the second lens L2, f4 represents the focal length of the fourth lens L4, and it is a condition for the balance of the focal lengths of the second lens L2 and the fourth lens L4. Within the range of conditional expression (12), high performance can be achieved. When it is below the lower limit of the conditional expression, astigmatism becomes larger, and when it is above the upper limit of conditional expression (12), spherical aberration becomes larger. Therefore, it is preferably within the range that satisfies the conditional expression.

[0187] 0.01 < |f3 / f2| < 0.17 ···(13)

[0188] Regarding conditional expression (13), f2 represents the focal length of the second lens L2, f3 represents the focal length of the third lens L3, and it is a condition for the balance of the focal lengths of the second lens L2 and the third lens L3. Within the range of conditional expression (13), high performance can be achieved. When it is below the lower limit of conditional expression (13), astigmatism becomes larger, and when it is above the upper limit of conditional expression (13), spherical aberration becomes larger. Therefore, it is preferably within the range that satisfies the conditional expression.

[0189] The present disclosure is characterized in that the power of the second lens L2 is weaker compared to the powers of other lenses. However, by disposing a positive or negative lens with a relatively weaker power compared to other lenses in the second lens L2, the present disclosure can effectively correct astigmatism, spherical aberration, and distortion aberration.

[0190] 0.61 < OAL / 2 * IH < 0.65 ···(14)

[0191] Regarding conditional expression (14), OAL represents the overall optical length, IH represents the image height, which is the so-called image circle of the optical system, and shows the ratio of the overall optical length to the image circle. As in conditional expression (14), the overall optical length is 0.61 to 0.65 relative to the image circle, and it can be seen that the photographing lens 100 of the present disclosure is low-profile.

[0192] In addition, regarding these conditional expressions (12) to (14), they are also applied after Example 2.

[0193] In addition, aspherical surfaces are used in the first lens L1 to the fourth lens L4 in each embodiment, and aberrations are well corrected by the aspherical surfaces.

[0194] The aberration diagrams, MTF, and distortion grids related to the above-described Example 1 are as Figures 2A to 2C shown. However, as is clear from each figure, the performance is good.

[0195] [Example 2]

[0196] f = 1.75 mm, FNo. = 2.2, HFOV = 51.5°

[0197] The data of Example 2 are shown in Table 5.

[0198]

Table 5

[0199]

[0200] The data of the aspherical surfaces are as follows.

[0201]

Table 6

[0202] 1 2 4 5 Conic constant (k) 7.4740.E-01 2.5287.E-01 1.7321.E-01 2.6017.E-01 Fourth-order coefficient 1.3380.E+00 3.9546.E+00 5.7734.E+00 3.8437.E+00 Sixth-order coefficient -7.1891.E-01 2.6866.E+01 3.0277.E+01 -3.2972.E+01 Eighth-order coefficient 6.7943.E-02 -1.6383.E-01 -6.2687.E-01 -2.2366.E-01 Tenth-order coefficient -4.9929.E-01 -2.6000.E-01 -3.7560.E-01 -8.6689.E-02 Twelfth-order coefficient 1.9694.E+00 -1.6648.E-01 2.1772.E-01 2.6176.E-02 Fourteenth-order coefficient -4.8645.E+00 -2.5008.E+00 -2.7018.E+00 9.8305.E-02 Sixteenth-order coefficient 3.5860.E-01 -1.6132.E+00 -1.2589.E+00 1.6595.E-01

[0203] 6 7 8 9 Conic constant (k) -2.8070.E-01 -1.9642.E+00 1.3610.E+00 2.9140.E+00 Fourth-order coefficient -3.5625.E+00 -5.0912.E-01 7.3478.E-01 3.4317.E-01 Sixth-order coefficient 3.0095.E+00 -2.9290.E+00 -9.1468.E+00 -3.3665.E+00 Eighth-order coefficient 7.4093.E-02 -3.0970.E-01 -2.5097.E-02 -1.4323.E-01 Tenth-order coefficient 2.9575.E-02 4.2484.E-02 -2.5851.E-01 5.8206.E-02 Twelfth-order coefficient 3.0790.E-02 2.0715.E-02 2.1786.E-01 -1.8001.E-02 Fourteenth-order coefficient -6.2003.E-03 -1.8785.E-03 -6.1558.E-02 1.2498.E-03 Sixteenth-order coefficient -1.2875.E-02 1.8150.E-02 4.8006.E-04 6.1864.E-04

[0204] The values of the parameters for each condition are as follows.

[0205]

Table 7

[0206] Item Value EFL 1.75 Fno 2.20 OAL 2.90 IH 2.30 EfD1 1.09 Half FOV 5143 EP 0.23 EXP -1.92 f1 3.61 f2 -17.96 f3 1.00 f4 -1.26 N1 1.5365 N2 1.6606 N3 1.5365 N4 1.6328 F1 3.61 F2 2.60 DL1L2 0.287

[0207]

Table 8

[0208] Conditional expression Value Lower limit Upper limit (1) f / f1 0486 045 0.7 (2) |f4 / f1| 0.348 0.3 0.5 (3) N1 < N4 Refer to Table 7 (4) N1 1.536 1.49 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.605 0.55 0.75 (7) OAL / EfD1 2.654 2.3 2.9 (8) EXP / IH -0.834 -0.9 -0.65 (9) |f1 / f2| 0.201 0.01 0.3 (10) f3 / f1 0.277 0.25 0.45 (11) |f3 / f4| 0.795 0.7 1.2 (12) |f4 / f2| 0.070 0.01 0.15 (13) |f3 / f2| 0.056 0.01 0.17 (14) OAL / 2 * IH 0.629 0.61 0.65 (20) |F1 / F2| 1.388 0.5 2 (21) DL1L2 / OAL 0.099 0.8 1.5

[0209] These aberration diagrams, MTF, and distortion grids are as Figures 4A to 4C shown, but as is clear from each diagram, the performance is good.

[0210] [Example 3]

[0211] f = 1.8 mm, FNo. = 2.2, HFOV = 49°

[0212] The data of Example 3 are shown in Table 9.

[0213]

Table 9

[0214]

[0215] The data of the aspherical surface are as follows.

[0216]

Table 10

[0217] 1 2 4 5 Conic constant (k) 7.9943.E-01 2.6034.E-01 4.6684.E-02 1.3045.E-01 Fourth-order coefficient 1.2509.E+00 3.8411.E+00 2.1420.E+01 7.6655.E+00 Sixth-order coefficient -5.8037.E-01 3.3196.E+01 1.9303.E+02 -2.0248.E+02 Eighth-order coefficient 6.5581.E-02 -1.1015.E-01 -5.8458.E-01 -2.4729.E-01 Tenth-order coefficient -2.6414.E-01 -3.4356.E-01 -4.3664.E-01 -8.4272.E-02 Twelfth-order coefficient 1.4587.E+00 2.0624.E-01 1.9291.E-01 4.8521.E-02 Fourteenth-order coefficient -3.8966.E+00 -2.3619.E+00 -1.5031.E+00 1.3896.E-01

[0218] 6 7 8 9 Conic constant (k) -3.5103.E-01 -1.8867.E+00 1.0441.E+00 2.4895.E+00 Fourth-order coefficient -2.8487.E+00 -5.3003.E-01 9.5776.E-01 4.0169.E-01 Sixth-order coefficient 1.7099.E+00 -2.8229.E+00 -1.3995.E+01 -3.8268.E+00 Eighth-order coefficient 8.3138.E-02 -2.8737.E-01 -4.2995.E-03 -1.2427.E-01 Tenth-order coefficient 4.5909.E-02 5.8803.E-02 -2.4465.E-01 5.3921.E-02 Twelfth-order coefficient 4.0119.E-02 3.5329.E-02 2.0232.E-01 -1.6129.E-02 Fourteenth-order coefficient -7.7908.E-03 6.8350.E-03 -6.2109.E-02 -1.0698.E-03

[0219] The parameter values for each condition are as follows.

[0220]

Table 11

[0221] Item Value f 1.82 Fno 2.20 OAL 2.90 IH 2.31 EfD1 1.11 Half FOV 49.00 EP 0.24 EXP -1.83 f1 3.30 f2 -17.97 f3 1.08 f4 -1.29 N1 1.5365 N2 1.6606 N3 1.5365 N4 1.6328 F1 3.30 F2 3.12 DL1L2 0.325

[0222]

Table 12

[0223] Conditional expression Value Lower limit Upper limit (1) f / f1 0.552 0.45 0.7 (2) |f4 / f1| 0.389 0.3 0.5 (3) N1 < N4 Refer to Table 11 (4) N1 1.536 1.49 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.629 0.55 0.75 (7) OAL / EfD1 2.620 2.3 2.9 (8) EXP / IH -0.795 -0.9 -0.65 (9) |f1 / f2| 0.184 0.01 0.3 (10) f3 / f1 0.326 0.25 0.45 (11) |f3 / f4| 0.837 0.7 1.2 (12) |f4 / f2| 0.072 0.01 0.15 (13) |f3 / f2| 0.060 0.01 0.17 (14) OAL / 2 * IH 0.629 0.61 0.65 (20) |F1 / F2| 1.060 0.5 2 (21) DL1L2 / OAL 0.112 0.8 1.5

[0224] These aberration diagrams, MTF, and distortion grids are as Figures 6A to 6C shown, but as is clear from each diagram, the performance is good.

[0225] [Example 4]

[0226] f = 1.9 mm, FNo. = 2.2, HFOV = 48 °

[0227] The data of Example 4 are shown in Table 13.

[0228]

Table 13

[0229]

[0230] The data of the aspherical surface are as follows.

[0231]

Table 14

[0232] 1 2 4 5 Y curvature 8.2298E-01 27408.E-01 2.3208.E-02 9.7890.E-02 Y radius of curvature 1.2151.E+00 3.6486.E+00 4.3088.E+01 1.0216.E+01 Conic constant (K) -4.9377.E-01 3.3212.E+01 2.4727.E+02 -3.5508.E+02 Fourth-order coefficient (A) 7.1714E-02 -11056.E-01 -57619E-01 -2.4994E-01 Sixth-order coefficient (B) -2.5443.E-01 -3.3793.E-01 -4.0329.E-01 -7.8700.E-02 Eighth-order coefficient (C) 1.4474E+00 31262.E-01 2.1362.E-01 5.9619.E-02 Tenth-order coefficient (D) -3.6563.E+00 -2.7971.E+00 -1.3118.E+00 1.5200.E-01 Twelfth-order coefficient (E) 3.5857.E-01 -1.6132.E+00 -1.1954.E+00 1.5350.E-01 Fourteenth-order coefficient (F) 4.8113E+00 -38351.E+00 -34676E+00 9.1915E-02 Sixteenth-order coefficient (G) 3.0407.E-10 1.1656.E-17 3.7059.E-19 -8.3717.E-17 Eighteenth-order coefficient (H) 5.8527.E-11 1.1008.E-18 8.7094.E-20 -2.6252.E-17 Twentieth-order coefficient (J) 1.1092.E-11 99939.E-20 1.5509.E-20 -7.3659.E-18

[0233] 6 7 8 9 Y curvature -3.7494E-01 -19256.E+00 99649E-01 25004E+00 Y curvature radius -2.6671.E+00 -5.1932.E-01 1.0035.E+00 3.9994.E-01 Conic constant (K) 1.5714.E+00 -2.8346.E+00 -1.9097.E+01 -4.1503.E+00 Fourth-order coefficient (A) 8.3240E-02 -28216.E-01 -13195.E-02 -1.2793E-01 Sixth-order coefficient (B) 4.8883.E-02 6.1949.E-02 -2.3922.E-01 5.5774.E-02 Eighth-order coefficient (C) 4.3013E-02 36960.E-02 20040.E-01 -1.6975E-02 Tenth-order coefficient (D) -5.9843.E-03 7.3165.E-03 -6.3287.E-02 -1.0730.E-03 Twelfth-order coefficient (E) -1.5100.E-02 1.9492.E-02 1.9110.E-03 1.5166.E-03 Fourteenth-order coefficient (F) 1.1777E-02 28135.E-02 1.7753.E-03 -2.1097.E-04 Sixteenth-order coefficient (G) -3.6908.E-07 -5.0252.E-08 -6.0169.E-06 3.2215.E-07 Eighteenth-order coefficient (H) -4.7037.E-07 -2.8273.E-08 -1.3075.E-06 -3.8737.E-09 Twentieth-order coefficient (J) -5.7518.E-07 1.3156.E-08 6.6665.E-07 -2.3824.E-08

[0234] The parameter values for each condition are as follows.

[0235]

Table 15

[0236] Item Value f 1.87 Fno 2.20 OAL 2.90 IH 2.31 EfD1 1.12 Half FOV 48.00 EP 0.25 EXP -1.80 f1 3.23 f2 -20.09 f3 1.06 f4 -1.21 N1 1.5365 N2 1.6606 N3 1.5365 N4 1.6328 F1 3.23 F2 3.44 DL1L2 0.334

[0237]

Table 16

[0238] Conditional expression Value Lower limit Upper limit (1) f / f1 0.578 0.45 0.7 (2) |f4 / f1| 0.373 0.3 0.5 (3) N1 < N4 Refer to Table 15 (4) N1 1.536 1.49 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.644 0.55 0.75 (7) OAL / EfD1 2.583 2.3 2.9 (8) EXP / IH -0.779 -0.9 -0.65 (9) |f1 / f2| 0.161 0.01 0.3 (10) f3 / f1 0.328 0.25 0.45 (11) |f3 / f4| 0.879 0.7 1.2 (12) |f4 / f2| 0.060 0.01 0.15 (13) |f3 / f2| 0.053 0.01 0.17 (14) OAL / 2 * IH 0.629 0.61 0.65 (20) |F1 / F2| 0.939 0.5 2 (21) DL1L2 / OAL 0.115 0.8 1.5

[0239] These aberration diagrams, MTF, and distortion grids are as Figures 8A to 8C shown, but as is clear from each aberration diagram, the performance is good.

[0240] [Example 5]

[0241] f = 1.8 mm, FNo. = 2.2, HFOV = 49 °

[0242] The data for Example 5 are shown in Table 17.

[0243]

Table 17

[0244]

[0245] The data for the aspherical surface are as follows.

[0246]

Table 13

[0247] 1 2 4 5 Conic constant (k) 8.1683.E-01 2.5047.E-01 1.7250.E-02 1.1340.E-01 Fourth-order coefficient 1.2242.E+00 3.9925.E+00 5.7970.E+01 8.8183.E+00 Sixth-order coefficient -5.5370.E-01 3.2708.E+01 -2.5000.E+02 -2.4656.E+02 Eighth-order coefficient 6.4937.E-02 -1.0588.E-01 -5.9717.E-01 -2.5743.E-01 Tenth-order coefficient -2.4062.E-01 -3.3663.E-01 -4.8781.E-01 -8.1395.E-02 Twelfth-order coefficient 1.3961.E+00 2.5466.E-01 1.3991.E-01 5.7300.E-02 Fourteenth-order coefficient -3.8764.E+00 -2.1549.E+00 -1.2239.E+00 1.8696.E-01

[0248] 6 7 8 9 Conic constant (k) -3.6239.E-01 -1.8949.E+00 1.1565.E+00 2.5881.E+00 Fourth-order coefficient -2.7595.E+00 -5.2773.E-01 8.6469.E-01 3.8639.E-01 Sixth-order coefficient 1.4835.E+00 -2.8136.E+00 -1.2927.E+01 -3.7865.E+00 Eighth-order coefficient 8.6520.E-02 -2.9185.E-01 -2.4424.E-02 -1.3583.E-01 Tenth-order coefficient 4.7465.E-02 4.6216.E-02 -2.3925.E-01 5.3485.E-02 Twelfth-order coefficient 3.3157.E-02 3.6222.E-02 2.0085.E-01 -1.4363.E-02 Fourteenth-order coefficient -7.4022.E-03 1.1401.E-02 -6.2216.E-02 -1.3684.E-03

[0249] The parameter values for each condition are as follows.

[0250]

Table 19

[0251] Item Value f 1.84 Fno 2.20 OAL 2.90 IH 2.31 EfD1 1.12 Half FOV 49.00 EP 0.25 EXP -1.84 f1 3.28 f2 -15.59 f3 1.08 f4 -1.31 N1 1.5168 N2 1.6606 N3 1.5365 N4 1.6328 F1 3.28 F2 3.18 DL1L2 0.321

[0252]

Table 20

[0253] Conditional expression Value Lower limit Upper limit (1) f / f1 0.562 0.45 0.7 (2) |f4 / f1| 0.399 0.3 0.5 (3) N1 < N4 Refer to Table 19 (4) N1 1.517 1.49 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.635 0.55 0.75 (7) OAL / EfD1 2.578 2.3 2.9 (8) EXP / IH -0.798 -0.9 -0.65 (9) |f1 / f2| 0.210 0.01 0.3 (10) f3 / f1 0.329 0.25 0.45 (11) |f3 / f4| 0.824 0.7 1.2 (12) |f4 / f2| 0.084 0.01 0.15 (13) |f3 / f2| 0.069 0.01 0.17 (14) OAL / 2 * IH 0.629 0.61 0.65 (20) |F1 / F2| 1.031 0.5 2 (21) DL1L2 / OAL 0.111 0.8 1.5

[0254] These aberration diagrams, MTF, and distortion grids are as Figures 10A to 10C shown, but as is clear from each aberration diagram, the performance is good.

[0255] [Example 6]

[0256] f = 2.1 mm, FNo. = 2.2, HFOV = 48 °

[0257] The data of Example 6 is shown in Table 21.

[0258]

Table 21

[0259]

[0260] The data of the aspherical surface is as follows.

[0261]

Table 22

[0262] 1 2 4 5 Conic constant (k) 8.9686.E-01 3.4910.E-01 1.3371.E-01 4.8876.E-04 Fourth-order coefficient 1.1150.E+00 2.8645.E+00 7.4787.E+00 2.0460.E+03 Sixth-order coefficient -6.9004.E-01 2.5198.E+01 -6.1976.E-01 -2.6232.E+06 Eighth-order coefficient 7.8915.E-02 -1.6144.E-01 -3.9287.E-01 -3.4621.E-02 Tenth-order coefficient -1.5911.E-01 -4.8653.E-01 -9.5980.E-01 -5.6834.E-01 Twelfth-order coefficient 9.8479.E-01 -1.0624.E+00 -5.3814.E-01 -1.1396.E-01 Fourteenth-order coefficient -1.6061.E+00 -4.6393.E-01 1.5487.E-01 5.7003.E-01 Sixteenth-order coefficient 0.0000.E+00 0.0000.E+00 0.0000.E+00 0.0000.E+00

[0263] 6 7 8 9 Conic constant (k) -6.2715.E-01 -1.9180.E+00 2.0423.E-01 1.6542.E+00 Fourth-order coefficient -1.5945.E+00 -5.2136.E-01 4.8964.E+00 6.0451.E-01 Sixth-order coefficient -2.8560.E+00 -3.2072.E+00 1.4870.E+01 -6.3325.E+00 Eighth-order coefficient 1.8525.E-01 -3.2737.E-01 -2.8675.E-01 -1.9341.E-01 Tenth-order coefficient 1.3225.E-01 1.0343.E-01 -2.3138.E-01 8.6934.E-02 Twelfth-order coefficient -3.1204.E-03 1.5743.E-01 4.0313.E-01 -2.1605.E-02 Fourteenth-order coefficient -9.4119.E-02 5.1848.E-02 -2.3351.E-01 -4.7364.E-03 Sixteenth-order coefficient -4.7079.E-02 -3.6508.E-03 -2.5587.E-03 1.4530.E-03

[0264] The parameter values of each condition are as follows.

[0265]

Table 23

[0266] Item Value f 2.06 Fno 2.24 OAL 2.90 IH 2.30 EfD1 1.19 Half FOV 47.37 EP 0.28 EXP -1.61 f1 3.17 f2 11.74 f3 1.17 f4 -1.11 N1 1.5365 N2 1.6328 N3 1.5365 N4 1.6328 F1 3.17 F2 5.65 DL1L2 0.295

[0267]

Table 24

[0268] Conditional expression Value Lower limit Upper limit (1) f / f1 0.651 0.45 0.7 (2) |f4 / f1| 0.351 0.3 0.5 (3) N1 < N4 Refer to Table 23 (4) N1 1.536 149 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.712 0.55 0.75 (7) OAL / EfD1 2437 2.3 2.9 (8) EXP / IH -0.700 -0.9 -0.65 (9) |f1 / f2| 0.270 0.01 0.3 (10) f3 / f1 0.370 0.25 0.45 (11) |f3 / f4| 1.055 0.7 1.2 (12) |f4 / f2| 0.095 0.01 0.15 (13) |f3 / f2| 0.100 0.01 0.17 (14) OAL / 2 * IH 0.629 0.61 0.65 (20) |F1 / F2| 0.562 0.5 2 (21) DL1L2 / OAL 0.102 0.8 1.5

[0269] These aberration diagrams, MTFs, and distortion grids are as Figures 12A to 12C shown, but as is clear from each aberration diagram, the performance is good.

[0270] [Example 7]

[0271] f = 2.0 mm, FNo. = 2.2, HFOV = 48 °

[0272] The data of Example 7 is shown in Table 25.

[0273]

Table 25

[0274]

[0275] The data of the aspherical surface is as follows.

[0276]

Table 26

[0277] 1 2 4 5 Conic constant (k) 8.7655.E-01 3.3097.E-01 1.1970.E-01 -1.4099.E-02 Fourth-order coefficient 1.1408.E+00 3.0214.E+00 8.3543.E+00 -7.0925.E+01 Sixth-order coefficient -7.2933.E-01 2.5682.E+01 2.1612.E+01 1.2202.E+03 Eighth-order coefficient 7.5858.E-02 -1.6621.E-01 -3.8291.E-01 -4.1160.E-02 Tenth-order coefficient -1.8363.E-01 -4.5854.E-01 -1.0333.E+00 -5.7844.E-01 Twelfth-order coefficient 8.8131.E-01 -1.0171.E+00 -4.7996.E-01 -1.1897.E-01 Fourteenth-order coefficient -1.5030.E+00 2.9957.E-01 4.2607.E-01 5.8089.E-01 Sixteenth-order coefficient 0.0000.E+00 0.0000.E+00 0.0000.E+00 0.0000.E+00

[0278] 6 7 8 9 Conic constant (k) -6.1917.E-01 -1.9141.E+00 2.1518.E-01 1.5953.E+00 Fourth-order coefficient -1.6151.E+00 -5.2245.E-01 4.6473.E+00 6.2683.E-01 Sixth-order coefficient -2.6337.E+00 -3.0217.E+00 1.2726.E+01 -6.0229.E+00 Eighth-order coefficient 1.8466.E-01 -3.4281.E-01 -2.8496.E-01 -1.8067.E-01 Tenth-order coefficient 1.3391.E-01 9.8080.E-02 -2.2255.E-01 8.3499.E-02 Twelfth-order coefficient -2.8352.E-03 1.6219.E-01 3.9948.E-01 -2.0604.E-02 Fourteenth-order coefficient -9.3621.E-02 5.8889.E-02 -2.3570.E-01 -4.8321.E-03 Sixteenth-order coefficient -4.4874.E-02 2.4181.E-03 -9.5255.E-04 1.3658.E-03

[0279] The parameter values of each condition are as follows.

[0280]

Table 27

[0281] Item Value f 2.02 Fno 2.24 OAL 2.90 IH 2.31 EfD1 1.18 Half FOV 47.98 EP 0.28 EXP -1.62 f1 3.20 f2 11.25 f3 1.24 f4 -1.18 N1 1.5365 N2 1.6652 N3 1.5092 N4 1.6328 F1 3.20 F2 5.27 DL1L2 0.293

[0282]

Table 28

[0283] Conditional expression Value Lower limit Upper limit (1) f / f1 0.631 0.45 0.7 (2) |f4 / f1| 0.368 0.3 0.5 (3) N1 < N4 Refer to Table 27 (4) N1 1.536 1.49 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.697 0.55 0.75 (7) OAL / EfD1 2.456 2.3 2.9 (8) EXP / IH -0.704 -0.9 -0.65 (9) |f1 / f2| 0.285 0.01 0.3 (10) f3 / f1 0.388 0.25 0.45 (11) |f3 / f4| 1.055 0.7 1.2 (12) |f4 / f2| 0.105 0.01 0.15 (13) |f3 / f2| 0.110 0.01 0.17 (14) OAL / 2 * IH 0.629 0.61 0.65 (20) |F1 / F2| 0.608 0.5 2 (21) DL1L2 / OAL 0.101 0.8 1.5

[0284] These aberration diagrams, MTF, and distortion grids are as Figures 14A to 14C shown, but as is clear from each aberration diagram, the performance is good.

[0285] [Example 8]

[0286] f = 1.8 mm, FNo. = 2.2, HFOV = 50.6 °

[0287] The data of Example 8 are shown in Table 29.

[0288]

Table 29

[0289]

[0290] The data of the aspherical surface are as follows.

[0291]

Table 30

[0292] 1 2 4 5 Conic constant (k) 7.0246.E-01 1.8661.E-01 3.3184.E-01 3.2070.E-01 Fourth-order coefficient 1.4236.E+00 5.3588.E+00 3.0135.E+00 3.1182.E+00 Sixth-order coefficient -1.5316.E+00 1.9212.E+01 -2.2016.E+01 -2.2534.E+01 Eighth-order coefficient 2.6612.E-02 -1.9293.E-01 -4.6326.E-01 -1.1350.E-01 Tenth-order coefficient -3.5707.E-01 -2.5220.E-01 -9.0505.E-01 -6.4315.E-01 Twelfth-order coefficient 5.7560.E-01 -1.3817.E+00 -1.4205.E+00 1.2573.E-01 Fourteenth-order coefficient -1.3439.E+00 3.3178.E+00 3.5322.E+00 9.1901.E-01 Sixteenth-order coefficient -4.3646.E+00 1.8680.E+00 -5.4722.E+00 8.7274.E-01

[0293] 6 7 8 9 Conic constant (k) -4.1885.E-01 -1.7109.E+00 5.9710.E-01 1.6985.E+00 Fourth-order coefficient -2.3875.E+00 -5.8450.E-01 1.6748.E+00 5.8874.E-01 Sixth-order coefficient -5.7650.E-01 -2.8806.E+00 2.4421.E-01 -3.6835.E+00 Eighth-order coefficient 1.5970.E-01 -3.5673.E-01 -3.9259.E-01 -2.0891.E-01 Tenth-order coefficient 1.1188.E-01 -2.5673.E-02 -2.2568.E-01 9.1683.E-02 Twelfth-order coefficient -2.4535.E-02 9.4161.E-02 4.2263.E-01 -1.5143.E-02 Fourteenth-order coefficient -9.2053.E-02 6.2689.E-02 -2.0968.E-01 -5.5608.E-03 Sixteenth-order coefficient -1.1440.E-02 4.4556.E-02 1.0982.E-02 9.0159.E-04

[0294] The parameter values for each condition are as follows.

[0295]

Table 31

[0296] Item Value f 1.84 Fno 2.24 OAL 2.90 IH 2.31 EfD1 1.15 Half FOV 50.62 EP 0.24 EXP -1.73 f1 3.51 f2 87.99 f3 1.32 f4 -1.63 N1 1.5365 N2 1.6328 N3 1.5092 N4 1.6328 F1 3.51 F2 3.20 DL1L2 0.306

[0297]

Table 32

[0298] Conditional expression Value Lower limit Upper limit (1) f / f1 0.526 0.45 0.7 (2) |f4 / f1| 0.466 0.3 0.5 (3) N1 < N4 Refer to Table 31 (4) N1 1.536 1.49 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.635 0.55 0.75 (7) OAL / EfD1 2.511 2.3 2.9 (8) EXP / IH -0.751 -0.9 -0.65 (9) |f1 / f2| 0.040 0.01 0.3 (10) f3 / f1 0.375 0.25 0.45 (11) |f3 / f4| 0.806 0.7 1.2 (12) |f4 / f2| 0.019 0.01 0.15 (13) |f3 / f2| 0.015 0.01 0.17 (14) OAL / 2*IH 0.629 0.61 0.65 (20) |F1 / F2| 1.095 0.5 2 (21) DL1L2 / OAL 0.105 0.8 1.5

[0299] These aberration diagrams, MTF, and distortion grids are as Figures 16A to 16C shown, but as is clear from each aberration diagram, the performance is good.

[0300] [Example 9]

[0301] f = 2.1 mm, FNo. = 2.2, HFOV = 46.5 °

[0302] The data of Example 9 are shown in Table 33.

[0303]

Table 33

[0304]

[0305] The data of the aspherical surface are as follows.

[0306]

Table 34

[0307] Plane number 1 2 4 5 Conic constant (k) 7.0484.E-01 1.9818.E-01 3.5010.E-01 3.3266.E-01 Fourth-order coefficient 1.4188.E+00 5.0460.E+00 2.8564.E+00 3.0061.E+00 Sixth-order coefficient -1.6373.E+00 2.3520.E+01 -2.2009.E+01 -1.0739.E+01 Eighth-order coefficient 2.5692.E-02 -1.8814.E-01 -4.2799.E-01 -1.2319.E-01 Tenth-order coefficient -2.8570.E-01 -2.5128.E-01 -8.7288.E-01 -6.7680.E-01 Twelfth-order coefficient 4.7555.E-01 -7.8744.E-01 -1.9579.E+00 1.2461.E-01 Fourteenth-order coefficient -1.1436.E+00 1.2112.E+00 4.3409.E+00 9.1335.E-01 Sixteenth-order coefficient -4.3646.E+00 1.8680.E+00 -5.4722.E+00 8.4157.E-01

[0308] Plane number 6 7 8 9 Conic constant (k) -4.2429.E-01 -1.8570.E+00 6.5033.E-01 1.8936.E+00 Fourth-order coefficient -2.3569.E+00 -5.3851.E-01 1.5377.E+00 5.2808.E-01 Sixth-order coefficient -2.7724.E-01 -2.9135.E+00 2.2709.E-02 -3.7402.E+00 Eighth-order coefficient 1.5569.E-01 -3.4411.E-01 -4.2117.E-01 -2.1064.E-01 Tenth-order coefficient 1.1400.E-01 -3.9899.E-02 -1.8136.E-01 8.8078.E-02 Twelfth-order coefficient -1.6741.E-02 8.0616.E-02 4.1102.E-01 -1.1280.E-02 Fourteenth-order coefficient -8.4146.E-02 5.8655.E-02 -2.1640.E-01 -5.7864.E-03 Sixteenth-order coefficient -8.3691.E-03 4.8223.E-02 1.0727.E-02 5.6114.E-04

[0309] The parameter values for each condition are as follows.

[0310]

Table 35

[0311] Item Value f 1.85 Fno 2.24 OAL 2.90 IH 2.30 EfD1 1.15 Half FOV 50.62 EP 0.24 EXP -1.75 f1 3.56 f2 63.33 f3 1.18 f4 -1.43 N1 1.5365 N2 1.6328 N3 1.5092 N4 1.6328 F1 3.56 F2 3.11 DL1L2 0.310

[0312]

Table 36

[0313] Conditional expression Value Lower limit Upper limit (1) f / f1 0.518 0.45 0.7 (2) |f4 / f1| 0.401 0.3 0.5 (3) N1 < N4 Refer to Table 34 (4) N1 1.536 1.49 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.636 0.55 0.75 (7) OAL / EfD1 2.518 2.3 2.9 (8) EXP / IH -0.759 -0.9 -0.65 (9) |f1 / f2| 0.056 0.01 0.3 (10) f3 / f1 0.332 0.25 0.45 (11) |f3 / f4| 0.829 0.7 1.2 (12) |f4 / f2| 0.023 0.01 0.15 (13) |f3 / f2| 0.019 0.01 0.17 (14) OAL / 2*IH 0.629 0.61 0.65 (20) |F1 / F2| 1.147 0.5 2 (21) DL1L2 / OAL 0.107 0.8 1.5

[0314] These aberration diagrams, MTF, and distortion grids are as Figures 18A to 18C shown, but as is clear from each aberration diagram, the performance is good.

[0315] [Example 10]

[0316] f = 1.8 mm, FNo. = 2.2, HFOV = 50.6°

[0317] The data for Example 10 is shown in Table 37.

[0318]

Table 37

[0319]

[0320] The data for the aspherical surface is as follows.

[0321]

Table 38

[0322] 1 2 4 5 Conic constant (k) 7.0026.E-01 1.8537.E-01 3.0089.E-01 2.5879.E-01 Fourth-order coefficient 1.4280.E+00 5.3947.E+00 3.3235.E+00 3.8641.E+00 Sixth-order coefficient -1.7239.E+00 1.9474.E+01 -1.5545.E+01 5.2712.E+00 Eighth-order coefficient 2.1658.E-02 -1.9266.E-01 -4.1974.E-01 -7.6809.E-02 Tenth-order coefficient -2.9991.E-01 -3.1097.E-01 -8.4512.E-01 -6.3457.E-01 Twelfth-order coefficient 4.2123.E-01 -7.5402.E-01 -1.7156.E+00 1.0108.E-01 Fourteenth-order coefficient -1.1759.E+00 1.0184.E+00 4.4171.E+00 8.2854.E-01 Sixteenth-order coefficient -4.3642.E+00 1.8680.E+00 -5.4722.E+00 7.7097.E-01

[0323] 6 7 8 9 Conic constant (k) -4.6602.E-01 -1.8786.E+00 6.3751.E-01 1.9028.E+00 Fourth-order coefficient -2.1458.E+00 -5.3230.E-01 1.5686.E+00 5.2553.E-01 Sixth-order coefficient -1.1934.E+00 -2.7822.E+00 4.2945.E-02 -3.7117.E+00 Eighth-order coefficient 1.6633.E-01 -3.5086.E-01 -4.0788.E-01 -2.0267.E-01 Tenth-order coefficient 1.2009.E-01 -2.4135.E-02 -1.7630.E-01 8.4541.E-02 Twelfth-order coefficient -1.3651.E-02 9.8332.E-02 4.1321.E-01 -1.1655.E-02 Fourteenth-order coefficient -8.4625.E-02 7.0693.E-02 -2.1588.E-01 -5.4956.E-03 Sixteenth-order coefficient -1.2567.E-02 5.5354.E-02 1.0574.E-02 6.5687.E-04

[0324] The parameter values for each condition are as follows.

[0325]

Table 39

[0326] Item Value f 1.79 Fno 2.24 OAL 2.85 IH 2.25 EfD1 1.15 Half FOV 50.62 EP 0.25 EXP -1.70 f1 3.51 f2 32.48 f3 1.19 f4 -1.40 N1 1.5365 N2 1.6328 N3 1.5092 N4 1.6328 F1 3.51 F2 3.05 DL1L2 0.289

[0327]

Table 40

[0328] Conditional expression Value Lower limit Upper limit (1) f / f1 0.511 0.45 0.7 (2) |f4 / f1| 0.399 0.3 0.5 (3) N1 < N4 Refer to Table 38 (4) N1 1.536 1.49 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.630 0.55 0.75 (7) OAL / EfD1 2.471 2.3 2.9 (8) EXP / IH -0.756 -0.9 -0.65 (9) |f1 / f2| 0.108 0.01 0.3 (10) f3 / f1 0.339 0.25 0.45 (11) |f3 / f4| 0.849 0.7 1.2 (12) |f4 / f2| 0.043 0.01 0.15 (13) |f3 / f2| 0.037 0.01 0.17 (14) OAL / 2*IH 0.632 0.61 0.65 (20) |F1 / F2| 1.153 0.5 2 (21) DL1L2 / OAL 0.101 0.8 1.5

[0329] These aberration diagrams, MTF, and distortion grids are as Figures 20A to 20C shown, but as is clear from each aberration diagram, the performance is good.

[0330] [Example 11]

[0331] f = 1.9 mm, FNo. = 2.2, HFOV = 50.6°

[0332] The data of Example 11 are shown in Table 41.

[0333]

Table 41

[0334]

[0335] The data of the aspherical surface are as follows.

[0336]

Table 42

[0337] 1 2 4 5 Conic constant (k) 7.1258.E-01 1.8891.E-01 3.7315.E-01 3.5230.E-01 Fourth-order coefficient 1.4033.E+00 5.2936.E+00 2.6799.E+00 2.8385.E+00 Sixth-order coefficient -1.5258.E+00 2.5436.E+01 -2.0114.E+01 -1.1479.E+01 Eighth-order coefficient 2.4316.E-02 -1.8483.E-01 -4.2405.E-01 -1.1811.E-01 Tenth-order coefficient -2.9300.E-01 -2.6878.E-01 -8.4718.E-01 -6.6054.E-01 Twelfth-order coefficient 4.7156.E-01 -9.1997.E-01 -1.8542.E+00 1.3000.E-01 Fourteenth-order coefficient -1.0825.E+00 2.4125.E+00 4.3674.E+00 8.8705.E-01 Sixteenth-order coefficient -4.3646.E+00 1.8680.E+00 -5.4722.E+00 8.2283.E-01

[0338] 6 7 8 9 Conic constant (k) -4.4532.E-01 -1.8509.E+00 6.7785.E-01 1.9021.E+00 Fourth-order coefficient -2.2456.E+00 -5.4029.E-01 1.4752.E+00 5.2574.E-01 Sixth-order coefficient -1.1343.E+00 -2.9334.E+00 -5.3092.E-02 -3.7237.E+00 Eighth-order coefficient 1.6483.E-01 -3.5102.E-01 -4.3192.E-01 -2.0592.E-01 Tenth-order coefficient 1.2029.E-01 -3.4232.E-02 -1.8345.E-01 8.4067.E-02 Twelfth-order coefficient -2.0989.E-02 8.8713.E-02 4.1348.E-01 -1.1653.E-02 Fourteenth-order coefficient -1.0336.E-01 6.6237.E-02 -2.1525.E-01 -5.4319.E-03 Sixteenth-order coefficient -8.4514.E-03 4.8545.E-02 1.0812.E-02 6.6919.E-04

[0339] The parameter values of each condition are as follows.

[0340]

Table 43

[0341] Item Value f 1.85 Fno 2.24 OAL 2.89 IH 2.31 EfD1 1.17 Half FOV 50.62 EP 0.25 EXP -1.83 f1 3.59 f2 53.85 f3 1.20 f4 -1.46 N1 1.5163 N2 1.6328 N3 1.5092 N4 1.6328 F1 3.59 F2 3.10 DL1L2 0.306

[0342]

Table 44

[0343] Conditional expression Value Lower limit Upper limit (1) f / f1 0.515 0.45 0.7 (2) |f4 / f1| 0.407 0.3 0.5 (3) N1 < N4 Refer to Table 42 (4) N1 1.516 1.49 1.55 (5) N4 1.633 1.63 1.67 (6) f / OAL 0.639 0.55 0.75 (7) OAL / EfD1 2.478 2.3 2.9 (8) EXP / IH -0.796 -0.9 -0.65 (9) |f1 / f2| 0.067 0.01 0.3 (10) f3 / f1 0.334 0.25 0.45 (11) |f3 / f4| 0.822 0.7 1.2 (12) |f4 / f2| 0.027 0.01 0.15 (13) |f3 / f2| 0.022 0.01 0.17 (14) OAL / 2*IH 0.627 0.61 0.65 (20) |F1 / F2| 1.158 0.5 2 (21) DL1L2 / OAL 0.106 0.8 1.5

[0344] These aberration diagrams, MTF, and distortion grids are as Figures 22A to 22C shown, but as is clear from each aberration diagram, the performance is good.

[0345] As described above, as in Examples 1 to 10, Figures 2A to 2C , Figures 4A to 4C , Figures 6A to 6C , Figures 8A to 8C , Figures 10A to 10C , Figures 12A to 12C , Figures 14A to 14C , Figures 16A to 16C , Figures 18A to 18C , Figures 20A to 20C and Figures 22A to 22C shown, the photographing lens 100 of the present disclosure is bright, high-performance, and miniaturized (shortened in the optical axis direction), and the half field of view angle is realized to be approximately 50° by four lenses, and in addition, it is clearly suitable as a photographing device, particularly a photographing device for a laptop PC.

[0346] As described above, several embodiments of the present application have been described in detail with reference to the drawings, but these embodiments are examples, and the present invention can be implemented in other ways in which various modifications and improvements are made based on the knowledge of those skilled in the art, starting from the manner described in the disclosure column of the present invention.

Claims

1. A photographing lens, wherein: have: The first to fourth lenses are arranged in order from the object side; and an aperture stop disposed between the first lens and the second lens, The first lens is a positive lens with its convex surface facing the object side. The second lens is a positive lens or a negative lens having an inflection point on at least one surface and a small deviation ratio. The third lens is a positive lens having a convex surface facing the image plane and having an inflection point at the periphery of the lens. The fourth lens is a negative lens having a concave surface on the image side and an inflection point at the periphery. When the focal length of the first lens is set to f1, the focal length of the fourth lens is set to f4, and the focal length of the entire optical system is set to f, conditions (1) and (2) are satisfied, that is: 0.45<|f / f1|<0.70···(1) 0.30<|f4 / f1|<0.50···(2).

2. The imaging lens according to claim 1, wherein: When the refractive index of the material of the first lens with respect to the d-line is set to N1, and the refractive index of the material of the fourth lens with respect to the d-line is set to N4, condition (3) is satisfied, that is: N1<N4···(3).

3. The imaging lens according to claim 1, wherein: When the refractive index of the material of the first lens for the d-line is set to N1, condition (4) is satisfied, that is: 1.49<N1<1.55···(4)。 4. The imaging lens according to claim 1, wherein: When the refractive index of the material of the fourth lens for the d-line is set to N4, condition (5) is satisfied, that is: 1.63<N4<1.67···(5)。 5. The photographing lens according to claim 1, wherein: When the lens from the aperture stop to the object side is set as the first lens group G1, and the lens group from the aperture stop to the image side is set as G2, when the focal length of the first lens group G1 is set as F1, and the focal length of the second lens group G2 is set as F2, condition (20) is satisfied, that is: 0.5<|F1 / F2|<2.0···(20).

6. The photographing lens according to claim 1, wherein: When the lens interval of the aperture stop is set to DL1L2 and the total optical length is set to OAL, condition (21) is satisfied, that is: 0.8<DL1L2 / OAL<1.5···(21).

7. The photographing lens according to claim 1, wherein: When the focal length of the entire optical system is set to f and the total length of the optical system is set to OAL, condition (6) is satisfied, that is: 0.55<f / OAL<0.75···(6).

8. The photographing lens according to claim 1, wherein: When the total optical length is set to OAL and the optical effective diameter of the lens closest to the object is set to EfD1, condition (7) is satisfied, that is: 2.3<OAL / EfD1<2.9···(7).

9. The photographing lens according to claim 1, wherein: When the exit pupil position is set to EXP and the image height is set to IH, condition (8) is satisfied, that is: -0.90<EXP / IH<-0.65···(8).

10. The photographing lens according to claim 1, wherein: When the focal length of the first lens is set to f1 and the focal length of the second lens is set to f2, condition (9) is satisfied, that is: 0.01<|f1 / f2|<0.30···(9).

11. The photographing lens according to claim 1, wherein: When the focal length of the first lens is set to f1 and the focal length of the third lens is set to f3, condition (10) is satisfied, that is: 0.25<f3 / f1<0.45···(10).

12. The photographing lens according to claim 1, wherein: When the focal length of the third lens is set to f3 and the focal length of the fourth lens is set to f4, condition (11) is satisfied, that is: 0.7<|f3 / f4|<1.2···(11).

13. A photographing device, wherein: have: The imaging lens according to claim 1; and The single-body imaging element receives the image formed by the imaging lens and generates an imaging signal.

14. An information processing device, wherein: have: The photographing device according to claim 13; and The display unit displays an image corresponding to the imaging signal generated by the imaging device.

Citation Information

Patent Citations

  • Imaging lens

    JP2015106155A

  • Imaging lens

    JP2017513034A