Electronic device comprising a rotatable camera

文档序号:261476 发布日期:2021-11-16 浏览:3次 中文

阅读说明:本技术 包括可旋转相机的电子装置 (Electronic device comprising a rotatable camera ) 是由 韩湧和 刘重根 裵哲晧 赵在旸 千弘纹 于 2020-02-28 设计创作,主要内容包括:提供了一种电子装置。该电子装置包括:外壳;位于外壳中并通过外壳的一部分暴露的显示器;滑动部分,包括暴露于电子装置的外部的开口,并且配置为相对于外壳滑动;相机模块单元,设置在开口处,配置为在开口内旋转,并与滑动部分的操作相关联地旋转;以及滑动运动控制器,配置为实现滑动部分的滑动操作和相机模块单元的旋转操作。(An electronic device is provided. The electronic device includes: a housing; a display located in the housing and exposed through a portion of the housing; a sliding portion including an opening exposed to an outside of the electronic device and configured to slide with respect to the housing; a camera module unit provided at the opening, configured to rotate within the opening, and rotated in association with an operation of the sliding portion; and a sliding motion controller configured to implement a sliding operation of the sliding portion and a rotating operation of the camera module unit.)

1. An electronic device, comprising:

a housing;

a display in the housing and exposed through a portion of the housing;

a sliding portion including an opening exposed to an outside of the electronic device and configured to slide with respect to the housing;

a camera module unit provided at the opening, configured to rotate within the opening, and rotated in association with an operation of the sliding portion; and

a sliding motion controller configured to implement a sliding operation of the sliding portion and a rotating operation of the camera module unit,

wherein the sliding motion controller comprises:

a sliding plate coupled to the sliding portion to slide together with the sliding portion;

a rack transmission rail disposed in a sliding direction of the sliding portion and configured to move a first length together with the sliding portion, and having a gear formed at a first end thereof;

a locking hook protruding from a second end of the rack gear rail so as to intersect with a sliding direction of the rack gear rail; and

a locking guide formed to correspond to a position of the locking hook and coupled to the locking hook.

2. The electronic device of claim 1, wherein the sliding portion further comprises:

a first state in which the camera module unit is positioned to overlap the display;

a second state after moving a first length in a first direction towards any edge of the display in the first state; and

and a third state after moving a second length along the first direction in the second state.

3. The electronic device according to claim 2, wherein when the slide part is moved from the first state to the second state, the slide plate, the rack gear rail, and the lock hook of the slide motion controller move together, and the lock hook and the lock guide are coupled to each other to fix the rack gear rail.

4. The electronic device according to claim 3, wherein when the slide part is moved from the second state to the third state, the slide plate of the slide motion controller moves and the camera module unit rotates.

5. The electronic device according to claim 4, wherein the camera module unit faces a third direction in the first state and the second state, faces a fourth direction in the third state, and rotates toward the fourth direction when switching from the second state to the third state.

6. The electronic device of claim 5, wherein the third and fourth directions are opposite to each other.

7. The electronic device according to claim 2, wherein in the sliding plate, a first guide slit is formed, the first guide slit including a first portion formed at an angle in a width direction of the rack gear transmission rail and a second portion formed in a longitudinal direction of the rack gear transmission rail,

at the second end of the rack gear rail, a second guide slit is formed in a width direction of the rack gear rail, and

in the locking hook, a first protrusion inserted into the first guide slit and the second guide slit to move is formed.

8. The electronic device of claim 7, wherein when the sliding portion moves from the third state to the second state, a second protrusion of the locking hook moves along the second portion of the second guide slit and releases the locking hook from the locking guide.

9. The electronic device of claim 8, wherein the locking guide has a first inclined surface formed to gradually approach the rack gear rail in the first direction.

10. The electronic device of claim 9, wherein the lock guide has a second inclined surface formed to gradually depart from the rack gear rail in the second direction and having a steeper inclination than that of the first-direction inclined surface.

11. The electronic device according to claim 9, wherein in an end of the first direction of the locking hook and an end of the second direction opposite to the first direction, an inclined surface is formed to correspond to an inclined surface of the locking guide.

12. The electronic device according to claim 1, further comprising a slide driving unit configured to provide a driving force to an operation of the slide portion.

13. The electronic device of claim 12, wherein the camera module unit comprises:

a camera housing including at least one camera device; and

a pinion gear formed along a rotational axis of the camera housing and configured to mesh with a gear of the rack gear rail.

14. The electronic device of claim 12, wherein the sliding motion controller further comprises a push rod having a first side fixed to the sliding plate and a second side connected to the camera module unit,

wherein the camera module unit further includes an extension portion protruding from the camera housing and formed in a shaft between the pinions and configured to receive a force to rotate in a rotation hole of the sliding portion when in contact with the push rod, and

wherein the push bar pushes the camera module unit by a second length in moving from the second state to the third state.

15. The electronic device of claim 14, wherein the pinion gear rotates on the gear of the rack gear rail to rotate the camera module unit when the push rod exerts a force on the extended portion.

Technical Field

The present disclosure relates generally to electronic devices, and more particularly, to electronic devices including a rotatable camera.

Background

Recently developed electronic devices perform not only a communication function but also a function as an image capturing device. With the rapid development of hardware performance, the performance of a camera module accommodated in an electronic device is rapidly developing, and the camera module can capture images or videos with high resolution as captured by a professional image capturing device.

Disclosure of Invention

Technical problem

As electronic devices become thinner and the area occupied by displays increases, various studies on efficient spatial arrangement of components (e.g., camera modules) of the electronic devices are actively being conducted.

Solutions to problems

The present disclosure has been made to address at least the above disadvantages and to provide at least the advantages described below.

According to an aspect of the present disclosure, an electronic device is provided. The electronic device includes: a housing; a display located in the housing and exposed through a portion of the housing; a sliding portion including an opening exposed to an outside of the electronic device and configured to slide with respect to the housing; a camera module unit provided at the opening, configured to rotate within the opening, and rotated in association with an operation of the sliding portion; and a sliding motion controller configured to implement a sliding operation of the sliding portion and a rotating operation of the camera module unit. The sliding motion controller includes: a sliding plate coupled to the sliding portion to slide together with the sliding portion; a rack transmission rail disposed in a sliding direction of the sliding portion and configured to move a first length together with the sliding portion, and having a gear formed at a first end thereof; a locking hook protruding from a second end of the rack gear rail so as to intersect with a sliding direction of the rack gear rail; and a locking guide formed to correspond to a position of the locking hook and coupled to the locking hook.

According to an aspect of the present disclosure, an electronic device is provided. The electronic device includes a housing including a first surface facing a first direction and a second surface facing a second direction opposite to the first direction, wherein the first surface includes a first side having a substantially quadrangular shape and extending in a third direction and having a first length and a second side extending in a fourth direction substantially perpendicular to the third direction and having a second length, and the second surface includes a third side having a quadrangular shape having an area smaller than that of the quadrangular shape of the first side and being parallel to the first side and having a first length and a fourth side parallel to the second side and having a third length smaller than the second length. The electronic device includes a display disposed within the housing and visible through the first surface and a camera structure slidable in a fourth direction between a first position and a second position, wherein the camera structure includes a third surface forming a surface extending substantially to the second surface, the third surface including a fifth edge substantially aligned with or adjacent to the first edge and a sixth edge substantially in contact with or adjacent to the third edge when viewed from above the second surface in the first position. The electronic device further includes at least one image sensor facing in the second direction at the first position and rotatable to face in the first direction at the second position, wherein the first edge is located between the third edge and the fifth edge at the second position when viewed from above the second surface. The electronic device further includes: a drive structure disposed inside the housing and configured to move the camera structure in a fourth direction; a first pinion gear coupled to the camera structure while being rotatable along the first path in a fourth direction; a first rack gear part engaged with the pinion gear while extending along a first path; a first shaft coupled to or integrally formed with the first rack gear portion and extending in a fourth direction; and a first hook member connected to the first shaft while being movable in a third direction with respect to the first shaft, wherein the first hook member includes a first structure protruding from a region of the first shaft in the third direction when viewed from the second surface and a second structure protruding in the first direction or the second direction, and a first rail structure coupled to the camera structure and configured to slidably receive the first shaft, wherein the first rail structure includes a first guide structure configured to guide the second structure such that the first hook member moves first in the fourth direction and then moves in the third direction when the camera module moves from the second position to the first position.

Advantageous effects of the invention

The electronic device may maximize the display of the electronic device by allowing one camera module to perform the functions of the front camera and the rear camera.

The lock hook and the lock guide restrict movement of the sliding portion by the physical lock structure, and in switching to the front camera and the rear camera, the sliding portion may be fixed and the module unit may be rotated without interference with a peripheral structure even when an unexpected external force is applied.

Drawings

The above and other aspects, features and advantages of certain embodiments of the present disclosure will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings in which:

fig. 1 is a schematic diagram showing a configuration of an electronic apparatus in a network environment according to an embodiment;

fig. 2A is an exploded perspective view illustrating an electronic device including a rotatable camera according to an embodiment;

fig. 2B is an exploded perspective view illustrating an electronic device including a rotatable camera at a different angle according to an embodiment;

fig. 3A and 3B are views illustrating the sliding motion controller of fig. 2A and 2B according to an embodiment;

fig. 4 is a side view illustrating an upward operation of a camera module unit disclosed according to an embodiment;

fig. 5 is a side view illustrating a downward operation of the camera module unit according to the embodiment;

fig. 6 is a schematic view illustrating a locking guide according to an embodiment;

FIG. 7 is a schematic diagram illustrating a locking hook according to an embodiment;

fig. 8 is a schematic view illustrating an operation of releasing the locking hook and the locking guide in a downward operation of the camera module unit according to the embodiment; and

fig. 9 is a schematic view illustrating a torsion spring for releasing the locking hook and the locking guide according to the embodiment.

Detailed Description

FIG. 1 illustrates an electronic device in a network environment, according to an embodiment.

Referring to fig. 1, an electronic device 101 in a network environment 100 may communicate with an electronic device 102 via a first network 198 (e.g., a short-range wireless communication network) or with an electronic device 104 or a server 108 via a second network 199 (e.g., a long-range wireless communication network). According to an embodiment, the electronic device 101 may communicate with the electronic device 104 via the server 108. According to an embodiment, the electronic device 101 may include a processor 120, a memory 130, an input device 150, a sound output device 155, a display device 160, an audio module 170, a sensor module 176, an interface 177, a haptic module 179, a camera module 180, a power management module 188, a battery 189, a communication module 190, a Subscriber Identity Module (SIM)196, or an antenna module 197. In some embodiments, at least one of the components (e.g., display device 160 or camera module 180) may be omitted from electronic device 101, or one or more other components may be added to electronic device 101. In some embodiments, some of the components may be implemented as a single integrated circuit. For example, the sensor module 176 (e.g., a fingerprint sensor, an iris sensor, or an illuminance sensor) may be implemented to be embedded in the display device 160 (e.g., a display).

The processor 120 may run, for example, software (e.g., the program 140) to control at least one other component (e.g., a hardware component or a software component) of the electronic device 101 connected to the processor 120, and may perform various data processing or calculations. According to one embodiment, as at least part of the data processing or calculation, processor 120 may load commands or data received from another component (e.g., sensor module 176 or communication module 190) into volatile memory 132, process the commands or data stored in volatile memory 132, and store the resulting data in non-volatile memory 134. According to an embodiment, the processor 120 may include a main processor 121 (e.g., a Central Processing Unit (CPU) or an Application Processor (AP)) and an auxiliary processor 123 (e.g., a Graphics Processing Unit (GPU), an Image Signal Processor (ISP), a sensor hub processor, or a Communication Processor (CP)) that is operatively independent of or in conjunction with the main processor 121. Additionally or alternatively, the auxiliary processor 123 may be adapted to consume less power than the main processor 121, or be adapted specifically for a specified function. The auxiliary processor 123 may be implemented separately from the main processor 121 or as part of the main processor 121.

The auxiliary processor 123 may control at least some of the functions or states associated with at least one of the components of the electronic device 101 (e.g., the display device 160, the sensor module 176, or the communication module 190) when the main processor 121 is in an inactive (e.g., sleep) state, or the auxiliary processor 123 may control at least some of the functions or states associated with at least one of the components of the electronic device 101 (e.g., the display device 160, the sensor module 176, or the communication module 190) with the main processor 121 when the main processor 121 is in an active state (e.g., running an application). According to an embodiment, the auxiliary processor 123 (e.g., an image signal processor or a communication processor) may be implemented as part of another component (e.g., the camera module 180 or the communication module 190) that is functionally related to the auxiliary processor 123.

The memory 130 may store various data used by at least one component of the electronic device 101 (e.g., the processor 120 or the sensor module 176). The various data may include, for example, software (e.g., program 140) and input data or output data for commands associated therewith. The memory 130 may include volatile memory 132 or non-volatile memory 134.

The program 140 may be stored in the memory 130 as software, and the program 140 may include, for example, an Operating System (OS)142, middleware 144, or an application 146.

The input device 150 may receive commands or data from outside of the electronic device 101 (e.g., a user) to be used by other components of the electronic device 101, such as the processor 120. The input device 150 may include, for example, a microphone, a mouse, or a keyboard.

The sound output device 155 may output a sound signal to the outside of the electronic device 101. The sound output device 155 may include, for example, a speaker or a receiver. The speaker may be used for general purposes such as playing multimedia or playing a record and the receiver may be used for incoming calls. Depending on the embodiment, the receiver may be implemented separate from the speaker, or as part of the speaker.

Display device 160 may visually provide information to the exterior of electronic device 101 (e.g., a user). The display device 160 may include, for example, a display, a holographic device, or a projector, and control circuitry for controlling a respective one of the display, holographic device, and projector. According to embodiments, the display device 160 may include touch circuitry adapted to detect a touch or sensor circuitry (e.g., a pressure sensor) adapted to measure the intensity of a force caused by a touch.

The audio module 170 may convert sound into an electrical signal and vice versa. According to embodiments, the audio module 170 may obtain sound via the input device 150 or output sound via the sound output device 155 or a headset of an external electronic device (e.g., the electronic device 102) directly (e.g., wired) connected or wirelessly connected with the electronic device 101.

The sensor module 176 may detect an operating state (e.g., power or temperature) of the electronic device 101 or an environmental state (e.g., state of a user) external to the electronic device 101 and then generate an electrical signal or data value corresponding to the detected state. According to an embodiment, the sensor module 176 may include, for example, a gesture sensor, a gyroscope sensor, an atmospheric pressure sensor, a magnetic sensor, an acceleration sensor, a grip sensor, a proximity sensor, a color sensor, an Infrared (IR) sensor, a biometric sensor, a temperature sensor, a humidity sensor, or an illuminance sensor.

The interface 177 may support one or more particular protocols to be used to directly (e.g., wired) or wirelessly connect the electronic device 101 with an external electronic device (e.g., the electronic device 102). According to an embodiment, the interface 177 may include, for example, a high-definition multimedia interface (HDMI), a Universal Serial Bus (USB) interface, a Secure Digital (SD) card interface, or an audio interface.

The connection end 178 may include a connector via which the electronic device 101 may be physically connected with an external electronic device (e.g., the electronic device 102). According to an embodiment, the connection end 178 may include, for example, an HDMI connector, a USB connector, an SD card connector, or an audio connector (e.g., a headphone connector).

The haptic module 179 may convert the electrical signal into a mechanical stimulus (e.g., vibration or motion) or an electrical stimulus that may be recognized by the user via its tactile or kinesthetic senses. According to an embodiment, the haptic module 179 may include, for example, a motor, a piezoelectric element, or an electrical stimulator.

The camera module 180 may capture still images or moving images. According to an embodiment, the camera module 180 may include one or more lenses, an image sensor, an image signal processor, or a flash.

The power management module 188 may manage power to the electronic device 101. According to an embodiment, the power management module 188 may be implemented as at least part of a Power Management Integrated Circuit (PMIC), for example.

The battery 189 may power at least one component of the electronic device 101. According to an embodiment, the battery 189 may include, for example, a non-rechargeable primary cell, a rechargeable secondary cell, or a fuel cell.

The communication module 190 may support establishing a direct (e.g., wired) communication channel or a wireless communication channel between the electronic device 101 and an external electronic device (e.g., the electronic device 102, the electronic device 104, or the server 108), and performing communication via the established communication channel. The communication module 190 may include one or more communication processors capable of operating independently of the processor 120 (e.g., an Application Processor (AP)) and supporting direct (e.g., wired) communication or wireless communication. According to an embodiment, the communication module 190 may include a wireless communication module 192 (e.g., a cellular communication module, a short-range wireless communication module, or a Global Navigation Satellite System (GNSS) communication module) or a wired communication module 194 (e.g., a Local Area Network (LAN) communication module or a Power Line Communication (PLC) module). A respective one of these communication modules may communicate with external electronic devices via a first network 198 (e.g., a short-range communication network such as bluetooth, wireless fidelity (Wi-Fi) direct, or infrared data association (IrDA)) or a second network 199 (e.g., a long-range communication network such as a cellular network, the internet, or a computer network (e.g., a LAN or Wide Area Network (WAN))). These various types of communication modules may be implemented as a single component (e.g., a single chip), or may be implemented as multiple components (e.g., multiple chips) that are separate from one another. The wireless communication module 192 may identify and authenticate the electronic device 101 in a communication network, such as the first network 198 or the second network 199, using subscriber information, such as an International Mobile Subscriber Identity (IMSI), stored in the subscriber identity module 196.

The antenna module 197 may transmit signals or power to or receive signals or power from outside of the electronic device 101 (e.g., an external electronic device). According to an embodiment, the antenna module 197 may include one or more antennas and, thus, at least one antenna suitable for a communication scheme used in a communication network, such as the first network 198 or the second network 199, may be selected by, for example, the communication module 190 (e.g., the wireless communication module 192). Signals or power may then be transmitted or received between the communication module 190 and the external electronic device via the selected at least one antenna.

At least some of the above components may be interconnected and communicate signals (e.g., commands or data) communicatively between them via an inter-peripheral communication scheme (e.g., bus, General Purpose Input Output (GPIO), Serial Peripheral Interface (SPI), or Mobile Industry Processor Interface (MIPI)).

According to an embodiment, commands or data may be sent or received between the electronic device 101 and the external electronic device 104 via the server 108 connected with the second network 199. Each of the electronic device 102 and the electronic device 104 may be the same type of device as the electronic device 101 or a different type of device from the electronic device 101. According to embodiments, all or some of the operations to be performed at the electronic device 101 may be performed at one or more of the external electronic device 102, the external electronic device 104, or the server 108. For example, if the electronic device 101 should automatically perform a function or service or should perform a function or service in response to a request from a user or another device, the electronic device 101 may request the one or more external electronic devices to perform at least part of the function or service instead of or in addition to performing the function or service. The one or more external electronic devices that received the request may perform the requested at least part of the functions or services or perform another function or another service related to the request and transmit the result of the execution to the electronic device 101. The electronic device 101 may provide the result as at least a partial reply to the request with or without further processing of the result. To this end, for example, cloud computing technology, distributed computing technology, or client-server computing technology may be used.

The electronic device according to various embodiments may be one of various types of electronic devices. The electronic device may comprise, for example, a portable communication device (e.g., a smartphone), a computer device, a portable multimedia device, a portable medical device, a camera, a wearable device, or a home appliance. According to the embodiments of the present disclosure, the electronic devices are not limited to those described above.

It should be understood that the various embodiments of the present disclosure and the terms used therein are not intended to limit the technical features set forth herein to specific embodiments, but include various changes, equivalents, or alternatives to the respective embodiments. For the description of the figures, like reference numerals may be used to refer to like or related elements. It will be understood that a noun in the singular corresponding to a term may include one or more things unless the relevant context clearly dictates otherwise. As used herein, each of the phrases such as "a or B," "at least one of a and B," "at least one of a or B," "A, B or C," "at least one of A, B and C," and "at least one of A, B or C" may include all possible combinations of the items listed together with the respective one of the plurality of phrases. As used herein, terms such as "1 st" and "2 nd" or "first" and "second" may be used to distinguish one element from another element simply and not to limit the elements in other respects (e.g., importance or order). It will be understood that, if an element (e.g., a first element) is referred to as being "coupled to", "connected to" or "connected to" another element (e.g., a second element), it can be directly (e.g., wiredly) connected to, wirelessly connected to, or connected to the other element via a third element, when the term "operatively" or "communicatively" is used or not.

As used herein, the term "module" may include units implemented in hardware, software, or firmware, and may be used interchangeably with other terms (e.g., "logic," "logic block," "portion," or "circuitry"). A module may be a single integrated component adapted to perform one or more functions or a minimal unit or portion of the single integrated component. For example, according to an embodiment, the modules may be implemented in the form of Application Specific Integrated Circuits (ASICs).

The various embodiments set forth herein may be implemented as software (e.g., program 140) comprising one or more instructions stored in a storage medium (e.g., internal memory 136 or external memory 138) that is readable by a machine (e.g., electronic device 101). For example, under control of a processor, a processor (e.g., processor 120) of the machine (e.g., electronic device 101) may invoke and execute at least one of the one or more instructions stored in the storage medium, with or without the use of one or more other components. This enables the machine to be operable to perform at least one function in accordance with the invoked at least one instruction. The one or more instructions may include code generated by a compiler or code capable of being executed by an interpreter. The machine-readable storage medium may be provided in the form of a non-transitory storage medium. Where the term "non-transitory" simply means that the storage medium is a tangible device and does not include a signal (e.g., an electromagnetic wave), the term does not distinguish between data being semi-permanently stored in the storage medium and data being temporarily stored in the storage medium.

According to embodiments, methods according to various embodiments of the present disclosure may be included and provided in a computer program product. The computer program product may be used as a product for conducting a transaction between a seller and a buyer. The computer program product may be distributed in the form of a machine-readable storage medium (e.g., compact disc read only memory (CD-ROM)), or may be distributed via an application Store (e.g., Play Store)TM) The computer program product is published (e.g. downloaded or uploaded) online, or may be distributed (e.g. downloaded or uploaded) directly between two user devices (e.g. smartphones). At least part of the computer program product may be temporarily generated if it is published online, or at least part of the computer program product may be at least temporarily stored in a machine readable storage medium, such as a memory of a manufacturer's server, a server of an application store, or a forwarding server.

According to various embodiments, each of the above components (e.g., modules or programs) may comprise a single entity or multiple entities. According to various embodiments, one or more of the above-described components may be omitted, or one or more other components may be added. Alternatively or additionally, multiple components (e.g., modules or programs) may be integrated into a single component. In such a case, according to various embodiments, the integrated component may still perform one or more functions of each of the plurality of components in the same or similar manner as the corresponding one of the plurality of components performed the one or more functions prior to integration. Operations performed by a module, program, or another component may be performed sequentially, in parallel, repeatedly, or in a heuristic manner, or one or more of the operations may be performed in a different order or omitted, or one or more other operations may be added, in accordance with various embodiments.

Fig. 2A is a schematic diagram of an electronic device including a rotatable camera, according to an embodiment. Fig. 2B is a schematic diagram of an electronic device including a rotatable camera at different angles, according to an embodiment. Fig. 3A and 3B are schematic diagrams illustrating the sliding motion controller of fig. 2A and 2B according to an embodiment.

In describing the electronic device 200, the same or similar reference numbers may be used for the same or similar elements. In describing the electronic device 200, the first direction may refer to the-y direction and the second direction may refer to the y direction. In other words, the first direction is a direction toward the upper end of the electronic device 200 (e.g., -y direction), and the upper end of the electronic device 200 may refer to the upper left end of the electronic device 200 based on the illustrated state of fig. 2A. The second direction is a direction toward a lower end of the electronic device 200 (e.g., y-direction), and the lower end of the electronic device 200 may refer to a lower right end based on the illustrated state of fig. 2A. The third direction is a z direction or a direction toward the rear surface of the electronic device 200 and may refer to a direction toward the upper side based on the illustrated state of fig. 2A, and the fourth direction is a-z direction or a direction toward the front surface of the electronic device 200 and may refer to a direction toward the lower side based on the illustrated state of fig. 2A. The lateral direction is a left-right direction (e.g., x-axis direction) of the electronic device 200, and may refer to a lower-left direction or an upper-right direction based on the illustrated state of fig. 2A.

Referring to fig. 2A and 3B, the electronic device 200 may include a camera module unit 210, a sliding motion controller 220, a sliding portion 230, a sliding driver, a screen unit 240, and a rear cover 250. Further, the electronic device 200 may include one or more other components.

The electronic device 200 may include a housing 250 including a camera module unit 210, a sliding motion controller 220, a sliding portion 230, a sliding driver (not shown), a screen unit 240, and a rear cover 250. The housing may refer to a structure for protecting various electronic components forming the external shape of the electronic device 200 and mounted in the electronic device 200. Alternatively, the housing may comprise the internal structure of the electronic device 200.

The camera module unit 210 may include at least one camera device 216, a flash 217, or a sensor module 218. The camera module unit 210 may include the camera module 180 of fig. 1. The at least one camera device 216 may include one or more lenses, an image sensor, and/or an ISP. The flash lamp 217 may include a light emitting diode or a xenon lamp. The sensor module 218 may generate an electrical signal or data value corresponding to an operating state inside the electronic device 200 or an external environmental state thereof. The sensor module 218 may include a proximity sensor, an illumination sensor, and a Heart Rate Monitoring (HRM) sensor.

The electronic device 200 may further include at least one of a sensor module (not shown) such as a gesture sensor, a gyroscope sensor, an atmospheric pressure sensor, a magnetic sensor, an acceleration sensor, a grip sensor, a color sensor, an Infrared (IR) sensor, a biometric sensor, a temperature sensor, a humidity sensor, or a fingerprint sensor.

The camera module unit 210 may include a camera housing 211 including at least one camera device 216, a flash 217, or a sensor module 218. The camera housing 211 may include a pinion gear 213 in at least one side surface thereof. The pinion gears 213 may be symmetrically disposed at both sides of the camera housing 211. The extension 215 may be disposed between the camera housing 211 and the pinion gear 213. The extension 215 and the pinion 213 may be integrally formed with the camera housing 211.

The sliding motion controller 220 may include a sliding plate 221, a rack gear drive rail 222, a locking hook 226, a locking guide 243, a hook cover 227, and/or a push rod 228. The rack gear rail 222, the locking hook 226, the locking guide 243, the hook cover 227, and/or the push rod 228 may be symmetrically disposed at both sides based on the camera module unit 210.

The sliding plate 221 may be coupled to the sliding portion 230 to slide together and provide a space in which the rack gear rail 222 and the push rod 228 are disposed. At an end of the sliding plate 221 in the first direction, a push rod 228 may be provided, and at an end thereof in the second direction, a first guide slit 224 may be provided. The push rod 228 may transmit force to the camera module unit 210 during the sliding of the sliding portion 230. The first guide slit 224 may include a first portion 224a (see fig. 3A) and a second portion 224b (see fig. 3A). The first portion 224a may be formed at an angle to a width direction of the rack gear rail 222 (e.g., a lateral direction of the electronic device, x-direction) and away from (reche) the locking guide 243, and the second portion 224b may be connected to the first portion 224a and extend in a longitudinal direction of the rack gear rail 222 (e.g., y-axis direction). The first guide slit 224 may guide a moving direction of a first protrusion 226a of a locking hook 226, which will be described later, to release a contact state between the locking hook 226 and the locking guide 243.

The rack drive rail 222 may be disposed in a direction (e.g., -y direction or first direction) along which the sliding portion 230 slides. At one end (e.g., of the first direction or the-y direction) of the rack gear rail 222, a gear 223 may be formed, and at the other end (e.g., of the second direction or the y direction) of the rack gear rail 222, a second guide slit 225 may be formed. The gear 223 of the rack gear rail 222 may be engaged with the pinion gear 213 of the camera module unit 210 to convert the force received through the push rod 228 into a rotational force, thereby rotating the camera module unit 210. The angle at which the camera module unit 210 rotates may be adjusted according to the length of the rack gear rail 222 or the number of gears. The second guide slit 225 is formed in the width direction of the rack gear rail 222 (e.g., the lateral direction and the x-axis direction of the electronic device); accordingly, the second guide slit 225 may guide the locking hook 226 protruding in the-x direction to return in the x direction.

A locking hook 226 may be provided at the other end of rack drive rail 222. The locking hooks 226 may be provided to protrude in a direction crossing a direction (e.g., y-axis direction) along which the rack gear rail 222 slides. The locking hook 226 may be disposed on the same plane (e.g., xy plane) as that of the locking guide 243. When the locking hook 226 protrudes, the locking hook 226 may be coupled to the locking guide 243 to prevent the rack gear rail 222 from moving in the second direction. The coupling of the locking hook 226 and the locking guide 243 is not limited to the coupling using a physical coupling by fitting or latching or the coupling using an attractive force by an electromagnetic force. The coupling of the locking hook 226 and the locking guide 243 may refer to a state in which the movement of the rack gear transmission rail 222 is blocked by the interference between the locking hook 226 and the locking guide 243 when the locking guide 243 is located on the movement path of the rack gear transmission rail 222 including the locking hook 226.

Hook cover 227 may cover locking hook 226 and be coupled to the other end of rack gear rail 222. In the hook cover 227, third cover slits 227a may be formed in the same direction to correspond to the positions of the second guide slits 225. Hook cover 227 can guide locking hook 226 to protrude and smoothly return while preventing locking hook 226 from being separated from rack gear rail 222.

The locking guide 243 may be disposed on the same plane (e.g., xy plane) as that of the locking hook 226. At a portion contacting with the locking hook 226, an inclined surface may be formed, and the first inclined surface 243a in the y-direction may be formed more smoothly than the second inclined surface 243b in the-y-direction. When the rack gear rail 222 slides in a first direction (e.g., -y direction), the rack gear rail 222 may contact the first inclined surface 243a to move without much resistance, but when the rack gear rail 222 moves in a second direction (e.g., y direction), the rack gear rail 222 may contact the second inclined surface 243b (see fig. 4) having a steep inclination to receive a large resistance to the sliding movement of the rack gear rail 222. Therefore, the rack gear rail 222 can move in the second direction only when the contact state between the lock hook 226 and the lock guide 243 is first released. A method of releasing the locking hook 226 and the locking guide 243 during the sliding of the rack gear rail 222 in the second direction will be described later with reference to fig. 8.

The sliding portion 230 may include an opening 231. At an end of the sliding portion 230 in the first direction (e.g.,. The opening 231 may be formed to correspond to the size of the camera module unit 210, but it may be formed with a predetermined gap so as to minimize any friction during rotation of the camera module unit 210. The camera module unit 210 may be disposed in the opening 231. The camera module unit 210 according to the embodiment may rotate in the opening 231 using the pinion gear 213 as its axis.

When the sliding part 230 and the sliding motion controller 220 are moved in the first direction (e.g., -y direction) or the second direction (e.g., y direction), a sliding driving unit (not shown) may provide a necessary driving force. The slide driving unit may use a motor, a worm and a worm wheel and use an actuator performing a linear motion; and any power source capable of providing a driving force for driving the sliding portion 230 may be freely applied to the sliding driving unit.

The screen unit 240 may include a display 241 (e.g., the display device 160 of fig. 1). The display 241 may be coupled to or disposed adjacent to the touch detection circuitry, the pressure sensor capable of measuring the intensity (pressure) of the touch, and/or the digitizer for detecting the magnetic field stylus. Since no camera is provided at the screen unit 240, the display 241 may be implemented in the maximum area at the front surface of the electronic device 200.

The rear cover 250 may cover a portion of the sliding portion 230. The opening 231 may be formed at an upper end of the sliding portion 230 in the-y direction that is not covered by the back cover 250. The sliding portion 230 may perform a sliding motion between the screen unit 240 and the rear cover 250. The back cover 250 may be formed of coated or colored glass, ceramic, polymer, metal (e.g., aluminum, stainless steel (STS), or magnesium), or a combination of at least two of the above materials.

Fig. 4 is a schematic diagram of an upward operation of a camera module unit according to an embodiment.

Referring to fig. 4, the camera module unit 210 may perform an upward motion and/or a rotational motion based on a user input (e.g., a front side photographing conversion input or a front side photographing application execution). As the camera module unit 210 rotates, at least one camera included in the camera module unit 210 may be used as a front camera (e.g., a self-timer camera).

In the state 401, the camera included in the camera module unit 210 may face the rear surface of the electronic device 200 (e.g., the third direction, the first state). In this case, the camera included in the camera module unit 210 may be used as a rear camera. This state may be referred to as a first state.

In state 402, the camera module unit 210, the rack gear rail 222, and the sliding portion 230 may perform an upward movement based on a user input. The camera module unit 210, the rack gear rail 222, and the sliding portion 230 may move by a first length H1. In state 402, rack drive rail 222 may be secured by locking hook 226 and locking guide 243. This state may be referred to as a second state.

In states 403, 404, and 405, the camera module unit 210 may perform an upward movement and a rotational movement. In states 403, 404, and 405, the rack gear rail 222 may be fixed by the locking hook 226 and the locking guide 243, and only the camera module unit 210 and the sliding portion 230 may move upward. The camera module unit 210 and the sliding part 230 may be moved upward by a second length H2. Pinion gear 213 is rotatable in meshing engagement with rack drive rail 222. Accordingly, the camera module unit 210 may be rotationally moved. In the state 405, the camera included in the camera module unit 210 may face the front surface of the electronic device 200 (e.g., the fourth direction and the third state). In this case, the camera included in the camera module unit 210 may be used as a front camera. This state may be referred to as a third state.

Fig. 5 is a schematic view of a downward operation of a camera module unit according to an embodiment.

Referring to fig. 5, the camera module unit 210 may perform a downward operation or a rotation operation based on a user input (e.g., a rear side photographing conversion input or a photographing end input). As the camera module unit 210 rotates, at least one camera included in the camera module unit 210 may be used as a rear camera.

In the state 501, the camera included in the camera module unit 210 may face the front surface of the electronic device 200 (e.g., the fourth direction and the third state). The camera included in the camera module unit 210 may face the front surface of the electronic apparatus 200 through a previously input user input (e.g., a front side photographing conversion input or a front side photographing application execution).

In states 501, 502, and 503, the camera module unit 210 may perform a downward movement and/or a rotational movement. In the states 501, 502, and 503, a state in which the rack gear rail 222 is fixed by the locking hook 226 and the locking guide 243 may be maintained, and only the camera module unit 210 and the sliding part 230 may be moved downward. The camera module unit 210 and the sliding part 230 may be moved downward by a second length H2. Pinion gear 213 is rotatable in meshing engagement with rack drive rail 222. Accordingly, the camera module unit 210 may be rotationally moved. During this process, an undesirable external force may be applied to the sliding portion 230, and the force may be transmitted to the rack gear rail 222; therefore, when the rack gear rail 222 moves downward, the camera module unit 210 may be damaged while interfering with the screen unit 240 during the rotation thereof. As shown in fig. 5, in the locking hook 226 and the locking guide 243, in a state where the locking hook 226 protrudes, the movement of the locking guide 243 is physically restricted in the second direction according to interference, and in states 501, 502, and 503, the rack gear rail 222 may be prevented from moving downward. In other words, in the state 504 in which the rotation of the camera module unit 210 is completed via the states 501, 502, and 503, the slide part 230 may be moved downward.

In state 504, the camera included in the camera module unit 210 may face the rear surface of the electronic device 200 (e.g., the third direction and the second state). In state 504, the camera module unit 210, the rack gear rail 222, and the sliding portion 230 may perform a downward movement together. In this case, the contact state between the locking hook 226 and the locking guide 243 may be released. The camera module unit 210, the rack gear rail 222, and the sliding portion 230 may move by a first length H1. In state 505, the camera module unit 210 may return to the original position (e.g., state 401).

Fig. 6 is a schematic view of a locking guide according to an embodiment. Fig. 7 is a schematic view of a locking hook according to an embodiment.

Referring to fig. 6 and 7, the locking hook 226 and the locking guide 243 may protrude toward each other on the same plane (e.g., xy plane) to be disposed to face each other. On the right side (e.g., y direction) of the locking guide 243, the first inclined surface 243a may be formed based on the illustrated state of fig. 6 or 7, and on the left side of the locking guide 243, the second inclined surface 243b may be formed. The first inclined surface 243a may be formed to be smoother than the second inclined surface 243 b. Fig. 7 illustrates a state (state 402 of fig. 4) in which the rack gear rail 222 moves by a first length H1 (see fig. 4) together with the slide part 230 to be fixed by the locking hook 226 and the locking guide 243, or a state (states 501 to 503 of fig. 5) in which the camera module unit 210 rotates before the slide part 230 returns to the original state. In this state, as shown in fig. 7, the inclined surface 226c of the lock hook 226 may contact the second inclined surface 243b of the lock guide 243 having a steep inclination to provide a large resistance to the sliding movement of the rack gear rail 222. Therefore, when the contact state of the locking hook 226 and the locking guide 243 is first released, the rack gear rail 222 may smoothly slide in the second direction.

Referring to fig. 7, at an end of the locking hook 226 in the y direction, an inclined surface 226c may be formed. In the inclined surface 226c, a process in which the locking hook 226 slides together with the rack transmission rail 222 and contacts the first inclined surface 243a or the second inclined surface 243b of the locking guide 243 to be coupled to or released from the first inclined surface 243a or the second inclined surface 243b may be smoothly performed.

In the locking hook 226, a first protrusion 226a and a second protrusion 226b may be formed. The first protrusion 226a may protrude toward a front surface (e.g.,. In other words, the first protrusion 226a may move in the y-axis direction along the second portion 224b of the first guide slit 224 and move in the x-axis direction along the second guide slit 225 and the first portion 224a of the first guide slit 224. The second protrusion 226b may protrude toward a rear surface (e.g., z direction) of the electronic device 200, which is a direction opposite to that of the first protrusion 226a, and be inserted into the third guide slit 227a (see fig. 8) to guide smooth protrusion and return of the locking hook 226. The third protrusion 226d may protrude in the same direction as the second protrusion 226b and be inserted into a fourth guide slit 227b (see fig. 3A) formed in parallel with the third guide slit 227 a. The locking hook 226 can be prevented from rotating about the second protrusion 226b during the protrusion and return.

Fig. 8 is a schematic diagram of an operation of releasing the locking hook and the locking guide in a downward operation of the camera module unit according to the embodiment. States 801 to 806 are illustrated by subdividing the movement of the locking hook 226 and the locking guide 243 in states 501 to 504 of fig. 5.

Referring to state 801 of FIG. 8, 801-B is a schematic diagram showing 801-a viewed in direction A, and 801-c is a schematic diagram showing 801-a viewed in direction B. The up-down direction based on the illustrated state of 801-a may be a direction in which the lower side faces the front surface of the electronic device in the z-axis direction (e.g., -z direction), the left-right direction based on the illustrated states of 801-b and 801-c may represent the x-axis direction, and the up-down direction may represent the y-axis direction.

Referring to 801-c of state 801 of fig. 8, first guide slit 224 may include a first portion 224a and a second portion 224 b. The first portion 224a may be formed at an angle to a width direction (e.g., x-axis direction) of the rack gear rail 222 and away from the locking guide 243. The second portion 224b may be connected to the first portion 224a and extend in a longitudinal direction (e.g., y-axis direction) of the rack drive rail 222. The coupling and release of the locking hook 226 and the locking guide 243 may be accomplished by the first portion 224a of the first guide slit 224. The length of the first guide slit 224 in the y-axis direction may correspond to the second length H2.

When the camera module is rotated toward the rear surface of the electronic device, the first protrusion 226a of the locking hook 226 moves only in the second portion 224b of the first guide slit 224 in the states 801-a, 801-b, 801-c, 802-a, 802-b, 802-c, 803-a, 803-b, and 803-c in which the amount of rotation is large. Accordingly, a state in which the locking hook 226 and the locking guide 243 are coupled to each other may be maintained.

In states 804-a, 804-b, and 804-c, the release of the contact state of the locking hook 226 and the locking guide 243 may be started at a point of time when the first hook 226a of the locking hook 226 starts to enter the first portion 224a of the first guide slit 224.

In states 805-a, 805-b, and 805-c, when first projection 226a moves in first portion 224a of first guide slot 224, first projection 226a of locking hook 226 moves in a direction in which locking hook 226 moves away from the guide slot (e.g., locking hook 226 may return toward rack drive rail 222 and move in the x-direction). Accordingly, the release of the contact state between the locking hook 226 and the locking guide 243 can be started.

In the states 806-a, 806-b, and 806-c, the movement of the first protrusion 226a of the locking hook 226 is completed within the first portion 224a of the first guide slit 224, and the contact state of the locking hook 226 and the locking guide 243 may be completely released. Therefore, the sliding portion 230 can move freely as much as the first length H1 from the state 504 to the state 505 of fig. 5.

Fig. 9 is a schematic view of a torsion spring for releasing a lock hook and a lock guide according to an embodiment.

In fig. 8, the contact state between the locking hook 226 and the locking guide 243 is gradually released by the first portion 224a of the first guide slit 224 being formed at an angle. However, fig. 9 differs in the following respects: the contact state of the locking hook 226 and the locking guide 243 is instantaneously released by the elastic force of the torsion spring 229.

By quickly changing the states 805 and 806 to approach a state 806 where the rotation of the camera module unit 210 is almost completed, the lock hook 226 and the lock guide 243 can be released. Thus, the sliding portion 230 may be fixed until immediately before the rotation of the camera module unit 210 is completed.

According to an embodiment, an electronic device may include: a housing; a display located in the housing and exposed through a portion of the housing; a sliding portion including an opening exposed to an outside of the electronic device and configured to slide with respect to the housing; a camera module unit provided at the opening, configured to rotate within the opening, and rotated in association with an operation of the sliding portion; and a sliding motion controller configured to implement a sliding operation of the sliding portion and a rotating operation of the camera module unit. The sliding motion controller includes: a sliding plate coupled to the sliding portion to slide together with the sliding portion; a rack transmission rail disposed in a sliding direction of the sliding portion and configured to move a first length together with the sliding portion and having a gear formed at a first end thereof; a locking hook protruding from a second end of the rack gear rail so as to intersect with a sliding direction of the rack gear rail; and a locking guide formed to correspond to a position of the locking hook and coupled to the locking hook.

The sliding part may include: a first state in which the camera module unit is positioned to overlap the display; a second state after moving a first length in a first direction towards any edge of the display in the first state; and a third state after moving the second length in the first direction in the second state.

When the sliding portion is moved from the first state to the second state, the sliding plate, the rack gear transmission rail, and the locking hook of the sliding motion controller may be moved together, and the locking hook and the locking guide may be coupled to each other to fix the rack gear transmission rail.

When the sliding portion is moved from the second state to the third state, the sliding plate of the sliding motion controller may be moved and the camera module unit may be rotated.

The camera module unit may face a third direction in the first state and the second state, face a fourth direction in the third state, and rotate toward a fourth direction different from the third direction when switching from the second state to the third state.

The third and fourth directions may be opposite to each other.

In the sliding plate, a first guide slit may be formed, the first guide slit including a first portion formed at an angle in a width direction of the rack gear rail and a second portion formed in a longitudinal direction of the rack gear rail, a second guide slit may be formed in the width direction of the rack gear rail at the other end of the rack gear rail, and a first protrusion inserted into the first guide slit and the second guide slit to move may be formed in the locking hook.

When the sliding portion moves from the third state to the second state, the second protrusion of the locking hook may move along the second portion of the second guide slit and release the locking hook from the locking guide.

The locking guide may have a first inclined surface formed to gradually approach the rack gear rail in the first direction.

The lock guide may have a second inclined surface formed to gradually depart from the rack gear rail in the second direction and having a steeper inclination than that of the inclined surface in the first direction.

In an end of the locking hook in a first direction and an end of the locking hook in a second direction opposite to the first direction, the inclined surface may be formed to correspond to the inclined surface of the locking guide.

The electronic device may further include a slide driving unit configured to provide a driving force to the operation of the sliding portion.

The camera module unit may include: a camera housing including at least one camera device; and a pinion gear formed along a rotation axis of the camera housing and configured to mesh with the gear of the rack gear rail.

The sliding motion controller may further include a push rod having a first side fixed to the sliding plate and another side connected to the camera module unit, wherein the camera module unit may further include an extension portion protruding from the camera housing and formed in a shaft between the pinions and configured to receive a force to rotate in a rotation hole of the sliding portion when in contact with the push rod, and wherein the push rod may push the camera module unit by a second length in a process of moving from the second state to the third state.

When the push rod exerts a force on the extended portion, the pinion gear may rotate on the gear of the rack gear rail to rotate the camera module unit.

According to an embodiment, an electronic device may include a housing including a first surface facing a first direction and a second surface facing a second direction opposite to the first direction, wherein the first surface includes a first side having a substantially quadrangular shape and extending in a third direction and having a first length and a second side extending in a fourth direction substantially perpendicular to the third direction and having a second length, and the second surface includes a third side having a quadrangular shape having an area smaller than that of the quadrangular shape of the first side and being parallel to the first side and having the first length and a fourth side parallel to the second side and having a third length smaller than the second length. The electronic device includes a display disposed within the housing and visible through the first surface and a camera structure slidable in a fourth direction between a first position and a second position, wherein the camera structure includes a third surface forming a surface extending substantially to the second surface, the third surface including a fifth edge substantially aligned with or adjacent to the first edge and a sixth edge substantially in contact with or adjacent to the third edge when viewed from above the second surface in the first position. The electronic device further includes at least one image sensor facing in the second direction at the first position and rotatable to face in the first direction at the second position, wherein the first edge is located between the third edge and the fifth edge at the second position when viewed from above the second surface. The electronic device further includes: a drive structure disposed inside the housing and configured to move the camera structure in a fourth direction; a first pinion gear coupled to the camera structure while being rotatable along the first path in a fourth direction; a first rack gear portion that engages with the pinion gear while extending along a first path; a first shaft coupled to or integrally formed with the first rack gear portion and extending in a fourth direction; and a first hook member, wherein the first hook member includes a first structure protruding from a region of the first shaft in a third direction and a second structure protruding in the first direction or the second direction when viewed from the second surface, and a first rail structure coupled to the camera structure and configured to slidably receive the first shaft, wherein the first rail structure includes a first guide structure configured to guide the second structure such that the first hook member first moves in the fourth direction and then moves in the third direction when the camera module moves from the second position to the first position.

The screen unit may be a concept that collectively refers to both the first surface and the display. The third surface is a portion corresponding to an area difference between the sliding portion and the rear cover and may correspond to the opening region. The rack gear rail may be a concept including both the first rack gear portion and the first shaft.

The electronic device may further include a first stopper contacting the first structure at the second position, and when the camera structure moves from the second position to the first position, the first structure may be first stopped by the first stopper while the first rail structure moves in the y-axis direction, and the first structure may move in the x-axis direction while the first rail structure further moves in the y-axis direction.

The first hook member may further include a third structure protruding in an opposite direction from the second structure, and when the camera structure is further moved from the second position to the first position, the first shaft may contact the first stopper and thus may include a second guide structure for guiding the third structure such that the first hook member is moved in the x-axis direction with respect to the first shaft.

The first guide structure may include a first opening including a first portion extending in the y-axis direction and a second portion extending in a direction forming an acute angle with the y-axis direction, and the second structure may be movable within the first opening.

The second guide structure may include a second opening extending in the x-axis direction, and the third structure may be movable in the second opening.

The second length may be longer than the first length.

While the disclosure has been shown and described with reference to certain embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the disclosure. Therefore, the scope of the present disclosure should not be defined as limited to the embodiments, but should be defined by the appended claims and equivalents thereof.

27页详细技术资料下载
上一篇:一种医用注射器针头装配设备
下一篇:智能手机中的内容提供系统以及方法

网友询问留言

已有0条留言

还没有人留言评论。精彩留言会获得点赞!

精彩留言,会给你点赞!

技术分类