EP3080654A1 - Blocs de lentilles et actionneurs pour systèmes optiques, et procédés associés - Google Patents

Blocs de lentilles et actionneurs pour systèmes optiques, et procédés associés

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Publication number
EP3080654A1
EP3080654A1 EP15740706.5A EP15740706A EP3080654A1 EP 3080654 A1 EP3080654 A1 EP 3080654A1 EP 15740706 A EP15740706 A EP 15740706A EP 3080654 A1 EP3080654 A1 EP 3080654A1
Authority
EP
European Patent Office
Prior art keywords
lens
optical
lenses
zoom
alvarez
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP15740706.5A
Other languages
German (de)
English (en)
Other versions
EP3080654A4 (fr
Inventor
Hou Chang LUN
Cheo Koon LIN
Lin Ming CHOU
Kao Yung YUAN
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Dynaoptics Pte Ltd A Singapore Private Ltd Co
Original Assignee
Dynaoptics Pte Ltd A Singapore Private Ltd Co
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from PCT/IB2013/002905 external-priority patent/WO2014072818A2/fr
Application filed by Dynaoptics Pte Ltd A Singapore Private Ltd Co filed Critical Dynaoptics Pte Ltd A Singapore Private Ltd Co
Publication of EP3080654A1 publication Critical patent/EP3080654A1/fr
Publication of EP3080654A4 publication Critical patent/EP3080654A4/fr
Withdrawn legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B3/00Simple or compound lenses
    • G02B3/0081Simple or compound lenses having one or more elements with analytic function to create variable power
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B13/00Optical objectives specially designed for the purposes specified below
    • G02B13/001Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras
    • G02B13/0055Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras employing a special optical element
    • G02B13/0065Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras employing a special optical element having a beam-folding prism or mirror
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B13/00Optical objectives specially designed for the purposes specified below
    • G02B13/001Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras
    • G02B13/0055Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras employing a special optical element
    • G02B13/0075Miniaturised objectives for electronic devices, e.g. portable telephones, webcams, PDAs, small digital cameras employing a special optical element having an element with variable optical properties
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B7/00Mountings, adjusting means, or light-tight connections, for optical elements
    • G02B7/02Mountings, adjusting means, or light-tight connections, for optical elements for lenses
    • G02B7/04Mountings, adjusting means, or light-tight connections, for optical elements for lenses with mechanism for focusing or varying magnification
    • G02B7/10Mountings, adjusting means, or light-tight connections, for optical elements for lenses with mechanism for focusing or varying magnification by relative axial movement of several lenses, e.g. of varifocal objective lens
    • G02B7/102Mountings, adjusting means, or light-tight connections, for optical elements for lenses with mechanism for focusing or varying magnification by relative axial movement of several lenses, e.g. of varifocal objective lens controlled by a microcomputer

Definitions

  • This invention relates to lens assemblies and
  • actuators for use in combination with imaging sensors, and more particularly relates to lens assemblies and actuators for providing optical zoom in devices such as cameras integrated into cellular phones, security cameras, and other small form factor imaging devices, particularly those which benefit from a small Z dimension.
  • Actuators for optical systems are typically used to reposition one or more lenses of the optical system with respect to an image plane to alter focal length of the optical system.
  • the repositioning generally is intended to achieve either focus or zoom.
  • Actuators for achieving focus are used to adjust the focal length of the optical system in order to make an image distinct or clear.
  • electromagnetic actuation systems aka voice coil motors
  • lenses typically move less than 350 ⁇ along the optical axis to focus.
  • Such electromagnetic systems apply current to the actuator to effect movement of the optical components in a single direction along the optical axis. This movement is counteracted by a spring, which pulls the optical components in the opposite direction. The distance moved is thus a function of the applied current vis-a-vis the tension of the spring.
  • a 2:1 zoom lens at maximum focal length can make an object appear only half as distant from the image sensor as it appears with the zoom lens at minimum focal length.
  • actuator systems in small scale optical systems include positional accuracy, low power, low noise levels, and speed.
  • Positional accuracy is important for achieving desired image quality.
  • Low power consumption is important for prolonging battery life in a variety of handheld mobile devices, and is affected by required stroke length, the force needed to overcome the weight of the moving optical components, and friction. Avoiding or minimizing acoustic noise generated during actuation is important to prevent the capturing of undesired noise by device microphones during video capture.
  • Speed in achieving composition and focus of the desired image (including zoom), which is a function of the speed of component movement as well as displacement distance, is important for meeting the consumers' desired response time for either a zoomed-in or a focused image.
  • zoom can also be achieved through software means, typically referred to as "digital zoom.”
  • Digital zoom is a method of decreasing (narrowing) the apparent angle of view of a digital photographic or video image. Digital zoom is accomplished by cropping an image down to a centered area with the same aspect ratio as the original. Digital zoom is accomplished electronically, with no adjustment of the camera's optics, and no optical resolution is gained in the process. The cropping leads to a reduction in the quality of the image. In many instances, digital zoom also includes interpolating the result back up to the pixel dimensions of the original. This combination of cropping and enlargement of the pixels typically creates a pixelation/mosaic effect in the image, and typically introduces interpolation artifacts.
  • digital zoom has typically been implemented as a series of increments, rather than continuous zoom.
  • some digital zooms are implemented in one-tenth power increments, while others use larger increments. This corresponds to a reduction in the effective size of the sensor.
  • the full size sensor is said to be used at the full field of view (or widest angle), but an image at 2x zoom uses only approximately eight megapixels of that sensor, and an image at 3x zoom uses only about five megapixels of the sensor.
  • the oversized sensor is physically larger than is desirable for mobile devices such as cellular phones, in addition to being prohibitively expensive for most such devices.
  • the larger sensor also needs a longer optical path to the sensor, to ensure the image covers the entire sensor. As such, there is still often a z-axis protrusion, not just a larger x, y of the sensor.
  • optical zoom has long been used in photography and other optical systems to provide zoom without loss of image quality.
  • Typical lens systems which provide optical zoom using concave or convex lens elements move one or more lens elements along the optical axis, and in most such systems the optical center of each lens element is located on the optical axis. While such systems can provide excellent image clarity, they require that the lens elements travel too great a distance to be suitable for many applications which require a small form factor.
  • the electronics of the cellular phone imposes severe limits on the form factor of the lens module used in the cell phone's camera, and such limits prohibit the use of conventional optical zoom.
  • prior art optical zoom capable of, for example, 3x magnification, where the lenses move along the optical axis typically require the optical components to move greater than 10mm.
  • Such a long travel range typically requires the use of stepper motors. This is not ideal for small scale optical systems used in mobile devices as they are bulky, require more power to move such a long distance, and may cause acoustic noise to be picked up by device's microphone.
  • Other actuation systems include piezo motors to actuate optical components parallel to the optical axis to create optical zoom and autofocus.
  • piezo motors also tend to be acoustically noisy as well as creating hysteresis issues requiring more complicated electronics to overcome. Piezo motors also tend to use more power than some other designs.
  • systems using conventional concave- convex lenses to offer optical zoom require a significantly longer stroke than is currently desired, increasing battery drain as well as requiring a significantly larger form factor for the lens module.
  • optical system suitable for use in mobile devices such as cellular phones or other small scale systems which provides the clarity of optical zoom in a small form factor, yet does not require excessive power.
  • the present invention provides optical zoom in a
  • one or more Alvarez (or Lohmann) lens pairs are provided, and moved transversely to the optical axis by means of the actuator described herein.
  • Alvarez lens pairs and the actuator permits a zoom power of up to 6x with a lateral displacement distance of the optical components of approximately five millimeters or less.
  • Such an optical system is thus well suited to use in cellular devices and, further, can be readily implemented as a lens module having a very small form factor, for example 10x10x6 mm [X x Y x Z] or less.
  • Zoom powers in excess of 6x can be achieved with a displacement of ten millimeters or less, although the form factor is somewhat larger.
  • larger form factors are also acceptable, for example 30x30x6 mm.
  • Z height is less than 6 mm, for example 5.8mm or less.
  • the systems of the present invention offer the benefits of very low power consumption as well as low acoustic noise.
  • the actuator of the present invention has the additional benefit of minimal magnetic degradation across the stroke plane.
  • the present invention further comprises methods for optimizing spacing between the lenses of one or more pairs of Alvarez or Lohmann (for convenience, sometimes referred to hereinafter as freeform lenses), lenses configured to create an optical zoom system, where the lenses are moved transversely to the optical axis.
  • Each of the freeform lenses can have one or more freeform surfaces.
  • each lens of the freeform pair has one planar surface and one freeform surface, with the freeform surfaces facing one another. The distance, or gap, between the lenses is carefully selected to ensure that the lenses do not touch each other as they move transversely to the optical axis to provide magnification, while at the same time minimizing or reducing optical aberrations.
  • translation of the freeform lenses relative to one another provides both focusing and magnification, or zoom.
  • translation of the freeform lenses provides magnification, while a base lens is separately actuated to provide focus.
  • the base lens is actuated along the optical axis, and comprises one or more concave or convex lenses.
  • the zoom is continuous throughout the range of focal lengths provided by the system.
  • one or more latch positions are used to provide discrete zoom increments.
  • the latch positions are maintained by one or more magnetic latches, while in another, mechanical latches are used.
  • Figure 1 illustrates in block diagram form an optical system comprising optical zoom with lateral actuation in accordance with the present invention.
  • Figure 2A illustrates in exploded perspective view an embodiment of an actuator for a zoom lens group which moves one or more lenses of the group laterally to the optical axis.
  • Figure 2B illustrates a partial assembly of an
  • embodiment of the zoom lens group and actuator including showing the magnet assemblies for the actuator.
  • Figure 2C shows a fully assembled embodiment of the zoom lens and actuator.
  • Figure 2D shows an alternative embodiment to some aspect of the zoom lens assembly of Figure 2C, wherein the lens frames are received in slots of the housing, thus avoiding the need for one or more guide frames.
  • Figure 3A illustrates in exploded perspective view an embodiment of a focusing lens group including its actuator.
  • Figure 3B shows a partially assembled embodiment of a focusing lens group with actuator.
  • Figure 3C shows a fully assembled embodiment of a focusing lens group with actuator.
  • Figure 4A illustrates the optical path for an
  • Figure 2A and a focusing lens group as in Figure 3A, with Alvarez lens pairs arranged in the wide angle position.
  • Figure 4B illustrates the optical path for an
  • Figure 2A and a focusing lens group as in Figure 3A, with Alvarez lens pairs arranged in the zoom or telephoto position.
  • Figure 4C illustrates how an Alvarez pair yields the equivalent of opposing concave surfaces and opposing convex surfaces, depending upon where in their stroke the lenses of the pair are relative to one another.
  • Figure 4D illustrates a modified Alvarez pair in which both sides of each Alvarez pair are rotationally asymmetric and defined by an appropriate polynomial.
  • Figure 4E illustrates a lens system suitable for use in a miniaturized environment such as a cell phone, security camera or related system in which two Alvarez pairs provide optical power, with both lenses in each pair having dual rotationally asymmetric surfaces.
  • Figure 5 illustrates an embodiment of a double coil voice coil motor (VCM) suitable for use in the actuator of Figure 2A.
  • VCM double coil voice coil motor
  • Figure 6 illustrates a lens holder as depicted in Figure
  • Figure 7 illustrates a variety of coil and magnet sizes for use in a VCM in accordance with an embodiment of the invention.
  • Figures 8 illustrates in perspective view an
  • an actuator is configured to move one lens from each of two pairs of Alvarez lenses together in a direction generally laterally to the optical axis, in a
  • Figure 9 illustrates in perspective view an
  • an actuator is configured to move one lens from each of two pairs of Alvarez lenses together in a direction generally laterally to the optical axis, in a
  • Figure 10 shows an embodiment in which a mechanical stop or latch is created by the cooperation of a guide frame and its associated lens frame.
  • Figure 1 1 illustrates a magnetic latch as used in some embodiments of the invention.
  • Figure 12 illustrates in side view the magnetic latch of
  • Figure 13 illustrates an embodiment of the invention in which a guide frame limits the travel of at lens one of the
  • Figures 14A-14B illustrate two different designs for discrete position magnetic latches suitable for use in some embodiments of the invention.
  • Figure 15 illustrates an embodiment of the invention in which the magnetic latch includes an on/off coil.
  • Figure 16 shows an embodiment having multiple
  • Figure 17 illustrates the use of a position sensor to identify the position of the lens frame throughout its lateral stroke.
  • Figure 18 depicts a generalized model of an Alvarez
  • Lens or lens pair.
  • Figure 19 shows the effective aperture which occurs as each lens of an Alvarez pair moves through its stroke.
  • Figure 20 illustrates in simplified form the interaction of two Alvarez pairs with an intermediate aperture, coupled to a base lens for focusing an image on an image plane.
  • Figure 21 illustrates the interaction of fixed an tunable lenses for creating an image on an image plane.
  • Figure 22 illustrates the use of different materials in opposing elements of the Alvarez pair, where the different materials assist in reducing or canceling chromatic or other aberrations.
  • Figures 23-28 illustrate an alternative embodiment of an actuator and lens system in accordance with an embodiment of the invention.
  • Figures 29A-29D illustrate the active optical area of an Alvarez pair at various positions, and techniques for improving lens manufacturability by modifying the lens profile.
  • Figures 30A-30D illustrate techniques for finding the x and y positions and the center of a freeform surface.
  • Figures 31 A-31 D illustrate techniques for ensuring alignment of freeform lenses during manufacturing.
  • Figures 32A-32G illustrate the operation of a cam- driven actuator capable of separately positioning each side of multiple Alvarez pairs, for example, moving each of four Alvarez lens elements arranged in two Alvarez pairs through separate strokes.
  • Figures 33A-33B illustrate the operation of a linear cam actuator also capable of moving multiple lenses through separate strokes.
  • Figures 34A-34B illustrate a gear driven actuator and a friction driven actuator suited for moving Alvarez lenses lateral to their optical axis.
  • a camera module 105 cooperates with a processor module 1 10 such as integrated into a smart phone, although the camera module of the present invention can also be implemented independently of a smartphone, such as a security camera or other form of image capture device where a small, or miniature, form factor with optical zoom is desirable.
  • a driver circuit 1 15 sends currrent to a lens module 120, and, in an embodiment, initially to a focusing actuator 125 to allow the user to see a clear image.
  • the focusing actuator automatically adjusts the position of a focusing lens group 130 until a clear image is achieved at a sensor 135, using an image signal processor (“ISP") 140 to provide the necessary feedback to the driver circuit 1 15 to implement any of the suitable autofocus methods known in the art, such as, for example, contrast detection.
  • ISP image signal processor
  • the autofocus loop can be appreciated from the dashed line in Figure 1. It will be appreciated that, while the ISP 140 is shown in Figure 1 as within the phone processor, in at least some embodiments the ISP is included within the lens module 105. In some embodiments, particularly those implemented in smartphones, the outputs from the autofocus algorithm existing in the smartphone processor is converted into inputs recognizable by the focusing portion of the driver circuit.
  • the driver circuit 115 supplies current to a zoom actuator 145 within the lens module 120.
  • the zoom actuator described in greater detail hereinafter, moves a zoom lens group 150 through a stroke until the user indicates that the amount of zoom is acceptable.
  • the zoom lens group and the autofocus lens group cooperate to achieve both magnification and image clarity at the sensor.
  • the zoom actuator moves the zoom lenses in a direction essentially lateral to the optical axis, and, in an embodiment, substantially perpendicular to the optical axis.
  • the zoom lenses comprise one or more pairs of freeform lenses, such as Alvarez or Lohmann lenses, rather than the conventional concave or convex lenses typically found in prior art optical zoom systems which achieve both focus and zoom by moving the lenses along the optical axis.
  • freeform lenses such as Alvarez or Lohmann lenses
  • the lateral movement need not be substantially perpendicular in all embodiments as long as suitable magnification and acceptable clarity is achieved.
  • the user "takes” the picture by causing the ISP 140 and graphics processing unit (GPU) 155 to capture the image from the sensor 135.
  • the GPU is typically embedded within a modern smartphone, but, in at least some embodiments of the invention, the processor is maintained within a different type of device such as a security camera, computer system, tablet, etc.
  • a free-form lens housing cover 200 is positioned at the top of a zoom lens group assembly, shown in partly and fully assembled form in Figures 2B and 2C.
  • the housing cover 200 fits over a first free-form lens cover 205, which in turn is positioned over a first free-form lens subassembly 200 which, as described in greater detail hereinafter in connection with Figures 5 and 6, among others, comprises a first free-form lens mounted in a lens frame on an armature.
  • the armature as discussed in connection with Figure 6, is also adapted to house at least part of a mechanism for moving the first free-form lens laterally to the optical axis.
  • the mechanism is a voice coil motor, although the movement-inducing mechanism can also be a piezo motor, shape memory alloy (SMA) or other suitable device.
  • SMA shape memory alloy
  • the first lens subassembly 210 fits into a first guide frame 215, which is positioned over a second free-form lens subassembly 220.
  • the subassembly 220 comprises a second free-form lens either mounted above or integrated with a prism for redirecting the optical axis in the manner shown by the ray paths depicted in Figures 4A-4B, and further comprises an arm on which a lens frame is mounted for supporting at least the second free- form lens as well as the coils of a VCM as discussed in connection with Figures 5 and 6.
  • the subassemblies 210 and 220 together form a first freeform lens pair, and, in some instances hereinafter, are referred to as lenses one and two.
  • the subassembly 220 fits within a base 225, having the subassembly 210 and associated guide frame and covers atop the subassemblies as better shown in Figures 2B and 2C.
  • a third free-form lens subassembly 230 again comprising an arm having a lens frame into which is mounted a third free-form lens, is shown.
  • the third subassembly 230 is at right angles to the first and second subassemblies 210 and 220, to account for the change in the optical axis due to the prism.
  • a second guide frame 235 is positioned over the third subassembly 230, and a fourth free-form lens subassembly 240 is received within the guide frame 235.
  • the lenses of the third and fourth subassemblies comprise a second pair of free-form lenses and will in some instances hereinafter be referred to as lenses three and four.
  • the magnet structures 245 comprise a plurality of permanent magnets, for example, three, suitable for cooperating with two VCM coils in each VCM to form a double-coil VCM for both the first subassembly and the second subassembly.
  • a second pair cover 255 is positioned over the fourth subassembly to enclose the zoom lens group and actuator, as better appreciated from Figures 2B and 2C.
  • the third and fourth subassemblies do not include any portion of a VCM.
  • the third subassembly includes an extension 260 maintained at right angles to the remainder of the arm. This extension fits into a slot 265 on the first subassembly 210, such that the first and third lens move together.
  • the fourth subassembly arm includes an extension 270 which fits into a slot 275 in the second subassembly, such that the second and fourth lenses move together.
  • This configuration referred to sometimes hereinafter as the 1 -3, 2-4 configuration, can be better appreciated from Figure 8.
  • the fourth lens subassembly can be mounted to the first lens subassembly, and the third lens subassembly can be mounted to the second lens subassembly, resulting in the 1 -4, 2-3 configuration shown in Figure 9.
  • the third and fourth subassemblies can include VCM's and move independently of the first and third subassemblies, although such an embodiment will require a larger form factor and typically will use more power.
  • other embodiments may include two or more lens elements mounted on the same actuator arm moving either in tandem or independently to align the lens elements.
  • FIG. 2B the subassemblies of the four free-form lenses can be seen to form a compact, miniature optical zoom lens assembly as indicated at 280A (partly assembled) and 280B (fully assembled).
  • Figure 2B also provides a clearer illustration of the coils 285 mounted on the second subassembly and which form the VCM together with the magnet structure 245 at the left of housing 250.
  • the other magnet structure 245 shown at the right of housing and magnetic shield 250 cooperates with coils on the first subassembly to form a VCM for that structure.
  • a housing 286 includes recesses 288 for receiving first and second lens frames 290 and 292 on which the first and second free-form lenses (not shown) are mounted, respectively. Similarly, but mounted vertically instead of horizontally, third and fourth lens frames 294 and 296 are received in slots 298 in housing 286.
  • This structure permits a reduced part count and simplified manufacturing, as compared to the structure of Figures 2A-2C.
  • the focusing lens group moves a group of concave-convex lens elements along the optical axis, and, in an embodiment, provides both focus and distortion correction with respect to the zoom lens group.
  • a base lens cover 300 encloses the top of a base lens barrel 305, which is contained within a base lens holder 310.
  • a pair of compression springs 315 and associated rods 320 fit within orifices in the base lens holder, to provide a balancing force against a pair of VCM's comprised of coils 325 and companion magnet structures 330.
  • the magnet structures 330 are housed within the holder 310, while the coils are mounted to either side of the barrel 305 and fit in the space between the magnets on either side of the structures 330, thus providing a Lorentz force to the barrel when current is applied to the coils.
  • the springs 315 may not be necessary.
  • Lens elements 335 fit within the barrel 305 and are held in position by means of bezel 340, which also serves as a mechanical stop to position the lenses. In some embodiments a stop may be positioned between the lenses.
  • FIG. 3B A partly assembled focusing lens group and actuator is shown in Figure 3B, as indicated at 300, 310 and 345.
  • FIG. 3C A fully assembled actuator and lens group is shown in Figure 3C, as indicated at 350.
  • Figure 4C gives a general indication of the shape of the Alvarez lens pairs indicated in Figures 4A-4B. More detail about the Alvarez lens pairs can be found in co-pending U.S. patent application S.N. 14/246,571 , filed April 7, 2014,in the name of the National University of Singapore, and titled MEMS-Based Zoom Lens System, incorporated herein by reference, as well as
  • the Alvarez pair is depicted as 470.
  • the top surface of the prism 405 can be formed as an Alvarez surface, or can be a separate lens with an Alvarez surface positioned above the prism, or can be a separate Alvarez lens cemented to the prism in a manner well known in the art.
  • the second Alvarez pair 410 can be represented in the wide angle position, again for the sake of simplicity, as having two opposing convex surfaces, with a substantially planar surface at the outlet of the zoom lens group. This lateral position of the Alvarez pair is shown in Figure 4C at 480.
  • the Alvarez pairs can have rotationally asymmetric surfaces on both sides, rather than planar surfaces, and the combination at any given more in the lateral stroke is more complex than a pair of concave or convex surfaces.
  • the focusing lens group 415 comprises conventional convex and concave optics, and transmits the image to the sensor 420.
  • These rotationally symmetric lenses can comprise one or more groups, and, depending upon the embodiment, can from one to four, or more, such lenses.
  • the free-form lens pairs are shown in the zoom position, indicated as "Z".
  • the first lens pair 450 can be represented as two opposing convex lens surfaces, while the second pair 460 can be represented as two opposing concave surfaces, both as shown in Figure 4C.
  • the focusing group and sensor remain the same as in Figure 4A.
  • the lateral translation necessary to move the lenses from the wide angle position to the zoom position is only approximately two millimeters, while achieving a magnification of 3:1.
  • This relatively short stroke permits low power operation, with low acoustic noise, in addition to a desirably small form factor.
  • the lenses typically range in size from four to ten millimeters, depending on the form factor desired and the size of the sensor. In other arrangements, different lens sizes will be appropriate.
  • the Alvarez lens pairs can have rotationally asymmetric surfaces on both sides of each lens in the pair, such as shown in Figure 4D with lens pairs 485 and 490, where each surface of each lens in both pairs is defined by an appropriate high-order polynomial. It will be appreciated, given the teachings herein, that in some
  • Figure 4E illustrates a system in which a first Alvarez pair 400' is free form on all four surfaces. Light passes through the pair 400' and then through a prism 405A to bend the light path.
  • the prism can, depending upon the embodiment, be either glass or plastic, although some glass prisms will offer better aberration
  • the light then passes through a second Alvarez pair 410', again with all four surfaces being rotationally asymmetric.
  • an additional lens can be interposed between the prism 405A and the pair 410' to provide image stabilization.
  • the incoming light passes through a base lens 415'.
  • the base lens 415' assists with focusing, and can comprise one or more lenses, for example four or five. Those lenses can, depending upon the embodiment, be designed to move together or to move separately.
  • Light passing through the base lens is thus focused on a sensor 420', either directly or after passing through a second prism 405B.
  • the second prism can be used in embodiments where low Z height is desired, while still permitting the use of larger sensors, for example 1 ⁇ 2" sensors offering, for example, sixteen megapixels.
  • lens set A is affixed to dual coils 510 shown at the left and connected in series.
  • the coils 510 are positioned between three permanent magnet pairs 515.
  • lens set B is affixed to dual coils 510 shown at the right and also connected in series.
  • a magnetic shield 520 ( Figure 2A) surrounds the magnets and coils to prevent leakage of magnetic flux.
  • a compression spring is included to balance the Lorentz force, such that the spring automatically returns the lens sets to a rest position when current is removed from the coils.
  • the current is applied in opposite polarities to move the lens sets bidirectionally.
  • one vertical leg of the coil conductors is maintained in one magnetic polarity zone whereas the return resides in the opposite polarity.
  • one lens from each pair moves together, typically in either the 1 -3, 2-4 configuration or the 1 -4, 2-3 configuration, although numerous other configurations are possible as discussed above in connection with Figures 2A-2D.
  • arm 600 provides a lens frame 605 into which the first lens (not shown in Figure 6) is mounted by conventional means.
  • a slot 610 is integrated into the arm 600 to permit either subassembly 230 or subassembly 240 to be affixed to subassembly 210, depending on whether a 1 -3, 2-4 or a 1 -4, 2-3 configuration is preferred. The slot 610 may not be necessary for other configurations.
  • a pair of coils 510 is mounted, typically using either adhesive or overmolding techniques. In an
  • the arm and lens frame are integrated and formed in a unitary manner, such as by injection molding of materials well known within the art.
  • the novel processes for molding such materials is described in greater detail in International Application PCT/IB2013/002905, assigned to the same assignee as the present application and incorporated herein by reference.
  • the balancing of magnetic structure with air gap can be better appreciated.
  • the objective of the VCM's of the present invention is to be able to move the optics smoothly and accurately, which requires that the VCM's be able to generate sufficient Lorentz force to overcome the weight of the associated subassembly, plus friction, regardless of the position of the host device, for example a smart phone.
  • the VCM is typically required to meet the full stroke requirement with minimal degradation across the stroke plane.
  • the dual coil design discussed above and illustrated in Figure 7 offers more efficient use of the magnetic flux available from the magnets 515. More specifically, the dual coil arrangement permits the use of an increased number of turns of wire on the coils without the disadvantage of increased air gap that is normally associated with an increased number of turns, since the magnets must be farther apart. As shown in Figure 7, where a five mm scale is illustrated, the coils 700 can be seen to be relatively thin with respect to the magnets. In contrast, the coils 710 and 720 are larger (have more turns) and offer a greater Lorentz force than coils 700. In addition, the VCM's for coils 710 and 720 include a latch mechanism, discussed hereinafter beginning at Figure 1 1.
  • subassembly 220 ( Figure 2A) moves lenses two and four.
  • a protrusion 1000 on the guide frames 215 or 235 mates with one or multiple notches 1005 on lens frame 605, providing mechanical latch points along the stroke of arm 600.
  • two latch positions exist.
  • one latch position can be at wide angle, while the other latch position is at full zoom.
  • the guide frame, or at least the protrusion 1000 is required to flex or bend sufficiently to permit the lens frame to move past it in accordance with the applied Lorentz force. It will also be appreciated that the location of the protrusions and notches can be reversed, such that the protrusions are on the optical component portion.
  • FIG. 1 1 An embodiment offering a magnetic latch approach is illustrated in Figures 1 1 and 12, where Figure 1 1 is a cutaway top view and Figure 12 is a sectioned side view.
  • a latch magnet or ferromagnetic pin or plate 1 100 is affixed to the associated coil 510 and is positioned proximate to a gap 1 105 in the magnetic shield 520.
  • the gap 1 105 is sized to represent all or a portion of the stroke of the VCM.
  • the magnet 1 100 In a first position, the magnet 1 100 is at one side of the gap 1 105, while in a second position the magnet 1 100 is at the opposite side of the gap 1 105.
  • the latch pin or magnet can be
  • an algorithm can be implemented in the processor module which, in the event of shock to the host device, causes the driver circuit to move the actuator to a latch position.
  • the guide frame 1300 can be configured to provide a two-position mechanical stop for designs which use magnetic latching.
  • the guide frame 1300 receives the lens frame and lens(es) 1305.
  • stops 1310 and 1315 At either end of the guide frame 1300 are stops 1310 and 1315, which provide a mechanical "stop" to the travel of the arm 600 [ Figure 6].
  • bumps or protrusions 1320 can be provided on the guide frame 1300 or on the arm 600.
  • gap 1400 extends across both coils, and two latch magnets or pins 1 100 are used in the manner discussed in connection with Figure 1 1.
  • gap 1400 extends only across a single coil and only a single latch magnet or pin 1 100 is used.
  • Figure 15 illustrates an alternative embodiment for a magnetic latch, in which a pair of small coils 1500 is positioned within the housing 1510 in locations representing latch points along the travel of the arm and lens holder 600.
  • a pair of small coils 1500 is positioned within the housing 1510 in locations representing latch points along the travel of the arm and lens holder 600.
  • a single magnet or pin 1 100 is positioned on the arm 600.
  • the magnet is attracted to the coil and the arm is latched at one of the two coil positions. If a magnet is used for the pin 1 100, this embodiment also has the advantage that a reversal of the current can repel the magnet so that no extra Lorentz force is needed to overcome the latching force.
  • Figure 16 illustrates an embodiment which provides a plurality of discrete latching locations, in which a plurality of gaps 1600, for example four, are formed in the shield 520.
  • a plurality of latching magnets 1605 three in the illustrated example, is positioned under the associated coil 510, such that, as a Lorentz force of appropriate magnitude and duration is applied, the coil moves from gap to gap.
  • Figure 17 illustrates a still further alternative
  • a position sensor 1700 such as a Hall Effect sensor or inertia sensor, is located on the assembly housing 520. Positioned proximate to the position sensor 1700 is a magnet 1705. As the arm 600 travels within the guide frame 215, the sensor 1700 is monitored in a closed loop arrangement, which permits positioning of the arm at substantially any selected position throughout its stroke. For example, if the outpout of the sensor is 8 bit data, 256 positions are possible, and for 10 bit data, 1024 positions are possible. The number of possible positions is limited only by the lower of the number of signal steps available in the output, and the number of sensor steps that can be read. For such a large number of increments, the user perception is that the zoom is continuous.
  • each position sensor is
  • the calibration data is stored in the driver circuit or other convenient location within the host device.
  • Closed loop control using the position sensor 1700 can be, for example, implemented within the driver circuit, or can be part of a software layer within the controller of the host device.
  • the changing weight of the structure, as the camera is tilted or rotated is preferably taken into account in the closed loop processing.
  • a mechanical or magnetic latch can also be used in some embodiments that implement motion sensing, to provide shock protection or reduce power consumption, or to maintain position when at rest.
  • position sensing can be used to calibrate the positions of the lens elements to adjust for any degradation in image quality introduced by manufacturing tolerances.
  • optimum position data can be stored in the driver circuit or other data storage location in the device, and applied to the lens module as power is applied.
  • 3x zoom has been achieved in less than 0.2 seconds using a 2 mm lateral displacement substantially perpendicular to the optical axis, with a moving mass of 0.2-0.3 grams.
  • the Lorentz force applied to achieve such results is in the general range of 10-50 milliNewtons, depending on the amount of applied current.
  • the applied current necessary to achieve such force is less than 120 milliamps, at a power of approximately 0.1 watts.
  • positional accuracy is within 30 ⁇ without a position sensor, and within 10 ⁇ with a position sensor operating closed loop.
  • such operation is performed at acoustic noise levels of less than 25 dBA.
  • the effect of this gap may be small due to the gentler surface profile.
  • a gentle slope minimizes the deviation of the ray as it travels between the two optical surfaces.
  • both the optical power and the lens' travel distance affect the overall slope of the freeform surfaces.
  • the gap increases, the deviation of a ray's pass it travels through the gap increases. This deviation is undesirable in analyzing the approximate model of the system.
  • Optical power, displacement of motion of lens, the effective aperture of system all affects the slope of the freeform surfaces and therefor how close two surfaces can be placed in operation.
  • imaging systems such as cameras: adjustable focal length and fixed image plane.
  • two pairs of Alvarez-like lenses are required in a zoom lens system.
  • Fig.2 we present a new design by combining two pairs of Alvarez lenses as variable-focus lenses and a fixed focus lens.
  • the two pairs of Alvarez lenses can not only adjust the whole focal length of the system but also compensate the position changes of the image plane.
  • fi is the focal length of the first Alvarez lens pair
  • f 2 is the focal length of the second Alvarez lens pair
  • k is a constant
  • di is the distance between the two Alvarez lens pairs.
  • the focal length of the whole system is: f i ⁇ f 2 ⁇ f 3
  • f is the focal length of the whole system
  • 62 is the distance between the second Alvarez lens pair and the fixed focus lens.
  • the system consists of two tunable lenses (tunable lens 1 and tunable Iens2) and a set of fixed-focus lenses, stop aperture was between tunable lensl and tunable Iens2.
  • the optical power of the tunable lensl is positive and the optical power of tunable Iens2 is negative(as in Fig.3(a))
  • the optical power of tunable lensl is negative and the optical power of tunable Iens2 is positive(as in Fig.3(b)).
  • the optical power of tunable lensl ranges from positive to negative; on the other hand, the optical power of tunable Iens2 ranges from negative to positive.
  • the zoom optical system has to be optically bent at least one time, as Fig.4 shows.
  • the optical power of the whole system was determined by the size of the image detector (usually a CMOS or CCD) and the field angle.
  • f is the focal length
  • is the FOV angle
  • D is the diameter of the image circle.
  • d is the distance between first Alvarez lens pair and the second Alvarez lens pair.
  • the distances between lens pairs can only be constrained between 4mm ⁇ 8mm.
  • the optical power of Alvarez lensl ranges from 0.3 (1/mm) to -0.3(1 /mm) (focal length ranges from 3.33mm to infinity and infinity to -3.33mm)
  • the optical power of Alvarez Iens2 ranges from -0.3(1 /mm) to 0.3(1 /mm) (focal length ranges from-3.33mm to infinity and infinity to 3.33mm).
  • This set of ranges will satisfy the optical configurations of suitable for optical zoom modules that fit a cameraphone.
  • the optimal gaps between the Alvarez lens pairs can be determined for a miniature system. From (6), for a focal length of 5mm, aperture 2mm and a material refractive index of 1.5, the gap has to be larger than 0.2mm to avoid interference during motion. For the largest optical power considered (0.3 mm "1 ) at aperture size of 2.5mm, we can determine the optimal range of the gap between each pair of lenses to be
  • a lens being made up of two materials of different Abbe number (Fig. 22).
  • This lens can be fabricated through injection molding two lenses separately and bonding them together as an assembly process. The relative similarity in the refractive index of both materials minimizes the optical errors introduced at the interface.
  • Another method is molding one side of the lens first and molding the other surface directly on the pre-molded part.
  • the lenses described herein can be fabricated from optical quality cyclo olefin polymer, for example Zeonex, or can be fabricated from polycarbonate or polystyrene, or low dispersion glass.
  • one material can be used for one lens, and another for a different lens, or for the prism shown in Figures 4A-4B.
  • a lens can be comprised of two different materials bonded together, as discussed above in connection with Figure 22.
  • lenses for cell phone camera embodiments range in size from four to ten millimeters, although other applications, such as security cameras and the like, can be larger.
  • an alternative embodiment of a lens system with actuator suited for use in cell phones or other miniaturized applications can be better
  • the lens system or module can be seen to include a free form lens assembly 2300 which mates to a base lens assembly 2305.
  • the base lens assembly includes a sensor bracket 2310 upon which a sensor can be mounted.
  • An FPC cover 2320 is fitted over the paired assemblies 2300 and 2305, and a metal cover 2315 fits over the top of that combination.
  • An inlet opening or inlet window can be provided in the cover 2315, and an opening for placement of the sensor can also be provided.
  • the free form lens assembly can be appreciated in greater detail from Figure 24, in which a pairing of lenses 1 and 4 is mounted on a single armature and thus forms lens group 2400. In some instances the lenses are molded with the armature in a unitary fashion. Similarly, a second pairing of lenses 2 and 3 is mounted together as lens group 2405.
  • the lens groups are ultimately mounted, in a movable relationship, on a base 2410, by means of guide rod receivers 2415, 2420 and 2425.
  • guide rod receivers 2415, 2420 and 2425 Some aspects of the receivers can be better appreciate from Figure 25, in which the lens armatures are seen inverted to show the relationship between the receivers and guide rods. More specifically, the guide rod receivers 2415 and 2420 have an orifice through which one of the guide rods passes, while the receiver 2425 comprises a smooth slot through which the second guide rod passes.
  • the relationship between the receivers and the guide rods can be seen to be a three point support for the lens armature, which, while not required in all embodiments, helps to substantially reduce tilt, as discussed in greater detail hereinafter.
  • the guide rods are glued or otherwise rigidly affixed to guide rod supports 2435 and 2440.
  • Electric coils 2445 and associated printed circuit boards on the base mate with permanent magnets 2450 mounted on armatures of the lens groups 2400 and 2405.
  • the magnets and coils interact to extend or retract the lens groups with respect to one another in a direction substantially perpendicular to the optical axis of the pairs, while maintaining sufficient alignment with a prism 2455 that light passes onward to the base lens.
  • a metal strip 2460 can be placed on the base such that the permanent magnets on the lens groups interact with the strip 2460 to provide a magnetic latching action, explained in greater detail hereinafter in connection with Figure 27.
  • FIG. 26 illustrates in exploded perspective view a base lens in accordance with an aspect of the invention.
  • a base lens comprises a base 2600, base lens barrel 2605, one or more base lenses 2610, prism and prism holder 2615, optional IR filter 2620, sensor bracket 2625, sensor 2630, magnets 2635 with mating electric coils and printed circuit boards 2640, a pair of base guide rods which fit into base lens receivers 2650, and guide rod mounts 2655.
  • the coils and magnets interact when power is applied to move the base lens barrel, into which at least some of the base lenses are mounted, so as to focus light received from the freeform subassembly into an image on the sensor.
  • a metal strip 2455 is positioned on the base 2410. As the magnets and coils interact to move the lens group along the guide rod, the end of the lens group nearest the metal strip is biased downward due to the attraction of the magnets to the metal strip. Conversely, the opposite end of the lens group is driven slightly upward. If left unaddressed, these forces would result in sufficient tilt to cause unacceptable distortion of the image.
  • tilt can be substantially reduced in three dimensions.
  • lens and related elements having dimensions as described herein, the approach described above is capable of reducing tilt to +/- 0.2 degrees for freeform lenses, and +/- 0.1 degrees for base lenses.
  • the active area of a single Alvarez element does not encompass the whoe lens area, as shown in Figures 29A.
  • the unused regions can result in very steep profiles that are difficult to manufacture and may create interference between lenses during lateral movement. It is therefore desirable to adjust these regions in a manner that removes the potential interference between lenses and also ensures ease of manufacturing.
  • One possible method is to track the circumference of the active area and fill the unused region with the surface profile with the value of the nearest proximity to the circumference. For example, one way is to fill the surface profile with the same value along the x-axis of the circumferential value of the active area, as illustrated generally in Figure 29B.
  • the surface may still result in very steep profiles at the edge of the circle tangential to the axis along being compensated.
  • a related issues is that it is desirable to have a means to check the alignment of the lenses during fabrication and during assembly. To solve both of these issues at the same time, it is useful to find the lowest or highest point along the unused region and fill the rest of the region with that value. This will create flats at the four corners of the lens area, as shown in Figure 29C.
  • transition between the active area and compensated area can be smoothed with a gradual change of a linear or polynomial function. This has the benefit of removing sharp changes in surface gradients which could present manufacturing challenges, as shown in Figure 29D.
  • One technique to overcome this is to create a planar (B) and a sloped (C) surface that can be profiled in a single scan, such as the design shown in Figure 30A.
  • additional sloped and flat reference areas can be molded together with the lens. Molding does not create a sharp intersection line between the slope and flat surface, thus both the sloped and the flat areas have to be profiled together.
  • the theoretical position of the intersection with respect to all of the freeform surface points along the Y-axis is known. By profiling the slope and the flat, the intersection can be found through calculation.
  • Another variation is to map the X or Y - axis positions onto Z-height, again using the slope feature such as shown in Figure 30B.
  • feature "E” is used to determine the position of the freeform lens along the X-axis.
  • the Z-height of the slope when measured accurately, can be used to determine the actual X-axis position along the lens surface.
  • feature "D” can be used to locate Y-axis positioning. With both “E” and “D”, both X and Y axis positions of the freeform surface can be inferred.
  • Figures 30C and 30D show a comparison of a
  • A1 ,A2,A3, ...,An,B1 ,B2,B3,...,Bm are (Xa1 ,Ya1 ),
  • equation y k2x + b2 denotes the line segment B'C.
  • a form of minimal error function is used to obtain the best fit line such that K1 and b1 are determined by
  • K2 and b2 are determined by:
  • the tilt angle of the scanned trajectory is:
  • the angle of the slope is:
  • optical features 3100 and 3105 can be formed on the lens frames for freeform lens 31 10 and 31 15, respectively.
  • each frame can have at least one of these lenses, in an aligned position relative to one another, and traditional alignment methods can be applied for alignment. For example, centering of rotational symmetric lenses can be done through a laser beam aimed to find the apex of the rotational lenses.
  • a plurality of such lenses can offer additional improvement in alignment.
  • Even using only a single optical feature per lens frame or armature permits aligned assembly of multiple freeform lenses, including alignment of configurations requiring the light path to be bent, as shown in Figure 31 B where four freeform lenses are shown being aligned by a single laser beam passed through the respective optical features.
  • a more crude, less effective approach to alignment can, for some systems, comprise simply an orifice in the lens frame.
  • the optical features assist in creating reference positions for the lenses, in subsequent operation, other reference positions can help in calibrating any position feedback sensor on the module.
  • These position feedback sensors can include Hall sensors, capacitive sensors, piezo-effect sensors and linear encoders.
  • the lens frame can carry a magnet which, when moved together with the frame, creates a changing magnetic field that is picked up by a stationary Hall sensor mounted on the module housing. This changing magnetic field reflects a change in position of the lens frame.
  • the calibration allows the sensor to recognize the magnetic field signal it should sense with respect to the desired position of the frame.
  • This actual position input has to be obtained from external means.
  • Relative initial positions between the frames can be ascertained with the alignment marks described earlier. From these relative initial positions, subsequent positions of the lens frame can be obtained using an external displacement measuring tool like a laser displacement sensor. In that way, the magnitude of the magnetic field picked up by the Hall sensor at various positions of the frame can be correlated to the frame's positions.
  • An example of the measuring process is illustrated in Figures 31 C and 31 D.
  • the Hall sensor signal can be recorded. From the figure on the left, a laser displacement sensor can be used to measure on a part of the lens frame to obtain its position. By moving the frame to various positions as necessary, each positions' hall sensor reading can be tabulated with known position values.
  • a single lens alignment feature on each frame allows
  • Each of the lens alignment features can range between
  • 0.1 mm to 10mm depending upon the implementation and its application.
  • Smaller lens sizes can, in at least some instances, be associated with smaller alignment features.
  • the limitations of smaller lens sizes revolve around the ease of focusing or collimating the laser beam and the amount of signal intensity that can be obtained to be effectively used.
  • Maximum gradient of the freeform surfaces will be less than 60 degrees for lenses about 4mm diameter or diagonal. As lenses becomes larger to say 10mm diagonal, the expected profile gradient can be decreased to less than 40 degrees.
  • Suitable image sensor sizes can range from 1 ⁇ 2" to 1 ⁇ 4"
  • Freeform lenses translating laterally to the optical axis, offer a compact way to deliver optical zoom and other features.
  • To deliver optical zoom the movement of the lenses have to be bi-directional and synchronized.
  • One factor in delivering a low-cost solution is being able to reduce the number of actuators in the system.
  • One way to achieve that is to reduce the number of actuators is to have a number of lenses connected together.
  • the optical system consists of two lenses, one is G1 (Alvarez lens pairl ), the other one is G2(Alvarez lens pair2),.
  • optical power of whole system ⁇ is:
  • the working distance L is:
  • the optical power of the two lenses are cp lw and cp 2w ; at telephoto end, the optical power of the two lenses are ⁇ p 1T and
  • the optical power of the two lenses arecp lr and cp 2r ;
  • the working distance is:
  • the working distance is:
  • the optical powers of each lens pair are:
  • ⁇ p lw , ⁇ ⁇ , cp 2w , ⁇ 2 ⁇ are the optical power of lens group G1 and G2 at wide angle end and telephoto end respectively.
  • the actuator system can be simplified through connecting the lenses in pairs. This can result in an optical zoom configuration with two discrete zoom points. This is the simplest configuration possible for such an optical zoom lens.
  • FIGS 32A-34B various actuators that achieve this independence of lens movement are shown.
  • Such actuators must be able to provide one or more of the following characteristics: (a) Lenses 1 and 2 move the same distance but in different directions, while lenses 3 and 4 move the same distance as each other, but in different directions, and a different distance than lenses 1 and 2. (b) Lenses 1 , 2, 3 and 4 all move different distances, although two are moving in the same direction as one another, and the other two are moving in the opposite direction of the first two.
  • Desirable design characteristics are that these actuators must meet the form factor requirement of less than 6.5 mm Z height, they must displace the lenses at least 3 mm with a positional accuracy of 5 ⁇ , they must have a sufficient number of stops to provide a good user experience, they must be cost effective, they cannot use excessive power, and they must be easy to manufacture and assemble.
  • Figures 32A-32E illustrates a rotating cam actuator
  • Figures 33A-33B illustrate a linear motor driving a feeler cam which achieves the same result
  • Figures 34A and 34B illustrate geared and friction wheel embodiments also capable of driving multiple lenses different distances, again with some moving one direction and an equal number moving the opposite direction.
  • Sub-module assembly +/-5um

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Lens Barrels (AREA)
  • Studio Devices (AREA)

Abstract

L'invention concerne un zoom optique à faible encombrement, convenant à être utilisé dans des appareils mobiles, tels que des téléphones cellulaires, des caméras de sécurité, et d'autres systèmes d'imagerie de petite taille. Une ou plusieurs paires de lentilles Alvarez sont prévues et déplacées transversalement par rapport à l'axe optique. La combinaison d'une ou plusieurs paires de lentilles Alvarez avec l'actionneur permet d'obtenir une puissance de zoom d'au moins 3x avec une distance de déplacement latéral des composants optiques d'environ cinq millimètres ou moins.
EP15740706.5A 2013-11-08 2015-01-08 Blocs de lentilles et actionneurs pour systèmes optiques, et procédés associés Withdrawn EP3080654A4 (fr)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
PCT/IB2013/002905 WO2014072818A2 (fr) 2012-11-08 2013-11-08 Objectif zoom optique miniature
US201461925215P 2014-01-08 2014-01-08
PCT/IB2015/000409 WO2015110916A1 (fr) 2013-11-08 2015-01-08 Blocs de lentilles et actionneurs pour systèmes optiques, et procédés associés

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WO2017072583A1 (fr) * 2015-10-20 2017-05-04 Dynaoptics Ltd, A Public Limited Company Lentille à faible distorsion utilisant un élément symétrique à double plan
WO2017072579A1 (fr) * 2015-10-20 2017-05-04 Dynaoptics Ltd, A Public Limited Company Modèle de lentille à double longueur focale
CN107941154B (zh) * 2017-10-20 2020-01-21 杭州电子科技大学 一种位移测量系统及测量方法
CN111948533A (zh) * 2019-05-17 2020-11-17 友华科技(香港)有限公司 闭环马达检测方法
CN110196496A (zh) * 2019-07-02 2019-09-03 深圳珑璟光电技术有限公司 一种可调节焦距的近眼显示设备
CN212379629U (zh) * 2019-07-26 2021-01-19 台湾东电化股份有限公司 光学元件驱动机构及光学装置
CN114766008A (zh) * 2019-12-12 2022-07-19 华为技术有限公司 用于电子设备光机系统的双磁驱动系统
CN111505837A (zh) * 2019-12-31 2020-08-07 杭州电子科技大学 一种基于双眼成像分析的视距检测自动变焦光学系统
CN111474740A (zh) * 2019-12-31 2020-07-31 杭州电子科技大学 一种基于眼球追踪的视距检测自动变焦系统及方法
US11428894B2 (en) 2020-02-04 2022-08-30 Hand Held Products, Inc. Discrete variable focus assemblies and apparatuses
CN112666777B (zh) * 2020-12-23 2022-05-20 杭州电子科技大学 一种光源视场角调节系统
US20220206119A1 (en) * 2020-12-28 2022-06-30 Beijing Voyager Technology Co., Ltd. Mems actuated alvarez lens for tunable beam spot size in lidar
TWI768850B (zh) * 2021-04-27 2022-06-21 台灣立訊精密有限公司 影像補償裝置及其稜鏡承載機構
DE102021121561A1 (de) * 2021-08-19 2023-02-23 Carl Zeiss Ag Wellenfrontmanipulator und optisches Gerät
DE102021121562A1 (de) * 2021-08-19 2023-02-23 Carl Zeiss Ag Wellenfrontmanipulator und optisches Gerät

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US6850372B1 (en) * 2002-06-18 2005-02-01 Raytheon Company Orthogonal movement lateral shift zoom lens
JP2013034127A (ja) * 2011-08-02 2013-02-14 Canon Inc 撮像装置
CN103988109B (zh) * 2011-10-07 2017-07-14 新加坡国立大学 基于mems的变焦镜头系统
DE102012101262B3 (de) * 2012-02-16 2013-04-04 Carl Zeiss Ag Wellenfrontmanipulator und optisches Gerät

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WO2015110916A1 (fr) 2015-07-30

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