Electronic device

By designing a first input component with two input states in an electronic device and switching its input states at different locations, the problem of single input structure and poor adaptability of existing electronic devices is solved, and a higher adaptability and diversified input methods are achieved.

CN119987491APending Publication Date: 2025-05-13LENOVO (BEIJING) LTD
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Patent Information

Application Number
CN202510127641.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-27
Publication Date
2025-05-13

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Abstract

The embodiment of the invention discloses electronic equipment. The electronic equipment comprises a first display screen; the first input component is provided with a first position and a second position relative to the first display screen; at the first position, the first input assembly displays a first input state; at the second position, the first input assembly displays a second input state; wherein the first input state is different from the second input state.
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Description

Technical Field

[0001] The present application relates to the field of electronic technology, and in particular to an electronic device. Background Art

[0002] Electronic devices are devices that people often use; in the related art, electronic devices include input structures, the input structures have a single form, and the adaptability of electronic devices is poor. Summary of the invention

[0003] In view of this, an embodiment of the present application hopes to provide an electronic device.

[0004] To achieve the above purpose, the technical solution of this application is implemented as follows:

[0005] An embodiment of the present application provides an electronic device, including:

[0006] First display screen;

[0007] a first input assembly having a first position and a second position relative to the first display screen;

[0008] In the first position, the first input component displays a first input state; in the second position, the first input component displays a second input state; wherein the first input state and the second input state are different.

[0009] In some optional implementations, the method further includes:

[0010] A first body; the first display screen and the first input component are arranged on the first body;

[0011] A second body, rotatably connected to the first body;

[0012] The second display screen is arranged on the second body.

[0013] In some optional implementations, the method further includes:

[0014] A first body; the first input component is disposed on the first body;

[0015] a second input component, disposed on the first body and corresponding to the position of the first input component;

[0016] In the first position, the first input component is overlapped on one side of the second input component; in the second position, the first input component and the second input component at least partially do not overlap, and the non-overlapping portion is the portion of the second input component blocked by the first input component in the first position.

[0017] In some optional implementations, the second input component performs input by sensing the position of the operating body.

[0018] In some optional implementations, the first display screen and the first input component are disposed adjacent to a first body; or, the first display screen and the first input component are disposed on different bodies.

[0019] In some optional implementations, the first input component includes at least two physical keys, and the relative positions of the at least two physical keys can be changed to switch between the first input state and the second input state; or,

[0020] The first input component includes a display module capable of displaying a change to switch between the first input state and the second input state.

[0021] In some optional implementations, the method further includes:

[0022] A first body; the first input assembly is rotatably connected to the first body; in a first position, the first input assembly is stacked on one side of the first body; in a second position, at least a portion of the first input assembly is staggered from the first body;

[0023] The second body is rotatably connected to the first body to achieve relative opening and closing of the second body and the first body; the first display screen is arranged on the second body.

[0024] In some optional implementations, the method further includes:

[0025] A first body having a connecting hole;

[0026] A connecting shaft is rotatably inserted into the connecting hole and connected to the first input assembly; the first input assembly is rotatably connected to the first body through the connecting shaft; in a first position, the first input assembly is stacked on one side of the first body; in a second position, at least a portion of the first input assembly is located outside the first body;

[0027] During the process of the first input assembly rotating from the first position to the second position via the connecting shaft, the first input assembly descends axially relative to the first body.

[0028] In some optional implementations, the electronic device further includes:

[0029] at least one support angle disposed on the first input assembly, the at least one support angle being located on a side of the first input assembly opposite to the first body;

[0030] In the first position, the at least one supporting angle is in contact with the first body; in the second position, the at least one supporting angle is used to contact with a bearing surface, which is a surface for bearing electronic equipment.

[0031] In some optional implementations, the method further includes:

[0032] The control device is used to control the first input component to switch between a first input state and a second input state when detecting that the first input component switches between a first position and a second position. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] Figure 1 This is an optional structural diagram of an electronic device in an embodiment of the present application, wherein the first input component is in a first position;

[0034] Figure 2 This is an optional structural diagram of an electronic device in an embodiment of the present application, wherein the first input component is in the second position;

[0035] Figure 3 This is another optional structural diagram of the electronic device in the embodiment of the present application, wherein the first input component is in the first position;

[0036] Figure 4 This is another optional structural diagram of the electronic device in the embodiment of the present application, wherein the first input component is in the second position;

[0037] Figure 5 This is another optional structural diagram of the electronic device in the embodiment of the present application, wherein the first input component is in the first position;

[0038] Figure 6 This is another optional structural diagram of the electronic device in the embodiment of the present application, wherein the first input component is in the second position;

[0039] Figure 7 This is an optional structural diagram of the first input component in the embodiment of the present application;

[0040] Figure 8 This is a schematic diagram of an optional structure of a connecting shaft in an embodiment of the present application;

[0041] Fig. 9 This is another optional structural diagram of the electronic device in the embodiment of the present application, wherein the first input component is in the first position;

[0042] Fig.10 This is another optional structural diagram of the electronic device in the embodiment of the present application, wherein the first input component is in the second position;

[0043] Fig.11 : is an optional structural diagram of the first input component in the embodiment of the present application, wherein the first input component is in the first input state, F1 is the first direction, and F2 is the second direction;

[0044] Fig.12 : is an optional structural diagram of the first input component in the embodiment of the present application, wherein the first input component is in the second input state, F1 is the first direction, and F2 is the second direction;

[0045] Fig.13 This is another optional structural diagram of the first input component in the embodiment of the present application, wherein the first input component is in the first input state;

[0046] Fig.14 for Fig.13 Schematic diagram of some structures;

[0047] Fig.15 This is another optional structural diagram of the first input component in the embodiment of the present application, wherein the first input component is in the second input state;

[0048] Fig.16 This is another optional partial structural diagram of the first input component in the embodiment of the present application;

[0049] Fig.17 This is another optional partial structural diagram of the first input component in the embodiment of the present application;

[0050] Fig.18 This is another optional partial structural diagram of the first input component in the embodiment of the present application;

[0051] Fig.19 for Fig.18 Schematic diagram of the local structure;

[0052] Fig. 20 for Fig.18 Schematic diagram of the local structure;

[0053] Fig.21 It is another optional partial structural diagram of the first input component in the embodiment of the present application, wherein the first input component is in the first input state;

[0054] Fig. 22 It is another optional partial structural diagram of the first input component in the embodiment of the present application, wherein the first input component is in the second input state;

[0055] Fig.23 for Fig.21 Schematic diagram of the local structure;

[0056] Fig.24 Schematic diagram of another optional partial structure of the first input component in the embodiment of the present application, wherein the first input component is in the first input state;

[0057] Fig.25 Schematic diagram of another optional partial structure of the first input component in the embodiment of the present application, wherein the first input component is in the second input state;

[0058] Fig.26 This is another optional partial structural diagram of the first input component in the embodiment of the present application;

[0059] Fig. 27 A schematic diagram of the structure of the input circuit of the first input component in the embodiment of the present application;

[0060] Fig.28 It is another structural schematic diagram of the input circuit of the first input component in the embodiment of the present application, wherein the first input component is in the first input state;

[0061] Fig.29 It is another structural schematic diagram of the input circuit of the first input component in the embodiment of the present application, wherein the first input component is in the second input state;

[0062] Fig.30 is another structural schematic diagram of the input circuit of the first input component in an embodiment of the present application, wherein the first input component is in a first input state;

[0063] Fig.31 is another structural schematic diagram of the input circuit of the first input component in the embodiment of the present application, wherein the first input component is in the second input state;

[0064] Fig.32 This is a schematic diagram of an optional partial structure of the first input component in the embodiment of the present application;

[0065] Fig.33 This is another optional partial structural diagram of the first input component in the embodiment of the present application.

[0066] 1. The first body is provided with a plurality of movable members, each of which is provided with a plurality of movable members, each of which is provided with a plurality of movable members. 2. The first body is provided with a plurality of movable members, each of which is provided with a plurality of movable members. 3. The first body is provided with a plurality of movable members, each of which is provided with a plurality of movable members. DETAILED DESCRIPTION

[0067] The technical solution of the present application is further elaborated in detail below in conjunction with the accompanying drawings and specific embodiments of the specification.

[0068] In the embodiments of the present application, it should be noted that, unless otherwise specified and limited, the term "connection" should be understood in a broad sense. For example, it can be an electrical connection or a connection between two components. It can be a direct connection or an indirect connection through an intermediate medium. For ordinary technicians in this field, the specific meanings of the above terms can be understood according to the specific circumstances.

[0069] It should be noted that the terms "first\second\third" involved in the embodiments of the present application are only used to distinguish similar objects, and do not represent a specific order for the objects. It is understandable that the specific order or sequence of "first\second\third" can be interchanged where permitted. It should be understood that the objects distinguished by "first\second\third" can be interchanged where appropriate, so that the embodiments of the present application described herein can be implemented in an order other than those illustrated or described herein.

[0070] The following combination Figures 1 to 33 The electronic device described in the embodiments of the present application is described in detail.

[0071] The present application describes an electronic device, including: a first display screen 400 and a first input component 300. The first input component 300 has a first position and a second position relative to the first display screen 400; in the first position, the first input component 300 displays a first input state; in the second position, the first input component 300 displays a second input state; wherein the first input state and the second input state are different.

[0072] In the related art, the electronic device includes an input structure, the input structure has a single form, and the adaptability of the electronic device is poor. However, the electronic device of the present application includes a first input component 300, and the first input component 300 has two different input states, a first input state and a second input state, thereby greatly improving the adaptability of the electronic device. At the same time, the first input component 300 has a first position and a second position relative to the first display screen 400. In the first position, the first input component 300 displays the first input state; in the second position, the first input component 300 displays the second input state; thereby, the first input component 300 can have different input states in different positions, thereby further improving the adaptability of the electronic device.

[0073] In the embodiments of the present application, the structure of the electronic device is not limited. For example, the electronic device can be a tablet computer, a mobile phone, a game console, or a laptop computer.

[0074] In the embodiment of the present application, the structure of the first display screen 400 is not limited. For example, the first display screen 400 may include a display.

[0075] In the embodiment of the present application, the first input component 300 has an input function, and information can be input into the electronic device through the first input component 300.

[0076] The implementation method of the first input component 300 having the first position and the second position relative to the first display screen 400 is not limited. For example, the first input component 300 can have the first position and the second position relative to the first display screen 400 by translation. For another example, the first input component 300 can have the first position and the second position relative to the first display screen 400 by rotation. Here, the first input component 300 rotates from the first position to the second position by a first angle. The value of the first angle is not limited. For example, Figure 1 and Figure 2 As shown, the first angle can be 90 degrees. Of course, the first angle can also be non-90 degrees. As an example, the first angle can be 45 degrees, 60 degrees, 120 degrees, 150 degrees, 180 degrees, etc.

[0077] The relative position relationship between the first input component 300 and the first display screen 400 is not limited.

[0078] For example, the first input component 300 and the first display screen 400 may be disposed on one body. As an example, the first display screen 400 and the first input component 300 may be disposed adjacent to the first body 100; here, the first input component 300 may be disposed rotatably or translatively relative to the first body 100. In an application, Figure 1 and Figure 2As shown, the first input assembly 300 can be rotatably arranged relative to the first body 100, and the first input assembly 300 can be Fig.11 The first position shown is rotated to Figure 2 As another example, Figure 3 and Figure 4 As shown, the electronic device may further include a first body 100; a first display screen 400 and a first input assembly 300 may be disposed on the first body 100; a second body 200 and the first body 100 may be rotatably connected via a hinge structure; and a second display screen 600 may be disposed on the second body 200. Here, the structure of the second display screen 600 is not limited. For example, the second display screen 600 may include a display. Here, the first display screen 400 and the first input assembly 300 may be disposed adjacent to the first body 100.

[0079] For another example, the first display screen 400 and the first input component 300 may be disposed on different bodies. Figure 5 and Figure 6 As shown, the electronic device may include a first body 100 and a second body 200, and the first body 100 and the second body 200 may be rotatably connected via a hinge structure. The first display screen 400 may be disposed on the second body 200, and the first input component 300 may be disposed on the first body 100. In one application, Figure 5 and Figure 6 The first input assembly 300 can be rotatably arranged relative to the first body 100, and the first input assembly 300 can be Figure 5 The first position shown is rotated to Figure 6 The second position is shown.

[0080] The structure of the first input component 300 is not limited. For example, the first input component 300 may include at least two physical keys 310, and the at least two physical keys 310 may have a first input state and a second input state by changing their positions, and the at least two physical keys 310 may also have a first input state and a second input state by changing their functions. As an example, the first input component 300 includes at least two physical keys 310, and the relative positions of the at least two physical keys 310 can change to switch between the first input state and the second input state.

[0081] For another example, the first input component 300 may include a display module, and the display of the display module can be changed to switch between a first input state and a second input state. Here, the structure of the display module is not limited. As an example, the display module may include a display screen, and the display module can display at least two input buttons, and the arrangement of the at least two input buttons can be different to have a first input state and a second input state, and here, the functions of the input buttons can be the same or different. Of course, the display group can also display the same arrangement of the input buttons, and display different functions of the input buttons to have a first input state and a second input state.

[0082] In some optional implementations of the embodiments of the present application, the electronic device may further include: a first body 100 and a second input component 500. The first input component 300 is disposed on the first body 100; the second input component 500 is disposed on the first body 100, and the position of the second input component 500 corresponds to that of the first input component 300; in the first position, the first input component 300 is stacked on one side of the second input component 500, such as Figure 1 and Figure 3 As shown; in the second position, the first input component 300 and the second input component 500 at least partially do not overlap, and the non-overlapping portion is the portion of the second input component 500 that is blocked by the first input component 300 in the first position, such as Figure 2 and Figure 4 shown.

[0083] In this implementation, the second input component 500 has an input function. The structure of the second input component 500 is not limited. For example, the second input component 500 can input by sensing the position of the operating body. As an example, the second input component 500 can be a handwriting board, a gesture touch pad, etc.

[0084] In some optional implementations of the embodiments of the present application, the electronic device may further include a first body 100 and a second body 200. The first input component 300 is rotatably connected to the first body 100; in the first position, the first input component 300 is stacked on one side of the first body 100; in the second position, at least part of the first input component 300 is staggered with the first body 100; the second body 200 is rotatably connected to the first body 100 to achieve relative opening and closing of the second body 200 and the first body 100.

[0085] In this implementation, the first display screen 400 can be disposed on the second body 200, such as Figure 5 and Figure 6 Of course, the first display screen 400 is disposed on the first body 100, as shown in FIG. Figure 3 and Figure 4 shown.

[0086] In this implementation, the first input assembly 300 and the first body 100 may be rotatably connected via a rotating shaft structure. The axis of rotation of the first input assembly 300 relative to the first body 100 may be arranged along the thickness direction of the first body 100 .

[0087] In this implementation, the second body 200 and the first body 100 can be rotatably connected via a rotating shaft structure; the second body 200 can rotate relative to the first body 100 to achieve the relative opening and closing of the second body 200 and the first body 100. The second body 200 can rotate relative to the first body 100 to achieve an unfolded state, such as Figures 3 to 6 As shown, here, the first display screen 400, the second display screen 600 and the first input assembly 300 are in an exposed state. The second body 200 can be rotated relative to the first body 100 to achieve a snap-fit ​​state, here, the first display screen 400, the second display screen 600 and the first input assembly 300 are in a hidden state, so as to facilitate the carrying of the electronic device.

[0088] In some optional implementations of the embodiments of the present application, the electronic device may further include: a first body 100 and a connecting shaft 320. The first body 100 has a connecting hole 111; the connecting shaft 320 is rotatably inserted into the connecting hole 111, and the connecting shaft 320 is connected to the first input component 300; the first input component 300 is rotatably connected to the first body 100 through the connecting shaft 320; in the first position, the first input component 300 is stacked on one side of the first body 100, such as Figure 1 , Figure 3 and Figure 5 As shown: In the second position, at least part of the first input assembly 300 is located outside the first body 100, as shown in FIG. Figure 2 , Figure 4 and Figure 6 shown.

[0089] In this implementation, during the process of the first input assembly 300 rotating relative to the first body 100 via the connecting shaft 320, the first input assembly 300 can rise or fall relative to the first body 100 in the axial direction, so as to adjust the axial position of the first input assembly 300 and the first body 100. Of course, during the process of the first input assembly 300 rotating relative to the first body 100 via the connecting shaft 320, the axial position of the first input assembly 300 relative to the first body 100 can also remain unchanged.

[0090] In this implementation, if Fig. 9 and Fig.10As shown, the electronic device may further include a fixing body 110, the fixing body 110 may be convexly disposed on the first body 100, and the connection hole 111 may be at least partially opened on the fixing body 110. Here, the connection hole 111 may be entirely opened on the fixing body 110. The connection hole 111 may also be partially opened on the fixing body 110 and partially opened on the first body 100. Of course, the connection hole 111 may also be entirely opened on the first body 100.

[0091] In this implementation, during the process of the first input assembly 300 rotating from the first position to the second position via the connecting shaft 320, the first input assembly 300 may be lowered in the axial direction relative to the first body 100. Of course, in other examples, during the process of the first input assembly 300 rotating from the first position to the second position via the connecting shaft 320, the height of the first input assembly 300 in the axial direction relative to the first body 100 may also remain unchanged.

[0092] Here, the implementation method of the connecting shaft 320 being able to rise or fall in the axial direction is not limited.

[0093] For example, the connecting shaft 320 and the fixed body 110 may be connected by a spiral structure, wherein the spiral structure includes a spiral protrusion 321 and a spiral groove, wherein at least a portion of the spiral protrusion 321 is located in the spiral groove; when the connecting shaft 320 rotates relative to the fixed body 110, the spiral protrusion 321 moves in the spiral groove, and the connecting shaft 320 moves axially relative to the fixed body 110, thereby achieving the axial descent or ascent of the supporting body 340 relative to the fixed body 110. Here, one of the spiral protrusion 321 and the spiral groove may be provided on the connecting shaft 320, and the other of the spiral protrusion 321 and the spiral groove may be provided on the wall of the connecting hole 111. As an example, Figure 8 As shown, the spiral protrusion 321 is disposed on the connecting shaft 320 .

[0094] For another example, the fixed body 110 may be provided with a first inclined surface at the connecting hole 111, and the connecting shaft 320 may have a matching protrusion. When the connecting shaft 320 rotates in the connecting hole 111, the matching protrusion can move along the first inclined surface, thereby enabling the connecting shaft 320 to rise or fall in the axial direction.

[0095] In this implementation, the electronic device may further include: at least one support angle 330 disposed on the first input component 300, such as Figure 7 As shown, at least one supporting angle 330 is located on a side of the first input assembly 300 opposite to the first body 100 , so that the first input assembly 300 is supported by the supporting angle 330 .

[0096] Here, the structure of the support angle 330 is not limited. For example, the support angle 330 can be a columnar structure, a strip structure, or a block structure. The support angle 330 can be a rigid structure or an elastic structure.

[0097] Here, the number of support angles 330 is not limited. Figure 7 As shown, the first input assembly 300 may be a rectangular parallelepiped structure. The connecting shaft 320 may be disposed at one corner of the first input assembly 300, and the number of supporting angles 330 may be three, and the three supporting angles 330 may be disposed at the other three corners of the input assembly, so that the first input assembly 300 is supported by the three supporting angles 330 and one connecting shaft 320.

[0098] Here, if Fig. 9 As shown, in the first position, at least one support angle 330 may be in contact with the first body 100; Fig.10 As shown, in the second position, at least one support angle 330 is used to contact with the bearing surface 800, which is a surface for bearing electronic equipment; so that the first input component 300 is supported by the support angle 330. Here, in the process of the first input component 300 rotating from the first position to the second position through the connecting shaft 320, the first input component 300 descends axially relative to the first body 100. Here, the height of the first input component 300 descending axially relative to the first body 100 can be the thickness of the first body 100 at the first input component 300. Here, in the process of the first input component 300 descending axially relative to the first body 100, in order to prevent the support angle 330 from interfering with the first body 100 and crushing the first body 100, the support angle 330 can be an elastic structure, and the height of the support angle 330 in the axial direction can be lowered. Alternatively, the electronic device may further include a motor, which can drive the support angle 330 to move relative to the first input component 300. When the first input component 300 rotates relative to the first body 100, the motor can drive the support angle 330 to reduce the height of the protruding first input component 300 to prevent the support angle 330 from damaging the first body 100. When the first input component 300 is located at the first position or the second position, the motor can drive the support angle 330 to increase the height of the protruding first input component 300 so that the support angle 330 contacts the first body 100 or the bearing surface 800 to support the first input component 300.

[0099] Of course, during the process of the first input component 300 rotating relative to the first body 100, the axial height of the first input component 300 relative to the first body 100 may also remain unchanged. Here, the support angle 330 may be movably arranged on the first input component 300. In the first position, the support angle 330 may be located in the recessed space of the input component. In the second position, the support angle 330 may move to protrude from the first input component 300 and contact the bearing surface 800. Here, under the action of an external force, the support angle 330 may move into the recessed space or protrude from the first input component 300; or, the motor is used to drive the support angle 330 to move into the recessed space or protrude from the first input component 300.

[0100] In some optional implementations of the embodiments of the present application, the electronic device may further include a control device, which is used to control the first input component 300 to switch between the first input state and the second input state when detecting that the first input component 300 switches between the first position and the second position, so as to realize automatic switching of the first input component 300 between the first input state and the second input state.

[0101] In this implementation, the implementation manner in which the control device is used to detect the switching of the first input component 300 between the first position and the second position is not limited.

[0102] For example, the electronic device may include a detection component for detecting the position of the first input component 300, and the control device is used to determine whether the first input component 300 switches between the first position and the second position based on the position of the first input component 300 detected by the detection component.

[0103] Here, the detection component may include a position sensor or a pressure sensor. The detection component may be arranged on the path of the first input component 300. When the first input component 300 passes through the detection component, the pressure or distance detected by the detection component changes. The control device is used to determine that the first input component 300 switches between the first position and the second position based on the pressure or distance change detected by the detection component.

[0104] For another example, the electronic device may include a switch for switching the input state of the first input component 300, and the control device is used to determine whether the first input component 300 switches between the first position and the second position based on detecting a switching signal of the switch.

[0105] Here, the switch can be touched under the action of an external force to switch the signal. The switch can also be set on the path of the first input component 300. When the first input component 300 passes the switch, the switch switches the signal; the control device is used to determine that the first input component 300 switches between the first position and the second position based on the detection of the switch switch switching signal.

[0106] For another example, the electronic device may include a control component 700, which is used to control the first input component 300 to switch between the first input state and the second input state. The control device is used to determine that the first input component 300 switches between the first position and the second position based on the signal detected by the control component 700.

[0107] In this implementation, the manner in which the control device controls the first input component 300 to switch between the first input state and the second input state is not limited.

[0108] For example, the first input component 300 may include at least two physical keys 310, and when the at least two physical keys 310 have a first input state and a second input state through position changes, the control device may control the position changes of the at least two physical keys 310 to switch the first input component 300 between the first input state and the second input state. At least two physical keys 310 have a first input state and a second input state through functional changes, and the control device may control the functional changes of the at least two physical keys 310 to switch the first input component 300 between the first input state and the second input state; here, the control device may store different functions of the at least two physical keys 310.

[0109] For another example, the first input component 300 may include a display module, the display of which can change to switch between the first input state and the second input state. The control device can control the display change of the display module to switch the first input component 300 between the first input state and the second input state.

[0110] Of course, in other implementations, the first input component 300 can also be manually switched between the first input state and the second input state. For example, the positions of at least two physical keys 310 change under the action of an external force to switch the first input component 300 between the first input state and the second input state.

[0111] In some optional implementations of the embodiments of the present application, such as Fig.11 and Fig.12 As shown, the first input component 300 may include at least two physical keys 310 .

[0112] In an implementation, the manner in which the at least two physical keys 310 have the first input state and the second input state is not limited.

[0113] As an example, the input functions of the at least two physical keys 310 are different, so that the at least two physical keys 310 have a first input state and a second input state.

[0114] As yet another example, the relative positions of at least two physical keys 310 can be changed to switch between the first input state and the second input state.

[0115] In some optional implementations of the embodiments of the present application, the first input component 300 includes: a support body 340 and at least two physical keys 310. The at least two physical keys 310 are movably arranged on the support body 340 so that the first input component 300 has a first input state and a second input state; the at least two physical keys 310 have different arrays formed relative to the support body 340 in the first input state and the second input state.

[0116] In this implementation, the structure of the support body 340 is not limited. For example, the support body 340 may be a plate-like structure. For another example, the support body 340 may be a block-like structure.

[0117] In this implementation, the at least two physical keys 310 may be completely movably disposed on the support body 340. The at least two physical keys 310 may also be partially movably disposed on the support body 340.

[0118] The manner in which the at least two physical keys 310 are movably disposed on the support body 340 is not limited. For example, the support body 340 may have a slideway or a slide rail structure. The at least two physical keys 310 may be movably disposed on the support body 340 through the slideway or the slide rail structure. For another example, the first input component 300 may further include a moving structure, and the moving structure may be movably disposed on the support body 340, and the at least two physical keys 310 may be disposed on the moving structure, so as to be movably disposed on the support body 340.

[0119] During the process of the at least two physical keys 310 switching between the first input state and the second input state, the at least two physical keys 310 are always disposed on the supporting body 340 , and the at least two physical keys 310 are not separated from the supporting body 340 .

[0120] The at least two physical keys 310 are in different array states in the first input state and the second input state. The array states of the at least two physical keys 310 in the first input state and the second input state are not limited.

[0121] As an example, Fig.11As shown, in the first input state, at least two physical keys 310 can form a rectangular array, where at least two physical keys 310 have no phase difference, such as Fig.12 As shown, in the second input state, at least two physical keys 310 can form a parallelogram array, where at least two physical keys 310 have a phase difference. Here, at least two physical keys 310 can be movably arranged along the second direction so that the positions of the second direction of at least two physical keys 310 are different in the first input state and the second input state, the positions of the first direction of at least two physical keys 310 can be the same in the first input state and the second input state, and the first direction and the second direction can be perpendicular. In an application, in the second input state, two adjacent rows of physical keys 310 can have a phase difference of one third or one half in the second direction. The phase difference can be the ratio of the distance difference between two adjacent rows of physical keys 310 in the second direction to the size of the physical keys 310 in the second direction.

[0122] As another example, in the first input state, at least two physical keys 310 may form a parallelogram array, where the at least two physical keys 310 have a first phase difference, and in the second input state, at least two physical keys 310 may form a parallelogram array, where the at least two physical keys 310 have a second phase difference. Here, at least two physical keys 310 may be movably arranged along the second direction, so that the positions of the at least two physical keys 310 in the second direction are different in the first input state and the second input state. In an application, in the first input state, two adjacent rows of physical keys 310 have a first phase difference in the second direction, and in the second input state, two adjacent rows of physical keys 310 have a second phase difference in the second direction, and the first phase difference and the second phase difference are different.

[0123] The physical key 310 has an input function, so that input operations can be performed through the physical key 310. The function of the physical key 310 can be the same in the first input state and the second input state. Here, at least two physical keys 310 in the first input state and the second input state are only arranged differently. Of course, the function of the physical key 310 in the first input state and the second input state can also be different. Here, at least two physical keys 310 in the first input state and the second input state not only have different arrangements, but also different input functions.

[0124] In some optional implementations of the embodiments of the present application, the first input component 300 may also include: an input circuit 350, the input circuit 350 has at least two trigger parts 351; the at least two trigger parts 351 correspond to the positions of at least two physical keys 310; so that the physical keys 310 perform input operations by contacting the trigger parts 351.

[0125] In this implementation, the arrangement of the triggering parts 351 of the input circuit 350 corresponds to the arrangement of the physical keys 310. The triggering parts 351 of the input circuit 350 may also be in an array form.

[0126] As an example, Fig.32 and Fig.33 As shown, at least two physical keys 310 can be in the form of an array of 4 rows and 10 columns, and the trigger part 351 of the input circuit 350 can also be in the form of an array of 4 rows and 10 columns, and the bottom side of each physical key 310 has a trigger part 351 corresponding to it; when the physical key 310 is tapped, the physical key 310 will contact the trigger part 351 on its bottom side, thereby forming an input operation corresponding to the physical key 310.

[0127] In this implementation, the number of trigger units 351 of the input circuit 350 may be the same as or different from the number of physical keys 310 .

[0128] As an example, the number of trigger parts 351 and the number of physical keys 310 may be the same. Here, the input circuit 350 and the physical key 310 may be directly fixedly connected, or the input circuit 350 and the physical key 310 may also be fixedly connected via other structures. Here, during the movement of the physical key 310, the trigger part 351 moves along with the physical key 310.

[0129] In one application, at least two physical buttons 310 may be Fig.11 In the first input state of the 4 rows and 10 columns shown, the trigger unit 351 of the input circuit 350 may be Fig. 27 At least two physical buttons 310 can be moved to form an array of 4 rows and 10 columns. Fig.12 The trigger unit 351 of the input circuit 350 may also be in the second input state of the 4 rows and 10 columns shown in FIG. Fig.12 The corresponding array form is 4 rows and 10 columns.

[0130] As another example, the input circuit 350 can be fixed to the support body 340, and the number of triggering parts 351 can be greater than the number of physical keys 310, so that the physical keys 310 correspond to different triggering parts 351 in the first input state and the second input state. Here, during the movement of the physical key 310, the triggering part 351 does not move with the physical key 310. Therefore, the input circuit 350 needs to be provided with more triggering parts 351, so that when the physical key 310 moves from the first input state to the second input state, there is also a triggering part 351 corresponding to the physical key 310.

[0131] In one application, at least two physical buttons 310 may be Fig.11In the first input state of the 4 rows and 10 columns shown, at least two physical keys 310 may be Fig.12 The trigger unit 351 of the input circuit 350 may be in an array form of 4 rows and 14 columns. Fig.28 The triggering parts 351 of 4 rows and 10 columns corresponding to the moving member 360 correspond to the physical keys 310 in the first input state. Fig.29 The triggering parts 351 of 4 rows and 10 columns corresponding to the moving member 360 correspond to the physical keys 310 of the second input state. Here, at least two physical keys 310 can be arranged on the moving member 360.

[0132] In yet another application, at least two physical buttons 310 may be Fig.11 In the first input state of the 4 rows and 10 columns shown, at least two physical keys 310 may be Fig.12 The trigger unit 351 of the input circuit 350 may be in an array form of 4 rows and 13 columns. Fig.30 The triggering parts 351 of 4 rows and 10 columns corresponding to the moving member 360 correspond to the physical keys 310 in the first input state. Fig.31 The triggering parts 351 of 4 rows and 10 columns corresponding to the moving member 360 correspond to the physical keys 310 of the second input state. Here, at least two physical keys 310 can be arranged on the moving member 360.

[0133] In some optional implementations of the embodiments of the present application, the supporting body 340 may be movably connected to the fixing body 110 ; the supporting body 340 may be movable to a first position or a second position relative to the fixing body 110 .

[0134] Of course, in other implementations, the support body 340 may also be directly and movably connected to the first body 100 .

[0135] In this implementation, the structure of the fixing body 110 is not limited. For example, the fixing body 110 may be a block structure, a plate structure, a columnar structure, etc.

[0136] In this implementation, the implementation of the movably connected support body 340 and fixed body 110 is not limited. For example, the support body 340 and fixed body 110 can be connected in a translational manner through a slideway structure or a slide rail structure. For another example, the support body 340 and fixed body 110 can be rotatably connected through a rotating shaft structure.

[0137] In this implementation, the support body 340 can translate to the first position or the second position relative to the fixed body 110 , and can also rotate to the first position or the second position.

[0138] As an example, the support body 340 can have a first position and a second position relative to the fixed body 110 by rotating. Here, the support body 340 rotates from the first position to the second position by a first angle. The value of the first angle is not limited. For example, Fig.11 and Fig.12 As shown, the first angle can be 90 degrees, and the support body 340 rotates 90 degrees from the first position to the second position. Of course, the first angle can also be non-90 degrees. As an example, the first angle can be 45 degrees, 60 degrees, 120 degrees, 150 degrees, 180 degrees, etc.

[0139] In this implementation, at least two physical keys 310 can be linked with the supporting body 340. During the switching of the supporting body 340 between the first position and the second position, the positions of at least two physical keys 310 change, so that the first input component 300 switches between the first input state and the second input state.

[0140] Here, the implementation method of the linkage between the at least two physical buttons 310 and the supporting body 340 is not limited.

[0141] For example, the first input component 300 may also include: at least two moving members 360, at least two moving members 360 are arranged at intervals along the first direction; the moving members 360 are movably arranged on the supporting body 340 along the second direction; at least two physical keys 310 are arranged on each moving member 360; at least two moving members 360 are linked with the supporting body 340; during the process of the supporting body 340 switching between the first position and the second position, the moving member 360 drives the at least two physical keys 310 to move.

[0142] Of course, in other examples, only one physical button 310 may be provided on each moving member 360 .

[0143] In this example, the number of the moving members 360 is not limited. The number of the physical keys 310 provided on each moving member 360 is not limited. For example, the first input component 300 may include 4 moving members 360, and each moving member 360 may be provided with 10 physical keys 310 at intervals.

[0144] In this example, the input circuit 350 may be disposed on the support body 340 or on the moving member 360 .

[0145] In this example, the second direction is not parallel to the first direction. The second direction and the first direction may be perpendicular or non-perpendicular.

[0146] In this example, the manner in which the moving member 360 is movably disposed on the supporting body 340 along the second direction is not limited. For example, the moving member 360 can be movably disposed on the supporting body 340 along the second direction via a slideway or a slide rail.

[0147] In this example, if Fig.13 As shown, the support body 340 defines at least two first slideways 341 arranged along the second direction, and the moving member 360 is movably arranged in the first slideways 341, so that the moving member 360 is movably arranged along the second direction.

[0148] Here, the support body 340 and the fixed body 110 may be rotatably connected. When the support body 340 is in the first position relative to the fixed body 110, as shown in FIG. Fig.14 As shown, at least two moving members 360 are substantially not misaligned in the second direction. When the support body 340 rotates 90 degrees relative to the fixed body 110 to the second position, as shown in FIG. Fig.15 As shown, at least two moving members 360 move in the second direction and are misaligned.

[0149] In this example, the structure of the moving member 360 is not limited. The moving member 360 can be a flat plate structure or a strip structure.

[0150] As an example, Fig.16 and Fig.17 As shown, the moving member 360 may include: a receiving portion 361 and two connecting portions 362. The receiving portion 361 defines a receiving groove 363 arranged along the second direction; the receiving groove 363 accommodates at least two physical buttons 310; the two connecting portions 362 are arranged on opposite sides of the receiving portion 361, and the two connecting portions 362 are located on opposite sides of the first slide 341; the connecting portion 362 is clamped outside the first wall 343 of the support body 340 located on one side of the first slide 341 through a rolling member 370, and when the moving member 360 slides in the first slide 341, the rolling member 370 rolls between the connecting portion 362 and the first wall 343, so as to reduce the resistance of the moving member 360 sliding in the first slide 341 through the rolling member 370. At the same time, the connecting part 362 is clamped outside the first wall 343 of the supporting body 340 on the side of the first slide 341 through the rolling member 370, which can also prevent the moving member 360 from separating from the supporting body 340 and ensure the relative position relationship of the moving member 360 with respect to the supporting body 340.

[0151] Here, the structure of the rolling element 370 is not limited. For example, the rolling element 370 may be a spherical structure. For another example, the rolling element 370 may be a columnar structure.

[0152] Here, the physical button 310 can be set on the bottom wall of the accommodating portion 361, and the two first walls 343 can be respectively connected to the two side walls of the accommodating portion 361. The first wall 343 and the bottom wall of the accommodating portion 361 can be roughly parallel or roughly form an angle other than 180 degrees.

[0153] Here, the connecting portion 362 can be wrapped around the top and bottom sides of the first wall 343, and a rolling member 370 can be provided between the connecting portion 362 and the top side of the first wall 343, and a rolling member 370 can also be provided between the connecting portion 362 and the bottom side of the first wall 343, so that the sliding friction between the connecting portion 362 and the first wall 343 can be reduced through the rolling member 370, and the moving member 360 can be prevented from being separated from the supporting body 340 by clamping the connecting portion 362 outside the first wall 343.

[0154] Here, the input circuit 350 can be disposed at the bottom of the receiving groove 363 of the moving member 360, and the triggering portion 351 of the input circuit 350 can correspond to the position of the physical button 310, such as Fig.16 As shown, here, the moving part 360 is similar to the mounting plate of the physical key 310. The physical key 310 can be set on the moving part 360 through an elastic structure. The physical key 310 can have an un-tapped state and a tapped state. In the un-tapped state, the physical key 310 is spaced apart from the trigger part 351 of the input circuit 350; in the tapped state, the physical key 310 contacts the trigger part 351 of the input circuit 350, and the elastic structure is deformed.

[0155] Here, the input circuit 350 can also be set at the bottom of the first slide 341, and the physical button 310 is set on the moving part 360. The physical button 310 can move to the bottom side of the protruding moving part 360 to contact the trigger part 351 of the input circuit 350.

[0156] As an example, the first input component 300 may also include an input circuit 350, a moving member 360 and a first elastic member 380. The input circuit 350 is arranged on the supporting body 340; the input circuit 350 has at least two triggering parts 351; the number of the triggering parts 351 is greater than the number of the physical keys 310, so that the physical keys 310 correspond to different triggering parts 351 in the first input state and the second input state; the moving member 360 is movably arranged on the supporting body 340; at least two physical keys 310 are movably arranged on the moving member 360 along the tapping direction; the first elastic member 380 is arranged between the physical key 310 and the moving member 360 in the tapping direction; the first elastic member 380 is used to provide a force for the physical key 310 to move away from the triggering part 351; when the physical key 310 is in the non-tapped state, the physical key 310 is spaced apart from the triggering part 351; when the physical key 310 is in the tapping state, the physical key 310 contacts the triggering part 351 and the first elastic member 380 is deformed.

[0157] Here, if Fig.18 and Fig.19 As shown, the moving member 360 has a through hole 364 corresponding to the position of the trigger portion 351 , and the physical key 310 contacts the trigger portion 351 through the through hole 364 .

[0158] Here, the first elastic member 380 may be a spring. The number of the first elastic member 380 is not limited. Fig.18 and Fig.19 As shown, the first input component 300 may include two first elastic members 380 , and the two first elastic members 380 may be disposed on opposite sides of the physical key 310 .

[0159] Here, if Fig.18 and Fig. 20 As shown, the physical key 310 may include a shell 311 and a contact portion 312. The shell 311 may be movably disposed on the movable member 360 along the tapping direction by means of a slideway or a slide rail, the contact portion 312 may be disposed on the side of the shell 311 facing the support body 340 by means of bonding, welding, clamping, etc., the first elastic member 380 is disposed between the shell 311 of the physical key 310 and the movable member 360 in the tapping direction, the shell 311 is in a non-tapping state, the contact portion 312 is spaced apart from the trigger portion 351; the shell 311 is in a tapping state, the contact portion 312 contacts the trigger portion 351, and the first elastic member 380 is deformed.

[0160] Here, the material of the shell 311 may be plastic. The contact portion 312 may be elastic. The material of the contact portion 312 is not limited. The material of the contact portion 312 may be rubber to prevent the contact portion 312 from damaging the trigger portion 351.

[0161] Here, the shape of the contact portion 312 is not limited. For example, the contact portion 312 may be columnar. For another example, the contact portion 312 may be conical, and the small end of the contact portion 312 may be connected to the shell portion 311 by bonding, welding, clamping, etc., and the large end of the contact portion 312 may be used to contact the trigger portion 351, thereby increasing the contact area between the contact portion 312 and the trigger portion 351, and thus improving the reliability of the physical button 310 triggering the trigger portion 351.

[0162] Here, if Fig.18 and Fig. 20 As shown, the physical button 310 may also include a second elastic member 313, which may be arranged around the outside of the contact portion 312, wherein the first end of the second elastic member 313 may be connected to the shell portion 311, and the second end of the second elastic member 313 may have a set distance from an end of the contact portion 312 in contact with the trigger portion 351, so as to increase the elasticity of the contact portion 312 by the second elastic member 313.

[0163] In this implementation, the implementation of the linkage between the at least two moving members 360 and the supporting body 340 is not limited.

[0164] For example, the first input component 300 may further include a connecting component 390, which may be rotatably connected to the fixed body 110 and at least two moving members 360, respectively; when the supporting body 340 switches between the first position and the second position relative to the fixed body 110, the connecting component 390 pulls at least two moving members 360 to move relative to the supporting body 340, thereby moving at least two physical keys 310 located on the moving member 360, so that the physical keys 310 switch between the first input state and the second input state.

[0165] In this example, the structure of the connecting component 390 is not limited. Fig.21 and Fig. 22 As shown, the connection assembly 390 may include: a first connection member 391 and a second connection member 392. The first end of the first connection member 391 is rotatably connected to the fixed body 110; the second end of the first connection member 391 may be arranged on the support body 340 in a translational manner; the second connection member 392 is rotatably connected to the first connection member 391 and at least two moving members 360 respectively; when the support body 340 switches between the first position and the second position relative to the fixed body 110, the first connection member 391 pulls the at least two moving members 360 to move relative to the support body 340 through the second connection member 392.

[0166] In this example, the structure of the first connecting member 391 is not limited. For example, the first connecting member 391 may be a strip-shaped structure. Fig.23 As shown, the first connecting member 391 may be a rod-shaped structure.

[0167] The first end of the first connecting member 391 can be rotatably connected to the fixed body 110 via a rotating shaft structure or a ball head structure. The second end of the first connecting member 391 can be translationally disposed on the supporting body 340 via a slideway or a slide rail.

[0168] As an example, Fig.21 and Fig. 22 As shown, the support body 340 has a first slide groove, and the second end of the first connecting member 391 is movably disposed in the first slide groove, so that the second end of the first connecting member 391 can be translatedly disposed on the support body 340 .

[0169] In this example, the structure of the second connecting member 392 is not limited. For example, the second connecting member 392 may be a strip-shaped structure. As an example, the second connecting member 392 may be a rod-shaped structure.

[0170] The second connecting member 392 and the first connecting member 391 may be rotatably connected via a rotating shaft structure or a ball head structure. The second connecting member 392 and the at least two moving members 360 may be rotatably connected via a rotating shaft structure or a ball head structure.

[0171] Here, one end of the second connecting member 392 may be rotatably connected to the second end of the first connecting member 391 in the first sliding groove.

[0172] Of course, the connecting assembly 390 may also only include the first connecting member 391 , and the first connecting member 391 may be directly rotatably connected to the at least two moving members 360 , so that the at least two moving members 360 are pulled to move by the first connecting member 391 .

[0173] In this example, if Fig.21 and Fig. 22 As shown, the first input component 300 may further include a connecting shaft 320, and the connecting shaft 320 and the supporting body 340 may be connected by bonding, clamping, welding, etc. The fixing member may have a connecting hole 111, and the connecting shaft 320 may be rotatably inserted in the connecting hole 111. When the connecting shaft 320 rotates in the connecting hole 111, the second end of the first connecting member 391 slides in the first sliding groove, the first connecting member 391 pulls the second connecting member 392 to move, and the second connecting member 392 pulls at least two moving members 360 to move, so that the physical key 310 switches between the first input state and the second input state.

[0174] As an example, the support body 340 is located relative to the fixed body 110. Fig.21 The physical key 310 is in the first input state. The support body 340 rotates 90 degrees relative to the fixed body 110 through the connecting shaft 320 to rotate to the position shown in FIG. Fig. 22 In the second position shown, the second end of the first connecting member 391 moves in the first sliding groove from the end away from the connecting shaft 320 to the end close to the connecting shaft 320. The first connecting member 391 pulls the at least two moving members 360 to change their positions relative to the supporting body 340 through the second connecting member 392, thereby moving the physical key 310 from the first input state to the second input state.

[0175] In this implementation, during the rotation of the connecting shaft 320 relative to the fixed body 110, the connecting shaft 320 can rise or fall in the axial direction, so as to adjust the axial position of the supporting body 340 relative to the fixed body 110 through the connecting shaft 320. Of course, during the rotation of the connecting shaft 320 relative to the fixed body 110, the axial position of the supporting body 340 relative to the fixed body 110 may also remain unchanged.

[0176] As an example, Fig.24 and Fig.25 As shown, during the process of the support body 340 rotating from the first position to the second position via the connecting shaft 320, the support body 340 descends axially relative to the fixed body 110. Fig.24The support body 340 is in the first position, Fig.25 Here, the first end of the first connecting member 391 can be connected to the fixing body 110 through a ball head structure, and the second end of the first connecting member 391 can be connected to the second connecting member 392 through a ball head structure to adapt to the second end of the first connecting member 391 to drop axially relative to the fixing body 110.

[0177] Here, the above embodiment has described the implementation method of the connecting shaft 320 being able to rise or fall in the axial direction, which will not be repeated here.

[0178] As an example, Fig.26 As shown, the spiral protrusion 321 is disposed on the connecting shaft 320 .

[0179] Of course, in other implementations, the at least two physical buttons 310 and the support body 340 may not be arranged in linkage. Here, the at least two moving members 360 may be driven by a driving assembly, or the at least two moving members 360 may also be moved by an external force.

[0180] In some optional implementations of the embodiments of the present application, the first input component 300 may include a driving component, which is used to drive at least two physical keys 310 to move, so as to achieve switching of the first input component 300 between a first input state and a second input state.

[0181] In this implementation, when the first input component 300 includes a moving member 360 , the driving component can be used to drive the moving member 360 to move, so as to drive the physical key 310 on the moving member 360 to move.

[0182] In this implementation, the structure of the drive assembly is not limited. For example, the drive assembly may include a drive member and a transmission assembly, the drive member may include a motor, the transmission assembly may include a gear, the drive member is used to drive the gear to rotate, the moving member 360 may have a rack meshed with the gear, and the drive member rotates by driving the gear to drive the moving member 360 to move. For another example, the drive assembly may include a telescopic oil cylinder or a gas cylinder. The telescopic rod of the drive assembly may be connected to the moving member 360 to drive the moving member 360 to move.

[0183] Of course, the driving component can also directly drive at least two physical buttons 310 to move. Here, each physical button 310 can be driven to move by one driving component.

[0184] In some optional implementations of the embodiments of the present application, the electronic device may further include a control component 700, which is used to control the first input component 300 to switch between a first input state and a second input state, and the function of the physical key 310 is different in the first input state and the second input state.

[0185] In this implementation, the functions of all the at least two physical keys 310 may be different in the first input state and the second input state. Alternatively, the functions of some of the at least two physical keys 310 may be different in the first input state and the second input state.

[0186] In one application, Figure 1 is the first input state of the first input component 300, Fig.12 is the second input state of the first input component 300. The first input component 300 has 4 rows of physical keys 310, each row has 10 physical keys 310, thereby forming an array of physical keys 310 in 4 rows and 10 columns. Figure 1 The input function of the physical key 310 may correspond to the following table 1 or table 3: Fig.12 The input function of the physical key 310 may correspond to the following Table 2 or Table 4.

[0187] Table 1

[0188] ESC F1 F2 F3 Caps A(1) B(2) C(3) D(4) E(5) F(6) G(7) H(8) I(9) J(0) K(~) L(!) M(@) N(#) O($) P(%) Q(^) R(&) S(*) T(() U / ABC V / DEF Backspace W / GHI X / JKL Y / MNO Enter Z / PQRS Page Up / TUV Page Down / WXYZ Alt Shift Space EN / Chinese Ctrl

[0189] Table 2

[0190] Q(1) W(2) E(3) R(4) T(5) Y(6) U(7) I(8) O(9) P(0) A(~) S(!) D(@) F(#) G(%) H(^) J(&) K(() L()) ESC Z(:) X(;) C(") V(‘) B(?) N( / ) M(<) (>) Del(.) Backspace Cap Shift Ctrl Space Space Space PageUp PageDown Alt Enter

[0191] Table 3

[0192] ESC F1 F2 F3 F2 F3 F4 F5 F6 F7 F8 F9 1(!) 2(@) 3(#) `(~) 4($) 5(%) 6(^) TAB 7(&) 8(*) 9(() 0()) Caps ABC DEF Backspace GHI JKL MNO Enter PQRS TUV WXYZ Page up (Page down) Shift Space EN / Chinese Ctrl

[0193] Table 4

[0194]

[0195]

[0196] The input functions of the physical keys 310 in Tables 1 to 4 can be stored in the control device so that the control component 700 controls the triggering unit 351 in the input circuit 350 based on the input state of the first input component 300 through the control device to form a corresponding function when it is triggered.

[0197] When the input circuit 350 is fixedly connected to the physical key 310, all trigger units 351 in the input circuit 350 can be in working state, so as to form the input function of the physical key 310 in Tables 1 to 4. As shown in Table 5 below, all trigger units 351 in the input circuit 350 are in working state in the first input state and the second input state. Fig. 27 Corresponding to the trigger unit 351 of the input circuit 350 shown, H in the following Table 5 represents the number of rows of the second input state, and V represents the number of rows of the first input state.

[0198] Table 5

[0199]

[0200] When the input circuit 350 does not move with the physical key 310, part of the triggering unit 351 in the input circuit 350 is in a working state, so as to form the input function of the physical key 310 in Tables 1 to 4. As shown in Table 6 below, part of the triggering unit 351 in the input circuit 350 is in a working state in the first input state and the second input state. Fig.28 The trigger unit 351 of the input circuit 350 shown in the figure corresponds to the second input state and Fig.29 The trigger unit 351 of the input circuit 350 shown corresponds to the trigger unit 351; the trigger unit 351 with a check mark indicates that it is in a working state, and the trigger unit 351 without a check mark indicates that it is in a non-working state.

[0201] Table 6

[0202]

[0203] As shown in Table 7 below, some trigger units 351 in the input circuit 350 are in working state in the first input state; wherein the first input state in Table 7 below is Fig.30 As shown in Table 8 below, some trigger units 351 in the input circuit 350 are in working state in the second input state; Fig.31 The trigger unit 351 of the input circuit 350 shown corresponds to the trigger unit 351; the trigger unit 351 with a check mark indicates that it is in a working state, and the trigger unit 351 without a check mark indicates that it is in a non-working state.

[0204] Table 7

[0205]

[0206] Table 8

[0207]

[0208]

[0209] In this implementation, the manner in which the control component 700 switches the input state is not limited.

[0210] For example, the control component 700 is touched under the action of an external force to switch the input state. Here, the control component 700 can be set on the surface of the first input component 300. The control component 700 is similar to a switch. When the control component 700 is pressed, the control device is used to switch the input function of the physical key 310 from table 1 to table 2. When the control component 700 is pressed again, the control device is used to switch the input function of the physical key 310 from table 2 to table 1.

[0211] For another example, the control component 700 can also be set on the moving path of the physical key 310. During the process of switching between the first input state and the second input state, the control component 700 is touched by the physical key 310 to switch the input state; thereby, the input function of the physical key 310 is automatically switched as the first input state and the second input state are switched.

[0212] Here, the control component 700 can be arranged on the moving path of the moving member 360, and when the moving member 360 does not move, the input function of the physical key 310 corresponds to the input state. For example, the physical key 310 is in the first input state, and the input function of the physical key 310 corresponds to Table 1 or Table 3. When the physical key 310 moves from the first input state to the second input state, the physical key 310 touches the control component 700, and the control device is used to switch the input function of the physical key 310 from Table 1 or Table 3 to Table 2 or Table 4.

[0213] For another example, the support body 340 is movably arranged between a first position and a second position, and the control component 700 is arranged on the moving path of the support body 340. During the process of switching the support body 340 between the first position and the second position, the control component 700 is touched by the support body 340 to switch the input state, thereby realizing that the input function of the physical key 310 is automatically switched as the position of the support body 340 is switched.

[0214] Here, the control component 700 can be arranged on the moving path of the support body 340, or on the moving path of other structures on the support body 340. When the support body 340 does not move, the input function of the physical key 310 corresponds to the input state. For example, the physical key 310 is in the first input state, and the input function of the physical key 310 corresponds to Table 1 or Table 3. When the support body 340 moves from the first position to the second position, the support body 340 touches the control component 700, and the control device is used to switch the input function of the physical key 310 from Table 1 or Table 3 to Table 2 or Table 4.

[0215] As an example, Fig.26 As shown, the control assembly 700 can be arranged on the fixed body 110, and the control assembly 700 is located on the axial moving path of the connecting shaft 320. When the supporting body 340 is in the first position, the connecting shaft 320 can contact the control assembly 700. Here, the physical key 310 is in the first input state, and the input function of the physical key 310 corresponds to Table 1 or Table 3. When the supporting body 340 rotates from the first position to the second position, the connecting shaft 320 is separated from the control assembly 700, and the control device is used to switch the input function of the physical key 310 from Table 1 or Table 3 to Table 2 or Table 4. When the supporting body 340 rotates from the second position to the first position, the connecting shaft 320 contacts the control assembly 700, and the control device is used to switch the input function of the physical key 310 from Table 2 or Table 4 to Table 1 or Table 3. Here, when the control component 700 is pressed by the connecting shaft 320, the control device is used to control the input function of the physical key 310 to be Table 1 or Table 3; when the control component 700 is not pressed by the connecting shaft 320, the control device is used to control the input function of the physical key 310 to be Table 2 or Table 4.

[0216] The various specific technical features described in the specific embodiments can be combined in any suitable manner without contradiction, for example, different embodiments and technical solutions can be formed by combining different specific technical features. In order to avoid unnecessary repetition, various possible combinations of the specific technical features in the present invention will not be described separately.

[0217] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art who is familiar with the present technical field can easily think of changes or substitutions within the technical scope disclosed in the present application, which should be included in the protection scope of the present application. Therefore, the protection scope of the present application should be based on the protection scope of the claims.

Claims

1. An electronic device, comprising: First display screen; a first input assembly having a first position and a second position relative to the first display screen; In the first position, the first input component displays a first input state; In the second position, the first input component displays a second input state; wherein the first input state and the second input state are different.

2. The electronic device according to claim 1, further comprising: first ontology; The first display screen and the first input component are disposed on the first body; A second body, rotatably connected to the first body; The second display screen is arranged on the second body.

3. The electronic device according to claim 1, further comprising: A first body; the first input component is disposed on the first body; a second input component, disposed on the first body and corresponding to the position of the first input component; In the first position, the first input component is overlapped on one side of the second input component; in the second position, the first input component and the second input component at least partially do not overlap, and the non-overlapping portion is the portion of the second input component blocked by the first input component in the first position. The electronic device according to claim 3 , wherein the second input component performs input by sensing the position of the operating body. 5 . The electronic device according to claim 1 , wherein the first display screen and the first input component are disposed adjacent to a first body; or, the first display screen and the first input component are disposed on different bodies.

6. The electronic device according to claim 1, wherein the first input component comprises at least two physical keys, and the relative positions of the at least two physical keys can be changed to switch between the first input state and the second input state; or The first input component includes a display module capable of displaying a change to switch between the first input state and the second input state.

7. The electronic device according to claim 1, further comprising: A first body; the first input assembly is rotatably connected to the first body; In a first position, the first input assembly is stacked on one side of the first body; In the second position, at least a portion of the first input assembly is offset from the first body; A second body, rotatably connected to the first body, so as to realize relative opening and closing of the second body and the first body; The first display screen is arranged on the second body.

8. The electronic device according to claim 1, further comprising: A first body having a connecting hole; A connecting shaft is rotatably inserted into the connecting hole and connected to the first input assembly; the first input assembly is rotatably connected to the first body through the connecting shaft; in a first position, the first input assembly is stacked on one side of the first body; in a second position, at least a portion of the first input assembly is located outside the first body; During the process of the first input assembly rotating from the first position to the second position via the connecting shaft, the first input assembly descends axially relative to the first body.

9. The electronic device according to claim 8, further comprising: at least one support angle disposed on the first input assembly, the at least one support angle being located on a side of the first input assembly opposite to the first body; In the first position, the at least one supporting angle is in contact with the first body; in the second position, the at least one supporting angle is used to contact with a bearing surface, which is a surface for bearing electronic equipment.

10. The electronic device according to claim 1, further comprising: The control device is used to control the first input component to switch between a first input state and a second input state when detecting that the first input component switches between a first position and a second position.