POP-OUT ZOOM CAMERA
20230205055 · 2023-06-29
Inventors
- Gal Shabtay (Tel Aviv, IL)
- Ephraim Goldenberg (Tel Aviv, IL)
- Itay Yedid (Tel Aviv, IL)
- Roy Rudnick (Tel Aviv, IL)
- Michael Dror (Tel Aviv, IL)
- Michael Scherer (Tel Aviv, IL)
- Ziv Shemesh (Tel Aviv, IL)
- Nadav Goulinski (Tel Aviv, IL)
Cpc classification
G02B15/14
PHYSICS
G02B13/02
PHYSICS
G03B30/00
PHYSICS
International classification
G03B30/00
PHYSICS
G02B15/14
PHYSICS
G02B13/00
PHYSICS
Abstract
Cameras with OIS capable of performing multi zoom super macro photography and handheld electronic devices comprising such cameras. A camera may include a lens comprising N lens elements L.sub.1-L.sub.N divided into two or more lens groups arranged along a lens optical axis starting with L.sub.1 on an object side and ending with L.sub.N on an image side, adjacent lens groups separated by a respective air-gap d.sub.1 along the lens optical axis; an image sensor with a sensor diagonal SD between 7 and 20 mm separated from lens element L.sub.N by an air-gap d.sub.2 along the lens optical axis; and an actuator for controlling air-gaps d.sub.1 and d.sub.2 to switch the camera between M≥1 operative pop-out states and a collapsed state and to focus the camera on an object at an object-lens distance of less than 30 cm.
Claims
1-12. (canceled)
13. A camera, comprising: a lens comprising N lens elements L.sub.1-L.sub.N arranged along a lens optical axis starting with L.sub.1 on an object side and ending with L.sub.N on an image side, wherein N≥5, wherein the lens elements are divided into two or more lens groups and wherein two adjacent lens groups are separated by a respective air-gap d.sub.1 along the lens optical axis; an image sensor separated from lens element L.sub.N by an air-gap d.sub.2 along the lens optical axis, the image sensor having a sensor diagonal S.sub.D between 7 and 20 mm; and an actuator operative to control the air-gaps d.sub.1 and d.sub.2 to switch the camera between M≥1 operative pop-out states and a collapsed state and to focus the camera on an object at an object-lens distance u of less than 30 cm, wherein in each operative pop-out state m∈{1, 2, . . . M} the lens has a respective effective focal length EFL.sub.m and a total track length TTL.sub.m, wherein in the collapsed state the lens has a total track length c-TTL, wherein a minimal EFL.sub.min of the M effective focal lengths EFL.sub.m is equal to or greater than 7 mm, and wherein c-TTL<0.65.Math.EFL.sub.min, wherein the actuator comprises a plurality of springs and a guiding and positioning mechanism, wherein the guiding mechanism enables sufficient z-decenter and xy-decenter accuracy between lens elements in the operative state and repeatability in switching between operative and collapsed states, and wherein the sufficient decenter accuracy is less than 0.1 mm decenter and the repeatability is less than 0.05 mm decenter.
14. The camera of claim 13, wherein the sufficient decenter accuracy is less than 0.8 mm decenter and wherein the repeatability is less than 0.04 mm decenter.
15. (canceled)
16. A camera, comprising: a lens comprising N lens elements L.sub.1-L.sub.N arranged along a lens optical axis starting with L.sub.1 on an object side and ending with L.sub.N on an image side, wherein N≥5, wherein the lens elements are divided into two or more lens groups and wherein two adjacent lens groups are separated by a respective air-gap d.sub.1 along the lens optical axis; an image sensor separated from lens element L.sub.N by an air-gap d.sub.2 along the lens optical axis, the image sensor having a sensor diagonal S.sub.D between 7 and 20 mm; and an actuator operative to control the air-gaps d.sub.1 and d.sub.2 to switch the camera between M≥1 operative pop-out states and a collapsed state and to focus the camera on an object at an object-lens distance u of less than 30 cm, wherein in each operative pop-out state m∈{1, 2, . . . M} the lens has a respective effective focal length EFL.sub.m and a total track length TTL.sub.m, wherein in the collapsed state the lens has a total track length c-TTL, wherein a minimal EFL.sub.min of the M effective focal lengths EFL.sub.m is equal to or greater than 7 mm, and wherein c-TTL<0.65.Math.EFL.sub.min, wherein the switching from the operative state to the collapsed state is performed by a window frame pressing on the optics module to bring the camera to a collapsed state height.
17. (canceled)
18. (canceled)
19. (canceled)
20. A camera, comprising: a lens comprising N lens elements L.sub.1-L.sub.N arranged along a lens optical axis starting with L.sub.1 on an object side and ending with L.sub.N on an image side, wherein N≥5, wherein the lens elements are divided into two or more lens groups and wherein two adjacent lens groups are separated by a respective air-gap d.sub.1 along the lens optical axis; an image sensor separated from lens element L.sub.N by an air-gap d.sub.2 along the lens optical axis, the image sensor having a sensor diagonal S.sub.D between 7 and 20 mm; and an actuator operative to control the air-gaps d.sub.1 and d.sub.2 to switch the camera between M≥1 operative pop-out states and a collapsed state and to focus the camera on an object at an object-lens distance u of less than 30 cm, wherein in each operative pop-out state m∈{1,2, . . . M} the lens has a respective effective focal length EFL.sub.m and a total track length TTL.sub.m, wherein in the collapsed state the lens has a total track length c-TTL, wherein a minimal EFL.sub.min of the M effective focal lengths EFL.sub.m is equal to or greater than 7 mm, and wherein c-TTL<0.65.Math.EFL.sub.min, wherein the actuator is further operative to, in a first operative pop-out state, focus the camera to an object at an object-lens distance of equal or less than 100 cm, and wherein, the focusing of the camera to an object-lens distance of less than 30 cm is in a second pop-out state different from the first pop-out state.
21. (canceled)
22. (canceled)
23. A camera, comprising: a lens comprising N lens elements L.sub.1-L.sub.N arranged along a lens optical axis starting with L.sub.1 on an object side and ending with L.sub.N on an image side, wherein N≥5, wherein the lens elements are divided into two or more lens groups and wherein two adjacent lens groups are separated by a respective air-gap d.sub.1 along the lens optical axis; an image sensor separated from lens element L.sub.N by an air-gap d.sub.2 along the lens optical axis, the image sensor having a sensor diagonal S.sub.D between 7 and 20 mm; and an actuator operative to control the air-gaps d.sub.1 and d.sub.2 to switch the camera between M≥1 operative pop-out states and a collapsed state and to focus the camera on an object at an object-lens distance u of less than 30 cm, wherein in each operative pop-out state m∈{1, 2, . . . M} the lens has a respective effective focal length EFL.sub.m and a total track length TTL.sub.m, wherein in the collapsed state the lens has a total track length c-TTL, wherein a minimal EFL.sub.min of the M effective focal lengths EFL.sub.m is equal to or greater than 7 mm, and wherein c-TTL<0.65.Math.EFL.sub.min, wherein the actuator comprises a guiding and positioning mechanism based on a kinematic coupling mechanism.
24. A handheld electronic device, comprising the camera of claim 20.
25. A camera system comprising the camera of claim 20 together with a second camera comprising a second lens system having at least one air-gap, wherein the actuator also is further operative to control the at least one air-gap of the second camera to switch the second camera between O≥1 second camera operative pop-out states and a second camera collapsed state, and wherein the actuator is further operative to control the at least one air-gap of the second camera for simultaneously switching the camera of claim 20 and the second camera between the O≥1 second camera operative pop-out states and the second camera collapsed state.
26. The camera system of claim 25, wherein in the second camera collapsed state the second lens has a total track length c-TTL.sub.2 and wherein cTTL.sub.2=cTTL±10%.
27. A handheld electronic device comprising the camera system of claim 25.
28. The handheld electronic device of claim 25, wherein the device has a device exterior surface, wherein in an operative state either of the first or second cameras extends beyond the device exterior surface by 2 mm-10 mm, and wherein in a non-operative state either of the first or second cameras extends beyond the device exterior surface by less than 2 mm.
29-91. (canceled)
92. A lens system, comprising: an image sensor; and a lens distanced by a back focal length (BFL) from the image sensor and having a field of view FOV<40 deg, an effective focal length (EFL) and a lens mean glass thickness (MGT), the lens including i lens elements L1-Li starting with L1 from an object side toward an image side, wherein 1≤i≤N, wherein each lens element Li has a respective thickness T.sub.i and a focal length f.sub.i, with a magnitude |f.sub.i|, wherein at least some lens elements are organized in two lens groups G1 and G2 separated by a big gap (BG) and having, respectively for G1 and G2, effective focal lengths EFL(G1) and EFL(G2), mean glass thicknesses MGT(G1) and MGT(G2) and mean air gaps MAG(G1) and MAG(G2), wherein the lens has a pop-out total track length TTL<20 mm in a pop-out state and a collapsed total track length c-TTL in a collapsed state, wherein TTL<0.95×EFL, and wherein a ratio c-TTL/TTL<0.7, wherein a first deflection point at the rear surface of L.sub.N-1 is located at a distance d-r measured from an optical axis of the lens, and a first deflection point at the front surface of L.sub.N-1 is located at a distance d-f measured from an optical axis of the lens, and wherein 0.5 mm<d-r, d-f>1.0 mm.
93. A lens system, comprising: an image sensor; and a lens distanced by a back focal length (BFL) from the image sensor and having a field of view FOV<40 deg, an effective focal length (EFL) and a lens mean glass thickness (MGT), the lens including i lens elements L1-Li starting with L1 from an object side toward an image side, wherein 1≤i≤N, wherein each lens element Li has a respective thickness T.sub.i and a focal length f.sub.i, with a magnitude |f.sub.i|, wherein at least some lens elements are organized in two lens groups G1 and G2 separated by a big gap (BG) and having, respectively for G1 and G2, effective focal lengths EFL(G1) and EFL(G2), mean glass thicknesses MGT(G1) and MGT(G2) and mean air gaps MAG(G1) and MAG(G2), wherein the lens has a pop-out total track length TTL<20 mm in a pop-out state and a collapsed total track length c-TTL in a collapsed state, wherein TTL<0.95×EFL, and wherein a ratio c-TTL/TTL<0.7, wherein a first deflection point at the rear surface of L.sub.N-1 is located at a distance d-r measured from an optical axis of the lens, and wherein d-r>1.5 mm.
94. A lens system, comprising: an image sensor; and a lens distanced by a back focal length (BFL) from the image sensor and having a field of view FOV<40 deg, an effective focal length (EFL) and a lens mean glass thickness (MGT), the lens including i lens elements L1-Li starting with L1 from an object side toward an image side, wherein 1≤i≤N, wherein each lens element Li has a respective thickness T.sub.i and a focal length f.sub.i, with a magnitude |f.sub.i|, wherein at least some lens elements are organized in two lens groups G1 and G2 separated by a big gap (BG) and having, respectively for G1 and G2, effective focal lengths EFL(G1) and EFL(G2), mean glass thicknesses MGT(G1) and MGT(G2) and mean air gaps MAG(G1) and MAG(G2), wherein the lens has a pop-out total track length TTL<20 mm in a pop-out state and a collapsed total track length c-TTL in a collapsed state, wherein TTL<0.95×EFL, and wherein a ratio c-TTL/TTL<0.7, wherein a first deflection point at the front surface of L.sub.N is located at a distance d-f measured from an optical axis of the lens, and wherein d-f>0.8 mm.
95. A lens system, comprising: an image sensor; and a lens distanced by a back focal length (BFL) from the image sensor and having a field of view FOV<40 deg, an effective focal length (EFL) and a lens mean glass thickness (MGT), the lens including i lens elements L1-Li starting with L1 from an object side toward an image side, wherein 1≤i≤N, wherein each lens element Li has a respective thickness T.sub.i and a focal length f.sub.i, with a magnitude |f.sub.i|, wherein at least some lens elements are organized in two lens groups G1 and G2 separated by a big gap (BG) and having, respectively for G1 and G2, effective focal lengths EFL(G1) and EFL(G2), mean glass thicknesses MGT(G1) and MGT(G2) and mean air gaps MAG(G1) and MAG(G2), wherein the lens has a pop-out total track length TTL<20 mm in a pop-out state and a collapsed total track length c-TTL in a collapsed state, wherein TTL<0.95×EFL, and wherein a ratio c-TTL/TTL<0.7, wherein a first deflection point at the rear surface of L.sub.N is located at a distance d-r measured from an optical axis of the lens, and wherein d-r>0.15 mm.
96. A lens system, comprising: an image sensor; and a lens distanced by a back focal length (BFL) from the image sensor and having a field of view FOV<40 deg, an effective focal length (EFL) and a lens mean glass thickness (MGT), the lens including i lens elements L1-Li starting with L1 from an object side toward an image side, wherein 1≤i≤N, wherein each lens element Li has a respective thickness T.sub.i and a focal length f.sub.i, with a magnitude |f.sub.i|, wherein at least some lens elements are organized in two lens groups G1 and G2 separated by a big gap (BG) and having, respectively for G1 and G2, effective focal lengths EFL(G1) and EFL(G2), mean glass thicknesses MGT(G1) and MGT(G2) and mean air gaps MAG(G1) and MAG(G2), wherein the lens has a pop-out total track length TTL<20 mm in a pop-out state and a collapsed total track length c-TTL in a collapsed state, wherein TTL<0.95×EFL, and wherein a ratio c-TTL/TTL<0.7, wherein a first deflection point at the rear surface of L.sub.N is located at a distance d-r measured from an optical axis of the lens, and wherein d-r>2 mm.
97-99. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0035] Non-limiting embodiments of the presently disclosed subject matter are described below with reference to figures attached hereto that are listed following this paragraph. Identical structures, elements or parts that appear in more than one figure may be labeled with the same numeral in the figures in which they appear. The drawings and descriptions are meant to illuminate and clarify embodiments disclosed herein, and should not be considered limiting in any way.
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DETAILED DESCRIPTION
[0070]
[0071] Lens system 100 may be included in a pop-out Tele camera such as camera 200, an optics module such as an optics module 240 (see
[0072] Henceforth and for simplicity, the use of the term “pop-out” before various components may be skipped, with the understanding that if defined the first time as being a “pop-out” component, that component is such throughout this description.
[0073] Lens system 100 comprises two groups of lens elements, Group 1 (G1) and Group 2 (G2). G1 and G2 are movable along a common optical axis to occupy different positions that correspond to different Tele states. In some embodiments, two or three or four or five particular lens states may be supported, e.g. the four lens states shown in
[0074] The pop-out design allows for a slim lens when the camera is not in use. When the camera is in use (“activated”), the lens pops out of an exterior device surface into an operative state, acting as an optical system that produces a crisp image on an image sensor. Each lens group comprises lens elements that have fixed distances to each other, but an air gap d.sub.G1-G2 between G1 and G2 may change between the different lens states. G1 and G2 can be moved relative to each other by an actuator such as actuator 212 see below. The actuator may move G1 and G2 by e.g. 0.05-8.5 mm with respect to each other (e.g. for modifying an air-gap such as d.sub.G1-G2) or it may move G1 and G2 together relative to the image sensor for switching from one lens state to another lens state, e.g. from a Tele state to a Macro state
[0075] In some embodiments, the transition between different lens focus distances may be continuous, e.g. the pop-out camera may be capable of focusing from infinity to e.g. 5 cm continuously. In other embodiments, the transition may be discrete with ranges for continuous focusing. For example, in a Tele state, the pop-out camera may be capable of focusing continuously to object-lens distances (“u”) from infinity to e.g. 1 m, and in a Macro state the pop-out camera may be capable of focusing continuously to u from e.g. 40 cm to 5 cm. The F number (f/#) may undergo only slight changes when transitioning between the different lens states, e.g. by less than 5%, or less than 10%, or less than 30% with respect to, respectively, a lens state at infinity, at 10 cm, or at 5 cm. In yet other embodiments, only two different lens states may be provided, e.g. one collapsed lens state and one Tele lens state. The Tele lens state may be switched to a Macro lens state by changing only the BFL, i.e. by moving all lens elements.
[0076]
[0077] As an example (“SD-Example”) for TTL and SD, in the following we apply Eq. 1 to a Tele camera with FOV=30 degrees. We assume EFL=TTL and that an image sensor may be in a 4:3 width/height format, so that sensor width W˜0.8SD.
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[0081] For embodiments that support a continuous lens state change, there may be continuous transitions between the lens states shown in
[0082]
[0083] An entrance pupil (or “aperture size”) of camera 200 may be for example 4-9 mm. For comparison, a folded Tele camera usually has an entrance pupil smaller than 4.5 mm, while a dedicated Macro camera usually has an entrance pupil smaller than 1 mm. Assuming pop-out Tele camera 200 has an aperture size of 7 mm vs. a size of 4 mm for the folded Tele camera, camera 200 will receive about 3 times more light, corresponding to a better low light signal-to-noise ratio (“SNR”). In comparison with the dedicated Macro camera with a 1 mm aperture size, camera 200 will have a 6-fold larger EFL, and a ˜40 times shallower Depth of Field (DOF), translating into a ˜40 times stronger optical Bokeh effect.
[0084] The lens, image sensor and (optionally) an optical window or “filter” (not shown here but shown e.g. in lens systems 800, 850, 900, 1000, 1100, 1200, 1300, 1700, 1800, 1900, 2000, 2100) form a pop-out lens system 260. The camera may have a Tele FOV.sub.T of 15-50 deg.
[0085] The TTL of the lens in a pop-out Tele camera disclosed herein may be 5-35 mm. The image sensor may have a sensor diagonal SD in the range 3.5-25 mm and EFL of 6 mm to 45 mm.
[0086]
[0087] Pop-out optics module 240 and window frame 214 form an air-gap (or simply “gap”) 222 between lens 206 and window 216, which gap may be for example 0.15-1.2 mm. Air-gap 222 allows for a combined movement of about 0.1-1.1 mm of a first lens barrel section 202 and a second lens barrel section 204 by for performing auto-focus (AF) and OIS by moving the lens. First lens barrel section 202 includes G1. Second lens barrel section 204 includes G2. In other embodiments, air-gap 222 may be significantly larger, e.g. 6 mm. A module seal 224 prevents particles and fluids from entering the camera.
[0088] Camera 200 exceeds an exterior surface 252 of host device 250 by a significant pop-out bump height H.sub.P-O-B 226. “Significant” may be for example 1.0 mm-15.0 mm. In the extended state, camera 200 increases the height of host device 250 to a “height in a pop-out state” H.sub.P-O (not shown). H.sub.P-O is given by adding H.sub.P-O-B 226 to a device height H.sub.0 that does not include the bump, see e.g. H.sub.0 606, H.sub.P-O=H.sub.0+H.sub.P-O-B. In
[0089] In general, lens 206 includes N≥5 lens elements. In some embodiments, there may be more than two lens barrel sections with one lens groups each. For example, there may be 3, 4, lens barrel sections, with each lens barrel section carrying a lens group. Examples of lens systems with two lens groups are lens systems 206-1, 206-2, 206-3, 206-4, 206-6, 206-7, 206-8, 206-9, 206-10 and 206-11 shown in
[0090] Lens groups may be determined by the largest air-gaps between consecutive lens elements. For example, the largest air-gap present between two consecutive lens elements may be used to divide a lens into two lens groups, the largest air-gap and the second largest air-gap present between two consecutive lens elements may be used to define three lens groups, etc. In some examples, collapsible air-gaps are formed between two consecutive lens elements. In other examples, the collapsible air-gaps are formed between a lens element and another optical component, e.g. between a lens element and an optical filter, or between a lens element and an image sensor (i.e. the air-gap is the BFL).
[0091] For examples that support two or three or four particular lens states, there may be two or three or four particular values for air-gaps. For other embodiments that support a continuous change of lens states, values for air-gaps may change continuously.
[0092] In the extended state and with reference to
[0093] In some embodiments, a guiding and positioning mechanism such as described in PCT/IB2020/058697 may be based on a kinematic coupling mechanism.
[0094] An optical system such as camera 200 may be designed to support, e.g. by means of a guiding and positioning mechanism based on kinematic coupling mechanism, in some examples, accuracy tolerances for decenter of e.g. ±20 μm in the X-Z plane and of e.g. ±10 μm in the Y direction, as well as for a tilt of 0.5°. Repeatability tolerances for decenter may be e.g. ±10 μm in the X-Z plane and of e.g. ±5 μm in the Y direction, as well as for a tilt of 0.25°. In other examples, accuracy tolerances for decenter may be e.g. ±10 μm in the X-Z plane and of e.g. ±5 μm in the Y direction, as well as e.g. +0.15°. Repeatability tolerances for decenter may be e.g. ±5 μm in the X-Z plane and of e.g. ±2.5 μm in the Y direction, as well as for a tilt of 0.08°. In yet other examples, accuracy tolerances for decenter may be e.g. ±5 μm in the X-Z plane and of e.g. ±2.5 μm in the Y direction, as well as e.g. +0.1°. Repeatability tolerances for decenter may be e.g. ±1.5 μm in the X-Z plane and of e.g. ±0.8 μm in the Y direction, as well as for atilt of 0.05°.
[0095] “Accuracy tolerances” refer here to a maximum variation of the distances between optical elements and between mechanical elements. “Repeatability tolerances” refer here to a maximum variation of the distances between optical elements and between mechanical elements in different pop-out cycles, i.e. the capability of the mechanical and optical elements to return to their prior positions after one or many pop-out (or collapse) events. Tolerances in the Y direction may be less important, as variations in Y can be compensated by optical feedback and moving the lens for auto-focus.
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[0097] In
[0098] A plurality of lens states such as shown in
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[0106] All lens systems shown in the following may be included in a pop-out optics module such as 240 or 500 and in a pop-out camera such as 200.
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[0108] In the pop-out state, G1 is separated from G2 by an air-gap d.sub.G1-G2=6.22 mm (i.e. T13, the distance between S.sub.13 and S.sub.14 in Table 1) and G2 is separated from window 802 by an air-gap d17=0.51 mm (T17, the distance between S.sub.13 and S.sub.14 in Table 1). The BFL is 1.02 mm.
[0109] In a collapsed state with a collapsed c-TTL, G1 may be separated from G2 by c-d.sub.G1-G2=0.02-2.5 mm and G2 may be separated from image sensor 208 by c-BFL=0.2-0.8 mm. The c-TTL of lens system 800 may be c-TTL=12.6-16 mm, c-TTL/EFL may be equal to or greater than 0.97 and c-TTL/TTL may be equal to or greater than 0.64.
[0110] In other examples, when switching between a pop-out state and a collapsed state only air-gap d.sub.G1-G2 may be modified to c-d.sub.G1-G2, which may be 0.2-2.5 mm. BFL may remain unchanged.
[0111] In some examples, G1+G2 are movable together relative to image sensor 208 in a range R.sub.AF for focusing of camera 200 from infinity down to 1 m or even down to 4 cm. R.sub.AF may be up to 1 mm for focusing down to 1 m, and up to 7 mm for focusing down to 4 cm.
[0112] Lens system 800 is represented by Tables 1-2. Table 1 provides optical data for lens 206-1 in the pop-out state, and Table 2 provides aspheric data.
TABLE-US-00001 TABLE 1 Group Lens Surface Type R [mm] T [mm] Nd Vd D [mm] Object S.sub.0 Flat Infinity Infinity Stop S.sub.1 Flat Infinity −0.775 9.000 G1 L1 S.sub.2 QFORB type 1 17.302 1.786 1.5661 37.43 8.577 G1 L1 S.sub.3 QFORB type 1 62.771 0.725 8.652 G1 L2 S.sub.4 QFORB type 1 10.090 1.928 1.5449 55.91 8.557 G1 L2 S.sub.5 QFORB type 1 −23.147 0.689 8.086 G1 L3 S.sub.6 QFORB type 1 80.507 0.232 1.6991 19.44 8.073 G1 L3 S.sub.7 QFORB type 1 10.360 1.287 5.509 G1 L4 S.sub.8 QFORB type 1 −4.430 0.928 1.5449 55.91 5.543 G1 L4 S.sub.9 QFORB type 1 −7.104 0.144 5.555 G1 L5 S.sub.10 QFORB type 1 440.072 1.646 1.6991 19.44 6.397 G1 L5 S.sub.11 QFORB type 1 28.935 0.033 6.494 G1 L6 S.sub.12 QFORB type 1 39.391 2.010 1.5449 55.91 6.726 G1 L6 S.sub.13 QFORB type 1 −5.075 6.224 6.322 G2 L7 S.sub.14 QFORB type 1 −6.250 0.601 1.6991 19.44 6.435 G2 L7 S.sub.15 QFORB type 1 −4.314 0.033 6.292 G2 L8 S.sub.16 QFORB type 1 −4.226 0.553 1.5449 55.91 6.944 G2 L8 S.sub.17 QFORB type 1 45.368 0.510 7.179 Glass window S.sub.18 Flat Infinity 0.21 1.5168 64.17 7.235 S.sub.19 Flat Infinity 0.3 7.000 Image sensor S.sub.20 Flat Infinity 0 7.000
TABLE-US-00002 TABLE 2 Surface Conic (k) NR A.sub.2 A.sub.2 A.sub.3 A4 S.sub.2 0 4.500 1.937E−01 3.246E−02 1.318E−03 2.280E−04 S.sub.3 0 4.500 2.594E−01 8.795E−02 5.484E−03 3.649E−03 S.sub.4 0 4.000 −1.694E−01 7.487E−04 −3.651E−03 1.653E−03 S.sub.5 0 4.000 −8.607E−02 −4.556E−02 9.328E−03 −1.115E−04 S.sub.6 0 4.000 −8.318E−01 8.107E−02 −3.312E−03 1.627E−04 S.sub.7 0 3.600 −7.475E−01 6.703E−02 −6.921E−03 5.168E−04 S.sub.8 0 3.540 1.184E+00 −7.816E−02 6.294E−03 −5.495E−03 S.sub.9 0 3.540 1.068E+00 −3.634E−02 4.046E−03 −3.309E−03 S.sub.10 0 3.540 −7.538E−01 −8.548E−02 −3.579E−02 −4.211E−03 S.sub.11 0 3.540 −3.354E−01 5.277E−03 −9.014E−03 −8.400E−04 S.sub.12 0 3.540 −6.434E−02 −5.113E−04 3.479E−04 −1.573E−03 S.sub.13 0 3.540 5.865E−03 1.176E−03 3.052E−03 5.638E−04 S.sub.14 0 3.540 −3.496E−01 −4.291E−02 −1.806E−02 −1.974E−03 S.sub.15 0 3.540 −9.519E−03 2.425E−02 −8.039E−03 −5.814E−03 S.sub.16 0 3.540 2.311E−01 7.899E−02 9.116E−03 −5.414E−03 S.sub.17 0 3.540 −2.319E−01 8.502E−03 −2.231E−04 −1.988E−04
[0113]
[0114] In a collapsed state, a “collapsed” cTTL may be 5-11 mm. The difference between cTTL and TTL stems from a modified air-gap between L3 and L4, which is a collapsed air-gap c-d.sub.G1-G2 and which may be 0.05-1.0 mm and a modified BFL which is a c-BFL and may be 0.1-1.5 mm. For lens system 850, a ratio TTL/EFL is 0.89, i.e. EFL>TTL. The ratio cTTL/EFL may be 0.35-0.75.
TABLE-US-00003 TABLE 3 Embodiment 850 EFL = 15.15 mm, F number = 2.0, FOV = 32.56 deg. Aperture Curvature Radius Focal Surface # Comment Type Radius Thickness (D/2) Material Index Abbe # Length 1 A.S Plano Infinity −1.823 3.731 2 Lens 1 ASP 4.314 1.837 3.731 Plastic 1.54 55.91 9.50 3 21.571 0.048 3.560 4 Lens 2 ASP 4.978 0.265 3.419 Plastic 1.67 19.44 −17.41 5 3.422 0.113 3.139 6 Lens 3 ASP 5.764 1.473 3.113 Plastic 1.67 19.44 20.20 7 11.201 1.780 2.909 8 Lens 4 ASP −6.075 0.260 2.143 Plastic 1.67 19.44 −14.33 9 −17.446 1.230 2.008 10 Lens 5 ASP −18.298 0.688 2.264 Plastic 1.54 55.91 184.98 11 −16.202 0.040 2.468 12 Lens 6 ASP 10.235 0.273 2.679 Plastic 1.54 55.91 −93.97 13 8.454 4.783 2.848 14 Filter Plano Infinity 0.210 — Glass 1.52 64.17 15 Infinity 0.500 — 16 Image Plano Infinity — —
TABLE-US-00004 TABLE 4 Aspheric Coefficients Surface # Conic A4 A6 A8 A10 2 0 −4.57E−04 −5.55E−05 2.46E−05 −4.65E−06 3 0 8.55E−04 7.37E−04 −1.07E−04 9.78E−06 4 0 −1.51E−02 3.43E−03 −6.33E−04 8.54E−05 5 0 −2.21E−02 5.71E−03 −1.50E−03 2.85E−04 6 0 −3.61E−03 3.56E−03 −1.08E−03 2.29E−04 7 0 −1.74E−04 2.47E−04 5.66E−05 −3.21E−05 8 0 1.75E−02 2.27E−03 −2.24E−03 7.99E−04 9 0 1.79E−02 5.45E−03 −3.71E−03 1.37E−03 10 0 −4.37E−03 −1.59E−02 1.33E−02 −6.54E−03 11 0 −7.77E−02 4.02E−02 −1.21E−02 1.65E−03 12 0 −1.39E−01 7.50E−02 −2.44E−02 4.78E−03 13 0 −5.32E−02 1.90E−02 −4.73E−03 6.11E−04
TABLE-US-00005 TABLE 5 Aspheric Coefficients Surface # A12 A14 A16 2 4.92E−07 −2.88E−08 5.71E−10 3 −6.44E−07 1.90E−08 −1.21E−10 4 −6.96E−06 3.18E−07 −6.61E−09 5 −3.28E−05 2.13E−06 −6.25E−08 6 −2.83E−05 1.87E−06 −5.35E−08 7 5.30E−06 −4.54E−07 1.54E−08 8 −1.70E−04 1.94E−05 −9.28E−07 9 −2.64E−04 2.29E−05 −1.78E−07 10 1.83E−03 −2.76E−04 1.73E−05 11 −8.43E−06 −2.54E−05 2.18E−06 12 −5.86E−04 4.30E−05 −1.42E−06 13 −2.86E−05 −1.51E−06 1.53E−07
[0115]
[0116] In the pop-out state, G1 is separated from G2 by an air-gap d.sub.G1-G2=0.974 mm (T4 in Table 3) and G2 is separated from window 802 by an air-gap d10=2.66 mm (T10). The BFL is 3.27 mm.
[0117] In a collapsed state with a collapsed c-TTL, G1 may be separated from G2 by c-d.sub.G1-G2=0.02-0.75 mm and G2 may be separated from image sensor 208 by c-BFL=0.2-2.5 mm.
[0118] In other examples, when switching between a pop-out state and a collapsed state only BFL may be modified to c-BFL=0.2-2.5 mm and air-gap d.sub.G1-G2 may not change. The c-TTL of lens system 900 may be 3.6-7.7 mm. Ratio c-TTL/EFL may be equal to or greater than 0.45, and ratio c-TTL/TTL may be equal to or greater than 0.46.
[0119] G1+G2 are movable together relative to image sensor 208 and in a range R.sub.AF. Lens system 900 is represented by Tables 6-7.
TABLE-US-00006 TABLE 6 # Type Comments R T Nd Vd CA/2 k 1 Evn-asph L.sub.1 S.sub.1 2.271 1.127 1.67 54.96 1.8 7.979E−07 2 Evn-asph S.sub.2 11.822 0.06 1.725 2.410 3 Evn-asph L.sub.2 S.sub.3 14.756 0.27 1.64 23.52 1.7 13.805 4 Evn-asph S.sub.4 2.728 0.974 1.45 2.902E−03 5 Evn-asph L.sub.3 S.sub.5 3.713 0.416 1.64 23.52 1.55 −2.868 6 Evn-asph S.sub.6 3.524 0.764 1.5 −8.486 7 Evn-asph L.sub.4 S.sub.7 −5.301 0.338 1.64 23.52 1.48 2.743 8 Evn-asph S.sub.8 −4.321 0.212 1.6 2.578 9 Evn-asph L.sub.5 S.sub.9 4.327 0.352 1.53 55.66 1.68 −9.755 10 Evn-asph S.sub.10 3.771 2.656 1.8 −6.534 11 Flat Infinity 0.210 1.52 64.16 2.894 12 Flat Infinity 0.401 2.938 13 Flat Infinity — 3.028
TABLE-US-00007 TABLE 7 # A1 A2 A3 A4 A5 A6 A7 1 4.421E−05 −2.009E−04 −1.152E−04 −6.051E−10 2 6.027E−03 −1.244E−03 −5.380E−08 3 0.020 7.012E−04 −1.081E−03 −6.297E−08 4 0.024 0.011 4.241E−04 −9.114E−08 5 −0.022 8.939E−03 2.200E−03 −1.002E−06 6 −0.012 6.756E−03 −2.299E−03 1.314E−03 1.758E−04 −1.030E−05 7 −0.017 0.053 −0.044 7.968E−03 −1.599E−03 6.117E−04 7.436E−09 8 −0.086 0.159 −0.117 0.041 −9.090E−03 1.280E−03 2.793E−07 9 −0.252 0.182 −0.084 0.016 −6.759E−04 −1.940E−06 10 −0.175 0.095 −0.040 8.597E−03 −7.751E−04 −8.160E−07
[0120]
[0121] In the pop-out state, G1 is separated from G2 by an air-gap d.sub.G1-G2=1.547 mm (T2 in Table 5) and G2 is separated from window 802 by an air-gap d10=4.115 mm (T10). The BFL 6.998 mm.
[0122] In a collapsed state with a collapsed c-TTL, G1 may be separated from G2 by c-d.sub.G1-G2=0.02-0.75 mm and G2 may be separated from image sensor 208 by c-BFL=0.2-5 mm. In other examples, when switching between a pop-out state and a collapsed state only BFL may be modified to c-BFL=0.2-2.5 mm and air-gap d.sub.G1-G2 may not change. The c-TTL of lens system 1000 may be 6.2-13 mm. Ratio c-TTL/EFL may be equal to or greater than 0.39 and ratio c-TTL/TTL may be equal to or greater than 0.41.
[0123] G1+G2 are movable together relative to image sensor 208 and in a range R.sub.AF. R.sub.AF may be up to 0.6 mm for focusing down to 1 m, and up to 8 mm for focusing down to 0.04 m.
[0124] Lens system 1000 is represented by Tables 8-9. Table 5 provides optical data for lens 206-3 being in a pop-out state Table 6 provides aspheric data.
TABLE-US-00008 TABLE 8 Conic # R Thickness Material CA/2 coefficient K 0 Infinity 1.00E+06 1 4.009 2.271 H−ZK3 2.96 0 2 18.115 1.547 2.55 0 3 −5.167 0.562 EP6000L 2.00 −2.296 4 6.968 0.162 2.00 9.483 5 4.666 1.082 K26R 1.90 −2.619 6 52.645 0.121 1.90 10.398 7 28.168 1.851 EP6000L 1.83 −367.355 8 −5.062 0.101 1.83 −10.130 9 −5.098 0.291 K26R 1.76 −10.587 10 15.000 4.115 1.76 −9.745 11 Infinity 0.210 BK7 2.44 12 Infinity 2.673 2.47 13 Infinity 2.94
TABLE-US-00009 TABLE 9 # A1 A2 A3 A4 A5 A6 A7 1 0 0 0 0 0 0 0 2 0 0 0 0 0 0 0 3 7.1296E−03 −1.3791E−04 −2.8926E−05 3.7349E−06 0 0 0 4 −2.8741E−03 8.8769E−04 −1.2786E−04 2.0275E−05 0 0 0 5 −2.1504E−03 −3.1621E−04 −3.2758E−06 −2.2831E−07 0 0 0 6 4.1139E−03 −1.9087E−03 1.9639E−04 −3.2249E−05 0 0 0 7 −4.3880E−03 −7.7699E−04 1.8992E−04 −6.8854E−06 0 0 0 8 −6.5726E−03 −5.8651E−04 1.3315E−04 −2.0025E−05 0 0 0 9 −7.8205E−03 −1.1425E−03 2.7014E−04 −4.0371E−05 0 0 0 10 −5.0642E−03 3.6557E−04 −9.7321E−05 1.7319E−05 0 0 0
[0125]
[0126] In the Tele state (see
[0127] In the Macro configuration (see
for EFL≈15 mm and u=50 mm the effective lens-image distance v is v≈21 mm and a M of about 2.4:1 is achieved.
[0128] In a collapsed state with a collapsed c-TTL, G1 may be separated from G2 by e.g. c-d.sub.G1-G2=0.02-1.4 mm and G2 may be separated from image sensor 208 by c-BFL=0.2-0.8 mm. A c-TTL of lens system 1100 may be c-TTL=8.5-14 mm. For the Macro state, ratio c-TTL/EFL may be equal to or greater than 0.57 and ratio c-TTL/TTL may be equal to or greater than 0.41.
[0129] In some examples, another (large) air gap such as air gap d11 between L5 and L6 may be collapsed when switching to a collapsed state. For an example with a collapsible air gap d11, c-TTL of lens system 1100 may be 8.5-11 mm.
[0130] In other examples, when switching between a pop-out state and a collapsed state only d.sub.G1-G2=0.02-1.4 mm may be modified to c-d.sub.G1-G2=0.02-1.4 mm and BFL may not change. In yet other examples, when switching between a pop-out state and a collapsed state only BFL may be modified to c-BFL=0.2-0.8 mm and air-gap d.sub.G1-G2 may not change.
[0131] Lens system 1100 is represented by Tables 10-13. Table 10 and Table 11 provide optical data for lens 206-4 being in pop-out state and (focused at infinity (left) and at 5 cm (right)). Table 12 provides aspheric data and Table 13 provides data on the focus lengths of L1-L6 as well as on G1 and G2.
TABLE-US-00010 TABLE 10 Group Lens Surface Type R [mm] T [mm] Nd Vd D [mm] Object S.sub.0 Flat Infinity See Table 11 Stop S.sub.1 Flat Infinity −1.297 3.39 G1 L1 S.sub.2 Even Asphere 4.760 2.049 1.5348 3.40 8.577 G1 L1 S.sub.3 Even Asphere −40.471 1.341 3.25 8.652 G1 L2 S.sub.4 Even Asphere −208.624 0.838 1.6397 2.72 8.557 G1 L2 S.sub.5 Even Asphere 3.942 See table 11 2.35 8.086 G2 L3 S.sub.6 Even Asphere 3.675 0.703 1.5348 2.60 8.073 G2 L3 S.sub.7 Even Asphere 5.768 0.391 2.68 5.509 G2 L4 S.sub.8 Even Asphere 6.436 1.160 1.6397 2.84 5.543 G2 L4 S.sub.9 Even Asphere 13.466 0.330 2.51 5.555 G2 L5 S.sub.10 Even Asphere 1.745 0.270 1.5348 2.63 6.397 G2 L5 S.sub.11 Even Asphere 1.377 4.000 2.61 6.494 G2 L6 S.sub.12 Even Asphere −8.989 0.924 1.5348 3.57 6.726 G2 L6 S.sub.13 Even Asphere −6.006 See table 11 3.59 6.322 Glass window S.sub.18 Flat Infinity 0.210 1.5168 64.17 3.68 S.sub.19 Flat Infinity 0.290 3.69 Image sensor S.sub.20 Flat Infinity 0 3.71
TABLE-US-00011 TABLE 11 Object at at position infinity 50 mm T S.sub.0 Infinity 50 [mm] S.sub.5 1.909 1.441 S.sub.13 0.586 6.955
TABLE-US-00012 TABLE 12 Surface Conic (k) A.sub.2 A.sub.3 A4 A4 A8 S.sub.2 −0.630 0 4.4054E−04 1.2583E−05 −2.9783E−07 6.0963E−09 S.sub.3 −17.322 0 1.1175E−03 −7.2647E−05 3.0989E−06 −5.5328E−08 S.sub.4 10.896 0 2.8072E−04 −1.8071E−05 1.0399E−05 −5.1263E−07 S.sub.5 −3.542 0 4.3261E−03 −2.3939E−04 4.7495E−05 −1.4155E−06 S.sub.6 0.550 0 −4.6101E−03 −6.4645E−04 −5.5036E−05 −9.0004E−06 S.sub.7 2.038 0 −1.9132E−03 −9.1925E−04 −1.1892E−04 7.4560E−06 S.sub.8 −0.407 0 7.3254E−03 −9.5079E−04 1.4267E−04 −4.1002E−06 S.sub.9 10.906 0 9.1614E−03 −7.9578E−04 1.5907E−04 1.1780E−05 S.sub.10 −1.309 0 −5.7321E−02 7.4146E−03 −5.5742E−04 3.4068E−05 S.sub.11 −1.653 0 −4.4174E−02 7.6947E−03 −6.6729E−04 2.6326E−05 S.sub.12 −8.851 0 1.5094E−03 1.3664E−04 2.1531E−06 −1.9460E−07 S.sub.13 1.231 0 2.2125E−03 7.1788E−05 7.8923E−06 1.8970E−07
TABLE-US-00013 TABLE 13 Lens or group focal Lens # length [mm] L1 8.057 L2 −5.978 L3 16.869 L4 17.921 L5 −16.324 L6 30.404 G1 49.457 G2 12.122
[0132]
[0133] In the Tele state (see
[0134] In the Macro configuration (see
[0135] In a collapsed state with a collapsed c-TTL, G1 may be separated from G2 by c-d.sub.G1-G2=0.02-2.5 mm and G2 may be separated from G3 by c-d.sub.G2-G3=0.02-4.5 mm. When switching between a pop-out state and a collapsed state two air-gaps may be modified. A c-TTL of lens system 1200 may be 8.8-15 mm. For the Macro state, ratio c-TTL/EFL may be equal to or greater than 0.89 and ratio c-TTL/TTL may be equal to or greater than 0.43.
[0136] In some examples, another (large) air gap such as air gap d9 between L4 and L5 may be collapsed when switching to a collapsed state. For an example with a collapsible air gap d9, c-TTL of lens system 1200 may be 7.6-15 mm, corresponding to a ratio c-TTL/EFL≥0.76.
[0137] In other examples, when switching between a pop-out state and a collapsed state only d.sub.G1-G2 may be modified to c-d.sub.G1-G2=0.02-1.4 mm and d.sub.G2-G3 may not change. In yet other examples, when switching between a pop-out state and a collapsed state only d.sub.G2-G3 may be modified to c-d.sub.G2-G3=0.02-4.5 mm d.sub.G1-G2 may not change.
[0138] Lens system 1200 is represented by Tables 14-17. Table 14 and Table 15 provide optical data for lens 206-5 being in pop-out state (focus at infinity and at 5 cm), Table 16 provides aspheric data, and Table 17 provides data on the focus lengths of each lens element and on G1, G2 and G3.
TABLE-US-00014 TABLE 14 Group Lens Surface Type R [mm] T [mm] Nd Vd D [mm] Object S.sub.0 Flat Infinity See Table 15 Stop S.sub.1 Flat Infinity −1.015 3.46 G1 L1 S.sub.2 Even Asphere 6.387 2.000 1.5449 55.913 8.577 G1 L1 S.sub.3 Even Asphere −6.110 0.093 8.652 G1 L2 S.sub.4 Even Asphere −5.663 0.260 1.5661 37.426 8.557 G1 L2 S.sub.5 Even Asphere 12.316 0.236 8.086 G1 L3 S.sub.6 Even Asphere 13.536 1.000 1.6397 23.529 8.073 G1 L3 S.sub.7 Even Asphere 16.733 See table 15 5.509 G2 L4 S.sub.8 Even Asphere 16.483 1.093 1.651 21.514 5.543 G2 L4 S.sub.9 Even Asphere 9.528 1.279 5.555 G2 L5 S.sub.10 Even Asphere 26.649 1.500 1.5449 55.913 6.397 G2 L5 S.sub.11 Even Asphere −7.769 See table 15 6.494 G3 L6 S.sub.12 Even Asphere −5.892 0.402 1.5449 55.913 6.726 G3 L6 S.sub.13 Even Asphere 66.620 0.450 6.322 Glass window S.sub.18 Flat Infinity 0.210 1.5168 64.17 3.62 S.sub.19 Flat Infinity 0.290 3.65 Image sensor S.sub.20 Flat Infinity 0 3.70
TABLE-US-00015 TABLE 15 Object position at infinity at 50 mm T [mm] S.sub.0 Infinity 50 S.sub.7 5.073 2.908 S.sub.11 4.813 9.175
TABLE-US-00016 TABLE 16 Surface Conic (k) A.sub.2 A.sub.3 A4 A4 A8 S.sub.2 0.677 0 −3.662E−04 1.359E−05 0.000E+00 −3.662E−04 S.sub.3 −4.775 0 4.898E−03 −1.397E−04 1.591E−06 4.898E−03 S.sub.4 −6.366 0 4.765E−03 −1.692E−04 3.254E−06 4.765E−03 S.sub.5 5.346 0 −3.075E−03 9.482E−05 9.656E−07 −3.075E−03 S.sub.6 −8.028 0 −2.837E−03 1.380E−04 −1.763E−06 −2.837E−03 S.sub.7 16.045 0 1.797E−04 −1.949E−05 1.044E−06 1.797E−04 S.sub.8 −6.134 0 −3.752E−03 −7.964E−06 −3.621E−07 −3.752E−03 S.sub.9 −1.248 0 −3.976E−03 2.575E−05 −3.337E−07 −3.976E−03 S.sub.10 26.732 0 −5.210E−04 −6.374E−06 5.625E−07 −5.210E−04 S.sub.11 −1.100 0 −1.300E−04 1.134E−05 9.762E−07 −1.300E−04 S.sub.12 −0.839 0 1.998E−03 −1.041E−04 2.466E−06 1.998E−03 S.sub.13 26.744 0 5.185E−04 3.489E−06 −3.179E−06 5.185E−04
TABLE-US-00017 TABLE 17 Lens or group focal Lens # length [mm] L1 6.054 L2 −6.785 L3 97.901 L4 −36.686 L5 11.176 L6 −9.882 G1 21.183 G2 15.420 G3 −9.882
[0139]
[0140] In the Tele state (see
[0141] In the Macro configuration (see
[0142] In a collapsed state with a collapsed c-TTL, G1 may be separated from G2 by e.g. c-d.sub.G1-G2=0.02-1.5 mm and L3 may be separated from L4 by c-d.sub.7=0.02-2.5 mm. A c-TTL of lens system 1200 may be 9.5-13.5 mm.
[0143] In other examples, when switching between a pop-out state and a collapsed state only d.sub.7 may be modified to c-d.sub.7=0.02-2.5 mm and d.sub.G1-G2 may not change. In yet other examples, when switching between a pop-out state and a collapsed state only d.sub.G1-G2 may be modified to c-d.sub.G1-G2=0.02-1.5 mm d.sub.7 may not change.
[0144] The lens system 1300 is represented by Tables 18-21. FOV is given as half FOV (HFOV). Table 18 and Table 19 provide optical data for lens 206-5 being in pop-out state. Table 20 provides aspheric data.
[0145] Table 20 shows three focus configurations of lens system 1300: focused to infinity (“Config. A”), focused to 100 mm (“Config. B”, no Figure shown) and focused to 50 mm (“Config. C”). The u which is focused on is given by Surface 0 in Table 20. Table 21 provides data on the half FOV (HFOV), M and f/#. Lens system 1300 can focus continuously from Infinity to 50 mm. For changing focus of lens system 1300 continuously, the values of d.sub.G1-G2 and BFL change continuously.
TABLE-US-00018 TABLE 18 Embodiment 1300 EFL = 15.0 mm, F number = 2.2, HFOV = 13.1 deg. Aperture Curvature Radius Focal Surface # Comment Type Radius Thickness (D/2) Material Index Abbe # Length 1 A.S Plano Infinity −1.138 3.394 2 Lens 1 ASP 5.548 1.713 3.399 Plastic 1.53 55.66 10.11 3 −225.776 0.031 3.268 4 Lens 2 ASP 4.454 1.000 3.084 Plastic 1.64 23.52 −9.96 5 2.401 2.625 2.627 6 Lens 3 ASP 4.197 1.000 2.722 Plastic 1.53 55.66 15.25 7 7.888 4.910 2.661 8 Lens 4 ASP −6.881 0.435 2.717 Plastic 1.66 20.37 1841.21 9 −7.016 0.162 2.848 10 Lens 5 ASP 2.335 0.551 2.906 Plastic 1.53 55.66 −24.20 11 1.816 1.274 3.339 12 Lens 6 ASP −7.488 1.251 3.393 Plastic 1.53 55.66 20.05 13 −4.675 0.344 3.546 14 Filter Plano Infinity 0.210 — Glass 1.52 64.17 15 Infinity 0.290 — 16 Image Plano Infinity — —
TABLE-US-00019 TABLE 19 Aspheric Coefficients Surface # Conic A4 A6 A8 A10 2 −4.21E−01 6.50E−04 −1.01E−05 1.56E−06 −5.69E−08 3 −2.24E+02 2.36E−03 −1.58E−04 5.38E−06 −7.57E−08 4 −4.52E+00 −5.19E−04 5.31E−05 −6.85E−06 3.53E−07 5 −2.24E+00 2.21E−03 1.61E−05 −1.54E−06 7.95E−07 6 −8.98E−03 −7.71E−05 −5.52E−05 5.85E−06 −8.17E−07 7 6.54E−01 6.97E−04 −2.34E−05 −6.13E−07 −5.58E−07 8 −6.59E+01 4.55E−03 −1.90E−03 2.62E−05 3.32E−06 9 −4.32E−01 1.47E−02 −3.66E−03 2.57E−04 −5.76E−06 10 −4.54E+00 −2.21E−02 −1.28E−03 3.91E−04 −2.22E−05 11 −1.73E+00 −3.64E−02 4.33E−03 −2.94E−04 6.72E−06 12 −2.40E+01 1.32E−03 3.07E−04 −3.67E−05 −4.21E−07 13 −1.13E+00 6.63E−04 −3.99E−04 6.48E−05 −3.13E−06
TABLE-US-00020 TABLE 20 Embodiment 1300 Variation of surface thicknesses Surface # Config. A Config. B Config. C 0 1.00E+06 100 50 5 2.625 1.946 1.303 13 0.344 2.941 6.318
TABLE-US-00021 TABLE 21 Embodiment 1300 Config. # HFOV Magnification f/# A 13.1 deg 0 1.2-1.9 B 11.3 deg −0.17 1.3-2.2 C 9.3 deg −0.40 1.7-2.5
[0146] The focusing range of some examples of lens systems such as 800, 850, 900, 1000, 1100, 1200 and 1300 may be from infinity to less than 150 mm, from infinity to e.g. 1 m or 2 m, and from e.g. 350 mm to less than 150 mm, e.g. to 50 mm. The focusing range of a lens system is defined as all u that can be focused to by means of a camera mechanism that controls the distance between lens and image sensor. That is, for each object that is located within the focus range, a focusing mechanism can set a particular v that results in maximum contrast for the object's image. Maximum contrast means that for lens-image sensor distances other than the particular lens-image sensor distance, the object's contrast will decrease. A minimal object distance (MIOD) is defined as the lower limit of the focusing range, i.e. the MIOD is the smallest u that the lens system can focus to. For example, some embodiments shown above can focus from infinity to 50 mm, i.e. MIOD is 50 mm.
[0147]
[0148]
[0149]
[0150]
with u and v. According to eq. 2, d.sub.sensor relates to do according to:
[0151] From eq. 3 we learn that for a typical image capture scenario for a Wide camera (Wide example: EFL=5 mm, u>10 cm) or a Tele camera (Tele example: EFL=13 mm, u>100 cm) a linear shift at the object plane do leads to a linear shift d.sub.S at image sensor 1510 of d.sub.S≈0.05.Math.d.sub.0 for the Wide example (u=10 cm) and d.sub.S≈0.01.Math.d.sub.0 for the Tele example (u=100 cm). In general, it is assumed that u>>EFL and that an undesired linear motion such as do does not deteriorate image quality significantly. However, this assumption is not valid for cameras with large magnifications M such as the pop-out camera in Macro configuration described herein. Consider as an example a Tele camera having EFL=13 mm that is focused to u=10 cm (first Macro example: EFL=13 mm, u=10 cm) and u=5 cm object-lens distance (second Macro example: EFL=13 mm, u=5 cm). For the first Macro example d.sub.S≈0.15.Math.d.sub.0, for the second Macro example d.sub.S≈0.35.Math.d.sub.0. This shows that significant image quality deterioration caused by undesired linear motion in X and Y is expected. An undesired linear motion of a handheld device may be sensed by a motion sensor such as an inertial measurement unit (IMU). An IMU provides data on the linear acceleration which is to be integrated for determining the linear shift.
[0152]
In other examples, OIS may be performed by moving the entire Tele camera, i.e. the Tele camera's components such as lens, image sensor etc. do not move relative to each other for performing OIS, but they move together relative to device 1600. Device 1600 comprises an application processor (AP) 1620 that includes a depth estimator 1622, an OIS controller 1624 and a microcontroller unit (MCU, not shown). Device 1600 further comprises an IMU 1604, at least one second camera 1630 and a memory 1640. The MCU may be used to read and process data of IMU 1604. In some examples, the MCU may be controlled by an OIS controller 1624 which is part of AP 1620. Camera 1630 may e.g. be a W camera or an UW camera. FOV.sub.W may e.g. be 60-90 degrees, FOV.sub.UW may e.g. be 90-130 degrees. In other examples, 1600 may comprise additional cameras. The additional cameras may e.g. be a W camera, an UW camera, an additional Tele camera, a Time of Flight (ToF) camera. Memory 1640 may e.g. be a NVM (non-volatile memory) used to store calibration data. Calibration data may e.g. be for calibration between Tele camera 1610 and second camera 1630. In other examples, calibration data may be stored in memory element 1640 and/or in additional memory elements (not shown). The additional memory elements may be integrated in the camera 1610 and in the second camera 1630 or only in one of the camera modules and may be EEPROMs (electrically erasable programmable read-only memory). Memory 1640 may also store image data, depth data or metadata of a specific scene, scene segment or object. Metadata may e.g. be one or more depth values.
[0153] Another example of a device numbered 1650 and operative to perform OIS for correcting undesired linear motion in X and Y direction as described herein is shown in
[0154] For depth estimation, image data from Tele camera 1610 or from camera 1630 or from additional cameras or components is transmitted to the depth estimator 1622. Depth estimator 1622 calculates depth as known in the art. In some examples, depth estimator 1622 calculates a depth map of the entire scene covered by FOV.sub.T. In other examples, depth estimator 1622 calculates a depth map of the image segments of the scene that include a specific object of interest (001) or object of interest (ROI). In yet other examples, depth estimator 1622 calculates a single value only, whereas the single value corresponds to a depth range of an object in focus. In yet other examples, depth information may be provided by a laser range finder (“Laser AF”) which performs a Time-of-Flight measurement. Image data transmitted to the depth estimator 1622 may e.g. be: [0155] Phase detection auto focus (PDAF) data from the second camera 1630; [0156] PDAF data from the Tele camera 1610; [0157] Stereo image data, e.g. from Tele camera 1610 and from second camera 1630; [0158] Focus stacking visual image data; [0159] Focus stacking PDAF data; [0160] Visual image data from Tele camera 1610 and/or from second camera 1630 (for estimating depth from defocus); [0161] Visual image data from Tele camera 1610 and/or from second camera 1630 (for estimating depth from object motion); [0162] Depth data from second camera 1630 that may be a Time of Flight (ToF) camera.
[0163] In some examples, visual image data from Tele camera 1610 and/or from camera 1630 may be used to estimate depth from motion, e.g. from a pre-view video stream comprising a plurality of images. Depth from motion may be estimated by turning OIS off, estimating do between two or more frames from IMU information, estimating d.sub.S from the movement of an image point between two or more frames and estimating u according to eq. 3.
[0164] OIS controller 1624 receives data on the linear acceleration of device 1600 from IMU 1604 and depth data on u of the object in focus (or larger segments of the scene) from depth estimator 1622. For OIS on undesired linear motion in X and Y, OIS controller 1624 and/or a MCU such as MCU 1630 estimates do from the IMU's data on linear acceleration and calculates d.sub.S or d.sub.L for sensor shift OIS or lens shift OIS respectively according to eq. 3 or eq. 5 respectively. OIS controller 1624 and/or MCU 1630 transmit control signals to actuator 1612. Actuator 1612 may actuate an image sensor for sensor shift OIS and/or a lens for lens shift OIS. OIS controller 1624 and/or MCU 1630 receive data on the position of lens 1616 (for lens shift OIS) or image sensor 1618 (for sensor shift OIS) from position sensors 1614 for performing closed loop control.
[0165] In all the lens examples, the EFL of the entire G1 group is marked EFL.sub.G1 (or “EFL(G1)”), the EFL of the entire G2 group is marked EFL.sub.G2 and focal lengths of individual lens elements are marked by the element number, i.e. the power of L1 is marked f.sub.1 the focal length of L2 is marked f.sub.2, etc.
[0166] A mean glass thickness (“MGT”) of a lens group or an entire lens is defined by the average thickness of the single lens elements it includes. The mean glass thickness of a group, e.g. G1, is marked “MGT(G1)”, while the mean glass thickness of an entire lens is marked “MGT”.
[0167] A mean air gap (“MAG”) of a lens group or an entire lens is defined by the average thickness of the air gaps along the optical axis between the single lens elements within its lens groups G1 and G2. This means that calculating the mean air gap takes into account only intra-lens group distances but not distances between lens groups. Specifically BG, BG1, BG2 and BFL are not considered for calculating MAG. The mean air gap of a group, e.g. G1, is marked “MAG(G1)”, while the mean air gap of an entire lens marked “MAG”.
[0168] All pop-out optical lens systems described below may be focused by moving an entire lens with respect to an image sensor.
[0169] Table 22 summarizes values and ratios thereof of various features that are included in the lens systems shown above and in the following (TTL, c-TTL, EFL, f, BG, c-BG, BFL, c-BFL, TG1, TG2, T1, T3, MGT, MAG given in mm, H-FOV given in degrees). For c-TTL, a minimum value is given. “P-O method” refers to the method used for switching the respective lens system between a pop-out and a collapsed state, wherein the number “i” refers to the i-th method embodiment (e.g. “1” refers to switching according to a 1.sup.st method embodiment, “2” refers to switching according to a 2.sup.nd method embodiment, etc.).
TABLE-US-00022 TABLE 22 Min. Max. 1700 1800 1900 2000 2100 value value TTL 12.50 10.86 12.50 12.50 12.50 10.86 12.50 c-TTL 7.78 7.08 7.80 8.13 7.50 7.08 8.13 EFL 13.90 11.94 14.60 14.70 13.90 11.94 14.70 BG 0.97 0.58 3.32 3.53 1.58 0.58 3.53 c-BG 0.97 0.58 0.75 1.00 0.20 0.20 1.00 BFL 5.52 5.00 2.88 2.60 0.85 0.85 5.52 c-BFL 0.81 1.21 0.75 0.75 0.85 0.75 1.21 TG1 3.68 2.76 3.73 3.91 3.46 2.76 3.91 TG2 2.33 2.54 2.57 2.47 2.14 2.14 2.57 H-FOV 13.40 16.80 12.80 12.70 13.50 12.70 16.80 EFL(G1) 11.71 8.57 10.29 10.31 9.95 8.57 11.71 EFL(G2) −34.58 −16.24 −12.44 −13.01 −13.32 −34.58 −12.44 T1 2.30 1.25 2.08 2.12 1.44 1.25 2.30 T3 0.30 1.23 0.27 0.28 0.31 0.28 1.23 Lens power sequence ++−−−+ +−+−−−+ ++−−+− ++−+−+ ++−−−+− MGT(G1) 1.19 0.90 1.21 0.94 1.09 0.90 1.21 MGT(G2) 0.36 0.28 0.45 0.53 0.37 0.28 0.53 MGT 0.77 0.59 0.83 0.73 0.73 0.59 0.83 MAG(G1) 0.06 0.03 0.04 0.05 0.10 0.03 0.10 MAG(G2) 0.63 0.47 0.60 1.42 0.52 0.47 1.42 MAG 0.34 0.25 0.32 0.73 0.31 0.25 0.73 BFL/c-BFL 6.81 4.13 3.84 3.47 1.00 1.00 6.81 EFL(G1)/EFL(G2) −0.34 −0.53 −0.83 −0.79 −0.75 −0.83 −0.34 EFL(G1)/EFL 0.84 0.72 0.70 0.70 0.72 0.70 0.84 EFL(G2)/EFL −2.49 −1.36 −0.85 −0.89 −0.96 −2.49 −0.85 BG/TTL 0.08 0.05 0.27 0.28 0.13 0.05 0.28 BFL/TTL 0.44 0.46 0.23 0.21 0.07 0.07 0.46 c-TTL/TTL 0.62 0.65 0.62 0.65 0.60 0.60 0.65 TG1/TTL 0.29 0.25 0.30 0.31 0.28 0.25 0.31 TTL/EFL 0.90 0.91 0.86 0.85 0.90 0.85 0.91 T1/TTL 0.18 0.12 0.17 0.17 0.12 0.12 0.18 T1/MGT 2.99 2.12 2.55 2.90 1.97 1.97 2.99 T1/T3 7.67 1.02 5.17 5.17 4.65 1.02 7.67 TG1/(TTL-BFL) 0.53 0.47 0.39 0.39 0.30 0.30 0.53 MGT(G1)/MGT 1.55 1.53 1.46 1.29 1.49 1.29 1.55 MGT(G2)/MGT 0.47 0.47 0.54 0.73 0.51 0.47 0.73 MGT(G1)/MGT(G2) 3.31 3.21 2.69 1.77 2.95 1.77 3.31 MAG/MAG(G1) 5.67 8.33 8.00 14.60 3.10 3.10 14.60 MAG/MAG(G2) 0.54 0.53 0.53 0.51 0.60 0.51 0.60 MAG(G2)/MAG(G1) 10.50 15.67 15.00 28.40 5.20 5.20 28.40 MAG/MGT 0.44 0.42 0.39 1.00 0.42 0.39 1.00 MAG(G1)/MGT(G1) 0.05 0.03 0.03 0.05 0.09 0.03 0.09 MAG(G2)/MGT(G2) 1.75 1.68 1.33 2.68 1.41 1.33 2.68 P-O method 2 2 3 3 4 1100 1100 1200 1200 1300 1300 800 850 900 1000 Tele Macro Tele Macro Tele Macro MIN MAX TTL 19.84 13.50 7.78 15.00 15.00 20.90 15.00 20.90 15.80 20.40 7.78 20.90 c-TTL 12.60 5.00 3.60 6.20 8.50 8.50 8.90 8.90 9.50 9.50 3.60 12.60 EFL 13.00 15.15 7.97 16.00 14.98 14.80 15.00 9.80 15.00 15.00 7.97 16.00 BG 6.22 1.78 0.97 1.55 1.91 1.44 5.07 2.91 2.63 1.30 0.97 6.22 BG2 4.81 9.18 4.81 9.18 BFL 1.02 5.49 3.27 6.99 0.59 6.96 0.95 0.95 0.84 6.82 0.59 6.99 BG/TTL 0.31 0.13 0.12 0.10 0.13 0.07 0.34 0.14 0.17 0.06 0.06 0.34 BFL/TTL 0.05 0.41 0.42 0.47 0.04 0.33 0.06 0.05 0.05 0.33 0.04 0.47 c-TTL/TTL 0.64 0.37 0.46 0.41 0.57 0.41 0.59 0.43 0.60 0.47 0.37 0.64 TTL/EFL 1.53 0.89 0.98 0.94 1.00 1.41 1.00 2.13 1.05 1.36 0.89 2.13 Number 8 6 5 5 6 6 6 6 6 6 5 8 lenses Number 2 2 2 2 2 2 3 3 2 2 2 3 lens groups Number 2 2 2 2 3 3 2 2 2 2 2 3 collapsible air gaps P-O method 1 2, 3 2, 3 2, 3 4 4 4 4 4 4
[0170]
[0171] Optical element 802 may be for example infra-red (IR) filter, and/or a glass image sensor dust cover. Optical rays pass through lens 206-8 and form an image on image sensor 208.
[0172] Detailed optical data and surface data for pop-out lens 206-8 are given in Tables 23-26. Table 23 provides surface types, Table 24 provides aspheric coefficients, and Table 25 shows the BFL (“T”) for lens 206-8 being in a pop-out state and c-BFL for lens 206-8 being in a collapsed state. Table 26 shows the distance of a first, second and third deflection point (“DP1”, “DP2” and “DP3”) respectively from the optical axis for lens elements L.sub.N-1 and L.sub.N. The surface types are:
a) Plano: flat surfaces, no curvature
b) Q type 1 (QT1) surface sag formula:
where {z, r} are the standard cylindrical polar coordinates, c is the paraxial curvature of the surface, k is the conic parameter, r.sub.norm is generally one half of the surface's clear aperture (CA), and A.sub.n are the aspheric coefficients shown in lens data tables. The Z axis is positive towards image. Values for CA are given as a clear aperture radius, i.e. D/2. The reference wavelength is 555.0 nm. Units are in mm except for refraction index (“Index”) and Abbe #. Each lens element Li has a respective focal length fi, and all lens elements of a group G1 together have a respective focal length fi, both given in Table 23. The FOV is given as half FOV (HFOV). The definitions for surface types, Z axis, CA values, reference wavelength, units, focal length and HFOV are valid for all following Tables.
TABLE-US-00023 TABLE 23 EFL = 13.9 mm, F# = 2, HFoV = 13.4 deg, Sensor Height Full Diagonal = 6.5 mm R D/2 Focal Length Group Lens Surface Type [mm] T [mm] [mm] Nd Vd [mm] Object S.sub.0 Flat Infinity Infinity Stop S.sub.1 Flat Infinity −1.72 3.47 G1 L1 S.sub.2 QTYP 4.64 2.31 3.47 1.54 55.99 8.56 11.71 S.sub.3 QTYP 15.13 0.05 3.31 L2 S.sub.4 QTYP 7.31 0.96 3.09 1.51 56.81 14.08 S.sub.5 QTYP −851.44 0.06 2.96 L3 S.sub.6 QTYP −24.50 0.30 2.73 1.66 20.27 −7.31 S.sub.7 QTYP 6.11 0.97 2.25 G2 L4 S.sub.8 QTYP 4.75 0.28 2.00 1.53 56.16 −67.48 −34.58 S.sub.9 QTYP 4.11 1.19 1.83 L5 S.sub.10 QTYP −2.36 0.28 1.76 1.54 55.93 −8.83 S.sub.11 QTYP −4.81 0.08 1.96 L6 S.sub.12 QTYP 4.07 0.51 1.98 1.66 20.37 10.38 S.sub.13 QTYP 9.40 See Table 2.12 25 Glass window S.sub.14 Flat Infinity 0.11 1.52 64.17 S.sub.15 Flat Infinity 0.39 Image sensor S.sub.16
Table 24 shows the aspheric coefficients.
TABLE-US-00024 TABLE 24 Surface Conic (k) NR A.sub.0 A.sub.1 A.sub.2 A.sub.3 S.sub.2 0.00E+00 3.74E+00 1.05E+00 −3.12E−01 1.88E−02 5.78E−02 S.sub.3 0.00E+00 3.34E+00 −1.17E−01 −5.93E−02 −8.16E−03 1.01E−02 S.sub.4 0.00E+00 3.28E+00 −9.90E−02 −2.37E−03 −1.87E−02 −1.24E−02 S.sub.5 0.00E+00 3.08E+00 −4.11E−02 2.68E−02 −1.53E−02 −9.81E−03 S.sub.6 0.00E+00 2.80E+00 3.89E−01 −1.16E−02 −7.22E−03 7.80E−03 S.sub.7 0.00E+00 2.18E+00 2.09E−01 3.99E−02 −1.44E−02 2.71E−03 S.sub.8 0.00E+00 2.19E+00 −7.23E−02 1.77E−01 −6.07E−02 −7.24E−03 S.sub.9 0.00E+00 2.00E+00 −3.32E−02 1.14E−01 −5.52E−02 −2.03E−02 S.sub.10 0.00E+00 1.94E+00 5.79E−01 −2.43E−01 −2.56E−02 −3.33E−02 S.sub.11 0.00E+00 2.04E+00 3.33E−01 −1.98E−01 1.11E−02 4.27E−03 S.sub.12 0.00E+00 2.25E+00 −1.23E+00 1.41E−02 −2.02E−02 3.84E−03 S.sub.13 0.00E+00 2.29E+00 −9.54E−01 2.44E−02 −1.08E−02 3.70E−03 Surface A.sub.4 A.sub.5 A.sub.6 A.sub.7 A.sub.8 S.sub.2 −3.56E−02 5.97E−03 4.36E−03 −3.56E−03 1.04E−03 S.sub.3 −5.46E−03 2.97E−03 −1.43E−03 4.94E−04 −8.28E−05 S.sub.4 −1.87E−02 2.49E−03 −2.79E−03 6.86E−05 4.79E−05 S.sub.5 −2.40E−03 2.79E−03 −1.11E−03 5.21E−04 −1.37E−04 S.sub.6 −3.11E−03 −2.70E−04 8.21E−04 −2.32E−04 5.68E−05 S.sub.7 1.70E−03 −1.06E−03 −5.85E−05 2.45E−05 2.71E−05 S.sub.8 −1.53E−02 −7.79E−03 −1.79E−03 −8.27E−04 −5.60E−05 S.sub.9 −2.15E−02 −1.26E−02 −5.18E−03 −1.83E−03 −4.49E−04 S.sub.10 −1.51E−02 −7.29E−03 −1.93E−03 −5.05E−04 5.89E−05 S.sub.11 −3.92E−03 4.72E−04 −4.90E−04 3.78E−04 −5.23E−05 S.sub.12 −2.17E−02 −8.24E−03 −3.14E−03 5.49E−04 −2.74E−04 S.sub.13 −5.43E−03 −2.52E−03 −1.44E−03 −2.31E−04 −1.55E−04
TABLE-US-00025 TABLE 25 On State Off State (Pop Out) (Collapsed) T [mm] S.sub.13 5.0156 0.2144
TABLE-US-00026 TABLE 26 DP1 [mm] DP2 [mm] DP3 [mm] L6 S.sub.12 0.5001 1.6672 N/A S.sub.13 0.5902 N/A N/A L7 S.sub.14 2.0629 N/A N/A S.sub.15 0.1689 1.1203 2.0314
[0173]
TABLE-US-00027 TABLE 27 EFL = 11.94 mm, F# = 2.08, HFoV = 16.8 deg, Sensor Height Full Diagonal = 7 mm R D/2 Focal Length Group Lens Surface Type [mm] T [mm] [mm] Nd Vd [mm] Object S.sub.0 Flat Infinity Infinity Stop S.sub.1 Flat Infinity −1.29 2.87 G1 L1 S.sub.2 QTYP 3.31 1.25 2.87 1.54 55.91 13.76 8.57 S.sub.3 QTYP 5.11 0.03 2.77 L2 S.sub.4 QTYP 3.48 0.21 2.64 1.67 19.44 −17.72 S.sub.5 QTYP 2.63 0.03 2.42 L3 S.sub.6 QTYP 2.61 1.23 2.41 1.54 55.91 9.48 S.sub.7 QTYP 4.38 0.58 2.23 G2 L4 S.sub.8 QTYP 24.80 0.21 1.85 1.66 20.37 −126.21 −16.24 S.sub.9 QTYP 19.09 0.58 1.64 L5 S.sub.10 QTYP −22.16 0.21 1.65 1.64 23.53 −10.42 S.sub.11 QTYP 9.68 0.75 1.62 L6 S.sub.12 QTYP 2.87 0.22 1.72 1.54 56.18 −23.25 S.sub.13 QTYP 2.28 0.10 1.90 L7 S.sub.14 QTYP 7.40 0.48 2.19 1.67 19.44 11.69 S.sub.15 QTYP 115.56 See Table 29 2.23 Glass window S.sub.16 Flat Infinity 0.21 1.52 64.17 S.sub.17 Flat Infinity 0.30 Image sensor S.sub.18
TABLE-US-00028 TABLE 28 Surface Conic (k) NR A.sub.0 A.sub.1 A.sub.2 A.sub.3 S.sub.2 0 2.21E+00 −4.24E−02 −7.81E−03 −8.54E−04 5.91E−05 S.sub.3 0 2.21E+00 −2.22E−01 3.42E−02 −2.36E−03 6.05E−05 S.sub.4 0 1.56E+00 −8.85E−02 5.13E−03 4.16E−04 −1.19E−04 S.sub.5 0 2.21E+00 −3.27E−01 4.50E−02 5.36E−03 −2.18E−03 S.sub.6 0 1.56E+00 −1.08E−01 2.21E−03 4.34E−04 2.13E−04 S.sub.7 0 1.56E+00 −5.97E−02 2.50E−03 3.62E−04 2.70E−04 S.sub.8 0 1.52E+00 1.22E−01 8.04E−03 −1.60E−03 8.07E−04 S.sub.9 0 1.52E+00 2.53E−01 2.11E−02 1.25E−03 1.53E−03 S.sub.10 0 1.63E+00 9.13E−02 1.50E−02 −6.30E−04 1.66E−03 S.sub.11 0 1.63E+00 2.11E−02 2.33E−02 −2.91E−03 1.68E−03 S.sub.12 0 1.47E+00 −5.03E−01 1.75E−02 −5.67E−04 −8.94E−04 S.sub.13 0 1.47E+00 −4.88E−01 1.82E−02 −2.08E−03 −2.28E−04 S.sub.14 0 1.49E+00 −5.09E−02 1.08E−02 −2.14E−03 4.66E−04 S.sub.15 0 1.49E+00 −4.51E−02 1.15E−02 −1.27E−03 1.12E−04 Surface A.sub.4 A.sub.5 A.sub.6 A.sub.7 S.sub.2 −3.02E−06 −1.32E−05 1.12E−06 3.76E−08 S.sub.3 −2.45E−04 6.08E−05 −6.27E−06 4.05E−07 S.sub.4 1.49E−05 −7.22E−07 −3.42E−09 1.07E−10 S.sub.5 −2.66E−04 −3.74E−04 −1.20E−04 −7.15E−06 S.sub.6 −5.64E−05 6.68E−06 −4.46E−07 −4.18E−09 S.sub.7 −1.78E−04 2.85E−05 −1.67E−06 2.44E−08 S.sub.8 −5.47E−04 1.41E−04 −1.73E−05 7.96E−07 S.sub.9 −4.28E−04 2.76E−04 −6.70E−06 2.25E−05 S.sub.10 3.67E−04 3.20E−04 −2.29E−05 1.37E−05 S.sub.11 4.08E−04 3.09E−04 −3.07E−05 3.00E−05 S.sub.12 1.82E−04 2.78E−06 4.51E−06 1.14E−06 S.sub.13 7.63E−05 −4.39E−07 −2.13E−06 2.57E−07 S.sub.14 −8.85E−05 1.06E−05 −6.23E−07 8.60E−09 S.sub.15 −3.53E−05 7.82E−06 −7.35E−07 2.27E−08
TABLE-US-00029 TABLE 29 On State Off State (Pop Out) (Collapsed) T [mm] S.sub.15 4.4783 0.7000
TABLE-US-00030 TABLE 30 DP1 [mm] DP2 [mm] DP3 [mm] L6 S.sub.12 0.5001 1.6672 N/A S.sub.13 0.5902 N/A N/A L7 S.sub.14 2.0629 N/A N/A S.sub.15 0.1689 1.1203 2.0314
[0174]
[0175] Table 31 provides surface types, Table 32 provides aspheric coefficients, and Table 33 shows the BG and the BFL for the pop-out state and the c-BG and the c-BFL for the collapsed state. Table 34 shows the deflection point distances from the optical axis.
TABLE-US-00031 TABLE 31 EFL = 14.6 mm, F# = 2, HFoV = 12.8 deg, Sensor Height Full Diagonal = 6.5 mm R D/2 Focal Length Group Lens Surface Type [mm] T [mm] [mm] Nd Vd [mm] Object S.sub.0 Flat Infinity Infinity Stop S.sub.1 Flat Infinity −1.5744 3.6595 G1 L1 S.sub.2 QTYP 4.4361 2.0811 3.6595 1.5333 56.1625 10.5748 10.2898 S.sub.3 QTYP 17.1831 0.0371 3.4917 L2 S.sub.4 QTYP 5.6555 1.2961 3.2810 1.5109 56.7467 14.9745 S.sub.5 QTYP 19.8249 0.0505 3.1251 L3 S.sub.6 QTYP −175.7762 0.2670 2.8113 1.6604 20.2676 −11.9103 S.sub.7 QTYP 8.3152 See Table 2.3768 33 G2 L4 S.sub.8 QTYP −6.5426 0.2590 1.7889 1.5339 55.8284 −11.2510 −12.4375 S.sub.9 QTYP 77.3828 1.1602 1.8648 L5 S.sub.10 QTYP −15.1296 0.8481 2.0658 1.6080 25.6443 13.0264 S.sub.11 QTYP −5.3338 0.0451 2.2702 L6 S.sub.12 QTYP −7.5609 0.2554 2.6195 1.5437 55.9556 −14.3694 S.sub.13 QTYP −216.3040 See Table 2.7044 33 Glass S.sub.14 Flat Infinity 0.1100 1.5168 64.1673 window S.sub.15 Flat Infinity 0.3900 Image sensor S.sub.16
TABLE-US-00032 TABLE 32 Surface Conic (k) NR A.sub.0 A.sub.1 A.sub.2 A.sub.3 S.sub.2 0 3.63E+00 −2.91E−01 −8.05E−02 −2.62E−02 −4.27E−03 S.sub.3 0 3.48E+00 −2.65E−01 −7.73E−02 2.94E−02 −7.70E−03 S.sub.4 0 3.34E+00 −3.37E−01 −8.26E−02 4.49E−02 −1.18E−02 S.sub.5 0 3.25E+00 −4.14E−01 1.15E−02 7.94E−04 −3.69E−03 S.sub.6 0 2.80E+00 1.78E−01 −5.55E−02 1.16E−02 3.08E−03 S.sub.7 0 2.35E+00 2.66E−01 −5.92E−02 1.10E−02 −2.21E−03 S.sub.8 0 2.00E+00 9.75E−02 −1.02E−02 −2.53E−03 2.44E−03 S.sub.9 0 1.91E+00 7.56E−02 5.35E−03 −3.61E−03 2.18E−03 S.sub.10 0 1.97E+00 −2.06E−01 −7.41E−03 1.20E−02 1.23E−02 S.sub.11 0 2.23E+00 −7.22E−02 −6.08E−03 −4.02E−03 3.52E−03 S.sub.12 0 2.53E+00 −2.88E−01 3.29E−02 −9.09E−04 −1.65E−03 S.sub.13 0 2.56E+00 −5.32E−01 2.37E−02 1.08E−03 3.36E−03 Surface A.sub.4 A.sub.5 A.sub.6 A.sub.7 A.sub.8 S.sub.2 −1.06E−03 6.89E−04 2.45E−04 1.36E−04 −7.34E−05 S.sub.3 −2.39E−03 6.73E−03 −4.20E−03 1.24E−03 −1.28E−04 S.sub.4 −7.89E−03 1.05E−02 −3.05E−03 −3.70E−04 4.94E−04 S.sub.5 −6.79E−03 1.08E−02 −5.13E−03 8.77E−04 1.17E−04 S.sub.6 −2.71E−03 8.88E−04 −2.85E−04 1.16E−04 −2.50E−05 S.sub.7 1.85E−03 −1.35E−03 5.37E−04 −3.12E−05 −2.07E−05 S.sub.8 2.31E−04 −1.22E−05 −2.13E−04 7.09E−05 −6.57E−06 S.sub.9 −5.62E−04 3.85E−04 −2.40E−04 5.87E−05 −4.84E−06 S.sub.10 9.85E−03 6.56E−03 3.37E−03 1.23E−03 3.22E−04 S.sub.11 4.14E−03 2.69E−03 7.37E−06 −4.58E−04 −2.90E−04 S.sub.12 −3.35E−03 −1.95E−03 −8.35E−04 −2.85E−04 −3.85E−05 S.sub.13 −4.54E−04 −5.31E−04 −6.51E−04 −2.79E−04 −1.69E−04
TABLE-US-00033 TABLE 33 On State Off State (Pop Out) (Collapsed) T S.sub.9 3.3200 0.7500 [mm] S.sub.13 2.3809 0.2500
TABLE-US-00034 TABLE 34 DP1 [mm] DP2 [mm] DP3 [mm] L5 S.sub.10 1.9372 N/A N/A S.sub.11 2.1333 N/A N/A L6 S.sub.12 2.1267 N/A N/A S.sub.13 2.5492 N/A N/A
[0176]
[0177] Table 35 provides surface types, Table 36 provides aspheric coefficients, and Table 37 shows the BG and the BFL for the pop-out state and the c-BG and the c-BFL for collapsed state. Table 38 shows the deflection point distances from the optical axis.
[0178] The focal length of L3+L4 together is f.sub.3+4=−17.34.
TABLE-US-00035 TABLE 35 EFL = 14.7 mm, F# = 2, HFoV = 12.7 deg, Sensor Height Full Diagonal = 6.5 mm R D/2 Lens Surface Type [mm] T [mm] [mm] Nd Vd Focal Length [mm] Object S.sub.0 Flat Infinity Infinity Stop S.sub.1 Flat Infinity −1.56 3.68 G1 L1 S.sub.2 QTYP 4.30 2.12 3.68 1.53 56.16 11.37 10.31 S.sub.3 QTYP 12.20 0.05 3.55 L2 S.sub.4 QTYP 5.78 0.95 3.32 1.54 55.99 18.93 S.sub.5 QTYP 12.34 0.06 3.22 L3 S.sub.6 QTYP 31.14 0.28 2.97 1.67 19.44 −13.96 −17.34 S.sub.7 QTYP 7.21 0.05 2.60 L4 S.sub.8 QTYP 5.77 0.41 2.55 1.51 56.81 64.80 S.sub.9 QTYP 6.81 See Table 2.40 37 G2 L5 S.sub.10 QTYP −11.79 0.28 1.72 1.54 55.90 −7.33 −13.01 S.sub.11 QTYP 6.11 1.42 1.84 L6 S.sub.12 QTYP 12.04 0.77 2.34 1.61 25.64 20.17 S.sub.13 QTYP 466.66 See Table 2.46 37 Glass S.sub.14 Flat Infinity 0.11 1.52 64.17 window S.sub.15 Flat Infinity 0.39 Image sensor S.sub.16
TABLE-US-00036 TABLE 36 Surface Conic (k) NR A.sub.0 A.sub.1 A.sub.2 A.sub.3 S.sub.2 0 3.63E+00 −2.91E−01 −8.05E−02 −2.62E−02 −4.27E−03 S.sub.3 0 3.48E+00 −2.65E−01 −7.73E−02 2.94E−02 −7.70E−03 S.sub.4 0 3.34E+00 −3.37E−01 −8.26E−02 4.49E−02 −1.18E−02 S.sub.5 0 3.25E+00 −4.14E−01 1.15E−02 7.94E−04 −3.69E−03 S.sub.6 0 2.80E+00 1.78E−01 −5.55E−02 1.16E−02 3.08E−03 S.sub.7 0 2.35E+00 2.66E−01 −5.92E−02 1.10E−02 −2.21E−03 S.sub.8 0 2.00E+00 9.75E−02 −1.02E−02 −2.53E−03 2.44E−03 S.sub.9 0 1.91E+00 7.56E−02 5.35E−03 −3.61E−03 2.18E−03 S.sub.10 0 1.97E+00 −2.06E−01 −7.41E−03 1.20E−02 1.23E−02 S.sub.11 0 2.23E+00 −7.22E−02 −6.08E−03 −4.02E−03 3.52E−03 S.sub.12 0 2.53E+00 −2.88E−01 3.29E−02 −9.09E−04 −1.65E−03 S.sub.13 0 2.56E+00 −5.32E−01 2.37E−02 1.08E−03 3.36E−03 Surface A.sub.4 A.sub.5 A.sub.6 A.sub.7 A.sub.8 S.sub.2 −1.06E−03 6.89E−04 2.45E−04 1.36E−04 −7.34E−05 S.sub.3 −2.39E−03 6.73E−03 −4.20E−03 1.24E−03 −1.28E−04 S.sub.4 −7.89E−03 1.05E−02 −3.05E−03 −3.70E−04 4.94E−04 S.sub.5 −6.79E−03 1.08E−02 −5.13E−03 8.77E−04 1.17E−04 S.sub.6 −2.71E−03 8.88E−04 −2.85E−04 1.16E−04 −2.50E−05 S.sub.7 1.85E−03 −1.35E−03 5.37E−04 −3.12E−05 −2.07E−05 S.sub.8 2.31E−04 −1.22E−05 −2.13E−04 7.09E−05 −6.57E−06 S.sub.9 −5.62E−04 3.85E−04 −2.40E−04 5.87E−05 −4.84E−06 S.sub.10 9.85E−03 6.56E−03 3.37E−03 1.23E−03 3.22E−04 S.sub.11 4.14E−03 2.69E−03 7.37E−06 −4.58E−04 −2.90E−04 S.sub.12 −3.35E−03 −1.95E−03 −8.35E−04 −2.85E−04 −3.85E−05 S.sub.13 −4.54E−04 −5.31E−04 −6.51E−04 −2.79E−04 −1.69E−04
TABLE-US-00037 TABLE 37 On State Off State (Pop Out) (Collapsed) T [mm] S.sub.9 3.5280 1.0000 S.sub.13 2.0865 0.2500
TABLE-US-00038 TABLE 38 DP1 [mm] DP2 [mm] DP3 [mm] L5 S.sub.10 N/A N/A N/A S.sub.11 1.7781 N/A N/A L6 S.sub.12 0.8539 2.1100 N/A S.sub.13 0.0957 N/A N/A
[0179] Table 39 provides surface types, Table 40 provides aspheric coefficients, and Table 41 shows BG1 and BG2 for the pop-out state and c-BG1 and c-BG2 for collapsed state. Table 42 shows the deflection point distances from the optical axis.
TABLE-US-00039 TABLE 39 EFL = 13.9 mm, F# = 2, HFoV = 13.5 deg, Sensor Height Full Diagonal = 6.5 mm R D/2 Focal Length Group Lens Surface Type [mm] T [mm] [mm] Nd Vd [mm] Object S.sub.0 Flat Infinity Infinity Stop S.sub.1 Flat Infinity −1.66 3.47 G1 L1 S.sub.2 QTYP 4.41 1.44 3.47 1.55 55.64 16.37 9.95 S.sub.3 QTYP 7.27 0.05 3.33 L2 S.sub.4 QTYP 4.32 1.51 3.23 1.51 56.81 7.82 S.sub.5 QTYP −52.11 0.15 3.05 L3 S.sub.6 QTYP −3.92 0.31 2.82 1.67 19.44 −9.80 S.sub.7 QTYP −9.93 See Table 41 2.45 G2 L4 S.sub.8 QTYP 21.91 0.32 1.92 1.55 56.85 −27.93 −13.32 S.sub.9 QTYP 8.97 0.99 1.76 L5 S.sub.10 QTYP −5.89 0.32 1.73 1.55 56.02 −11.76 S.sub.11 QTYP −69.36 0.05 1.91 L6 S.sub.12 QTYP 3.04 0.46 1.94 1.67 19.44 19.56 S.sub.13 QTYP 3.70 See Table 41 2.05 Field L7 S.sub.14 QTYP 15.39 0.47 3.29 1.67 19.44 −448.46 Lens S.sub.15 QTYP 14.47 0.54 3.30 Glass window S.sub.16 Flat Infinity 0.11 1.52 64.17 S.sub.17 Flat Infinity 0.39 Image sensor S.sub.18
TABLE-US-00040 TABLE 40 Surface Conic (k) NR A.sub.0 A.sub.1 A.sub.2 A.sub.3 A.sub.4 S.sub.2 0 3.52E+00 3.05E−01 −1.75E−01 1.08E−01 −5.69E−02 2.67E−02 S.sub.3 0 3.33E+00 −1.44E−01 9.96E−02 −6.22E−02 1.75E−02 −1.58E−02 S.sub.4 0 3.26E+00 −5.61E−01 1.16E−01 −5.80E−02 2.25E−02 −1.65E−02 S.sub.5 0 3.10E+00 2.25E−02 7.68E−04 −9.98E−04 −2.60E−03 −9.16E−04 S.sub.6 0 2.75E+00 1.38E+00 −2.15E−01 5.41E−02 −1.88E−02 6.37E−03 S.sub.7 0 2.32E+00 8.26E−01 −1.09E−01 2.21E−02 −8.06E−03 1.87E−03 S.sub.8 0 2.14E+00 3.84E−01 7.32E−02 −2.03E−02 −1.12E−03 −1.91E−03 S.sub.9 0 1.99E+00 2.37E−01 6.43E−02 −2.65E−02 −7.56E−03 −4.58E−03 S.sub.10 0 1.83E+00 1.22E−01 −8.70E−02 9.67E−03 −4.42E−03 2.08E−04 S.sub.11 0 1.97E+00 2.29E−01 −1.18E−01 2.15E−02 −5.51E−03 1.70E−03 S.sub.12 0 1.98E+00 −6.03E−01 1.22E−02 −1.01E−02 −1.09E−03 −1.71E−04 S.sub.13 0 2.10E+00 −6.99E−01 4.54E−02 −1.48E−02 1.08E−03 −8.96E−04 S.sub.14 0 3.30E+00 −8.94E−02 9.94E−02 −2.24E−02 −1.68E−03 −2.82E−03 S.sub.15 0 3.35E+00 −2.82E−01 1.19E−01 −3.61E−02 −4.14E−03 −5.42E−03 Surface A.sub.5 A.sub.6 A.sub.7 A.sub.8 A.sub.9 A.sub.10 S.sub.2 −1.04E−02 4.42E−03 −2.44E−03 1.02E−03 −2.68E−04 −1.40E−07 S.sub.3 4.39E−03 −1.08E−03 3.34E−04 6.27E−05 — — S.sub.4 2.94E−03 −9.67E−04 3.08E−04 2.63E−04 — — S.sub.5 −5.21E−06 6.89E−04 −3.89E−04 −4.99E−06 — — S.sub.6 −2.07E−03 8.82E−04 −1.35E−04 −4.51E−05 — — S.sub.7 −2.41E−04 4.11E−05 4.76E−05 −2.17E−05 — — S.sub.8 −2.84E−04 −1.03E−04 −4.12E−06 −6.60E−06 — — S.sub.9 −1.24E−03 −3.84E−04 −6.86E−05 −2.03E−05 — — S.sub.10 −1.08E−04 2.49E−05 1.66E−05 4.91E−06 — — S.sub.11 7.12E−04 2.28E−04 1.31E−04 −1.71E−05 — — S.sub.12 7.13E−04 2.54E−04 1.50E−04 9.66E−06 — — S.sub.13 4.06E−04 −1.37E−05 5.28E−05 −1.11E−05 — — S.sub.14 3.35E−04 −5.87E−04 — — — — S.sub.15 5.37E−04 −8.14E−04 — — — —
TABLE-US-00041 TABLE 41 On State Off State (Pop Out) (Collapsed) T [mm] S.sub.7 1.58 0.20 S.sub.13 3.82 0.20
TABLE-US-00042 TABLE 42 DP1 [mm] DP2 [mm] DP3 [mm] L6 S.sub.12 0.8851 N/A N/A S.sub.13 0.7231 N/A N/A L7 S.sub.14 3.1393 N/A N/A (FL) S.sub.15 0.8056 1.8548 3.0509
While this disclosure has been described in terms of certain embodiments and generally associated methods, alterations and permutations of the embodiments and methods will be apparent to those skilled in the art. The disclosure is to be understood as not limited by the specific embodiments described herein, but only by the scope of the appended claims.
[0180] Unless otherwise stated, the use of the expression “and/or” between the last two members of a list of options for selection indicates that a selection of one or more of the listed options is appropriate and may be made.
[0181] It should be understood that where the claims or specification refer to “a” or “an” element, such reference is not to be construed as there being only one of that element.
[0182] Furthermore, for the sake of clarity the term “substantially” is used herein to imply the possibility of variations in values within an acceptable range. According to one example, the term “substantially” used herein should be interpreted to imply possible variation of up to 5% over or under any specified value. According to another example, the term “substantially” used herein should be interpreted to imply possible variation of up to 2.5% over or under any specified value. According to a further example, the term “substantially” used herein should be interpreted to imply possible variation of up to 1% over or under any specified value.
[0183] All references mentioned in this specification are herein incorporated in their entirety by reference into the specification, to the same extent as if each individual reference was specifically and individually indicated to be incorporated herein by reference. In addition, citation or identification of any reference in this application shall not be construed as an admission that such reference is available as prior art to the present disclosure.