electronic devices
By designing movable structural components and reset devices on the server, the problem of easy dust accumulation on the labels was solved, enabling convenient viewing of the labels and dust protection, thereby improving user experience and equipment reliability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUMA TECH CO LTD
- Filing Date
- 2025-09-22
- Publication Date
- 2026-07-31
AI Technical Summary
Server labels are prone to accumulating dust, making information identification difficult and resulting in a poor user experience.
Design a movable structural component and a reset device. The reset elastic component enables flexible switching of the label component, avoiding long-term exposure to the outside. Combined with a telescopic device, the moving speed and friction are controlled to ensure smooth operation.
This improves the lifespan of tags and enhances user experience, extending the lifespan of tags and ensuring the reliability and operational safety of electronic devices.
Smart Images

Figure CN224581847U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of server technology, and more particularly to an electronic device. Background Technology
[0002] In the field of information technology, servers, as electronic devices for data processing and storage, need to be equipped with tags to record server information, such as server model, serial number, network configuration, maintenance records, etc., so that users can identify and manage them.
[0003] In related technologies, labels are typically secured by adhesive or mechanical fastening. This involves attaching the label to the server chassis surface using self-adhesive or strong adhesive, or directly fixing the label to the chassis casing with screws.
[0004] However, since the labels are placed on the surface of the server chassis, they are prone to accumulating dust, which can lead to difficulties in information identification after long-term use and a poor user experience. Utility Model Content
[0005] This application provides an electronic device to solve the problem that labels easily accumulate dust, leading to difficulties in information identification and a poor user experience after long-term use.
[0006] This application provides an electronic device, including:
[0007] The equipment housing has a mounting port that communicates with the interior of the equipment housing.
[0008] A structural component is movably mounted on the equipment housing and has a mounting position and a pull-out position relative to the equipment housing when it is moved; when the structural component is in the mounting position, at least a portion of the structural component is located inside the equipment housing through the mounting port; when the structural component is in the pull-out position, a portion of the structural component moves to the outside of the equipment housing.
[0009] Labels are attached to structural components;
[0010] The reset device has a reset elastic element, which is connected to the structural component. The reset elastic element is configured to drive the structural component to switch from the pull-out position to the installation position.
[0011] The electronic device provided in this application embodiment, by incorporating a structural component and a reset device, allows the user to move the structural component to a pull-out position when they need to view the label, thus moving the label to the outside of the device housing for easy viewing. When the user no longer needs to view the label, the reset elastic element of the reset device can switch the structural component to the mounting position, allowing the label to enter the device housing, thereby shielding the label and preventing it from becoming contaminated with dust or dirt. This ensures convenient label viewing while extending the label's lifespan and improving the user experience.
[0012] In one possible implementation, the reset device further includes a device housing, a reset elastic element is rolled inside the device housing, the reset elastic element has a fixed end and a free end, the fixed end is located at the innermost side of the reset elastic element and is fixed relative to the device housing, the free end is located at the outermost side of the reset elastic element and is connected to the structural component;
[0013] When the structural component switches between the mounting position and the pull-out position, the reset elastic element is configured to either retract the free end to bring it toward the fixed end, or release the free end to spread it away from the fixed end.
[0014] This design reduces the space occupied by the reset elastic element, thereby improving the space utilization within the device housing. Simultaneously, the wound reset elastic element provides uniform elastic force, ensuring smooth movement of structural components and enhancing the reliability of the electronic equipment.
[0015] In one possible implementation, the electronic device further includes a telescopic device connected between the structural member and the free end.
[0016] With this configuration, when the structural component switches between the pull-out position and the mounting position, the telescopic device can expand or contract along with the movement of the structural component. This utilizes the friction generated during the expansion and contraction of the telescopic device to reduce the moving speed of the structural component, preventing the structural component from rapidly and violently returning to the mounting position due to excessive elasticity of the reset elastic element. This, in turn, avoids impact damage caused by the structural component colliding with other components, and improves the service life of the electronic equipment.
[0017] In one possible implementation, the telescopic device includes a mounting base, a transmission component, and a first telescopic structure. The mounting base is disposed within the equipment housing, the transmission component is disposed on the mounting base, and the transmission component is throttlely connected between the structural component and the first telescopic structure.
[0018] The transmission component is configured to drive the first telescopic structure to extend or retract in the direction of movement of the structural component when the structural component switches between the mounting position and the pull-out position.
[0019] With this configuration, when the structural component returns from the pull-out position to the installation position, the transmission component will drive the first telescopic structure to retract. The first telescopic structure will also generate friction during the retraction process, thereby controlling the rebound speed of the structural component and preventing the structural component from rebounding too quickly due to excessive elastic force of the reset elastic component.
[0020] In one possible implementation, the first telescopic structure is a four-bar structure, which includes four links that form a quadrilateral and are hinged to each other, so that the four-bar structure has four hinged parts.
[0021] The four hinge parts include a first hinge part and a second hinge part. The first hinge part and the second hinge part are spaced apart along the moving direction of the structural member. The first hinge part is slidably mounted on the mounting base. The two ends of the transmission member are respectively connected to the first hinge part and the structural member. The second hinge part is connected to the free end.
[0022] With this configuration, during the extension and retraction of the first telescopic structure, friction is generated due to the rotation of the four links and the sliding of the first hinge, which in turn creates resistance to the movement of the structural components. This allows the structural components to rebound slowly while enabling the user to more precisely control the tension applied to the structural components.
[0023] In one possible implementation, the mounting base has a receiving space in the first direction, within which the four-bar linkage is disposed. This provides space for the sliding of the first hinge, preventing interference with other components. Simultaneously, it provides sufficient space for the extension of the four-bar linkage, ensuring its degree of freedom during extension and retraction, thereby guaranteeing the stability and reliability of the four-bar linkage.
[0024] In one possible implementation, the telescopic device further includes a second telescopic structure, which is located at the end of the first telescopic structure opposite to the transmission member and connects the first telescopic structure and the free end.
[0025] When the first telescopic structure extends or retracts in the direction of movement of the structural member, the second telescopic structure is configured to extend or retract in the direction of movement of the structural member under the action of the first telescopic structure.
[0026] This design allows the frictional forces generated by the first and second telescopic structures during movement to be superimposed, thereby further increasing the resistance of the entire telescopic device to the structural components during movement. This prevents the resistance generated by the telescopic device from differing too much from the external force applied by the user and the elastic force generated by the reset device, which would result in insufficient feedback for the user during operation. At the same time, it further slows down the movement speed of the structural components, ensuring operational safety.
[0027] In one possible implementation, there are at least two second telescopic structures. Along the moving direction of the structural member, the second telescopic structures are sequentially arranged between the first telescopic structure and the structural member, and adjacent second telescopic structures are connected to each other. The second telescopic structure adjacent to the first telescopic structure is connected to the first telescopic structure, and the second telescopic structure adjacent to the free end is connected to the free end.
[0028] This configuration allows multiple second telescopic structures to form an integral structure with the first telescopic structure, further increasing the resistance of the entire telescopic device to the structural components during movement, slowing down the movement speed of the structural components, and ensuring operational safety.
[0029] In one possible implementation, the electronic device further includes a connector with an opening in the device housing. One end of the connector is disposed inside the device housing through the opening and connected to a fixed end, while the other end of the connector is connected to a free end via a telescopic device.
[0030] With this configuration, the direction of the tension generated by the connector is always from the outside of the opening toward the inside of the device housing, ensuring that the tension on the telescopic device is always in a straight line, thereby ensuring the smooth movement of the telescopic device and structural components and preventing them from shifting.
[0031] In one possible implementation, the structural member has a first end and a second end in the direction of movement, the second end having an abutment portion that can abut against the inner surface of the equipment housing.
[0032] This design ensures that when the user pulls the structural component to the pull-out position, the contact part abuts against the inner surface of the device housing, preventing the structural component from being completely pulled out of the device housing. This avoids reset failure or other problems caused by the structural component being completely pulled out of the device housing, further improving the user experience. Attached Figure Description
[0033] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.
[0034] Figure 1 Schematic diagram of the structure of the electronic device provided in the embodiments of this application Figure 1 ;
[0035] Figure 2 Schematic diagram of the structure of the electronic device provided in the embodiments of this application Figure 2 ;
[0036] Figure 3 for Figure 2 Structural diagram of the middle structural component;
[0037] Figure 4 for Figure 2 Schematic diagram of the telescopic device;
[0038] Figure 5 for Figure 2 A schematic diagram of the resetting elastic element.
[0039] Explanation of reference numerals in the attached figures:
[0040] 100 - Equipment housing; 110 - Mounting port;
[0041] 200 - Structural component; 210 - First end; 220 - Second end; 221 - Abutment portion;
[0042] 300-label;
[0043] 400 - Reset device; 410 - Reset elastic element; 411 - Free end; 412 - Fixed end; 420 - Device housing; 421 - Opening;
[0044] 500 - Telescopic device; 510 - Mounting base; 511 - Accommodation space; 520 - First telescopic structure; 521 - First hinge part; 522 - Second hinge part; 530 - Second telescopic structure; 531 - Third hinge part; 532 - Fourth hinge part.
[0045] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation
[0046] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the appended claims. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of the embodiments of this application.
[0047] In the embodiments of this application, the terms "upper," "lower," "inner," "middle," "outer," "front," and "rear," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are mainly for better describing the embodiments of this application and their implementations, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation. Furthermore, some of the above terms may be used to indicate other meanings besides orientation or positional relationship; for example, the term "upper" may also be used in some cases to indicate a certain dependency or connection relationship. For those skilled in the art, the specific meaning of these terms in the embodiments of this application can be understood according to the specific circumstances.
[0048] Furthermore, the terms "set up," "connect," and "fix" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this disclosure according to the specific circumstances.
[0049] The terms "first," "second," "third," "fourth," etc. (if present) in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that embodiments of the present application described herein can be implemented, for example, in orders other than those illustrated or described herein.
[0050] In this application, the terms "exemplarily" or "for example" are used to indicate examples, illustrations, or descriptions. Any embodiment or design described as "exemplarily" or "for example" in this application should not be construed as being more preferred or advantageous than other embodiments or designs. Specifically, the use of terms such as "exemplarily" or "for example" is intended to present the relevant concepts in a specific manner.
[0051] Unless otherwise stated, the term "multiple" means two or more.
[0052] In the field of information technology, servers, as electronic devices for data processing and storage, need to be equipped with tags to record server information, such as server model, serial number, network configuration, maintenance records, etc., so that users can identify and manage them.
[0053] In related technologies, labels are typically secured by adhesive or mechanical fastening. This involves attaching the label to the server chassis surface using self-adhesive or strong adhesive, or directly fixing the label to the chassis casing with screws.
[0054] However, since the labels are placed on the surface of the server chassis, they are prone to accumulating dust, which can lead to difficulties in information identification after long-term use and a poor user experience.
[0055] The electronic device provided in this application includes a device housing, a structural component, a label, and a reset device. The device housing has a mounting opening that communicates with the interior of the housing. The label is disposed on the structural component, which is movably mounted on the device housing and has a mounting position and a pull-out position relative to the housing during movement. When the structural component is in the mounting position, at least a portion of it is disposed inside the device housing through the mounting opening. When the structural component is in the pull-out position, a portion of it moves to the outside of the device housing. The reset device has a reset elastic component connected to the structural component. The reset elastic component is configured to switch the structural component from the pull-out position to the mounting position, thereby enabling flexible switching of the label between the pull-out and mounting positions. When a user needs to view the label, they can pull the structural component to move it to the pull-out position, thus moving the label to the outside of the device housing for easy viewing. When the user does not need to view the label, the reset elastic element of the reset device can drive the structural component to switch to the installation position, so that the label can enter the device housing, thereby shielding the label and preventing it from getting dusty or dirty. This ensures the convenience of viewing the label, extends the service life of the label, and improves the user experience.
[0056] The technical solution of this application and how the technical solution of this application solves the above-mentioned technical problems are described in detail below with specific embodiments. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments. The embodiments of this application will be described below with reference to the accompanying drawings.
[0057] Please refer to Figures 1 to 5 This application provides an electronic device, including a device housing 100, a structural component 200, a tag component 300, and a reset device 400.
[0058] The equipment housing 100 has a mounting port 110, which communicates with the interior of the equipment housing 100. The structural component 200 is movably mounted on the equipment housing 100 and has a mounting position and a pull-out position relative to the equipment housing 100 when it moves.
[0059] Specifically, when the structural component 200 is in the mounting position, at least a portion of the structural component 200 is located inside the equipment housing 100 through the mounting port 110, and another portion of the structural component 200 is exposed outside the equipment housing 100 through the mounting port 110. When the structural component 200 is in the pull-out position, a portion of the structural component 200 moves to the outside of the equipment housing 100, and the label 300 is located on the structural component 200.
[0060] The tag 300 can record information such as the electronic device's model, parameters, serial number, user manual, and maintenance precautions, allowing users to perform daily use, management, and maintenance of the electronic device based on the information recorded on the tag 300. In addition, the tag 300 can also be a QR code, allowing users to obtain relevant information about the electronic device by scanning the QR code.
[0061] This embodiment does not impose any restrictions on the information recorded on the label 300, and can make adaptive selections according to actual needs.
[0062] Specifically, when structural component 200 is in the mounting position, part of structural component 200 is exposed outside the equipment housing 100 through the mounting port 110. Therefore, the user can grasp and pull out the structural component 200 exposed outside the equipment housing 100 to switch the structural component 200 to the pull-out position. At this time, since the label 300 is provided on the structural component 200, the user can easily view the information recorded on the label 300.
[0063] In this embodiment, the electronic device further includes a reset device 400, which has a reset elastic element 410. The reset elastic element 410 is connected to the structural member 200 and is configured to drive the structural member 200 from the pull-out position to the mounting position.
[0064] Specifically, one end of the reset elastic element 410 is connected to the structural component 200, while the other end is fixed inside the device housing 100. When the structural component 200 is pulled to the pull-out position, the reset elastic element 410 is stretched, thereby generating elastic potential energy. When the user releases the structural component 200, the reset elastic element 410 uses its stored elastic potential energy to automatically move the structural component 200 from the pull-out position back to the installation position, realizing the switch from the pull-out position to the installation position without additional user operation, thus improving ease of use.
[0065] It should be noted that in this embodiment, the reset elastic element 410 is a spring. In other embodiments, the specific structure of the reset elastic element 410 can be adapted to actual needs. This embodiment does not impose any restrictions on this.
[0066] Furthermore, when the structural component 200 is in the mounting position, the label 300 is located inside the device body, allowing the label 300 to be hidden when the user does not need to view it, and not exposed on the surface of the device body. This avoids the problem of the label 300 being easily contaminated with dust and stains or damaged by the external environment due to long-term exposure, thus extending the service life of the label 300 and maintaining the cleanliness and aesthetics of the electronic device.
[0067] Please refer to Figures 1 to 5 In some embodiments, the reset device 400 further includes a device housing 420, and a reset elastic member 410 is rolled inside the device housing 420. The reset elastic member 410 has a fixed end 412 and a free end 411. The fixed end 412 is located at the innermost side of the reset elastic member 410 and is fixed relative to the device housing 100. The free end 411 is located at the outermost side of the reset elastic member 410 and is connected to the structural member 200.
[0068] Specifically, when the structural component 200 switches between the mounting position and the pull-out position, the reset elastic element 410 is configured to retract the free end 411 so that the free end 411 retracts toward the position of the fixed end 412, or to release the free end 411 so that the free end 411 spreads away from the fixed end 412, thereby driving the structural component 200 to move through the mounting port 110 to switch between the mounting position and the pull-out position.
[0069] Specifically, in this embodiment, the device housing 420 is fixedly disposed within the equipment housing 100 to provide a stable mounting base for the reset elastic member 410 and ensure the stability of the reset elastic member 410.
[0070] In this embodiment, the device housing 420 is connected to the equipment housing 100 by screws. In other embodiments, the device housing 420 may also be connected to the equipment housing 100 by a bracket or other structure. This embodiment does not impose any restrictions on this.
[0071] In this embodiment, the reset elastic element 410 is wound inside the device housing 420. The reset elastic element 410 has a fixed end 412 and a free end 411. The fixed end 412 is located at the innermost side of the reset elastic element 410 and is fixed relative to the device housing 100. The free end 411 is located at the outermost side of the reset elastic element 410 and is connected to the structural component 200. When the user pulls the structural component 200 from the mounting position to the pull-out position, the label 300 is exposed outside the device housing 100 through the mounting port 110 for easy viewing by the user. The free end 411 of the reset elastic element 410 is stretched, causing the reset elastic element 410 to gradually unfold from the wound state and store elastic potential energy.
[0072] When the user releases the structural component 200, the reset elastic component 410 uses its stored elastic potential energy to drive the free end 411 to retract, causing the reset elastic component 410 to gradually roll back from the unfolded state to the tight state, thereby driving the structural component 200 to switch from the pull-out position to the installation position, realizing the automatic retraction of the label component 300.
[0073] By winding the reset elastic element 410, the space occupied by the reset elastic element 410 can be reduced, thereby improving the space utilization rate inside the device housing 100. At the same time, the wound reset elastic element 410 can provide uniform elastic force, thereby ensuring the smooth movement of the structural component 200 and improving the reliability of the electronic device.
[0074] Please refer to Figures 1 to 5 In some embodiments, the electronic device also includes a telescopic device 500 connected between the structural member 200 and the free end 411. When the structural member 200 switches between a pull-out position and a mounting position, the telescopic device 500 can expand or contract as the structural member 200 moves.
[0075] Specifically, when structural component 200 is pulled from the mounting position to the pull-out position, the telescopic device 500 gradually unfolds, simultaneously causing the free end 411 of the reset elastic component 410 to unfold, allowing the reset elastic component 410 to gradually unwind from its coiled state and store elastic potential energy. At this time, structural component 200 can smoothly move outward to the pull-out position, and the label component 300 is exposed on the device casing for easy viewing by the user.
[0076] When the user releases the structural component 200, the reset elastic element 410 utilizes its stored elastic potential energy to smoothly pull the structural component 200 back to its mounting position via the telescopic device 500. At this time, the free end 411 of the reset elastic element 410 moves closer to the fixed end 412, causing the reset elastic element 410 to rewind back to a tight state, and driving the telescopic device 500 to gradually retract. The structural component 200 moves to its mounting position under the action of the telescopic device 500. This design of the telescopic device 500 utilizes the friction generated during its expansion and contraction to reduce the moving speed of the structural component 200, preventing it from rapidly and violently returning to its mounting position due to excessive elasticity of the reset elastic element 410. This avoids impact damage caused by collisions between the structural component 200 and other components, thus improving the lifespan of the electronic device.
[0077] Please refer to Figures 1 to 5 In some embodiments, the telescopic device 500 includes a mounting base 510, a transmission member, and a first telescopic structure 520. The mounting base 510 is disposed inside the equipment housing 100, the transmission member is disposed on the mounting base 510, and the transmission member is throttlely connected between the structural member 200 and the first telescopic structure 520.
[0078] In this embodiment, the mounting base 510 is used to provide support for the transmission member and the first telescopic structure 520 to ensure the stability of the transmission member and the first telescopic structure 520 when they move.
[0079] Specifically, the transmission component is configured to drive the first telescopic structure 520 to extend or retract in the direction of movement of the structure 200 when the structure 200 switches between the mounting position and the pull-out position.
[0080] When structural component 200 moves from the mounting position to the pull-out position, the transmission component drives the first telescopic structure 520 to extend along the moving direction of structural component 200. During the extension process, the first telescopic structure 520 generates a certain amount of friction, which slows down the moving speed of structural component 200. This provides the user with resistance when pulling structural component 200, allowing for more precise control of the pulling force applied. This prevents the user from pulling structural component 200 too quickly or too forcefully, which could cause it to completely detach from the mounting opening 110, further improving the user experience.
[0081] Similarly, when the structural component 200 returns from the pull-out position to the installation position, the transmission component will drive the first telescopic structure 520 to retract. The first telescopic structure 520 will also generate friction during the retraction process, thereby controlling the rebound speed of the structural component 200 and avoiding the structural component 200 from rebounding too quickly due to the excessive elastic force of the reset elastic element 410.
[0082] Please refer to Figures 1 to 5 In some embodiments, the first telescopic structure 520 is a four-bar structure, which includes four links forming a quadrilateral, and adjacent links are hinged to each other so that the four-bar structure has four hinged parts.
[0083] The four hinge parts include a first hinge part 521 and a second hinge part 522. The first hinge part 521 and the second hinge part 522 are spaced apart along the moving direction of the structural member 200. The first hinge part 521 is slidably disposed on the mounting base 510. The two ends of the transmission member are respectively connected to the first hinge part 521 and the structural member 200. The second hinge part 522 is connected to the free end 411.
[0084] Specifically, in this embodiment, the first hinge portion 521 is connected to the structural member 200. When the structural member 200 switches between the mounting position and the pull-out position, the structural member 200 can drive the first hinge portion 521 to slide on the mounting base 510 through the transmission member, thereby driving the two connecting rods connected to the first hinge portion 521 to rotate around the first hinge portion 521. When the two connecting rods connected to the first hinge portion 521 rotate, since the two connecting rods are also hinged to two other connecting rods through the second hinge portion 522, the two connecting rods can further drive the other two connecting rods to rotate around the second hinge portion 522, thereby realizing the extension or contraction of the first telescopic structure 520.
[0085] When structural component 200 is switched from the mounting position to the pull-out position, the user applies an external force to pull structural component 200. The external force is transmitted to the first hinge part 521 through the transmission component, causing the first hinge part 521 to slide on the mounting base 510 toward the structural component 200. This causes the two connecting rods connected to the first hinge part 521 to rotate around the first hinge part 521. At this time, the included angle between the two connecting rods gradually decreases, allowing the first telescopic structure 520 to extend. At the same time, the two connecting rods can further drive two other connecting rods to rotate around the second hinge part 522, thereby achieving the extension of the first telescopic structure 520.
[0086] Furthermore, since the second hinge portion 522 is connected to the free end 411, the second hinge portion 522 is also subjected to a tensile force from the free end 411. The tensile force of the free end 411 can combine with the external force applied by the user to act on the first telescopic structure 520, so that the structural member 200 can smoothly switch from the mounting position to the pull-out position.
[0087] When the user releases the structural component 200, switching it from the pull-out position to the installation position, the elastic force of the reset elastic component 410 acts on the second hinge portion 522, generating a reverse pulling force. This causes the second hinge portion 522 to drive the connecting rod in the first telescopic structure 520 to rotate in opposite directions around the first hinge portion 521 and the second hinge portion 522, thereby causing the first telescopic structure 520 to gradually retract.
[0088] During the extension and retraction of the first telescopic structure 520, friction is generated due to the rotation of the four connecting rods and the sliding of the first hinge 521, which in turn creates resistance to the movement of the structural component 200. This allows the structural component 200 to rebound slowly while enabling the user to more precisely control the tension applied to the structural component 200.
[0089] Please refer to Figures 1 to 5 In some embodiments, the mounting base 510 has a receiving space 511 in a first direction, and a four-bar linkage structure is disposed within the receiving space 511.
[0090] Specifically, in this embodiment, the first hinge portion 521 is slidably disposed within the accommodating space 511, thereby providing space for the sliding of the first hinge portion 521 and avoiding interference with other components. Simultaneously, it also provides sufficient space for the extension of the four-bar structure, ensuring the degree of freedom of the four-bar structure during extension and retraction, thereby ensuring the stability and reliability of the four-bar structure.
[0091] Please refer to Figures 1 to 5 In some embodiments, the telescopic device 500 further includes a second telescopic structure 530, which is located at the end of the first telescopic structure 520 opposite to the transmission member and connects the first telescopic structure 520 and the free end 411. When the first telescopic structure 520 extends or retracts in the moving direction of the structural member 200, the second telescopic structure 530 is configured to extend or retract in the moving direction of the structural member 200 under the drive of the first telescopic structure 520. This arrangement of the second telescopic structure 530 allows the frictional forces generated by the first and second telescopic structures during movement to be superimposed, further increasing the resistance of the entire telescopic device 500 to the structural member 200 during movement. This prevents the resistance generated by the telescopic device 500 from differing too much from the external force applied by the user and the elastic force generated by the reset device 400, which could result in insufficient feedback for the user during operation. Simultaneously, it further slows down the moving speed of the structural member 200, ensuring operational safety.
[0092] Please refer to Figures 1 to 5 In some embodiments, there are at least two second telescopic structures 530. Along the moving direction of the structural member 200, the second telescopic structures 530 are sequentially arranged between the first telescopic structure 520 and the structural member 200, and adjacent second telescopic structures 530 are connected to each other. The second telescopic structure 530 adjacent to the first telescopic structure 520 is connected to the first telescopic structure 520, and the second telescopic structure 530 adjacent to the free end 411 is connected to the free end 411.
[0093] Specifically, in this embodiment, the second telescopic structure 530 is the same as the first telescopic structure 520, which is a four-bar structure, including four links. The four links form a quadrilateral, and adjacent links are hinged to each other, so that the second telescopic structure 530 has four hinge parts, including a third hinge part 531 and a fourth hinge part 532.
[0094] Among them, the third hinge portion 531 of the second telescopic structure 530 near the first telescopic structure 520 is connected to the second hinge portion 522, the fourth hinge portion 532 of the second telescopic structure 530 near the free end 411 is connected to the free end 411, and the third hinge portion 531 of the second telescopic structure 530 located between the two second telescopic structures 530 at both ends is connected to the adjacent fourth hinge portion 532. This makes the multiple second telescopic structures 530 and the first telescopic structure 520 form an integral structure, which further increases the resistance of the entire telescopic device 500 to the structural member 200 during the movement process, slows down the movement speed of the structural member 200, and ensures the safety of operation.
[0095] Please refer to Figures 1 to 5 In some embodiments, the electronic device further includes a connector, the device housing 420 having an opening 421, one end of the connector being disposed inside the device housing 420 through the opening 421 and connected to a free end 411, and the other end of the connector being connected to the structural member 200 through a telescopic device 500.
[0096] Specifically, in this embodiment, since the reset elastic member 410 is wound inside the device housing 420, the elastic force generated by the reset elastic member 410 is directed toward the tangential direction of the reset elastic member 410, which will pull the telescopic device 500 to move offset instead of moving in a direction perpendicular to the mounting opening 110, making it easy to collide with other components inside the device housing 100.
[0097] Therefore, the electronic device provided in this embodiment also includes a connector. Part of the connector is disposed within the device housing 420, and another part extends out of the opening 421 on the device housing 420 and is connected to the telescopic device 500. When the reset elastic member 410 generates a spring force to pull the structural member 200 from the pull-out position to the mounting position, the free end 411 pulls the connector so that the part of the connector located outside the device housing 420 gradually enters the device housing 420, and then the telescopic device 500 is moved via the connector. Since the direction of the pulling force generated by the connector is always along the outside of the opening 421 towards the inside of the device housing 420, the pulling force on the telescopic device 500 can always be in a straight line, thereby ensuring the smooth movement of the telescopic device 500 and the structural member 200 and preventing them from shifting.
[0098] In this embodiment, the connector is made of cotton thread, thereby achieving a soft connection between the telescopic device 500 and the reset elastic element 410, avoiding any impact from the connector on the winding of the reset elastic element 410. In other embodiments, the specific structure of the connector can be adaptively selected according to actual needs; this embodiment does not impose any restrictions on this.
[0099] Please refer to Figures 1 to 5In some embodiments, the structural member 200 has a first end 210 and a second end 220 in the direction of movement. The second end 220 has an abutment portion 221, which can abut against the inner surface of the device housing 100. Thus, when the user pulls the structural member 200 to switch to the pull-out position, by having the abutment portion 221 abut against the inner surface of the device housing 100, the structural member 200 can be prevented from being completely pulled out of the device housing 100. This avoids reset failure or other problems caused by the structural member 200 being completely pulled out of the device housing 100, and further improves the user experience.
[0100] Finally, it should be noted that other embodiments of this utility model will readily occur to those skilled in the art upon consideration of the specification and practice of the utility model disclosed herein. This utility model is intended to cover any variations, uses, or adaptations of this utility model that follow the general principles of this utility model and include common knowledge or customary techniques in the art not disclosed herein, and is not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of this utility model is limited only by the appended claims.
Claims
1. An electronic device, comprising: include: A device housing having a mounting port that communicates with the interior of the device housing; A structural component is movably mounted on the equipment housing and has a mounting position and a pull-out position relative to the equipment housing when it is moved; when the structural component is located in the mounting position, at least a portion of the structural component is located inside the equipment housing through the mounting port; when the structural component is located in the pull-out position, a portion of the structural component moves to the outside of the equipment housing. A label, wherein the label is disposed on the structural member; A reset device having a reset elastic element connected to the structural member, the reset elastic element being configured to move the structural member from the pull-out position to the mounting position.
2. The electronic device of claim 1, wherein, The reset device also has a device housing, and the reset elastic element is rolled inside the device housing. The reset elastic element has a fixed end and a free end. The fixed end is located at the innermost side of the reset elastic element and is fixed relative to the device housing. The free end is located at the outermost side of the reset elastic element and is connected to the structural component. When the structural member switches between the mounting position and the pull-out position, the reset elastic member is configured to either retract the free end to bring it toward the fixed end, or release the free end to spread it away from the fixed end.
3. The electronic device of claim 2, wherein, It also includes a telescopic device, which is connected between the structural member and the free end.
4. The electronic device of claim 3, wherein, The telescopic device includes a mounting base, a transmission component, and a first telescopic structure. The mounting base is disposed inside the equipment housing, the transmission component is disposed on the mounting base, and the transmission component is throttlely connected between the structural component and the first telescopic structure. The transmission component is configured to drive the first telescopic structure to extend or retract in the direction of movement of the structural component when the structural component switches between the mounting position and the pull-out position.
5. The electronic device of claim 4, wherein, The first telescopic structure is a four-bar structure, which includes four links that form a quadrilateral and are hinged to each other, so that the four-bar structure has four hinged parts. The four hinge parts include a first hinge part and a second hinge part. The first hinge part and the second hinge part are spaced apart along the moving direction of the structural member. The first hinge part is slidably disposed on the mounting base. The two ends of the transmission member are respectively connected to the first hinge part and the structural member. The second hinge part is connected to the free end.
6. The electronic device of claim 5, wherein, The mounting base has a receiving space in the first direction, and the four-bar linkage is disposed within the receiving space.
7. The electronic device of claim 4, wherein, The telescopic device further includes a second telescopic structure, which is located at the end of the first telescopic structure opposite to the transmission member and connects the first telescopic structure and the free end. When the first telescopic structure extends or retracts in the direction of movement of the structural member, the second telescopic structure is configured to extend or retract in the direction of movement of the structural member under the action of the first telescopic structure.
8. The electronic device of claim 7, wherein, The number of the second telescopic structures is at least two. Along the moving direction of the structural member, the second telescopic structures are sequentially arranged between the first telescopic structure and the structural member, and adjacent second telescopic structures are connected to each other. The second telescopic structure adjacent to the first telescopic structure is connected to the first telescopic structure, and the second telescopic structure adjacent to the free end is connected to the free end.
9. The electronic device of any of claims 3-8, wherein, It also includes a connector, the device housing has an opening, one end of the connector is disposed inside the device housing through the opening and connected to the free end, and the other end of the connector is connected to the structural member through the telescopic device.
10. The electronic device of any of claims 1-8, wherein, The structural component has a first end and a second end in the direction of movement, and the second end has an abutment portion that can abut against the inner surface of the equipment housing.