The present disclosure relates in general to digital cameras, and more particularly, to digital cameras with pop-out mechanisms and lenses.
Compact multi-aperture digital cameras (also referred to as “multi-lens cameras” or “multi-cameras”) and in particular dual-aperture (or “dual-camera”) and triple-aperture (or “triple-camera”) digital cameras are known. Miniaturization technologies allow incorporation of such cameras in compact portable electronic devices such as tablets and mobile phones (the latter referred to hereinafter generically as “smartphones”), where they provide advanced imaging capabilities such as zoom, see e.g. co-owned PCT patent application No. PCT/IB2063/060356, which is incorporated herein by reference in its entirety. A typical triple-camera system (exemplarily including an ultra-wide-angle (or “Ultra-Wide” or “UW”) camera, wide-angle (or “Wide”) camera and a telephoto (or “Tele”) camera.
A challenge with dual-aperture zoom cameras relates to camera height and size of image sensor (“Sensor Diagonal” or SD). There is a large difference in the height (and also of the total track length or “TTL”) of the Tele and Wide cameras.
This shows that for realizing a camera with a larger image sensor width (i.e. larger sensor diagonal) but same FOV, a larger EFL is required.
In mobile devices, typical Wide cameras have 35 mm equivalent focal lengths (“35eqFL”). ranging from 22 mm to 28 mm. Image sensors embedded in mobile cameras are smaller than full frame sensors and actual focal lengths in Wide cameras range from 3.2 mm to 7 mm, depending on the sensor size and FOV. In most lenses designed for such cameras, the TTL/EFL ratio is larger than 1.0 and is typically between 1.0 and 1.3. Another characteristic of these lenses is that their TTL-to-sensor diagonal ratio TTL/SD is typically in the range of 0.6 to 0.7. Embedding larger sensors in Wide cameras is desirable, but require larger EFL for maintaining the same FOV, resulting in larger TTL, which is undesirable.
Many mobile devices include now both Tele and Wide cameras. The Tele camera enables optical zoom and other computational photography features such as digital Bokeh. Depending on the Wide camera characteristics and permissible module height, the 35eqFL of mobile device Tele cameras ranges from 45 mm to 100 mm. The TTL of lenses designed for Tele cameras is smaller than the EFL of such lenses, typically satisfying 0.7<TTL/EFL<1.0. Typical Tele EFL values range from 6 mm to 10 mm (without applying 35 mm equivalence conversion) in vertical (non-folded) Tele cameras and from 10 mm to 30 mm in folded Tele cameras. Larger EFL is desirable for enhancing the optical zoom effect but it results in larger TTL, which is undesirable.
In a continuous attempt to improve the obtained image quality, there is a need to incorporate larger image sensors into the Wide and Tele cameras. Larger sensors allow for improved low-light performance and larger number of pixels, hence improving the spatial resolution as well. Other image quality characteristics, such as noise characteristics, dynamic range and color fidelity may also improve as the sensor size increases.
As the Wide camera sensor becomes larger, the required EFL is larger (for the same 35 mm equivalent focal length), the lens TTL increases and the camera module height becomes larger, resulting in a limit on the permissible sensor size when considering the allowed mobile device thickness or other industrial design constraints. In Wide cameras of most mobile devices, the sensor pixel array size full diagonal ranges from about 4.5 mm (typically referred to as ¼″ sensor) to 16 mm (typically referred to 1″ sensor).
It would be beneficial to have Wide and/or Tele lens designs that support large EFLs for large sensor diagonals (optical zoom) while still having small TTL for slim design. The latter is presented for example in co-owned U.S. provisional patent application No. 62/904,913.
In various examples, there are provided digital cameras comprising: an optics module comprising a lens assembly that includes N lens elements L1-LN starting with L1 on an object side, wherein N≥4; an image sensor having a sensor diagonal SD in the range of 5-20 mm; and a pop-out mechanism configured to control at least one air-gap between lens elements or between a lens element and the image sensor to bring the camera to an operative pop-out state and to a collapsed state, wherein the lens assembly has a total track length TTL in the operative pop-out state and a collapsed total track length cTTL in the collapsed state, and wherein cTTL/SD<0.6.
For simplicity, in the description below, “lens” may be used instead of “lens assembly”.
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.
In various examples of cameras above and below, the window pop-up mechanism includes a window frame engageable with the optics module, wherein the window frame does not touch the optics module in the pop-out state and wherein the window frame is operable to press on the optics module to bring the camera to the collapsed state. The window frame includes a window that is not in direct contact with the lens.
In some examples, the largest air-gap d is between LN−1 and LN.
In some examples, the largest air-gap d is between LN−2 and LN−1 or between LN−1 and LN, and the lens assembly has a 35 mm equivalent focal length 35eqFL between 40 mm and 150 mm. In such an example, d may be larger than TTL/5.
In some examples, cTTL/SD<0.55.
In some examples, SD is in the range of 10 mm to 15 mm.
In some examples, a camera as above or below is included in a multi-camera together with a second camera having a second total track length TTL2 in the range of 0.9×TTL to 1.1×TTL.
In some examples, the lens assembly has a 35 mm equivalent focal length 35eqFL larger than 24 mm.
In some examples, the lens assembly has an effective focal length EFL and ratio TTL/EFL is smaller than 1.4 and larger than 1.0.
In various examples, there are provided digital cameras comprising: an optics module comprising a lens assembly that includes N lens elements L1-LN starting with L1 on an object side, wherein N≥4 and wherein the lens assembly has a back focal length BFL that is larger than any air-gap between lens elements and has an effective focal length EFL in the range of 7 mm to 18 mm; a pop-out mechanism configured to actuate the lens assembly to an operative pop-out state and to a collapsed state, wherein the lens assembly has a total track length TTL in the operative pop-out state and a collapsed total track length cTTL in the collapsed state, and wherein the pop-out mechanism is configured to control the BFL such that cTTL/EFL<0.55; and an image sensor having sensor diagonal SD.
In some examples, a pop-out mechanism includes a window pop-out mechanism based on a pin-groove assembly, and one or more of the pins slide in vertically oriented grooves and one or more pins slide in angled grooves that have an angle of 20-80 degrees, 30-70 degrees or 40-60 degrees with respect to the vertical.
In some examples, a pop-out mechanism includes a barrel pop-out mechanism that comprises springs and a guiding and positioning mechanism that enables sufficient z-decenter and xy-decenter accuracy between lens elements in the operative pop-out state and enables repeatability in switching between operative and collapsed states, wherein the sufficient decenter accuracy is less than 0.1 mm decenter and wherein the repeatability is less than 0.05 mm decenter. In other examples, the sufficient decenter accuracy is less than 0.8 mm decenter and the repeatability is less than 0.04 mm decenter. In yet other examples, the sufficient decenter accuracy is less than 0.6 mm decenter and the repeatability is less than 0.03 mm decenter. The guiding and positioning mechanism may be based on a pin and groove assembly, on a stopper or on a kinematic coupling mechanism. In some examples, a guiding mechanism may be based on a pin-groove assembly and a positioning mechanism based on a magnetic force.
In some examples, SD is in the range of 4.5 mm to 10 mm and the lens assembly has a 35eqFL larger than 45 mm and smaller than 180 mm.
In some examples, SD is in the range of 10 mm to 20 mm and the lens assembly has a 35eqFL larger than 40 mm and smaller than 180 mm.
In some examples, ratio TTL/EFL is smaller than 1.0 and larger than 0.7.
In some examples, BFL is larger than TTL/3 and smaller than TTL/1.5.
In some examples of cameras as above or below, the lens has a lens element with a largest lens diameter dL, wherein a penalty between a largest diameter dmodule of the optics module and the largest lens diameter dL is smaller than 4 mm, than 2 mm or even than 1 mm.
In various examples, there are provided multi-cameras comprising: a first camera that includes a first lens assembly with a first field of view FOV1 and N lens elements L1-LN starting with L1 on an object side wherein N≥4, a first image sensor having a sensor diagonal SD1, and a pop-out mechanism that controls a largest air-gap d between two consecutive lens elements to bring the first camera to an operative pop-out state and a collapsed state, wherein the first lens assembly has a first 35 mm equivalent focal length 35eqFL1, a total track length TTL1 in the operative state and a collapsed total track length cTTL1 in the collapsed state, wherein SD1 is in the range 7-20 mm and wherein cTTL1/SD1<0.6; and a second camera having a second camera effective focal length EFL2 of 7-18 mm and including a second lens assembly with a second field of view FOV2 smaller than FOV1, the second lens assembly comprising M lens elements L1-LM starting with L1 on an object side wherein M≥4, and a pop-out mechanism configured to actuate the second camera to an operative state and a collapsed state, wherein the second lens assembly has a second 35 mm equivalent focal length 35eqFL2, a total track length TTL2 in the operative state and a collapsed total track length cTTL2 in the collapsed state, and wherein cTTL/EFL<0.55.
In some examples, cTTL1=cTTL2±10%.
In some examples, 35eqFL2≥1.5×35eqFL1.
In some examples, 35eqFL1 is larger than 24 mm.
In some examples, 35eqFL2 is larger than 45 mm.
In various examples, there are provided multi-cameras comprising: a Wide camera comprising a lens barrel carrying a Wide lens assembly comprising N≥4 lens elements L1-LN starting with L1 on an object side, an image sensor having a Wide sensor diagonal SDW, and a first pop-out mechanism that controls an air-gap dN−1 between lens elements LN and LN−1 to bring the camera to an operative state and a collapsed state, wherein the Wide lens assembly has a field of view FOVW, a total track length TTLW in the operative state and a collapsed total track length cTTLW in the collapsed state, wherein if SDW is in the range 10-16 mm then cTTLW/SDW<0.6; and a Tele camera comprising a lens barrel carrying a Tele lens assembly comprising N is ≥4 lens elements L1-LN starting with L1 on an object side, a Tele image sensor having a sensor diagonal SDT and a second pop-out mechanism that controls an air-gap between lens element LN and the Tele image sensor to bring the camera to an operative state and a collapsed state, wherein the Tele lens assembly has a field of view FOVT smaller than FOVW, a TTLT in the operative state and a cTTLT in the collapsed state, wherein if SDT is in the range 4.5-10 mm then cTTLT<EFLT<0.55, and wherein cTTLW=cTTLT±10%.
In some examples, the multi-camera is embedded in a device having a device exterior surface, and in an operative state the camera extends beyond the device exterior surface by 2 mm-7 mm and in a non-operative state the cameras extends beyond the device exterior surface by less than 2 mm.
In some examples, 7 mm<TTLW<13 mm, 1.0<TTLW/EFLW<1.3 and dN−1 is greater than TTL/4.
In some examples, there is provided a camera comprising: a lens assembly comprising N lens elements L1-LN starting with L1 on an object side wherein N≥4; a curved image sensor having a sensor diagonal SD in the range of 7-20 mm; and a pop-out mechanism that controls an air-gap d between LN and the image sensor to bring the camera to an operative pop-out state and a collapsed state, wherein the lens assembly has a total track length TTL in the operative pop-out state and a collapsed total track length cTTL in the collapsed state, wherein cTTL/SD<0.6 and wherein the lens assembly has a 35 mm equivalent focal length 35eqFL that is smaller than 18 mm.
Non-limiting examples of embodiments disclosed herein 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 are generally labeled with a same numeral in all the figures in which they appear. If identical elements are shown but numbered in only one figure, it is assumed that they have the same number in all 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. In the drawings:
Camera 200 comprises a general pop-out mechanism 210 and a pop-out optics module 240. Optics module 240 comprises a lens barrel holder 202 carrying a pop-out lens barrel 204 with a pop-out lens assembly 206, and in some cases (“examples”) an image sensor 208. In some examples, the image sensor may be separate from the optics module. Lens barrel 204 and window 216 are separated by an air-gap 222 of, for example, 0.15-3 mm. Air-gap 222 allows for a movement of the lens barrel by 0.1-3 mm for performing auto-focus (AF) and optical image stabilization (OIS) by moving the lens as known in the art. Optics module 240 is covered by a cover 232. In some examples, the pop-out lens barrel (e.g. a lens barrel 602) may be divided into two or more sections, e.g. in a fixed lens barrel section and a collapsible barrel section.
General pop-out mechanism 210 comprises a “window” pop-out mechanism (external to the optics module) and a “barrel” pop-out mechanism with some parts external to and some parts internal to the optics module. The window pop-out mechanism raises and lowers the window. The barrel pop-out mechanism enables the pop-out and collapsed lens barrel states.
The window pop-out mechanism includes parts shown in detail for example in
The barrel pop-out mechanism includes parts shown in detail for example in
The guiding and positioning mechanism positions the lens groups and optical components in fixed distance and orientation. In an example, the guiding and positioning mechanism comprises a pin 242 and a groove 244 (see
The pin-groove assembly with pin 242 and groove 244 provides mechanical stability and repeatability in the X-Z plane and in the Y plane of the coordinate system shown. Stopper 618 provides mechanical stability and repeatability in Y plane. In some examples, other pins such as pins 1206 (see
The lens, the image sensor and (optionally) an optical window or “filter” (e.g. IR filter) 234 form a pop-out optical lens system 260 (see e.g.
To switch between pop-out and collapsed states, pop-out mechanism 210 causes the following movements in frame 220 (where all movements are defined relative to the host device and the coordinate systems shown): a horizontal (i.e. in the X-Z plane) movement of the cam follower and a vertical (i.e. in the Y direction) movement of the window frame. The movement in frame 220 causes a vertical (Y direction) movement of the lens barrel (for a single group or “1G” lens) or of a collapsible section of the lens barrel (in a two group or “2G” lens) in optics module 240. The image sensor and the side limiter do not move. Importantly, the barrel pop-out mechanism does not include an actuator.
In the pop-out state shown in
The pop-out lens may be a Tele lens, for example as in
Camera 200 may be designed to support, 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°. The planes and directions are as in the coordinate systems shown in the figures. 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 a tilt of ±0.05°.
Similar accuracy tolerances and repeatability tolerances hold for optics frame 1650 (see e.g.
“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.
In lens system 400, TTL=11.55 mm, BFL=5.96 mm, EFL=13 mm, F number=2.20 and the FOV=29.7 deg. A ratio of TTL/EFL=0.89. The optical properties of lens 420 do not change when switching between a pop-out state and a collapsed state (i. e. gaps between lens elements are constant).
In the collapsed state (see
Detailed optical data of lens system 400 is given in Table 1, and the aspheric surface data is given in Table 2 and Table 3, wherein the units of the radius of curvature (R), lens element thickness and/or distances between elements along the optical axis and diameter are expressed in mm. “Index” is the refraction index. The equation of the aspheric surface profiles is expressed by:
where {z, r} are the standard cylindrical polar coordinates, c=1/R is the paraxial curvature of the surface, k is the conic parameter, and rnorm is generally one half of the surface's clear aperture. An are the polynomial coefficients shown in lens data Table 2 and Table 3 (as well as in Table 5 and Table 6, and in Table 10 and Table 11). The Z-axis is defined to be positive towards the image. Also note that in Table 1 (as well as in Table 4 and Table 9), the distances between various elements (and/or surfaces) refer to the element thickness and are measured on the optical axis Z, wherein the stop is at z=0. Each number is measured from the previous surface. Thus, the first distance −1.197 mm is measured from the stop to surface S2. The reference wavelength is 555.0 nm. Units are in mm (except for refraction index “Index” and Abbe #). The largest lens diameter dL of a lens such as lens 240 is given by the largest diameter present among all the lens elements of a lens such as lens 240.
In general, N≥4. In other examples, the lens barrel may comprise more than two barrel sections with more lens groups each, e.g. 3, 4, 5 lens barrel sections with each barrel section carrying a lens group. The lens barrel sections may be divided into fixed barrel sections and movable barrel sections. Air-gaps may be formed between lens groups according to their relative movement. In examples with more than two barrel sections, some or all barrel sections may be movable and have respective air-gaps formed between the lens groups. The air-gaps between lens groups may collapse in a non-operative camera state. The sum of such air-gaps may be 1-8.5 mm. The largest air-gaps present between two consecutive lens elements may be used to define lens groups. 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. This statement is true for all lens and camera examples below. In the pop-out state, air-gap dN−1 may be 1-3.5 mm. A spring 614 pushes the first lens barrel section 604 towards a window frame like frame 214. In the operative state, stopper 618 and another stopper 618′ may act as a stopper mechanism that keeps the lens groups in fixed distance and orientation. In some examples, an camera in pop-out state disclosed herein may be designed to support 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 ±0.2° of the lens barrel with respect to image sensor 208. In other examples tolerances for decenter may be e.g. ±3-10 μm in the X-Z plane and of e.g. ±3-10 μm in the Y direction, as well as e.g. ±0.05°-0.15° for a tilt of lens barrel with respect to the image sensor Y. In yet other examples, tolerances for decenter may be smaller than 1 μm in the X-Z plane, e.g. 0.8 μm. In yet other examples, tolerances for decenter in a Y plane may be smaller than 1 μm, e.g. 0.8 μm, to support the properties of a lens system like system 630, 650 or 1000, especially for air-gaps between lens elements such as dN−1 (see
The TTL of the lens, measured from the first (object side) surface of L1 to the image sensor may be 5-18 mm. The image sensor diagonal may be 6 mm<sensor diagonal<30 mm. The 35eqFL may be 15 mm<equivalent focal length<200 mm. The TTL/EFL ratio may vary in the range 0.7<TTL/EFL<1.5.
In the collapsed state (see
The optical properties of lens 620′ change when switching between a pop-out state and the collapsed state. The optical properties presented here refer to the lens elements in a “maximal” pop-out state, i.e. when the lens has the largest TTL.
In the collapsed state (see
In lens system 1000, a first lens group 1016 includes lens elements 1002, 1004 and 1006 and a second lens group 1018 includes lens elements 1008 and 1010. In the pop-out state, air-gap d1006 between surface 1008a of lens element 1008 and surface 1006b of the immediately preceding lens element 1006 is 2.020 mm (see Table 10). The TTL of the lens system is 5.904 mm. The division into a first lens group and a second lens group is done according to the largest air-gap between two consecutive lens elements.
Lens system 1000 may provide a FOV of 25-50 degrees, and EFL=6.9 mm, a F number=2.80 and a TTL=5.904 mm. The ratio TTL/EFL is 0.86, i.e. EFL>TTL. The ratio cTTL/EFL may be 0.58-0.69. For air-gap d1006=TTL/2.95, so d1006>TTL/3. In other examples, for a largest air-gap that divides the lens elements into first and a second lens groups the air-gap may fulfill air-gap>TTL/5 and EFL>TTL.
The optical properties of lens system 1000 change when switching to the collapsed state (not shown). In the collapsed state, cTTL may be 3.97-10 mm and collapsed air-gap c-d1006 may be 0.05-0.85 mm. The difference between cTTL and TTL stems from a modified distance between first lens group 1016 and second lens group 1018. The distance between first lens group 1016 and image sensor 208 changed with respect to the pop-out state, but distance between second lens group 1016 and the image sensor 1014 did not change.
In lens system 1000, all lens element surfaces are aspheric. Detailed optical data is given in Table 10, and the aspheric surface data is given in Table 11, wherein the units of the radius of curvature (R), lens element thickness and/or distances between elements along the optical axis and diameter are expressed in mm. “Nd” is the refraction index. The equation of the aspheric surface profiles is expressed by:
where r is distance from (and perpendicular to) the optical axis, k is the conic coefficient, c=1/R where R is the radius of curvature, and a are coefficients given in Table 2. In the equation above as applied to examples of a lens assembly disclosed herein, coefficients α1 and α7 are zero. Note that the maximum value of r “max r”=Diameter/2. Also note that Table 1 the distances between various elements (and/or surfaces) are marked “Lmn” (where m refers to the lens element number, n=1 refers to the element thickness and n=2 refers to the air-gap to the next element) and are measured on the optical axis z, wherein the stop is at z=0. Each number is measured from the previous surface. Thus, the first distance −0.466 mm is measured from the stop to surface 1002a, the distance L11 from surface 1002a to surface 1002b (i.e. the thickness of first lens element 1002) is 0.894 mm, the gap L12 between surfaces 1002b and 1004a is 0.020 mm, the distance L21 between surfaces 1004a and 1004b (i.e. thickness d2 of second lens element 1004) is 0.246 mm, etc. Also, L21=d2 and L51=d5.
Advantageously, the Abbe number of the first, third and fifth lens element is 57.095. Advantageously, the first air-gap between lens elements 1002 and 1004 (the gap between surfaces 1002b and 1004a) has a thickness (0.020 mm) which is less than a tenth of thickness d2 (0.246 mm). Advantageously, the Abbe number of the second and fourth lens elements is 23.91. Advantageously, the third air-gap between lens elements 1006 and 1008 has a thickness (2.020 mm) greater than TTL/5 (5.904/5 mm). Advantageously, the fourth air-gap between lens elements 108 and 110 has a thickness (0.068 mm) which is smaller than d5/2 (0.293/2 mm).
The focal length (in mm) of each lens element in lens system 1000 is as follows: f1=2.645, f2=−5.578, f3=−8.784, f4=9.550 and f5=−5.290. The condition 1.2×|f3|>|f2|<1.5×f1 is clearly satisfied, as 1.2×8.787>5.578>1.5×2.645. f1 also fulfills the condition f1<TTL/2, as 2.645<2.952.
In lens system 1300, TTL=8.28 mm, BFL=3.24 mm, EFL-6.95 mm, F number=1.85 and the FOV=80.52 deg.
In the collapsed state (see
In other examples, optical window 234 may be curved. A radius of curvature RW of the optical window may be of same sign as the radius of curvature R of curved image sensor 208 (i.e. with a center at the object side of the optical window) and may be curved in a similar way, so RW may e.g. be RW=−15 to −25 mm. In another example may be RW=R, with R being radius of curvature of the curved image sensor. This may allow for a smaller cTTL. cTTL may be 5.64-7.54 mm and c-BFL may be 0.594-2.5 mm.
Camera 1400 comprises an external module seal 224 and an internal module seal 1404. External seal 224 prevents particles and fluids from entering device 250. Seal 224 may support a IP68 class ranking of device 250. Internal seal 1404 prevents particles from entering optics module 600′.
“External” and “internal” refer to the fact that seal 224 prevents contamination of the camera from outside the host device, while seal 1404 prevents contamination of the camera from inside the host device.
Optics module 600′ and window frame 214 form an air-gap 222′ between the lens barrel and window 216, which may be for example 0.1 mm-3 mm. Air-gap 222′ allows for a movement of the lens barrel by 0.1-3 mm for performing auto-focus (AF) and optical image stabilization (OIS) by moving lens 620 or parts of lens 620 or optics module 600′ or sensor 208 as known in the art.
Camera 1400 forms a significant pop-out bump 226 with respect to an exterior surface 228 of device 250. Here, “significant” may be for example 1.5 mm-12 mm. In the pop-out state, camera 1400 increases the height of host device 250 to a height in a pop-out state.
Lens 620 may have N≥4 lens elements, and, as mentioned, comprises a barrel with two lens barrel sections. In other examples, the lens barrel may comprise more than two barrel sections with more lens groups, e.g. 3, 4, 5 lens barrel sections with each barrel section carrying a lens group. The lens barrel sections may be divided into fixed barrel sections and movable barrel sections. In the example shown, first lens group 606 includes lenses L1-LN−1 and second lens group 610 includes lens LN (see
The TTL of the lens may be 5-22 mm. The image sensor diagonal may be 6 mm<sensor diagonal <30 mm. The 35eqFL may be 15 mm<equivalent focal length <200 mm. The TTL/EFL ratio may vary in the range 0.7<TTL/EFL<1.5.
A window position measurement mechanism 1420 shown in
When cam follower 1402 is moved in a negative X direction, the inclination of switching grooves 1506 and 1508 leads to a downward movement (in a negative Y direction) of window frame 214′. This downward movement is used to switch the camera to the collapsed state. The downward movement is limited and guided by side limiter pin 1512. The inclination of switching grooves 1506 and 1508 may e.g. be between 20-80 degrees with respect to a vertical Y axis.
A “penalty” p for a diameter of an optics module is defined as the difference between the diameter of the optics module and the largest diameter of a lens included in the optics module. For optics module 600′, dmodule is slightly larger than the largest diameter of lens 620, represented by the diameter of LN. Therefore, for optics module 600′, penalty p is p=p1+p2 and may be 0.5 mm-8 mm.
Pairs 1810 are distributed at equal distance from each other. By means of the three v-groove/pin pairs 1810, optics frame 1650 supports narrow tolerances in terms of accuracy as well as repeatability for decenter in X-Z and Y as well as for tilt. Here and in the description of
Optics frame 1650 as well as optics module 600″ below may be designed to support accuracy tolerances for decenter and reliability tolerances like those of camera 200.
In summary, disclosed herein are digital cameras with a pop-out mechanisms that allow for large EFLs and large image sensor sizes and low camera heights in a collapsed mode.
While this disclosure has been described in terms of certain examples and generally associated methods, alterations and permutations of the examples and methods will be apparent to those skilled in the art. The disclosure is to be understood as not limited by the specific examples described herein, but only by the scope of the appended claims.
It is appreciated that certain features of the presently disclosed subject matter, which are, for clarity, described in the context of separate examples, may also be provided in combination in a single example. Conversely, various features of the presently disclosed subject matter, which are, for brevity, described in the context of a single example, may also be provided separately or in any suitable sub-combination.
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 10% 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 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 2.5% over or under any specified value.
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.
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.
All patents and patent applications mentioned in this specification are herein incorporated in their entirety by reference into the specification, to the same extent as if each individual patent or patent application 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.
This is a continuation in part (CIP) of U.S. patent application Ser. No. 17/291,475 filed May 5, 2021, which was a 371 from international application PCT/IB2020/058697 filed Sep. 18, 2020, and is related to and claims priority from U.S. Provisional Patent Applications No. 62/904,913 filed Sep. 24, 2019, 63/026,317 filed May 18, 2020 and 63/037,836 filed Jun. 11, 2020, all of which are incorporated herein by reference in their entirety.
Number | Name | Date | Kind |
---|---|---|---|
2106752 | Land | Feb 1938 | A |
2354503 | Cox | Jul 1944 | A |
2378170 | Aklin | Jun 1945 | A |
2441093 | Aklin | May 1948 | A |
3388956 | Eggert et al. | Jun 1968 | A |
3524700 | Eggert et al. | Aug 1970 | A |
3558218 | Grey | Jan 1971 | A |
3864027 | Harada | Feb 1975 | A |
3942876 | Betensky | Mar 1976 | A |
4134645 | Sugiyama et al. | Jan 1979 | A |
4338001 | Matsui | Jul 1982 | A |
4465345 | Yazawa | Aug 1984 | A |
5000551 | Shibayama | Mar 1991 | A |
5969869 | Hirai et al. | Oct 1999 | A |
6014266 | Obama et al. | Jan 2000 | A |
6147702 | Smith | Nov 2000 | A |
6169636 | Kreitzer | Jan 2001 | B1 |
6654180 | Ori | Nov 2003 | B2 |
7187504 | Horiuchi | Mar 2007 | B2 |
7206136 | Labaziewicz et al. | Apr 2007 | B2 |
7515351 | Chen et al. | Apr 2009 | B2 |
7564635 | Tang | Jul 2009 | B1 |
7643225 | Tsai | Jan 2010 | B1 |
7660049 | Tang | Feb 2010 | B2 |
7684128 | Tang | Mar 2010 | B2 |
7688523 | Sano | Mar 2010 | B2 |
7692877 | Tang et al. | Apr 2010 | B2 |
7697220 | Iyama | Apr 2010 | B2 |
7738186 | Chen et al. | Jun 2010 | B2 |
7777972 | Chen et al. | Aug 2010 | B1 |
7813057 | Lin | Oct 2010 | B2 |
7821724 | Tang et al. | Oct 2010 | B2 |
7826149 | Tang et al. | Nov 2010 | B2 |
7826151 | Tsai | Nov 2010 | B2 |
7869142 | Chen et al. | Jan 2011 | B2 |
7898747 | Tang | Mar 2011 | B2 |
7916401 | Chen et al. | Mar 2011 | B2 |
7918398 | Li et al. | Apr 2011 | B2 |
7957075 | Tang | Jun 2011 | B2 |
7957076 | Tang | Jun 2011 | B2 |
7957079 | Tang | Jun 2011 | B2 |
7961406 | Tang et al. | Jun 2011 | B2 |
8000031 | Tsai | Aug 2011 | B1 |
8004777 | Souma | Aug 2011 | B2 |
8077400 | Tang | Dec 2011 | B2 |
8149523 | Ozaki | Apr 2012 | B2 |
8218253 | Tang | Jul 2012 | B2 |
8228622 | Tang | Jul 2012 | B2 |
8233224 | Chen | Jul 2012 | B2 |
8253843 | Lin | Aug 2012 | B2 |
8279537 | Sato | Oct 2012 | B2 |
8363337 | Tang et al. | Jan 2013 | B2 |
8395851 | Tang et al. | Mar 2013 | B2 |
8400717 | Chen et al. | Mar 2013 | B2 |
8451549 | Yamanaka et al. | May 2013 | B2 |
8503107 | Chen et al. | Aug 2013 | B2 |
8514502 | Chen | Aug 2013 | B2 |
8570668 | Takakubo et al. | Oct 2013 | B2 |
8718458 | Okuda | May 2014 | B2 |
8780465 | Chae | Jul 2014 | B2 |
8810923 | Shinohara | Aug 2014 | B2 |
8854745 | Chen | Oct 2014 | B1 |
8958164 | Kwon et al. | Feb 2015 | B2 |
9185291 | Shabtay | Nov 2015 | B1 |
9229194 | Yoneyama et al. | Jan 2016 | B2 |
9235036 | Kato et al. | Jan 2016 | B2 |
9279957 | Kanda et al. | Mar 2016 | B2 |
9438792 | Nakada et al. | Sep 2016 | B2 |
9488802 | Chen et al. | Nov 2016 | B2 |
9568712 | Dror et al. | Feb 2017 | B2 |
9678310 | Iwasaki et al. | Jun 2017 | B2 |
9817213 | Mercado | Nov 2017 | B2 |
20020118471 | Imoto | Aug 2002 | A1 |
20050041300 | Oshima et al. | Feb 2005 | A1 |
20050062346 | Sasaki | Mar 2005 | A1 |
20050128604 | Kuba | Jun 2005 | A1 |
20050141103 | Nishina | Jun 2005 | A1 |
20050168840 | Kobayashi et al. | Aug 2005 | A1 |
20050270667 | Gurevich et al. | Dec 2005 | A1 |
20060238902 | Nakashima et al. | Oct 2006 | A1 |
20070229983 | Saori | Oct 2007 | A1 |
20080056698 | Lee et al. | Mar 2008 | A1 |
20080094730 | Toma et al. | Apr 2008 | A1 |
20080304161 | Souma | Dec 2008 | A1 |
20090002839 | Sato | Jan 2009 | A1 |
20090067063 | Asami et al. | Mar 2009 | A1 |
20090122423 | Park et al. | May 2009 | A1 |
20090141365 | Jannard et al. | Jun 2009 | A1 |
20090147368 | Oh et al. | Jun 2009 | A1 |
20090225438 | Kubota | Sep 2009 | A1 |
20100165476 | Eguchi | Jul 2010 | A1 |
20100277813 | Ito | Nov 2010 | A1 |
20110001838 | Lee | Jan 2011 | A1 |
20110102911 | Iwasaki | May 2011 | A1 |
20110115965 | Engelhardt et al. | May 2011 | A1 |
20110149119 | Matsui | Jun 2011 | A1 |
20110157430 | Hosoya et al. | Jun 2011 | A1 |
20110188121 | Goring et al. | Aug 2011 | A1 |
20110249347 | Kubota | Oct 2011 | A1 |
20120069455 | Lin et al. | Mar 2012 | A1 |
20120092777 | Tochigi et al. | Apr 2012 | A1 |
20120105708 | Hagiwara | May 2012 | A1 |
20120154929 | Tsai et al. | Jun 2012 | A1 |
20120229920 | Otsu et al. | Sep 2012 | A1 |
20120262806 | Lin et al. | Oct 2012 | A1 |
20130057971 | Zhao et al. | Mar 2013 | A1 |
20130088788 | You | Apr 2013 | A1 |
20130208178 | Park | Aug 2013 | A1 |
20130279032 | Suigetsu et al. | Oct 2013 | A1 |
20130286488 | Chae | Oct 2013 | A1 |
20140022436 | Kim et al. | Jan 2014 | A1 |
20140092487 | Chen et al. | Apr 2014 | A1 |
20140146216 | Okumura | May 2014 | A1 |
20140204480 | Jo et al. | Jul 2014 | A1 |
20140285907 | Tang et al. | Sep 2014 | A1 |
20140293453 | Ogino et al. | Oct 2014 | A1 |
20140362274 | Christie et al. | Dec 2014 | A1 |
20150116569 | Mercado | Apr 2015 | A1 |
20150138431 | Shin et al. | May 2015 | A1 |
20150153548 | Kim et al. | Jun 2015 | A1 |
20150244942 | Shabtay et al. | Aug 2015 | A1 |
20150253532 | Lin | Sep 2015 | A1 |
20150253543 | Mercado | Sep 2015 | A1 |
20150253647 | Mercado | Sep 2015 | A1 |
20150373252 | Georgiev | Dec 2015 | A1 |
20150373263 | Georgiev et al. | Dec 2015 | A1 |
20160044250 | Shabtay et al. | Feb 2016 | A1 |
20160062084 | Chen et al. | Mar 2016 | A1 |
20160070088 | Koguchi | Mar 2016 | A1 |
20160085089 | Mercado | Mar 2016 | A1 |
20160187631 | Choi et al. | Jun 2016 | A1 |
20160212333 | Liege et al. | Jul 2016 | A1 |
20160291295 | Shabtay et al. | Oct 2016 | A1 |
20160306161 | Harada et al. | Oct 2016 | A1 |
20160313537 | Mercado | Oct 2016 | A1 |
20160341931 | Liu et al. | Nov 2016 | A1 |
20160353008 | Osborne | Dec 2016 | A1 |
20170102522 | Jo | Apr 2017 | A1 |
20170115471 | Shinohara | Apr 2017 | A1 |
20170160511 | Kim et al. | Jun 2017 | A1 |
20170199360 | Chang | Jul 2017 | A1 |
20180059365 | Bone et al. | Mar 2018 | A1 |
20180217475 | Goldenberg et al. | Aug 2018 | A1 |
20180224630 | Lee et al. | Aug 2018 | A1 |
20190086638 | Lee | Mar 2019 | A1 |
20190107651 | Sade | Apr 2019 | A1 |
20190170965 | Shabtay et al. | Jun 2019 | A1 |
20200221026 | Fridman et al. | Jul 2020 | A1 |
20210364746 | Chen | Nov 2021 | A1 |
20210396974 | Kuo | Dec 2021 | A1 |
20220128886 | Shabtay | Apr 2022 | A1 |
Number | Date | Country |
---|---|---|
102193162 | Sep 2011 | CN |
102147519 | Jan 2013 | CN |
104297906 | Jan 2015 | CN |
105467563 | Apr 2016 | CN |
S54157620 | Dec 1979 | JP |
S59121015 | Jul 1984 | JP |
6165212 | Apr 1986 | JP |
S6370211 | Mar 1988 | JP |
406059195 | Mar 1994 | JP |
H11223771 | Aug 1999 | JP |
2004334185 | Nov 2004 | JP |
2006195139 | Jul 2006 | JP |
2007133096 | May 2007 | JP |
2007219199 | Aug 2007 | JP |
2007306282 | Nov 2007 | JP |
2008111876 | May 2008 | JP |
2008191423 | Aug 2008 | JP |
2010164841 | Jul 2010 | JP |
2012203234 | Oct 2012 | JP |
2013105049 | May 2013 | JP |
2013106289 | May 2013 | JP |
2014142542 | Aug 2014 | JP |
20090131805 | Dec 2009 | KR |
20140135909 | May 2013 | KR |
20140023552 | Feb 2014 | KR |
M602642 | Oct 2020 | TW |
2013058111 | Apr 2013 | WO |
2013063097 | May 2013 | WO |
2018130898 | Jul 2018 | WO |
WO-2021059097 | Apr 2021 | WO |
Entry |
---|
Office Action in related KR patent application 2021-7012637, dated Sep. 28, 2021. 12 pages. |
A compact and cost effective design for cell phone zoom lens, Chang et al., Sep. 2007, 8 pages. |
Consumer Electronic Optics: How small a lens can be? The case of panomorph lenses, Thibault et al., Sep. 2014, 7 pages. |
Optical design of camera optics for mobile phones, Steinich et al., 2012, pp. 51-58 (8 pages). |
The Optics of Miniature Digital Camera Modules, Bareau et al., 2006, 11 pages. |
Modeling and measuring liquid crystal tunable lenses, Peter P. Clark, 2014, 7 pages. |
Mobile Platform Optical Design, Peter P. Clark, 2014, 7 pages. |
Boye et al., “Ultrathin Optics for Low-Profile Innocuous Imager”, Sandia Report, 2009, pp. 56-56. |
“Cheat sheet: how to understand f-stops”, Internet article, Digital Camera World, 2017. |
European Search Report in related EP patent application 20869604.7, dated Feb. 11, 2022. |
Office Action in related EP patent application 20869604.7, dated Feb. 24, 2022. |
European Search Report in related EP patent application 22178091.9, dated Sep. 12, 2022. |
Number | Date | Country | |
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20210397069 A1 | Dec 2021 | US |
Number | Date | Country | |
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63037836 | Jun 2020 | US | |
63026317 | May 2020 | US | |
62904913 | Sep 2019 | US |
Number | Date | Country | |
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Parent | 17291475 | US | |
Child | 17460231 | US |