USRE46735E1 - Optical imaging system - Google Patents

Optical imaging system Download PDF

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USRE46735E1
USRE46735E1 US14/153,710 US201414153710A USRE46735E US RE46735 E1 USRE46735 E1 US RE46735E1 US 201414153710 A US201414153710 A US 201414153710A US RE46735 E USRE46735 E US RE46735E
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lens
imaging system
optical imaging
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lens group
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US14/153,710
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Seong-Ha Park
Ki-Tae Kim
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Samsung Electronics Co Ltd
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Samsung Electronics Co Ltd
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    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B9/00Optical objectives characterised both by the number of the components and their arrangements according to their sign, i.e. + or -
    • G02B9/34Optical objectives characterised both by the number of the components and their arrangements according to their sign, i.e. + or - having four components only
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B13/00Optical objectives specially designed for the purposes specified below
    • G02B13/001Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras
    • G02B13/0015Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design
    • G02B13/002Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design having at least one aspherical surface
    • G02B13/004Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras characterised by the lens design having at least one aspherical surface having four lenses
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B13/00Optical objectives specially designed for the purposes specified below
    • G02B13/18Optical objectives specially designed for the purposes specified below with lenses having one or more non-spherical faces, e.g. for reducing geometrical aberration
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B5/00Optical elements other than lenses
    • G02B5/20Filters
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B9/00Optical objectives characterised both by the number of the components and their arrangements according to their sign, i.e. + or -
    • G02B9/34Optical objectives characterised both by the number of the components and their arrangements according to their sign, i.e. + or - having four components only
    • G02B9/36Optical objectives characterised both by the number of the components and their arrangements according to their sign, i.e. + or - having four components only arranged + -- +
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B30/00Camera modules comprising integrated lens units and imaging units, specially adapted for being embedded in other devices, e.g. mobile phones or vehicles

Definitions

  • the present invention generally relates to an optical system, and more particularly to an optical system including multiple lens groups having a reduced volume.
  • An optical imaging system includes imaging elements such as CCD imaging elements (charged coupled devices) or CMOS imaging elements (complimentary metal oxide semiconductors) and at least one lens group for use in various types of consumer products such as digital and monitoring cameras, personal computers, and the like.
  • imaging elements such as CCD imaging elements (charged coupled devices) or CMOS imaging elements (complimentary metal oxide semiconductors) and at least one lens group for use in various types of consumer products such as digital and monitoring cameras, personal computers, and the like.
  • the lens group typically includes at least one lens having undesirable aberration characteristics. These undesirable aberration characteristics are intrinsic to the lens and are generated due to the shape of the lens. The aberration characteristics can cause distortion of images in certain circumstances. Among the different type of aberrations, the spherical and coma aberrations, in particular, cannot be easily corrected and can cause image flares and other undesirable visual effects.
  • a lens group including an aspheric lens for correcting the aberrations, or a thin film filter or an optical filter having a sharp surface which can restrict a portion of the light.
  • the present invention has been made in view of the above-mentioned problems involved with the related art by providing an optical imaging system having a reduced volume and whose optical characteristics exhibit minimal deterioration over time.
  • One aspect of the present invention is to provide an optical imaging system including: a first lens group having a positive refractive power; a second lens group having a negative refractive power; a third lens group having a positive or negative power; and a fourth lens group having a positive or negative power.
  • FIGS. 1 to 14 are views illustrating optical imaging systems according to particular embodiments of the present invention.
  • FIG. 1 is a view for illustrating an optical system according to one embodiment of the present invention.
  • an optical imaging system 10 includes an image sensor S capable of photoelectric conversion, a first lens group G 1 , closest to a subject and having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, and a fourth lens group G 4 having a positive or negative refractive power.
  • the image sensor S is preferably embodied as a CCD or a CMOS imaging element, or the like.
  • Each of the first to fourth lens groups G 1 to G 4 can include an aspheric lens on at least one surface thereof.
  • the fourth lens group G 4 is located adjacently to the image sensor S, and a parallel flat glass LP can be disposed between the fourth lens group G 4 and the image sensor S.
  • the parallel flat glass LP is a thin film filter or an optical filter, and can function as an infrared absorption filter and the like.
  • the first lens group G 1 includes at least one lens of a positive refractive power, and the optical imaging system 10 satisfies formula (1).
  • f denotes the synthetic focus distance total focal length of the optical imaging system and f 1 denotes the focus distance focal length of the first lens group.
  • the second lens group G 2 includes at least one lens of a negative refractive power, and its focus distance focal length satisfies formula (2).
  • f denotes the synthetic focus distance total focal length of the optical imaging system and f 2 denotes the focus distance focal length of the second lens group.
  • the third lens group G 3 includes at least one lens of a positive or negative refractive power, and its focus distance focal length can be set according to formula (3).
  • f denotes the synthetic focus distance total focal length of the optical imaging system and f 3 denotes the focus distance focal length of the third lens group.
  • the fourth lens group G 4 includes at least one lens of a positive or negative refractive power, and its focus distance focal length can be set according to formula (4).
  • f denotes the synthetic focus distance total focal length of the optical imaging system and f 4 denotes the focus distance focal length of the second lens group.
  • the optical imaging system 10 satisfies formula (5).
  • f denotes the synthetic focus distance total focal length of the optical imaging system and TTL denotes the distance from an iris surface to an imaging surface.
  • the optical imaging system 10 satisfies formula (6).
  • the first and second lens groups G 1 and G 2 satisfy the optical axis direction size according to formula (6).
  • d 1 denotes a separated distance between the first lens group and the second lens group on the optical axis.
  • the third and fourth lens groups G 3 and G 4 satisfy the optical axis direction size according to formula (7).
  • d 3 denotes a separated distance between the third lens group and the fourth lens group on the optical axis.
  • the Abbe's numbers of the first and second lens groups G 1 and G 2 satisfy formula (8). 28.2 ⁇ 1 ⁇ 2 ⁇ 42.8 (8)
  • ⁇ 1 and ⁇ 2 denote Abbe's numbers representing the distribution dispersion characteristics of the first and second lens groups respectively.
  • the aspheric definition equation can be defined by formula (9) below.
  • x denotes the distance along the optical axis from the apex of the optical surface
  • y denotes the distance in the direction perpendicular to the optical axis
  • K denotes the conic coefficient
  • A, B, C, D and E denote the aspheric coefficients.
  • Tables 1 to 3 represent the curvatures at the lens surfaces, the distances between the lenses, and the thicknesses of the lenses of the optical imaging systems according to embodiments of the present invention.
  • the distances indicated in the aperture rows represent the distance from the stops in each embodiment to the first lens group or the incidence surface of the first lens. Further, the distances of the subject rows objects are the distances from the subjects objects to the optical systems of the corresponding embodiments, and approach infinity in the curvature.
  • the curvatures of the surfaces indicated in respective rows of Tables 1 to 3 represent the curvatures at the apices of the optical surfaces.
  • the second and third surfaces correspond to the surfaces of both the first lens of the first lens group, and the fourth and the fifth surfaces of the second lens.
  • the sixth and seventh surfaces correspond to the third lens, and the eighth and ninth surfaces correspond to the fourth lens.
  • the tenth and eleventh surfaces correspond to both surfaces of the thin film filter or the optical filter, and the upper image surface corresponds to the sensor.
  • Embodiment 6 Embodiment 7 Embodiment 8 Embodiment 9 Embodiment 10 Curvature Curvature Curvature Curvature Curvature Curvature radius radius radius radius (c r) Distance (c r) Distance (c r) Distance (c r) Distance (c r) Distance Subject ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ Object Aperture ⁇ 0.6476 ⁇ 0.3463 ⁇ 0.4555 ⁇ 0.030 ⁇ 0.112 Stop 2 nd 3.13902 1.4131 2.66332 1.5000 3.25081 0.8732 2.68778 1.151 2.32028 1.0409 surface 3 rd ⁇ 3.0951 0.1000 ⁇ 3.9930 0.1323 ⁇ 3.4043 0.1458 ⁇ 6.9943 0.100 ⁇ 6.2290 0.000 surface 4 th ⁇ 3.2023 0.3000 ⁇ 5.3522 0.6000 ⁇ 2.6909 0.3000 ⁇ 12.169 0.339 ⁇ 40.0905 0.600 surface 0.359 5 th
  • Embodiment 11 Embodiment 12
  • Embodiment 13 Embodiment 14 Curva- Curva- Curva- Curva- ture ture ture radius Dist- radius Dist- radius Dist- radius Dist- (c r) ance (c r) ance (c r) ance (c r) ance (c r) ance
  • the aspheric surfaces of the lenses constituting the optical imaging system according to the first embodiment are as presented in Table 4.
  • the spherical surfaces and other conditions are as indicated in Table 1.
  • the aspheric surfaces can be determined according to formula (9).
  • the optical imaging system 10 according to the first embodiment includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the stop is located on the incidence side of the optical imaging system 10 , and the introduced incident light is output to the first lens group G 1 .
  • the stop is used to regulate the amount of the light introduced into the optical imaging system 10 , and is separated from the first lens group G 1 by 0.097005 mm.
  • the first lens group G 1 includes a first lens L 1 which outputs the light introduced incident through the stop to the second lens group G 2 .
  • the first lens L 1 includes second and third surfaces R 1 and R 2 which are aspheric, formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the thickness of the first lens L 1 is 1.170132 mm. Note that the first surface designates the irisi stop.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.7552 and a distribution value dispersion constant of 27.53.
  • the second lens L 2 has fourth and fifth surfaces R 3 and R 4 which are aspheric. Referring to Table 1, the second lens group G 2 is separated from the first lens L 1 by 0.14 mm, and the center of the curvature is located on the optical axis.
  • the third lens group G 3 includes a third lens L 3 . Both surfaces R 5 and R 6 of the third lens L 3 are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 0.088064 mm, and has a thickness of 0.801423 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8.
  • the fourth lens group G 4 includes a fourth lens L 4 . Both surfaces R 7 and R 8 of the fourth lens L 4 are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.6 mm, and the thickness thereof is 0.3 mm.
  • the optical imaging system 20 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter (LP).
  • a first lens group G 1 having a positive refractive power
  • a second lens group G 2 having a negative refractive power
  • a third lens group G 3 having a positive or negative refractive power
  • a fourth lens group G 4 having a positive or negative refractive power
  • LP thin film filter or an optical filter
  • the first lens group G 1 includes a first lens L 1 , both surfaces R 1 and R 2 of which are aspheric.
  • the thickness of the first lens L 1 is 1.174399 mm.
  • the first lens L 1 is separated from the stop by 0.158423 mm.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.7552 and a distribution value dispersion constant of 27.53, and the second lens L 2 has fourth and fifth surfaces R 3 and R 4 which are aspheric. Referring to Table 1, the second lens L 2 is separated from the first lens L 1 by 0.05 mm, and has a thickness of 0.363658 mm.
  • the third lens group G 3 includes a third lens L 3 . Both surfaces R 5 and R 6 of the third lens L 3 are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 0.626369 mm, and has a thickness of 1.200 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8.
  • the fourth lens group G 4 includes a fourth lens L 4 . Both surfaces R 7 and R 8 of the fourth lens L 4 are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.3 mm.
  • the aspheric specifications of the first to fourth lenses according to the second embodiment can be calculated as shown in Table 5 according to formula (9).
  • the optical imaging system 30 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 , both surfaces R 1 and R 2 of which are aspheric. Referring to Table 1, the thickness of the first lens L 1 is 1.10000 mm. The first lens L 1 is separated from the stop by 0.18539 0.118 mm.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.7552 and a distribution value dispersion constant of 27.53.
  • the second lens L 2 has fourth and fifth surfaces R 3 and R 4 which are aspheric. Referring to Table 1, the second lens L 2 is separated from the first lens L 1 by 0.103084 mm, and the thickness thereof is 0.671321 mm.
  • the third lens group G 3 includes a third lens L 3 . Both surfaces R 5 and R 6 of the third lens L 3 are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 0.327722 mm, and has a thickness of 0.9 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.48749 and a distribution value dispersion constant of 70.4058.
  • the fourth lens group G 4 includes a fourth lens L 4 . Both surfaces R 7 and R 8 of the fourth lens L 4 are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.516799 and a distribution value dispersion constant of 56.3954.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 1.2 mm.
  • the aspheric specifications of the first to fourth lenses according to the third embodiment can be calculated as shown in Table 6 according to formula (9).
  • the optical imaging system 40 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 , both surfaces R 1 and R 2 of which are aspheric. Referring to Table 1, the thickness of the first lens L 1 is 1.16687 1.066 mm. The first lens L 1 is separated from the stop by 0.03 mm. The first lens L 1 is formed of a material having a refractive index of 1.531449 and a distribution value dispersion constant of 66.1381.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.671174 and a distribution value dispersion constant of 32.0197.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are spherical. Referring to Table 1, the second lens L 2 is separated from the first lens L 1 by 0.102841 mm, and the thickness thereof is 0.3 mm.
  • the third lens group G 3 includes a third lens L 3 . Both surfaces R 5 and R 6 of the third lens L 3 are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 0.746673 mm, and has a thickness of 0.9 0.797763 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.532928 and a distribution value dispersion constant of 66.015.
  • the fourth lens group G 4 includes a fourth lens L 4 . Eighth and ninth surfaces R 7 and R 8 of the fourth lens L 4 are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.545534 and a distribution value dispersion constant of 65.0098.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.420622 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the fourth embodiment can be calculated as shown in Table 7 according to formula (9).
  • the optical imaging system 50 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 in which both surfaces R 1 and R 2 are aspheric. Referring to Table 1, the thickness of the first lens L 1 is 1.5 mm. The first lens L 1 is separated from the stop by 0.059478 mm. The first lens L 1 is formed of a material having a refractive index of 1.533230 and a distribution value dispersion constant of 65.9899.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.755201 and a distribution value dispersion constant of 27.5795.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are spherical. Referring to Table 1, the second lens L 2 is separated from the first lens L 1 by 0.466939 mm, and the thickness thereof is 0.6 mm.
  • the third lens group G 3 includes a third lens L 3 .
  • the third lens L 3 includes sixth and seventh surfaces R 5 and R 6 which are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 1.020392 mm, and has a thickness of 1.5 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.526846 and a distribution value dispersion constant of 53.030473.
  • the fourth lens group G 4 includes a fourth lens L 4 .
  • the fourth lens L 4 includes eighth and ninth surfaces R 7 and R 8 which are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.537416 and a distribution value dispersion constant of 50.1447.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.533392 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the fifth embodiment can be calculated as shown in Table 8 according to formula (9).
  • the optical imaging system 60 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 in which both surfaces R 1 and R 2 are aspheric. Referring to Table 2, the thickness of the first lens L 1 is 1.413171 mm. The first lens L 1 is separated from the stop by 0.647673 mm. The first lens L 1 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.755201 and a distribution value dispersion constant of 27.5795.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are spherical. Referring to Table 2, the second lens L 2 is separated from the first lens L 1 by 0.1 mm.
  • the second lens L 2 has a thickness of 0.6 0.3 mm.
  • the third lens group G 3 includes a third lens L 3 .
  • the third lens L 3 includes sixth and seventh surfaces R 5 and R 6 which are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 2.126507 mm, and has a thickness of 0.8 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.675133 and a distribution value dispersion constant of 49.8062.
  • the fourth lens group G 4 includes a fourth lens L 4 .
  • the fourth lens L 4 includes eighth and ninth surfaces R 7 and R 8 which are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs the light passed through the fourth lens L 4 , with the light partially restricted.
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.657592 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the sixth embodiment can be calculated as shown in Table 9 according to formula (9).
  • the optical imaging system 70 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 .
  • the second and third surfaces R 1 and R 2 of the first lens L 1 are aspheric. Referring to Table 2, the thickness of the first lens L 1 is 1.5 mm.
  • the first lens L 1 is separated from the stop by 0.346363 mm.
  • the first lens L 1 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.755201 and a distribution value dispersion constant of 27.5795.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are spherical. Referring to Table 2, the second lens L 2 is separated from the first lens L 1 by 0.132395 mm.
  • the second lens has a thickness of 0.6 mm.
  • the third lens group G 3 includes a third lens L 3 .
  • the third lens L 3 includes sixth and seventh surfaces R 5 and R 6 which are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 1.082514 mm, and has a thickness of 0.8 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8.
  • the fourth lens group G 4 includes a fourth lens L 4 .
  • the fourth lens L 4 includes eighth and ninth surfaces R 7 and R 8 which are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.581283 and a distribution value dispersion constant of 62.5343.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.568307 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the seventh preferred embodiment can be calculated as shown in Table 10 according to formula (9).
  • the optical imaging system 80 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 .
  • the second and third surfaces R 1 and R 2 of the first lens L 1 are aspheric. Referring to Table 2, the thickness of the first lens L 1 is 0.873219 mm.
  • the first lens L 1 is separated from the stop by 0.455563 mm.
  • the first lens L 1 is formed of a material having a refractive index of 1.618194 and a distribution value dispersion constant of 60.4374.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.755201 and a distribution value dispersion constant of 27.5795.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are spherical. Referring to Table 2, the second lens L 2 is separated from the first lens L 1 by 0.145862 mm. The second lens has a thickness of 0.3 mm.
  • the third lens group G 3 includes a third lens L 3 .
  • the third lens L 3 includes sixth and seventh surfaces R 5 and R 6 which are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 0.162161 mm, and has a thickness of 1.936693 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.62041 and a distribution value dispersion constant of 60.3236.
  • the fourth lens group G 4 includes a fourth lens L 4 .
  • the fourth lens L 4 includes eighth and ninth surfaces R 7 and R 8 which are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.755201 and a distribution value dispersion constant of 27.5795.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light passed through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.75533392 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the fifth embodiment can be calculated as shown in Table 11 according to formula (9).
  • the optical imaging system 90 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 .
  • the second and third surfaces R 1 and R 2 are aspheric. Referring to Table 2, the thickness of the first lens L 1 is 1.151183 mm.
  • the first lens L 1 is separated from the stop by 0.03 mm.
  • the first lens L 1 is formed of a material having a refractive index of 1.544806 and a distribution value dispersion constant of 65.0658.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.730603 and a distribution value dispersion constant of 29.7565.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are spherical. Referring to Table 2, the second lens L 2 is separated from the first lens L 1 by 0.1 mm. The second lens has a thickness of 0.359346 mm.
  • the third lens group G 3 includes a third lens L 3 .
  • the third lens L 3 includes sixth and seventh surfaces R 5 and R 6 which are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 2.268589 mm, and has a thickness of 0.958835 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.581703 and a distribution value dispersion constant of 41.1859.
  • the fourth lens group G 4 includes a fourth lens L 4 .
  • the fourth lens L 4 includes eighth and ninth surfaces R 7 and R 8 which are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.590309 and a distribution value dispersion constant of 61.9836.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.635425 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the ninth embodiment can be calculated as shown in Table 12 according to formula (9).
  • the optical imaging system 100 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 .
  • the second and third surfaces R 1 and R 2 of the first lens are aspheric. Referring to Table 2, the thickness of the first lens L 1 is 1.040923 mm.
  • the first lens L 1 is separated from the stop by 0.112233 mm.
  • the first lens L 1 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.75520 and a distribution value dispersion constant of 27.5305.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are spherical. Referring to Table 2, the center portion of the second lens L 2 makes contact with the center of the first lens L 1 , and the thickness thereof is 0.6 mm.
  • the third lens group G 3 includes a third lens L 3 .
  • the third lens L 3 includes sixth and seventh surfaces R 5 and R 6 which are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 0.75876 mm, and has a thickness of 0.8 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the fourth lens group G 4 includes a fourth lens L 4 .
  • the fourth lens L 4 includes eighth and ninth surfaces R 7 and R 8 which are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.6 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the tenth embodiment can be calculated as shown in Table 3 according to formula (9).
  • the optical imaging system 50 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 .
  • the second and third surfaces R 1 and R 2 of the first lens L 1 are aspheric. Referring to Table 3, the thickness of the first lens L 1 is 1.4903 0.4903 mm.
  • the first lens L 1 is separated from the stop by 0.122343 mm.
  • the first lens L 1 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.75520 and a distribution value dispersion constant of 27.5305.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are aspheric. Referring to Table 3, the second lens L 2 is separated from the first lens L 1 by 2.001108 mm.
  • the second lens has a thickness of 0.3 mm.
  • the third lens group G 3 includes a third lens L 3 .
  • the third lens L 3 includes sixth and seventh surfaces R 5 and R 6 which are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 0.672147 mm, and has a thickness of 1.123412 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the fourth lens group G 4 includes a fourth lens L 4 .
  • the fourth lens L 4 includes eighth and ninth surfaces R 7 and R 8 which are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.53333 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the eleventh embodiment can be calculated as shown in Table 14 according to formula (9).
  • the optical imaging system 120 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 .
  • the second and third surfaces R 1 and R 2 of the first lens L 1 are aspheric. Referring to Table 3, the thickness of the first lens L 1 is 1.219838 mm.
  • the first lens L 1 is separated from the stop by 0.172863 mm.
  • the first lens L 1 is formed of a material having a refractive index of 1.532889 and a distribution value dispersion constant of 66.0182.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.75520 and a distribution value dispersion constant of 27.5795.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are spherical. Referring to Table 3, the second lens L 2 is separated from the first lens L 1 by 0.0.159417 0.159417 mm.
  • the second lens has a thickness of 0.427352 mm.
  • the third lens group G 3 includes a third lens L 3 .
  • the third lens L 3 includes sixth and seventh surfaces R 5 and R 6 which are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 0.742239 mm, and has a thickness of 0.8 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.5296 and a distribution value dispersion constant of 55.8.
  • the fourth lens group G 4 includes a fourth lens L 4 .
  • the fourth lens L 4 includes eighth and ninth surfaces R 7 and R 8 which are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.7 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the twelfth embodiment can be calculated as shown in Table 15 according to formula (9).
  • the optical imaging system 130 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 .
  • the second and third surfaces R 1 and R 2 of the first lens L 1 are aspheric. Referring to Table 1, the thickness of the first lens L 1 is 0.812558 mm. The first lens L 1 is separated from the stop by 0.03 mm.
  • the first lens L 1 is formed of a material having a refractive index of 1.602778 and a distribution value dispersion constant of 61.2648.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.742011 and a distribution value dispersion constant of 28.1334.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are spherical. Referring to Table 3, the second lens L 2 is separated from the first lens L 1 by 0.1 mm.
  • the second lens L 2 has a thickness of 0.3 mm.
  • the third lens group G 3 includes a third lens L 3 .
  • the third lens L 3 includes sixth and seventh surfaces R 5 and R 6 which are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 0.556157 mm, and has a thickness of 0.8 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.743972 and a distribution value dispersion constant of 44.8504.
  • the fourth lens group G 4 includes a fourth lens L 4 .
  • the fourth lens L 4 includes eighth and ninth surfaces R 7 and R 8 which are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.719343 and a distribution value dispersion constant of 29.1913.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.4 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the thirteenth embodiment can be calculated as shown in Table 16 according to formula (9).
  • the optical imaging system 140 includes a first lens group G 1 having a positive refractive power, a second lens group G 2 having a negative refractive power, a third lens group G 3 having a positive or negative refractive power, a fourth lens group G 4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
  • the first lens group G 1 includes a first lens L 1 .
  • the second and third surfaces R 1 and R 2 of the first lens L 1 are aspheric. Referring to Table 3, the thickness of the first lens L 1 is 1.1 mm.
  • the first lens L 1 is separated from the stop by 0.480264 mm.
  • the first lens L 1 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the second lens group G 2 includes a second lens L 2 having a refractive index of 1.75520 and a distribution value dispersion constant of 27.5795.
  • the fourth and fifth surfaces R 3 and R 4 of the second lens L 2 are spherical. Referring to Table 3, the second lens L 2 is separated from the first lens L 1 by 0.1 mm.
  • the second lens has a thickness of 0.1 0.5 mm.
  • the third lens group G 3 includes a third lens L 3 .
  • the third lens L 3 includes sixth and seventh surfaces R 5 and R 6 which are aspheric.
  • the third lens L 3 is separated from the second lens L 2 by 2.235814 mm, and has a thickness of 0.5 0.54408 mm.
  • the third lens L 3 is formed of a material having a refractive index of 1.675133 and a distribution value dispersion constant of 40.8062.
  • the fourth lens group G 4 includes a fourth lens L 4 .
  • the fourth lens L 4 includes eighth and ninth surfaces R 7 and R 8 which are aspheric.
  • the fourth lens L 4 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
  • the thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L 4 .
  • the thin film filter or the optical filter LP is separated from the fourth lens L 4 by 0.63848 mm.
  • the aspheric specifications of the first, third, and fourth lenses according to the fourteenth embodiment can be calculated as shown in Table 17 according to formula (9).
  • the optical imaging system of the present invention reduces the volume and minimizes the deterioration of the optical characteristics, such as flares, with a high resolution.

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Abstract

An optical imaging system is provided comprising a first lens group having a positive refractive power; a second lens group having a negative refractive power; a third lens group having a positive or negative power; and a fourth lens group having a positive or negative power.

Description

CLAIM OF PRIORITYCROSS-REFERENCE TO RELATED APPLICATIONS
Notice: More than one reissue application has been filed for the reissue of U.S. Pat. No. 7,466,497. The reissue applications are application Ser. No. 12/970,720 (a reissue application of U.S. Pat. No. 7,466,497, reissued as U.S. Pat. No. Re. 44,773), Ser. No. 14/153,566 (a divisional reissue of Ser. No. 12/970,720), and Ser. No. 14/153,710 (this application, a continuation reissue of Ser. No. 12/970,720), all of which are reissues of U.S. Pat. No. 7,466,497.
This application is a continuation reissue application of U.S. patent application Ser. No. 12/970,720, filed Dec. 16, 2010, which is an application for reissue of U.S. Pat. No. 7,466,497, the contents of which are incorporated herein by reference.
This application claims priority to an application entitled “Optical Imaging System,” filed with the Korean Intellectual Property Office on Jul. 7, 2005 and assigned Serial No. 2005-61174, the contents of which are incorporated herein by reference.
BACKGROUND OF THE INVENTION
1. Field of the Invention
The present invention generally relates to an optical system, and more particularly to an optical system including multiple lens groups having a reduced volume.
2. Description of the Related Art
An optical imaging system includes imaging elements such as CCD imaging elements (charged coupled devices) or CMOS imaging elements (complimentary metal oxide semiconductors) and at least one lens group for use in various types of consumer products such as digital and monitoring cameras, personal computers, and the like.
The lens group typically includes at least one lens having undesirable aberration characteristics. These undesirable aberration characteristics are intrinsic to the lens and are generated due to the shape of the lens. The aberration characteristics can cause distortion of images in certain circumstances. Among the different type of aberrations, the spherical and coma aberrations, in particular, cannot be easily corrected and can cause image flares and other undesirable visual effects.
In order to solve problems caused by such lens aberrations, it has been previously proposed in the prior art to utilize a lens group including an aspheric lens for correcting the aberrations, or a thin film filter or an optical filter having a sharp surface which can restrict a portion of the light.
Further, recent developments in image devices for miniaturization and portability, for use in miniaturized optical imaging systems require mounting in the image devices.
Therefore, it would be desirable to have an improved optical imaging system that is miniaturized and whose optical characteristics exhibit minimal deterioration over time.
SUMMARY OF THE INVENTION
Accordingly, the present invention has been made in view of the above-mentioned problems involved with the related art by providing an optical imaging system having a reduced volume and whose optical characteristics exhibit minimal deterioration over time.
One aspect of the present invention is to provide an optical imaging system including: a first lens group having a positive refractive power; a second lens group having a negative refractive power; a third lens group having a positive or negative power; and a fourth lens group having a positive or negative power.
BRIEF DESCRIPTION OF THE DRAWINGS
FIGS. 1 to 14 are views illustrating optical imaging systems according to particular embodiments of the present invention.
DETAILED DESCRIPTION
Hereinafter, embodiments of the present invention will be described with reference to the accompanying drawings. In the following description of the present invention, a detailed description of known functions and configurations incorporated herein is omitted to avoid making the subject matter of the present invention unclear.
FIG. 1 is a view for illustrating an optical system according to one embodiment of the present invention. Referring to FIG. 1, an optical imaging system 10, according to the present embodiment includes an image sensor S capable of photoelectric conversion, a first lens group G1, closest to a subject and having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, and a fourth lens group G4 having a positive or negative refractive power. The image sensor S is preferably embodied as a CCD or a CMOS imaging element, or the like.
Each of the first to fourth lens groups G1 to G4 can include an aspheric lens on at least one surface thereof. The fourth lens group G4 is located adjacently to the image sensor S, and a parallel flat glass LP can be disposed between the fourth lens group G4 and the image sensor S. The parallel flat glass LP is a thin film filter or an optical filter, and can function as an infrared absorption filter and the like.
The following formulas (1) to (5) illustrate the relationship between the focus distances focal lengths of the various lens groups G1 to G4 and the focus distance focal length of the optical imaging system 10.
The first lens group G1 includes at least one lens of a positive refractive power, and the optical imaging system 10 satisfies formula (1).
0.3 < f 1 f < 3.1 ( 1 )
In formula (1), f denotes the synthetic focus distance total focal length of the optical imaging system and f1 denotes the focus distance focal length of the first lens group.
The second lens group G2 includes at least one lens of a negative refractive power, and its focus distance focal length satisfies formula (2).
0.3 < f 2 f < 8.99 ( 2 )
In formula (2), f denotes the synthetic focus distance total focal length of the optical imaging system and f2 denotes the focus distance focal length of the second lens group.
The third lens group G3 includes at least one lens of a positive or negative refractive power, and its focus distance focal length can be set according to formula (3).
0.19 < f 3 f < ( 3 )
In formula (3), f denotes the synthetic focus distance total focal length of the optical imaging system and f3 denotes the focus distance focal length of the third lens group.
The fourth lens group G4 includes at least one lens of a positive or negative refractive power, and its focus distance focal length can be set according to formula (4).
0.15 < f 4 f < ( 4 )
In formula (4), f denotes the synthetic focus distance total focal length of the optical imaging system and f4 denotes the focus distance focal length of the second lens group.
The optical imaging system 10 satisfies formula (5).
0.45 < f TTL < 1.01 ( 5 )
In formula (5), f denotes the synthetic focus distance total focal length of the optical imaging system and TTL denotes the distance from an iris surface to an imaging surface.
The optical imaging system 10 satisfies formula (6). The first and second lens groups G1 and G2 satisfy the optical axis direction size according to formula (6).
0 < d 1 TTL < 0.26 ( 6 )
In formula (6), d1 denotes a separated distance between the first lens group and the second lens group on the optical axis.
The third and fourth lens groups G3 and G4 satisfy the optical axis direction size according to formula (7).
0 < d 3 TTL < 0.40 ( 7 )
In formula (7), d3 denotes a separated distance between the third lens group and the fourth lens group on the optical axis.
The Abbe's numbers of the first and second lens groups G1 and G2 satisfy formula (8).
28.2<ν1−ν2<42.8   (8)
In formula (8), ν1 and ν2 denote Abbe's numbers representing the distribution dispersion characteristics of the first and second lens groups respectively.
The aspheric definition equation can be defined by formula (9) below.
x = c 2 y 2 1 + 1 - ( K + 1 ) c 2 y 2 + Ay 2 + By 6 + Cy 8 + Dy 10 + Ey 12 ( 9 )
In formula (9), x denotes the distance along the optical axis from the apex of the optical surface, y denotes the distance in the direction perpendicular to the optical axis, c denotes the curvature at the apex of the optical surface (the inverse of a curvature radius, c=1/r), K denotes the conic coefficient, and A, B, C, D and E denote the aspheric coefficients.
The following Tables 1 to 3 represent the curvatures at the lens surfaces, the distances between the lenses, and the thicknesses of the lenses of the optical imaging systems according to embodiments of the present invention.
The distances indicated in the aperture rows represent the distance from the stops in each embodiment to the first lens group or the incidence surface of the first lens. Further, the distances of the subject rows objects are the distances from the subjects objects to the optical systems of the corresponding embodiments, and approach infinity in the curvature.
Further, the curvatures of the surfaces indicated in respective rows of Tables 1 to 3 represent the curvatures at the apices of the optical surfaces. In Tables 1 to 3, the second and third surfaces correspond to the surfaces of both the first lens of the first lens group, and the fourth and the fifth surfaces of the second lens. The sixth and seventh surfaces correspond to the third lens, and the eighth and ninth surfaces correspond to the fourth lens. The tenth and eleventh surfaces correspond to both surfaces of the thin film filter or the optical filter, and the upper image surface corresponds to the sensor.
TABLE 1
Embodiment 1 Embodiment 2 Embodiment 3 Embodiment 4 Embodiment 5
Curvature Curvature Curvature Curvature Curvature
radius radius radius radius radius
(c r) Distance (c r) Distance (c r) Distance (c r) Distance (c r) Distance
Subject
Object
Aperture 0.097 0.158 0.118 0.030 0.0594
Stop
2;R1 2.308 1.17 1.90143 1.174 3.27233 1.100 2.31076 1.066 2.9744 1.500
3;R2 −6.369 0.14 −1.20746 0.050 4.67332 0.103 −7.4386 0.10 −8.7847 0.4669
4;R3 −396.532 0.5357 −1.74939 0.363658 3.28408 0.671321 13.09940 0.300 19.62274 0.6000
5;R4 3.85393 0.8800640 4.33678 0.626369 2.76273 0.32772 3.44803 0.74667 3.68254 1.020392
6;R5 −2.81024 0.801423 −2.16510 1.200 −9.54821 0.900 −2.37523 0.797763 49.3243 1.500
7;R6 −1.30844 0.108171 −1.54462 0.959357 −1.66438 0.035965 −1.17766 0.061159 −0.6061 0.3000
8;R7 2.78412 0.798390 22.78452 0.643246 2.38024 0.750438 2.7701 0.813576 −0.9404 0.8410
9;R8 1.10058 0.6 2.80755 0.300 1.31748 1.200 1.10025 0.420 1.3115 0.5333
10th 0.3 0.300 0.345836 0.300 0.400
surface
11th 0.594705 0.78896 1.808969 0.729 0.552
surface
Upper −0.004867 0.060517 −0.024762 −0.001979 −0.0229
Image
surface
TABLE 2
Embodiment 6 Embodiment 7 Embodiment 8 Embodiment 9 Embodiment 10
Curvature Curvature Curvature Curvature Curvature
radius radius radius radius radius
(c r) Distance (c r) Distance (c r) Distance (c r) Distance (c r) Distance
Subject
Object
Aperture 0.6476 0.3463 0.4555 0.030 0.112
Stop
2nd 3.13902 1.4131 2.66332 1.5000 3.25081 0.8732 2.68778 1.151 2.32028 1.0409
surface
3rd −3.0951 0.1000 −3.9930 0.1323 −3.4043 0.1458 −6.9943 0.100 −6.2290 0.000
surface
4th −3.2023 0.3000 −5.3522 0.6000 −2.6909 0.3000 −12.169 0.339 −40.0905 0.600
surface 0.359
5th −17.430 2.1265 8.06170 1.0825 17.0230 0.1621 8.28938 2.268 4.30201 0.758760
surface
6th −2.5800 0.8000 −1.9343 0.8000 −13.170 1.9366 −3.1380 0.958 −2.3804 0.800
surface
7th −2.9025 0.0300 −1.6944 0.0300 −1.0714 0.0300 −2.2201 0.571 −1.18271 0.050
surface
8th 1.6766 1.0510 1.43882 0.8278 2.07137 0.5406 −46.094 0.439512 2.97821 0.759082
surface
9th 1.280758 0.6575 1.13450 0.5683 1.00140 0.7500 3.15688 0.635425 1.14396 0.60000
surface
10th 0.3999 0.3384 0.3999 0.400 0.300
surface
11th 0.5012 1.0033 0.3940 1.087873 1.15
surface
Upper −0.001 −0.0033 0.0115 −0.0026 +0.001717
Image
surface
TABLE 3
Embodiment 11 Embodiment 12 Embodiment 13 Embodiment 14
Curva- Curva- Curva- Curva-
ture ture ture ture
radius Dist- radius Dist- radius Dist- radius Dist-
(c r) ance (c r) ance (c r) ance (c r) ance
Subject
Object
Aperture 0.122343 0.172863 0.0300 0.480264
Stop
2nd surface 3.87998 0.490300 2.31854 1.219838 4.41591 0.81255 3.01153 1.10000
3rd surface −20.7340 2.001108 −6.32101 0.159417 −5.0714 0.1000 −3.45345 0.10000
4th surface 7.75795 0.300000 −302.670 0.427352 −4.568 0.3000 −3.57593 0.50000
5th surface 3.60180 0.672147 3.93461 0.742239 17.81786 0.55615 −25.0277 2.23581
6th surface −5.48009 1.123412 −2.26332 0.80000 −10.2402 0.8000 −2.62654 0.54408
7th surface −1.75190 0.03000 −1.16737 0.000 −3.2556 2.9643 −2.8477 0.08336
8th surface 4.24622 1.243467 2.65978 0.796021 6.79551 0.7000 1.58235 0.88966
9th surface 1.69995 0.53333 1.10575 0.70000 2.49781 0.4000 1.22608 0.63848
10th 0.399997 0.3000 0.4000 0.39999
surface
11th 0.85132 0.69052 0.3855 0.60000
surface
Upper −0.0126 0.005756 −0.0054 −0.00001
Image
surface
Embodiment 1
The aspheric surfaces of the lenses constituting the optical imaging system according to the first embodiment are as presented in Table 4. The spherical surfaces and other conditions are as indicated in Table 1. The aspheric surfaces can be determined according to formula (9). The optical imaging system 10 according to the first embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The stop is located on the incidence side of the optical imaging system 10, and the introduced incident light is output to the first lens group G1. The stop is used to regulate the amount of the light introduced into the optical imaging system 10, and is separated from the first lens group G1 by 0.097005 mm.
The first lens group G1 includes a first lens L1 which outputs the light introduced incident through the stop to the second lens group G2. The first lens L1 includes second and third surfaces R1 and R2 which are aspheric, formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8. The thickness of the first lens L1 is 1.170132 mm. Note that the first surface designates the irisi stop.
The second lens group G2 includes a second lens L2 having a refractive index of 1.7552 and a distribution value dispersion constant of 27.53. The second lens L2 has fourth and fifth surfaces R3 and R4 which are aspheric. Referring to Table 1, the second lens group G2 is separated from the first lens L1 by 0.14 mm, and the center of the curvature is located on the optical axis.
The third lens group G3 includes a third lens L3. Both surfaces R5 and R6 of the third lens L3 are aspheric. The third lens L3 is separated from the second lens L2 by 0.088064 mm, and has a thickness of 0.801423 mm. The third lens L3 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8.
The fourth lens group G4 includes a fourth lens L4. Both surfaces R7 and R8 of the fourth lens L4 are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.6 mm, and the thickness thereof is 0.3 mm.
TABLE 4
K A B C D E
2(R1) −0.293462 −0.500119E−02 0.174440E−01 −0.454965E−01 0.46924E−01 −0.195854E−01
3(R2) −9.260888 −0.800894E−02 −0.853100E−02 −0.490518E−02 −0.122591E−02 0.122831E−03
4(R3) 106224.0635 −0.120921E−01 −0.705929E−02 −0.207145E−02 −0.161995E−03 −0.210957E−03
5(R4) 0.365689 0.749905E−03 0.131150E−02 0.778014E−04 −0.121719E−03 0.572661E−03
6(R5) −24.431171 −0.672890E−01 0.18948E−01 0.961734E−02 −0.435003E−02 0.806518E−03
7(R6) −2.571360 −0.335648E−01 −0.109854E−01 0.181423E−01 −0.489429E−02 0.747733E−03
8(R7) −17.862211 −0.795409E−01 0.310568E−01 −0.553846E−02 0.730076E−04 0.544935E−04
9(R8) −4.629831 −0.533642E−01 0.17364E−01 −0.392400E−02 0.440467E−03 −0.212501E−04
Embodiment 2
The optical imaging system 20 according to the second embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter (LP).
The first lens group G1 includes a first lens L1, both surfaces R1 and R2 of which are aspheric. The thickness of the first lens L1 is 1.174399 mm. The first lens L1 is separated from the stop by 0.158423 mm.
The second lens group G2 includes a second lens L2 having a refractive index of 1.7552 and a distribution value dispersion constant of 27.53, and the second lens L2 has fourth and fifth surfaces R3 and R4 which are aspheric. Referring to Table 1, the second lens L2 is separated from the first lens L1 by 0.05 mm, and has a thickness of 0.363658 mm.
The third lens group G3 includes a third lens L3. Both surfaces R5 and R6 of the third lens L3 are aspheric. The third lens L3 is separated from the second lens L2 by 0.626369 mm, and has a thickness of 1.200 mm. The third lens L3 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8.
The fourth lens group G4 includes a fourth lens L4. Both surfaces R7 and R8 of the fourth lens L4 are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.3 mm.
The aspheric specifications of the first to fourth lenses according to the second embodiment can be calculated as shown in Table 5 according to formula (9).
TABLE 5
K A B C D E
2(R1) −0.257713 −0.515708E−02 0.209747E−01 −0.505970E−01 0.447308E−01 −0.188477E−01
3(R2) −18.708087 −0.1032054E−01 −0.105518E−01 −0.865314E−02 −0.272928E−02 0.123342E−03
4(R3) −43.346401 −0.181606E−01 −0.384568E−02 0.397337E−03 −0.676785E−03 −0.185398E−02
5(R4) −0.927369 −0.184534E−02 0.328550E−01 0.145702E−01 −0.330705E−02 0.451156E−03
6(R5) 1.000662 −0.114554E+00 0.213009E−01 0.28671E−01 0.193745E−02 −0.723361E−02
7(R6) −1.421093 −0.372122E−01 −0.953273E−02 0.172586E−01 −0.507483E−02 0.456643E−03
8(R7) −2680755.274 −0.776437E−01 0.326426E−01 −0.516378E−02 0.139662E−03 0.354080E−05
9(R8) −8.098312 −0.608029E−01 0.173038E−01 −0.354982E−02 0.459123E−03 −0.308217E−04
Embodiment 3
The optical imaging system 30 according to the third embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1, both surfaces R1 and R2 of which are aspheric. Referring to Table 1, the thickness of the first lens L1 is 1.10000 mm. The first lens L1 is separated from the stop by 0.18539 0.118 mm.
The second lens group G2 includes a second lens L2 having a refractive index of 1.7552 and a distribution value dispersion constant of 27.53. The second lens L2 has fourth and fifth surfaces R3 and R4 which are aspheric. Referring to Table 1, the second lens L2 is separated from the first lens L1 by 0.103084 mm, and the thickness thereof is 0.671321 mm.
The third lens group G3 includes a third lens L3. Both surfaces R5 and R6 of the third lens L3 are aspheric. The third lens L3 is separated from the second lens L2 by 0.327722 mm, and has a thickness of 0.9 mm. The third lens L3 is formed of a material having a refractive index of 1.48749 and a distribution value dispersion constant of 70.4058.
The fourth lens group G4 includes a fourth lens L4. Both surfaces R7 and R8 of the fourth lens L4 are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.516799 and a distribution value dispersion constant of 56.3954. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 1.2 mm.
The aspheric specifications of the first to fourth lenses according to the third embodiment can be calculated as shown in Table 6 according to formula (9).
TABLE 6
K A B C D E
2(R1) −1.835982 −0.540163E−02 0.375499E−02 −0.142352E−01 0.131732E−01 −0.519886E−02
3(R2) −41.048843 −0.229191E−02 −0.938832E−02 0.209185E−02 0.433396E−02 −0.111937E−02
4(R3) −11.973390 −0.112168E−01 −0.268986E−02 −0.187660E−03 0.394245E−03 −0.289163E−03
5(R4) −1.905279 −0.658295E−02 0.186594E−03 −0.748272E−03 −0.467662E−03 0.229792E−04
6(R5) −276.330987 −0.708063E−2 0.914221E−02 0.288806E−02 −0.131006E−02 −0.158700E−03
7(R6) −3.139053 −0.110843E−01 −0.336114E−02 0.786618E−02 −0.901802E−03 0.284397E−03
8(R7) −1.570846 −0.495767E−01 0.157197E−01 −0.238177E−02 0.155217E−04 0.480583E−04
9(R8) −3.484978 −0.155739E−01 0.599301E−01 −0.140844E−02 0.125464E−03 0.154242E−04
Embodiment 4
The optical imaging system 40 according to the fourth embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1, both surfaces R1 and R2 of which are aspheric. Referring to Table 1, the thickness of the first lens L1 is 1.16687 1.066 mm. The first lens L1 is separated from the stop by 0.03 mm. The first lens L1 is formed of a material having a refractive index of 1.531449 and a distribution value dispersion constant of 66.1381.
The second lens group G2 includes a second lens L2 having a refractive index of 1.671174 and a distribution value dispersion constant of 32.0197. The fourth and fifth surfaces R3 and R4 of the second lens L2 are spherical. Referring to Table 1, the second lens L2 is separated from the first lens L1 by 0.102841 mm, and the thickness thereof is 0.3 mm.
The third lens group G3 includes a third lens L3. Both surfaces R5 and R6 of the third lens L3 are aspheric. The third lens L3 is separated from the second lens L2 by 0.746673 mm, and has a thickness of 0.9 0.797763 mm. The third lens L3 is formed of a material having a refractive index of 1.532928 and a distribution value dispersion constant of 66.015.
The fourth lens group G4 includes a fourth lens L4. Eighth and ninth surfaces R7 and R8 of the fourth lens L4 are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.545534 and a distribution value dispersion constant of 65.0098. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.420622 mm.
The aspheric specifications of the first, third, and fourth lenses according to the fourth embodiment can be calculated as shown in Table 7 according to formula (9).
TABLE 7
K A B C D E
2(R1) −0.414786 −0.681554E−02 0.202808E−01 −0.458051E−01 0.486110E−01 −0.192443E−01
3(R2) −47.977483 0.753038E−03 −0.494574E−03 −0.938500E−03 −0.477371E−03 0.427775E−03
4(R3)
5(R4)
6(R5) −15.896356 −0.668718E−1 0.195572E−01 0.949661E−02 −0.450552E−02 0.799452E−03
7(R6) −2.447435 −0.355564E−01 −0.106736E−01 0.187415E−01 −0.453123E−02 0.913004E−03
8(R7) −13.319650 −0.816238E−01 0.306218E−01 −0.557765E−02 0.732077E−04 0.574664E−04
9(R8) −4.692781 −0.568388E−01 0.179127E−01 −0.392127E−02 0.437571E−03 −0.21894E−04
Embodiment 5
The optical imaging system 50 according to the fifth embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1 in which both surfaces R1 and R2 are aspheric. Referring to Table 1, the thickness of the first lens L1 is 1.5 mm. The first lens L1 is separated from the stop by 0.059478 mm. The first lens L1 is formed of a material having a refractive index of 1.533230 and a distribution value dispersion constant of 65.9899.
The second lens group G2 includes a second lens L2 having a refractive index of 1.755201 and a distribution value dispersion constant of 27.5795. The fourth and fifth surfaces R3 and R4 of the second lens L2 are spherical. Referring to Table 1, the second lens L2 is separated from the first lens L1 by 0.466939 mm, and the thickness thereof is 0.6 mm.
The third lens group G3 includes a third lens L3. The third lens L3 includes sixth and seventh surfaces R5 and R6 which are aspheric. The third lens L3 is separated from the second lens L2 by 1.020392 mm, and has a thickness of 1.5 mm. The third lens L3 is formed of a material having a refractive index of 1.526846 and a distribution value dispersion constant of 53.030473.
The fourth lens group G4 includes a fourth lens L4. The fourth lens L4 includes eighth and ninth surfaces R7 and R8 which are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.537416 and a distribution value dispersion constant of 50.1447. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.533392 mm.
The aspheric specifications of the first, third, and fourth lenses according to the fifth embodiment can be calculated as shown in Table 8 according to formula (9).
TABLE 8
K A B C D E
2(R1) −0.394400 −0.272171E−02 0.416066E−02 −0.607051E−02 0.380128E−02 −0.863417E−03
3(R2) −24.090048 −0.412473E−03 0.555552E−03 −0.275809E−03 −0.176666E−03 0.988739E−04
4(R3)
5(R4)
6(R5) 276.291590 −0.271502E−1 0.329418E−02 0.106440E−02 −0.323744E−03 0.428169E−04
7(R6) −3.116597 −0.205921E−01 −0.130529E−02 0.278790E−02 −0.318606E−03 0.358108E−04
8(R7) −6.168567 −0.189375E−01 0.732132E−02 −0.780195E−03 0.685421E−05 0.328986E−05
9(R8) −15.211827 −0.200112E−01 0.342095E−02 −0.566744E−03 0.330318E−04 −0.670599E−06
Embodiment 6
The optical imaging system 60 according to the sixth embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1 in which both surfaces R1 and R2 are aspheric. Referring to Table 2, the thickness of the first lens L1 is 1.413171 mm. The first lens L1 is separated from the stop by 0.647673 mm. The first lens L1 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
The second lens group G2 includes a second lens L2 having a refractive index of 1.755201 and a distribution value dispersion constant of 27.5795. The fourth and fifth surfaces R3 and R4 of the second lens L2 are spherical. Referring to Table 2, the second lens L2 is separated from the first lens L1 by 0.1 mm. The second lens L2 has a thickness of 0.6 0.3 mm.
The third lens group G3 includes a third lens L3. The third lens L3 includes sixth and seventh surfaces R5 and R6 which are aspheric. The third lens L3 is separated from the second lens L2 by 2.126507 mm, and has a thickness of 0.8 mm. The third lens L3 is formed of a material having a refractive index of 1.675133 and a distribution value dispersion constant of 49.8062.
The fourth lens group G4 includes a fourth lens L4. The fourth lens L4 includes eighth and ninth surfaces R7 and R8 which are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs the light passed through the fourth lens L4, with the light partially restricted. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.657592 mm.
The aspheric specifications of the first, third, and fourth lenses according to the sixth embodiment can be calculated as shown in Table 9 according to formula (9).
TABLE 9
K A B C D E
2(R1) −0.519080 −0.306884E−02 0.210023E−02 −0.511064E−02 0.297608E−02 −0.933653E−03
3(R2) −1.903494 −0.119853E−01 −0.166943E−02 −0.779414E−03 0.297154E−03 −0.211494E−03
4(R3)
5(R4)
6(R5) −23.161960 −0.342151E−01 0.297570E−02 0.127086E−02 −0.331654E−03 −0115883E−05
7(R6) −2.184987 −0.101073E−01 −0.928938E−03 0.229837E−02 −0.435484E−03 0.286609E−04
8(R7) −6.252505 −0.387574E−01 0.750058E−02 −0.666702E−03 0.344665E−05 0.497617E−06
9(R8) −3.730467 −0.209098E−01 0.387332E−02 −0.561418E−03 0.327093E−04 −0.126355E−05
Embodiment 7
The optical imaging system 70 according to the seventh embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1. The second and third surfaces R1 and R2 of the first lens L1 are aspheric. Referring to Table 2, the thickness of the first lens L1 is 1.5 mm. The first lens L1 is separated from the stop by 0.346363 mm. The first lens L1 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
The second lens group G2 includes a second lens L2 having a refractive index of 1.755201 and a distribution value dispersion constant of 27.5795. The fourth and fifth surfaces R3 and R4 of the second lens L2 are spherical. Referring to Table 2, the second lens L2 is separated from the first lens L1 by 0.132395 mm. The second lens has a thickness of 0.6 mm.
The third lens group G3 includes a third lens L3. The third lens L3 includes sixth and seventh surfaces R5 and R6 which are aspheric. The third lens L3 is separated from the second lens L2 by 1.082514 mm, and has a thickness of 0.8 mm. The third lens L3 is formed of a material having a refractive index of 1.52996 and a distribution value dispersion constant of 55.8.
The fourth lens group G4 includes a fourth lens L4. The fourth lens L4 includes eighth and ninth surfaces R7 and R8 which are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.581283 and a distribution value dispersion constant of 62.5343. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.568307 mm.
The aspheric specifications of the first, third, and fourth lenses according to the seventh preferred embodiment can be calculated as shown in Table 10 according to formula (9).
TABLE 10
K A B C D E
2(R1) −0.225057 −0.331040E−02 0.124863E−01 −0.182585E−01 0.133184E−01 −0.345182E−02
3(R2) −8.046311 −0.167705E−02 0.328944E−02 −0.511098E−03 −0.598276E−04 0.289249E−03
4(R3)
5(R4)
6(R5) −16.247560 −0.465774E−01 0.113697E−01 0.484777E−02 −0.139992E−02 0.124383E−03
7(R6) −1.681469 −0.201264E−01 −0.355531E−02 0.780629E−02 −0.305484E−04 0.221913E−03
8(R7) −3.679745 −0.597223E−01 0.166450E−01 −0.222994E−02 0.305484E−04 0.102808E−04
9(R8) −3.208375 −0.436003E−01 0.103498E−01 −0.174130E−02 0.143919E−03 −0.563246E−05
Embodiment 8
The optical imaging system 80 according to the eighth embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1. The second and third surfaces R1 and R2 of the first lens L1 are aspheric. Referring to Table 2, the thickness of the first lens L1 is 0.873219 mm. The first lens L1 is separated from the stop by 0.455563 mm. The first lens L1 is formed of a material having a refractive index of 1.618194 and a distribution value dispersion constant of 60.4374.
The second lens group G2 includes a second lens L2 having a refractive index of 1.755201 and a distribution value dispersion constant of 27.5795. The fourth and fifth surfaces R3 and R4 of the second lens L2 are spherical. Referring to Table 2, the second lens L2 is separated from the first lens L1 by 0.145862 mm. The second lens has a thickness of 0.3 mm.
The third lens group G3 includes a third lens L3. The third lens L3 includes sixth and seventh surfaces R5 and R6 which are aspheric. The third lens L3 is separated from the second lens L2 by 0.162161 mm, and has a thickness of 1.936693 mm. The third lens L3 is formed of a material having a refractive index of 1.62041 and a distribution value dispersion constant of 60.3236.
The fourth lens group G4 includes a fourth lens L4. The fourth lens L4 includes eighth and ninth surfaces R7 and R8 which are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.755201 and a distribution value dispersion constant of 27.5795. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light passed through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.75533392 mm.
The aspheric specifications of the first, third, and fourth lenses according to the fifth embodiment can be calculated as shown in Table 11 according to formula (9).
TABLE 11
K A B C D E
2(R1) −1.191537 −0.688942E−02 0.45124E−02 −0.510228E−02 0.398074E−02 −0.101575E−02
3(R2) −18.472343 −0.122184E−01 −0.263919E−03 0.484905E−03 −0.122042E−03 −0.255869E−03
4(R3)
5(R4)
6(R5) −131.77000 −0.157791E−01 0.64132E−02 0.126895E−02 −0.440931E−03 −0.131678E−04
7(R6) −1.874970 −0.219439E−01 −0.444306E−02 0.215012E−02 −0.346726E−03 0.643482E−04
8(R7) −2.843204 −0.606407E−01 0.869752E−02 0.885038E−04 0.256944E−04 −0.27499E−04
9(R8) −2.494280 −0.463456E−01 0.597186E−02 −0.418213E−03 0.361972E−04 −0.371985E−05
Embodiment 9
The optical imaging system 90 according to the ninth embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1. The second and third surfaces R1 and R2 are aspheric. Referring to Table 2, the thickness of the first lens L1 is 1.151183 mm. The first lens L1 is separated from the stop by 0.03 mm. The first lens L1 is formed of a material having a refractive index of 1.544806 and a distribution value dispersion constant of 65.0658.
The second lens group G2 includes a second lens L2 having a refractive index of 1.730603 and a distribution value dispersion constant of 29.7565. The fourth and fifth surfaces R3 and R4 of the second lens L2 are spherical. Referring to Table 2, the second lens L2 is separated from the first lens L1 by 0.1 mm. The second lens has a thickness of 0.359346 mm.
The third lens group G3 includes a third lens L3. The third lens L3 includes sixth and seventh surfaces R5 and R6 which are aspheric. The third lens L3 is separated from the second lens L2 by 2.268589 mm, and has a thickness of 0.958835 mm. The third lens L3 is formed of a material having a refractive index of 1.581703 and a distribution value dispersion constant of 41.1859.
The fourth lens group G4 includes a fourth lens L4. The fourth lens L4 includes eighth and ninth surfaces R7 and R8 which are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.590309 and a distribution value dispersion constant of 61.9836. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.635425 mm.
The aspheric specifications of the first, third, and fourth lenses according to the ninth embodiment can be calculated as shown in Table 12 according to formula (9).
TABLE 12
K A B C D E
2(R1) −0.430373 −0.390591E−02 0.392143E−02 −0.677606E−02 0.349668E−02 −0.844170E−03
3(R2) −1.343031 −0.390591E−02 −0.221724E−02 −0.442053E−03 0.325453E−04 −0.124565E−03
4(R3)
5(R4)
6(R5) −7.614910 −0.468815E−01 0.861470E−03 0.504936E−03 −0.657574E−03 0.716095E−04
7(R6) −4.320744 −0.814544E−02 −0.177486E−02 0.246353E−02 −0.378555E−03 0.360668E−04
8(R7) −3006.0608 −0.313430E−01 0.768252E−02 −0.638911E−03 0.198217E−04 0.177158E−06
9(R8) −14.736676 −0.325749E−01 0.463409E−02 −0.543938E−03 0.288680E−03 0.146074E−06
Embodiment 10
The optical imaging system 100 according to the tenth embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1. The second and third surfaces R1 and R2 of the first lens are aspheric. Referring to Table 2, the thickness of the first lens L1 is 1.040923 mm. The first lens L1 is separated from the stop by 0.112233 mm. The first lens L1 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
The second lens group G2 includes a second lens L2 having a refractive index of 1.75520 and a distribution value dispersion constant of 27.5305. The fourth and fifth surfaces R3 and R4 of the second lens L2 are spherical. Referring to Table 2, the center portion of the second lens L2 makes contact with the center of the first lens L1, and the thickness thereof is 0.6 mm.
The third lens group G3 includes a third lens L3. The third lens L3 includes sixth and seventh surfaces R5 and R6 which are aspheric. The third lens L3 is separated from the second lens L2 by 0.75876 mm, and has a thickness of 0.8 mm. The third lens L3 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
The fourth lens group G4 includes a fourth lens L4. The fourth lens L4 includes eighth and ninth surfaces R7 and R8 which are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.6 mm.
The aspheric specifications of the first, third, and fourth lenses according to the tenth embodiment can be calculated as shown in Table 3 according to formula (9).
TABLE 13
K A B C D E
2(R1) −0.243705 −0.472572E−02 0.208724E−01 −0.465959E−01 0.472830E−01 −0.179069E−01
3(R2) −35.906408 −0.733648E−03 0.135638E−02 −0.206406E−03 −0.275201E−03 −0.584975E−04
4(R3)
5(R4)
6(R5) −15.792759 −0.660694E−01 0.201054E−01 0.975285E−02 −0.440095E−02 0.84255E−03
7(R6) −2.490058 −0.354334E−01 −0.109024E−01 0.185847E−01 −0.460071E−02 0.887947E−03
8(R7) −17.989764 −0.827253E−01 0.309534E−01 −0.550268E−02 0.881897E−04 0.596575E−04
9(R8) −5.078902 −0.565618E−01 0.183829E−01 −0.389874E−02 0.438295E−03 −0.216645E−04
Embodiment 11
The optical imaging system 50 according to the eleventh embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1. The second and third surfaces R1 and R2 of the first lens L1 are aspheric. Referring to Table 3, the thickness of the first lens L1 is 1.4903 0.4903 mm. The first lens L1 is separated from the stop by 0.122343 mm. The first lens L1 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
The second lens group G2 includes a second lens L2 having a refractive index of 1.75520 and a distribution value dispersion constant of 27.5305. The fourth and fifth surfaces R3 and R4 of the second lens L2 are aspheric. Referring to Table 3, the second lens L2 is separated from the first lens L1 by 2.001108 mm. The second lens has a thickness of 0.3 mm.
The third lens group G3 includes a third lens L3. The third lens L3 includes sixth and seventh surfaces R5 and R6 which are aspheric. The third lens L3 is separated from the second lens L2 by 0.672147 mm, and has a thickness of 1.123412 mm. The third lens L3 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
The fourth lens group G4 includes a fourth lens L4. The fourth lens L4 includes eighth and ninth surfaces R7 and R8 which are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.53333 mm.
The aspheric specifications of the first, third, and fourth lenses according to the eleventh embodiment can be calculated as shown in Table 14 according to formula (9).
TABLE 14
K A B C D E
2(R1) −0.325702 −0.246211E−02 0.388533E−02 −0.604015E−02 0.380199E−02 −0.943180E−03
3(R2) −41.631817 0.494266E−05 0.263179E−03 −0.354857E−03 −0.299644E−03 0.164888E−03
4(R3)
5(R4)
6(R5) 42.685665 −0.286127E−01 0.464775E−02 0.147457E−02 −0.275325E−03 0.261278E−04
7(R6) −2.322289 −0.142459E−01 −0.222570E−02 0.252860E−01 −0.342195E−03 0.386791E−04
8(R7) −5.810899 −0.278816E−01 0.765382E−02 −0.752745E−03 0.209383E−05 0.21670E−053
9(R8) −4.064375 −0.271353E−01 0.394463E−02 −0.533443E−03 0.332976E−04 −0.893693E−06
Embodiment 12
The optical imaging system 120 according to the twelfth embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1. The second and third surfaces R1 and R2 of the first lens L1 are aspheric. Referring to Table 3, the thickness of the first lens L1 is 1.219838 mm. The first lens L1 is separated from the stop by 0.172863 mm. The first lens L1 is formed of a material having a refractive index of 1.532889 and a distribution value dispersion constant of 66.0182.
The second lens group G2 includes a second lens L2 having a refractive index of 1.75520 and a distribution value dispersion constant of 27.5795. The fourth and fifth surfaces R3 and R4 of the second lens L2 are spherical. Referring to Table 3, the second lens L2 is separated from the first lens L1 by 0.0.159417 0.159417 mm. The second lens has a thickness of 0.427352 mm.
The third lens group G3 includes a third lens L3. The third lens L3 includes sixth and seventh surfaces R5 and R6 which are aspheric. The third lens L3 is separated from the second lens L2 by 0.742239 mm, and has a thickness of 0.8 mm. The third lens L3 is formed of a material having a refractive index of 1.5296 and a distribution value dispersion constant of 55.8.
The fourth lens group G4 includes a fourth lens L4. The fourth lens L4 includes eighth and ninth surfaces R7 and R8 which are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.7 mm.
The aspheric specifications of the first, third, and fourth lenses according to the twelfth embodiment can be calculated as shown in Table 15 according to formula (9).
TABLE 15
K A B C D E
2(R1) −0.293313 −0.542927E−02 0.212559E−01 −0.461572E−01 0.474595E−01 −0.180297E−01
3(R2) −35.036564 0.831924E−03 0.133528E−02 0.317237E−03 0.719662E−05 0.460349E−05
4(R3)
5(R4)
6(R5) −15.407195 −0.672666E−1 0.193978E−01 0.951188E−02 −0.442031E−02 0.886980E−03
7(R6) −2.475560 −0.356856E−01 −0.108935E−01 0.186240E−01 −0.459365E−02 0.878806E−03
8(R7) −14.369332 −0.818601E−01 0.304820E−01 −0.560236E−02 0.815708E−04 0.625730E−04
9(R8) −5.062053 −0.596198E−01 0.176196E−01 −0.390136E−02 0.437454E−03 −0.222993E−04
Embodiment 13
The optical imaging system 130 according to the thirteenth embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1. The second and third surfaces R1 and R2 of the first lens L1 are aspheric. Referring to Table 1, the thickness of the first lens L1 is 0.812558 mm. The first lens L1 is separated from the stop by 0.03 mm. The first lens L1 is formed of a material having a refractive index of 1.602778 and a distribution value dispersion constant of 61.2648.
The second lens group G2 includes a second lens L2 having a refractive index of 1.742011 and a distribution value dispersion constant of 28.1334. The fourth and fifth surfaces R3 and R4 of the second lens L2 are spherical. Referring to Table 3, the second lens L2 is separated from the first lens L1 by 0.1 mm. The second lens L2 has a thickness of 0.3 mm.
The third lens group G3 includes a third lens L3. The third lens L3 includes sixth and seventh surfaces R5 and R6 which are aspheric. The third lens L3 is separated from the second lens L2 by 0.556157 mm, and has a thickness of 0.8 mm. The third lens L3 is formed of a material having a refractive index of 1.743972 and a distribution value dispersion constant of 44.8504.
The fourth lens group G4 includes a fourth lens L4. The fourth lens L4 includes eighth and ninth surfaces R7 and R8 which are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.719343 and a distribution value dispersion constant of 29.1913. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.4 mm.
The aspheric specifications of the first, third, and fourth lenses according to the thirteenth embodiment can be calculated as shown in Table 16 according to formula (9).
TABLE 16
K A B C D E
2(R1) −3.105139 −0.765718E−02 −0.232543E−02 −0.548132E−02 0.355043E−02 −0.164865E−02
3(R2) 6.643484 −0.111248E−01 −0.189739E−02 −0.663328E−03 −0.291696E−03 0.148068E−04
4(R3)
5(R4)
6(R5) −61.837170 −0.307620E−01 −0.299148E−03 0.881036E−04 −0.555307E−03 0.287414E−03
7(R6) −1.252353 −0.165700E−01 −0.2082050E−02 0.832299E−03 −0.505810E−03 0.104507E−03
8(R7) −4.091718 −0.559991E−01 0.354141E−02 −0.447725E−04 0.906043E−04 −0.235729E−04
9(R8) −4.478957 −0.316105E−01 0.411904E−02 −0.364491E−03 0.274454E−04 −0.207865E−05
Embodiment 14
The optical imaging system 140 according to the fourteenth embodiment includes a first lens group G1 having a positive refractive power, a second lens group G2 having a negative refractive power, a third lens group G3 having a positive or negative refractive power, a fourth lens group G4 having a positive or negative refractive power, a stop, and a thin film filter or an optical filter.
The first lens group G1 includes a first lens L1. The second and third surfaces R1 and R2 of the first lens L1 are aspheric. Referring to Table 3, the thickness of the first lens L1 is 1.1 mm. The first lens L1 is separated from the stop by 0.480264 mm. The first lens L1 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8.
The second lens group G2 includes a second lens L2 having a refractive index of 1.75520 and a distribution value dispersion constant of 27.5795. The fourth and fifth surfaces R3 and R4 of the second lens L2 are spherical. Referring to Table 3, the second lens L2 is separated from the first lens L1 by 0.1 mm. The second lens has a thickness of 0.1 0.5 mm.
The third lens group G3 includes a third lens L3. The third lens L3 includes sixth and seventh surfaces R5 and R6 which are aspheric. The third lens L3 is separated from the second lens L2 by 2.235814 mm, and has a thickness of 0.5 0.54408 mm. The third lens L3 is formed of a material having a refractive index of 1.675133 and a distribution value dispersion constant of 40.8062.
The fourth lens group G4 includes a fourth lens L4. The fourth lens L4 includes eighth and ninth surfaces R7 and R8 which are aspheric. The fourth lens L4 is formed of a material having a refractive index of 1.529960 and a distribution value dispersion constant of 55.8. The thin film filter or the optical filter LP is formed on one surface of a BSC7-HOYA substrate by optical thin film deposition, and outputs partially restricted light through the fourth lens L4. The thin film filter or the optical filter LP is separated from the fourth lens L4 by 0.63848 mm.
The aspheric specifications of the first, third, and fourth lenses according to the fourteenth embodiment can be calculated as shown in Table 17 according to formula (9).
TABLE 17
K A B C D E
2(R1) −0.609678 −0.33651E−02 0.103994E−01 −0.531487E−02 0.265399E−02 −0.110303E−02
3(R2) −2.046651 −0.118551E−01 −0.268572E−02 −0.121156E−02 0.310607E−03 −0.261769E−03
4(R3) −0.023479 −0.621511E−05 0.506488E−03 0.302229E−03 0.613363E−04 0.105352E−03
5(R4) −20.447531 0.207610E−03 0.4772207E−03 0.199399E−03 0.764266E−04 −0.296394E−04
6(R5) −28.099749 −0.345382E−01 0.291077E−02 0.117431E−02 −0.344832E−03 0.114845E−05
7(R6) −2.937952 −0.914876E−02 −0.914771E−03 0.232561E−02 −0.431406E−03 0.285117E−04
8(R7) −7.164502 −0.397733E−01 0.765148E−02 −0.688572E−03 0.363819E−05 0.182078E−05
9(R8) −3.704332 −0.236715E−01 0.386753E−02 −0.536289E−03 0.341922E−04 −0.149054E−05
In sum, the optical imaging system of the present invention reduces the volume and minimizes the deterioration of the optical characteristics, such as flares, with a high resolution.
While the invention has been shown and described with reference to certain preferred embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims.

Claims (48)

What is claimed is:
1. An optical imaging system comprising an image sensor for photoelectric conversion, the optical imaging system further comprising:
a first lens group having a positive refractive power closest to a subject;
a second lens group closest to the first lens group and having a negative refractive power;
a third lens group having one of a positive or negative power; and
a fourth lens group having one of a positive or negative power,
wherein each of the first to fourth lens groups comprises an aspheric lens having at least one aspheric surface thereof; and
one of a thin film filter or an optical filter for restricting the transmission of a portion of light between the second and third lens groups or between the third and fourth lens groups.
2. An optical imaging system according to claim 1, wherein the first lens group comprises at least one lens of a positive refractive power.
3. An optical imaging system according to claim 1, wherein the second lens group comprises at least one lens of a negative refractive power.
4. An optical imaging system according to claim 1, wherein the third lens group comprises at least one lens of a positive or negative refractive power.
5. An optical imaging system according to claim 1, wherein a fourth lens group comprises at least one lens of a positive or negative refractive power.
6. An optical imaging system according to claim 1, wherein the optical imaging system satisfies
0.3 < f 1 f < 3.1 ,
wherein f denotes synthetic focus distance of the optical imaging system and f1 denotes focus distance of the first lens group.
7. An optical imaging system according to claim 1, wherein the optical imaging system satisfies
0.3 < f 2 f < 8.99 ,
wherein f denotes a synthetic focus distance of the optical imaging system and f2 denotes a focus distance of the second lens group.
8. An optical imaging system according to claim 1, wherein the optical imaging system satisfies
0.19 < f 3 f < ,
wherein f denotes a synthetic focus distance of the optical imaging system and f3 denotes a focus distance of the third lens group.
9. An optical imaging system according to claim 1, wherein the optical imaging system satisfies
0.15 < f 4 f < ,
wherein f denotes a synthetic focus distance of the optical imaging system and f4 denotes a focus distance of the second lens group.
10. An optical imaging system comprising an image sensor for photoelectric conversion, the optical imaging system further comprising:
a first lens group having a positive refractive power;
a second lens group having a negative refractive power;
a third lens group having one of a positive or negative power; and
a fourth lens group having one of a positive or negative power, wherein the optical imaging system satisfies
0.45 < f TTL < 1.01 ,
wherein f denotes a synthetic focus distance of die optical imaging system and TTL denotes a distance from an iris surface to an imaging surface;
wherein a lens located in the first lens group and having at least one aspheric surface; and
one of a thin film filter or an optical filter for restricting the transmission of a portion of light between the second and third lens groups or between the third and fourth lens groups.
11. An optical imaging system according to claim 10, further comprising a parallel flat glass disposed between the image sensor and the fourth lens group.
12. An optical imaging system comprising an image sensor for photoelectric conversion, the optical imaging system further comprising:
a first lens group having a positive refractive power;
a second lens group having a negative refractive power;
a third lens group having one of a positive or negative power; and
a fourth lens group having one of a positive or negative power, wherein the first and second lens groups satisfy an optical axis direction size according to
0 < d 1 TTL < 0.26 ,
wherein d1 denotes a separated distance between the first lens group and the second lens group on the optical axis and TTL denotes a distance from an iris surface to an imaging surface;
wherein a lens located in the first lens group and having at least one aspheric surface; and
one of a thin film filter or an optical filter for restricting the transmission of a portion of light between the second and third lens groups or between the third and fourth lens groups.
13. An optical imaging system according to claim 12, further comprising a parallel flat glass disposed between the image sensor and the fourth lens group.
14. An optical imaging system comprising an image sensor for photoelectric conversion, the optical imaging system further comprising:
a first lens group having a positive refractive power;
a second lens group having a negative refractive power;
a third lens group having one of a positive or negative power; and
a fourth lens group having one of a positive or negative power, wherein the third and fourth lens groups satisfy an optical axis direction size according to
0 < d 3 TTL < 0.40 ,
wherein d3 denotes a separated distance between the third lens group and the fourth lens group on the optical axis and TIL denotes a distance from an iris surface to an imaging surface;
wherein a lens located in the first lens group and having at least one aspheric surface; and
one of a thin film filter or an optical filter for restricting the transmission of a portion of light between the second and third lens groups or between the third and fourth lens groups.
15. An optical imaging system according to claim 14, further comprising a parallel flat glass disposed between the image sensor and the fourth lens group.
16. An optical imaging system comprising an image sensor for photoelectric conversion, the optical imaging system further comprising:
a first lens group having a positive refractive power closest to a subject;
a second lens group closest to the first lens group and having a negative refractive power;
a third lens group having one of a positive or negative power; and
a fourth lens group having one of a positive or negative power,
wherein each of the first to fourth lens groups comprises an aspheric lens having at least one aspheric surface thereof, and
wherein the Abbe's numbers of the first and second lens groups G1 and G2 satisfy

28.2<ν1−ν2<42.8,
wherein ν1 and ν2 denote Abbe's numbers representing the distribution characteristics of the first and second lens groups respectively.
17. An optical imaging system comprising an image sensor for photoelectric conversion, the optical imaging system further comprising:
a first lens having a positive refractive power closest to an object;
a second lens having a negative refractive power;
a third lens having a positive refractive power; and
a fourth lens having a negative refractive power,
wherein the first lens has both surfaces aspheric and each of the second to fourth lenses comprises an aspheric lens having at least one aspheric surface thereof; and
a thin film for restricting the transmission of a portion of light between the third and fourth lenses,
wherein the first lens has an object side surface having a positive curvature, and the second lens has an image side surface having a positive curvature, and the third lens has an object side surface having a negative curvature and an image side surface having a negative curvature.
18. The optical imaging system according to claim 17, wherein the optical imaging system satisfies
0.3 < f 2 f < 3.1 ,
wherein f denotes a total focal length of the optical imaging system and f1 denotes a focal length of the first lens.
19. The optical imaging system according to claim 17, wherein the optical imaging system satisfies
0.3 < f 2 f < 8.99 ,
wherein f denotes a total focal length of the optical imaging system and f2 denotes a focal length of the second lens.
20. The optical imaging system according to claim 17, wherein the optical imaging system satisfies
0.19 < f 3 f < ,
wherein f denotes a total focal length of the optical imaging system and f3 denotes a focal length of the third lens.
21. The optical imaging system according to claim 17, wherein the optical imaging system satisfies
0.15 < f 4 f < ,
wherein f denotes a total focal length of the optical imaging system and f4 denotes a focal length of the fourth lens.
22. The optical imaging system according to claim 17,
wherein the optical imaging system satisfies
0.45 < f TTL < 1.01 ,
wherein f denotes a total focal length of the optical imaging system and TTL denotes a distance from an iris surface to an imaging surface.
23. The optical imaging system according to claim 22, further comprising a parallel flat glass disposed between the image sensor and the fourth lens.
24. The optical imaging system according to claim 17, wherein the first and second lenses satisfy an optical axis direction size according to
0 < d 1 TTL < 0.26 ,
wherein d1 denotes a separated distance between the first lens and the second lens on the optical axis and TTL denotes a distance from an iris surface to an imaging surface.
25. The optical imaging system according to claim 24, further comprising a parallel flat glass disposed between the image sensor and the fourth lens.
26. The optical imaging system according to claim 17, wherein the third and fourth lenses satisfy an optical axis direction size according to
0 < d 3 TTL < 0.40 ,
wherein d3 denotes a separated distance between the third lens and the fourth lens on the optical axis and TTL denotes a distance from an iris surface to an imaging surface.
27. The optical imaging system according to claim 26, further comprising a parallel flat glass disposed between the image sensor and the fourth lens.
28. The optical imaging system according to claim 17, wherein the fourth lens comprises an aspheric lens having both surfaces aspheric.
29. The optical imaging system according to claim 17, further comprising an iris disposed at an object side of the first lens.
30. The optical imaging system according to claim 17, wherein the fourth lens comprises an image side surface having a positive curvature.
31. The optical imaging system according to claim 30, wherein a sign of curvature is changed when the image side surface of the fourth lens is distant from an optical axis.
32. The optical imaging system according to claim 17, wherein a sign of a curvature is changed when an image side surface of a fourth lens is distant from an optical axis.
33. The optical imaging system according to claim 17, further comprising a thin film for restricting the transmission of a portion of light between the second and third lenses.
34. The optical imaging system according to claim 17, wherein the optical imaging system satisfies the following equation:

28.2<ν1−ν2<42.8,
wherein ν1 and ν2 denote Abbe's numbers of the first lens and the second lens, respectively.
35. The optical imaging system according to claim 34, wherein the optical imaging system satisfies the following equation:
0.3 < f 1 f < 3.1 ,
wherein f denotes a total focal length of the optical imaging system, and f1 denotes a focal length of the first lens.
36. The optical imaging system according to claim 34, wherein the optical imaging system satisfies the following equation:
0.3 < f 2 f < 8.99 ,
wherein f denotes a total focal length of the optical imaging system, and f2 denotes a focal length of the second lens.
37. The optical imaging system according to claim 34, wherein the optical imaging system satisfies the following equation:
0.19 < f 3 f < ,
wherein f denotes a total focal length of the optical imaging system, and f3 denotes a focal length of the third lens.
38. The optical imaging system according to claim 34, wherein the optical imaging system satisfies the following equation:
0.15 < f 4 f < ,
wherein f denotes a total focal length of the optical imaging system, and f4 denotes a focal length of the fourth lens.
39. The optical imaging system according to claim 34, wherein the optical imaging system satisfies the following equation:
0.45 < f TTL < 1.01 ,
wherein f denotes a total focal length of the optical imaging system and TTL denotes a distance from an iris surface to an imaging surface.
40. The optical imaging system according to claim 34, wherein the optical imaging system satisfies the following equation:
0 < d 1 TTL < 0.26 ,
wherein d1 denotes a separated distance between the first lens and the second lens on the optical axis and TTL denotes a distance from an iris surface to an imaging surface.
41. The optical imaging system according to claim 34, wherein the optical imaging system satisfies the following equation:
0 < d 3 TTL < 0.40 ,
wherein d3 denotes a separated distance between the third lens and the fourth lens on the optical axis and TTL denotes a distance from an iris surface to an imaging surface.
42. The optical imaging system according to claim 18, wherein the optical imaging system satisfies the following equation:
0.3 < f 2 f < 8.99 , 0.19 < f 3 f < , 0.15 < f 4 f < ,
wherein f denotes a total focal length of the optical imaging system, f2 denotes a focal length of the second lens, f3 denotes a focal length of the third lens, and f4 denotes a focal length of the fourth lens.
43. The optical imaging system according to claim 42, wherein the optical imaging system satisfies the following equation:

28.2<ν1−ν2<42.8,
wherein ν1 and ν2 denote Abbe's numbers of the first lens and the second lens, respectively.
44. The optical imaging system according to claim 17, wherein the optical imaging system satisfies the following equation:
0.45 < f TTL < 1.01 ,
wherein f denotes a total focal length of the optical imaging system and TTL denotes a distance from an iris surface to an imaging surface.
45. The optical imaging system according to claim 44, wherein the optical imaging system satisfies the following equation:
0 < d 1 TTL < 0.26 ,
wherein d1 denotes a separated distance between the first lens and the second lens on the optical axis and TTL denotes a distance from an iris surface to an imaging surface.
46. The optical imaging system according to claim 45, wherein the optical imaging system satisfies the following equation:

28.2<ν1−ν2<42.8,
wherein ν1 and ν2 denote Abbe's numbers of the first lens and the second lens, respectively.
47. The optical imaging system according to claim 44, wherein the optical imaging system satisfies the following equation:
0 < d 3 TTL < 0.40 ,
wherein d3 denotes a separated distance between the third lens and the fourth lens on the optical axis and TTL denotes a distance from an iris surface to an imaging surface.
48. The optical imaging system according to claim 47, wherein the optical imaging system satisfies the following equation:

28.2<ν1−ν2<42.8,
wherein ν1 and ν2 denote Abbe's numbers of the first lens and the second lens, respectively.
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JP2007058153A (en) * 2005-07-27 2007-03-08 Kyocera Corp Imaging lens, optical module and portable terminal
JP4828317B2 (en) * 2005-09-29 2011-11-30 富士フイルム株式会社 Imaging lens
JP4879600B2 (en) * 2006-02-15 2012-02-22 富士フイルム株式会社 Imaging lens
JP2007225833A (en) * 2006-02-23 2007-09-06 Kyocera Corp Imaging lens, optical module and mobile terminal
JP2007264498A (en) * 2006-03-29 2007-10-11 Kyocera Corp Imaging lens, optical module, and mobile terminal
KR100790716B1 (en) * 2006-07-25 2008-01-02 삼성전기주식회사 Subminiature optical system
JP4977869B2 (en) * 2006-08-21 2012-07-18 コニカミノルタアドバンストレイヤー株式会社 Imaging lens, imaging device, and portable terminal
WO2008078708A1 (en) * 2006-12-22 2008-07-03 Seiko Precision Inc. Imaging lens, and imaging device and portable terminal device using the imaging lens
WO2008078709A1 (en) * 2006-12-22 2008-07-03 Seiko Precision Inc. Imaging lens, imaging device using the imaging lens, and portable terminal device
JP4932510B2 (en) * 2007-01-30 2012-05-16 富士フイルム株式会社 Imaging lens
KR100849827B1 (en) * 2007-02-06 2008-07-31 삼성전기주식회사 Subminiature optical system
KR100843471B1 (en) * 2007-03-13 2008-07-03 삼성전기주식회사 Subminiature optical system
JP4948232B2 (en) * 2007-03-30 2012-06-06 三洋電機株式会社 Imaging lens unit and imaging apparatus provided with the same
KR100940235B1 (en) * 2007-04-24 2010-02-04 삼성테크윈 주식회사 Photographic lens
JP4071819B1 (en) * 2007-07-03 2008-04-02 株式会社小松ライト製作所 Imaging lens
JP5096057B2 (en) * 2007-07-10 2012-12-12 富士フイルム株式会社 Imaging lens, camera module, and imaging device
JP2009069193A (en) * 2007-09-10 2009-04-02 Fujinon Corp Imaging lens, camera module and imaging equipment
CN101387736B (en) * 2007-09-13 2012-05-23 鸿富锦精密工业(深圳)有限公司 Projecting lens
JP2009098515A (en) * 2007-10-18 2009-05-07 Fujinon Corp Four-lens-type small imaging lens, camera module, and imaging apparatus
JP5022172B2 (en) * 2007-10-18 2012-09-12 富士フイルム株式会社 Four-element compact imaging lens, camera module, and imaging device
JP5015719B2 (en) * 2007-10-18 2012-08-29 富士フイルム株式会社 Four-element compact imaging lens, camera module, and imaging device
JP5015720B2 (en) * 2007-10-18 2012-08-29 富士フイルム株式会社 Four-element compact imaging lens, camera module, and imaging device
KR100966990B1 (en) * 2007-10-30 2010-06-30 삼성전기주식회사 Subminiature Optical System
KR100920600B1 (en) 2007-11-08 2009-10-08 삼성전기주식회사 Subminiature Optical System
TWI361914B (en) * 2007-11-16 2012-04-11 Largan Precision Co Ltd Optical lens system for taking image
JP4317933B1 (en) * 2008-02-13 2009-08-19 ナルックス株式会社 Imaging optics
JP5074948B2 (en) * 2008-02-14 2012-11-14 富士フイルム株式会社 Imaging lens and imaging apparatus
JP5353879B2 (en) * 2008-03-31 2013-11-27 コニカミノルタ株式会社 Imaging lens, imaging device, and portable terminal
JP2009258286A (en) * 2008-04-15 2009-11-05 Konica Minolta Opto Inc Imaging lens, imaging unit, and mobile terminal
JP2010049113A (en) * 2008-08-22 2010-03-04 Sony Corp Image pickup lens and image pickup apparatus
JP4858648B2 (en) 2008-08-25 2012-01-18 コニカミノルタオプト株式会社 Imaging lens, imaging device, and portable terminal
JP5097059B2 (en) * 2008-09-03 2012-12-12 パナソニック株式会社 Imaging lens and imaging apparatus using the same
TWI384254B (en) * 2008-10-16 2013-02-01 Largan Precision Co Ltd Optical lens system for taking image
JP5475978B2 (en) * 2008-10-24 2014-04-16 富士フイルム株式会社 Imaging lens, camera module, and imaging device
TWI379102B (en) * 2008-11-20 2012-12-11 Largan Precision Co Ltd Optical lens system for taking image
KR101056438B1 (en) * 2008-12-05 2011-08-11 삼성에스디아이 주식회사 Display panel and optical filter
JP2010170080A (en) * 2008-12-24 2010-08-05 Sanyo Electric Co Ltd Lens unit and image capturing device
CN101782677B (en) * 2009-01-16 2012-12-05 大立光电股份有限公司 Four-piece imaging lens system
CN101819315B (en) 2009-02-27 2014-05-07 柯尼卡美能达精密光学株式会社 Image pickup lens, image pickup apparatus, and mobile terminal
CN102016682A (en) * 2009-07-08 2011-04-13 纳卢克斯株式会社 Imaging optical system
JP4798529B2 (en) * 2009-07-08 2011-10-19 ナルックス株式会社 Imaging optics
JP4902700B2 (en) * 2009-07-14 2012-03-21 シャープ株式会社 Imaging module
TWI421557B (en) 2009-07-14 2014-01-01 Largan Precision Co Ltd Imaging lens system
JP5059065B2 (en) 2009-08-07 2012-10-24 シャープ株式会社 Imaging module, imaging lens, and code reading method
KR101158178B1 (en) 2009-09-22 2012-06-19 삼성전기주식회사 Optical system for camera
CN102033293B (en) * 2009-09-25 2013-07-03 鸿富锦精密工业(深圳)有限公司 Image taking camera lens
CN102033291B (en) * 2009-09-29 2012-10-03 大立光电股份有限公司 Lens group for shooting
JP4886016B2 (en) * 2009-10-08 2012-02-29 シャープ株式会社 Imaging lens, imaging module, imaging lens manufacturing method, and imaging module manufacturing method
WO2011052370A1 (en) * 2009-10-26 2011-05-05 コニカミノルタオプト株式会社 Imaging lens
JP2011107631A (en) * 2009-11-20 2011-06-02 Panasonic Corp Imaging lens, imaging apparatus using the same, and portable device mounting the imaging apparatus
CN103003734B (en) 2010-03-26 2016-01-20 柯尼卡美能达株式会社 Imaging lens system, camera optical device and digital equipment
JP5043146B2 (en) * 2010-04-12 2012-10-10 シャープ株式会社 Imaging lens and imaging module
JP5501839B2 (en) 2010-04-15 2014-05-28 オリンパス株式会社 Imaging optical system and imaging apparatus using the same
TW201137497A (en) * 2010-04-30 2011-11-01 E Pin Optical Industry Co Ltd Four-piece projection lens system and the projection apparatus using the same
JP5138734B2 (en) * 2010-06-15 2013-02-06 シャープ株式会社 Imaging lens and imaging module
TW201211614A (en) 2010-09-10 2012-03-16 Genius Electronic Optical Co Ltd Imaging lens composed of four lenses and electronic device using the same
JP2012068355A (en) 2010-09-22 2012-04-05 Olympus Corp Imaging optical system, and imaging apparatus equipped with the same
JP2012073535A (en) * 2010-09-29 2012-04-12 Sony Corp Imaging lens and imaging apparatus
TWI402555B (en) * 2010-12-02 2013-07-21 Largan Precision Co Ltd Photographing optical system
JP5830853B2 (en) * 2010-12-14 2015-12-09 ソニー株式会社 Imaging lens and imaging apparatus
JP4887507B1 (en) * 2011-01-31 2012-02-29 株式会社AAC Technologies Japan R&D Center Imaging lens
JP5613962B2 (en) * 2011-01-31 2014-10-29 株式会社オプトロジック Imaging lens
JP4781487B1 (en) * 2011-02-07 2011-09-28 株式会社アイ・スクウェアリサーチ Imaging lens
JP2012220590A (en) 2011-04-05 2012-11-12 Sharp Corp Imaging lens and imaging module
KR101853498B1 (en) 2011-06-10 2018-06-04 엘지이노텍 주식회사 Imaging lens
JP6120508B2 (en) * 2011-10-03 2017-04-26 キヤノン株式会社 Imaging device and imaging apparatus
TWI440881B (en) * 2011-12-14 2014-06-11 Largan Precision Co Ltd Optical image capturing lens system
US8599499B2 (en) * 2012-03-20 2013-12-03 Microsoft Corporation High-speed wide-angle lens construction
WO2013150706A1 (en) * 2012-04-06 2013-10-10 コニカミノルタ株式会社 Imaging optical system, imaging apparatus, and digital device
CN102778746B (en) * 2012-06-20 2014-10-22 利达光电股份有限公司 Low-cost broad-spectrum optical system of day-night confocal trigger lens
CN103076669B (en) * 2012-07-20 2015-05-13 玉晶光电(厦门)有限公司 Portable electronic device and optical imaging lens thereof
CN103135206B (en) 2012-09-07 2016-04-20 玉晶光电(厦门)有限公司 Portable electron device and its optical imaging lens
TWI472793B (en) * 2012-09-14 2015-02-11 Largan Precision Co Ltd Photographing optical lens system
CN102967926B (en) * 2012-11-08 2015-04-22 中山联合光电科技有限公司 Vehicle-mounted optical lens for monitoring
CN103135207B (en) * 2012-11-15 2015-07-15 玉晶光电(厦门)有限公司 Portable electronic device and optical imaging lens thereof
KR101425793B1 (en) * 2012-12-31 2014-08-06 주식회사 코렌 Photographic lens optical system
TWM468674U (en) * 2013-04-22 2013-12-21 Ability Opto Electronics Technology Co Ltd Thin type wide-angle four-piece imaging lens module
US9223113B2 (en) 2013-10-09 2015-12-29 Genius Electronic Optical Co., Ltd. Optical lens and electronic apparatus including the lens
CN103969791B (en) * 2013-12-09 2016-05-25 玉晶光电(厦门)有限公司 Optical imaging lens and apply the electronic installation of this camera lens
KR102137739B1 (en) * 2014-02-05 2020-07-24 삼성전자주식회사 Photographing lens and photographing apparatus
CN106030401B (en) * 2014-02-28 2019-10-11 夏普株式会社 Photographing module and photographic device
KR101681374B1 (en) 2014-09-30 2016-11-30 삼성전기주식회사 Optical system
TWI551883B (en) 2015-03-31 2016-10-01 大立光電股份有限公司 Imaging lens assembly, image capturing device and electronic device
JP5836532B1 (en) * 2015-08-05 2015-12-24 エーエーシーアコースティックテクノロジーズ(シンセン)カンパニーリミテッドAAC Acoustic Technologies(Shenzhen)Co.,Ltd Imaging lens
KR102547137B1 (en) * 2015-10-21 2023-06-23 삼성전자주식회사 Lens assembly and electronic device with the same
TWI587000B (en) 2016-02-02 2017-06-11 大立光電股份有限公司 Image capturing lens system, image capturing apparatus and electronic device
CN106094164B (en) * 2016-03-18 2018-09-25 玉晶光电(厦门)有限公司 Optical imaging lens
CN106569317B (en) * 2016-09-30 2020-02-11 惠州萨至德光电科技有限公司 Tolerance-resistant imaging lens
CN106646821B (en) * 2016-09-30 2020-02-11 惠州萨至德光电科技有限公司 Mobile phone imaging lens
JP6434066B2 (en) 2017-01-23 2018-12-05 カンタツ株式会社 Imaging lens
CN109031587B (en) * 2017-06-09 2021-01-12 宁波舜宇车载光学技术有限公司 Optical lens
JP6399627B1 (en) * 2018-03-07 2018-10-03 エーエーシーアコースティックテクノロジーズ(シンセン)カンパニーリミテッドAAC Acoustic Technologies(Shenzhen)Co.,Ltd Imaging lens
CN108857052B (en) * 2018-09-04 2024-03-19 深圳市拓博瑞激光科技有限公司 Dual-wavelength confocal focusing optical system
KR102180513B1 (en) * 2018-12-17 2020-11-18 주식회사 제이투씨 Lens optical system
CN111830674B (en) * 2019-04-18 2022-10-21 信泰光学(深圳)有限公司 Lens barrel
US11480760B2 (en) 2019-04-18 2022-10-25 Sintai Optical (Shenzhen) Co., Ltd. Lens assembly
CN111083327A (en) * 2019-12-20 2020-04-28 维沃移动通信有限公司 Electronic equipment
CN111308652B (en) * 2020-02-24 2021-07-30 诚瑞光学(常州)股份有限公司 Image pickup optical lens
CN111198434B (en) * 2020-02-24 2021-07-30 诚瑞光学(常州)股份有限公司 Image pickup optical lens
CN113960758B (en) * 2021-11-04 2023-06-02 业成科技(成都)有限公司 Optical imaging system, image capturing device and electronic equipment

Citations (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4095873A (en) * 1975-04-04 1978-06-20 Asahi Kogaku Kogyo Kabushiki Kaisha Miniature and large aperture retrofocus wide-angle photographic lens
US5050973A (en) 1989-01-18 1991-09-24 Minolta Camera Kabushiki Kaisha Symmetrical lens system for use in copying machine
US5859729A (en) 1996-01-06 1999-01-12 Canon Kabushiki Kaisha Zoom lens device with four lens unit
US6236522B1 (en) * 1997-12-02 2001-05-22 Olympus Optical Co., Ltd. Photographic optical system
US6288850B1 (en) * 1999-03-02 2001-09-11 Fuji Photo Optical Co., Ltd. Image readout lens and image readout apparatus
US20040012861A1 (en) 2002-07-18 2004-01-22 Konica Corporation Image pickup lens, image pickup unit and portable terminal
US20040027685A1 (en) 2002-08-02 2004-02-12 Olympus Optical Co., Ltd. Zoom lens, and electronic imaging system using the same
US20040136097A1 (en) 2002-12-30 2004-07-15 Samsung Techwin Co., Ltd. Photographing lens
US20040218285A1 (en) * 2003-04-22 2004-11-04 Olympus Corporation Image forming optical system and electronic instrument using the same
US20040228009A1 (en) * 2003-05-13 2004-11-18 Olympus Corporation Image-formation optical system, and imaging system incorporating the same
JP2005001027A (en) 2003-06-10 2005-01-06 Kojo Seiko Kk Probe needle grinding device
JP2005004027A (en) 2003-06-13 2005-01-06 Olympus Corp Imaging optical system and imaging apparatus using it
US20050024748A1 (en) 2003-06-11 2005-02-03 Olympus Corporation Imaging optical system and electronic apparatus using the same
US20050105194A1 (en) 2003-11-13 2005-05-19 Konica Minolta Opto, Inc. Image pickup lens and image pickup device
US6898030B1 (en) 2004-06-17 2005-05-24 Prodisc Technology Inc. Camera lens assembly
US20050117047A1 (en) * 2003-12-02 2005-06-02 Konica Minolta Opto, Inc. Image pickup lens system
CN1627118A (en) 2003-12-12 2005-06-15 里程碑株式会社 Imaging lens
US20060056068A1 (en) * 2004-08-20 2006-03-16 Hon Hai Precision Industry Co., Ltd. Lens having aspheric surfaces
US7190532B2 (en) * 2003-06-16 2007-03-13 Olympus Corporation Imaging optical system and electronic apparatus using the same

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP4453276B2 (en) 2002-07-18 2010-04-21 コニカミノルタホールディングス株式会社 Imaging lens, imaging unit, and portable terminal equipped with the same
KR100536866B1 (en) * 2003-07-30 2005-12-14 현동훈 Ultra-thin type mega-pixel level optical system for camera
KR20050061174A (en) * 2003-12-18 2005-06-22 현대모비스 주식회사 Dc and ac power generator using one pwm chip
KR100703469B1 (en) * 2005-07-07 2007-04-03 삼성전자주식회사 Optical image forming lens system

Patent Citations (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4095873A (en) * 1975-04-04 1978-06-20 Asahi Kogaku Kogyo Kabushiki Kaisha Miniature and large aperture retrofocus wide-angle photographic lens
US5050973A (en) 1989-01-18 1991-09-24 Minolta Camera Kabushiki Kaisha Symmetrical lens system for use in copying machine
US5859729A (en) 1996-01-06 1999-01-12 Canon Kabushiki Kaisha Zoom lens device with four lens unit
US6236522B1 (en) * 1997-12-02 2001-05-22 Olympus Optical Co., Ltd. Photographic optical system
US6288850B1 (en) * 1999-03-02 2001-09-11 Fuji Photo Optical Co., Ltd. Image readout lens and image readout apparatus
US20040012861A1 (en) 2002-07-18 2004-01-22 Konica Corporation Image pickup lens, image pickup unit and portable terminal
US20040027685A1 (en) 2002-08-02 2004-02-12 Olympus Optical Co., Ltd. Zoom lens, and electronic imaging system using the same
US20040136097A1 (en) 2002-12-30 2004-07-15 Samsung Techwin Co., Ltd. Photographing lens
US20040218285A1 (en) * 2003-04-22 2004-11-04 Olympus Corporation Image forming optical system and electronic instrument using the same
US7206143B2 (en) 2003-05-13 2007-04-17 Olympus Corporation Image-formation optical system, and imaging system incorporating the same
US20040228009A1 (en) * 2003-05-13 2004-11-18 Olympus Corporation Image-formation optical system, and imaging system incorporating the same
JP2005001027A (en) 2003-06-10 2005-01-06 Kojo Seiko Kk Probe needle grinding device
US20050024748A1 (en) 2003-06-11 2005-02-03 Olympus Corporation Imaging optical system and electronic apparatus using the same
JP2005004027A (en) 2003-06-13 2005-01-06 Olympus Corp Imaging optical system and imaging apparatus using it
US7190532B2 (en) * 2003-06-16 2007-03-13 Olympus Corporation Imaging optical system and electronic apparatus using the same
US20050105194A1 (en) 2003-11-13 2005-05-19 Konica Minolta Opto, Inc. Image pickup lens and image pickup device
US20050117047A1 (en) * 2003-12-02 2005-06-02 Konica Minolta Opto, Inc. Image pickup lens system
CN1627118A (en) 2003-12-12 2005-06-15 里程碑株式会社 Imaging lens
US6898030B1 (en) 2004-06-17 2005-05-24 Prodisc Technology Inc. Camera lens assembly
US20060056068A1 (en) * 2004-08-20 2006-03-16 Hon Hai Precision Industry Co., Ltd. Lens having aspheric surfaces

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
Office Action issued in related application KR 10-2005-0061174, dated Aug. 30, 2006, with English language translation, 5 pages.
Park, Young-Woo; Patent Application Publication No. US 2004/0136097 A1; Publication Date: Jul. 15, 2004; "Photographing Lens;" . . . .

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
USRE47370E1 (en) * 2005-07-07 2019-04-30 Samsung Electronics Co., Ltd. Optical imaging system

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US7466497B2 (en) 2008-12-16
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USRE47370E1 (en) 2019-04-30
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