Intelligent control device and control system

CN224720399UActive Publication Date: 2026-09-04SHENZHEN LUMIUNITED TECH CO LTD
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Patent Information

Application Number
CN202522252161.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-24
Publication Date
2026-09-04
Estimated Expiration
2035-10-24

AI Technical Summary

Technical Problem

[0003]基于此,有必要针对目前可控制装置结构复杂导致拆装不便的问题,提供一种智能控制装置及控制系统,其能够实现控制主机与操作主机的可拆卸连接,以简化控制主机与操作主机的拆装工序,便于控制主机与操作主机连接,便于用户使用

Benefits of technology

[0038]The intelligent control device and control system disclosed in this application include a control host that can be installed on the device to be controlled, and an operating host that can be connected to the control components of the device to be controlled. A connection structure allows for a detachable connection between the control host and the operating host. When the control host is operating, it can drive the operating host to perform control operations on the control components, thereby achieving intelligent control of the device to be controlled. Thus, the intelligent control device achieves a detachable connection between the control host and the operating host through the connection structure, simplifying the assembly and disassembly process and facilitating connection between the two hosts. This makes it easier for the control host to control the operating host to perform control operations on the control components, thus simplifying user operation.

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Abstract

The application relates to an intelligent control device and a control system. The intelligent control device comprises a control host installed on a device to be controlled, an operation host used for cooperating with a control component of the device to be controlled, and a connecting structure used for detachably connecting the control host and the operation host, so that the control host and the operation host are drivingly connected, and the control host drives the operation host to drive the control component to perform a control operation. The detachable connection of the control host and the operation host is realized through the connecting structure, so that the dismounting process of the control host and the operation host is simplified, the control host and the operation host are conveniently connected, and the control host is convenient for users to use.
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Description

Technical Field

[0001] This application relates to the field of smart home technology, and in particular to a smart control device and control system. Background Technology

[0002] In the current smart home industry, control systems such as switches and other electrical appliances require manual operation. Typically, controllable devices are installed in locations requiring frequent manual operation (e.g., rotating knobs, toggling switches) to replace manual intervention and enable remote or automated operation of controlled devices. However, current controllable devices are structurally complex, inconvenient to assemble and disassemble, and difficult to use. Utility Model Content

[0003] Therefore, it is necessary to provide an intelligent control device and control system to address the problem of inconvenient disassembly and assembly caused by the complex structure of current controllable devices. This system can realize the detachable connection between the control host and the operating host, thereby simplifying the disassembly and assembly process of the control host and the operating host, facilitating the connection between the control host and the operating host, and making it easier for users to use.

[0004] An intelligent control device is used to install on a device to be controlled, the intelligent control device comprising:

[0005] The control unit is installed on the device to be controlled.

[0006] An operating host, used to cooperate with the control components of the device to be controlled; and

[0007] The connection structure detachably connects the control host and the operating host, enabling the control host and the operating host to be connected in a transmission manner, so that the control host drives the operating host to drive the control component to perform control operations.

[0008] In one embodiment of this application, the connection structure includes a pressing structure, the pressing structure being disposed on one of the control host and the operation host, and the other of the control host and the operation host including a mating structure;

[0009] The pressing structure is detachably installed in the mating structure to connect the control host and the operating host.

[0010] In one embodiment of this application, the operating host includes a pressing hole, the pressing structure is pressably disposed in the operating host and partially extends out of the pressing hole, the mating structure is disposed in the control host and includes a snap-fit ​​structure, the snap-fit ​​structure communicates with the inner cavity of the control host, and the pressing structure can be snapped into the snap-fit ​​structure to connect the control host and the operating host.

[0011] In one embodiment of this application, the pressing structure includes a pressing bracket, an elastic element, and a snap-fit ​​element;

[0012] The snap-fit ​​element is disposed on the pressing bracket and protrudes through the pressing hole. The snap-fit ​​element also extends out of the operating host to be snapped into the snap-fit ​​structure. The elastic element is disposed between the pressing bracket and the snap-fit ​​element. The elastic force of the elastic element can keep the snap-fit ​​element snapped into the snap-fit ​​structure.

[0013] In one embodiment of this application, the snap-fit ​​component includes a pressing body and a snap-fit ​​body. The pressing body is disposed on the pressing bracket and protrudes through the pressing hole. The snap-fit ​​body is disposed on the pressing body and protrudes through the operating host to snap into the snap-fit ​​structure.

[0014] And / or, the snap-fit ​​component further includes a hook portion, which protrudes from the surface of the snap-fit ​​component and is able to hook onto the inner wall of the control host when the snap-fit ​​component is snapped into the snap-fit ​​structure, so as to connect the control host and the operating host.

[0015] And / or, the snap-fit ​​component further includes a first fixing part, one end of the elastic element is mounted on the first fixing part, and the first fixing part is used to guide and limit the elastic element;

[0016] And / or, the pressing bracket further includes a second fixing part, the other end of the elastic element is mounted on the second fixing part, and the second fixing part is used to guide and limit the elastic element.

[0017] In one embodiment of this application, the pressing bracket includes a connecting body and an mounting body. The mounting body is disposed on the connecting body and mounted on the operating host. An opening is provided on one side of the mounting body. The elastic member and the snap-fit ​​member are disposed in the mounting body. The snap-fit ​​member extends through the opening and the pressing hole.

[0018] In one embodiment of this application, the snap-fit ​​component further includes a limiting stop edge, which protrudes from the edge of the pressing body in the snap-fit ​​component and is located in the mounting body. The limiting stop edge is able to abut against the edge of the opening when the elastic member pushes the pressing body.

[0019] And / or, the snap-fit ​​component further includes a first guide portion, and the pressing bracket further includes a second guide portion. The second guide portion is disposed on the mounting body. The first guide portion and the second guide portion guide each other to guide the movement of the snap-fit ​​component along the pressing direction. One of the first guide portion and the second guide portion includes a guide protrusion, and the other includes a guide groove that mates with the guide protrusion.

[0020] And / or, the pressing bracket includes two mounting bodies, which are disposed on both sides of the connecting body. Each mounting body has an elastic element and a snap-fit ​​element installed in it, and each snap-fit ​​element corresponds to a snap-fit ​​structure.

[0021] In one embodiment of this application, the connection structure includes an adsorption component, which is disposed on one of the control host and the operation host and is capable of adsorbing and connecting to the other. The adsorption component includes an electromagnetic adsorption structure or a vacuum adsorption structure.

[0022] Alternatively, the control host may be provided with a first connection hole, the operating host may be provided with a second connection hole, and the connection structure may further include a threaded component, which is installed in the first connection hole and the second connection hole to connect the control host and the operating host.

[0023] In one embodiment of this application, a first positioning part is provided on the surface of the control host facing the operating host, and a second positioning part is provided on the surface of the operating host facing the control host. After the connection structure connects the control host and the operating host, the first positioning part and the second positioning part are positioned and engaged.

[0024] Wherein, one of the first positioning part and the second positioning part includes a positioning protrusion, and the other includes a positioning groove that cooperates with the positioning protrusion, and / or, the number of the first positioning parts includes multiple parts, which are arranged at intervals, the second positioning part is adapted to the first positioning part, and / or, the shape of the first positioning part is strip-shaped, circular or polygonal, and the shape of the second positioning part is adapted to the shape of the first positioning part.

[0025] In one embodiment of this application, the control host includes a first mounting housing and a drive structure, the drive structure being disposed in the first mounting housing, and the first mounting housing being mounted on the device to be controlled;

[0026] The operating host includes a second mounting housing and a transmission structure. The transmission structure is located in the second mounting housing and is connected to the drive structure. The transmission structure is located outside the second mounting housing and cooperates with the control component.

[0027] The connection structure detachably connects the first mounting housing and the second mounting housing, so that the drive structure and the transmission structure are connected in a transmission connection.

[0028] In one embodiment of this application, the drive structure includes a power output shaft, the transmission structure includes a power input shaft, the power output shaft extends through the first mounting housing and can extend into the second mounting housing to connect the power input shaft;

[0029] After the connection structure connects the first mounting housing and the second mounting housing, the power output shaft is connected to the power input shaft in a transmission connection.

[0030] In one embodiment of this application, a first mating part is provided on the outer wall of the power output shaft, and a second mating part is provided on the inner wall of the power input shaft. The first mating part and the second mating part are mated and connected to each other so that the power input shaft and the power output shaft rotate synchronously.

[0031] Wherein, one of the first mating part and the second mating part includes a mating protrusion, and the other includes a mating groove that mates with the mating protrusion; or, both the first mating part and the second mating part include mating planes, and the mating planes fit together to allow the first mating part and the second mating part to rotate synchronously.

[0032] And / or, the number of the first mating parts includes multiple parts, which are sequentially disposed on the outer wall of the power input shaft, and the second mating part is adapted to the first mating part.

[0033] A control system includes a device to be controlled and an intelligent control device as described in any of the above technical features.

[0034] The device to be controlled includes a control component. In the intelligent control device, the control host is installed on the device to be controlled. In the intelligent control device, the operating host cooperates with the control component, and the control host drives the operating host to drive the control component to perform control operations.

[0035] In one embodiment of this application, the control component includes a control switch that can be pressed or toggled, the operating host abuts against or is connected to the control switch, and the operating host can turn the control switch on and off when it moves;

[0036] Alternatively, the control component may include a control knob, with the operating host connected to the control knob, and the operating host driving the control knob to rotate.

[0037] By adopting the above technical solution, this application has at least the following technical effects:

[0038] The intelligent control device and control system disclosed in this application include a control host that can be installed on the device to be controlled, and an operating host that can be connected to the control components of the device to be controlled. A connection structure allows for a detachable connection between the control host and the operating host. When the control host is operating, it can drive the operating host to perform control operations on the control components, thereby achieving intelligent control of the device to be controlled. Thus, the intelligent control device achieves a detachable connection between the control host and the operating host through the connection structure, simplifying the assembly and disassembly process and facilitating connection between the two hosts. This makes it easier for the control host to control the operating host to perform control operations on the control components, thus simplifying user operation. Attached Figure Description

[0039] Figure 1 This is a schematic diagram of an intelligent control device according to an embodiment of this application.

[0040] Figure 2 for Figure 1 The diagram shown is an exploded view of the intelligent control device after the control host and the operation host have been separated.

[0041] Figure 3 for Figure 2 The diagram shown is a schematic diagram from another perspective after the control host and the operation host have been separated.

[0042] Figure 4 for Figure 1 The front view of the intelligent control device shown.

[0043] Figure 5 for Figure 4 The intelligent control device shown is a cross-sectional view at point AA.

[0044] Figure 6 for Figure 5 The image shows a magnified view of the intelligent control device at point B.

[0045] Figure 7 for Figure 2 The diagram shows an exploded view of the connection structure in the intelligent control device.

[0046] Figure 8 for Figure 7 The diagram shown is an exploded view of the connection structure from another perspective.

[0047] Figure 9 for Figure 7 A schematic diagram of the snap-fit ​​component in the connection structure shown.

[0048] Figure 10 for Figure 7 A schematic diagram of the pressing bracket in the connection structure shown.

[0049] Figure 11 for Figure 2 A magnified view of the intelligent control device shown at point C.

[0050] Figure 12 for Figure 3 The image shows a magnified view of the intelligent control device at point D.

[0051] Figure 13 This is a schematic diagram of a control system with an intelligent control device installed according to an embodiment of this application.

[0052] Figure 14 This is a schematic diagram of a control system with an intelligent control device installed in another embodiment of this application.

[0053] Wherein: 1. Control system; 10. Intelligent control device; 100. Control host; 110. First mounting housing; 120. Drive structure; 121. Power output shaft; 1211. First mating part; 130. Snap-fit ​​structure; 140. First positioning part; 200. Operating host; 210. Second mounting housing; 220. Transmission structure; 221. Power input shaft; 2211. Second mating part; 230. Pressing hole; 240. Second positioning part. Position part; 300, connecting structure; 310, pressing bracket; 311, connecting body; 312, mounting body; 3121, opening; 313, second fixing part; 314, second guide part; 320, elastic element; 330, snap-fit ​​element; 331, pressing body; 332, snap-fit ​​body; 333, hook part; 334, first fixing part; 335, limiting stop edge; 336, first guide part; 40, device to be controlled; 401, control component. Detailed Implementation

[0054] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the specific embodiments of this application are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.

[0055] In the description of this application, it should be understood that if terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" appear, these terms 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 this application 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 this application.

[0056] Furthermore, where the terms "first" and "second" appear, these terms are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, where the term "multiple" appears, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0057] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0058] In this application, unless otherwise expressly specified and limited, the use of descriptions such as "above" or "below" the second feature indicates that the first and second features are in direct contact, or indirect contact via an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. Similarly, "below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0059] It should be noted that if an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. If an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. If so, the terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used in this application are for illustrative purposes only and do not represent the only possible implementation.

[0060] In the current smart home industry, control systems such as switches and other electrical appliances require manual operation. Typically, controllable devices are installed in locations requiring frequent manual operation (e.g., rotating knobs, toggling switches) to replace manual intervention and enable remote or automated operation of controlled devices. However, current controllable devices are structurally complex, inconvenient to assemble and disassemble, and difficult to use.

[0061] For this purpose, please refer to Figures 1 to 3 This application provides an intelligent control device 10, which can control the control component 401 (not shown) of the device to be controlled 40 (not shown) so that the device to be controlled 40 performs the corresponding function. Figure 1 This is a schematic diagram of an intelligent control device 10 according to an embodiment of this application. Figure 2 for Figure 1 The diagram shown is an exploded view of the intelligent control device 10 after the control host 100 and the operation host 200 have been separated. Figure 3 for Figure 2 The diagram shown is a schematic diagram from another perspective after the control host 100 and the operation host 200 have been separated.

[0062] participate Figures 1 to 3 , Figure 13 and Figure 14 To better illustrate the structure of the intelligent control device 10, the structure of the control system 1 (not shown) will be briefly introduced here first. Figure 13 This is a schematic diagram of the installation of an intelligent control device 10 in a control system 11 according to an embodiment of this application. Figure 14This is a schematic diagram illustrating the installation of an intelligent control device 10 in a control system 11 according to another embodiment of this application. The control system 1 includes a device to be controlled 40 and the intelligent control device 10 of this application. The device to be controlled 40 includes a control component 401, which is a component for operating and controlling the device to be controlled 40. When the control component 401 is operated, intelligent control of the device to be controlled 40 can be achieved, enabling the device to perform corresponding functions. The intelligent control device 10 can be installed on the device to be controlled 40 and cooperates with the control component 401. When it is necessary to operate the control component 401, the intelligent control device 10 operates and drives the control component 401 to move, so that the control component 401 performs control operations.

[0063] Optionally, the device to be controlled 40 includes a smart switch, and the control component 401 includes a control knob in the smart switch, or a control switch that can be pressed or toggled. For example... Figure 13 and Figure 14 As shown, optionally, the device to be controlled 40 includes a household appliance, and the control component 401 includes a control knob or a pressable control switch from the household appliance, such as... Figure 13 As shown, exemplarily, the device to be controlled 40 includes a microwave oven, and the control component 401 is a control knob on the microwave oven; the control device is an oven, and the control component 401 is a control knob on the oven; as Figure 14 As shown, the control device is a water heater, and the control component 401 is the control knob on the water heater; alternatively, the control device can be other home appliances that require control. Of course, in other embodiments of this application, the control component 401 can also be other smart home appliances requiring intelligent control or appliances used in operation.

[0064] It is worth noting that the type of device 40 to be controlled is not limited to the above, and can also be other products or devices that require intelligent control through control component 401, which will not be described in this application. It should be noted that the intelligent control device 10 of this application can be used in conjunction with the device 40 to be controlled; that is, the intelligent control device 10 and the device 40 to be controlled are assembled to form a control system 1, so that the control system 1 meets the intelligent usage requirements of smart homes. Of course, the intelligent control device 10 can also be used independently. This intelligent control device 10 can cooperate with the current device 40 to intelligently transform the current device 40. Whether the intelligent control device 10 is used independently or in conjunction with the device 40 to be controlled, the structure and control principle of the intelligent control device 10 are essentially the same. The following description will only use the example of the intelligent control device 10 being used in conjunction with the device 40 to be controlled.

[0065] The intelligent control device 10 of this application achieves a detachable connection between the control host 100 and the operating host 200 through the connection structure 300, thereby simplifying the assembly and disassembly process of the control host 100 and the operating host 200, facilitating the connection between the control host 100 and the operating host 200, and thus making it easier for the control host 100 to control the operating host 200 to drive the control component 401 to perform control operations, which is convenient for users. The following describes the specific structure of the intelligent control device 10 in some embodiments.

[0066] See Figures 1 to 6 In one embodiment, the intelligent control device 10 includes a control host 100, an operation host 200, and a connection structure 300. The operation host 200 is used to cooperate with the control component 401 of the device to be controlled 40. The connection structure 300 detachably connects the control host 100 and the operation host 200, so that the control host 100 and the operation host 200 are connected by a drive, so that the control host 100 drives the operation host 200 to drive the control component 401 to perform control operations. Figure 4 for Figure 1 The front view of the intelligent control device 10 shown is shown. Figure 5 for Figure 4 The cross-sectional view of the intelligent control device 10 shown at point AA. Figure 6 for Figure 5 The image shows a partial enlarged view of the intelligent control device 10 at point B. In this embodiment, the control host 100 is installed on the device 40 to be controlled. Of course, in other embodiments of this application, the control host 100 can also be installed on a wall or other component, as long as the operating host 200 can cooperate with the control component 401 of the device 40 to be controlled.

[0067] The control host 100 is the component in the intelligent control device 10 that implements intelligent control. The operating host 200 is located in the intelligent control device 10 and is a component that can cooperate with the control component 401 and drive the control component 401 to move. The control host 100 can be installed on the surface of the device 40 to be controlled. The operating host 200 is connected to the control host 100 and is located on the side of the control host 100. Furthermore, the control host 100 and the operating host 200 are in a transmission cooperation, and the control host 100 can control the operating host 200 to drive the control component 401 to move. Specifically, when intelligent control of the device 40 to be controlled is required, the control host 100 can control the operation of the operating host 200, which in turn can drive the operation of the control component 401 to perform control operations, thereby enabling the device 40 to perform the corresponding function.

[0068] Taking a microwave oven as an example of the device to be controlled (40), the control component 401 includes a control knob. The control host 100 can be mounted on the surface of the microwave oven. The operating host 200 is connected to the control host 100 and can hold the control knob of the microwave oven. The control host 100 can control the movement of the operating host 200, which in turn can drive the control knob to rotate, so that the microwave oven performs a heating operation according to the time and / or temperature of the control knob rotation. This example is provided to illustrate that the control component 401 performs a control operation, thereby enabling the device to be controlled (40) to perform the corresponding function. Further details will not be provided later.

[0069] Understandably, in the past, there might not have been a control host 100 and an operating host 200, or the control host 100 and the operating host 200 might have been an integrated structure or have a complex structure for disassembly and assembly, making them inconvenient to use. Therefore, the intelligent control device 10 of this application also includes a connecting structure 300, which detachably connects the control host 100 and the operating host 200. In this way, when the control host 100 and the operating host 200 are installed, the connecting structure 300 can connect the control host 100 and the operating host 200, allowing the operating host 200 to be mounted on the side of the control host 100 and connected to it via a transmission mechanism. When disassembly is required, the connecting structure 300 allows the control host 100 and the operating host 200 to be directly separated.

[0070] Thus, after the control host 100 and the operating host 200 are detachably connected via the connection structure 300, the installation and removal of the control host 100 and the operating host 200 can be easily facilitated, improving installation and removal efficiency and making it easier for users to replace or adjust at least one of the control host 100 and the operating host 200, thus facilitating user operation. Furthermore, after the connection structure 300 connects the control host 100 and the operating host 200, a transmission connection is established between them. When intelligently controlling the device 40 to be controlled, the control host 100 can control the movement of the operating host 200, which in turn drives the control component 401 to perform control operations, thereby enabling the device 40 to achieve the corresponding function.

[0071] The intelligent control device 10 in the above embodiment realizes the detachable connection between the control host 100 and the operation host 200 through the connection structure 300, so as to simplify the disassembly and assembly process of the control host 100 and the operation host 200, facilitate the connection between the control host 100 and the operation host 200, and make it easy for the control host 100 to control the operation host 200 to drive the control component 401 to perform control operations, which is convenient for users.

[0072] See Figures 2 to 8In one embodiment of this application, the connection structure 300 includes a pressing structure, which is disposed on one of the control host 100 and the operation host 200. The other of the control host 100 and the operation host 200 includes a mating structure. The pressing structure is detachably installed in the mating structure to connect the control host 100 and the operation host 200. Figure 7 for Figure 2 An exploded view of the connection structure 300 in the intelligent control device 10 shown. Figure 8 for Figure 7 The diagram shows an exploded view of the connection structure 300 from another perspective.

[0073] One of the control host 100 and the operating host 200 is equipped with a pressing structure, and the other is equipped with a mating structure. When the control host 100 and the operating host 200 are connected, the pressing structure can connect to the mating structure to connect the control host 100 and the operating host 200, ensuring the reliability of the connection and enabling the control host 100 to control the rotation of the operating host 200. When disassembly is required, pressing the pressing structure separates the control host 100 from the operating host 200, thereby disengaging the pressing structure from the mating structure and achieving the disassembly of the control host 100 and the operating host 200.

[0074] See Figures 2 to 8 In a specific example, the connecting structure 300 is disposed on the operating host 200, and the mating structure is disposed on the control host 100. Specifically, the operating host 200 includes a pressing hole 230, the connecting structure 300 is pressably disposed in the operating host 200 and partially extends out of the pressing hole 230, the mating structure is disposed on the control host 100 and includes a snap-fit ​​structure 130, the snap-fit ​​structure 130 is connected to the inner cavity of the control host 100, and the connecting structure 300 can snap into the snap-fit ​​structure 130 to connect the control host 100 and the operating host 200.

[0075] The connecting structure 300 is disposed after the operating host 200. The connecting structure 300 extends from the side of the operating host 200 toward the control host 100. The surface of the control host 100 facing the operating host 200 has a snap-fit ​​structure 130, which is correspondingly disposed with the connecting structure 300. Furthermore, the operating host 200 also has a pressing hole 230 on the side away from the control host 100, through which part of the connecting structure 300 extends. When the control host 100 and the operating host 200 are installed, the connecting structure 300 is inserted into the snap-fit ​​structure 130 and snapped in. At this time, the cooperation between the connecting structure 300 and the snap-fit ​​structure 130 enables a reliable connection between the control host 100 and the operating host 200. During disassembly, the connecting structure 300 is pressed through the pressing hole 230. At this time, the connecting structure 300 can move within the snap-fit ​​structure 130 to disengage from the snap-fit ​​position. Subsequently, the operating host 200 and / or the control host 100 can be moved, and the operating host 200 and the control host 100 can be separated, thus realizing the disassembly of the control host 100 and the operating host 200. Optionally, the snap-fit ​​structure 130 is a snap-fit ​​hole or other component that can mate with the connecting structure 300.

[0076] Of course, in other embodiments of this application, the mating structure may also be located on the operating host 200, and the connection structure 300 may be located on the control host 100. When describing the specific structure of the connection structure 300 below, only the example of the connection structure 300 being located on the operating host 200 and the mating structure being located on the control host 100 will be used for explanation.

[0077] In another embodiment of this application, the connection structure 300 includes an adsorption component, which is disposed on one of the control host 100 and the operating host 200, and is capable of adsorbing and connecting to the other. That is, the adsorption component is disposed on the side of the control host 100 facing the operating host 200, and the adsorption component can adsorb and connect to the operating host 200; or, the adsorption component is disposed on the side of the operating host 200 facing the control host 100, and the adsorption component can adsorb the control host 100. Thus, the control host 100 and the operating host 200 can be adsorbed and connected, achieving a detachable connection between the control host 100 and the operating host 200. Furthermore, the type of adsorption component is not limited in principle; the adsorption component can include an electromagnetic adsorption structure, a vacuum adsorption structure, or other structures capable of achieving adsorption connection.

[0078] In another embodiment of this application, the control host 100 is provided with a first connection hole, and the operating host 200 is provided with a second connection hole. The connection structure 300 further includes a threaded component, which is installed in the first connection hole and the second connection hole to connect the control host 100 and the operating host 200. That is to say, the threaded connection method can also achieve a quick and detachable connection between the control host 100 and the operating host 200. During installation, the threaded component is installed in the first connection hole and the second connection hole to achieve a quick connection between the control host 100 and the operating host 200. During disassembly, the threaded component is unscrewed from the first connection hole and the second connection hole to achieve a quick disassembly between the control host 100 and the operating host 200.

[0079] It should be noted that the above lists several specific structural forms of the connection structure 300 for quick assembly and disassembly of the control host 100 and the operator host 200. However, the structural form of the connection structure 300 is not limited to the above, and can also be other structures that can realize quick assembly and disassembly of the control host 100 and the operator host 200.

[0080] See Figures 2 to 8 In one embodiment, the pressing structure includes a pressing bracket 310, an elastic element 320, and a locking element 330. The locking element 330 is disposed on the pressing bracket 310 and protrudes through the pressing hole 230. The locking element 330 also extends out of the operating host 200 to be locked in the locking structure 130. The elastic element 320 is disposed between the pressing bracket 310 and the locking element 330, and the elastic force of the elastic element 320 can keep the locking element 330 locked in the locking structure 130. Optionally, the elastic element 320 is a spring.

[0081] The pressing bracket 310 is the main support of the connecting structure 300. The pressing bracket 310 is fixedly installed in the operating host 200. The snap-fit ​​member 330 is movably installed in the pressing bracket 310. Part of the snap-fit ​​member 330 protrudes from the pressing hole 230, and the snap-fit ​​member 330 also extends out of the operating host 200 towards the control host 100. The elastic member 320 is a component for resetting the snap-fit ​​member 330. The elastic member 320 is disposed between the snap-fit ​​member 330 and the pressing bracket 310. The elastic force of the elastic member 320 can cause the snap-fit ​​member 330 to protrude from the pressing hole 230 and snap into the snap-fit ​​structure 130.

[0082] When the snap-fit ​​member 330 is pressed, it overcomes the elastic force of the elastic member 320 to compress it. At this time, the snap-fit ​​member 330 can slide along the pressing bracket 310, allowing it to be installed into or disengaged from the snap-fit ​​position of the snap-fit ​​structure 130. After releasing the snap-fit ​​member 330, the elastic force of the elastic member 320 pushes the snap-fit ​​member 330 to return it to its original position protruding from the pressing hole 230.

[0083] When the operating host 200 is installed on the control host 100, pressing the latching member 330 causes it to slide against the elastic force of the elastic member 320, inserting it into the latching structure 130. Then, releasing the latching member 330 causes the elastic member 320 to push it back to its original position, allowing it to extend out of the latching structure 130 and lock into its latching position, thus connecting the control host 100 and the operating host 200. During disassembly, pressing the latching member 330 causes it to slide against the elastic force of the elastic member 320, disengaging it from the latching position of the latching structure 130. Moving the operating host 200 removes the latching member 330 from the latching structure 130, thus disassembling the control host 100 from the operating host 200.

[0084] See Figures 2 to 8 In one embodiment, the operating host 200 has a through hole extending into the inner cavity on the side facing the control host 100. A snap-fit ​​member 330 extends out of the operating host 200 through the through hole, facilitating its extension and engagement with the snap-fit ​​structure 130. In another embodiment, the snap-fit ​​member 330 is snapped into the inner wall of the control host 100. The inner wall of the control host 100 is the snap-fit ​​position in the snap-fit ​​structure 130. When the snap-fit ​​member 330 extends into the snap-fit ​​structure 130, and the elastic member 320 pushes it back to its original position, the snap-fit ​​member 330 can be snapped into the inner wall of the control host 100, ensuring a reliable connection between the snap-fit ​​member 330 and the control host 100. Pressing the snap-fit ​​member 330 allows it to disengage from the inner wall of the control host 100 and be removed from the snap-fit ​​structure 130. Of course, a slot can also be provided on the inner wall of the snap-fit ​​structure 130. The slot serves as the snap-fit ​​position of the snap-fit ​​structure 130, and the snap-fit ​​member 330 can be snapped into the slot.

[0085] See Figures 2 to 9 In one embodiment, the snap-fit ​​component 330 includes a pressing body 331 and a snap-fit ​​body 332. The pressing body 331 is pressably disposed on the pressing bracket 310 and protrudes through the pressing hole 230. The snap-fit ​​body 332 is disposed on the pressing body 331 and protrudes through the operating host 200 to snap into the snap-fit ​​structure 130. Figure 9 for Figure 7 A schematic diagram of the snap-fit ​​connector 330 in the connection structure 300 shown.

[0086] The pressing body 331 is slidably disposed in the pressing bracket 310. One end of the elastic member 320 abuts against the pressing bracket 310, and the other end abuts against the pressing body 331. The elastic force of the elastic member 320 can push the pressing body 331 partially out of the locking structure 130. The locking body 332 is disposed on the side of the pressing body 331 facing the control host 100. The locking body 332 can extend through the through hole and can be locked in the locking structure 130.

[0087] During installation, pressing the pressing body 331 compresses the elastic element 320 and moves the locking body 332, allowing the locking body 332 to extend into the locking structure 130. Releasing the pressing body 331 resets the elastic element 320, allowing the locking body 332 to extend out of the locking structure 130. The locking body 332 then locks into the inner wall of the control host 100 within the locking structure 130, connecting the control host 100 to the operating host 200. During disassembly, pressing the pressing body 331 compresses the elastic element 320 and moves the locking body 332, disengaging the locking body 332 from the inner wall of the control host 100, allowing it to be removed from the locking structure 130.

[0088] In one embodiment, the pressing body 331 and the snap-fit ​​body 332 are an integral structure. This ensures the structural strength of the snap-fit ​​member 330, prevents breakage at the connection between the pressing body 331 and the snap-fit ​​body 332, and simplifies the assembly process. Of course, in other embodiments of this application, the pressing body 331 and the snap-fit ​​body 332 can also be provided separately.

[0089] See Figures 2 to 9 In one embodiment, the latching member 330 further includes a hook portion 333, which protrudes from the surface of the latching member 330. The hook portion 333 can hook onto the inner wall of the control host 100 when the latching member 330 is latched onto the latching structure 130, thereby connecting the control host 100 and the operating host 200. The hook portion 333 is located at the end of the latching body 332 away from the pressing body 331, and protrudes from the surface of the latching body 332. Optionally, the hook portion 333 and the latching body 332 can be an integral structure or separate components.

[0090] In this way, after the snap-fit ​​member 330 extends into the snap-fit ​​structure 130, the snap-fit ​​member 330 can hook onto the inner wall of the control host 100 via the hook portion 333, so that the snap-fit ​​member 330 is reliably installed in the snap-fit ​​structure 130. At the same time, the elastic force applied by the elastic member 320 to the snap-fit ​​member 330 can keep the hook portion 333 hooked onto the inner wall of the control host 100, realizing a reliable connection between the control host 100 and the operating host 200. Pressing the snap-fit ​​member 330 can cause the snap-fit ​​member 330 to drive the hook portion 333 away from the inner wall of the control host 100, releasing the restriction on the snap-fit ​​member 330, and the snap-fit ​​member 330 can be removed from the snap-fit ​​structure 130.

[0091] See Figures 2 to 9 In one embodiment, the latching member 330 further includes a first fixing part 334, one end of the elastic member 320 is mounted on the first fixing part 334, and the first fixing part 334 is used to guide and limit the elastic member 320. The first fixing part 334 is disposed on the side of the pressing body 331 facing the pressing bracket 310, and one end of the elastic member 320 is disposed on the first fixing part 334. When the latching member 330 is pressed or the elastic member 320 drives the latching member 330 to reset, the first fixing part 334 can guide the elastic member 320 to prevent the elastic member 320 from bending and ensure the accurate movement trajectory of the latching member 330. In this embodiment, the first fixing part 334 is a fixing post, which protrudes from the pressing body 331. Of course, in other embodiments of this application, the first fixing part 334 may also be a fixing groove.

[0092] See Figures 2 to 10 In one embodiment, the pressing bracket 310 further includes a second fixing part 313, and the other end of the elastic member 320 is mounted on the second fixing part 313. The second fixing part 313 is used to guide and limit the elastic member 320. Figure 10 for Figure 7 The diagram shows a schematic of the pressing bracket 310 in the connection structure 300. A second fixing part 313 is disposed on the side of the pressing bracket 310 facing the pressing body 331, and the other end of the elastic member 320 is disposed on the second fixing part 313. When the latching member 330 is pressed or the elastic member 320 causes the latching member 330 to reset, the second fixing part 313 can guide the elastic member 320, preventing the elastic member 320 from bending and ensuring the accurate movement trajectory of the latching member 330. In this embodiment, the second fixing part 313 is a fixing post, protruding from the pressing bracket 310. Of course, in other embodiments of this application, the second fixing part 313 can also be a fixing groove.

[0093] In this embodiment, the snap-fit ​​member 330 includes a first fixing part 334, the pressing bracket 310 includes a second fixing part 313, one end of the elastic member 320 is mounted on the first fixing part 334, and the other end is mounted on the second fixing part 313. The compression and reset of the elastic member 320 are guided by the first fixing part 334 and the second fixing part 313 to ensure the accurate movement trajectory of the snap-fit ​​member 330. Of course, in other embodiments of this application, only the first fixing part 334 may be provided on the snap-fit ​​member 330, or only the second fixing part 313 may be provided on the pressing bracket 310.

[0094] See Figures 2 to 10 In one embodiment, the pressing bracket 310 includes a connecting body 311 and a mounting body 312. The mounting body 312 is disposed on the connecting body 311, and the connecting body 311 is mounted on the operating host 200. An opening 3121 is provided on one side of the mounting body 312. An elastic member 320 and a snap-fit ​​member 330 are disposed in the mounting body 312, and the snap-fit ​​member 330 partially extends through the opening 3121 and the pressing hole 230. The connecting body 311 is the component that connects the pressing bracket 310 and the operating host 200, and the mounting body 312 is the component that mounts the snap-fit ​​member 330 on the pressing bracket 310.

[0095] The connecting body 311 is installed into the operating host 200. Optionally, the connecting body 311 is fixed to the operating host 200 by screws or other structures. The mounting body 312 is disposed on one side of the connecting body 311, and the snap-fit ​​330 is slidably disposed in the mounting body 312. The pressing body 331 can extend through the opening 3121 of the mounting body 312 so that the pressing body 331 can extend out of the pressing hole 230. At the same time, the snap-fit ​​body 332 can also extend out of the opening 3121 of the mounting body 312 and extend out of the control host 100 through the through hole.

[0096] In one embodiment, the mounting body 312 and the connecting body 311 are an integral structure. This ensures the structural strength of the pressing bracket 310, prevents the pressing bracket 310 from breaking at the connection between the mounting body 312 and the connecting body 311, and also reduces assembly steps. Of course, in other embodiments of this application, the mounting body 312 and the connecting body 311 can also be provided separately.

[0097] See Figures 2 to 10In one embodiment, the snap-fit ​​member 330 further includes a limiting stop 335, which protrudes from the edge of the pressing body 331 in the snap-fit ​​member 330 and is located in the mounting body 312. The limiting stop 335 can abut against the edge of the opening 3121 when the elastic member 320 pushes the pressing body 331. That is, the limiting stop 335 is located in the mounting body 312, and the pressing body 331 can extend through the opening 3121. In this way, after the mounting body 312 and the limiting stop 335 cooperate, they can limit the pressing body 331 and prevent the pressing body 331 from extending excessively out of the pressing hole 230.

[0098] See Figures 2 to 10 In one embodiment, the latching member 330 further includes a first guide portion 336, and the pressing bracket 310 further includes a second guide portion 314. The second guide portion 314 is disposed on the mounting body 312, and the first guide portion 336 and the second guide portion 314 cooperate to guide the movement of the latching member 330 along the pressing direction. The first guide portion 336 is disposed on the side of the latching member 330 away from the pressing body 331, and the second guide portion 314 is disposed on the side of the mounting body 312 facing the control host 100. After the latching member 330 is installed on the mounting body 312, the first guide portion 336 is located in the second guide portion 314. When the latching member 330 compresses the elastic member 320 or the elastic member 320 drives the latching member 330 to reset, the latching member 330 can drive the first guide portion 336 to move along the second guide portion 314 to guide the movement of the latching member 330 and ensure the accuracy of the movement trajectory of the latching member 330.

[0099] Optionally, one of the first guide portion 336 and the second guide portion 314 includes a guide protrusion, and the other includes a guide groove that mates with the guide protrusion. The engagement of the guide protrusion and the guide groove guides the movement of the snap-fit ​​member 330 along the mounting body 312, ensuring the accurate movement trajectory of the snap-fit ​​member 330. In this embodiment, the first guide portion 336 is a guide protrusion, and the second guide portion 314 is a guide groove. Alternatively, the first guide portion 336 can be a guide groove, and the second guide portion 314 can be a guide protrusion.

[0100] See Figures 2 to 10 In one embodiment, the pressing bracket 310 includes two mounting bodies 312, which are disposed on both sides of the connecting body 311. Each mounting body 312 has an elastic element 320 and a snap-fit ​​element 330 installed in it, and each snap-fit ​​element 330 corresponds to a snap-fit ​​structure 130. Figure 5 As shown, Figure 5Only one snap-fit ​​connector 330 is shown in the diagram. After the snap-fit ​​connector 330 is installed onto the corresponding mounting body 312, both snap-fit ​​connectors 330 can extend out of the operating host 200 from the top and bottom sides. When the control host 100 is connected to the operating host 200, the snap-fit ​​connectors 330 are pressed simultaneously on both sides of the operating host 200 to facilitate the installation and disassembly control of the operating host 200.

[0101] Optionally, two mounting bodies 312 are symmetrically arranged on both sides of the connecting body 311. In this way, when the latching pieces 330 are pressed simultaneously on both sides of the operating host 200, the two latching pieces 330 can move simultaneously in the corresponding mounting bodies 312, so that the two latching pieces 330 can simultaneously detach from the inner wall of the control host 100, which facilitates the assembly and disassembly of the operating host 200 and the control host 100.

[0102] See Figure 2 and Figure 3 In one embodiment, a first positioning part 140 is provided on the surface of the control host 100 facing the operating host 200, and a second positioning part 240 is provided on the surface of the operating host 200 facing the control host 100. After the connecting structure 300 connects the control host 100 and the operating host 200, the first positioning part 140 and the second positioning part 240 are positioned and engaged. After the control host 100 is installed on the side of the operating host 200, the first positioning part 140 and the second positioning part 240 are engaged and connected to limit the operation host 200. In this way, when the control host 100 drives the operating host 200 to move, due to the limitation of the second positioning part 240 by the first positioning part 140, the operating host 200 cannot rotate relative to the control host 100. The power output by the control host 100 is transmitted between the inside and outside of the operating host 200, enabling the operating host 200 to output power to drive the control component 401 to perform corresponding operations.

[0103] In one embodiment, one of the first positioning part 140 and the second positioning part 240 includes a limiting protrusion, and the other includes a limiting groove that mates with the limiting protrusion. After the operating host 200 can be installed on the side of the control host 100, the limiting protrusion can be installed in the limiting groove to limit the operating host 200, so that the operating host 200 can output power to drive the control component 401 to perform corresponding operations. In this embodiment, the first positioning part 140 is a limiting groove, and the second positioning part 240 is a limiting protrusion. That is, the outer wall of the mounting base is provided with a limiting groove, the outer wall of the operating host 200 is provided with a limiting protrusion, and the limiting protrusion of the operating host 200 is installed in the limiting groove of the control host 100 to limit the operating host 200. Of course, in other embodiments of this application, the first positioning part 140 may be a limiting protrusion, and the second positioning part 240 may be a limiting groove.

[0104] In one embodiment, the number of first positioning parts 140 includes multiple parts, which are spaced apart, and the second positioning parts 240 are adapted to the first positioning parts 140. The multiple first positioning parts 140 can cooperate with the multiple second positioning parts 240 one by one to improve the accuracy of the positioning. In this embodiment, the number of first positioning parts 140 is two, and correspondingly, the number of second positioning parts 240 is also two. Of course, in other embodiments of this application, the number of first positioning parts 140 may be one or other numbers, and the number of second positioning parts 240 may be adapted to the number of first positioning parts 140.

[0105] In one embodiment, the first positioning part 140 is strip-shaped, and the shape of the second positioning part 240 is adapted to the shape of the first positioning part 140, that is, the shape of the second positioning part 240 is also strip-shaped. Further, the first positioning part 140 is a strip-shaped limiting groove, and the second positioning part 240 is a strip-shaped limiting protrusion. Of course, in other embodiments of this application, the shape of the first positioning part 140 may also be circular, polygonal, or other shapes that can limit the rotation of the operating host 200, and the shape of the second positioning part 240 is adapted to the shape of the first positioning part 140.

[0106] See Figure 1 , Figure 2 , Figure 3 and Figure 5 In one embodiment, the control host 100 includes a first mounting housing 110 and a drive structure 120, the drive structure 120 being disposed within the first mounting housing 110, which is mounted on the device 40 to be controlled. The operation host 200 includes a second mounting housing 210 and a transmission structure 220, the transmission structure 220 being partially located within the second mounting housing 210 and engaging with the drive structure 120. The transmission structure 220 cooperates with the control component 401 on the outside of the second mounting housing 210. A connection structure 300 detachably connects the first mounting housing 110 and the second mounting housing 210, enabling a transmission connection between the drive structure 120 and the transmission structure 220.

[0107] The first mounting housing 110 is the main housing of the control host 100, and most of the components of the control host 100 are disposed in the first mounting housing 110. The second mounting housing 210 is the main housing of the operating host 200, and some components of the operating host 200 are disposed in the second mounting housing 210. When the connection structure 300 connects the control host 100 and the operating host 200, the connection structure 300 actually connects the first mounting housing 110 and the second mounting housing 210, so that the operating host 200 is mounted on the side of the control host 100.

[0108] The drive structure 120 is a component in the control host 100 that outputs motion, and the transmission structure 220 is a component in the control host 100 that transmits power. The drive structure 120 is disposed in the first mounting housing 110, and the output end of the drive structure 120 extends out of the first mounting housing 110. The transmission structure 220 is partially disposed in the second mounting housing 210 and partially disposed on the outside of the second mounting housing 210. The portion of the transmission structure 220 on the outside of the second mounting housing 210 corresponds to and cooperates with the control component 401.

[0109] After the control host 100 is connected to the operation host 200, the drive structure 120 can extend into the second mounting housing 210 and be connected to the transmission structure 220. In this way, the drive structure 120 can drive the transmission structure 220 to move relative to the second mounting housing 210, and the transmission structure 220 can drive the control component 401 to move, so that the control component 401 can perform corresponding control operations, thereby enabling the controlled device 40 to achieve the corresponding function.

[0110] In one embodiment, the drive structure 120 includes one or more combinations of gear drive assembly, belt drive assembly, chain drive assembly, bevel gear drive assembly and worm gear drive assembly, and the transmission structure 220 includes one or more combinations of gear drive assembly, belt drive assembly, chain drive assembly, bevel gear drive assembly and worm gear drive assembly.

[0111] It should be noted that the focus of the intelligent control device 10 in this application is the detachable connection between the control host 100 and the operating host 200. The specific structure of the drive structure 120 and the transmission structure 220 is not the focus of this application. The drive structure 120 and the transmission structure 220 can adopt one or more combinations of the above-mentioned transmission components, or they can adopt the current structure for realizing power transmission, which will not be described here. At the same time, the control host 100 is also provided with a drive motor and power supply components to control the movement of the drive structure 120.

[0112] In one embodiment, the drive structure 120 includes a power output shaft 121, and the transmission structure 220 includes a power input shaft 221. The power output shaft 121 extends through the first mounting housing 110 and can extend into the second mounting housing 210 to connect with the power input shaft 221. After the connection structure 300 connects the first mounting housing 110 and the second mounting housing 210, the power output shaft 121 and the power input shaft 221 are connected in a transmission manner.

[0113] The power output shaft 121 is the power output end of the drive structure 120. The power output shaft 121 extends through the first mounting housing 110, with part of it located inside and part outside the first mounting housing 110. The power output shaft 121 is connected to other components of the drive structure 120 for transmission. The power input shaft 221 is the power input end of the transmission structure 220, and it is located within the second mounting housing 210.

[0114] During the process of connecting the first mounting housing 110 and the second mounting housing 210 via the connection structure 300, the power output shaft 121 can be gradually inserted into the power input shaft 221. Once the control host 100 and the connecting host are in place, the power output shaft 121 engages with the power input shaft 221, enabling the power output shaft 121 to drive the power input shaft 221 to rotate. When the drive structure 120 drives the power output shaft 121 to rotate, the power output shaft 121 can drive the power input shaft 221 to rotate, and consequently, the power input shaft 221 can drive the transmission structure 220 to drive the control component 401 to perform control operations.

[0115] See Figure 2 , Figure 3 , Figure 11 and Figure 12 In one embodiment, a first mating part 1211 is provided on the outer wall of the power output shaft 121, and a second mating part 2211 is provided on the inner wall of the power input shaft 221. The first mating part 1211 and the second mating part 2211 are connected to each other so that the power input shaft 221 and the power output shaft 121 rotate synchronously. Figure 11 for Figure 2 A partial enlarged view of the intelligent control device 10 at point C. Figure 12 for Figure 3 The diagram shows a partial enlarged view of the intelligent control device 10 at point D. After the power input shaft 221 is inserted into the power output shaft 121, the first mating part 1211 and the second mating part 2211 are connected. When the power output shaft 121 rotates, it drives the power input shaft 221 to rotate synchronously through the cooperation of the first mating part 1211 and the second mating part 2211, thereby enabling the power output shaft 121 to transmit power to the power input shaft 221.

[0116] See Figure 2 , Figure 3 , Figure 11 and Figure 12In one embodiment of this application, one of the first mating portion 1211 and the second mating portion 2211 includes a mating protrusion, and the other includes a mating groove that mates with the mating protrusion. After the power output shaft 121 is installed onto the power input shaft 221, the mating protrusion and the mating groove are connected. When the power output shaft 121 rotates, the power output shaft 121 drives the power input shaft 221 to rotate synchronously through the mating of the first mating portion 1211 and the second mating portion 2211, thereby enabling the power output shaft 121 to transmit power to the power input shaft 221.

[0117] In this embodiment, the first mating part 1211 is a mating protrusion, and the second mating part 2211 is a mating groove. That is, the outer wall of the power output shaft 121 is provided with a mating protrusion, and the inner wall of the power input shaft 221 is provided with a mating groove. The power output shaft 121 drives the power input shaft 221 to rotate through the mating of the mating protrusion and the mating groove. Of course, in other embodiments of this application, the first mating part 1211 may be a mating groove, and the second mating part 2211 may be a mating protrusion.

[0118] In one embodiment, there are multiple first mating parts 1211, which are spaced apart circumferentially along the power input shaft 221. The number of second mating parts 2211 is equal to the number of first mating parts 1211, and they are arranged in a one-to-one correspondence. In this way, the longitudinal cross-sectional shape of the power input shaft 221 and the power output shaft 121 presents a spline structure, so that the power output shaft 121 can drive the power input shaft 221 to rotate.

[0119] In another embodiment of this application, both the first mating part 1211 and the second mating part 2211 include mating planes. The mating planes fit together so that the first mating part 1211 and the second mating part 2211 rotate synchronously. A portion of the outer wall of the power output shaft 121 is provided with a mating plane, and a portion of the inner wall of the power input shaft 221 is also provided with a mating plane. After the power output shaft 121 is inserted into the power input shaft 221, the mating plane of the power input shaft 221 can fit against the mating plane of the power output shaft 121. When the power output shaft 121 rotates, it can drive the power input shaft 221 to rotate synchronously through the mating plane, thereby enabling the power output shaft 121 to transmit power to the power input shaft 221.

[0120] For example, the longitudinal cross-sectional shape of the power output shaft 121 is D-shaped, and correspondingly, the longitudinal cross-sectional shape of the power input shaft 221 is also D-shaped. For example, the longitudinal cross-sectional shape of the power output shaft 121 is flat, and correspondingly, the longitudinal cross-sectional shape of the power input shaft 221 is also flat. For example, the longitudinal cross-sectional shape of the power output shaft 121 can also be polygonal, with the longitudinal cross-sectional shape of the power input shaft 221 matching that of the power output shaft 121. It is worth noting that the above examples illustrate several possible implementations of the mating plane, but the mating plane is not limited to these and can also be other shapes.

[0121] It is worth noting that the above lists the variations of the first mating part 1211 and the second mating part 2211, such as including a connecting protrusion and a connecting groove, or including a mating plane. However, the structural forms of the first mating part 1211 and the second mating part 2211 are not limited to the above, and can also be other forms.

[0122] See Figures 1 to 10 The intelligent control device 10 of this application achieves a detachable connection between the control host 100 and the operating host 200 through the connection structure 300, thereby simplifying the assembly and disassembly process of the control host 100 and the operating host 200, facilitating the connection between the control host 100 and the operating host 200, and making it easier for the control host 100 to control the operating host 200 to drive the control component 401 to perform control operations, thus facilitating user operation. Simultaneously, when the control host 100 is working, it can drive the operating host 200 to drive the control component 401 to perform control operations, thereby realizing intelligent control of the device 40 to be controlled.

[0123] See Figures 1 to 3 , Figure 13 and Figure 14 This application also provides a control system 1, including a device 40 to be controlled and an intelligent control device 10 as described in any of the above embodiments. The device 40 to be controlled includes a control component 401. In the intelligent control device 10, a control host 100 is installed on the device 40 to be controlled. In the intelligent control device 10, an operating host 200 cooperates with the control component 401, and the control host 100 drives the operating host 200 to drive the control component 401 to perform control operations. After adopting the intelligent control device 10 of the above embodiments, the control system 1 of this application can realize intelligent control of the device 40 to be controlled, so that the control system 1 meets the intelligent usage requirements of smart homes.

[0124] In one embodiment, the control component 401 includes a control knob, and the operating host 200 is connected to the control knob, driving the control knob to rotate. When the control component 401 includes a control knob, the transmission structure 220 is connected to the control knob in a clamping manner to achieve rotation control of the control knob. Thus, when the control host 100 drives the power input shaft 221 to move through the power output shaft 121, the power input shaft 221 can drive the transmission structure 220 to move, and the transmission structure 220 can then drive the control knob to rotate.

[0125] In one embodiment, the control component 401 includes a pressable or toggleable control switch. The operating host 200 abuts against or is connected to the control switch, and the operation host 200 can turn the control switch on and off when it moves. When the control component 401 includes a pressable control switch, the transmission structure 220 is connected to the control switch by abutting or connecting to achieve on / off control of the control switch. In this way, when the control host 100 drives the power input shaft 221 to move through the power output shaft 121, the power input shaft 221 can drive the transmission structure 220 to output lifting motion, so that the transmission structure 220 can press the control switch or drive the control switch to reset. Optionally, the transmission structure 220 includes a ball screw structure, a gear and rack structure, or other structures capable of outputting linear motion.

[0126] When the control component 401 includes a toggleable control switch, the transmission structure 220 is connected to the control switch via an abutment or connection to achieve on / off control of the control switch. Thus, when the control host 100 drives the power input shaft 221 via the power output shaft 121, the power input shaft 221 can drive the transmission structure 220 to output horizontal movement, enabling the transmission structure 220 to toggle the control switch or reset it, thereby achieving on / off control of the control switch. Optionally, the transmission structure 220 includes a gear and rack structure, a ball screw structure, or other structures capable of outputting linear motion.

[0127] It is worth noting that the above-listed linear motion structures illustrate how the transmission structure 220 controls the push-button or toggle control switch. However, the transmission structure 220 can control other push-button or toggle control switches in other ways as well, which will not be elaborated here.

[0128] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0129] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.

Claims

1. An intelligent control device, characterized in that, The intelligent control device, designed for installation on the device to be controlled, includes: The control unit is installed on the device to be controlled. An operating host, used to cooperate with the control components of the device to be controlled; and The connection structure detachably connects the control host and the operating host, enabling the control host and the operating host to be connected in a transmission manner, so that the control host drives the operating host to drive the control component to perform control operations.

2. The intelligent control device according to claim 1, characterized in that, The connection structure includes a pressing structure, which is disposed on one of the control host and the operation host, and the other of the control host and the operation host includes a mating structure; The pressing structure is detachably installed in the mating structure to connect the control host and the operating host.

3. The intelligent control device according to claim 2, characterized in that, The operating host includes a pressing hole, and the pressing structure is pressably disposed in the operating host and partially extends out of the pressing hole. The mating structure is disposed in the control host and includes a snap-fit ​​structure. The snap-fit ​​structure communicates with the inner cavity of the control host, and the pressing structure can be snapped into the snap-fit ​​structure to connect the control host and the operating host.

4. The intelligent control device according to claim 3, characterized in that, The pressing structure includes a pressing bracket, an elastic element, and a snap-fit ​​element; The snap-fit ​​element is disposed on the pressing bracket and protrudes through the pressing hole. The snap-fit ​​element also extends out of the operating host to be snapped into the snap-fit ​​structure. The elastic element is disposed between the pressing bracket and the snap-fit ​​element. The elastic force of the elastic element can keep the snap-fit ​​element snapped into the snap-fit ​​structure.

5. The intelligent control device according to claim 4, characterized in that, The snap-fit ​​component includes a pressing body and a snap-fit ​​body. The pressing body is disposed on the pressing bracket and protrudes through the pressing hole. The snap-fit ​​body is disposed on the pressing body and protrudes through the operating host to snap into the snap-fit ​​structure. And / or, the snap-fit ​​component further includes a hook portion, which protrudes from the surface of the snap-fit ​​component and is able to hook onto the inner wall of the control host when the snap-fit ​​component is snapped into the snap-fit ​​structure, so as to connect the control host and the operating host. And / or, the snap-fit ​​component further includes a first fixing part, one end of the elastic element is mounted on the first fixing part, and the first fixing part is used to guide and limit the elastic element; And / or, the pressing bracket further includes a second fixing part, the other end of the elastic element is mounted on the second fixing part, and the second fixing part is used to guide and limit the elastic element.

6. The intelligent control device according to claim 4, characterized in that, The pressing bracket includes a connecting body and an installation body. The installation body is disposed on the connecting body and installed on the operating host. An opening is provided on one side of the installation body. The elastic element and the snap-fit ​​element are disposed in the installation body. The snap-fit ​​element extends through the opening and the pressing hole.

7. The intelligent control device according to claim 6, characterized in that, The snap-fit ​​component also includes a limiting stop edge, which protrudes from the edge of the pressing body in the snap-fit ​​component and is located in the mounting body. The limiting stop edge can abut against the edge of the opening when the elastic member pushes the pressing body. And / or, the snap-fit ​​component further includes a first guide portion, and the pressing bracket further includes a second guide portion. The second guide portion is disposed on the mounting body. The first guide portion and the second guide portion guide each other to guide the movement of the snap-fit ​​component along the pressing direction. One of the first guide portion and the second guide portion includes a guide protrusion, and the other includes a guide groove that mates with the guide protrusion. And / or, the pressing bracket includes two mounting bodies, which are disposed on both sides of the connecting body. Each mounting body has an elastic element and a snap-fit ​​element installed in it, and each snap-fit ​​element corresponds to a snap-fit ​​structure.

8. The intelligent control device according to claim 1, characterized in that, The connection structure includes an adsorption component, which is disposed on one of the control host and the operation host and is capable of adsorbing and connecting to the other. The adsorption component includes an electromagnetic adsorption structure or a vacuum adsorption structure. Alternatively, the control host may be provided with a first connection hole, the operating host may be provided with a second connection hole, and the connection structure may further include a threaded component, which is installed in the first connection hole and the second connection hole to connect the control host and the operating host.

9. The intelligent control device according to any one of claims 1 to 8, characterized in that, The control host has a first positioning part on its surface facing the operating host, and the operating host has a second positioning part on its surface facing the control host. After the connection structure connects the control host and the operating host, the first positioning part and the second positioning part are positioned and engaged. Wherein, one of the first positioning part and the second positioning part includes a positioning protrusion, and the other includes a positioning groove that cooperates with the positioning protrusion, and / or, the number of the first positioning parts includes multiple parts, which are arranged at intervals, the second positioning part is adapted to the first positioning part, and / or, the shape of the first positioning part is strip-shaped, circular or polygonal, and the shape of the second positioning part is adapted to the shape of the first positioning part.

10. The intelligent control device according to any one of claims 1 to 8, characterized in that, The control host includes a first mounting housing and a drive structure, the drive structure is disposed in the first mounting housing, and the first mounting housing is mounted on the device to be controlled; The operating host includes a second mounting housing and a transmission structure. The transmission structure is located in the second mounting housing and is connected to the drive structure. The transmission structure is located outside the second mounting housing and cooperates with the control component. The connection structure detachably connects the first mounting housing and the second mounting housing, so that the drive structure and the transmission structure are connected in a transmission connection.

11. The intelligent control device according to claim 10, characterized in that, The drive structure includes a power output shaft, and the transmission structure includes a power input shaft. The power output shaft extends through the first mounting housing and can extend into the second mounting housing to connect to the power input shaft. After the connection structure connects the first mounting housing and the second mounting housing, the power output shaft is connected to the power input shaft in a transmission connection.

12. The intelligent control device according to claim 11, characterized in that, The outer wall of the power output shaft is provided with a first mating part, and the inner wall of the power input shaft is provided with a second mating part. The first mating part and the second mating part are mated and connected to each other so that the power input shaft and the power output shaft rotate synchronously. Wherein, one of the first mating part and the second mating part includes a mating protrusion, and the other includes a mating groove that mates with the mating protrusion; or, both the first mating part and the second mating part include mating planes, and the mating planes fit together to allow the first mating part and the second mating part to rotate synchronously. And / or, the number of the first mating parts includes multiple parts, which are sequentially disposed on the outer wall of the power input shaft, and the second mating part is adapted to the first mating part.

13. A control system, characterized in that, Includes the device to be controlled and the intelligent control device as described in any one of claims 1 to 12; The device to be controlled includes a control component. In the intelligent control device, the control host is installed on the device to be controlled. In the intelligent control device, the operating host cooperates with the control component, and the control host drives the operating host to drive the control component to perform control operations.

14. The control system according to claim 13, characterized in that, The control component includes a control switch that can be pressed or toggled, the operating host abuts against or is connected to the control switch, and the operating host can turn the control switch on and off when it moves; Alternatively, the control component may include a control knob, with the operating host connected to the control knob, and the operating host driving the control knob to rotate.