Electronic device
By designing the switchable position relationship and trigger mechanism of the first body and the second body, the problem of display area requirements for electronic devices in different postures is solved, flexible adjustment of the display and non-interference attitude switching are realized, and the user experience and appearance are optimized.
Patent Information
- Application Number
- CN202511074076.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-31
- Publication Date
- 2025-09-02
AI Technical Summary
The display area requirements of electronic devices are different under different usage requirements, and it is difficult for the prior art to effectively adjust the area of the display to meet the usage needs in various postures.
By designing the switchable position relationship between the first body and the second body, the second body moves in different directions, the area change of the display screen is realized, including the combination of the display screen under the conditions of partial overlap of the first position, non-overlapping of the second position and coplanarity of the third position, and the movement of the second body is controlled by the trigger mechanism and the unlocking mechanism.
It realizes flexible adjustment of the display area of electronic devices in different postures, avoids component interference, and optimizes user experience and appearance integrity.
Smart Images

Figure CN120580923A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of electronic equipment, and in particular to an electronic equipment. Background Art
[0002] As the demand for electronic devices increases, the changes in their postures also increase. Take the display screen used to display information in electronic devices as an example. Different usage requirements have different requirements for the display area of the display screen. Summary of the Invention
[0003] In view of this, the present application provides an electronic device.
[0004] To achieve the above objectives, this application provides the following technical solutions:
[0005] An electronic device, comprising:
[0006] first ontology;
[0007] a second body, the second body being movable relative to the first body so that the second body can switchably have a first position, a second position, and a third position relative to the first body;
[0008] During the process of switching from the first position to the third position, the second body moves from the first position to the second position along a first direction, and then moves to the third position along a second direction, wherein the first direction is different from the second direction;
[0009] In the first position, projections of the first body and the second body along the second direction at least partially overlap;
[0010] In the second position, projections of the first body and the second body along the second direction do not overlap with each other;
[0011] In the third position, the first body and the second body meet a coplanar condition.
[0012] Optionally, in the above electronic device, in the first position, the second body is located inside the first body.
[0013] Optionally, the electronic device includes:
[0014] a first target device capable of applying a first force to the second body;
[0015] a second target device capable of applying a second force to the second body;
[0016] a trigger mechanism, the trigger mechanism having a first state and a second state, wherein in the first state, the second body is subjected to the first force, and in the second state, the second body is subjected to the second force;
[0017] in,
[0018] In the first position, the trigger mechanism is in the first state and the first target device applies the first force to the second body, so that the second body moves along the first direction to the second position;
[0019] In the second position, the trigger mechanism is in the second state and the second target device applies the second force to the second body, so that the second body moves along the second direction to the third position.
[0020] Optionally, in the above electronic device, the first target device includes a first elastic component connecting the first body and the second body, and the first acting force includes at least an elastic restoring force of the first elastic component;
[0021] The electronic device includes an unlocking mechanism, the unlocking mechanism having a third state and a fourth state. In the third state, the movement of the first body and the second body along the first direction is restricted. In the fourth state, the first body and the second body can move relative to each other.
[0022] In the first position, the unlocking mechanism is switchable between the third state and the fourth state;
[0023] During the process of switching from the first position to the second position, the unlocking mechanism is in the fourth state, so that the second body moves along the first direction under the elastic restoring force of the first elastic component.
[0024] Optionally, in the above electronic device, when the second body moves from the first position to the second position along the first direction, the elastic restoring force can accelerate the movement of the second body.
[0025] Optionally, in the electronic device, the first target device includes a driving component and a transmission assembly, the driving component is connected to the first body and has a movable driving end; the transmission assembly includes a power input end connected to the driving end and a power output end capable of moving along the first direction, and the power output end is connected to the second body;
[0026] The power input end of the transmission component inputs a first stroke, and the power output end of the transmission component outputs a second stroke, and the second stroke is greater than the first stroke.
[0027] Optionally, in the above electronic device, the trigger mechanism includes:
[0028] a third body, wherein the second target device connects the second body and the third body, the third body being movable relative to the first body along the first direction, and the second body being movable relative to the third body along the second direction;
[0029] a locking device having a fifth state and a sixth state, wherein in the fifth state, the locking device restricts relative movement between the second body and the third body, and in the sixth state, the second body and the third body are able to move along the second direction;
[0030] in,
[0031] In the first position, the locking device is in the fifth state, and the first force drives the second body and the third body to move synchronously along the first direction, so that the second body moves to the second position;
[0032] In the second position, the locking device switches to the sixth state, and the second force drives the second body to move synchronously along the second direction, so that the second body moves to the third position.
[0033] Optionally, the electronic device includes a first slide rail structure that slidably connects the second body and the third body; the direction of the second force is different from the second direction; when the second target device applies the second force to the second body, the second body slides relative to the third body along the first slide rail structure, so that the second body moves along the second direction; and / or
[0034] The locking device includes a sliding member and an elastic member, the sliding member slides relative to the third body along the third direction to have a fifth position and a sixth position, the locking device is in the fifth state when the sliding member is in the fifth position, and is in the sixth state when the sliding member is in the sixth position;
[0035] In which, the elastic member applies an elastic force to the sliding member so that the sliding member moves to the fifth position; when the first force drives the second body to move to the second position, the second body drives the sliding member to switch from the fifth position to the sixth position, so that the locking device can be in the sixth state.
[0036] Optionally, in the electronic device described above, the electronic device comprises a target sensor and a control circuit, the target sensor being capable of recognizing a user gesture, and the control circuit being capable of controlling the first target device to drive the second body to move relative to the first body based on the user gesture;
[0037] Alternatively, the electronic device has a touch button that can be touched by a user, and the touch button can control the first target device to drive the second body to move relative to the first body.
[0038] Optionally, in the above electronic device, the second target device can provide a third force, and the third force causes the second body to move from the third position to the second position; and / or,
[0039] The first target device can provide a fourth force, and the fourth force causes the second body to move from the second position to the first position.
[0040] Optionally, in the above electronic device, the first body has a first display screen, and the second body has a second display screen; in the first position, the first display screen is exposed and the second display screen is at least partially obscured by the first body; in the third position, the first display screen and the second display screen do not obstruct each other and meet a coplanarity condition and / or the distance between the first display screen and the second display screen meets a predetermined size;
[0041] Alternatively, the electronic device has a flexible screen, an area of the flexible screen used for displaying output includes a deformable area, and when the second body is movable to different positions relative to the first body, the area of the deformable area is different;
[0042] And / or, the electronic device includes a fourth body, which is movably connected to the first body and has a first form and a second form, and the angle between the fourth body and the first body in the first form is different from the angle between the fourth body and the first body in the second form. BRIEF DESCRIPTION OF THE DRAWINGS
[0043] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0044] Figure 1A schematic diagram of the main structure of an electronic device provided in an embodiment of the present application in a first position;
[0045] Figure 2 A schematic diagram of the main structure of the electronic device provided in an embodiment of the present application in a third position;
[0046] Figure 2a A schematic diagram of the bottom structure of the first and second bodies provided in the embodiment of the present application in the third position;
[0047] Figure 3 A schematic structural diagram of an electronic device in a first position without a display screen provided in an embodiment of the present application;
[0048] Figure 4 A schematic structural diagram of an electronic device in a third position without a display screen provided in an embodiment of the present application;
[0049] Figure 5 A schematic diagram of the structure of the unlocking mechanism provided in an embodiment of the present application;
[0050] Figure 6 A schematic structural diagram of another electronic device provided in an embodiment of the present application in a first position;
[0051] Figure 7 A schematic structural diagram of a first target device in a first position provided in an embodiment of the present application;
[0052] Figure 8 A schematic diagram of the structure of another electronic device provided in an embodiment of the present application in a third position;
[0053] Figure 9 A schematic structural diagram of the first target device in the third position provided in an embodiment of the present application;
[0054] Figure 10 A perspective structural diagram of a first target device provided in an embodiment of the present application;
[0055] Figure 11 A schematic diagram of the structure of the gear provided in the embodiment of the present application;
[0056] Figure 12 A schematic diagram of the structure of the third body provided in the embodiment of the present application;
[0057] Figure 13 A schematic structural diagram of a locking device and a sliding fit structure provided in an embodiment of the present application;
[0058] Figure 14 A schematic structural diagram of multiple sliding fitting structures provided in an embodiment of the present application;
[0059] Figure 15Schematic diagram of the cooperation structure of the pushing member and the sliding member provided in an embodiment of the present application. DETAILED DESCRIPTION
[0060] The present application discloses an electronic device.
[0061] The technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all of the embodiments. The present disclosure provides these embodiments to make the present disclosure thorough and complete, and to fully express the scope of the present disclosure to those skilled in the art. It should be noted that: unless otherwise specifically stated, the relative arrangement of the parts and steps, the composition of the materials, the numerical expressions and the numerical values set forth in these embodiments should be interpreted as being merely exemplary, rather than as limiting.
[0062] It should be noted that, in the description of this disclosure, unless otherwise specified, "plurality" means greater than or equal to two; terms such as "upper," "lower," "left," "right," "inner," and "outer" indicating directions or positional relationships are intended solely to facilitate and simplify the description of this disclosure, and do not indicate or imply that the devices or elements referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this disclosure. When the absolute position of the object being described changes, the relative positional relationship may also change accordingly.
[0063] In addition, the terms "first," "second," and similar terms used in this disclosure do not denote any order, quantity, or importance, but are merely used to distinguish different parts. "Perpendicular" does not mean perpendicular in the strict sense, but rather means within the tolerance range. "Parallel" does not mean parallel in the strict sense, but rather means within the tolerance range. "Include" or "comprising" and similar terms mean that the elements preceding the term include the elements listed after the term, and do not exclude the possibility of also including other elements.
[0064] It should also be noted that, in the description of this disclosure, unless otherwise expressly specified or limited, the terms "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to direct connections or indirect connections through an intermediary. Those skilled in the art will understand the specific meanings of the above terms in this disclosure depending on the specific circumstances. When a specific device is described as being located between a first device and a second device, there may or may not be an intervening device between the specific device and the first or second device.
[0065] All terms used in this disclosure have the same meaning as understood by one of ordinary skill in the art to which this disclosure belongs, unless otherwise specifically defined. It should also be understood that terms defined in, for example, common dictionaries should be interpreted as having a meaning consistent with their meaning in the context of the relevant art, and should not be interpreted in an idealized or highly formal sense, unless explicitly defined as such herein.
[0066] Technologies, methods, and devices known to persons skilled in the relevant art may not be discussed in detail, but where appropriate, they should be considered part of the specification. All other embodiments derived by persons skilled in the art based on the embodiments in this application without inventive effort are within the scope of protection of this application.
[0067] Due to the increasing number of electronic devices capable of varying postures, at least two bodies within the electronic device must be capable of relative movement to accommodate different postures. For example, an electronic device comprising a first body and a second body can be positioned relative to each other in the first posture. In the second posture, the first and second bodies can be positioned so as not to overlap. For example, in the second posture, the first and second bodies are arranged in a first direction. Therefore, the second body can be moved relative to the first body in the first direction to switch to the second posture. Because the first and second bodies must be positioned relative to each other in the first posture, the first and second bodies are positioned differently in a second direction (e.g., perpendicular to the first direction) in the second posture. For example, in the first and second postures, the functional surfaces of the first and second bodies face the second direction. Since the first and second bodies must be positioned relative to each other in the first posture, a height difference (a gap in the thickness direction of the electronic device) exists between the functional surfaces of the first and second bodies when the device is switched to the second posture, hindering their coordinated use.
[0068] like Figures 1-4 As shown, an embodiment of the present application provides an electronic device, including:
[0069] The first body 100 may be the portion of the electronic device that does not move when placed on a supporting surface (such as a desktop or platform). For example, if the electronic device is a laptop, the first body 100 may include a touchpad or keyboard. For example, if the electronic device is a display, the first body 100 may be fixed relative to the display stand.
[0070] The second body 200 may be a component that moves relative to the first body 100 during the posture change of the electronic device. The second body 200 can move relative to the first body 100 so that the second body 200 has a switchable first position, a second position, and a third position relative to the first body 100.
[0071] The second position can serve as an intermediate position during the switching process between two different postures. During the process of the electronic device switching between two different postures, the second body 200 can be moved relative to the first body 100 from the first position to the second position and to the third position. This allows the electronic device to switch between two different postures in two steps: the first step moves the second body 200 from the first position to the second position, and the second step moves the second body 200 from the second position to the third position. By decomposing the movement of the second body 200, the movement path of the second body 200 can be adjusted to avoid interference between the second body 200 and other components of the electronic device (such as the first body 100), allowing the second body 200 to move to the target position (the third position).
[0072] The second body 200 can also be made to meet a posture of the electronic device in the second position to meet the corresponding usage requirements. The electronic device can have a first posture, a second posture and a third posture. In the first posture, the second body 200 is located in the first position, in the second posture, the second body 200 is located in the second position, and in the third posture, the third body 300 is located in the third position. Among them, the electronic device can switch between the first position and the second position by switching the second body 200 between the first position and the second position, and can also switch between the second position and the third posture by switching the second body 200 between the second position and the third position. In the process of switching between the first position and the third position, the electronic device needs to switch to the third posture first, that is, in the process of switching between the first position and the third position, the second body 200 needs to switch to the second position midway.
[0073] In the process of switching from the first position to the third position, the second body 200 can move from the first position to the second position along the first direction X, and then move to the third position along the second direction, where the first direction X is different from the second direction. Since the first direction X is different from the second direction, the path of the second body 200 in the process of switching between the first position, the second position and the third position is not a linear motion, thereby preventing the second body 200 from interfering with the components (the first body 100) in the linear motion path between the first position and the third position. The first direction X and the second direction can be perpendicular to each other (e.g., perpendicular to the first direction X). Figure 3 ).
[0074] In the first position, the projections of the first body 100 and the second body 200 along the second direction can at least partially overlap. This at least partial overlap allows the area of the surface of the combined structure of the first body 100 and the second body 200 facing the second direction to be smaller than the sum of the surfaces of the first body 100 and the second body 200 facing the second direction. When both the first body 100 and the second body 200 are plate-like structures (such as display screens), the second direction can be the thickness of the plate-like structure. The surfaces of the first body 100 and the second body 200 facing the second direction may have both obstructed and unobstructed areas. The unobstructed areas can be used as functional areas of the electronic device (such as the display area). The projection area of the second body 200 along the second direction can be located within the projection area of the first body 100 along the second direction, meaning that the first body 100 can obstruct the second body 200 along the second direction. Alternatively, the projection of the second body 200 along the second direction can partially overlap with the projection of the first body 100 along the second direction. In the first position, the overlapping portion of the first body 100 and the second body 200 can interfere with or hinder the movement of the second body 200 along the second direction, so that the second body 200 cannot directly move linearly from the first position to the third position.
[0075] In the second position, the projections of the first body 100 and the second body 200 along the second direction do not overlap. That is, in the second position, the area of the surface of the combined structure of the first body 100 and the second body 200 facing the second direction can be the sum of the surface of the first body 100 facing the second direction and the surface of the second body 200 facing the second direction. When both the first body 100 and the second body 200 are plate-like structures (such as display screens), the second direction can be the thickness direction of the plate-like structure. The surfaces of the first body 100 and the second body 200 facing the second direction are unobstructed, allowing the surfaces of the first body 100 and the second body 200 facing the second direction to serve as functional areas (such as display areas) of the electronic device. Since the projections of the first body 100 and the second body 200 along the second direction at least partially overlap in the first position, the positions of the first body 100 and the second body 200 in the second direction are different. Therefore, when the second body 200 moves along the first direction X from the first position to the second position, a distance is formed in the second direction between the surface of the first body 100 facing the second direction (such as the first functional surface 101) and the surface of the second body 200 facing the second direction (such as the second functional surface).
[0076] In the third position, the first body 100 and the second body 200 can meet the coplanar condition. The coplanar condition can make the surfaces of the first body 100 and the second body 200 facing the same direction (such as the first functional surface 101 of the first body 100 facing the second direction and the second functional surface of the second body 200 facing the second direction) be located in the same plane or substantially in the same plane, and can also make the height difference between the surfaces of the first body 100 and the second body 200 facing the same direction be less than or equal to the target size (such as 5mm), so that the user can use the first functional surface 101 and the second functional surface 210 of the first body 100 and the second body 200 that meet the coplanar condition in coordination. Figure 2a As shown, in the third position, the first functional surface 101 and the second functional surface 210 may be located on the same plane.
[0077] In some embodiments, in the first position, the second body 200 can be located within the first body 100. The first body 100 may include a first housing. In the first position, the second body 200 can be located within the first housing, eliminating any exposed structure. For example, if the first housing of the first body 100 is a housing for an electronic device, the second body 200's location within the first body 100 in the first position maintains the integrity of the electronic device's appearance in this position, preventing the formation of a joint gap between the first and second bodies 100 and 200.
[0078] The movement of the second body 200 relative to the first body 100 can be achieved by manually applying a force. In order to improve the stability of the force applied to the second body 200, a driving component 530 that can provide a first force can also be provided.
[0079] In some embodiments, the electronic device may include a first target device, a second target device, and a trigger mechanism, wherein the first target device is capable of applying a first force to the second body 200, and the second target device is capable of applying a second force to the second body 200. The first target device or the second target device may be a driving device (such as an electric motor, a motor, or a cylinder) that provides a driving force, with the driving force serving as the corresponding acting force (the first acting force or the second acting force). Alternatively, the first target device or the second target device may be an elastic device (such as a spring, an elastic block, etc.) that provides an elastic force, with the elastic force serving as the corresponding acting force (the first acting force or the second acting force).
[0080] The trigger mechanism can have a first state and a second state. In the first state, the second body 200 is subjected to a first force, and in the second state, the second body 200 is subjected to a second force. The trigger mechanism can trigger both the first target device and the second target device, that is, the state switching of the trigger mechanism can realize the switching of the first target device applying the first force to the second body 200 and the second target device applying the second force to the second body 200. The trigger mechanism can also trigger one of the first target device and the second target device. Taking the example of the trigger mechanism being able to trigger both the second target device and the second target device, that is, when the second body 200 is subjected to the first force and moves, the trigger mechanism is in the first state, and the second body 200 may not be affected by the second force. When the second body 200 needs to be subjected to the second force and perform corresponding movement, the trigger mechanism is in the second state.
[0081] In the first position, the trigger mechanism may be in a first state and the first target device applies a first force to the second body 200 , so that the second body 200 moves along the first direction X to the second position.
[0082] The direction of the first force may be a first direction X, so that the second body 200, when subjected to the first force, moves along the first direction X. A guiding structure (such as a sliding groove structure) may also be provided, and the first direction X is the direction in which the guiding structure guides the movement of the second body 200. When the second body 200 is subjected to the first force, the second body 200 can move along the guiding direction (first direction X) of the guiding structure. The first force may form a target angle (such as 15°, 30°, or 45°) with the first direction X, and the target angle needs to be less than 90°.
[0083] In the second position, the trigger mechanism may be in the second state and the second target device applies a second force to the second body 200 , so that the second body 200 moves along the second direction to the third position.
[0084] The direction of the second force can be the second direction, so that the second body 200 moves in the second direction when the second force is applied. A guide structure (such as a slide structure) can also be provided, and the second direction is the direction in which the guide structure guides the movement of the second body 200. When the second body 200 is subjected to the second force, the second body 200 can move in the guide direction (the second direction) of the guide structure. The second force can form a target angle (such as 15°, 30°, or 45°) with the second direction, and the target angle needs to be less than 90°.
[0085] The first state of the trigger mechanism may be a state in which the second target device is not triggered to apply the second force to the second body 200. That is, in the first state, the second body 200 is subjected to the first force applied by the first target device of the first and second target devices. The second state of the trigger mechanism may be a state in which the second target device is triggered to apply the second force to the second body 200. That is, in the second state, the second body 200 is subjected to the second force applied by the second target device of the first and second target devices. The second body 200 may be subjected to only the second force, or the first target device may apply the first force to the second body 200 in the second state. That is, in the second state, the second body 200 is subjected to both the first force applied by the first target device and the second force applied by the second target device.
[0086] In some embodiments, the first target device may include a first elastic component 510 connecting the first body 100 and the second body 200, and the first acting force at least includes the elastic restoring force of the first elastic component 510. The first elastic component 510 may be a telescopic spring or a constant force spring.
[0087] The electronic device may include an unlocking mechanism 520 , and the unlocking mechanism 520 has a third state and a fourth state.
[0088] In the third state, the movement of the first body 100 and the second body 200 along the first direction X can be restricted. In this state, the first elastic component 510 can be in an energy storage state, that is, the first body 100 and the second body 200 have a tendency to move relative to each other under the elastic restoring force of the first elastic component 510. The first body 100 and the second body 200 are restricted along the first direction X by the unlocking mechanism 520. The unlocking mechanism 520 in the third state can restrict the position of the first body 100 and the second body 200 in at least two directions, such as fixing the first body 100 and the second body 200 relative to each other, or can only restrict the movement of the first body 100 and the second body 200 along the first direction X, allowing the first body 100 and the second body 200 to move in other directions (directions other than the first direction X).
[0089] In the fourth state, the first body 100 and the second body 200 can move relative to each other; in this state, the first elastic component 510 can release kinetic energy, that is, the first body 100 and the second body 200 drive the first body 100 and the second body 200 to move relative to each other along the first direction X under the action of the elastic restoring force of the first elastic component 510.
[0090] In the first position, the unlocking mechanism 520 can switch between a third state and a fourth state; that is, in the first position, the unlocking mechanism 520 can switch between a state in which the first body 100 and the second body 200 are restricted from moving in the first direction X and a state in which the first body 100 and the second body 200 are able to move in the first direction X. If the second body 200 needs to switch from the first position to the second position, the unlocking mechanism 520 can switch from the third state to the fourth state; if the second body 200 needs to switch from the second position to the first position, the unlocking mechanism 520 can switch from the fourth state to the third state.
[0091] During the process of switching from the first position to the second position, the unlocking mechanism 520 may be in the fourth state, so that the second body 200 moves along the first direction X under the elastic restoring force of the first elastic component 510 .
[0092] In this embodiment, the first elastic component 510 may be a constant force spring (constant force spring) to apply a stable elastic restoring force to the second body 200. Because one end of the constant force spring is wound in a coiled structure and disposed on the first body 100, and the other end is connected to the second body 200, the constant force spring can be adjusted to match the travel requirements of the second body 200 by adjusting the number of coils.
[0093] The first elastic component 510 may also be configured as other structures, such as a tension spring, an elastic block, etc.
[0094] To increase the switching speed, during the movement of the second body 200 from the first position to the second position along the first direction X, the elastic restoring force can accelerate the movement of the second body 200. That is, when the second body 200 moves to any two positions in the movement path between the first position and the second position, the movement speed of the second body 200 is different, and the instantaneous speed of the second body 200 at any two positions closer to the first position is less than the instantaneous speed at the position closer to the second position. The first elastic component 510 can be a constant-force spring. During the movement of the second body 200 from the first position to the second position along the first direction X, the elastic restoring force on the second body 200 remains substantially constant and continuously drives the second body 200 to move, thereby enabling the second body 200 to move at a certain acceleration, thereby achieving accelerated movement of the second body 200. Alternatively, the first elastic component 510 can be a tension spring, etc. During the movement of the second body 200 from the first position to the second position along the first direction X, the elastic restoring force of the tension spring decreases but remains in the same direction, thereby enabling the second body 200 to accelerate during movement under the action of the elastic restoring force.
[0095] like Figure 5As shown, in some embodiments, the unlocking mechanism 520 may include a first locking member 521, a driving assembly 522, and a second locking member 523. The first locking member 521 is movably connected to the first body 100, and the second locking member 523 is connected to the second body 200. The first locking member 521 and the second locking member 523 can be relatively connected and separated. The driving assembly 522 causes the first locking member 521 and the second locking member 523 to move relative to each other to achieve switching between connection and separation. The driving assembly 522 provides a fifth force to move the first locking member 521 from a locked position to an unlocked position relative to the first body 100 along the third direction Y. That is, the first locking member 521 can be movably connected to the first body 100; the second locking member 523 can be connected to the second body 200; under the drive of the driving component 522, the first locking member 521 can be moved relative to the first body 100, so that the second locking member 523 and the first locking member 521 can be switched from a connected state to a separated state.
[0096] In order to optimize the size of the electronic device, the third direction Y may be perpendicular to the second direction or the first direction X.
[0097] In order to facilitate slim design, taking the second direction as the thickness direction of the electronic device as an example, in an embodiment where the third direction Y is perpendicular to the second direction, the movement of the first locking member 521 will not occupy the thickness direction of the electronic device, that is, the movement of the first locking member 521 driven by the driving component 522 will not increase the thickness requirement of the electronic device.
[0098] Alternatively, the third direction Y may be perpendicular to the first direction X, where the first direction X is the direction of movement of the second body 200 relative to the first body 100. Taking the first direction X as the length direction of the electronic device as an example, the above arrangement avoids designing a movement path of the first locking member 521 in the length direction of the electronic device. As a result, the movement of the first locking member 521 does not occupy the length direction of the electronic device, thereby reducing the length requirement of the electronic device and improving the structural compactness and optimizing the size of the electronic device.
[0099] The driving component 522 may be an electric motor or the like, and its driving end may move along the third direction Y.
[0100] The unlocking mechanism 520 may include a reset elastic member 524 that applies a sixth force to the first locking member 521. The sixth force is opposite to and less than the fifth force. When the driving assembly 522 applies the fifth force, the reset elastic member 524 overcomes the sixth force applied to the first locking member 521 and drives the first locking member 521 in the direction of the fifth force. When the driving assembly 522 does not apply or stops applying the fifth force, the first locking member 521 moves in the direction of the sixth force under the sixth force provided by the reset elastic member 524, thereby achieving a reset operation. That is, the unlocking mechanism 520 may include a reset elastic member 524 that connects the first body 100 and the first locking member 521. The elastic force of the reset elastic member 524 maintains the connection between the second locking member 523 and the first locking member 521.
[0101] To facilitate locking and unlocking, the unlocking mechanism 520 may include a rotating connector 525 that rotates relative to the first locking member 521 to switch between a first rotational position and a second rotational position. In the first rotational position, the rotating connector 525 restricts relative movement between the first locking member 521 and the second locking member 523. In the second rotational position, the first locking member 521 and the second locking member 523 can move relative to each other. The axis of rotation of the rotating connector 525 is the second direction. That is, the rotation of the rotating connector 525 does not affect the dimensional requirements of the electronic device in the second direction (the thickness direction), facilitating a slimmer design for the electronic device. Specifically, the unlocking mechanism 520 includes a rotating connector 525 that is rotatably connected to the first locking member 521 and connects and disconnects from the second locking member 523 through rotation of the rotating connector 525.
[0102] In the process of switching from the third state to the fourth state, the fifth force drives the first locking member 521 to move to the unlocked position and drives the rotating connecting member 525 to switch from the first rotation position to the second rotation position, so that the second body 200 can move along the first direction X;
[0103] During the process of switching from the fourth state to the third state, the second locking member 523 can drive the rotating connecting member 525 to switch from the second rotation position to the first rotation position and the first locking member 521 overcomes the sixth force to move and reset to limit the movement of the second body 200 relative to the first body 100.
[0104] By providing the rotating connector 525, an indirect connection between the first locking member 521 and the second locking member 523 can be achieved, so that the unlocking operation requires the driving assembly 522 to drive the first locking member 521, while the locking operation does not require driving the first locking member 521. When an external force (which can be provided by a driving component (such as a motor) or manually pushed) is applied to the second body 200 to move to the first position, the second locking member 523 contacts and applies a force to the rotating connector 525, thereby driving the rotating connector 525 to rotate relative to the first locking member 521. After the first locking member 521 overcomes the sixth force and moves and returns to its original position, the operation of connecting the first locking member 521 and the second locking member 523 via the rotating connector 525 is completed.
[0105] The unlocking mechanism 520 may also be configured as another structure, for example, by providing a driving component (such as an electric motor) so that the driving end of the driving component can move in a direction perpendicular to the first direction X (the third direction Y or the second direction). By providing a mating portion on the second body 200 that mates with the driving end in a concave-convex manner, when the driving end and the mating portion are mated in a concave-convex manner, the movement of the first body 100 and the second body 200 in the first direction X can be restricted. When the driving end and the mating portion are separated in a concave-convex manner, the first body 100 and the second body 200 can move relative to each other.
[0106] like Figure 6-Figure 9 As shown, in some embodiments, the first target device may include a driving component 530 and a transmission assembly 540. The driving component 530 may be connected to the first body 100 and may have a movable driving end. The transmission assembly 540 may include a power input end connected to the driving end and a power output end movable along a first direction X, and the power output end is connected to the second body 200. The power input end of the driving assembly inputs a first stroke, and the power output end of the transmission assembly 540 outputs a second stroke, where the second stroke is greater than the first stroke.
[0107] By providing the transmission assembly 540, the required travel of the driving end of the driving component 530 is reduced while still meeting the required travel (second travel) of the second body 200. This allows the speed of the second body 200 to be increased while maintaining the same speed, thereby increasing the speed at which the second body 200 can switch between different positions. Furthermore, while still meeting the required travel speed of the second body 200, the speed of the driving end of the driving component 530 can be reduced, enabling more precise adjustment of the driving end of the driving component 530 to reduce vibration and other issues. Furthermore, a driving component 530 (e.g., a motor) with a smaller required travel can be used, reducing its size and optimizing its spatial layout. Furthermore, using a smaller travel distance to achieve long-distance sliding reduces undesirable issues such as jamming or blocking of sliding components of the second body 200 during movement, and also reduces the space required for sliding. By increasing the travel (e.g., by a factor of two or more), the number of revolutions and power requirements of the power source (e.g., motor) are effectively reduced.
[0108] like Figure 10 As shown, in some embodiments, the transmission assembly 540 may include a sliding component 541 , a gear 542 , a first rack 543 and a second rack 544 .
[0109] The sliding member 541 can be connected to the driving end; the sliding member 541 can be directly connected to the driving end, or the sliding member 541 can be indirectly connected to the driving end through other connecting parts. The sliding member 541 can serve as the power input end of the transmission assembly 540, that is, the movement form and speed of the driving end are the same as the movement form and speed of the sliding member 541.
[0110] The gear 542 and the sliding member 541 can be rotatably matched, and the gear 542 can include a first sub-gear 5421 and a second sub-gear 5422. Figure 11 As shown, the first and second sub-gears 5421 and 5422 can be coaxially arranged. The transmission ratio between the first and second sub-gears 5421 and 5422 can be greater than 1, equal to 1, or less than 1. The specific transmission ratio between the first and second sub-gears 5421 and 5422 can be determined based on actual needs and is not specifically limited herein and falls within the scope of this disclosure. By combining different gears with different racks, stability is further improved.
[0111] The first rack 543 can be connected to the first body 100 and can mesh with the first sub-gear 5421. The second rack 544 can be connected to the second body 200 and can mesh with the second sub-gear 5422. The first rack 543 can be relatively parallel to the second rack 544, and the gear 542 can be clamped between the first rack 543 and the second rack 544, which can improve the stability of the movement of the gear 542 and thus improve the operational stability of the transmission assembly 540.
[0112] The driving component 530 may include a rotary motor 531, a screw 532, a guide rod 533, etc. The sliding component 541 includes a nut or threaded structure that cooperates with the screw 532, and the guide rod 533 slidably cooperates with the sliding component 541. The screw 532 and the guide rod 533 may extend along the first direction X. When the rotary motor 531 drives the screw 532 to rotate, the sliding component 541 slides along the guide rod 533.
[0113] The screw 532 may be a double-threaded screw structure. The double-threaded screw design may improve motion stability and reduce processing precision requirements.
[0114] Furthermore, a guide 550 may be provided on the first body 100 , and the guide 550 may guide the slider with the second rack 544 to slide along the first direction X. The slider with the second rack 544 may be connected to the second body 200 via a connector.
[0115] In order to further improve the structural stability, the guide member 550 may further have a gear guide groove 551 arranged along the first direction X, and the rotating shaft of the gear 542 may be slidably arranged in the gear guide groove 551.
[0116] In some embodiments, the trigger mechanism includes a third body 300 and a locking device 310 .
[0117] Among them, the second target device can connect the second body 200 and the third body 300, the third body 300 can move along the first direction X relative to the first body 100, and the second body 200 can move along the second direction relative to the third body 300; that is, the third body 300 can provide a setting position for the second target device, and during the switching process between the first position and the second position, the second target device moves with the second body 200 (the third body 300).
[0118] The locking device 310 can have a fifth state and a sixth state. In the fifth state, the locking device 310 can limit the relative movement of the second body 200 and the third body 300. In the sixth state, the second body 200 and the third body 300 can move along the second direction. That is, the locking device 310 can limit the relative movement of the second body 200 and the third body 300 when necessary (such as switching between the first position and the second position).
[0119] In the first position, the locking device 310 can be in the fifth state, and the first force drives the second body 200 and the third body 300 to move synchronously along the first direction X, so that the second body 200 moves to the second position; in the second position, the locking device 310 switches to the sixth state, and the second force drives the second body 200 to move synchronously along the second direction, so that the second body 200 moves to the third position.
[0120] Among them, the third body 300 is an intermediate connecting member, which enables the second target device to connect the second body 200 and the third body 300, so that the position of the second target device relative to the third body 300 remains unchanged, and the second force causes the second body 200 and the third body 300 to move relative to each other to realize the movement of the second body 200 along the second direction.
[0121] The third body 300 can serve as a carrier for the second target device, preventing the second target device from being placed on the first body 100 and affecting the movement of the second body 200. Furthermore, it can effectively reduce the precision requirements for the fit between the first body 100 and the second body 200, applying a second force when the second body 200 moves to the second position, and reducing the precision requirements for the second target device and the second position. For example, if the second target device is placed on the first body 100, it is necessary to prevent the second target device from interacting with the second body 200 during the switching process between the first and second positions, but to be able to apply a second force to the second body 200 after the second body 200 reaches the second position. This requires improving the relative positional accuracy of the second target device relative to the second body 200 that has moved to the second position.
[0122] In some embodiments, the electronic device may include a first slide rail structure that slidably connects the second body 200 and the third body 300; the direction of the second force is different from the second direction. The direction of the second force and the second direction may form a target angle (e.g., 15°, 30°, 45°, or 90°). When the second target device applies the second force to the second body 200, the second body 200 slides relative to the third body 300 along the first slide rail structure, causing the second body 200 to move in the second direction.
[0123] like Figure 13 and Figure 14As shown, the second target device may include a second elastic member 610 and a sliding engagement structure 620 that slidably connects the first body 100 and the second body 200. The second elastic member 610 is configured to apply an elastic force along a third direction Y to the second body 200. The sliding engagement structure 620 enables the first body 100 and the second body 200 to slide in a second direction, which is different from the second direction. The second direction may be a direction perpendicular to the plane shown in the figure.
[0124] Here, under the elastic force of the second elastic component 610 , the sliding fitting structure 620 guides the second body 200 to slide relative to the first component along the second direction.
[0125] Since the elastic force of the second elastic component 610 may not be arranged along the second direction, the flexibility of the arrangement of the second elastic component 610 is improved.
[0126] The second elastic component 610 can be a torsion spring, a tension spring, etc. In the embodiment where the second elastic component 610 is a torsion spring, its size in the thickness direction (second direction) of the electronic device can be further reduced, facilitating the slim design of the electronic device.
[0127] Alternatively, the second target device may include an auxiliary driving component 530, which is activated when the second body 200 moves to the second position and applies a second force to the second body 200. The auxiliary driving component 530 may include a driving member such as a motor.
[0128] The first slide rail structure can be a structure that enables the second body 200 to move along the second direction to a third position (e.g., during a lifting operation). Guided by the first slide rail structure, the second body 200 can move along the second direction when subjected to a second force. Because the second force and the second direction can be different, the first slide rail structure enables movement along the second direction, thereby increasing the flexibility of arranging the second target device that applies the second force. For example, using a torsion spring as an example, this prevents elastic deformation along the thickness direction and does not affect the thickness of the electronic device.
[0129] In some embodiments, the locking device 310 may include a sliding member 311 and an elastic member 312. The sliding member 311 slides relative to the third body 300 along the third direction Y to have a fifth position and a sixth position. When the sliding member 311 is in the fifth position, the locking device 310 is in the fifth state. When the sliding member 311 is in the sixth position, the locking device 310 is in the sixth state.
[0130] Among them, the elastic member 312 can apply elastic force to the sliding member 311 so that the sliding member 311 moves to the fifth position; when the first force drives the second body 200 to move to the second position, the second body 200 drives the sliding member 311 to switch from the fifth position to the sixth position, so that the locking device 310 can be in the sixth state.
[0131] That is, under the action of the first force, the sliding member 311 can be driven to switch from the fifth position to the sixth position, thereby realizing the switching of the locking device 310 between the fifth state and the sixth state, avoiding the additional setting of a driving device for driving the locking device 310 to switch states, and simplifying the structure.
[0132] The first body 100 may have a pushing member 111 that cooperates with the sliding member 311. When the first force drives the second body 200 to move to the second position, the pushing member 111 contacts the pushing surface 3112 of the sliding member 311 so that the sliding member 311 overcomes the elastic force of the elastic member 312 and slides along the third direction Y, thereby switching the sliding member 311 from the fifth position to the sixth position, and switching the locking device 310 from the fifth state to the sixth state, so that the second body 200 can move relative to the third body 300 along the second direction.
[0133] In which, the pushing surface 3112 and the pushing member 111 can be inclined relative to the first direction X and the third direction Y. During the relative movement of the pushing member 111 and the sliding member 311 along the first direction X, the movement of the pushing member 111 and the sliding member 311 along the third direction Y is achieved through the contact between the pushing surface 3112 and the pushing member 111.
[0134] like Figure 15 As shown, a groove structure 203 can be provided on the connecting member 202 of the second body 200, and the sliding member 311 can have a protrusion 3111 that engages with the groove structure 203. In the first position, the sliding member 311 is subjected to the elastic force of the elastic member 312, so that the protrusion 3111 of the sliding member 311 engages with the groove 203 of the second body 200, thereby achieving the function of limiting the second body 200 and the third body 300.
[0135] In embodiments where the second target device includes a second elastic component 610 and a sliding engagement structure 620 that slidably connects the first body 100 and the second body 200, the second elastic component 610 can connect the second body 200 (via the connector 202) and the third body 300. For example, taking the second elastic component 610 as a torsion spring, to facilitate adjustment of the magnitude of the second applied force, multiple first torsion spring connecting portions 611 and multiple second torsion spring connecting portions 612 can be provided on the third body 300. These multiple first torsion spring connecting portions 611 and multiple second torsion spring connecting portions 612 are positioned differently, with one end of the second elastic component 610 connected to one of the multiple first torsion spring connecting portions 611 and the other end connected to one of the multiple second torsion spring connecting portions 612. By adjusting the position of the second elastic component 610 relative to the multiple first torsion spring connecting portions 611 and multiple second torsion spring connecting portions 612, the elastic restoring force at both ends of the second elastic component 610 (torsion spring) can be adjusted, thereby adjusting the magnitude of the second applied force.
[0136] The sliding engagement structure 620 may include a sliding groove 621 disposed on the third body 300 and a sliding rod 622 connected to the second body 200. The sliding groove 621 may include an inclined section arranged obliquely relative to the second direction and the third direction Y, so that when the second force drives the second body 200 to move relative to the third body 300 along the third direction Y, the sliding rod 622 slides along the sliding groove 621 to achieve movement of the second body 200 along the second direction (a lifting operation), thereby enabling the second body 200 to move from the second position to the third position. The sliding groove 621 may also include a parallel section disposed along the first direction, so that when the sliding rod 622 slides to the parallel section, it provides support for the second body 200, thereby improving the stability of the second body 200 in the third position.
[0137] Alternatively, the sliding groove 621 may be provided on the second body 200 , and the sliding rod 622 may be connected to the third body 300 .
[0138] Furthermore, in order to improve the stability of the relative movement between the second body 200 and the third body 300 , the number of the sliding fitting structures 620 can be multiple.
[0139] Research has found that when a user manually pulls the second body 200 out of the first body 100, the direction of the pulling force must be stable and the magnitude of the pulling force must be controlled within a reasonable range to avoid damaging the internal mechanical structure of the electronic device. Furthermore, after pulling the second body 200 out of the first body 100, the position of the second body 200 and the first body 100 must be adjusted to avoid a step difference between the two and affecting the user experience. This operation undoubtedly causes inconvenience to the user.
[0140] Therefore, the electronic device may include a first target device and a second target device, such that the first target device applies a first force along a first direction X to the second body 200. Under the action of the first force, the second body 200 can move from within the first body 100 to outside the first body 100. Furthermore, under the action of a second force provided by the second target device, the second body 200 can move to a state where it satisfies the coplanarity condition with the first body 100. By switching the trigger mechanism between the first and second states, the second body 200 can be subjected to different forces (the first force and the second force).
[0141] In some embodiments, the electronic device may include a target sensor and a control circuit. The target sensor can recognize user gestures, and the control circuit can control a first target device based on the user gesture to drive the second body 200 to move relative to the first body 100. The target sensor and the control circuit may form a trigger mechanism to facilitate the operation of the first target device applying a first force to the second body 200. The target sensor and the control circuit may also be independent of the trigger mechanism.
[0142] In an embodiment where the first target device includes a first elastic component 510 and an unlocking mechanism 520, the control circuit can control the unlocking mechanism 520 to switch between a third state and a fourth state. In an embodiment where the first target device includes a driving component 530 and a transmission assembly 540, the control circuit can control the driving component 530 to switch between an on-off state.
[0143] In some other embodiments, the electronic device may have a touch button that can be touched by a user, and the touch button can control the first target device to drive the second body 200 to move relative to the first body 100 .
[0144] In an embodiment where the first target device includes a first elastic component 510 and an unlocking mechanism 520, the touch button can control the unlocking mechanism 520 to switch between a third state and a fourth state. In an embodiment where the first target device includes a driving component 530 and a transmission assembly 540, the touch button can control the driving component 530 to switch between starting and stopping.
[0145] The electronic device may also be provided with control software, which can control the first target device to drive the second body 200 to move relative to the first body 100 when the user meets preset control conditions of the control software.
[0146] Based on the user's current usage mode (e.g., audio and video entertainment or office chat), the control software can control the first target device to drive the second body 200 to move relative to the first body 100. For example, when the user needs to work and chat, the control software can control the first target device to drive the second body 200 to move relative to the first body 100, so that the second body 200 can be used as a secondary screen.
[0147] In some embodiments, the second target device can provide a third force that causes the second body 200 to move from the third position to the second position; wherein the third force can be opposite to the second force. In embodiments where the second target device includes an auxiliary drive component 530, the auxiliary drive component 530 can include a motor, and the first force or the fourth force is provided by the forward and reverse rotation of the motor.
[0148] The first target device can provide a fourth force, which causes the second body 200 to move from the second position to the first position. In an embodiment where the first target device includes a driving component 530 and a transmission assembly 540, the driving component 530 can include a motor, and the first force or the fourth force is provided by the forward and reverse rotation of the motor.
[0149] The first target device and the second target device may also be the same target device, and a transmission structure may be used to enable the second body 200 to move in different directions under the action of the same target device.
[0150] In some embodiments, the first body 100 may include a first display screen, and the second body 200 may include a second display screen. In a first position, the first display screen is exposed and the second display screen is at least partially obscured by the first body 100. In a third position, the first and second displays do not obstruct each other and meet a coplanarity condition. The coplanarity condition includes that the first and second displays are located in the same plane, or that the height difference between the first and second displays is less than or equal to a target size (e.g., 5 mm), and that the user's ability to coordinate the first and second displays that meet the coplanarity condition (e.g., jointly displaying content information or using one display screen as the primary screen and the other as the secondary screen) is not affected.
[0151] To achieve writing synergy, the distance between the first and second displays can also meet a predetermined size. That is, along the first direction X, the distance between the first and second displays can be 0 or a value greater than 0. When the distance meets the predetermined size (e.g., less than 3 mm), the distance between the first and second displays will not affect the display of the same information, thus preventing the distance between the first and second displays from being too large and affecting the user experience.
[0152] The electronic device provided in the embodiments of the present application may have a flexible screen. The area of the flexible screen used for displaying output includes a deformable area. When the second body 200 is movable to different positions relative to the first body 100, the area of the deformable area may be different.
[0153] An electronic device may include a fourth body 400, which is movably connected to the first body 100 and has a first configuration and a second configuration. The angle between the fourth body 400 and the first body 100 in the first configuration is different from the angle between the fourth body 400 and the first body 100 in the second configuration. For example, in the case of a laptop computer, the fourth body 400 may be the laptop's keyboard-equipped body portion, while the first body 100 and the second body 200 (including the third body 300) may be the laptop's display-equipped body portion. The angles between the fourth body 400 and the first body 100 (the second and third bodies 300) may vary in different configurations to accommodate different usage requirements. For example, in the first configuration, the fourth body 400 and the first body 100 can be folded relative to each other, i.e., the angle between the fourth body 400 and the first body 100 can be 0° or 180°. In the second configuration, the angle between the fourth body 400 and the first body 100 can be acute or obtuse (e.g., 60°, 90°, or 120°).
[0154] The various embodiments in this specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the various embodiments can be referenced to each other.
[0155] The above description of the disclosed embodiments is intended to enable one skilled in the art to implement or use the present application. Various modifications to these embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application is not limited to the embodiments shown herein, but is intended to conform to the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. An electronic device comprising: first ontology; a second body, the second body being movable relative to the first body so that the second body can switchably have a first position, a second position, and a third position relative to the first body; During the process of switching from the first position to the third position, the second body moves from the first position to the second position along a first direction, and then moves to the third position along a second direction, wherein the first direction is different from the second direction; In the first position, projections of the first body and the second body along the second direction at least partially overlap; In the second position, projections of the first body and the second body along the second direction do not overlap with each other; In the third position, the first body and the second body meet a coplanar condition. 2 . The electronic device according to claim 1 , wherein in the first position, the second body is located inside the first body.
3. The electronic device according to claim 1, comprising: a first target device capable of applying a first force to the second body; a second target device capable of applying a second force to the second body; a trigger mechanism, the trigger mechanism having a first state and a second state, wherein in the first state, the second body is subjected to the first force, and in the second state, the second body is subjected to the second force; in, In the first position, the trigger mechanism is in the first state and the first target device applies the first force to the second body, so that the second body moves along the first direction to the second position; In the second position, the trigger mechanism is in the second state and the second target device applies the second force to the second body, so that the second body moves along the second direction to the third position.
4. The electronic device according to claim 3, wherein the first target device comprises a first elastic component connecting the first body and the second body, and the first acting force comprises at least an elastic restoring force of the first elastic component; The electronic device includes an unlocking mechanism, the unlocking mechanism having a third state and a fourth state. In the third state, the movement of the first body and the second body along the first direction is restricted. In the fourth state, the first body and the second body can move relative to each other. In the first position, the unlocking mechanism is switchable between the third state and the fourth state; During the process of switching from the first position to the second position, the unlocking mechanism is in the fourth state, so that the second body moves along the first direction under the elastic restoring force of the first elastic component. 5 . The electronic device according to claim 4 , wherein when the second body moves from the first position to the second position along the first direction, the elastic restoring force can accelerate the movement of the second body.
6. The electronic device according to claim 3, wherein the first target device comprises a driving component and a transmission assembly, the driving component being connected to the first body and having a movable driving end; the transmission assembly comprising a power input end connected to the driving end and a power output end movable in the first direction, the power output end being connected to the second body; in, The power input end of the transmission assembly inputs a first stroke, and the power output end of the transmission assembly outputs a second stroke, and the second stroke is greater than the first stroke.
7. The electronic device according to claim 3, wherein the trigger mechanism comprises: a third body, wherein the second target device connects the second body and the third body, the third body being movable relative to the first body along the first direction, and the second body being movable relative to the third body along the second direction; a locking device having a fifth state and a sixth state, wherein in the fifth state, the locking device restricts relative movement between the second body and the third body, and in the sixth state, the second body and the third body are able to move along the second direction; in, In the first position, the locking device is in the fifth state, and the first force drives the second body and the third body to move synchronously along the first direction, so that the second body moves to the second position; In the second position, the locking device switches to the sixth state, and the second force drives the second body to move synchronously along the second direction, so that the second body moves to the third position.
8. The electronic device according to claim 7, comprising a first slide rail structure slidably connecting the second body and the third body; the direction of the second force is different from the second direction; when the second target device applies the second force to the second body, the second body slides relative to the third body along the first slide rail structure, so that the second body moves in the second direction; and / or The locking device includes a sliding member and an elastic member, the sliding member slides relative to the third body along the third direction to have a fifth position and a sixth position, the locking device is in the fifth state when the sliding member is in the fifth position, and is in the sixth state when the sliding member is in the sixth position; in, The elastic member applies an elastic force to the sliding member so that the sliding member moves to the fifth position; when the first force drives the second body to move to the second position, the second body drives the sliding member to switch from the fifth position to the sixth position, so that the locking device can be in the sixth state.
9. The electronic device according to claim 3, comprising a target sensor and a control circuit, wherein the target sensor is capable of recognizing a user gesture, and the control circuit is capable of controlling the first target device to drive the second body to move relative to the first body based on the user gesture; Alternatively, the electronic device has a touch button that can be touched by a user, and the touch button can control the first target device to drive the second body to move relative to the first body.
10. The electronic device according to claim 3, wherein the second target device is capable of providing a third force, wherein the third force causes the second body to move from the third position to the second position; and / or The first target device can provide a fourth force, and the fourth force causes the second body to move from the second position to the first position.
11. The electronic device according to any one of claims 1 to 10, wherein the first body has a first display screen, and the second body has a second display screen; in the first position, the first display screen is exposed and the second display screen is at least partially blocked by the first body; In the third position, the first display screen and the second display screen do not block each other and meet a coplanar condition and / or a distance between the first display screen and the second display screen meets a predetermined size; Alternatively, the electronic device has a flexible screen, an area of the flexible screen used for displaying output includes a deformable area, and when the second body is movable to different positions relative to the first body, the area of the deformable area is different; And / or, the electronic device includes a fourth body, which is movably connected to the first body and has a first form and a second form, and the angle between the fourth body and the first body in the first form is different from the angle between the fourth body and the first body in the second form.