COMPACT FOLDED CAMERA
20190361323 ยท 2019-11-28
Inventors
- Itay Jerby (Netanya, IL)
- Itay Yedid (Karme Yosef, IL)
- Gal Avivi (Haifa, IL)
- Ephraim Goldenberg (Ashdod, IL)
- Gil Bachar (Tel-Aviv, IL)
- Gal Shabtay (Tel-Aviv, IL)
Cpc classification
G03B17/17
PHYSICS
G03B2217/002
PHYSICS
G02B13/001
PHYSICS
International classification
G02B27/64
PHYSICS
Abstract
Folded cameras comprising a movable lens having a lens optical axis and positioned in an optical path between an optical path folding element (OPFE) and an image sensor, wherein the OPFE folds light from a first direction to a second direction, the second direction being substantially along the lens optical axis, and an actuator for controlled lens movement, the actuator including or being attached to a shield partially surrounding the lens, the shield having an opening positioned and dimensioned to enable installation of the lens into the shield from an insertion direction substantially parallel to the first direction. A folded camera disclosed herein may be included together with an upright camera in a dual-camera.
Claims
1. A folded camera, comprising: a) a movable lens having a lens optical axis and positioned in an optical path between an optical path folding element (OPFE) and an image sensor, wherein the OPFE folds light from a first direction to a second direction, the second direction being substantially along the lens optical axis; and b) an actuator for controlled lens movement, the actuator including a shield partially surrounding the lens and having an opening positioned and dimensioned to enable installation of the lens into the shield from an insertion direction substantially parallel to the first direction.
2. The folded camera of claim 1, further comprising a lens carrier for holding the lens, the lens carrier having a V-groove structure for mechanically positioning the lens in a correct position during installation.
3-26. (canceled)
27. The folded camera of claim 1, included together with an upright camera in a dual-camera.
28. The folded camera of claim 1, wherein the folded camera has a height not exceeding the lens height by more than 800 m.
29. The folded camera of claim 28, wherein the folded camera has a height not exceeding the lens height by more than 700 m.
30. The folded camera of claim 28, wherein the folded camera has a height not exceeding the lens height by more than 600 m.
31. The folded camera of claim 28, included together with an upright camera in a dual-camera.
32. The folded camera of claim 1, further comprising: c) a lid having a first lid thickness and covering the shield, wherein the folded camera has a camera height substantially equal to a sum of the lens height, the first lid thickness, the shield thickness, the size of a first air gap between a first point on a surface of the lens facing the lid and the size of a second air gap being between a second point on a surface of the lens diametrically opposed to the first point and facing the shield.
33. The folded camera of claim 32, wherein the other of the top or bottom parts of the shield includes a respective second opening covered by a lid with a respective second lid thickness, wherein the second air gap is between the second point and the second lid and wherein the second lid thickness replaces the shield thickness.
34. The folded camera of claim 32, wherein each of the first and second air gaps is in the range of 10-50 m.
35. The folded camera of claim 32, wherein each of the first and second air gaps is in the range of 10-100 m.
36. The folded camera of claim 32, wherein each of the first and second air gaps in the range of 10-150 m.
37. The folded camera of claim 32, further comprising a lens carrier for holding the lens, the lens carrier having a V-groove structure for mechanically positioning the lens in a correct position inside the shield.
38. The folded camera of claim 32, wherein the opening in the shield is dimensioned to enable insertion of the lens into the shield in a direction parallel to the first direction and perpendicular to the lens optical axis.
39. The folded camera of claim 32, wherein the image sensor is wire bonded to a printed circuit board with wire bonds located on sides of the image sensor that are substantially perpendicular to the lid and to the opposite surface of the shield.
40. The folded camera of claim 32, wherein the movable lens is movable for focusing.
41. The folded camera of claim 32, wherein the movable lens is movable for optical image stabilization.
42. The folded camera of claim 32, wherein the folded camera has a height not exceeding the lens height by more than about 600 m.
43. The folded camera of claim 32, included together with an upright camera in a dual-camera.
44. The folded camera of claim 1, wherein the image sensor is wire bonded to a printed circuit board with wire bonds located on sides of the image sensor that are substantially parallel to the first direction.
45. The folded camera of claim 44, included together with an upright camera in a dual-camera.
46. A method for assembling a folded camera, comprising: a) providing an actuator for the folded camera, the actuator having a shield; b) inserting a lens of the folded camera into the actuator through an opening in the shield, the lens having a lens optical axis, the insertion direction being perpendicular to the lens optical axis; c) inserting an optical path folding element (OPFE) into the actuator, wherein the OPFE folds light arriving from a first direction to a second direction, wherein the top surface of the shield faces the light from the first direction and wherein the lens optical axis is substantially parallel to the second direction; d) covering the shield opening with a lid; and e) attaching an image sensor of the folded camera to the actuator.
47. The method of claim 46, wherein the covering the shield opening with a lid includes fixedly attaching the lid to the shield.
48. The method of claim 46, wherein the opening is a top opening in the shield, and wherein the inserting the OPFE into the actuator includes inserting the OPFE from a top surface of the actuator.
49. The method of claim 46, wherein the opening is a top opening in the shield, and wherein the inserting the OPFE into the actuator includes inserting the OPFE from a bottom surface of the actuator.
50. A method for assembling a folded camera, comprising: a) providing an actuator for the folded camera, the actuator having a shield and a base separated into a back base part and a front base part; b) inserting a lens of the folded camera into the actuator through an opening in the shield, the lens having a lens optical axis, the insertion direction being perpendicular to the lens optical axis; c) inserting an optical path folding element (OPFE) into the actuator back base part, wherein the OPFE folds light arriving from a first direction to a second direction, wherein the top surface of the shield faces the light from the first direction and wherein the lens optical axis is substantially parallel to the second direction; d) attaching the back base part to the front base part; e) covering the shield opening with a lid; and f) attaching an image sensor of the folded camera to the actuator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] 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. 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:
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DETAILED DESCRIPTION
[0050]
[0051] In some embodiments (such as in
[0052] Top lid 110 is made for example of metal, e.g. a non-ferromagnetic stainless-steel sheet, with typical thickness of 50-300 m. Top lid 110 is positioned on a top side of actuator 108, after the assembly of actuator 108 and after the installation of lens 102 and OPFE 104 in actuator 108. Top lid 110 is close to touching the top surface of OPFE 104 during installation (a nominal gap of 10-30 m). Opening 110c is designed such that light coming from an object will pass through it and reach OPFE 104.
[0053] Details of lens 102 are shown in and described with reference to
[0054] The height H of camera 100 is defined along the Y axis (direction of axis 112), from a lowermost end to an uppermost end, excluding a flex PCB 304 and a connector 306 (see below
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[0058] Connector 306 is a board to board connector, as known in the art. Connector 306 is soldered to PCB 304 and allows sending and receiving digital signals required for the operation of image sensor 116 and IC driver 450 from the host device in which the camera is installed. The host may be for example a cell phone, a computer, a TV, a drone, smart eye glasses, etc.
[0059] Camera 100 has the ability to actuate (move) lens 102 along its optical axis 114 for the purpose of focusing or auto focusing (AF), as known in the art. Focusing actuation is done using actuator 108, which is described now in more detail with reference to
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[0061] Lens carrier 404 houses lens 102 in an internal volume. Lens carrier 404 has a top opening (or gap) 410a, a bottom opening (or gap) 410b, a front opening 410c and a back opening 410d. Top opening 410a is made such that lens 102 can be inserted in (i.e. pass through) it during the assembly process. Openings 410a and/or 410b are designed such that when lens 102 is located inside lens carrier 404 there are no other parts between the lowermost and/or uppermost points (e.g. 206a-b) in lens 102 and, respectively, a bottom lid 412 and top lid 110. Openings 410c and 410d are dimensioned such that lens carrier 404 would not interfere with light coming from the OPFE to the image sensor. That is, openings 410c and 410d are made such that (1) any ray of light coming from the OPFE and which would have reached sensor 116 through the lens 102 if lens carrier 404 did not exist, will reach sensor 116 passing through openings 410c-d, and (2) any ray of light coming from the OPFE and which would have not reached sensor 116 through the lens if lens carrier 404 did not exist, will not reach sensor 116. In addition, in some embodiments, actuated sub-assembly 402 may be designed such that there is no point on actuated sub-assembly 402 higher than point 206a and there is no point on actuated sub-assembly 402 lower than point 206b. This feature ensures that height H of camera 100 is limited only by lens height 206.
[0062] Actuator 108 further includes a base 420, made for example of plastic or of a liquid crystal polymer. Actuated sub-assembly 402 is suspended over base 420 using two springs: a front spring 422 and a back spring 424. Springs 422 and 424 can be made for an example from stainless-steel or beryllium-copper. Springs 422 and 424 are designed such that they form a linear rail along the Z axis, namely that they have a low spring coefficient along the Z axis and a high spring coefficient in other directions: Y axis, X axis, and rotations around X, Y and Z axes. Using two springs to create a linear rail is known in the art, however springs 422 and 424 are designed such that their suspension point on base 420 is on one side (positive X axis) and their suspension point on lens carrier 404 is on the other side (negative X axis). Furthermore, each of springs 422 and 424 has an open circular part. The described design of springs allows to the following properties: (1) achieve desired linear rail properties; (2) the springs do not sacrifice optical properties of camera 100 by blocking any light coming from the OPFE to the image sensor; (3) a spring does not reflect any ray of light coming from the OPFE or from lens 102 that it would arrive at the sensor; (4) none of the suspensions of springs 422 and 424 is along the Y axis, and thereby no additional height is needed or used for the suspensions; and (5) the springs may withstand drop of the camera
[0063] In some embodiments, actuator 108 further includes integrally a shield 430, typically made of a folded non-ferromagnetic stainless-steel sheet, with typical thickness of 100-300 m. In other embodiments, camera 100 may include a shield similar to shield 430 which is fixedly attached to camera 100 and/or to actuator 108 at some stage of assembly. Regardless of whether the shield is integral to the actuator or a separate part fixedly attached to the actuator, the description herein refers to the shield as being part of the actuator. Shield 430 surrounds base 420 and actuated sub-assembly 402 on four sides, see also
[0064] In camera 100, OPFE 104 is positioned in a back side 432 (negative Z) of base 420.
[0065] Actuator 108 further includes an electronic sub-system 440,
[0066] Coil 444 has exemplarily stadium shape, typically with a few tens of windings (e.g. in a not limiting range of 50-250) and with a typical resistance of 10-30 ohm. Coil 444 is fixedly connected to IC 450, capable of sending input currents to coil 444. Current in coil 444 creates a Lorentz force due to magnetic field of magnet 406: exemplary a current in a clockwise direction will create a force in the positive Z direction, while a current in counterclockwise direction will create a force in the negative Z direction. The full magnetic scheme (e.g. the pole direction of fixed magnet 406) is known in the art, and described for example in detail in patent application PCT/IB2016/052179.
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[0068] In the embodiment shown in
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[0070] The description of actuator 108 provided herein is only an example. In other embodiments, the actuator may have a different guiding mechanism (for example a ball guided actuator as disclosed in co-owned patent application PCT/IB2017/054088), may include more actuation directions (for example an actuator including AF and OIS as disclosed in PCT/IB2017/054088), may have a different magnetic scheme (for example an actuator with magnetic reluctance magnetic scheme as disclosed in co-owned U.S. Pat. No. 9,448,382). In all such cases the actuator may be dimensioned/made/designed such that some or all of the following properties of camera 100 are preserved: (1) the height H is no more than about 600 m above height 206 of lens 102; (2) the height H is substantially equal to a sum of the lens height (206), the first lid thickness, the shield thickness, the size of a first air gap between a first point on a surface of the lens facing the lid and the size of a second air gap being between a second point on a surface of the lens diametrically opposed to the first point and facing the shield; (3) there is no point on actuated sub-assembly 402 higher than point 206a and there is no point on actuated sub-assembly 402 lower than point 206b.
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Example of Folded Camera Assembly Process
[0072] In one embodiment, an example assembly process (method) for a folded camera described with reference to
[0077] The creation of air gaps 510a, 510b in respectively steps 1 and 3 above allows motion of lens 102 relative to the other parts of camera 100.
[0078] The assembly process above (steps 1-4) is relevant to a folded camera as in
[0079] In yet other embodiments with an actuator such as actuator 108 where the base is separated into two parts, OPFE 104 may be installed from other directions (top or front) in base back side 432. In this case, base back side 432 may be attached to actuator 108 after the OPFE and lens installation in a step 2 between steps 2 and 3 (
[0080] As used herein, the phrase for example, such as, for instance and variants thereof describe non-limiting embodiments of the presently disclosed subject matter. Reference in the specification to one case, some cases, and other cases or variants thereof means that a particular feature, structure or characteristic described in connection with the embodiment(s) is included in at least one embodiment of the presently disclosed subject matter. Thus, the appearance of the phrase one case, some cases, other cases or variants thereof does not necessarily refer to the same embodiment(s).
[0081] 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.
[0082] 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.
[0083] It is appreciated that certain features of embodiments disclosed herein, which are, for clarity, described in the context of separate embodiments or examples, may also be provided in combination in a single embodiment. Conversely, various features disclosed herein, which are, for brevity, described in the context of a single embodiment, may also be provided separately or in any suitable sub-combination or as suitable in any other described embodiment disclosed herein. Certain features described in the context of various embodiments are not to be considered essential features of those embodiments, unless the embodiment is inoperative without those elements.
[0084] In embodiments of the presently disclosed subject matter one or more steps illustrated in
[0085] 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 patents and 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 invention.
[0086] 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.