Handle embedding structure and handle

By designing magnetic and sliding locking components, the controller operation module can be detachably connected, solving the problem of poor compatibility of existing controllers and improving the controller's applicability and user experience.

CN122297994APending Publication Date: 2026-06-30深圳闪电鸟网络科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
深圳闪电鸟网络科技有限公司
Filing Date
2026-03-31
Publication Date
2026-06-30

AI Technical Summary

Technical Problem

The existing controller's control buttons and joysticks are fixed and non-removable, making them unadjustable according to user needs and dominant hand, resulting in poor adaptability and affecting user experience.

Method used

The operation module is detachably connected by using a magnetic component in conjunction with a sliding locking component. Locking and unlocking are achieved by changing the magnetic poles, and the operation keys or levers can be flexibly replaced and their positions changed.

Benefits of technology

It enables convenient disassembly and flexible replacement of the control module, adapting to the operation needs of different devices and players, and improving the applicability and flexibility of the controller.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses an embedded structure for a handle and the handle itself. The embedded structure includes an operation module and a locking assembly. The handle housing has a mounting cavity whose shape matches the operation module. The operation module has at least one of an operation button or an operation lever. A first magnetic component is located on the side of the operation module facing the bottom of the mounting cavity. The locking assembly has a second magnetic component corresponding to the bottom of the mounting cavity. The locking assembly slides on the handle housing, allowing the second magnetic component to have a first position and a second position. When the second magnetic component is in the first position, the magnetic poles of the corresponding areas of the second and first magnetic components are opposite. When the second magnetic component is in the second position, the magnetic poles of the corresponding areas of the second and first magnetic components are the same. This invention allows for the assembly and disassembly of the operation module by adjusting the magnetic pole relationship between the first and second magnetic components, enabling the replacement or adjustment of different operation buttons or operation levers.
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Description

Technical Field

[0001] This invention relates to the field of handle technology, and more particularly to an embedded structure for a handle and a handle. Background Technology

[0002] Gamepads, as a common human-computer interaction input device, are widely used in various fields such as gaming, industrial control, and smart device operation. Their core function is to enable users to precisely control target devices through their operation buttons, joysticks, and other components. With the diversification of user needs and the continuous expansion of application scenarios, the operational flexibility and adaptability of gamepads have gradually become key factors affecting user experience, while replaceability directly determines the scope of applicability and ease of use of gamepads.

[0003] Currently, existing gamepad designs have significant shortcomings, failing to meet users' personalized needs. Firstly, the control buttons and joysticks on existing gamepads are fixed and non-removable, with their types and layouts pre-set at the factory. Users cannot customize and replace them according to their own operating habits or the needs of different games and control scenarios, resulting in poor gamepad adaptability and an inability to flexibly match various usage scenarios. Secondly, for dual-sided gamepads, the layout of the control buttons and joysticks on both sides remains fixed, unable to be flexibly adjusted according to the user's dominant hand (left-handed, right-handed), nor can the positions of the control buttons and joysticks on the left and right sides be swapped. This causes inconvenience and low comfort for users with different dominant hands, severely impacting the user experience and limiting the range of users who can use the gamepad. Therefore, there is an urgent need to design an embedded structure for the gamepad and a corresponding gamepad design. Summary of the Invention

[0004] The purpose of this invention is to provide an embedded structure and handle for a handle, which solves the problems of existing handles having non-removable operation keys and levers, inflexible adjustment, and poor adaptability.

[0005] To achieve this objective, the present invention adopts the following technical solution: An embedded structure for a handle, disposed on a handle, includes an operating module and a locking component; The handle housing has a mounting cavity whose shape matches the operating module; The operation module is provided with at least one of operation keys or operation levers; the operation module is provided with a first magnetic component on the side facing the bottom of the mounting cavity; The locking assembly is provided with a second magnetic assembly corresponding to the bottom of the mounting cavity, and at least one of the first magnetic assembly and the second magnetic assembly is provided with both N pole and S pole. The locking assembly is slidably disposed on the handle housing, such that the second magnetic assembly has a first position and a second position; when the second magnetic assembly is in the first position, the magnetic poles of the opposite region of the second magnetic assembly and the first magnetic assembly are opposite; when the second magnetic assembly is in the second position, the magnetic poles of the opposite region of the second magnetic assembly and the first magnetic assembly are the same.

[0006] Furthermore, the inner wall contour of the mounting cavity and the outer wall contour of the operating module are both centrally symmetrical in the cross section perpendicular to the mounting direction; The operation keys include directional keys, action keys, and function keys; The operation module is provided with at least two operation keys, or with at least one operation key and at least one operation lever.

[0007] Furthermore, the action key includes a key socket mounted on the operation module and a keycap detachably mounted on the key socket, the keycap having markings on its surface; The keycaps and key sockets are detachably connected via magnetic attraction. The number of action keys shall not be less than two.

[0008] Furthermore, the locking assembly includes a slider that is slidably disposed relative to the handle housing, and the second magnetic assembly is disposed on the slider; a spring is connected between the slider and the handle housing, and the spring is used to drive the slider to reset so that the second magnetic assembly is held in the first position; the slider is provided with a pressing part that protrudes from the handle housing; The handle housing has a sliding channel at the bottom of the mounting cavity for sliding engagement of the sliding component.

[0009] Furthermore, the sliding channel is provided with a first limiting part and a second limiting part; When the slider abuts against the first limiting part, the second magnetic component is in the first position; When the slider abuts against the second limiting part, the second magnetic component is in the second position.

[0010] Furthermore, the bottom of the mounting cavity is provided with a clearance channel connecting the mounting cavity and the sliding channel, and the clearance channel is positioned directly opposite the first magnetic component and the second magnetic component; The operating module has a protrusion on the side facing the bottom of the mounting cavity that matches the clearance channel, and the first magnetic component is disposed on the protrusion; when the operating module is installed in the mounting cavity, the first magnetic component passes through the clearance channel and abuts against the second magnetic component.

[0011] Furthermore, both the first magnetic component and the second magnetic component are provided with alternating N poles and S poles; When the second magnetic component is in the first position, it magnetically attracts the first magnetic component; when it is in the second position, it magnetically repels the first magnetic component.

[0012] Furthermore, the mounting cavity is provided with a first interface; the operation module is provided with a second interface corresponding to the first interface, and when the operation module is installed in the mounting cavity, the first interface and the second interface are connected.

[0013] Furthermore, the inner wall of the mounting cavity is provided with guide posts that are centrally symmetrical about the center of symmetry of its inner wall contour; The outer wall of the operation module is provided with guide grooves corresponding to the guide posts.

[0014] A handle, including an embedding structure for the handle; The handle's embedding structure is located on one or both sides of the handle.

[0015] Compared with the prior art, the present invention has the following beneficial effects: The embedded structure of the controller provided by this invention uses a sliding locking component to drive the second magnetic component to switch between a first position and a second position. The locking and unlocking of the operation module is completed by the change in the magnetic pole relationship between the first and second magnetic components, thereby enabling the replacement or adjustment of different operation keys or joysticks. The embedded structure of the controller allows for the detachable operation module, with simple and efficient assembly and disassembly, enabling quick replacement without any auxiliary tools. To meet the operational needs of different devices / games, operation modules equipped with different operation keys or joysticks can be flexibly replaced to adapt to the operational logic of various devices / games. For dual-sided controllers, the positions of the operation keys or joysticks on the left and right sides can be swapped, not only adapting to the operational preferences of different players but also accommodating the usage habits of left-handed, right-handed, and other dominant hand players, effectively improving the controller's applicability and flexibility. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] The structures, proportions, sizes, etc., shown in the accompanying drawings of this specification are only for the purpose of assisting those skilled in the art in understanding and reading the content disclosed in the specification, and are not intended to limit the conditions under which the present invention can be implemented. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in the proportions, or adjustments to the size, without affecting the effects and objectives that the present invention can produce, should still fall within the scope of the technical content disclosed in the present invention.

[0018] Figure 1 This is a three-dimensional schematic diagram of the handle in this invention; Figure 2 Top view of the handle in this invention Figure 1 ; Figure 3 Top view of the handle in this invention Figure 2 ,in Figure 3 The operating module and Figure 2 The operating modules are different; Figure 4 This is a cross-sectional view of the embedded structure of the handle in this invention; Figure 5 This is a schematic diagram of the mounting cavity in the present invention; Figure 6 This is a three-dimensional schematic diagram of the locking component in this invention; Figure 7 This is a three-dimensional schematic diagram of the operation module in this invention. Figure 1 ; Figure 8 This is a three-dimensional schematic diagram of the operation module in this invention. Figure 2 ,in Figure 8 The central control module is equipped with a joystick and directional keys; Figure 9 This is a three-dimensional schematic diagram of the operation module in this invention. Figure 3 ,in Figure 9 The central control module is equipped with action keys and function keys; Figure 10 This is a three-dimensional schematic diagram of the operation module in this invention. Figure 4 ,in Figure 10 The central control module is equipped with a joystick and action buttons; Figure 11 This is a three-dimensional schematic diagram of the operation module in this invention. Figure 5 ,in Figure 11 and Figure 10 The difference lies in the layout of the action keys; Figure 12 This is a cross-sectional view of the action key in this invention; Figure 13 This is a schematic diagram of the first magnetic component and the second magnetic component in this invention. Figure 1 ,in Figure 13 The left side shows a schematic diagram when the second magnetic component is in the first position. Figure 13 The right side shows a schematic diagram when the second magnetic component is in the second position; Figure 14 This is a schematic diagram of the first magnetic component and the second magnetic component in this invention. Figure 2 ,in Figure 14 The left side shows a schematic diagram when the second magnetic component is in the first position. Figure 14 The diagram on the right shows the second magnetic component in the second position.

[0019] Illustrations: 1. Mounting cavity; 11. Clearance passage; 12. First interface; 13. Guide post; 2. Operation module; 21. First magnetic assembly; 22. Operation lever; 23. Directional keys; 24. Action keys; 241. Key socket; 242. Keycap; 243. Magnet; 25. Function key; 26. Protrusion; 27. Second interface; 28. Guide groove; 3. Locking assembly; 31. Second magnetic assembly; 32. Sliding member; 321. Pressing part; 322. Clearing part; 33. Spring; 4. Handle housing; 41. Sliding channel; 42. First limiting part; 43. Second limiting part. Detailed Implementation

[0020] To make the objectives, features, and advantages of this invention more apparent and understandable, the technical solutions of the embodiments of this invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described below are only some embodiments of this invention, and not all embodiments. Based on the embodiments of this invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this invention.

[0021] In the description of this invention, it should be understood that the terms "upper," "lower," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be a component positioned centrally in the connection.

[0022] The technical solution of the present invention will be further described below with reference to the accompanying drawings and specific embodiments.

[0023] Example 1: This embodiment provides an embedded structure for a handle, which is disposed on the handle and can be adapted to different operating needs. Figures 1-4As shown, the handle's embedded structure includes an operation module 2 and a locking assembly 3. The handle housing 4 has a mounting cavity 1. It should be noted that the handle housing 4 is the main supporting structure of the handle, used to integrate and install the various components of the handle; this structure is well known in the art. In this embodiment, the handle housing 4 integrates and installs the various components of the handle's embedded structure, providing installation space for the operation module 2 and installation and movement space for the locking assembly 3. Combined with... Figure 5 As shown, the shape of the mounting cavity 1 matches that of the operation module 2, and is used to mount the operation module 2. The operation module 2 is provided with at least one of the operation keys or the operation lever 22 to meet different operation interaction needs. The operation keys include a direction key 23, an action key 24, and a function key 25; wherein, the direction key 23 is used to realize directional control operation, the action key 24 is used to execute core action commands, and the function key 25 is used to realize auxiliary function switching. The operation module 2 is provided with a first magnetic component 21 on the side facing the bottom of the mounting cavity 1; the locking component 3 is provided with a second magnetic component 31 corresponding to the bottom of the mounting cavity 1. The first magnetic component 21 and the second magnetic component 31 are correspondingly arranged, and at least one of the first magnetic component 21 and the second magnetic component 31 is provided with both N pole and S pole, so that when the second magnetic component 31 is facing the first magnetic component 21 in different positions, it can realize the switching between magnetic attraction and magnetic repulsion. The locking component 3 is slidably disposed on the handle housing 4, so that the second magnetic component 31 has a first position and a second position. When the second magnetic component 31 is in the first position, the magnetic poles of the opposite area of ​​the second magnetic component 31 and the first magnetic component 21 are opposite. At this time, the second magnetic component 31 and the first magnetic component 21 are magnetically attracted together, and the operation module 2 can be stably fixed in the mounting cavity 1 by means of magnetic attraction. When the second magnetic component 31 is in the second position, the magnetic poles of the opposite area of ​​the second magnetic component 31 and the first magnetic component 21 are the same. At this time, the second magnetic component 31 and the first magnetic component 21 are magnetically repelled together, and the fixed state of the operation module 2 can be released by magnetic repulsion, so as to realize the disassembly of the operation module 2.

[0024] In practice, the sliding locking assembly 3 drives the second magnetic assembly 31 to switch between the first and second positions. The locking and unlocking of the operation module 2 is achieved by changing the magnetic pole relationship between the first magnetic assembly 21 and the second magnetic assembly 31. When the second magnetic assembly 31 is in the first position, the opposite magnetic poles of the second magnetic assembly 31 and the first magnetic assembly 21 generate a magnetic attraction force, which confines the operation module 2 within the mounting cavity 1, preventing it from detaching. When it is necessary to disassemble the operation module 2, the locking assembly 3 is pushed to slide the second magnetic assembly 31 to the second position. The like magnetic poles of the second magnetic assembly 31 and the first magnetic assembly 21 generate a magnetic repulsion force, releasing the fixed constraint between the operation module 2 and the mounting cavity 1 and providing a magnetic repulsion force opposite to the magnetic attraction force, pushing the operation module 2 away from the mounting cavity 1, facilitating the disassembly of the operation module 2. This structural design allows the control module 2 to be detachable, and the disassembly and assembly operations are simple and efficient, allowing for quick replacement without the need for any auxiliary tools. To meet the operational needs of different devices / games, the control module 2 equipped with different control buttons or joysticks 22 can be flexibly replaced to adapt to the operation logic of various devices / games. For dual-sided gamepads, the positions of the control buttons or joysticks 22 on the left and right sides can also be swapped, which not only adapts to the operation preferences of different players, but also takes into account the usage habits of left-handed, right-handed and other players with different dominant hands, effectively improving the applicability and flexibility of the gamepad.

[0025] The inner wall contour of the mounting cavity 1 and the outer wall contour of the operation module 2 are both centrally symmetrical in cross-section perpendicular to the installation direction, allowing the operation module 2 to be rotated 180° and installed within the mounting cavity 1. This enables the orientation and sequence of different operating components on the operation module 2 to be changed, flexibly altering the operating layout. The operation module 2 is equipped with at least two types of operation keys, or at least one operation key and at least one joystick 22, meeting diverse operational interaction needs. It is particularly adaptable to devices / games with complex operating logic, allowing players to flexibly control the device according to the operational requirements of different devices / games. Figures 7-11 As shown in the specific embodiment, the inner wall contour of the mounting cavity 1 and the outer wall contour of the operation module 2 are both in the shape of an "8". In the two independent circular areas of the "8" shaped operation module 2, a set of operation keys and a set of operation levers 22 are respectively provided, or two sets of operation keys are respectively provided. By removing the operation module 2 from the mounting cavity 1, rotating it 180° and reinstalling it, the order of operation components in the two circular areas can be changed, which can flexibly adapt to different operation needs and usage habits.

[0026] In practice, the operation module 2 on one side can be removed from the corresponding mounting cavity 1, rotated 180°, and then reinstalled. This simple operation allows for the swapping of the positions of different operation components on the operation module 2, enabling flexible adjustment of the operation layout. For dual-sided controllers, the operation modules 2 on both sides can be removed according to individual operating habits. Users can then choose whether to rotate the operation module 2 180° or swap the two operation modules. After adjustment, the operation modules 2 can be reinstalled into the corresponding mounting cavity 1. This adapts to the operating logic of different devices / games and satisfies individual operating habits. By flexibly adjusting the operation layout, the comfort and convenience of operation are improved, catering to the needs of different players.

[0027] Combination Figure 12 As shown, the action keys 24 include a key base 241 mounted on the operation module 2 and keycaps 242 detachably mounted on the key base 241. The keycaps 242 have markings on their surfaces. The number of action keys 24 is not less than two. In a specific embodiment, four action keys 24 are provided. The surfaces of the keycaps 242 on different action keys 24 are respectively marked with X, Y, A, and B. These markings clearly distinguish the function of each action key 24, making it easy for players to quickly identify the operation purpose of different action keys 24, avoiding confusion of key functions during operation, improving the accuracy and efficiency of operation. Clear markings also lower the operating threshold for novice players. The keycaps 242 and the key base 241 are detachably connected by magnetic attraction. In a specific embodiment, one of the keycaps 242 and the key base 241 is provided with a magnet 243, and the other of the keycaps 242 and the key base 241 is provided with a magnetic metal or a magnet with opposite magnetic properties 243, wherein the magnetic metal is one of iron, cobalt, and nickel. Figure 10 and Figure 11 As shown, this design achieves stable magnetic attachment and easy disassembly of the keycaps 242 and key sockets 241. Players can freely replace keycaps 242 with different markings and feel according to their own operating habits, or even replace them with keycap 242 types that suit their own operating needs, further optimizing the operating experience and improving the compatibility and practicality of the gamepad. In a specific embodiment, both the keycaps 242 and key sockets 241 are provided with magnets 243, and the magnets 243 on the keycaps 242 and key sockets 241 have opposite magnetic properties.

[0028] Combination Figure 4 and Figure 6As shown, the locking assembly 3 includes a sliding member 32 slidably disposed relative to the handle housing 4, and the second magnetic assembly 31 is disposed on the sliding member 32. A spring 33 is connected between the sliding member 32 and the handle housing 4, and the spring 33 is used to drive the sliding member 32 to reset so that the second magnetic assembly 31 is held in the first position. The sliding member 32 is provided with a pressing part 321 protruding from the handle housing 4 to facilitate pushing the sliding member 32. A sliding channel 41 is provided on the handle housing 4 at the position corresponding to the bottom of the mounting cavity 1 for the sliding member 32 to slide. During operation, pressing the pressing part 321 pushes the second magnetic assembly 31 to the second position, so that the second magnetic assembly 31 and the first magnetic assembly 21 form a magnetic repulsion engagement, releasing the locking state of the operation module 2, which facilitates the disassembly of the operation module 2. After releasing the pressing part 321, the second magnetic assembly 31 returns to the first position under the action of the spring 33. The sliding channel 41 is provided with a first limiting part 42 and a second limiting part 43. When the sliding member 32 abuts against the first limiting part 42, the second magnetic component 31 is located in the first position, which can limit the sliding stroke of the sliding member 32, ensuring that the second magnetic component 31 stops at the first position, so that the second magnetic component 31 and the first magnetic component 21 are precisely aligned, ensuring the stability and reliability of the magnetic attraction between the two, and avoiding the second magnetic component 31 from shifting due to excessive sliding of the sliding member 32, which would affect the locking effect of the operation module 2. When the sliding member 32 abuts against the second limiting part 43, the second magnetic component 31 is located in the second position, which can also limit the sliding member 32, so that the second magnetic component 31 stops precisely at the second position, ensuring that the second magnetic component 31 and the first magnetic component 21 are precisely aligned and form a stable magnetic repulsion engagement, while preventing the sliding member 32 from sliding excessively and affecting disassembly, ensuring the smoothness of the disassembly process of the operation module 2.

[0029] The bottom of the mounting cavity 1 has a clearance channel 11 connecting the mounting cavity 1 and the sliding channel 41. The clearance channel 11 is positioned directly opposite the first magnetic component 21 and the second magnetic component 31. The operating module 2 has a protrusion 26 on its side facing the bottom of the mounting cavity 1, which matches the clearance channel 11. The protrusion 26 protrudes from the surface of the operating module 2, and the first magnetic component 21 is mounted on the protrusion 26. When the operating module 2 is installed in the mounting cavity 1, the first magnetic component 21 passes through the clearance channel 11 and abuts against the second magnetic component 31. This clearance channel 11 effectively avoids structural obstruction at the bottom of the mounting cavity 1, allowing the first magnetic component 21 and the second magnetic component 31 to be positioned close to each other. This prevents the shell structure at the bottom of the mounting cavity 1 from hindering the magnetic force transmission between them, ensuring that the magnetic attraction and repulsion forces can be transmitted stably and efficiently, thereby guaranteeing the installation and fixation effect and the smoothness of disassembly of the operating module 2. Meanwhile, the cooperation between the protrusion 26 and the avoidance channel 11 can position the first magnetic component 21, further ensuring the correspondence accuracy between the first magnetic component 21 and the second magnetic component 31, ensuring the stable performance of magnetic attraction and repulsion effects, providing strong support for the reliable fixing and convenient disassembly of the operation module 2, and effectively avoiding problems such as weakened magnetic force and failure of cooperation due to structural obstruction.

[0030] Both the first magnetic component 21 and the second magnetic component 31 have alternating N and S poles, ensuring flexible switching between magnetic attraction and repulsion when they are facing each other in different positions. Compared to a single magnetic component having alternating N and S poles, having alternating poles on both makes the switching between magnetic attraction and repulsion more stable and the magnetic force transmission more uniform. When the second magnetic component 31 is in the first position, it magnetically attracts the first magnetic component 21; when it is in the second position, it magnetically repels the first magnetic component 21. Figure 13As shown, in a specific embodiment, the N and S poles on the first magnetic component 21 are arranged in the pattern SNSN; the N and S poles on the second magnetic component 31 are arranged in the pattern SNSN. When the second magnetic component 31 is in the first position, the N pole on the second magnetic component 31 is directly opposite the S pole of the first magnetic component 21, and the S pole on the second magnetic component 31 is directly opposite the N pole of the first magnetic component 21. In a specific embodiment, at this time, the SNS poles on the left side of the second magnetic component 31 are sequentially opposite the NSN poles on the right side of the first magnetic component 21, the N pole on the right side of the second magnetic component 31 is empty, and the first S pole on the left side of the first magnetic component 21 is empty. The operating module 2 is stably fixed in the installation position by magnetic attraction. When the second magnetic component 31 is in the second position, the N pole of the second magnetic component 31 is directly opposite the N pole of the first magnetic component 21, and the S pole of the second magnetic component 31 is directly opposite the S pole of the first magnetic component 21. In a specific embodiment, the SNSN poles of the second magnetic component 31 are sequentially aligned with the SNSN poles of the first magnetic component 21. Because they share the same magnetic poles, they generate a magnetic repulsive force, which can quickly release the fixed state of the operating module 2, allowing it to be removed from its installation position without the need for additional tools. This facilitates the easy disassembly of the operating module 2, and the magnetic repulsive force also helps the operating module 2 to quickly detach from its installation position, improving disassembly efficiency. In other embodiments, combined with... Figure 14 As shown, the N and S poles on the first magnetic component 21 are arranged in the pattern SNSN, and the N and S poles on the second magnetic component 31 are arranged in the pattern NSN. When the second magnetic component 31 is in the first position, the NSN on the second magnetic component 31 is directly opposite the SNS on the first magnetic component 21, and the operating module 2 is fixed by magnetic attraction. When the second magnetic component 31 is in the second position, the NSN on the second magnetic component 31 is directly opposite the NSN on the first magnetic component 21, and the operating module 2 is disassembled by magnetic repulsion. It should be noted that the arrangement of the N and S poles on the first magnetic component 21 and the second magnetic component 31 is not exhaustive. Any arrangement that enables the second magnetic component 31 to magnetically attract the first magnetic component 21 when it is in the first position and to magnetically repel the first magnetic component 21 when it is in the second position can be used in this embodiment.

[0031] The mounting cavity 1 is provided with a first interface 12; the operation module 2 is provided with a second interface 27 corresponding to the first interface 12. When the operation module 2 is installed in the mounting cavity 1, the first interface 12 and the second interface 27 are connected to each other, realizing the electrical signal transmission and power supply connection between the control module of the handle and the operation module 2, ensuring the normal operation of the operation module 2. In a specific embodiment, the first interface 12 is located at the center of symmetry of the inner wall contour of the mounting cavity 1, or is arranged in a centrally symmetrical manner with respect to the center of symmetry; the second interface 27 is located at the center of symmetry of the outer wall contour of the operation module 2, or is arranged in a centrally symmetrical manner with respect to the center of symmetry, ensuring that when the operation module 2 is rotated 180° to change direction or when different operation modules 2 are replaced, the first interface 12 and the second interface 27 can be accurately connected to each other, and there will be no problem of interface mismatch due to direction adjustment. The slider 32 is provided with a relief part that avoids the second interface 27 to prevent the slider 32 from interfering with or colliding with the second interface 27 during sliding, avoiding interface damage, and ensuring smooth movement of the slider 32. The inner wall of the mounting cavity 1 is provided with guide posts 13 that are centrally symmetrical about the center of its inner wall contour; the outer wall of the operating module 2 is provided with guide grooves 28 corresponding to the guide posts 13. The guide posts 13 and guide grooves 28 cooperate with each other to guide and position the operating module 2 during installation, ensuring accurate installation position. The two are centrally symmetrically arranged and can work together to guide and position the operating module 2 after it has been rotated 180°, ensuring smooth installation and accurate interface connection.

[0032] The handle embedding structure provided in this embodiment uses a sliding locking component 3 to drive the second magnetic component 31 to switch between a first position and a second position. The locking and unlocking actions of the operation module 2 are completed by the change in the magnetic pole relationship between the first magnetic component 21 and the second magnetic component 31. The handle embedding structure described in this embodiment allows the operation module 2 to be detachable, and the disassembly and assembly operations are simple and efficient, allowing for quick replacement without any auxiliary tools. To meet the operational needs of different devices / games, the operation module 2 equipped with different operation buttons or joysticks 22 can be flexibly replaced to adapt to the operational logic of various devices / games. For dual-sided handles, the positions of the operation buttons or joysticks 22 on the left and right sides can also be swapped, not only adapting to the operational preferences of different players but also accommodating the usage habits of left-handed, right-handed, and other dominant hand players, effectively improving the applicability and flexibility of the handle.

[0033] Example 2: This embodiment provides a handle, which includes the embedded structure of the handle described in Embodiment 1, enabling the detachable installation and flexible replacement of the operation module 2. The embedded structure of the handle is located on one or both sides of the handle, corresponding to both single-sided and double-sided handles. For a single-sided handle, the operation module 2 can be easily disassembled, replaced, and adjusted to adapt to the operating preferences of different players and the operating logic of various devices / games, improving the applicability and flexibility of the handle. For a double-sided handle, the operation modules 2 on the left and right sides can be disassembled and their positions swapped, and the usage habits of left-handed, right-handed, and other dominant hand players can also be accommodated, further improving the applicability and flexibility of the handle.

[0034] It should be noted that the handle also includes conventional components such as circuit structure and battery. The focus of this embodiment is that the handle is provided with the handle embedding structure described in Embodiment 1, so as to realize the convenient disassembly, flexible replacement and position adjustment of the operation module 2, and improve the applicability and user experience of the handle. As for other structures, such as circuit structure and battery, they are well known to those skilled in the art and will not be described in detail here.

[0035] The above-described embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. An embedded structure for a handle, characterized in that: Located on the handle, it includes an operation module (2) and a locking component (3). The handle housing (4) of the handle is provided with a mounting cavity (1), the shape of which matches the operating module (2); The operation module (2) is provided with at least one of operation keys or operation levers (22); the operation module (2) is provided with a first magnetic component (21) on the side facing the bottom of the mounting cavity (1); The locking assembly (3) is provided with a second magnetic assembly (31) corresponding to the bottom of the mounting cavity (1), and at least one of the first magnetic assembly (21) and the second magnetic assembly (31) is provided with an N pole and an S pole at the same time; The locking assembly (3) is slidably disposed on the handle housing (4), such that the second magnetic assembly (31) has a first position and a second position; when the second magnetic assembly (31) is in the first position, the magnetic poles of the second magnetic assembly (31) and the opposite region of the first magnetic assembly (21) are opposite; when the second magnetic assembly (31) is in the second position, the magnetic poles of the second magnetic assembly (31) and the opposite region of the first magnetic assembly (21) are the same.

2. The handle embedding structure according to claim 1, characterized in that: The inner wall contour of the mounting cavity (1) and the outer wall contour of the operating module (2) are both centrally symmetrical in the cross section perpendicular to the mounting direction. The operation keys include directional keys (23), action keys (24), and function keys (25); The operation module (2) is provided with at least two operation keys, or with at least one operation key and at least one operation lever (22).

3. The handle embedding structure according to claim 2, characterized in that: The action key (24) includes a key socket (241) mounted on the operation module (2) and a keycap (242) detachably mounted on the key socket (241), the keycap (242) having an marking on its surface; The keycap (242) and key base (241) are detachably connected by magnetic attraction; The number of action keys (24) is no less than 2.

4. The handle embedding structure according to claim 1, characterized in that: The locking assembly (3) includes a sliding member (32) that is slidably disposed relative to the handle housing (4), and the second magnetic assembly (31) is disposed on the sliding member (32); a spring (33) is connected between the sliding member (32) and the handle housing (4), and the spring (33) is used to drive the sliding member (32) to reset so that the second magnetic assembly (31) is held in the first position; the sliding member (32) is provided with a pressing part (321) that protrudes from the handle housing (4). The handle housing (4) is provided with a sliding channel (41) at the bottom of the mounting cavity (1) for sliding engagement of the sliding component (32).

5. The handle embedding structure according to claim 4, characterized in that: The sliding channel (41) is provided with a first limiting part (42) and a second limiting part (43). When the slider (32) abuts against the first limiting part (42), the second magnetic component (31) is in the first position; When the slider (32) comes into contact with the second limiting part (43), the second magnetic component (31) is in the second position.

6. The handle embedding structure according to claim 4, characterized in that: The bottom of the mounting cavity (1) is provided with a clearance channel (11) that connects the mounting cavity (1) and the sliding channel (41). The clearance channel (11) is set directly opposite the first magnetic component (21) and the second magnetic component (31). The operation module (2) has a protrusion (26) on one side facing the bottom of the mounting cavity (1) that matches the clearance channel (11), and the first magnetic component (21) is disposed on the protrusion (26); when the operation module (2) is installed in the mounting cavity (1), the first magnetic component (21) passes through the clearance channel (11) and abuts against the second magnetic component (31).

7. The handle embedding structure according to claim 1, characterized in that: Both the first magnetic component (21) and the second magnetic component (31) are provided with alternating N poles and S poles; When the second magnetic component (31) is in the first position, it magnetically attracts the first magnetic component (21), and when it is in the second position, it magnetically repels the first magnetic component (21).

8. The handle embedding structure according to claim 1, characterized in that: The mounting cavity (1) is provided with a first interface (12); the operation module (2) is provided with a second interface (27) corresponding to the first interface (12). When the operation module (2) is installed in the mounting cavity (1), the first interface (12) and the second interface (27) are connected.

9. The handle embedding structure according to claim 2, characterized in that: The inner wall of the mounting cavity (1) is provided with guide posts (13) that are centrally symmetrical about the center of symmetry of its inner wall profile. The outer wall of the operation module (2) is provided with a guide groove (28) corresponding to the guide post (13).

10. A handle, characterized in that: Includes the handle embedding structure as described in any one of claims 1-9; The handle's embedding structure is located on one or both sides of the handle.