This application claims priority of China Patent Application No. 202211378651.5, filed on Nov. 4, 2022, the entirety of which is incorporated by reference herein.
The present disclosure relates to an optical element driving mechanism.
As technology has developed, it has become more common to include image-capturing and video-recording functions into many types of modern electronic devices, such as smartphones and digital cameras. These electronic devices are used more and more often, and new models have been developed that are convenient, thin, and lightweight, offering more choice to consumers.
Electronic devices that have image-capturing or video-recording functions normally include an optical system to drive an optical element (such as a lens) to move along its optical axis, thereby achieving auto focus (AF) or optical image stabilization (OIS). Light may pass through the optical element and may form an image on an optical sensor. However, the trend in modern mobile devices is to have a smaller size and a higher durability. As a result, how to effectively reduce the size of the optical system and how to increase its durability has become an important issue.
Some embodiments of the present disclosure provide an optical element driving mechanism that includes a movable portion, a fixed portion, and a driving assembly. The movable portion is used to connect the optical element. The movable portion may move relative to the fixed portion. The driving assembly is used to drive the movable portion to move relative to the fixed portion.
In some embodiments, the optical element driving mechanism further includes a first resilient element connected to the movable portion and the fixed portion and used for electrically connecting the optical element driving mechanism and an optical module, and a second resilient element disposed on the fixed portion. The first resilient element and the second resilient element are disposed on opposite sides of the movable portion in a first direction. A thickness of the first resilient element and a thickness of the second resilient element are different.
In some embodiments, the movable portion is in direct contact with the second resilient element in a first state. The movable portion is separate from the fixed portion in the first state. The movable portion is separated from the second resilient element in a second state.
In some embodiments, the thickness of the first resilient element is less than the thickness of the second resilient element. The fixed portion comprises a case and a base arranged along a main axis, and the main axis extends in the first direction. The second resilient element comprises: a first base connecting portion connected to the base. A first string portion connected to the first base connecting portion. A second base connecting portion connected to the base. A second string portion connected to the second base connecting portion. And a contact portion connected to the first string portion and the second string portion.
In some embodiments, the base is polygonal when viewed in the first direction. The first base connecting portion and the second base connecting portion are disposed on opposite sides of the base when viewed in the first direction.
In some embodiments, the driving assembly comprises a driving magnetic element comprising a first driving magnetic unit and a second driving magnetic unit arranged in the first direction and contacting each other in an interface, and a driving coil corresponding to the driving magnetic element. The driving magnetic element is disposed on the fixed portion. The driving coil is disposed on the movable portion. The driving coil at least partially overlaps the interface when viewed in a second direction perpendicular to the first direction in the first state. The driving coil at least partially overlaps the interface when viewed in the second direction in the second state.
In some embodiments, the first fixed portion comprises a first side, a second side, a third side, and a fourth side when viewed in the first direction. The driving assembly is disposed on the first side, the second side, the third side, and the fourth side. The first side and the third side are opposite. The second side and the fourth side are opposite. The contact portion is disposed on the first side, the second side, the third side, and the fourth side when viewed in the first direction.
In some embodiments, the optical element driving mechanism further includes a first guiding rod disposed on the fixed portion, and a second guiding rod disposed on the fixed portion. The first fixed portion further comprising a fifth side, a sixth side, a seventh side, and an eighth side. The fifth side is between the first side and the second side. The sixth side is between the second side and the third side. The seventh side is between the third side and the fourth side. The eighth side is between the fourth side and the first side. The first base connecting portion is disposed on the sixth side. The second base connecting portion is disposed on the eighth side. The first string portion is disposed on the sixth side. The second string portion is disposed on the eighth side.
In some embodiments, the first side, the second side, the third side, the fourth side, the fifth side, and the seventh side do not contact the second resilient element. The first guiding rod, the second guiding rod, the first base connecting portion, and the second base connecting portion are disposed on different sides of the fixed portion.
In some embodiments, the base further comprises a first protrusion, a second protrusion, a first connecting element, a second connecting element, a third connecting portion, and a fourth connecting portion. The first string portion is disposed between the first protrusion and the second protrusion. The first connecting element and the second connecting element pass through the first base connecting portion. The third connecting element and the fourth connecting element pass through the second base connecting portion.
In some embodiments, a connection passes through the first string portion and the second string portion. The first connecting element and the second connecting portion are disposed on opposite sides of the connection. The third connecting element and the fourth connecting portion are disposed on opposite sides of the connection.
In some embodiments, the first base connecting portion comprises a first opening. The first opening is between the first connecting element and the second connecting element. At least a portion of the base is exposed from the first opening when viewed in the first direction.
In some embodiments, the second base connecting portion comprises a second opening. The second opening is between the third connecting element and the fourth connecting element. The base is at least partially exposed from the second opening when viewed in the first direction.
In some embodiments, the optical element driving mechanism further comprises an adhesive element disposed on the first opening and the second opening. A ratio of the thickness of the first resilient element to the thickness of the second resilient element is between 0.5 and 0.8.
In some embodiments, the movable portion comprises a plurality of pressing portions extending in the first direction. The optical element driving mechanism is switched between the first state and the second state by an external driving assembly and the second resilient element.
In some embodiments, the movable portion is at a first position in the first state. The external driving assembly applies a first force to the movable portion in the first state. In the first state, the movable portion is in direct contact with the second resilient element, the second resilient element applies a second force to the movable portion, and directions of the first force and the second force are opposite.
In some embodiments, the first base connecting portion and the contact portion are on different planes in the first state. The external driving assembly is in direct contact with the pressing portions in the first state. At least a portion of the pressing portions is exposed from the base when viewed in the second direction in the first state.
In some embodiments, when switching from the first state to the second state, the external driving assembly stops providing the first force to the movable portion, and the second force drives the movable portion to move along the main axis to reach a second position. When the movable portion reaches the second portion, the driving assembly further drives the movable portion to a third portion for switching to the second state.
In some embodiments, the movable portion is separated from the second resilient element in the second state. The driving assembly drives the movable portion to move relative to the fixed portion in the second state. The first base connecting portion and the contact portion are on an identical plane in the second state.
In some embodiments, the external driving assembly is separated from the pressing portions in the second state. At least a portion of the pressing portions expose from the base when viewed in the second direction in the second state. When switching from the second state to the first state, the external driving assembly applies the first force to the movable portion to drive the movable portion reaching the first position.
Aspects of the present disclosure are best understood from the following detailed description when read with the accompanying figures. It should be noted that, in accordance with the standard practice in the industry, various features are not drawn to scale. In fact, the dimensions of the various features may be arbitrarily increased or reduced for clarity of discussion.
The following disclosure provides many different embodiments, or examples, for implementing different features of the provided subject matter. Specific examples of elements and arrangements are described below to simplify the present disclosure. These are, of course, merely examples and are not intended to be limiting. For example, in some embodiments, the formation of a first feature over or on a second feature in the description that follows may include embodiments in which the first and second features are in direct contact, and may also include embodiments in which additional features may be disposed between the first and second features, such that the first and second features may not be in direct contact.
In addition, the present disclosure may repeat reference numerals and/or letters in the various examples. This repetition is for the purpose of simplicity and clarity and does not in itself dictate a relationship between the various embodiments and/or configurations discussed. Moreover, the formation of a feature on, connected to, and/or coupled to another feature in the present disclosure that follows may include embodiments in which the features are in direct contact, and may also include embodiments in which additional features may be disposed interposing the features, such that the features may not be in direct contact. In addition, spatially relative terms, for example, “vertical,” “above,” “over,” “below,”, “bottom,” etc. as well as derivatives thereof (e.g., “downwardly,” “upwardly,” etc.) are used in the present disclosure for ease of description of one feature's relationship to another feature. The spatially relative terms are intended to cover different orientations of the device, including the features.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. It should be appreciated that each term, which is defined in a commonly used dictionary, should be interpreted as having a meaning conforming to the relative skills and the background or the context of the present disclosure, and should not be interpreted in an idealized or overly formal manner unless defined otherwise.
Use of ordinal terms such as “first”, “second”, etc., in the claims to modify a claim element does not by itself connote any priority, precedence, or order of one claim element over another or the temporal order in which acts of a method are performed, but are used merely as labels to distinguish one claim element having a certain name from another element having the same name (but for use of the ordinal term) to distinguish the claim elements.
In addition, in some embodiments of the present disclosure, terms concerning attachments, coupling and the like, such as “connected” and “interconnected”, refer to a relationship wherein structures are secured or attached to one another either directly or indirectly through intervening structures, as well as both movable or rigid attachments or relationships, unless expressly described otherwise.
Embodiments of the present disclosure disclose an optical element driving mechanism used for driving an optical element to move. For example,
As shown in
In some embodiments, the optical element 1800 may be, for example, a lens, a mirror, a prism, a reflective polished surface, an optical coating, a beam splitter, an aperture, a liquid lens, an image sensor, a camera module, or a ranging module. It should be noted that the definition of the optical element is not limited to the element that is related to visible light, and other elements that relate to invisible light (e.g., infrared or ultraviolet) are also included in the present disclosure.
In some embodiments, the fixed portion 1100 may include a case 1110, a frame 1120, a base 1130, and a bottom plate 1140 arranged along the main axis 1900. The case 1110 and the bottom plate 1140 may combine together to form a shell of the optical element driving mechanism 1000 for accommodating and protecting other elements. The frame 1120 and the base 1130 may be disposed between the case 1110 and the bottom plate 1140 to increase the structural strength of the optical element driving mechanism 1000. In some embodiments, the base 1130 may be polygonal when viewed along the main axis 1900.
In some embodiments, the driving assembly 1300 may include driving magnetic elements 1310 and driving coils 1320 disposed on the fixed portion 1100 and the movable portion 1200, respectively. Alternatively, their positions may be interchanged, depending on design requirement. When current passes through the driving coils 1320, the driving coils 1320 will interact with the magnetic field of the driving magnetic elements 1310 to generate an electromagnetic force to drive the movable portion 1200 and the optical element 1800 to move relative to the fixed portion 1100 to achieve auto focus. In some embodiments, the driving assembly 1300 may include other driving elements such as piezoelectric, shape memory alloy, etc.
In some embodiments, the first resilient element 1400 and the second resilient element 1500 may be disposed on opposite sides of the movable portion 1200. The first resilient element 1400 may be elastically connected to the fixed portion 1100 (e.g. the base 1130) and the movable portion 1200, and may be electrically connected to the driving coils 1320 and the circuit assembly 1600 to provide current to the driving coils 1320. The second resilient element 1500 may be disposed on the fixed portion 1100 (e.g. the base 1130), and the movable portion 1200 may be separated from the second resilient element 1500 or in contact with each other to control the position of the movable portion 1200, which will be described later.
In some embodiments, a first guiding rod 1160 and a second guiding rod 1170 disposed on the fixed portion 1100 may be used for movably connecting the movable portion 1200 and the fixed portion 1100. The first guiding rod 1160 includes a first guiding rod first end 1161 and a first guiding rod second end 1162 opposite to each other, the first guiding rod first end 1161 may be affixed on the base 1130, and the first guiding rod second end 1162 may be affixed on the case 1110. The second guiding rod 1170 includes a first end of second guiding rod 1171 and a second end of second guiding rod 1172 opposite to each other, the first end of second guiding rod 1171 may be affixed on the base 1130, and the second end of second guiding rod 1172 may be affixed on the case 1110. Therefore, the first guiding rod 1160 and the second guiding rod 1170 are allowed to be fixed on the fixed portion 1100.
In some embodiments, when viewed along the main axis 1900, the first guiding rod 1160 and the second guiding rod 1170 may be in direct contact with the movable portion 1200 to define the moving direction of the movable portion 1200 relative to the fixed portion 1100. The first guiding rod 1160 and the second guiding rod 1170 may include magnetic permeable materials.
In some embodiments, the way that the first guiding rod first end 1161 connecting to the base 1130 may be different from that of the first guiding rod second end 1162 connected to the case 1110, and the way that the first end of second guiding rod 1171 connecting to the base 1130 may be different from that of the second end of second guiding rod 1172 connected to the case 1110. For example, as shown in
In some embodiments, a first adhesive element 1183 and a second adhesive element 1184 may be provided in the first connection opening 1181 and the second connection opening 1182, respectively, to connect the base 1130 to the first guiding rod 1160 and the second guiding rod 1170. In other words, in the first direction (Z direction), the first adhesive element 1183 and the first guiding rod 1160 at least partially overlap each other, the second adhesive element 1184 and the second guiding rod 1170 at least partially overlap each other, the first guiding rod 1160 does not expose from the first connection opening 1181, and the second guiding rod 1170 does not expose from the second connection opening 1182 to ensure the amounts of the first adhesive element 1183 and the second adhesive element 1184 are enough. Therefore, the base 1130 may be further affixed to the first guiding rod 1160 and the second guiding rod 1170.
As shown in
In some embodiments, the driving magnetic elements 1310 may include a first driving magnetic element 1311, a second driving magnetic element 1312, a third driving magnetic element 1313, and a fourth driving magnetic element 1314 disposed on the first edge 1151, the second edge 1152, the third edge 1153, and the fourth edge 1154, respectively. The driving coils 1320 may include a first driving coil 1321, a second driving coil 1322, a third driving coil 1323, and a fourth driving coil 1324 disposed on the movable portion 1200 and corresponding to the first driving magnetic element 1311, the second driving magnetic element 1312, the third driving magnetic element 1313, and the fourth driving magnetic element 1314, respectively. Furthermore, in some embodiments, a first magnetic permeable element 1331, a second magnetic permeable element 1332, a third magnetic permeable element 1333, and a fourth magnetic permeable element 1334 may be disposed on the base 1130 and they correspond to the first driving magnetic element 1311, the second driving magnetic element 1312, the third driving magnetic element 1313, and the fourth driving magnetic element 1314, respectively.
In some embodiments, the first driving magnetic element 1311, the second driving magnetic element 1312, the third driving magnetic element 1313, and the fourth driving magnetic element 1314 may have similar structures. Taking the fourth driving magnetic element 1314 as an example, the fourth driving magnetic element 1314 may include a first driving magnetic unit 1351 and a second driving magnetic unit 1352 arranged in the first direction. In some embodiments, when viewed in a second direction (e.g., Y direction), as shown in
In some embodiments, the first magnetic permeable element 1331, the second magnetic permeable element 1332, the third magnetic permeable element 1333, and the fourth magnetic permeable element 1334 may have similar structures. Taking the fourth magnetic permeable element 1334 as an example, as shown in
As shown in
In some embodiments, a normal direction of the second extending portion 1642 is parallel to the first direction. Normal directions of the first segment 1611, the second segment 1612, the third segment 1613, the fourth segment 1614, and the fifth segment 1615 are perpendicular to the first direction, and the resilient connecting portion 1643 and the fixed portion 1100 are separated from each other. Furthermore, in some embodiments, the first magnetic permeable element 1331 and the third magnetic permeable element 1333 at least partially overlap the circuit assembly 1600 in the third direction. The second magnetic permeable element 1332 at least partially overlaps the circuit assembly 1600 in the second direction. Moreover, when viewed in the second direction, as shown in
In some embodiments, as shown in
In some embodiments, as shown in
In some embodiments, the position sensing element 1710 may include a Hall sensor, a magnetoresistance effect sensor (MR sensor), a giant magnetoresistance effect sensor (GMR sensor), a tunneling magnetoresistance effect sensor (TMR sensor), or a fluxgate sensor. The position sensing element 1710 may detect the magnetic field generated from the sensing magnetic element 1720, and the position sensing element 1710 and the sensing magnetic element 1720 may be disposed on the fixed portion 1100 (or the circuit assembly 1600) and the movable portion 1200, respectively, or their positions may be interchanged. Therefore, the position of the movable portion 1200 relative to the fixed portion 1100 (or to the circuit assembly 1600) may be detected by the sensing assembly 1700. In some embodiments, the first electronic element 1671 and the sensing assembly 1700 may be disposed on opposite sides of the movable portion 1200 to prevent interference. In some embodiments, the first electronic element 1671 may include multiple connection pins, and at least half of the connection pins do not electrically connect to the circuit assembly 1600.
In some embodiments, the reinforcement element 1730 may be disposed on the fixed portion 1100 or the circuit assembly 1600, such as may be disposed on the fifth segment 1615 of the surrounding portion 1610, the circuit assembly 1600 may be between the reinforcement element 1730 and the position sensing element 1710, and the sensing magnetic element 1720 and the reinforcement element 1730 may be disposed on opposite sides of the position sensing element 1710. In some embodiments, the material of the reinforcement element 1730 may include nonmagnetic permeable metal to provide structural strength.
As shown in
In some embodiments, as shown in
In some embodiments, the processing unit 1682 may be configured to determine the position of the movable portion 1200 relative to the fixed portion 1100 according to the calibration information stored in the storage unit 1681. In some embodiments, since the elements of the optical element driving mechanism 1000 may have tolerances during manufacture, the calibration information of the optical element driving mechanism 1000 may be obtained through the following steps. First, move the movable portion 1200 from an initial position to a final position, such as move the entire stroke in the Z direction. Next, the magnetic field of the sensing magnetic element 1720 is sensed by the position sensing element 1710 to obtain first position information, and the first position information includes magnetic field values at different positions. Next, the first position information is analyzed to obtain calibration information.
In some embodiments, the operation of analyzing first position information may include differentiating the first position information to obtain second position information. Then, based on the number of positive and negative changes in the second position information, the number of sensing magnetic elements passing through the first sensing magnetic units 1711 and the second sensing magnetic units 1712 is determined, and the position interval information is obtained based on this number. Based on the position interval information and the magnetic field sensed by the position sensing element, the detailed position of the movable portion 1200 relative to the fixed portion 1100 is determined. For example, if the positive and negative values change once, it represents passing through one first sensing magnetic unit 1711 and one second sensing magnetic unit 1712, thus the relative distance of movement between the sensing magnetic element 1720 and the position sensing element 1710 may be determined. Finally, calibration information may be obtained through the detailed position of the movable portion 1200 relative to the fixed portion 1100, the position interval information, and the magnetic field.
In some embodiments, the first pressing portion 1221, the second pressing portion 1222, the third pressing portion 1223, the fourth pressing portion 1224, the first upper stopping portion 1231, the second upper stopping portion 1232, the third upper stopping portion 1233, the fourth upper stopping portion 1234, the fifth upper stopping portion 1235, and the sixth upper stopping portion 1236 may extend from the main body 1210 in the first direction. As seen in
In some embodiments, the first upper stopping portion 1231 is adjacent to the first pressing portion 1221, the second upper stopping portion 1232 and the third upper stopping portion 1233 are adjacent to the second pressing portion 1222, the fourth upper stopping portion 1234 is adjacent to the third pressing portion 1223, and the fifth upper stopping portion 1235 and the sixth upper stopping portion 1236 are adjacent to the fourth pressing portion 1224. In some embodiments, when viewed in the first direction, the connection 1270 passes through the first pressing portion 1221 and the third pressing portion 1223, and the first upper stopping portion 1231 and the fourth upper stopping portion 1234 are on a same side of the connection 1270. In some embodiments, when viewed in the first direction, the first upper stopping portion 1231, the second upper stopping portion 1232, the third upper stopping portion 1233, the fourth upper stopping portion 1234, the fifth upper stopping portion 1235, and the sixth upper stopping portion 1236 are arranged in a counterclockwise order around the main axis 1900. In some embodiments, the first upper stopping portion 1231, the second upper stopping portion 1232, the third upper stopping portion 1233, the fourth upper stopping portion 1234, the fifth upper stopping portion 1235, and the sixth upper stopping portion 1236 at least partially overlap with the case 1110 and do not expose from the case 1110.
In other words, when the movable portion 1200 moves in the Z direction, the first upper stopping portion 1231, the second upper stopping portion 1232, the third upper stopping portion 1233, the fourth upper stopping portion 1234, the fifth upper stopping portion 1235, and the sixth upper stopping portion 1236 may be used to restrict the range of motion of the movable portion 1200, while the first pressing portion 1221, the second pressing portion 1222, the third pressing portion 1223, and the fourth pressing portion 1224 may protrude from the case 1110 to allow external driving assembly to apply pressure to the movable portion 1200 and control the position of the movable portion 1200 (as explained later).
In some embodiments, the movable portion 1200 may also include a first opening 1251 and a second opening 1252, and the optical element driving mechanism 1000 may also include a first positioning magnetic element 1261 and a second positioning magnetic element 1262 disposed in the first opening 1251 and the second opening 1252, respectively. For example, the first positioning magnetic element 1261 and the second positioning magnetic element 1262 may be magnets and may be adjacent to the first guiding rod 1160 and the second guiding rod 1170, respectively. Due to the first guiding rod 1160 and the second guiding rod 1170 have magnetic permeable material, the first positioning magnetic element 1261 and the second positioning magnetic element 1262 may generate magnetic forces between the first guiding rod 1160 and the second guiding rod 1170, so that after the driving assembly 1300 is used to move the movable portion 1200 to a specific position, the position of the movable portion 1200 may be fixed without continuously providing power to the driving assembly 1300 to fix the position of the movable portion 1200, thus saving energy usage.
The first side stopping portion 1241, the second side stopping portion 1242, the third side stopping portion 1243, and the fourth side stopping portion 1244 may be disposed on the main body 1210 and extend towards the X or Y direction. The first driving coil 1321, the second driving coil 1322, the third driving coil 1323, and the fourth driving coil 1324 may be respectively disposed on the first side stopping portion 1241, the second side stopping portion 1242, the third side stopping portion 1243, and the fourth side stopping portion 1244, and the distance between the first side stopping portion 1241, the second side stopping portion 1242, the third side stopping portion 1243, and the fourth side stopping portion 1244 and the case 1110 may be less than the distance between the first driving coil 1321, the second driving coil 1322, the third driving coil 1323, and the fourth driving coil 1324 and the case 1110, in order to avoid direct collision between the first driving coil 1321, the second driving coil 1322, the third driving coil 1323, and the fourth driving coil 1324 and the case 1110.
In some embodiments, as shown in
In some embodiments, a second segment 1462 passes through the first guiding rod 1160 and second guiding rod 1170, and the first segment 1461 and the second segment 1462 are vertically oriented with respect to each other. In some embodiments, when viewed along the main axis 1900, the first resilient unit 1401 and the sixth resilient unit 1406 are located on one side of the second segment 1462 and the second resilient unit 1402, the third resilient unit 1403, the fourth resilient unit 1404, and the fifth resilient unit 1405 are located on the other side of the second segment 1462. Additionally, the second segment 1462 does not pass through the first resilient element 1400.
The first resilient element 1400 may be electrically connected to the circuits in the fixed portion 1100 and the movable portion 1200. For example, the first resilient unit 1401 may include a first movable portion connecting portion 1411, a first fixed portion connecting portion 1421, and a first string 1431. The second resilient unit 1402 may include a second movable portion connecting portion 1412, a second fixed portion connecting portion 1422, and a second string 1432. The third resilient unit 1403 may include a third movable portion connecting portion 1413, a third fixed portion connecting portion 1423, and a third string 1433. The fourth resilient unit 1404 may include a fourth movable portion connecting portion 1414, a fourth fixed portion connecting portion 1424, and a fourth string 1434. The fifth resilient unit 1405 may include a fifth movable portion connecting portion 1415, a fifth fixed portion connecting portion 1425, and a fifth string 1435. The sixth resilient unit 1406 may include a sixth movable portion connecting portion 1416, a sixth fixed portion connecting portion 1426, and a sixth string 1436.
In some embodiments, the first movable portion connecting portion 1411, the second movable portion connecting portion 1412, the third movable portion connecting portion 1413, the fourth movable portion connecting portion 1414, the fifth movable portion connecting portion 1415, and the sixth movable portion connecting portion 1416 may be disposed on the movable portion 1200, while the first fixed portion connecting portion 1421, the second fixed portion connecting portion 1422, the third fixed portion connecting portion 1423, the fourth fixed portion connecting portion 1424, the fifth fixed portion connecting portion 1425, and the sixth fixed portion connecting portion 1426 may be disposed on the fixed portion 1100. In this way, electrical connections may be made between the circuits in the fixed portion 1100 and the movable portion 1200.
In some embodiments, the first string 1431 connects the first movable portion connecting portion 1411 and the first fixed portion connecting portion 1421. The second string 1432 connects the second movable portion connecting portion 1412 and the second fixed portion connecting portion 1422. The third string 1433 connects the third movable portion connecting portion 1413 and the third fixed portion connecting portion 1423. The fourth string 1434 connects the fourth movable portion connecting portion 1414 and the fourth fixed portion connecting portion 1424. The fifth string 1435 connects the fifth movable portion connecting portion 1415 and the fifth fixed portion connecting portion 1425. The sixth string 1436 connects the sixth movable portion connecting portion 1416 and the sixth fixed portion connecting portion 1426.
In some embodiments, the first resilient unit 1401 and the sixth resilient unit 1406 may have symmetrical structures, while the second resilient unit 1402, the third resilient unit 1403, the fourth resilient unit 1404, and the fifth resilient unit 1405 may have similar structures. For example, the distance between the first movable portion connecting portion 1411 and the first fixed portion connecting portion 1421 or the distance between the sixth movable portion connecting portion 1416 and the sixth fixed portion connecting portion 1426 may be greater than the distance between the second movable portion connecting portion 1412 and the second fixed portion connecting portion 1422, the distance between the third movable portion connecting portion 1413 and the third fixed portion connecting portion 1423, the distance between the fourth movable portion connecting portion 1414 and the fourth fixed portion connecting portion 1424, or the distance between the fifth movable portion connecting portion 1415 and the fifth fixed portion connecting portion 1425.
In some embodiments, since the second resilient unit 1402, the third resilient unit 1403, the fourth resilient unit 1404, and the fifth resilient unit 1405 may have similar structures, the structure details are further explained with the second resilient unit 1402 as an example.
It should be noted that in some embodiments, the second string first portion 1451 and the second string second portion 1452 may extend in different directions, and an angle θ between the second string first portion 1451 and the second string second portion 1452 is acute. In some embodiments, the angle θ may be less than 45 degrees. In some embodiments, a distance D5 between the second movable portion connecting portion 1412 and the second fixed portion connecting portion 1422 is smaller than a length L5 of the second string first portion 1451 and a length L6 of the second string second portion 1452. In other words, the second resilient unit 1402 (and other similar resilient units) is not designed to bear weight, but to conduct electricity, thus reducing the size of the second resilient unit 1402 and achieving miniaturization.
In some embodiments, the first movable portion connecting portion 1411, the second fixed portion connecting portion 1422, and the second movable portion connecting portion 1412 may be disposed on the fifth edge 1155, the third fixed portion connecting portion 1423, the third movable portion connecting portion 1413, the fourth fixed portion connecting portion 1424, and the fourth movable portion connecting portion 1414 may be disposed on the sixth edge 1156. The fifth fixed portion connecting portion 1425, the fifth movable portion connecting portion 1415, and the sixth movable portion connecting portion 1416 may be disposed on the seventh edge 1157, while the first fixed portion connecting portion 1421 and the sixth fixed portion connecting portion 1426 may be disposed on the eighth edge 1158.
In some embodiments, the first conductive assembly 1650 may include a first conductive portion 1651, a second conductive portion 1652, a third conductive portion 1653, and a fourth conductive portion 1654, and in the first direction, the first conductive portion 1651 and the second conductive portion 1652 are at different heights from the third conductive portion 1653 and the fourth conductive portion 1654. The circuit assembly 1600 may be electrically connected to the first driving coil 1321 and the second driving coil 1322 via the third resilient unit 1403 and the first conductive portion 1651, and may be electrically connected to the third driving coil 1323 and the fourth driving coil 1324 via the fourth resilient unit 1404 and the second conductive portion 1652, thus allowing the first driving coil 1321 connects the second driving coil 1322 in series, and allowing the third driving coil 1323 connects the fourth driving coil 1324 in series. In some embodiments, the first driving coil 1321 and the second driving coil 1322 are connected to the third driving coil 1323 and the fourth driving coil 1324 in parallel via the third conductive portion 1653 and the fourth conductive portion 1654.
In some embodiments, an additional optical module (not shown) may be disposed on the optical element driving mechanism 1000, such as an aperture. Additionally, the optical module may be electrically connected to the conductive assembly 1660 via the first resilient unit 1401, the second resilient unit 1402, the fifth resilient unit 1405, and the sixth resilient unit 1406 of the first resilient element 1400 to control the optical module. Furthermore, the third resilient unit 1403 and the fourth resilient unit 1404 are electrically insulated from the first resilient unit 1401, the second resilient unit 1402, the fifth resilient unit 1405, and the sixth resilient unit 1406 to avoid interference between the signals controlling the optical element driving mechanism 1000 and the signals controlling the optical module.
In some embodiments, as shown in
In some embodiments, the optical element driving mechanism 1000 may also include an adhesive element 1470 (e.g., a conductive adhesive element, such as a solder ball or silver paste), disposed on the first fixed portion connecting portion 1421, the second fixed portion connecting portion 1422, the third movable portion connecting portion 1413, the third fixed portion connecting portion 1423, the fourth movable portion connecting portion 1414, the fourth fixed portion connecting portion 1424, the fifth fixed portion connecting portion 1425, the sixth fixed portion connecting portion 1426, to electrically connect the first resilient element 1400, the first conductive assembly 1650, and the conductive assembly 1660.
In some embodiments, the contact portion 1550 may be disposed on the first edge 1151, the second edge 1152, the third edge 1153, and the fourth edge 1154, while the first base connecting portion 1510 and the first string portion 1520 may be disposed on the sixth edge 1156, and the second base connecting portion 1530 and the second string portion 1540 may be disposed on the eighth edge 1158. In other words, the first base connecting portion 1510, the second base connecting portion 1530, and the contact portion 1550 may be located on different sides of the base 1130. It should be noted that the first edge 1151, the second edge 1152, the third edge 1153, the fourth edge 1154, the fifth edge 1155, and the seventh edge 1157 are not in direct contact with the second resilient element 1500, but are separated from the second resilient element 1500 by a distance in the first direction (as shown in
In some embodiments, the base 1130 may further include a main body 1560, a first protrusion 1561, a second protrusion 1562, a third protrusion 1563, the fourth protrusion 1564, the first connecting element 1571, the second connecting element 1572, the third connecting element 1573, and the fourth connecting element 1574, which may protrude in the first direction from the main body 1560. The first string portion 1520 may be disposed between the first protrusion second protrusion second protrusion 1562 and the second protrusion 1562, while the second string portion 1540 may be disposed between the third protrusion 1563 and the fourth protrusion 1564, to protect the first string portion 1520 and the second string portion 1540. The first connecting element 1571 and the second connecting element 1572 may pass through the first base connecting portion 1510, and the third connecting element 1573 and the fourth connecting element 1574 may pass through the second base connecting portion 1530, to secure the relative position between the second resilient element 1500 and the base 1130.
In some embodiments, a connection 1280 may pass through the first string portion 1520, the second string portion 1540, and the main axis 1900, with the first connecting element 1571 and the second connecting element 1572 being disposed on opposite sides of the connection 1280, and the third connecting element 1573 and the fourth connecting element 1574 also being disposed on opposite sides of the connection 1280. In some embodiments, the first base connecting portion 1510 may include a first opening 1511, the second base connecting portion 1530 may include a second opening 1531, and when viewed in the first direction, at least a portion of the base 1130 may be exposed from the first opening 1511 and the second opening 1531. The first opening 1511 may be disposed between the first connecting element 1571 and the second connecting element 1572, the second opening 1531 may be disposed between the third connecting element 1573 and the fourth connecting element 1574, and the connection 1280 may pass through the first opening 1511 and the second opening 1531. In some embodiments, additional adhesive elements (not shown) may be disposed on the first opening 1511 and the second opening 1531 and in direct contact with the base 1130 and the second resilient element 1500 to further fix the relative position of the base 1130 and the second resilient element 1500.
In some embodiments, the thickness of first resilient element 1400 may differ from that of the second resilient element 1500. For example, the thickness of first resilient element 1400 may be less than that of the second resilient element 1500. In some embodiments, a ratio of the thickness of first resilient element 1400 to that of second resilient element 1500 may be between about 0.5 and about 0.8, allowing second resilient element 1500 to have a higher mechanical strength.
In some embodiments, the pressing portion 1220 of the movable portion 1200 (such as the first pressing portion 1221, the second pressing portion 1222, the third pressing portion 1223, and the fourth pressing portion 1224) may at least partially exposed from the base 1130, and the external driving assembly 1920 may directly contact the pressing portion 1220 to apply a first downward force to the movable portion 1200 through the pressing portion 1220. Thus, the movable portion 1200 may directly contact the contact portion 1550 of the second resilient element 1500, so that the first base connecting portion 1510 (and the second base connecting portion 1530) and the contact portion 1550 are in different planes. At this time, the second resilient element 1500 undergoes deformation and then applies an upward second force to the movable portion 1200 through the contact portion 1550, and the first force and the second force are in opposite directions, so as to fix the movable portion 1200 in the first position.
Then, as shown in
Next, when retracting the movable portion 1200 into the fixed portion 1100, since the pressing portion 1220 is partially exposed from the base 1130, the first force may be reapplied to the pressing portion 1220 of the movable portion 1200 by the external driving assembly 1920 to drive the movable portion 1200 reaching the first position, returning to the state shown in the
In summary, some embodiments of the present disclosure provide an optical element driving mechanism that includes a movable portion, a fixed portion, and a driving assembly. The movable portion is used to connect the optical element. The movable portion may move relative to the fixed portion. The driving assembly is used to drive the movable portion to move relative to the fixed portion. This allows an external driving assembly to move the movable portion, thereby enabling the movement of optical elements with larger sizes and also achieving miniaturization.
The relative positions and size relationship of the elements in the present disclosure may allow the driving mechanism achieving miniaturization in specific directions or for the entire mechanism. Moreover, different optical modules may be combined with the driving mechanism to further enhance optical quality, such as the quality of photographing or accuracy of depth detection. Therefore, the optical modules may be further utilized to achieve multiple anti-vibration systems, so image stabilization may be significantly improved.
Although embodiments of the present disclosure and their advantages already have been described in detail, it should be understood that various changes, substitutions and alterations may be made herein without departing from the spirit and the scope of the disclosure as defined by the appended claims. Moreover, the scope of the present application is not intended to be limited to the particular embodiments of the process, machine, manufacture, and composition of matter, means, methods and steps described in the specification. As one of ordinary skill in the art will readily appreciate from the disclosure of the present disclosure, processes, machines, manufacture, compositions of matter, means, methods, or steps, presently existing or later to be developed, that perform substantially the same function or achieve substantially the same result as the corresponding embodiments described herein may be utilized according to the present disclosure. Accordingly, the appended claims are also intended to include within their scope of such processes, machines, manufacture, and compositions of matter, means, methods, or steps. In addition, each claim herein constitutes a separate embodiment, and the combination of various claims and embodiments are also within the scope of the disclosure.
Number | Date | Country | Kind |
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202211378651.5 | Nov 2022 | CN | national |