Connection assembly

By designing a guide structure and blocking cavity in the injection mold slider, the problem of inconvenient assembly and disassembly of the first intermediate part is solved, enabling convenient maintenance within the mold and improving maintenance efficiency.

CN224311079UActive Publication Date: 2026-06-02NINGBO PREH JOYSON AUTOMOTIVE ELECTRONICS

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NINGBO PREH JOYSON AUTOMOTIVE ELECTRONICS
Filing Date
2025-06-17
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

The first intermediate component of the existing injection mold slider is inconvenient to install and remove in the first connector, especially in the compact mold space where maintenance and repair are difficult.

Method used

A connecting component is designed, including a first connector, a first intermediate component, a first guide component, and a first blocking component. By setting a first guide structure, a second guide structure, a first blocking cavity, and a second blocking cavity, the first intermediate component is slidably connected and limited within the first connector, facilitating its movement in the second direction.

Benefits of technology

Without removing the first connecting component, the guide structure and blocking cavity work together to facilitate the assembly and disassembly of the first intermediate component, thereby improving the maintenance efficiency of the mold.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224311079U_ABST
    Figure CN224311079U_ABST
Patent Text Reader

Abstract

This application relates to the field of mold manufacturing technology and discloses a connecting assembly. The connecting assembly includes a first blocking member, comprising a first blocking cavity and a second blocking cavity. The first blocking cavity is disposed within a first intermediate member along a second direction and is used to divide a first guide structure into a first guide segment and a second guide segment. The second blocking cavity is disposed within a first connecting member along the second direction and communicates with a first receiving cavity. The second blocking cavity is used to divide a second guide structure into a third guide segment and a fourth guide segment. When the first intermediate member moves within the first receiving cavity along the first direction, if the first guide segment is outside the first receiving cavity, the second guide segment is inside the second blocking cavity, facilitating the movement of the first intermediate member along the second direction. This provides a connecting assembly for easy assembly and disassembly of the first intermediate member.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of mold manufacturing technology, and in particular to a connecting component. Background Technology

[0002] Injection mold sliders are used to control the opening and closing of the mold and the demolding of plastic parts. They can ensure that the plastic parts are demolded smoothly, avoid interference between the product and the mold, and facilitate mold modification and upgrading.

[0003] The existing injection mold slider includes a first connector and a second connector. The first connector is connected to the lower mold, and the second connector is connected to the upper mold. A first receiving cavity is provided in the first connector along a first direction. The injection mold slider also includes a first intermediate component, which is disposed in the first receiving cavity along the first direction. A first guide component is provided between the first intermediate component and the first connector to form a sliding connection between the first intermediate component and the first connector along the first direction. The second connector interacts with the first intermediate component during movement along a second direction to form the opening and closing of the injection module or the demolding of the plastic part.

[0004] Furthermore, the injection mold slider needs to be maintained and repaired during use. Specifically, the first intermediate part needs to be removed from the first connector along the first direction during maintenance and repair. However, due to the compact space inside the injection mold, other components are provided on both sides of the first receiving cavity along the first direction. The first intermediate part can only be removed from the lower mold after the entire first connector is removed from the lower mold, which leads to the problem of inconvenience in assembling and disassembling the first intermediate part. Utility Model Content

[0005] This application primarily addresses the technical problem of inconvenient assembly and disassembly of the first intermediate component in the first connector, as found in existing technologies. It provides a connector assembly that facilitates the assembly and disassembly of the first intermediate component.

[0006] To address the aforementioned technical problems, this application provides a connection component, characterized in that the connection component comprises,

[0007] A first connector has a first receiving cavity disposed within it along a first direction. The first receiving cavity has first openings on both sides along the first direction, and a second opening on one side along a second direction.

[0008] A first intermediate component is disposed within the first receiving cavity along the first direction, and the first intermediate component is slidably connected to the first connecting component along the first direction via a first guide component; wherein...

[0009] The first guide member includes a first guide structure and a second guide structure that are configured to cooperate with each other. The first guide structure is disposed on the first intermediate member, and the second guide structure is disposed on the first connecting member.

[0010] The first blocking member includes a first blocking cavity and a second blocking cavity. The first blocking cavity is disposed within the first intermediate member along a second direction. The first blocking cavity is used to divide the first guide structure into a first guide segment and a second guide segment. The second blocking cavity is disposed within the first connector along the second direction. The second blocking cavity is connected to the first receiving cavity. The second blocking cavity is used to divide the second guide structure into a third guide segment and a fourth guide segment. When the first intermediate member moves within the first receiving cavity along the first direction, when the first guide segment is outside the first receiving cavity, the second guide segment is inside the second blocking cavity, so as to facilitate the movement of the first intermediate member along the second direction.

[0011] In one possible implementation, the connection component further includes,

[0012] The second connector includes a connecting portion and a guide portion arranged sequentially along the second direction. The guide portion can be located within the first blocking cavity. As the second connector moves along the second direction, the guide portion interacts with the first intermediate component to drive the first intermediate component to move along the first direction within the first receiving cavity.

[0013] In one embodiment, a first abutting surface is formed between the connecting portion and the guiding portion. When the second connecting member moves along the second direction toward the first connecting member and the first abutting surface abuts against the upper surface of the first connecting member along the second direction, the first intermediate portion abuts against other components located outside the first receiving cavity to form a connected state of the connecting assembly. When the second connecting member moves along the second direction away from the first connecting member and the second connecting member is completely detached from the first blocking cavity, a disengaged state of the connecting assembly is formed.

[0014] In one embodiment, a first angle is formed between the guide portion and the first abutting surface, and a second angle is formed between the first blocking cavity and the upper surface of the first connector along the second direction, wherein the first angle is equal to the second angle.

[0015] In one possible implementation, the connection component further includes,

[0016] The first positioning component includes a first positioning structure and a second positioning structure that are configured to cooperate. The first positioning structure is disposed on the first connecting component, and the second positioning structure is disposed on the first intermediate component. When the connecting components are in a connected state, the first positioning structure is located outside the second positioning structure. When the connecting components are in a disengaged state, the first positioning structure is located inside the second positioning structure.

[0017] In one embodiment, the second positioning structure is a positioning hole, which is disposed on one side of the first intermediate member along the second direction. A connecting hole is disposed inside the first connector along the second direction. The connecting hole is correspondingly disposed to the second positioning structure and communicates with the first receiving cavity. The first positioning structure is located inside the connecting hole. The first positioning structure includes a connecting shell, a first elastic element, and a first limiting ball. The connecting shell is sequentially filled with the first elastic element and the first limiting ball. The first elastic element abuts against the first limiting ball to always drive the first limiting ball to move toward the first intermediate member.

[0018] In one possible implementation, the connection component further includes,

[0019] The first connection position is located within the first connector along the first direction. The first connection position communicates with the first receiving cavity, and the first connection position can be configured to correspond with the first blocking cavity as the first intermediate member moves along the first direction.

[0020] In one possible implementation, the connection component further includes,

[0021] The second connection point is disposed on the connection portion along the first direction.

[0022] In one embodiment, the first blocking cavity is located on one side of the first intermediate component along a third direction, and the first blocking cavity is in communication with the second blocking cavity when the connecting component is in a connected or disconnected state.

[0023] Compared to the prior art, the connection component of this application is further provided with a first blocking member. The first blocking member includes a first blocking cavity and a second blocking cavity. The first blocking cavity is disposed in the first intermediate member along the second direction. The first blocking cavity is used to divide the first guide structure into a first guide part and a second guide part. The second blocking cavity is disposed in the first connector along the second direction. The second blocking cavity is connected to the first receiving cavity. The second blocking cavity is used to divide the second guide structure into a third guide part and a fourth guide part. The first blocking cavity and the second blocking cavity are correspondingly disposed. When the first intermediate member moves in the first receiving cavity along the first direction, when the first guide part is outside the first receiving cavity, the second guide part is inside the second blocking cavity. This allows the first guide part and the second guide part to be unrestricted by the second guide structure in the second direction, so as to facilitate the movement of the first intermediate member along the second direction and further realize the disengagement between the first intermediate member and the first connector. Attached Figure Description

[0024] Appendix Figure 1 This is a schematic diagram of a connecting component in the prior art of this application;

[0025] Appendix Figure 2 This is a schematic diagram of one structure of the connecting component of this application;

[0026] Appendix Figure 3 This is a schematic diagram of one possible structure of the first connector in this application;

[0027] Appendix Figure 4 This is a schematic diagram of the connection component of this application in a connected state;

[0028] Appendix Figure 5 This is another structural diagram of the connection component in the connected state of this application;

[0029] Appendix Figure 6 This is a schematic diagram of the connection component of this application in a disengaged state;

[0030] Appendix Figure 7 This is another structural diagram of the connecting component in the disengaged state of this application;

[0031] Appendix Figure 8 This is a schematic diagram of the connection component in the detached state of this application.

[0032] X, first direction; Y, second direction; Z, third direction;

[0033] 10. Connecting components;

[0034] 100, First connector; 110, First receiving cavity; 120, First opening; 130, Second opening; 140, Connecting hole;

[0035] 200. First intermediate component; 210. Drive cavity;

[0036] 300. First guide component; 310. First guide structure; 311. First guide component; 312. Second guide component; 320. Second guide structure; 321. Third guide component; 322. Fourth guide component;

[0037] 400. First blocking element; 410. First blocking cavity; 420. Second blocking cavity;

[0038] 500, Second connector; 510, Connecting part; 520, Guide part; 530, First abutting surface;

[0039] 600. First positioning component; 610. First positioning structure; 611. First limiting ball; 620. Second positioning structure;

[0040] 700, First connection bit;

[0041] 800, Second connection bit. Detailed Implementation

[0042] To make the objectives, features, and advantages of this application more apparent and understandable, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0043] The existing technology has the technical problem that the first intermediate component is inconvenient to install and disassemble in the first connector.

[0044] Therefore, this application provides a connection component, wherein the connection component includes,

[0045] A first connector has a first receiving cavity disposed within it along a first direction. The first receiving cavity has first openings on both sides along the first direction, and a second opening on one side along a second direction.

[0046] A first intermediate component is disposed within the first receiving cavity along the first direction, and the first intermediate component is slidably connected to the first connecting component along the first direction via a first guide component; wherein...

[0047] The first guide member includes a first guide structure and a second guide structure that are configured to cooperate with each other. The first guide structure is disposed on the first intermediate member, and the second guide structure is disposed on the first connecting member.

[0048] The first blocking member includes a first blocking cavity and a second blocking cavity. The first blocking cavity is disposed within the first intermediate member along a second direction. The first blocking cavity is used to divide the first guide structure into a first guide segment and a second guide segment. The second blocking cavity is disposed within the first connector along the second direction. The second blocking cavity is connected to the first receiving cavity. The second blocking cavity is used to divide the second guide structure into a third guide segment and a fourth guide segment. When the first intermediate member moves within the first receiving cavity along the first direction, when the first guide segment is outside the first receiving cavity, the second guide segment is inside the second blocking cavity, so as to facilitate the movement of the first intermediate member along the second direction.

[0049] Example 1:

[0050] Please refer to the attached document. Figure 1 The diagram shows a connection component 10 in the prior art. The connection component 10 in the prior art includes a first connector 100, which is connected to the lower mold. A first opening 120 is provided on both sides of the first receiving cavity 110 along the first direction X, and a second opening 130 is provided on one side of the first receiving cavity 110 along the second direction Y. The connecting component 10 in the prior art also includes a first intermediate component 200. The first intermediate component 200 is disposed in the first receiving cavity 110 along the first direction X. The first intermediate component 200 slides along the first direction X with the first connecting component 100 via the first guide 300. The first guide 300 also limits the first intermediate component 200 in the second direction Y. Due to the first receiving cavity 110, the first intermediate component 200 is also limited in the third direction Z. Therefore, the first intermediate component 200 in the prior art can only move along the first direction X. However, after the connecting component 10 is installed in the mold, other components are disposed on both sides of the first connecting component 100 along the first direction X. Therefore, when the first intermediate component 200 moves along the first direction X, it will come into contact with other components, forming an obstruction on the first intermediate component 200 in the first direction X. Therefore, after the connecting component 10 is installed in the mold, the first intermediate component 200 cannot be installed or removed. When installation or removal is required, the first connecting component 100 must be removed from the lower mold before the first intermediate component 200 can be further removed.

[0051] The connection component 10 in the prior art also includes a second connector 500. The second connector 500 includes a connecting portion 510 and a guide portion 520 arranged sequentially along the second direction Y. The guide portion 520 can be located in the driving cavity 210 of the first intermediate member 200. When the second connector 500 moves along the second direction Y, the guide portion 520 interacts with the first intermediate member 200 to drive the first intermediate member 200 to move along the first direction X in the first receiving cavity 110.

[0052] Please refer to the attached document. Figure 2 To be continued Figure 8 As shown, the first direction X of this application refers to the length direction of the connecting component 10, that is, the direction of the connecting component 10 from left to right or from right to left. The first guide segment 311 is positioned to the left of the second guide segment 312, and the second guide segment 312 is positioned to the right of the first guide segment 311. The second direction Y of this application refers to the height direction of the connecting component 10, that is, the direction of the connecting component 10 from top to bottom or from bottom to top. The first connector 100 is positioned lower than the second connector 500, and the second connector 500 is positioned higher than the first connector 100. The third direction Z of this application refers to the width direction of the connecting component 10, that is, the direction of the connecting component 10 from front to back or from back to front.

[0053] Appendix Figure 2 This is a schematic diagram of one structure of the connecting component 10 of this application. Please refer to the attached diagram. Figure 2 As shown, the connecting component 10 of this application includes a first connecting member 100, which is connected to the lower mold. The first connecting member 100 is further provided with a first connecting position 700, which is a connecting hole 140. The lower mold is fixedly connected to the first connecting position 700 by bolts. A first receiving cavity 110 is provided inside the first connecting member 100 along a first direction X. The first receiving cavity 110 penetrates the first connecting member 100 along the first direction X. First openings 120 are simultaneously formed on both sides of the first receiving cavity 110 along the first direction X. The first receiving cavity 110 extends upward along a second direction Y, forming a second opening 130 located on one side of the first receiving cavity 110 along the second direction Y.

[0054] Please refer to the attached document. Figure 2 As shown, the connecting component 10 of this application also includes a first intermediate component 200. The first intermediate component 200 is disposed in the first receiving cavity 110 along the first direction X. The first intermediate component 200 is an elongated structure disposed along the first direction X. The first intermediate component 200 is slidably connected to the first connecting component 100 along the first direction X through the first guide 300. The first guide 300 is provided so that the first intermediate component 200 can move smoothly along the first direction X within the first receiving cavity 110.

[0055] The first guide member 300 includes a first guide structure 310 and a second guide structure 320 that are configured to cooperate with each other. The first guide structure 310 is one of a guide groove and a guide protrusion, and the second guide structure 320 is the other of a guide groove and a guide protrusion. The first guide structure 310 is disposed on the first intermediate member 200, and the second guide structure 320 is disposed on the first connector 100.

[0056] In one embodiment, the first guide structure 310 is a guide groove, and the second guide structure 320 is a guide protrusion.

[0057] Please refer to the attached document. Figure 2 As shown, the connection component 10 of this application further includes a first blocking member 400, which includes a first blocking cavity 410 and a second blocking cavity 420. The first blocking cavity 410 is disposed within the first intermediate member 200 along the second direction Y. The first blocking cavity 410 is used to divide the first guide member 300 into a first guide segment 311 and a second guide segment 312, that is, the first guide segment 311 and the second guide segment 312 are respectively disposed on both sides of the first blocking cavity 410 along the first direction X. The specific structure of the second blocking cavity 420 will be further described in the following figures. Furthermore, the first blocking cavity 410 is disposed on one side of the first intermediate member 200 along the third direction Z, and the first blocking cavity 410 and the second blocking cavity 420 are correspondingly disposed.

[0058] Please refer to the attached document. Figure 3 As shown, the connecting assembly 10 of this application further includes a second connecting member 500, which is connected to the upper mold. Further, the second connecting member 500 is provided with a second connecting position 800, which is a connecting hole 140. The upper mold is fixedly connected to the second connecting position 800 by bolts. The second connecting member 500 includes a connecting portion 510 and a guiding portion 520 arranged sequentially along the second direction Y. The connecting portion 510 is connected to the guiding portion 520. The second connecting member 500 can move along the second direction Y, and the guiding portion 520 can be located within the first blocking cavity 410. As the second connecting member 500 moves along the second direction Y, the guiding portion 520 interacts with the first intermediate member 200 to drive the first intermediate member 200 to move along the first direction X within the first receiving cavity 110, thus forming a connected state and a disconnected state of the connecting assembly 10.

[0059] Furthermore, a first abutting surface 530 is formed between the connecting portion 510 and the guiding portion 520. The first abutting surface 530 is the intersecting surface between the guiding portion 520 and the connecting portion 510. When the second connecting member 500 moves along the second direction Y toward the first connecting member 100, and the first abutting surface 530 abuts against the upper surface of the first connecting member 100 along the second direction Y, the first middle portion abuts against other components located outside the first receiving cavity 110, thereby forming a limit between the first connecting member 100 and the second connecting member 500 along the first direction X. At this time, the second connecting member 500 cannot continue to move in the second direction Y, thus forming the connected state of the connecting assembly 10. At this time, the mold is in the closed state. When the second connecting member 500 moves along the second direction Y away from the first connecting member 100, and the second connecting member 500 is completely separated from the first blocking cavity 410, the disconnected state of the connecting assembly 10 is formed. At this time, the mold is in the open state.

[0060] In one embodiment, a first included angle is formed between the guide portion 520 and the first abutting surface 530, and a second included angle is formed between the first blocking cavity 410 and the upper surface of the first connector 100 along the second direction Y. The first included angle is equal to the second included angle, so as to facilitate the mating connection between the guide portion 520 and the first blocking cavity 410.

[0061] Appendix Figure 3 This is a structural schematic diagram of the first connector 100 of this application. Please refer to the attached diagram. Figure 3 As shown, the second blocking cavity 420 is further described. For a more detailed description of the second blocking cavity 420, see attached... Figure 3 The first connecting member 100 cuts off a portion of the structure. A second blocking cavity 420 is disposed within the first connecting member 100 along the second direction Y. The second blocking cavity 420 communicates with the first receiving cavity 110 and is located on one side of the first receiving cavity 110 along the third direction Z. The second blocking cavity 420 corresponds to the first blocking cavity 410. The second blocking cavity 420 is used to divide the second guiding structure 320 into a third guiding component 321 and a fourth guiding component 322, that is, the third guiding component 321 and the fourth guiding component 322 are respectively disposed on both sides of the second blocking cavity 420 along the first direction X.

[0062] In one embodiment, the length of the second blocking cavity 420 in the first direction X is longer than the length of the second guide segment 312 in the first direction X.

[0063] Please refer to the attached document. Figure 3 As shown, the connecting component 10 of this application also includes a first positioning member 600, which is configured to facilitate the positioning of the first intermediate member 200 and the first connecting member 100 in the first direction X.

[0064] Appendix Figure 4 This is a schematic diagram of the connection component 10 in the connected state. Please refer to the attached diagram. Figure 4 As shown, the guide portion 520 of the second connector 500 enters the first blocking cavity 410 along the second direction Y, and as the second connector 500 moves along the second direction Y and approaches the first connector 100, the first intermediate member 200 moves along the first direction X, while the attached... Figure 4 The first intermediate part 200 moves to the right until the first abutting surface 530 abuts against the upper surface of the first connector 100 along the first direction X, and the first intermediate part abuts against other parts located outside the first receiving cavity 110 to form the connection state of the connecting assembly 10. At this time, the second connector 500 cannot continue to move along the second direction Y, and due to the presence of the first receiving cavity 110, the second connector 500 cannot move along the three cavities at the same time, thereby forming a locking of the relative position between the upper mold and the lower mold.

[0065] Furthermore, when the connection assembly 10 is in the connected state, the first blocking cavity 410 is connected to the second blocking cavity 420.

[0066] Appendix Figure 5 This is another structural schematic diagram of the connecting component 10 in the connected state. Please refer to the attached diagram. Figure 5 As shown, attached Figure 5 This is to further explain the relative positional relationship between the first positioning members 600 when the connecting assembly 10 is in the connected state. Please refer to the appendix. Figure 5 As shown, the first positioning member 600 of this application includes a first positioning structure 610 and a second positioning structure 620. The first positioning structure 610 is disposed on the first connector 100, and the second positioning structure 620 is disposed on the first intermediate member 200. When the connecting component 10 is in a connected state, the first positioning structure 610 is located outside the second positioning structure 620.

[0067] Furthermore, the second positioning structure 620 is a positioning hole, which is disposed on one side of the first intermediate member 200 along the second direction Y. A connecting hole 140 is disposed inside the first connecting member 100 along the second direction Y. The connecting hole 140 corresponds to the second positioning structure 620 and communicates with the first receiving cavity 110. The first positioning structure 610 is located inside the connecting hole 140. Alternatively, the second positioning structure 620 can be disposed on the first connecting member 100, and the first positioning structure 610 can be disposed on the first intermediate member 200.

[0068] In one embodiment, the second positioning structure 620 is disposed at the bottom of the first intermediate member 200 along the second direction Y.

[0069] In one embodiment, the first connecting structure includes a connecting shell, a first elastic element, and a first limiting ball 611, with the connecting shell sequentially filled with the first elastic element and the first limiting ball 611. The first elastic element abuts against the first limiting ball 611 to continuously drive the first limiting ball 611 to move toward the first intermediate member 200.

[0070] Appendix Figure 6 This is a schematic diagram of the connection component 10 in the detached state. Please refer to the attached diagram. Figure 6 As shown, the guide portion 520 of the second connector 500 of this application moves out of the first blocking cavity 410 along the second direction Y, and during the process of the second connector 500 moving along the second direction Y and away from the first connector 100, the first intermediate member 200 moves along the first direction X, while the attached... Figure 6 The first intermediate component 200 moves to the left until the second connector 500 is completely disengaged from the first blocking cavity 410, so as to form the disengaged state of the connecting component 10. Due to the presence of the first positioning component 600, the second intermediate component cannot continue to move along the first direction X, and the relative position between the upper mold and the lower mold is unlocked.

[0071] Furthermore, when the connection assembly 10 is in the connected state, the first blocking cavity 410 is connected to the second blocking cavity 420.

[0072] Appendix Figure 7 This is another structural schematic diagram of the connecting component 10 in the detached state. Please refer to the attached diagram. Figure 7 As shown, attached Figure 7 This is to further explain the relative positional relationship between the first positioning members 600 when the connecting assembly 10 is in the disengaged state. Furthermore, when the connecting assembly 10 is in the disengaged state, the first positioning structure 610 is located within the second positioning structure 620 to lock the relative position of the first intermediate member 200 and the first connecting member 100 in the first direction X, so as to prevent the first intermediate member 200 from moving further.

[0073] Appendix Figure 8 This is a schematic diagram of the connection component 10 in the detached state. Please refer to the attached diagram. Figure 8As shown, after the connecting assembly 10 is in a disengaged state, when the first intermediate component 200 moves within the first receiving cavity 110 along the first direction X, and the first guide segment 311 is located outside the first receiving cavity 110, the second guide segment 312 is simultaneously located within the second blocking cavity 420. This ensures that neither the first guide segment 311 nor the second guide segment 312 is restricted by the second guide structure 320 in the second direction Y, facilitating the movement of the first intermediate component 200 along the second direction Y and further enabling the disengagement of the first intermediate component 200 from the first connecting component 100. The distance by which the first guide segment 311 extends beyond the first receiving cavity 110 is generally 5cm-10cm. Therefore, by utilizing the limited space between the connecting assembly 10 and the mold, the first intermediate component 200 can be removed without dismantling the first connecting component 100. In the prior art, if the first connecting member 100 is not removed, the first intermediate member 200 needs to be moved along the first direction X until it is completely separated from the first connecting member 100. This method requires a large amount of space between the connecting component 10 and the mold, and the existing assembly method between the connecting component 10 and the mold does not support this removal method.

[0074] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of those different embodiments or examples.

[0075] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, "a plurality of" means two or more, unless otherwise explicitly specified.

[0076] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

Claims

1. A connection assembly, characterized in that The connection component includes, A first connector has a first receiving cavity disposed within it along a first direction. The first receiving cavity has first openings on both sides along the first direction, and a second opening on one side along a second direction. A first intermediate component is disposed within the first receiving cavity along the first direction, and the first intermediate component is slidably connected to the first connecting component along the first direction via a first guide component; wherein... The first guide member includes a first guide structure and a second guide structure that are configured to cooperate with each other. The first guide structure is disposed on the first intermediate member, and the second guide structure is disposed on the first connecting member. The first blocking member includes a first blocking cavity and a second blocking cavity. The first blocking cavity is disposed within the first intermediate member along a second direction. The first blocking cavity is used to divide the first guide structure into a first guide segment and a second guide segment. The second blocking cavity is disposed within the first connector along the second direction. The second blocking cavity is connected to the first receiving cavity. The second blocking cavity is used to divide the second guide structure into a third guide segment and a fourth guide segment. When the first intermediate member moves within the first receiving cavity along the first direction, when the first guide segment is outside the first receiving cavity, the second guide segment is inside the second blocking cavity, so as to facilitate the movement of the first intermediate member along the second direction.

2. The connection assembly of claim 1, wherein, The connection component also includes, The second connector includes a connecting portion and a guide portion arranged sequentially along the second direction. The guide portion can be located within the first blocking cavity. As the second connector moves along the second direction, the guide portion interacts with the first intermediate component to drive the first intermediate component to move along the first direction within the first receiving cavity.

3. The connection assembly of claim 2, wherein, A first abutting surface is formed between the connecting portion and the guiding portion. When the second connecting member moves along the second direction toward the first connecting member and the first abutting surface abuts against the upper surface of the first connecting member along the second direction, the first middle portion abuts against other components located outside the first receiving cavity to form a connected state of the connecting assembly. When the second connecting member moves along the second direction away from the first connecting member and the second connecting member is completely detached from the first blocking cavity, a disengaged state of the connecting assembly is formed.

4. The connecting component according to claim 3, characterized in that, The guide portion forms a first angle with the first contact surface, and the first blocking cavity forms a second angle with the upper surface of the first connector along the second direction. The first angle is equal to the second angle.

5. The connecting component according to claim 3, characterized in that, The connection component also includes, The first positioning component includes a first positioning structure and a second positioning structure that are configured to cooperate. The first positioning structure is disposed on the first connecting component, and the second positioning structure is disposed on the first intermediate component. When the connecting components are in a connected state, the first positioning structure is located outside the second positioning structure. When the connecting components are in a disengaged state, the first positioning structure is located inside the second positioning structure.

6. The connecting component according to claim 5, characterized in that, The second positioning structure is a positioning hole, which is disposed on one side of the first intermediate member along the second direction. The first connector has a connecting hole disposed in the first connector along the second direction. The connecting hole is disposed corresponding to the second positioning structure and communicates with the first receiving cavity. The first positioning structure is located in the connecting hole. The first positioning structure includes a connecting shell, a first elastic element, and a first limiting ball. The connecting shell is sequentially filled with the first elastic element and the first limiting ball. The first elastic element abuts against the first limiting ball to always drive the first limiting ball to move toward the first intermediate member.

7. The connecting component according to claim 2, characterized in that, The connection component also includes, The first connection position is located within the first connector along the first direction. The first connection position communicates with the first receiving cavity, and the first connection position can be configured to correspond with the first blocking cavity as the first intermediate member moves along the first direction.

8. The connecting component according to claim 2, characterized in that, The connection component also includes, The second connection point is disposed on the connection portion along the first direction.

9. The connection component according to claim 3, characterized in that, The first blocking cavity is located on one side of the first intermediate component along a third direction, and the first blocking cavity is in communication with the second blocking cavity when the connecting component is in a connected or disconnected state.