A mounting assembly and electrical product for guide rails
By designing an installation assembly that includes a fixing component, a slider, an elastic component, and a limiting component, and utilizing elastic restoring force and limiting action, one-way push operation of electrical products on the guide rail is achieved. This solves the problem of requiring additional tools and complex operations in existing technologies, and improves the ease of disassembly and the customer experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- OMRON SHANGHAI
- Filing Date
- 2022-03-30
- Publication Date
- 2026-05-26
AI Technical Summary
Existing electrical products require additional tools and are complex to disassemble from the guide rails, have high space requirements, and result in a poor customer experience.
The mounting assembly design includes a fixing component, a slider, an elastic component, and a limiting component. By utilizing the elastic restoring force of the elastic component and the limiting function of the limiting component, the slider can be installed or removed by a one-way push operation on the guide rail.
It simplifies the installation and removal process of electrical products on the guide rail, improving ease of operation and customer experience.
Smart Images

Figure CN116940045B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic devices, and more particularly to a mounting assembly and electrical product for a guide rail. Background Technology
[0002] Existing technologies include methods for installing electrical products using guide rails. These guide rails can be various standard rails, such as the German industrial standard DIN rails. Furthermore, the electrical products can be, for example, electrical components or electrical devices. Electrical products include mounting assemblies for mounting to the guide rail and electrical units for performing electrical functions.
[0003] In some structures of mounting components for electrical products, the mounting component includes a slider and a limiting spring connected to the slider. When the electrical product is mounted on a guide rail, the slider abuts against the guide rail and is pushed. Under these conditions, the slider moves and mounts the electrical product onto the guide rail. When the electrical product is removed from the guide rail, the slider is pulled apart using a tool to loosen the guide rail and remove the electrical product from the guide rail. After the tool is released, the slider automatically resets under the action of the limiting spring.
[0004] It should be noted that the above introduction to the technical background is only for the purpose of providing a clear and complete explanation of the technical solutions of this application and facilitating understanding by those skilled in the art. It should not be assumed that these technical solutions are known to those skilled in the art simply because they have been described in the background section of this application. Summary of the Invention
[0005] The inventors discovered that in the existing structure described above, additional tools are required when disassembling electrical products from the guide rail, and the space requirements for disassembly operations are relatively high. For example, it is necessary to include the parts that cooperate with the tools and the space for the tools to move. Furthermore, the operation steps are complicated and often require both hands to complete the disassembly operation, which is inconvenient and results in a poor customer experience.
[0006] To address at least one of the aforementioned problems or other similar issues, embodiments of this application provide a mounting assembly and electrical product for a guide rail, which enables ease of operation and enhances the customer experience.
[0007] According to a first aspect of the embodiments of this application, a mounting assembly for a guide rail is provided, wherein the mounting assembly includes:
[0008] Fasteners;
[0009] A slider that is movable relative to the fixing member to clamp or release the guide rail;
[0010] An elastic component is disposed on the side of the slider near the guide rail. One end of the elastic component is fixed relative to the fixing member, and the other end of the elastic component is connected to the side of the slider near the guide rail. Under external force, the elastic component can drive the slider to move relative to the fixing member. The elastic component can also drive the slider to move relative to the fixing member through elastic restoring force.
[0011] A limiting part that keeps the slider either clamped to the guide rail or released from the guide rail.
[0012] When the elastic member is subjected to an external force, the elastic member drives the slider, which is in the first limiting position, to move. In the first limiting position, the slider is held by the limiting part to release the guide rail. When the slider moves to the second limiting position, the slider is held by the limiting part to clamp the guide rail.
[0013] When the elastic member is subjected to external force again, the elastic member drives the slider in the second limiting position to move. When the slider moves to the first limiting position, the slider is held by the limiting part to release the guide rail.
[0014] In one or more embodiments,
[0015] When the elastic component is subjected to an external force, the elastic component drives the slider at the first limiting position to move to the first transition position. When the slider is at the first transition position, the elastic component drives the slider from the first transition position to the second limiting position through elastic restoring force. When the elastic component is subjected to an external force again, the elastic component drives the slider at the second limiting position to move to the first limiting position; or
[0016] When the elastic component is subjected to an external force, the elastic component drives the slider at the first limiting position to move to the second limiting position. When the elastic component is subjected to an external force again, the elastic component drives the slider at the second limiting position to move to the second transition position. When the slider is at the second transition position, the elastic component drives the slider from the second transition position to the first limiting position through elastic restoring force; or
[0017] When the elastic component is subjected to an external force, the elastic component drives the slider at the first limiting position to move to the first transition position. When the slider is at the first transition position, the elastic component drives the slider from the first transition position to the second limiting position through elastic restoring force. When the elastic component is subjected to an external force again, the elastic component drives the slider at the second limiting position to move to the second transition position. When the slider is at the second transition position, the elastic component drives the slider from the second transition position to the first limiting position through elastic restoring force.
[0018] In one or more embodiments,
[0019] The limiting portion includes a first annular track disposed on the slider and the other end of the elastic member. The first track includes a first limiting portion and a second limiting portion. The other end of the elastic member moves unidirectionally within the first track.
[0020] When the other end of the elastic member is located at the first limiting portion, the elastic member limits the slider to the first limiting position; when the other end of the elastic member is located at the second limiting portion, the elastic member limits the slider to the second limiting position.
[0021] In one or more embodiments,
[0022] The first track further includes a first transition section, wherein when the other end of the elastic member is located at the first transition section, the slider is in the first transition position, the elastic member is in its maximum deformation state, and / or
[0023] The first track further includes a second transition section. When the other end of the elastic member is located at the second transition section, the slider is in the second transition position, and the elastic member is in its maximum deformation state.
[0024] The first track has a stepped surface formed on the side of the first limiting part, the first transition part, the second limiting part, and the second transition part opposite to the direction of unidirectional movement.
[0025] In one or more embodiments,
[0026] The limiting part includes a second annular track disposed on the slider and a limiting component. The second track includes a first limiting part and a second limiting part. One end of the limiting component is fixed to the fixing member, and the other end of the limiting component moves unidirectionally within the second track.
[0027] When the other end of the limiting member is located at the first limiting portion, the limiting member limits the slider to the first limiting position; when the other end of the limiting member is located at the second limiting portion, the limiting member limits the slider to the second limiting position.
[0028] In one or more embodiments,
[0029] The second track further includes a first transition section, wherein when the other end of the limiting member is located at the first transition section, the slider is in the first transition position, the elastic member is in its maximum deformation state, and / or
[0030] The second track further includes a second transition section. When the other end of the limiting member is located at the second transition section, the slider is in the second transition position, and the elastic member is in its maximum deformation state.
[0031] The second track has a stepped surface formed on the side of the first limiting part, the first transition part, the second limiting part, and the second transition part opposite to the direction of unidirectional movement.
[0032] In one or more embodiments,
[0033] The limiting component is a limiting spring.
[0034] In one or more embodiments,
[0035] The elastic component is a drive spring, one end of which is fixed to the first surface of the fixing member, and the other end of which is connected to the slider and located away from the first surface of the fixing member.
[0036] When the drive spring is in its minimum deformation state, the slider is in either the first or second limit position. The minimum deformation state is the state in which the other end of the drive spring is furthest from the first surface.
[0037] In one or more embodiments,
[0038] The slider includes a first slider and a second slider, which move in opposite directions relative to the fixing member to clamp or release the guide rail.
[0039] The elastic component includes a first elastic component and a second elastic component, which are disposed between the first slider and the second slider. One end of the first elastic component is fixed relative to the fixing member, and the other end of the first elastic component is connected to the first slider. One end of the second elastic component is fixed relative to the fixing member, and the other end of the second elastic component is connected to the second slider. Under the action of external force, the first elastic component and the second elastic component can drive the first slider and the second slider to move in opposite directions. The first elastic component and the second elastic component can drive the first slider and the second slider to move in opposite directions through elastic restoring force.
[0040] In one or more embodiments,
[0041] The number of the first elastic component and the number of the second elastic component are both two. The two first elastic components and the two second elastic components are disposed in the space between the first slider and the second slider. One of the first elastic components and one of the second elastic components are disposed on one side of the space in a first direction, and the other of the first elastic component and the other of the second elastic component are disposed on the other side of the space in the first direction. The first direction is perpendicular to the arrangement direction of the first slider and the second slider.
[0042] In one or more embodiments,
[0043] The elastic component further includes a rebound component, which comprises a first rebound component and a second rebound component.
[0044] One end of the first spring-loaded component is fixed to the fixing member, and the other end of the first spring-loaded component is fixed to the first slider. One end of the second spring-loaded component is fixed to the fixing member, and the other end of the second spring-loaded component is fixed to the second slider.
[0045] Under the action of the first and second spring-back components, the first and second sliders move in opposite directions.
[0046] In one or more embodiments,
[0047] The rebound component is an S-shaped spring.
[0048] According to an embodiment of a second aspect of this application, an electrical product is provided, the electrical product comprising:
[0049] The mounting components as described in the embodiments of the first aspect above; and
[0050] An electrical unit, which is fixed to the fastener.
[0051] One of the beneficial effects of this application's embodiments is that: when the slider is in the first limiting position and not clamping the guide rail, when the elastic component is subjected to the force applied by the guide rail by PUSH, the slider can move from the first limiting position to the second limiting position to clamp the guide rail, and the limiting part keeps the slider clamped to the guide rail. When the elastic component is subjected to the force applied by the guide rail again by PUSH, the slider can move from the second limiting position to the first limiting position to release the guide rail, and the limiting part keeps the slider released from the guide rail. Therefore, installation or disassembly can be achieved with only one PUSH, realizing convenient operation and improving customer experience.
[0052] Specific embodiments of this application are disclosed in detail with reference to the following description and accompanying drawings, indicating how the principles of this application can be adopted. It should be understood that the embodiments of this application are not limited in scope thereto. Within the spirit and scope of the appended claims, embodiments of this application include many changes, modifications, and equivalents.
[0053] Features described and / or illustrated for one embodiment may be used in the same or similar manner in one or more other embodiments, combined with features in other embodiments, or substituted for features in other embodiments. Attached Figure Description
[0054] The accompanying drawings, which form part of the specification, are used to provide a further understanding of the embodiments of this application and illustrate the implementation methods of this application, together with the textual description, to explain the principles of this application. Obviously, the drawings described below are merely some embodiments of this application, and those skilled in the art can obtain other drawings based on these drawings without creative effort. In the drawings:
[0055] Figure 1 This is a schematic diagram of the installation components according to an embodiment of the first aspect of this application;
[0056] Figure 2 This is another schematic diagram of the installation components according to an embodiment of the first aspect of this application;
[0057] Figure 3 This is yet another schematic diagram of the installation components according to an embodiment of the first aspect of this application;
[0058] Figure 4 This is an enlarged schematic diagram of the first track in an embodiment of the first aspect of this application;
[0059] Figure 5 This is yet another schematic diagram of the installation components according to an embodiment of the first aspect of this application;
[0060] Figure 6 yes Figure 5 Another schematic diagram showing the installation components;
[0061] Figure 7 yes Figure 5 A schematic diagram of some components of the installation assembly shown;
[0062] Figure 8 This is an enlarged schematic diagram of the second track in an embodiment of the first aspect of this application;
[0063] Figure 9 This is yet another schematic diagram of the installation components according to an embodiment of the first aspect of this application;
[0064] Figure 10 yes Figure 9 Another schematic diagram of the installed components is shown;
[0065] Figure 11 This is a perspective view of the installation components according to an embodiment of the first aspect of this application;
[0066] Figure 12 This is yet another schematic diagram of the installation components according to an embodiment of the first aspect of this application;
[0067] Figure 13 This is yet another schematic diagram of the installation components according to an embodiment of the first aspect of this application;
[0068] Figure 14 This is yet another schematic diagram of the installation components according to an embodiment of the first aspect of this application;
[0069] Figure 15 This is a schematic diagram of an electrical product according to an embodiment of the second aspect of this application. Detailed Implementation
[0070] Referring to the accompanying drawings, the foregoing and other features of this application will become apparent from the following description. Specific embodiments of this application are specifically disclosed in the description and drawings, illustrating partial implementations in which the principles of this application can be employed. It should be understood that this application is not limited to the described embodiments; rather, it includes all modifications, variations, and equivalents falling within the scope of the appended claims.
[0071] Furthermore, in the figures used in the following description, the scale varies for each structural element to make it identifiable on the drawing. This application is not limited to the number of structural elements, the shape of the structural elements, the size ratio of the structural elements, or the relative positional relationships of the structural elements shown in these figures.
[0072] In the embodiments of this application, the terms "comprising", "including", "having", etc., refer to the presence of the stated features, elements, components or assemblies, but do not exclude the presence or addition of one or more other features, elements, components or assemblies.
[0073] In the embodiments of this application, the singular forms "a," "the," etc., including the plural forms, should be broadly understood as "a kind" or "a class" rather than limited to the meaning of "an." Furthermore, the term "the" should be understood to include both the singular and plural forms, unless the context explicitly indicates otherwise. Additionally, the term "according to" should be understood as "at least partially based on…," and the term "based on" should be understood as "at least partially based on…," unless the context explicitly indicates otherwise.
[0074] The embodiments of this application will now be described with reference to the accompanying drawings.
[0075] First aspect of the embodiments
[0076] An embodiment of the first aspect of this application provides a mounting assembly for a guide rail.
[0077] Figure 1 This is a schematic diagram of the mounting assembly 10 according to an embodiment of the first aspect of this application, showing the mounting assembly 10 loosened from the guide rail 2.
[0078] like Figure 1 As shown, the mounting assembly 10 includes a fixing member 11, a slider 12, and a resilient member 13. The slider 12 is movable relative to the fixing member 11 to clamp or release the guide rail 2, for example, Figure 1 The diagram shows that the slider 12 is loosened from the guide rail 2, i.e. the guide rail 2 is not clamped. The slider 12 can move relative to the fixing member 11 in the S direction or S' direction to loosen or clamp the guide rail 2.
[0079] like Figure 1As shown, the elastic member 13 is disposed on the side of the slider 12 near the guide rail 2. One end 131 of the elastic member 13 is fixed relative to the fixing member 11. For example, one end 131 of the elastic member 13 is fixed to the fixing member 11 or to a component fixed relative to the fixing member 11. The other end 132 of the elastic member 13 is connected to the slider 12, for example, connected to the portion 121 of the slider 12 near the guide rail 2. Under the action of external force, the elastic member 13 can drive the slider 12 to move relative to the fixing member 11. For example, the elastic member 13 is driven to move by the squeezing force of the guide rail 2. In this case, the elastic member 13... The elastic component 13 can drive the slider 12 to move in the direction S or in the direction S'. The elastic component 13 can drive the slider 12 to move relative to the fixed member 11 through the elastic restoring force. For example, the elastic component 13 can drive the slider 12 to move in the direction S or in the direction S' through the elastic restoring force. For example, when the elastic component 13 is deformed by the force applied by the guide rail 2, it will generate an elastic restoring force to return to its original shape. When the squeezing force of the guide rail 2 on the elastic component 13 disappears or decreases, the elastic component 13 can drive the slider 12 to move relative to the fixed member 11 through its elastic restoring force.
[0080] exist Figure 1 In the middle, the slider 12 is in the position of releasing the guide rail 2. In this case, the position of the slider 12 is called the first limit position.
[0081] like Figure 1 As shown, when the slider 12 is in the first limit position, when the elastic member 13 is subjected to an external force, for example, when the mounting assembly 10 is subjected to a PUSH operation in the P direction, the guide rail 2 generates a force applied to the elastic member 13, and the elastic member 13 drives the slider 12 to move. For example, the elastic member 13 drives the slider 12 to move through the end 132 connected to the slider 12.
[0082] Figure 2 This is another schematic diagram of the mounting assembly 10 according to an embodiment of the first aspect of this application, showing the position of the slider 12 in the clamping guide rail state, in which the position of the slider 12 is referred to as the second limiting position.
[0083] like Figure 2 As shown, when slider 12 moves to the second limit position, slider 12 clamps guide rail 2. Thus, the mounting component 10 can be mounted on guide rail 2 with a single PUSH operation.
[0084] like Figure 2 As shown, when the elastic component 12 is subjected to an external force again, for example, when the mounting assembly 10 is subjected to a push operation in the P direction, the guide rail 2 generates a force applied to the elastic component 13. The elastic component 12 drives the slider 12, which is in the second limit position, to move. When the slider moves to... Figure 1 When the slider 12 is in the first limit position shown, it releases the guide rail 2. Thus, the mounting component 10 can be removed from the guide rail 2 with a single PUSH operation.
[0085] In this embodiment, the mounting assembly 10 further includes a limiting part, which keeps the slider 12 in a position of releasing the guide rail 2 or in a position of clamping the guide rail 2 when the external force applied to the elastic member disappears, that is, the slider is limited to the first limiting position or the second limiting position.
[0086] As can be seen from the above embodiments, when the slider 12 is in the first limiting position and not clamping the guide rail 2, when the elastic member 13 is subjected to the force applied by the guide rail 2 by PUSH, the slider 12 can move from the first limiting position to the second limiting position and clamp the guide rail 2. When the force applied to the elastic member 13 disappears, the limiting part limits the slider to the second limiting position and keeps it clamping the guide rail 2. When the elastic member 13 is subjected to the force applied by the guide rail 2 again by PUSH, the slider can move from the second limiting position to the first limiting position and release the guide rail 2. When the force applied to the elastic member 13 disappears, the limiting part limits the slider to the first limiting position and keeps it released from the guide rail 2. Therefore, the installation of the mounting component 10 on the guide rail 2 or the removal of the mounting component from the guide rail 2 can be achieved by only one PUSH, realizing convenient operation and improving customer experience.
[0087] like Figure 1 and Figure 2 As shown, in one or more embodiments, when the elastic member 13 is subjected to an external force, the elastic member 13 is driven to be in a state of... Figure 1 The slider 12 at the first limit position shown moves to Figure 2 The second limiting position is shown. Therefore, the mounting component 10 can be mounted on the guide rail 2 in a single PUSH operation.
[0088] Figure 3 This is another schematic diagram of the mounting assembly 10 according to an embodiment of the first aspect of this application, showing the elastic member 13 in the state of maximum deformation, in which the position of the slider 12 is referred to as the second transition position.
[0089] In one or more embodiments, when the slider is in Figure 2 As shown in the second limiting position, when the elastic member 13 is subjected to external force again, the elastic member 13 drives the slider 12, which is in the second limiting position, to move to... Figure 3 The second transition position shown indicates that when slider 12 is in the second transition position, elastic member 13 is in its maximum deformation state. When the PUSH operation in the P direction is canceled, elastic member 13 drives slider 12 from its maximum deformation state by elastic restoring force. Figure 3 The second transition position shown is moved to Figure 1 The first limit position is shown.
[0090] It is worth noting that the maximum deformation state of the elastic member 13 should be understood as the maximum deformation state that the elastic member 13 can achieve when it is subjected to an external force again and drives the slider 12, which is in the second limiting position, to move. This is due to the interference between the elastic member 13 and other components, such as the slider 12 and / or the fixing member 11. In other words, it is the state in which the elastic member 13 cannot deform further due to the interference between the slider 12 and / or the fixing member 11. For example, the 132 end of the elastic member 13 abuts against the fixing member 11 or the slider 12 and cannot deform further, or, if the slider 12 is provided with a track for the 132 end of the elastic member 13 to slide on, the 132 end of the elastic member 13 reaches a local apex position of the track.
[0091] Thus, by performing a single PUSH operation, the slider at the second limit position is moved to the second transition position. After the PUSH operation is completed and the pushing force is removed, the elastic restoring force of the elastic component 13 can be used to move the slider from the second transition position to the first limit position, thereby releasing the guide rail 2. Thus, the mounting component 10 installed on the guide rail 2 can be removed from the guide rail 2 by a single PUSH operation.
[0092] It is worth noting that, Figures 1 to 3 An example is shown, in Figure 2 The slider 12 at the second limit position shown moves to Figure 1 During the process of reaching the first limiting position shown, the force of the elastic component 13 causes the slider 12 to move first to Figure 3 The transition position shown is (second transition position), and then the slider 12 in the transition position is moved to the first limit position by the elastic restoring force of the elastic component 13 itself.
[0093] However, this application is not limited to this. For example, when the slider in the first limit position moves to the second limit position under the action of the elastic component, the slider can first move to the transition position (first transition position) by the action of the elastic component, and then move the slider in the transition position to the second limit position by the elastic restoring force of the elastic component itself. Thus, the installation of the mounting component 10 on the guide rail 2 can be achieved by one PUSH operation.
[0094] For example, in one or more embodiments, when the elastic member is subjected to an external force, the elastic member drives the slider at the first limiting position to move to the first transition position. When the slider is at the first transition position, the elastic member drives the slider to move from the first transition position to the second limiting position by elastic restoring force. When the elastic member is subjected to an external force again, the elastic member drives the slider at the second limiting position to move to the first limiting position.
[0095] Furthermore, during the process of the slider moving from the first limit position to the second limit position and from the second limit position to the first limit position, the slider can be moved to a transition position by the elastic component, and then the elastic restoring force of the elastic component itself can be used to move the slider in the transition position to the second limit position or the first limit position.
[0096] For example, in one or more embodiments, when the elastic component is subjected to an external force, the elastic component drives the slider at the first limiting position to move to the first transition position. When the slider is at the first transition position, the elastic component drives the slider from the first transition position to the second limiting position through elastic restoring force. When the elastic component is subjected to an external force again, the elastic component drives the slider at the second limiting position to move to the second transition position. When the slider is at the second transition position, the elastic component drives the slider from the second transition position to the first limiting position through elastic restoring force. Thus, the mounting assembly 10 can be installed on or removed from the guide rail 2 with only one push.
[0097] In this embodiment, when the slider 12 reaches the first limit position or the second limit position, when the external force applied to the elastic member 13 is removed, the slider 12 can be held in the first limit position or the second limit position by the limiting part. Thus, the slider 12 is kept in the state of being released from the guide rail 2 or in the state of being clamped to the guide rail 2, so as to realize the reliable execution of the installation and disassembly operation.
[0098] In the embodiments of this application, the specific structure of the limiting part can be various, and the following is an exemplary description.
[0099] like Figures 1 to 3 As shown, in one or more embodiments, the slider 12 is provided with a first annular track G1, and the 132 end of the elastic member 13 moves unidirectionally within the first track G1. The first track G1 includes a first limiting part GP1 and a second limiting part GP2. Unidirectional movement refers to the 132 end of the elastic member 13 moving clockwise or counterclockwise within the first track G1. For example... Figures 1 to 2The diagram shows that end 132 of the elastic member 13 moves counterclockwise within the first track. That is, end 132 of the elastic member 13 can move counterclockwise from the first limiting part GP1 to the second limiting part GP2, but cannot move clockwise from the second limiting part GP2 to the first limiting part GP1.
[0100] In the embodiments of this application, such as Figure 1 As shown, when end 132 of the elastic member 13 is located at the first limiting part GP1, the elastic member 13 limits the slider 12 to the first limiting position, as follows: Figure 2 As shown, when end 132 of the elastic member 13 is located at the second limiting part GP2, the elastic member 13 limits the slider 12 to the second limiting position. That is, the limiting part includes the first track G1 provided on the slider 12 and end 132 of the elastic member 13, thereby enabling the slider 12 to be held in a state of being released from the guide rail 2 or in a state of being clamped to the guide rail 2.
[0101] In one or more embodiments, such as Figures 1 to 3 As shown, the first track G1 also includes a second transition section GP3. When the 132 end of the elastic member 13 is located at the second transition section GP3, the slider 12 is in the second transition position, and the elastic member 13 is in the maximum deformation state. That is, when an external force is applied to the elastic member 13, the 132 end of the elastic member 13 cannot deform further after reaching the second transition section GP3. In this case, the elastic member 13 can drive the slider 12 to move until the 132 end of the elastic member 13 reaches the first limiting section GP1 through its elastic restoring force. In this case, the slider 12 is in the first limiting position and the guide rail 12 is released.
[0102] However, this application is not limited to this. The first track G1 may include only the first transition portion and not the second transition portion GP3. The first transition portion refers to the location of end 132 of the elastic member 13 within the first track G1 when the slider is in the first transition position. In other words, when end 132 of the elastic member 13 is located in the first transition portion, the slider 12 is in the first transition position, and the elastic member 13 is in the maximum deformation state.
[0103] Furthermore, the first track G1 may include both the first transition section and the second transition section GP3. That is, during the installation operation of moving the slider 12 from the first limit position to the second limit position, the elastic member 13 is compressed to its maximum deformation state by a PUSH operation. Similarly, during the disassembly operation of moving the slider 12 from the second limit position to the first limit position, the elastic member 13 is also compressed to its maximum deformation state by a PUSH operation. This ensures reliable execution of the installation and disassembly operations and prevents malfunctions. It should be noted that the maximum deformation state of the elastic member 13 in the first transition section and the maximum deformation state in the second transition section may be the same or different; examples will be provided later.
[0104] In the embodiments of this application, Figures 1 to 3 An example is shown where the first track G1 includes a first limiting part GP1, a second limiting part GP2, and a second transition part GP3. The first track G1 is elliptical, and the second limiting part GP2 is located on the arc formed by connecting the first limiting part GP1 and the second transition part GP3. However, this application is not limited to this. The first track G1 can also be other shapes. For example, the second limiting part GP2 may not be located on the arc formed by connecting the first limiting part GP1 and the second transition part GP3. That is, the first track G1 is not elliptical. This application does not limit this. It is only required that when the elastic member 13 is subjected to external force, the 132 end of the elastic member 13 can move sequentially along the first limiting part GP1, the second limiting part GP2, and the second transition part GP3 within the first track G1.
[0105] However, this application is not limited to this. The first track G1 may also include a first limiting part GP1, a first transition part, and a second limiting part GP2, or the first track G1 may include a first limiting part GP1, a first transition part, a second limiting part GP2, and a second transition part GP3. Regarding the specific shape of the first track G1 and the specific placement of each limiting part and transition part in the first track G1 in this case, this application does not limit it. See [link to relevant documentation]. Figures 1 to 3 The example of the first orbital G1 is not listed here.
[0106] Figure 4 This is an enlarged schematic diagram of the first track G1 in an embodiment of the first aspect of this application.
[0107] In one or more embodiments, such as Figure 4 As shown, the first track G1 has a step surface S formed on the side opposite to the direction of unidirectional movement at the first limiting part GP1, the second limiting part GP2, and the second transition part GP3. That is, as... Figure 4As shown, when the elastic member 13 moves unidirectionally clockwise within the first track G1, a step surface S is formed on one side of the first limiting part GP1, the second limiting part GP2, and the second transition part GP3 in the counterclockwise direction. Furthermore, when the elastic member 13 moves unidirectionally counterclockwise within the first track G1, a step surface S is formed on one side of the first limiting part GP1, the second limiting part GP2, and the second transition part GP3 in the clockwise direction. This can be configured according to actual needs.
[0108] Therefore, it is possible to ensure that the 132 end of the elastic member 13 can move unidirectionally within the first track G1. For example, the 132 end of the elastic member 13 includes a protrusion that intersects or is perpendicular to the surface 12S of the slider 12 on the first track G1. Thus, the end of the protrusion contacts the bottom surface G1S of the first track G1, ensuring that the 132 end of the elastic member 13 abuts against the step surface at the first limiting part GP1, the second limiting part GP2, and the second transition part GP3, thereby preventing the 132 end of the elastic member 13 from moving in the wrong direction. That is, when the 132 end of the elastic member 13 is located at the first limiting part GP1, the second limiting part GP2, or the second transition part GP3, the mutual abutment between the 132 end and the step surface prevents the 132 end of the elastic member 13 from moving in the wrong direction due to the elastic restoring force of the elastic member 13. Alternatively, it prevents the 132 end of the elastic member 13 from moving in the wrong direction during the PUSH operation, thereby ensuring the reliability of the installation and disassembly operations.
[0109] In this embodiment of the application, when a step surface is formed within the first track G1, the bottom surface G1S within the first track G1 can be a sloping surface, such as... Figure 4 As shown, the bottom of the first track G1 consists of three connected ramps.
[0110] However, this application is not limited to this. Other structures can also be used to ensure unidirectional movement of the 132 end of the elastic member 13 within the first track G1. For example, the bottom surface of the first track G1 can also be a plane. A protrusion can be formed on the side of the first limiting part GP1, the second limiting part GP2, and the second transition part GP3 of the first track G1 opposite to the direction of unidirectional movement. By providing the protrusion, it is possible to prevent the 132 end of the elastic member 13 from moving in the wrong direction within the first track G1, i.e., in the direction opposite to the unidirectional movement. For example, in… Figure 4The step surface S shown can form a protrusion. When no PUSH operation is performed, the protrusion can limit the 132 end of the elastic member 13 to the first limiting part or the second limiting part. When the elastic member 13 is subjected to external force, such as during a PUSH operation, the PUSH operation can overcome the obstruction of the protrusion to the 132 end of the elastic member 13 and allow the 132 end of the elastic member 13 to move in one direction, for example, from the first limiting part to the second limiting part, or from the second limiting part to the second transition part, producing a tactile feedback during the PUSH operation, making it easy to identify whether the 132 end of the elastic member 13 has been pushed into place.
[0111] In this embodiment, the steepness of the two sides of the protrusion can be different, for example, with Figure 4 Taking the protrusion at the second limiting part GP2 as an example, the side of the protrusion closer to the first limiting part GP1 is more gentle than the side closer to the second transition part GP3. This reduces the operating force required for the PUSH operation and prevents damage to the protrusion.
[0112] In the implementation of this application, if Figures 1 to 3 As shown, when a first track G1 is formed in the slider 12, the first track G1 can be formed on the side of the slider 12 parallel to the PUSH operation direction P. However, this application is not limited to this. For example, a groove can also be formed in the central part of the slider 12, with the opening of the groove facing the 132 end of the elastic member 13. The first track G1 can be formed on the side of the wall portion of the groove parallel to the PUSH operation direction P. This application does not limit this and can set it according to the actual situation.
[0113] In this embodiment, the factory state or original state of the mounting component 10 can be various, for example, it can be... Figure 1 In the state shown, that is, when slider 12 is in the first limit position and remains in the released state, the mounting component 10 can be installed on the guide rail 2 by a single PUSH operation as described above. However, it is not limited to this; slider 12 can also be in the position shown in the figure. Figure 2 The position shown indicates that end 132 of the elastic member 13 is located at the second limiting part GP2. However, unlike GP2, the slider 12 does not clamp the guide rail 2 at this time. In this case, the initial installation of the mounting assembly 10 on the guide rail 2 can also be achieved through a single PUSH operation. For example, in Figure 2Under the PUSH operation in the P direction, the guide rail 2 acts on the slider 12, causing the slider 12 to move in the S direction to widen the opening 16. At this time, the 132 end of the elastic member 13 moves from the second limiting part GP2 towards the second transition part GP3 within the first track G1. When the guide rail 2 is fully inserted into the opening 16, the 132 end of the elastic member 13 has not yet reached the second transition part GP3. At this time, the PUSH operation is removed, and the 132 end of the elastic member 13 retracts towards the second limiting part GP2. Under the action of the elastic restoring force of the elastic member 13, the slider 12 moves in the S' direction to clamp the guide rail 2. The 132 end of the elastic member 13 retracts and remains in the second limiting part GP2 to keep the guide rail 2 clamped. Thus, the initial installation of the mounting assembly 10 on the guide rail 2 is achieved through one PUSH operation.
[0114] The above description provides an example of the structure of the limiting part, including the first track GP1 and the elastic member 13. In other words, the limiting structure of the slider is achieved through the cooperation of the elastic member 13 and the slider 12. However, this application is not limited to this; the limiting part can also be implemented using other structures.
[0115] Figure 5 This is another schematic diagram of the mounting assembly according to an embodiment of the first aspect of this application, showing the mounting assembly with the guide rail 2 released. Figure 6 yes Figure 5 Another schematic diagram of the mounting assembly shows the mounting assembly clamping the guide rail 2.
[0116] like Figure 5 and Figure 6 As shown, the mounting assembly 10 also includes a limiting member 14, one end 141 of which is fixed to the fixing member 11, and the other end 142 (see...) Figure 7 ) In the second track G2 set on slider 12 (see Figure 7 The second track includes a first limiting part and a second limiting part. When the other end of the limiting member 14 is located at the first limiting part, the limiting member 14 limits the slider 12 to the first limiting position. When the other end of the limiting member 14 is located at the second limiting part, the limiting member 14 limits the slider 12 to the second limiting position.
[0117] In other words, the limiting part may include a separately provided limiting component 14 and a second track G2 provided on the slider 12, but this application is not limited to this. For example, the limiting part may include an elastic component 13, a limiting component 14, and a first track G1 and a second track G2 provided on the slider. Alternatively, the limiting part may be formed in other ways. For example, an annular track with multiple stepped surfaces may be formed on the fixing member 11. The slider moves unidirectionally in the annular track. Under the driving force of the elastic component and / or the elastic restoring force of the elastic component, the slider may be limited to the position of clamping the guide rail and the position of releasing the guide rail, respectively. That is, the limiting part may include the slider and the fixing member. The above is only an exemplary description. Those skilled in the art can select a suitable structure as the limiting part according to the actual situation.
[0118] The following is Figure 5 and Figure 6 The mounting components shown exemplarily illustrate the mounting of mounting component 10 on guide rail 2 and its removal from guide rail 2.
[0119] Figure 7 yes Figure 5 A schematic diagram of some components of the mounting assembly is shown, illustrating the view of the mounting assembly from the side away from guide rail 2 along the direction P of the PUSH operation.
[0120] like Figure 7 As shown, a ring-shaped second track G2 is disposed on the slider 12. The 142 end of the limiting member 14 moves unidirectionally within the second track G2. The second track G2 includes a first limiting part GP1 and a second limiting part GP2. Unidirectional movement refers to the 142 end of the limiting member 14 moving within the second track G2 in a clockwise or counterclockwise direction. For example... Figure 7 The diagram shows that end 142 of the limiting member 14 moves counterclockwise within the second track G2. That is, for example, end 142 of the limiting member 14 can move from the first limiting part GP1 to the second limiting part GP2 in a counterclockwise direction via the first transition part GP4, but cannot move from the first limiting part GP1 to the second limiting part GP2 in a clockwise direction via the second transition part GP3.
[0121] In the embodiments of this application, such as Figure 5 and Figure 7 As shown, when end 132 of the limiting member 14 is located at the first limiting part GP1, the limiting member 14 limits the slider 12 to the position shown. Figure 5 The first limit position is shown. In this case, slider 12 releases guide rail 2; as shown Figure 6 and Figure 7 As shown, when end 142 of the limiting member 14 is located at the second limiting part GP2, the limiting member 14 limits the slider 12 to the position shown. Figure 6The second limiting position is shown, in which the slider 12 clamps the guide rail 2. Thus, the slider 12 can be held in either a state where the guide rail 2 is released or a state where the guide rail 2 is clamped.
[0122] In one or more embodiments, such as Figures 5 to 7 As shown, the second track G2 also includes a first transition section GP4 and a second transition section GP3. When the end of the limiting member 142 is located at the first transition section GP4 or the second transition section GP3, the slider 12 is in the first transition position (e.g., Figure 5 The dotted line indicates the elastic component 13' or the second transition position. The elastic component 13 is in the maximum deformation state. That is, when an external force is applied to the elastic component 13, the end 132 of the elastic component 13 cannot deform further after reaching the first transition part GP4 or the second transition part GP3. The elastic component 13 cannot further drive the slider 12 by the external force. In this case, when the PUSH operation is removed, the elastic component 13 drives the slider 12 to move by its elastic restoring force until the end 132 of the elastic component 13 reaches the second limit part GP2 or the first limit part GP1. In this case, the slider 12 is in the second limit position GP2 and clamps the guide rail or is in the first limit position GP1 and releases the guide rail 12.
[0123] However, this application is not limited to this. The second track G2 may only include the first transition section GP4 and not the second transition section GP3. That is, when the slider 12 in the first limiting position moves to the second limiting position under the force of the elastic member 13, the force of the elastic member 13 causes the slider 12 to first move to the first transition position. Then, the elastic restoring force of the elastic member 13 moves the slider 12 in the first transition position to the second limiting position. Thus, the mounting component 10 can be installed on the guide rail 2 with one PUSH operation. When the elastic member 13 is subjected to external force again, the elastic member 13 drives the slider 12 in the second limiting position to move directly to the first limiting position without passing through the second transition position. Thus, the mounting component 10 can be removed from the guide rail 2 with repeated PUSH operations.
[0124] For example, the second track G2 may not include the first transition section GP4 but only the second transition section GP3. That is, the slider 12 in the first limiting position moves directly to the second limiting position under the force of the elastic member 13, without passing through the first transition position, so that the mounting assembly 10 can be installed on the guide rail 2 with a single PUSH operation. When the elastic member 13 is subjected to external force again, the slider 12 in the second limiting position moves to the first limiting position under the force of the elastic member 13. The force of the elastic member 13 causes the slider 12 to first move to the second transition position, and then the elastic restoring force of the elastic member 13 moves the slider 12 in the second transition position to the first limiting position. Thus, the mounting assembly 10 can be removed from the guide rail 2 with a single PUSH operation.
[0125] In the embodiments of this application, such as Figure 7 As shown, when the 142 end of the limiting member 14 is in the first transition portion GP4 or the second transition portion GP3, the displacement of the slider 12 relative to the fixing member 11 in the S direction is the same, and the deformation state of the elastic member 13 is the same, that is, the elastic member 13 has the same maximum deformation state. However, this application is not limited to this. When the 142 end of the limiting member 14 is in the first transition portion GP4 or the second transition portion GP3, the deformation state of the elastic member 13 may also be different. That is to say, the first transition portion GP4 and the second transition portion GP3 may be asymmetrical with respect to the straight line parallel to the S direction. This application does not limit this and can be set according to actual needs. Figure 7 An example of a second track G2 including a first limiting part GP1, a first transition part GP4, a second limiting part GP2, and a second transition part GP3 is shown. The first limiting part GP1 and the second limiting part GP2 are arranged along the S direction. However, this application is not limited to this. The second track G2 can also be of other shapes. For example, the line connecting the first limiting part GP1 and the second limiting part GP2 can intersect the S direction. This application does not limit this. It is only necessary that the slider, under the action of the elastic member 13, allows the end 142 of the limiting member 14 to move sequentially along the first limiting part GP1, the first transition part GP4, the second limiting part GP2, and the second transition part GP3 within the second track G2.
[0126] However, this application is not limited to this. The second track G2 may also include a first limiting part GP1, a first transition part GP4, and a second limiting part GP2, or the second track G2 may include a first limiting part GP1, a second limiting part GP2, and a second transition part GP3. Regarding the specific shape of the second track G2 and the specific placement of each limiting part and transition part within the second track G2 in this case, this application does not impose any restrictions. See [link to relevant documentation]. Figure 7The example of the second orbital G2 and the above description are not listed here.
[0127] Figure 8 This is an enlarged schematic diagram of the second track G2 in an embodiment of the first aspect of this application.
[0128] In one or more embodiments, such as Figure 8 As shown, the second track G2 has a step surface S formed on the side opposite to the direction of unidirectional movement of the first limiting part GP1, the first transition part GP4, the second limiting part GP2, and the second transition part GP3. In other words, when the limiting member 14 moves unidirectionally clockwise within the second track G2, that is, when the limiting member 14 moves along the path GP1→GP4→GP2→GP3→GP1 within the second track G2, a step surface S is formed on one side of the first limiting part GP1, the first transition part GP4, the second limiting part GP2, and the second transition part GP3 in the counterclockwise direction. When the limiting member 14 moves unidirectionally counterclockwise within the second track G2, that is, when the limiting member 14 moves along the path GP1→GP3→GP2→GP4→GP1 within the second track G2, a step surface S is formed on one side of the first limiting part GP1, the first transition part GP4, the second limiting part GP2, and the second transition part GP3 in the clockwise direction. This can be configured according to actual needs.
[0129] Therefore, it is possible to ensure that the 142 end of the limiting member 14 can move unidirectionally within the second track G2. For example, the 142 end of the limiting member 14 includes a protrusion that intersects or is perpendicular to the surface where the second track G2 is located. Thus, the end of the protrusion contacts the bottom surface of the second track G2, ensuring that the 142 end of the limiting member 14 abuts against the step surface at the first limiting part GP1, the first transition part GP4, the second limiting part GP2, and the second transition part GP3, thereby preventing the 142 end of the limiting member 14 from moving in the wrong direction and ensuring the reliability of the installation and disassembly operations.
[0130] In this embodiment of the application, when a step surface is formed within the second track G2, the bottom surface within the second track G2 is a sloping surface, such as... Figure 8 As shown, the bottom of the second track G2 consists of four connected ramps.
[0131] However, this application is not limited to this. Other structures can also be used to ensure that the 142 end of the elastic component 14 moves unidirectionally within the second track G2. For example, the bottom surface of the second track G2 can also be a plane, and a protrusion can be formed on the bottom surface of the second track G2. For details, please refer to the above description of the first track G1. They will not be listed one by one here. They can be selected according to actual needs.
[0132] In the implementation of this application, if Figure 7 and8 As shown, when a second track G2 is formed in the slider 12, the second track G2 can be formed on the end face 12D of the slider 12 perpendicular to the PUSH operation direction P. However, this application is not limited to this. For example, the second track G2 can also be formed on the side of the slider 12 parallel to the PUSH operation direction P, such as... Figure 4 The side 12S shown in the figure, or the central portion of the slider 12, may also form a groove, the opening of which faces the 142 end of the limiting member 14, and the second track G2 may be formed on the end face of the wall portion of the groove perpendicular to the PUSH operation direction P. This application does not limit this and can be configured according to the actual situation.
[0133] In this embodiment, the factory state or original state of the mounting component 10 can be various, for example, it can be... Figure 5 In the state shown, that is, when slider 12 is in the first limit position and remains in the released state, the mounting component 10 can be installed on the guide rail 2 by a single PUSH operation as described above. However, it is not limited to this; slider 12 can also be in the position shown in the figure. Figure 6 The position shown is different in that the slider 12 does not clamp the guide rail 2 at this time. In this case, the initial installation of the mounting component 10 on the guide rail 2 can also be achieved by a single PUSH operation. For example, in Figure 6 Under the PUSH operation in the P direction, the guide rail 2 acts on the slider 12, causing the slider 12 to move in the S direction to widen the opening 16. At this time, the end 142 of the limiting member 14 moves from the second limiting part to the second transition part within the second track. When the guide rail 2 is fully inserted into the opening 16, the end 142 of the limiting member 14 has not yet reached the second transition part. At this time, the PUSH operation is removed, and the slider 12 moves in the S' direction under the elastic restoring force of the elastic member 13 to re-clamp the guide rail 2. The end 142 of the limiting member 14 retracts and remains in the second limiting part to keep the guide rail 2 clamped. Thus, the initial installation of the mounting assembly 10 on the guide rail 2 is achieved through one PUSH operation.
[0134] In one or more embodiments, such as Figures 5 to 8 As shown, the limiting component 14 is a limiting spring. For details about the limiting spring, please refer to related technologies, but this application is not limited thereto.
[0135] In one or more embodiments, such as Figures 1 to 8 As shown, the elastic component 13 is a drive spring. For details about the drive spring, please refer to related technologies, but this application is not limited thereto.
[0136] In the embodiments of this application, such as Figure 1 and Figure 6As shown, when the elastic member 13 is a drive spring, one end 131 of the elastic member 13 is fixed to the first surface 11S of the fixing member 11, and the other end 132 of the elastic member 13 is connected to the slider 12 and away from the first surface 11S of the fixing member 11. That is, the 132 end of the elastic member 13 is closer to the opening 16 of the mounting assembly 10 than the 131 end.
[0137] When the elastic member 13 is in its minimum deformation state, the slider is in either the first or second limit position. The minimum deformation state is the state where end 132 of the elastic member 13 is furthest from the first surface 11S, for example, as... Figure 1 As shown, when end 132 of the elastic member 13 is at its furthest point from the surface of the fixed 131, the slider 12 is in the first limit position and releases the guide rail, or, as... Figure 6 As shown, when the end of the elastic member 132 is in the state furthest from the surface of the fixed 131, the slider 12 is in the second limit position and clamps the guide rail. This application does not limit this and can be selected according to actual needs.
[0138] In the embodiments of this application, such as Figure 1 and Figure 6 As shown, the mounting assembly 10 may include only one slider 12. The mounting assembly 10 may include a fixing part 15 opposite to the slider 12 in the movement of the slider 12. An opening 16 is formed between the fixing part 15 and the slider 12 to clamp or engage the guide rail 2. Regarding the specific structure of the guide rail 2 and the specific structure of the mounting assembly 10 for engaging with the guide rail 2, for example, the slider 12 includes a protrusion 123 for engaging the guide rail 2, and the fixing part 15 includes a protrusion 151 for engaging the guide rail 2, please refer to related art.
[0139] It is worth noting that when in Figure 1 When the slider is set in the S' direction. Figure 4 This can be a schematic diagram of the first track G1 formed on the slider. Figure 5 When the slider is set in the opposite direction to the S direction. Figure 8 This is a diagram showing the second track G2 formed on the slider.
[0140] However, this application is not limited to this. For example, the mounting component 10 may include two sliders, which may be arranged on both sides of the opening 16 along the sliding direction of the sliders. In other words, the two sliders are arranged at intervals along the sliding direction of the sliders and form the opening 16 between the two sliders. Thus, the guide rail 2 can be clamped more reliably in the clamping state. However, this application is not limited to this. The two sliders may also be arranged side by side at one end of the opening 16. In addition, the mounting component 10 may also include three or more sliders. This application does not limit this. The following is a detailed description of the example of two sliders arranged on both sides of the opening 16 along the sliding direction.
[0141] Figure 9 This is another schematic diagram of the mounting assembly 10 according to an embodiment of the first aspect of this application, showing the mounting assembly 10 with the guide rail 2 released, and the mounting assembly 10 includes two sliders. Figure 10 yes Figure 9 Another schematic diagram of the mounting assembly 10 shows the mounting assembly 10 clamping the guide rail 2, and the mounting assembly includes two sliders. The two sliders are respectively disposed on both sides of the opening 16. In addition, one elastic member and one limiting member are respectively disposed on both sides of the opening 16. For the structure of any one of the sliders, the elastic member, and the limiting member, please refer to the above description. Figures 5 to 8 The explanations in the text will not be repeated here.
[0142] like Figure 9 and Figure 10 In one or more embodiments, the slider 12 includes a first slider 12a and a second slider 12b, which move in opposite directions relative to the fixing member 11 to clamp or release the guide rail 2.
[0143] Accordingly, such as Figure 9 and Figure 10 As shown, the elastic member 13 also includes a first elastic member 13a and a second elastic member 13b.
[0144] like Figure 9 and Figure 10As shown in this embodiment, the first elastic member 13a and the second elastic member 13b are disposed between the first slider 12a and the second slider 12b. One end 13a1 of the first elastic member 13a is fixed relative to the fixing member 11, and the other end 13a2 of the first elastic member 13a is connected to the first slider 12a. One end 13b1 of the second elastic member 13b is fixed relative to the fixing member 11, and the other end 13b2 of the second elastic member 13b is connected to the second slider 12b. Under the action of external force, the first elastic member 13a and the second elastic member 13b can drive the first slider 12a and the second slider 12b to move in opposite directions. The first elastic member 13a and the second elastic member 13b can drive the first slider 12a and the second slider 12b to move in opposite directions through elastic restoring force.
[0145] like Figure 9 and Figure 10 As shown, the limiting component 14 also includes a first limiting component 14a and a second limiting component 14b. One end 14a1 of the first limiting component 14a is fixed to the fixing member 11, and the other end 14a2 of the first limiting component 14a (see...) Figure 11 The second limiting member 14b is located on the first slider 12a and moves along the second track located on the first slider 12a. One end 14b1 of the second limiting member 14b is fixed to the fixing member 11, and the other end 14b2 of the second limiting member 14b (see...) Figure 11 It is positioned on the second slider 12b and moves along the second track also positioned on the second slider 12b. For information about the second track, please refer to the above section on... Figures 5 to 8 The explanation of the second orbital G2 in the text will not be repeated here.
[0146] The following is passed Figure 9 and Figure 10 The installation operation of mounting component 10 on guide rail 2 is explained.
[0147] like Figure 9 As shown, in Figure 9 In the state shown, the first slider 12a and the second slider 12b are in the first limiting position and the guide rail 2 is released. That is, the other end 14a2 of the first limiting member 14a is in the first limiting part of the second track in the first slider 12a, and the other end 14b2 of the second limiting member 14b is in the first limiting part of the second track in the second slider 12b. In this case, the guide rail 2 can directly enter the opening 16 of the mounting assembly 10 and abut against the first elastic member 13a and the second elastic member 13b. Figure 9When the force P is applied to the mounting assembly 10, a PUSH operation is performed. The first elastic component 13a and the second elastic component 13b are subjected to a force from the guide rail 2 in the opposite direction to P. Under the influence of the force in the opposite direction to P, the first elastic component 13a and the second elastic component 13b exert forces on the first slider 12a and the second slider 12b respectively through their other ends 13a2 and 13b2, causing the first slider 12a and the second slider 12b to move in directions away from each other. That is, the first slider 12a moves towards the S direction, and the second slider 12b moves towards the S' direction.
[0148] When the first elastic member 13a and the second elastic member 13b reach their maximum deformation state, the first slider 12a and the second slider 12b reach the first transition position. For example... Figure 9 As shown, Figure 9 The elastic components 13a' and 13b' shown in dashed lines represent the first and second elastic components that have reached the maximum deformation state, and the sliders 12a' and 12b' shown in dashed lines represent the first and second sliders that have reached the first transition position.
[0149] In this case, when the force applied to the first elastic member and the second elastic member decreases or disappears, that is, when the PUSH operation is canceled and the pushing force applied to the mounting assembly 10 in the P direction decreases or disappears, the first elastic member 13a and the second elastic member 13b can rebound to their original position due to the elastic restoring force. Figure 10 The state shown.
[0150] like Figure 10 As shown, when the first slider 12a and the second slider 12b are in the first transition position, the first elastic member 13a and the second elastic member 13b drive the first slider 12a and the second slider 12b to move to the first transition position through the elastic restoring force of the elastic members. Figure 10The guide rail 2 is clamped at the second limiting position shown. That is, the first slider 12a moves in the S' direction until it reaches the second limiting position, and the second slider 12b moves in the S direction until it reaches the second limiting position. In this case, the other end 14a2 of the first limiting member 14a moves from the first transition portion to the second limiting portion in the second track of the first slider 12a, and the other end 14b2 of the second limiting member 14b moves from the first transition portion to the second limiting portion in the second track of the second slider 12b. When the other end 14a2 of the first limiting member 14a and the other end 14b2 of the second limiting member 14b move to the second limiting portion, the first limiting member 14a limits the first slider 12a to the second limiting position, and the second limiting member 14b limits the second slider 12b to the second limiting position, so that the first slider 12a and the second slider 12b are in a position that keeps the guide rail 2 clamped, thereby realizing the installation of the mounting assembly 10 on the guide rail 2. Thus, the installation of the mounting component 10 on the guide rail 2 was achieved through a single PUSH operation.
[0151] The following is passed Figure 10 and Figure 9 The disassembly operation of removing the mounting component 10 from the guide rail 2 is described.
[0152] like Figure 10 As shown, in Figure 10 In the state shown, the first slider 12a and the second slider 12b are in the second limiting position, that is, the first slider 12a and the second slider 12b are in the clamping guide rail 2 position, and without applying external force to the first elastic member 13a and the second elastic member 13b, the second limiting member 14b limits the second slider 12b to the second limiting position, so that the first slider 12a and the second slider 12b are in the position of holding the clamping guide rail 2. In this case, when along... Figure 10 When the force P is applied to the mounting assembly 10, the first elastic component 13a and the second elastic component 13b will be subjected to a force opposite to that of the guide rail 2. Under the influence of the force opposite to that of P, the first elastic component 13a and the second elastic component 13b will exert a force on the first slider 12a and the second slider 12b respectively through their other ends 13a2 and 13b2, causing the first slider 12a and the second slider 12b to move in directions away from each other, that is, the first slider 12a moves in the S direction and the second slider 12b moves in the S' direction.
[0153] When the first elastic member 13a and the second elastic member 13b reach their maximum deformation state, for example, when the first elastic member 13a reaches... Figure 9 The state shown by the dashed line for elastic member 13a' indicates that the second elastic member 13b has reached [the desired state]. Figure 9The state shown by the dashed line for the elastic member 13b' indicates that the first slider 12a and the second slider 12b have reached the second transition position. It is worth noting that when the sliders (first slider 12a and second slider 12b) are in the second transition position, the maximum deformation state achieved by the elastic members (first elastic member 13a and second elastic member 13b) can be the same as the maximum deformation state achieved when the sliders are in the first transition position, but it can also be different. For example, if the first transition portion and the second transition portion are asymmetrical about the S direction, the maximum deformation state achieved by the elastic members will be different. Figure 9 and Figure 10 The example uses the same maximum deformation state achieved by the elastic component for illustration.
[0154] In this case, when the force applied to the first elastic member 13a and the second elastic member 13b decreases or disappears, that is, when the PUSH operation is canceled and the pushing force applied to the mounting assembly 10 in the P direction decreases or disappears, the first elastic member 13a and the second elastic member 13b rebound by elastic restoring force.
[0155] like Figure 9 As shown, the first elastic member 13a and the second elastic member 13b drive the first slider 12a and the second slider 12b to move towards each other through their elastic restoring force, that is, the first slider 12a moves towards the S' direction and the second slider 12b moves towards the S direction. The other end 14a2 of the first limiting member 14a moves within the second track of the first slider 12a, and the other end 14b2 of the second limiting member 14b moves within the second track of the second slider 12b. When the first elastic member 13a and the second elastic member 13b rebound to... Figure 9 As shown by the solid line on the elastic member 13, the first elastic member 13a and the third elastic member 13b have moved to the first limiting position. The other ends 14a2 of the first limiting member 14a and 14b2 of the second limiting member 14b have moved to the first limiting portion, holding the first slider 12a and the second slider 12b in the first limiting position. That is, the first slider 12a and the second slider 12b are in a state where the guide rail 2 is held open. In this case, the mounting assembly 10 can be detached from the guide rail 2, thus achieving the detachment of the mounting assembly 10 from the guide rail 2. Furthermore, according to the foregoing description, in this case, the guide rail 2 can also be directly inserted into the opening 16 of the mounting assembly 10 and abut against the first elastic member 13a and the second elastic member 13b, thereby performing another installation operation. Thus, the detachment of the mounting assembly 10 from the guide rail 2 is achieved through a single PUSH operation.
[0156] In this embodiment, since both the installation and removal of the mounting component 10 can be accomplished with a single push, no additional tools are required, and the user can complete the operation with one hand, greatly improving the user's ease of use. Furthermore, there is no need to provide components on the slider for tool engagement, such as hooks exposed on the fixing member for pulling the slider, which saves the required space for installation / removal operations. In addition, when the electrical product containing the mounting component 10 is large, there is no need to place the mounting component on the edge of the electrical product to expose the hook. That is, the mounting component can be located at any position on the electrical product, such as the center of the product, which can improve the installation stability of the electrical product mounted on the guide rail.
[0157] In this embodiment, the fixing member can be made of, for example, a metal material, but this application is not limited to this. A track structure for sliding the slider can be formed on the fixing member 11. For example, the fixing member 11 can form a receiving portion extending along the sliding direction of the slider, and the slider slides within the receiving portion when force is applied. However, this application is not limited to this. For example, the fixing member 11 can also form a track portion extending along the sliding direction of the slider, and a clamping portion that cooperates with the track portion is formed on the slider, thereby allowing the slider to slide along the track portion when force is applied. This application is not limited to this and can be configured according to actual needs.
[0158] In this embodiment, the first elastic member 13a can drive the first slider 12a to move in the S' direction by its elastic restoring force, and the second elastic member 13b can drive the second slider 12b to move in the S direction by its elastic restoring force. For example, the other end 13a2 of the first elastic member 13a and the first slider 12a are movably connected, such as... Figures 1 to 4 The arrangement shown is not limited to this. The cooperation structure between the other end 13a2 of the first elastic member 13a and the first slider 12a can be such that the other end 13a2 of the first elastic member 13a can drive the first slider 12a to move. For example, the part of the first slider 12a that cooperates with the other end 132a of the first elastic member 13a2 is a groove. The other end 13a2 of the first elastic member 13a is embedded in the groove and drives the first slider 12a to move. That is, when the other end 13a2 of the first elastic member 13a moves along direction P... The first slider 12a can be moved relative to the fixed member 11. When the other end 13a2 of the first elastic member 13a moves in the opposite direction to the direction P, the first slider 12a can also be moved relative to the fixed member 11. Thus, when the force applied by the guide rail 2 to the first elastic member 13a disappears, the other end 13a2 of the first elastic member 13a rebounds and moves the first slider 12a toward the direction S'. The connection between the other end 13b2 of the second elastic member 13b and the second slider 12b is similar and will not be described in detail.
[0159] However, this application is not limited to this. For example, the elastic member 13 may also include a dedicated springback member to enable the first slider 12a to move toward the S' direction and the second slider 12b to move toward the S direction.
[0160] For example, Figure 11 This is a perspective view of the installation components according to an embodiment of the first aspect of this application.
[0161] like Figure 11 As shown, in one or more embodiments, the elastic member 13 further includes a springback member 133. When the elastic member 13 includes a first elastic member 13a and a second elastic member 13b, the springback member 133 may correspondingly include a first springback member 133a and a second springback member 133b. Thus, when the first slider 12a and the second slider 12b reach a first transition position or a second transition position and the guide rail 2 no longer applies force to the first elastic member 13a and the second elastic member 13b, the springback member 133 can further ensure that the first slider 12a and the second slider 12b move from the first transition position or the second transition position to the second limit position or the first limit position. Figure 11 As shown in the embodiment of this application, one end 133a1 of the first spring-loaded component 133a is fixed to the fixing member 11, and the other end 133a2 of the first spring-loaded component 133a is fixed to the first slider 12a. When the first slider 12a moves to the first transition portion or the second transition portion, the first spring-loaded component 133a can move the first slider 12a to the second limit position or the first limit position through the elastic restoring force. The second spring-loaded component 133b is similar and will not be described in detail.
[0162] In this configuration, without the need for the first elastic member 13a and the second elastic member 13b to provide a rebound force, the first slider 12a and the second slider 12b can be moved from the first transition position or the second transition position to the second limit position or the first limit position solely by the rebound member. That is, the first elastic member 13a and the second elastic member 13b are only used to drive the movement of the first slider 12a and the second slider 12b under the force of the guide rail 2 due to the PUSH operation. When the PUSH operation is removed, both the first elastic member 13a and the second elastic member 13b can be in their natural state, i.e., in a state without deformation, which can improve the service life of the first elastic member 13a and the second elastic member 13b. Furthermore, one end of the rebound member 133 is fixed to the slider 12, meaning that the first slider 12a and the second slider 12b are connected as one unit by the rebound member 133 located in the middle, which can enhance the strength of the slider 12, thereby enabling more reliable clamping of the guide rail 2, for example, in a clamped state.
[0163] However, this application is not limited to this. It is also possible to provide the rebound force simultaneously through the rebound member 133 and the first elastic member 13a and the second elastic member 13b, or to provide the rebound force only through the elastic members (the first elastic member 13a and the second elastic member 13b), which can be set according to actual needs.
[0164] like Figure 11 As shown, in one or more embodiments, there are two first elastic members 13a and two second elastic members 13b. Both the two first elastic members 13a and the two second elastic members 13b are disposed in the space K between the first slider 12a and the second slider 12b. One of the first elastic members 13a-1 and the second elastic member 13b-1 is disposed on one side of the first direction DD in the space K, and the other first elastic member 13a-2 and the other second elastic member 13b-2 are disposed on the other side of the first direction DD in the space K. The first direction DD is perpendicular to the arrangement direction of the first slider 12a and the second slider 12b. The arrangement direction of the first slider 12a and the second slider 12b is parallel to the directions S and S'.
[0165] Therefore, by providing a pair of elastic members at both ends in a direction perpendicular to the arrangement direction of the first slider 12a and the second slider 12b, the slider 12 (the first slider 12a and the second slider 12b) can be subjected to a balanced driving force applied by the elastic members 13, ensuring the smooth progress of the installation / removal operation.
[0166] However, this application is not limited to this. For example, elastic components 13 can also be provided at other positions in the first direction DD within the space K. For example, a group of elastic components (one elastic component 13, or including the first elastic component 13a and the second elastic component 13b) can be provided at the middle position in the first direction within the space K. Alternatively, multiple groups of elastic components can be provided at intervals in the first direction within the space K. For example, a group of elastic components can be provided at both ends and in the middle, i.e., three groups of elastic components can be provided. However, this application is not limited to this. More than three groups of elastic components can also be provided. The intervals between multiple groups of elastic components can be the same or different, and can be selected according to actual needs.
[0167] like Figure 11 As shown, with Figure 11Taking a set of elastic components (first elastic component 13a-2 and second elastic component 13b-2) as an example, in one or more embodiments, one end of the first elastic component 13a-2 (the end near the center of space K) and one end of the second elastic component 13b-2 (the end near the center of space K) are connected and fixed relative to the fixing member 11. For example, one end of the first elastic component 13a-2 and one end of the second elastic component 13b-2 can be fixed to the fixing member 11 or fixed relative to the fixing member 11 by other components. This application does not limit this. For example, one end of the first elastic component 13a-2 and one end of the second elastic component 13b-2 can be connected together and fixed to the fixing member 11 or fixed to other components. That is, the first elastic component 13a-2 and the second elastic component 13b-2 can be an integrally formed structure. Thus, the guide rail 2 can apply force to the elastic components evenly to ensure the operation effect.
[0168] In one or more embodiments, such as Figure 11 As shown, when the first elastic member 13a-2 and the second elastic member 13b-2 are subjected to the pressure of the guide rail 2, the first elastic member 13a-2 moves toward the fixing member 11 on the inclined surface 12aS of the first slider 12a to drive the first slider 12a, and the second elastic member 13b-2 moves toward the fixing member 11 on the inclined surface 12bS of the second slider 12b to drive the second slider 12b.
[0169] Thus, a structure that drives the slider through an elastic component was realized in a simple way.
[0170] However, this application is not limited to this. For example, taking the first slider 12a as an example, the surface of the first slider 12a on which the first elastic member 13a-1 acts may not be an inclined surface. For example, the surface may be a vertical surface perpendicular to the first direction DD. In this case, when the first elastic member 13a-1 is in its natural state, that is, when the first elastic member 13a-1 is not subjected to force and deforms, the end of the first elastic member 13a-1 near the space K may be positioned near the fixing member 11, and the end of the first elastic member 13a-1 near the first slider 12a may be far away from the fixing member 11. Thus, when the first elastic member 13a-1 is subjected to the force of the guide rail 2, the end of the first elastic member 13a-1 near the first slider 12a moves along the vertical surface of the first slider 12a toward the fixing member and drives the first slider 12a.
[0171] However, this application is not limited to this. For example, taking the first slider 12a as an example, the surface of the first slider 12a to which the first elastic member 13a-1 acts can also be an arc surface or have an inclined direction that is the same as the first slider 12a. Figure 11The inclined surfaces, which are in opposite directions as shown, can be set according to actual needs (such as clamping or loosening the guide rail 2 by driving the first slider 12a through the first elastic member 13a-1).
[0172] like Figure 11 As shown, in one or more embodiments, the mounting assembly 10 may further include a base portion 17 disposed between the first slider 12a and the second slider 12b, with one end of the first elastic member 13a (the end near the center of space K) and one end of the second elastic member 13b (the end near the center of space K) fixed to the base portion 17. This enables reliable fixing of the first elastic member. However, this application is not limited to this; for example, the ends of the first elastic member 13a and the second elastic member 13b near the center of space K may also be directly fixed to the fixing member 11.
[0173] like Figure 11 As shown, in one or more embodiments, one end 133a1 (the end near the center of space K) of the first spring-loaded member 133a and one end 133b1 (the end near the center of space K) of the second spring-loaded member 133b are fixed to the base portion 17. This ensures reliable fixation of the first spring-loaded member 133a. However, this application is not limited to this; for example, the ends 133a1 and 133b1 of the first spring-loaded member 133a and the second spring-loaded member 133b may also be directly fixed to the fixing member 11.
[0174] like Figure 11 As shown, in one or more embodiments, one end of the first limiting member 14a is fixed to one end of the fixing member along the arrangement direction of the first slider and the second slider, and the other end 14a2 of the first limiting member 14a moves within the second track when the first slider moves. One end of the second limiting member 14b is fixed to the other end of the fixing member along the arrangement direction of the first slider and the second slider, and the other end 14b2 of the second limiting member 14b moves within the second track when the second slider moves. However, this application is not limited to this, and the installation method of the first limiting member 14a and the second limiting member 14b can also be other methods.
[0175] Figure 12 This is another schematic diagram of the mounting assembly according to an embodiment of the first aspect of this application, showing the view of the mounting assembly from the side away from the guide rail 2 along the direction P of the PUSH operation.
[0176] like Figure 12 As shown, the mounting assembly 10 includes two sliders, namely the first slider 12a and the second slider 12b, as follows: Figure 12As shown, the first slider 12a and the second slider 12b are symmetrically arranged with respect to the center of the fixing member 11. Both the first slider 12a and the first slider 12b are provided with a second track G2, and the two second tracks G2 are also symmetrically arranged with respect to the center of the fixing member 11. Furthermore, for details regarding the first slider 12a and the second slider 12b, please refer to the foregoing description. For details regarding the second track G2 of the first slider 12a, please refer to the foregoing description, especially… Figure 7 The description in the document, regarding the second track G2 of the second slider 12b, can be found in the foregoing, especially... Figure 7 The explanations in the text will not be detailed here.
[0177] Figure 13 and Figure 14 Two schematic diagrams of an installation assembly according to an embodiment of the first aspect of this application are shown, wherein two sliders 12 are provided on the fixing member 11 along the S direction and the S' direction. Figure 13 Corresponding to Figure 1 The state shown is as follows. Figure 14 This is a three-dimensional schematic diagram showing the case where a pair of elastic members 13 are respectively arranged on both sides in the first direction DD of space K. Regarding the use of... Figure 13 and Figure 14 The specific structure of the mounting component shown, as well as the specific methods for mounting on and removing from the guide rail 2 using this mounting component, can be found in the foregoing content and will not be described in detail here.
[0178] The above embodiments are merely illustrative examples of embodiments of this application, but this application is not limited thereto, and appropriate modifications can be made based on the above embodiments. For example, the above embodiments can be used alone, or one or more of the above embodiments can be combined.
[0179] As can be seen from the above embodiments, when the slider 12 is in the first limiting position and not clamping the guide rail 2, when the elastic member 13 is subjected to the force applied by the guide rail 2 by PUSH, the slider 12 can move from the first limiting position to the second limiting position and clamp the guide rail 2. When the force applied to the elastic member 13 disappears, the limiting part limits the slider to the second limiting position and keeps it clamping the guide rail 2. When the elastic member 13 is subjected to the force applied by the guide rail 2 again by PUSH, the slider can move from the second limiting position to the first limiting position and release the guide rail 2. When the force applied to the elastic member 13 disappears, the limiting part limits the slider to the first limiting position and keeps it released from the guide rail 2. Therefore, the installation of the mounting component 10 on the guide rail 2 or the removal of the mounting component from the guide rail 2 can be achieved by only one PUSH, realizing convenient operation and improving customer experience.
[0180] Second aspect of the embodiments
[0181] This application also provides an electrical product.
[0182] Figure 15 This is a schematic diagram of an electrical product according to an embodiment of the second aspect of this application, such as... Figure 15 As shown, the electrical product 20 has the mounting assembly 10 and electrical unit 21 described in the first aspect embodiment. The electrical unit 21 is fixed to the fastener 11. For example, the electrical unit 21 can be fixed to the surface opposite to the mounting slider 12 of the fastener 11. Since the structure of the mounting assembly 10 has been described in detail in the first aspect embodiment, the content is incorporated herein by reference, and the description is omitted here.
[0183] As can be seen from the above embodiments, the electrical product 20 can be installed on or removed from the guide rail 2 with only one push, which realizes the convenience of operation and can improve the customer experience.
[0184] The present application has been described above with reference to specific embodiments. However, those skilled in the art should understand that these descriptions are exemplary and not intended to limit the scope of protection of the present application. Those skilled in the art can make various modifications and variations to the present application based on its spirit and principles, and these modifications and variations are also within the scope of the present application.
[0185] Preferred embodiments of this application have been described above with reference to the accompanying drawings. Many features and advantages of these embodiments are apparent from this detailed description, and therefore the appended claims are intended to cover all such features and advantages of these embodiments that fall within their true spirit and scope. Furthermore, since many modifications and alterations will readily occur to those skilled in the art, the embodiments of this application are not intended to be limited to the precise structures and operations illustrated and described, but rather to encompass all suitable modifications and equivalents falling within their scope.
Claims
1. A mounting assembly for a guide rail, characterized in that, The installation components include: Fasteners; A slider that is movable relative to the fixing member to clamp or release the guide rail; An elastic component is disposed on the side of the slider near the guide rail. One end of the elastic component is fixed relative to the fixing member, and the other end of the elastic component is connected to the side of the slider near the guide rail. Under external force, the elastic component can drive the slider to move relative to the fixing member. The elastic component can also drive the slider to move relative to the fixing member through elastic restoring force. A limiting part that keeps the slider either clamped to the guide rail or released from the guide rail. When the elastic member is subjected to an external force, the elastic member drives the slider, which is in the first limiting position, to move. In the first limiting position, the slider is held by the limiting part to release the guide rail. When the slider moves to the second limiting position, the slider is held by the limiting part to clamp the guide rail. When the elastic member is subjected to external force again, the elastic member drives the slider in the second limiting position to move. When the slider moves to the first limiting position, the slider is held by the limiting part to release the guide rail.
2. The mounting assembly according to claim 1, characterized in that, When the elastic component is subjected to an external force, the elastic component drives the slider at the first limiting position to move to the first transition position. When the slider is at the first transition position, the elastic component drives the slider from the first transition position to the second limiting position through elastic restoring force. When the elastic component is subjected to an external force again, the elastic component drives the slider at the second limiting position to move to the first limiting position; or When the elastic component is subjected to an external force, the elastic component drives the slider at the first limiting position to move to the second limiting position. When the elastic component is subjected to an external force again, the elastic component drives the slider at the second limiting position to move to the second transition position. When the slider is at the second transition position, the elastic component drives the slider from the second transition position to the first limiting position through elastic restoring force; or When the elastic component is subjected to an external force, the elastic component drives the slider at the first limiting position to move to the first transition position. When the slider is at the first transition position, the elastic component drives the slider from the first transition position to the second limiting position through elastic restoring force. When the elastic component is subjected to an external force again, the elastic component drives the slider at the second limiting position to move to the second transition position. When the slider is at the second transition position, the elastic component drives the slider from the second transition position to the first limiting position through elastic restoring force.
3. The mounting assembly according to claim 2, characterized in that, The limiting portion includes a first annular track disposed on the slider and the other end of the elastic member. The first track includes a first limiting portion and a second limiting portion. The other end of the elastic member moves unidirectionally within the first track. When the other end of the elastic member is located at the first limiting portion, the elastic member limits the slider to the first limiting position; when the other end of the elastic member is located at the second limiting portion, the elastic member limits the slider to the second limiting position.
4. The mounting assembly according to claim 3, characterized in that, The first track further includes a first transition section, wherein when the other end of the elastic member is located at the first transition section, the slider is in the first transition position, the elastic member is in its maximum deformation state, and / or The first track further includes a second transition section. When the other end of the elastic member is located at the second transition section, the slider is in the second transition position, and the elastic member is in its maximum deformation state. The first track has a stepped surface formed on the side of the first limiting part, the first transition part, the second limiting part, and the second transition part opposite to the direction of unidirectional movement.
5. The mounting assembly according to claim 2, characterized in that, The limiting part includes a second annular track disposed on the slider and a limiting component. The second track includes a first limiting part and a second limiting part. One end of the limiting component is fixed to the fixing member, and the other end of the limiting component moves unidirectionally within the second track. When the other end of the limiting member is located at the first limiting portion, the limiting member limits the slider to the first limiting position; when the other end of the limiting member is located at the second limiting portion, the limiting member limits the slider to the second limiting position.
6. The mounting assembly according to claim 5, characterized in that, The second track further includes a first transition section, wherein when the other end of the limiting member is located at the first transition section, the slider is in the first transition position, the elastic member is in its maximum deformation state, and / or The second track further includes a second transition section. When the other end of the limiting member is located at the second transition section, the slider is in the second transition position, and the elastic member is in its maximum deformation state. The second track has a stepped surface formed on the side of the first limiting part, the first transition part, the second limiting part, and the second transition part opposite to the direction of unidirectional movement.
7. The mounting assembly according to claim 5 or 6, characterized in that, The limiting component is a limiting spring.
8. The mounting assembly according to any one of claims 1 to 6, characterized in that, The elastic component is a drive spring, one end of which is fixed to the first surface of the fixing member, and the other end of which is connected to the slider and located away from the first surface of the fixing member. When the drive spring is in its minimum deformation state, the slider is in either the first or second limit position. The minimum deformation state is the state in which the other end of the drive spring is furthest from the first surface.
9. The mounting assembly according to any one of claims 1 to 6, characterized in that, The slider includes a first slider and a second slider, which move in opposite directions relative to the fixing member to clamp or release the guide rail. The elastic component includes a first elastic component and a second elastic component, which are disposed between the first slider and the second slider. One end of the first elastic component is fixed relative to the fixing member, and the other end of the first elastic component is connected to the first slider. One end of the second elastic component is fixed relative to the fixing member, and the other end of the second elastic component is connected to the second slider. Under the action of external force, the first elastic component and the second elastic component can drive the first slider and the second slider to move in opposite directions. The first elastic component and the second elastic component can drive the first slider and the second slider to move in opposite directions through elastic restoring force.
10. The mounting assembly according to claim 9, characterized in that, The number of the first elastic component and the number of the second elastic component are both two. The two first elastic components and the two second elastic components are disposed in the space between the first slider and the second slider. One of the first elastic components and one of the second elastic components are disposed on one side of the space in a first direction, and the other of the first elastic component and the other of the second elastic component are disposed on the other side of the space in the first direction. The first direction is perpendicular to the arrangement direction of the first slider and the second slider.
11. The mounting assembly according to claim 9, characterized in that, The elastic component further includes a rebound component, which comprises a first rebound component and a second rebound component. One end of the first spring-loaded component is fixed to the fixing member, and the other end of the first spring-loaded component is fixed to the first slider. One end of the second spring-loaded component is fixed to the fixing member, and the other end of the second spring-loaded component is fixed to the second slider. Under the action of the first and second spring-back components, the first and second sliders move in opposite directions.
12. The mounting assembly according to claim 11, characterized in that, The rebound component is an S-shaped spring.
13. An electrical product, characterized in that, The electrical products include: The mounting assembly as described in any one of claims 1 to 12; and An electrical unit, which is fixed to the fastener.