The present invention relates to the field of lens modules for cameras, and in particular to a lens drive device and an electronic terminal.
For some lens drive devices in the related art, a lens barrel and a holder have basically the same thickness, and the surface of the lens barrel for connecting the elastic piece is arranged, in an optical axis direction, flush with the surface of the holder for connecting the elastic piece, so that the stroke of the lens barrel is too small with a given thickness of the holder, resulting in poor performance, or that the thickness of the lens drive device is too large with a given stroke, which is not conducive to promoting the use of the lens drive devices in equipment.
Therefore, there is a need to provide a novel lens drive device and electronic terminal to solve the above problems.
An objective of the present invention is to provide a lens drive device and an electronic terminal, which lens drive device has a larger stroke and a better performance.
In a technical scheme of the present invention, provided is a lens drive device, including:
a housing having a receiving space;
a holder received and fixed in the receiving space;
permanent magnets fixed to the holder;
a lens barrel for receiving a lens, the lens barrel being arranged in the holder in such a way that the lens barrel is movable in an optical axis direction of the lens;
a drive coil fitted over an outer peripheral face of the lens barrel and opposite the permanent magnets fixed to the holder;
an elastic assembly connected to the lens barrel and the holder separately and used for supporting the lens barrel to move in the optical axis direction; and
a circuit board assembly received and fixed in the receiving space and electrically connected to the drive coil,
where the lens barrel includes a first surface connected to the elastic assembly and close to an object side, and the holder includes a second surface connected to the elastic assembly and close to the object side, the second surface being closer to the object side than the first surface; and the lens barrel includes a third surface connected to the elastic assembly and close to an image side, and the holder includes a fourth surface connected to the elastic assembly and close to the image side, the fourth surface being closer to the image side than the third surface.
As an embodiment of the present invention, the elastic assembly includes an upper elastic piece and a lower elastic piece, where the upper elastic piece is connected to the lens barrel and the holder separately, and the lower elastic piece is connected to the lens barrel and the holder separately.
As an embodiment of the present invention, the upper elastic piece includes a first upper connection portion fixed to the second surface, a second upper connection portion fixed to the first surface, and an upper elastic arm for connecting the first upper connection portion and the second upper connection portion; and
the lower elastic piece includes a first lower connection portion fixed to the fourth surface, a second lower connection portion fixed to the third surface, and a lower elastic arm for connecting the first lower connection portion and the second lower connection portion.
As an embodiment of the present invention, the housing includes a base and an upper cover covering and connected to the base, where the base and the upper cover enclose and form the receiving space; the circuit board assembly includes a flexible printed circuit board (PCB) arranged on the base, and a PCB arranged on the flexible PCB in a stacked manner and electrically connected to the flexible PCB; and the flexible PCB is welded to the base.
As an embodiment of the present invention, the flexible PCB is provided with a plated through hole electrically connected to the PCB.
As an embodiment of the present invention, the lens drive device further includes an image stabilization coil electrically connected to the PCB, the image stabilization coil is embedded inside the PCB and arranged opposite the permanent magnets, and the PCB is arranged in parallel with the base.
As an embodiment of the present invention, the lens drive device further includes a metal pin fixed to the housing and welded to the circuit board assembly, and a suspension wire for connecting the upper elastic piece and the metal pin.
As an embodiment of the present invention, the metal pin is integrally formed with the housing.
As an embodiment of the present invention, the lens drive device further includes a Hall sensor welded to the circuit board assembly and used for measuring an amount of movement of the lens.
In another technical scheme of the present invention, provided is an electronic terminal including a terminal body and a lens drive device as described in any of the above embodiments, where the lens drive device is arranged on the terminal body.
The present invention has the following beneficial effects.
In the lens drive device of the present invention, the lens barrel includes a first surface connected to the elastic assembly and close to an object side, and the holder includes a second surface connected to the elastic assembly and close to the object side. The second surface is closer to the object side than the first surface, so that the stroke of the lens barrel in the direction of the object side becomes larger. The lens barrel includes a third surface connected to the elastic assembly and close to an image side, and the holder includes a fourth surface connected to the elastic assembly and close to the image side. The fourth surface is closer to the image side than the third surface, so that the stroke of the lens barrel in the direction of the image side becomes larger. Therefore, the whole stroke of the lens barrel becomes larger and the lens drive device in this embodiment has a better performance. Similarly, it is also possible to reduce the thickness of the lens drive device in this embodiment with the stroke unchanged, such that the structure is more compact.
For a further description of all embodiments, accompanying drawings are provided in the present invention. The accompanying drawings are part of the content disclosed by the present invention and are mainly used for illustrating the embodiments, and can explain the operating principles of the embodiments in cooperation with the relevant illustration in the description. By referring to the content, those of ordinary skill in the art can understand other possible embodiments and advantages of the present invention. Assemblies in the drawings are not drawn to scale, and similar reference numerals are generally used for indicating similar components.
The present invention will be further explained with reference to the accompanying drawings and the embodiments.
A lens drive device 1 with auto focusing (AF) and optical image stabilization (OIS) functions of the present invention can be applied to portable mobile terminals such as smartphones and tablet computers.
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Specifically, the outer peripheral face of the lens barrel 400 is provided with an annular groove 410, and the drive coil 500 is fitted in the annular groove 410.
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Optionally, the upper elastic piece 610 and the lower elastic piece 620 are separately riveted to the holder 200 by means of hot pressing, and the upper elastic piece 610 and the lower elastic piece 620 are separately connected to the lens barrel 400 by means of glue curing.
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The circuit board assembly 700 is arranged on the base 110 and is electrically connected to the drive coil 500. The motion of the lens barrel 400 is powered by the circuit board assembly 700.
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Optionally, the flexible PCB 710 extends at least partially to the outside of the housing so as to be electrically connected to an external power supply.
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Optionally, the PCB 720 is arranged in parallel with the base 110.
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Of course, the drive coil 500 may also be electrically connected to the flexible PCB 710 or the PCB 720 directly.
Optionally, the metal pin 112 is integrally formed with the base 110.
In a specific embodiment, the object side is the side facing the upper wall 121, and the image side is the side facing the base 110. The distance between the first surface 402 and the upper wall 121 is larger than that between the second surface 201 and the upper wall 121, and the distance between the third surface 403 and the base 110 is larger than that between the fourth surface 202 and the base 110.
Since the first surface 402 is not flush with the second surface 201, the upper elastic piece 610 connected to the lens barrel 400 and the holder 200 is stressed to a certain extent, and the upper elastic piece 610 then has a certain initial deformation after being connected to the lens barrel 400 and the holder 200. Similarly, the lower elastic piece 620 also has a certain initial deformation after being connected to the lens barrel 400 and the holder 200. Accordingly, under the combined action of the upper elastic piece 610 and the lower elastic piece 620, the lens barrel 400 reaches a state of equilibrium.
Optionally, the elastic forces exerted by the upper elastic piece 610 and the lower elastic piece 620 on the lens barrel 400 are equal or similar, so that the stroke of the lens barrel 400 toward the upper wall 121 and the stroke of the lens barrel 400 toward the base 110 are substantially the same. Of course, the elastic forces exerted by the upper elastic piece 610 and the lower elastic piece 620 on the lens barrel 400 can also be adjusted according to actual requirements to change the stroke of the lens barrel 400 toward the upper wall 121 and the stroke of the lens barrel 400 toward the base 110. Specifically, the elastic force exerted by the upper elastic piece 610 on the lens barrel 400 may be changed by changing the height difference between the first surface 402 and the second surface 201, and the elastic force may also be changed by changing the material and shape of the upper elastic piece. The same is true for the lower elastic piece 620.
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Through the interaction between the image stabilization coil 800 and the permanent magnets 300, the holder 200 for having the permanent magnets 300 mounted therein moves in the XY plane under the action of an Ampere force, so that an image stabilization effect can be achieved in the XY plane. In addition, by embedding the image stabilization coil 800 into the PCB 720, the thickness of the PCB 720 can be reduced.
To realize the auto focusing function, the lens drive device 1 is operated as follows. The current flows through the drive coil 500, and the Ampere force is generated between the permanent magnets 300 and the drive coil 500, by which the lens barrel 400 is moved up and down in the optical axis direction in the housing 100. When the current flowing through the drive coil 500 stops, the lens barrel 400 returns to the initial position by elastic restoring forces from the upper elastic piece 610 and the lower elastic piece 620.
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The above description is merely directed to some embodiments of the present invention, and it should be noted that for those of ordinary skill in the art, improvements can be made without departing from the inventive concept of the present invention, and these all fall within the scope of protection of the present invention.
Number | Date | Country | Kind |
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202022909053.9 | Dec 2020 | CN | national |