Camera optical lens
US-2024427116-A1 · Dec 26, 2024 · US
US9703077B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9703077-B2 |
| Application number | US-201615080444-A |
| Country | US |
| Kind code | B2 |
| Filing date | Mar 24, 2016 |
| Priority date | Jul 15, 2015 |
| Publication date | Jul 11, 2017 |
| Grant date | Jul 11, 2017 |
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An optical image capturing system includes, along the optical axis in order from an object side to an image side, a first lens, a second lens, a third lens, a fourth lens, and a fifth lens. At least one lens among the first to the fifth lenses has positive refractive force. The fifth lens can have negative refractive force, wherein both surfaces thereof are aspheric, and at least one surface thereof has an inflection point. The lenses in the optical image capturing system which have refractive power include the first to the fifth lenses. The optical image capturing system can increase aperture value and improve the imaging quality for use in compact cameras.
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What is claimed is: 1. An optical image capturing system, in order along an optical axis from an object side to an image side, comprising: a first lens having refractive power; a second lens having refractive power; a third lens having refractive power; a fourth lens having refractive power; a fifth lens having refractive power; and an image plane; wherein the optical image capturing system consists of the five lenses with refractive power; at least one lens among the first to the fifth lenses has positive refractive power; each lens of the first to the fifth lenses has an object-side surface, which faces the object side, and an image-side surface, which faces the image side, and both the object-side surface and the image-side surface of at least one lens among the first to the fifth lenses are aspheric surfaces; wherein the optical image capturing system satisfies: 1.2≦ f /HEP≦6.0; and 0.5≦SETP/STP<1; where f 1 , f 2 f 3 , f 4 , and f 5 are focal lengths of the first lens to the fifth lens, respectively; f is a focal length of the optical image capturing system; HEP is an entrance pupil diameter of the optical image capturing system; HOS is a distance in parallel with the optical axis between the object-side surface of the first lens and the image plane; ETP 1 , ETP 2 , ETP 3 , ETP 4 , and ETP 5 are respectively a thickness at the height of ½ HEP of the first lens, the second lens, the third lens, the fourth lens, and the fifth lens; SETP is a sum of the aforementioned ETP 1 to ETP 5 ; TP 1 , TP 2 , TP 3 , TP 4 , and TP 5 are respectively a thickness of the first lens, the second lens, the third lens, the fourth lens, and the fifth lens on the optical axis; STP is a sum of the aforementioned TP 1 to TP 5 ; wherein the optical image capturing system further satisfies: 0.4≦|tan(HAF)|≦6.0; where HAF is a half of a view angle of the optical image capturing system; wherein the optical image capturing system further satisfies: 40 deg≦HAF≦110 deg. 2. The optical image capturing system of claim 1 , wherein the optical image capturing system further satisfies: 0.2≦EIN/ETL<1; where ETL is a distance in parallel with the optical axis between a coordinate point at a height of ½ HEP on the object-side surface of the first lens and the image plane; EIN is a distance in parallel with the optical axis between the coordinate point at the height of ½ HEP on the object-side surface of the first lens and a coordinate point at a height of ½ HEP on the image-side surface of the fifth lens. 3. The optical image capturing system of claim 2 , wherein the optical image capturing system further satisfies: 0.2≦SETP/EIN<1. 4. The optical image capturing system of claim 1 , further comprising a filtering component provided between the fifth lens and the image plane, wherein the optical image capturing system further satisfies: 0.1≦EIR/PIR<1; where EIR is a horizontal distance in parallel with the optical axis between the coordinate point at the height of ½ HEP on the image-side surface of the fifth lens and the filtering component; PIR is a horizontal distance in parallel with the optical axis between a point on the image-side surface of the fifth lens where the optical axis passes through and the filtering component. 5. The optical image capturing system of claim 1 , wherein at least one lens among the first to the fifth lenses has at least one inflection point on at least one surface thereof. 6. The optical image capturing system of claim 1 , wherein the optical image capturing system further satisfies: MTFE0≧0.2; MTFE3≧0.01; and MTFE7≧0.01; where HOI is a maximum height for image formation perpendicular to the optical axis on the image plane; MTFE 0 , MTFE 3 , and MTFE 7 are respectively a value of modulation transfer function in a spatial frequency of 55 cycles/mm at the optical axis, 0.3 HOI, and 0.7 HOI on an image plane. 7. The optical image capturing system of claim 1 , wherein the optical image capturing system further satisfies: 0.2≦EBL/BL≦1.1; where EBL is a horizontal distance in parallel with the optical axis between a coordinate point at the height of ½ HEP on the image-side surface of the fifth lens and image surface; BL is a horizontal distance in parallel with the optical axis between the point on the image-side surface of the fifth lens where the optical axis passes through and the image plane. 8. The optical image capturing system of claim 1 , further comprising an aperture and an image sensor, wherein the image sensor is provided on the image plane; the optical image capturing system further satisfies: 0.2≦lnS/HOS≦1.1; and 0≦HIF/HOI≦0.9; where HOI is a half of a diagonal of an effective sensing area of the image sensor; InS is a distance in parallel with the optical axis between the aperture and the image plane. 9. An optical image capturing system, in order along an optical axis from an object side to an image side, comprising: a first lens having negative refractive power; a second lens having refractive power; a third lens having refractive power; a fourth lens having refractive power; a fifth lens having refractive power; and an image plane; wherein the optical image capturing system consists of the five lenses with refractive power; at least a surface of at least one lens among the first to the fifth lenses has at least an inflection point; at least one lens among the first to the fifth lenses is made of glass; at least one lens among the second to the fifth lenses has positive refractive power; each lens among the first to the fifth lenses has an object-side surface, which faces the object side, and an image-side surface, which faces the image side, and both the object-side surface and the image-side surface of at least one lens among the first to the fifth lenses are aspheric surfaces; wherein the optical image capturing system satisfies: 1.2 ≦f /HEP≦6.0; and 0.2≦EIN/ETL<1; where f 1 , f 2 f 3 , 14 , and f 5 are focal lengths of the first lens to the fifth lens, respectively; f is a focal length of the optical image capturing system; HEP is an entrance pupil diameter of the optical image capturing system; HOS is a distance in parallel with the optical axis between the object-side surface of the first lens and the image plane; ETL is a distance in parallel with the optical axis between a coordinate point at a height of ½ HEP on the object-side surface of the first lens and the image plane; EIN is a distance in parallel with the optical axis between the coordinate point at the height of ½ HEP on the object-side surface of the first lens and a coordinate point at a height of ½ HEP on the image-side surface of the fifth lens; wherein the optical image capturing system further satisfies: 0.4≦|tan(HAF)|≦6.0; where HAF is a half of a view angle of the optical image capturing system; wherein the optical image capturing system further satisfies: 40 deg≦HAF≦110 deg. 10. The optical image capturing system of claim 9 , wherein the optical image capturing system further satisfies: 0<ED45/IN45≦50; where ED 45 is a horizontal distance between the fourth lens and the fifth lens at the height of ½ HEP; IN 45 is a horizontal distance between the fourth lens and the fifth lens on the optical axis. 11. The optical image capturing system of claim 9 , wherein the optical image capturing system further satisfies: 0<ED12/IN12≦10; where ED 12 is a horizontal distance between the first lens and the second lens at the height of ½ HEP; IN 12 is a horizontal distance between the first lens and the second lens on the optical axis. 12. The optical image captu
with mechanism for focusing or varying magnification · CPC title
designed for infrared light · CPC title
compensating for small deviations, e.g. due to vibration or shake (movement of one or more optical elements for control of motion blur in cameras, projectors or printers G03B2205/0007; image stabilisation in cameras peculiar to the presence or use of an electronic image sensor H04N23/68) · CPC title
for use with infrared or ultraviolet radiation, e.g. for separating visible light from infrared and/or ultraviolet radiation · CPC title
having five or more lenses · CPC title
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