Shunting assembly

By designing the diverting assembly of the base and swingable diverting plate, the problem of diversion of the silk cake tray on the drum assembly line is solved, convenient diverting and remote monitoring of the silk cake is achieved, and the applicability and automation level of the diverting assembly is improved.

CN223162660UActive Publication Date: 2025-07-29BEIJING CHONGLEE MACHINERY ENG +2
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Patent Information

Application Number
CN202421919597.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-08
Publication Date
2025-07-29
Estimated Expiration
2034-08-08

AI Technical Summary

Technical Problem

In the prior art, the silk cake tray diverting mechanism is difficult to adapt to the drum assembly line, resulting in difficulty in diversion of silk cake and lack of online monitoring and remote monitoring equipment.

Method used

A shunt assembly is designed, including a base and a swingable shunt plate, which realizes shunt of the silk cake by rotating connection, and is equipped with telescopic parts and nylon guide strips to improve shunt convenience, and integrated monitoring controls enable remote monitoring.

Benefits of technology

The convenient diversion of silk cakes on the drum assembly line is achieved, the convenience and automation of diversion are improved, manual intervention is reduced, and the applicability and stability of the system is enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a shunting assembly. The shunting assembly is used for shunting spinning cakes on an assembly line. The flow dividing assembly comprises a base and a flow dividing plate, the base is installed on the assembly line, the flow dividing plate is connected to the base in a swinging mode, the flow dividing plate is provided with two edges to divide the assembly line into two conveying channels, and the flow dividing plate is swung to control spinning cakes on the assembly line to pass through one conveying channel. Through the rotary connection between the splitter plate and the base on the assembly line, the splitting of the spinning cakes on the assembly line can be realized, and the convenience of the splitting of the spinning cakes can be improved.
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Description

Technical Field

[0001] This application belongs to the technical field of cake production, and specifically relates to a shunt component for shunting cakes on an assembly line. Background Art

[0002] In an intelligent chemical fiber cake production line, defective or cakes with different size specifications need to be shunted according to requirements.

[0003] In related technologies, the transportation of cakes on the assembly line uses a cake tray as a carrier, and it is difficult for the shunt mechanism for shunting the cake tray to adapt to the roller assembly line, resulting in difficulties in shunting the cakes. Summary of the Invention

[0004] To solve the technical problem that the shunt mechanism for shunting the cake tray in related technologies is difficult to adapt to the roller assembly line, resulting in difficulties in shunting the cakes, this application provides a shunt component for shunting cakes on an assembly line. The shunt component includes:

[0005] A base, installed on the assembly line;

[0006] A shunt plate, swingably connected to the base. The shunt plate is configured with two side portions to divide the assembly line into two conveying channels. By swinging the shunt plate, it is possible to control the cake on the assembly line to pass through one of the conveying channels.

[0007] In some embodiments, the shunt component further includes:

[0008] A telescopic member, with both ends of the telescopic member rotatably connected to the base and the shunt plate respectively.

[0009] In some embodiments, the two side portions intersect, the shunt plate is connected to the base through a first rotating shaft, the telescopic member is connected to the shunt plate through a second rotating shaft, and the second rotating shaft is arranged between the first rotating shaft and one of the side portions.

[0010] In some embodiments, the second rotating shaft is located on the bisector between the two side portions on the shunt plate.

[0011] In some embodiments, the shunt component further includes:

[0012] A fixed seat, installed on the base, and the fixed end of the telescopic member is rotatably connected to the fixed seat.

[0013] In some embodiments, a first transfer hole is provided at the position of the first connection point on the shunt plate, and the shunt component further includes:

[0014] A first flange seat, installed on the base, and the side away from the base is configured with a plug-in slot;

[0015] The first rotating shaft is inserted into the insertion slot and fixedly connected to the first flange seat, and the first rotating shaft movably passes through the first transfer hole.

[0016] In some embodiments, the flow splitting assembly further includes:

[0017] The first flange bearing seat and the second flange bearing seat are respectively installed on the flow splitting plate, are disposed on both sides of the flow splitting plate and correspond to the first transfer hole;

[0018] The first bearing hole of the first flange bearing seat and the second bearing hole of the second flange bearing seat are respectively communicated with the first transfer hole, and the first rotating shaft sequentially passes through the first bearing hole, the first transfer hole and the second bearing hole.

[0019] In some embodiments, the flow splitting assembly further includes:

[0020] A monitoring member is installed on a side of the first rotating shaft away from the first flange seat.

[0021] In some embodiments, a second transfer hole is formed at the position of the second connection point on the flow splitting plate, and the flow splitting assembly further includes:

[0022] The second flange seat is installed on the flow splitting plate and is configured with an insertion hole corresponding to and communicating with the second transfer hole;

[0023] The second rotating shaft is sequentially and movably inserted into the insertion hole and the second transfer hole, and the telescopic end of the telescopic member is rotatably connected to the second rotating shaft.

[0024] In some embodiments, the flow splitting assembly further includes:

[0025] The first nylon guide strip and the second nylon guide strip are respectively detachably installed on the first side portion and the second side portion.

[0026] According to the flow splitting assembly provided by one or more embodiments of the present application, the flow splitting assembly is used for splitting the silk cakes on the production line. The flow splitting assembly includes a base and a flow splitting plate. The base is installed on the production line, and the flow splitting plate is swingably connected to the base. The flow splitting plate is configured with two side portions to divide the production line into two conveying channels. By swinging the flow splitting plate, it is possible to control the silk cakes on the production line to pass through one of the conveying channels. Through the rotational connection between the flow splitting plate and the base on the production line, the splitting of the silk cakes on the production line can be realized, and the convenience of silk cake splitting can be improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 is a schematic structural diagram of the flow splitting assembly in one or more embodiments of the present application;

[0028] Figure 2 Explosion schematic diagram of the flow splitting component in one or more embodiments of the present application;

[0029] Figure 3 Schematic structural diagram of the flow splitting component cooperating with the assembly line and the bobbin tray in one or more embodiments of the present application.

[0030] Explanation of reference numerals:

[0031] 100, bobbin tray;

[0032] 300, flow splitting component; 310, base; 311, first flange seat; 312, first rotating shaft; 313, second rotating shaft; 315, insertion slot;

[0033] 320, flow splitting plate; 321, first side; 322, second side; 325, first transfer hole; 326, second transfer hole; 327, first flange bearing seat; 328, second flange bearing seat; 329, second flange seat; 330, telescopic member;

[0034] 340, fixing seat; 350, first nylon guide strip; 352, first mounting plate; 360, monitoring member;

[0035] 500, assembly line; 510, blocking section; 520, flow splitting section; 521, first flow splitting row; 522, second flow splitting row; 530, central separation base frame; Detailed implementation manners

[0036] In order to enable those skilled in the art in the technical field to which the present application belongs to understand the present application more clearly, the technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present application.

[0037] In an intelligent chemical fiber bobbin production assembly line, it is necessary to split defective or differently sized bobbins according to requirements. In the related art, the bobbins on the assembly line are transported with the bobbin tray as the carrier, and it is difficult for the flow splitting mechanism for the bobbin tray to adapt to the roller assembly line, resulting in difficulties in splitting the bobbins. The flow splitting mechanism also lacks on-line monitoring and monitoring equipment and cannot remotely monitor the operation of the roller assembly line.

[0038] To solve the above problems, please refer to Figures 1 to 3, this application provides a shunt component 300 for shunting the silk cakes on the assembly line 500. The assembly line 500 includes a blocking section 510 and a shunting section 520. The blocking section 510 and the shunting section 520 are respectively powered drum-type assembly lines 500. The blocking section 510 is of single width and can allow a single row of silk cake trays 100 to pass through. The shunting section 520 is of double width. The central dividing base frame 530 is installed on the central axis of the shunting section 520, dividing the shunting section 520 of the assembly line 500 into two columns, including a first shunting column 521 and a second shunting column 522. The silk cake tray 100 is placed at the entrance of the blocking section 510 of the assembly line 500, and the silk cake tray 100 moves to the shunt component 300 by means of the driving force of the assembly line 500.

[0039] The shunt component 300 includes a base 310 and a shunt plate 320. The base 310 is installed on the assembly line 500. The shunt plate 320 is swingably connected to the base 310. The shunt plate 320 is configured with two side parts to divide the assembly line 500 into two conveying channels. By swinging the shunt plate 320, it is possible to control the silk cake tray 100 on the assembly line 500 to pass through one of the conveying channels. The base 310 is installed on the assembly line 500 as an installation foundation. The shunt plate 320 is swingably connected to the base 310. The two side parts of the shunt plate 320 are configured as an intersecting first side part 321 and a second side part 322. The first connection point (not shown in the figure) between the shunt plate 320 and the base 310 is located between the first side part 321 and the second side part 322.

[0040] By rotating the shunt plate 320, the first side part 321 contacts the silk cake tray 100, causing the silk cake tray 100 to pass between the first side part 321 and one side part (the second shunting column 522) of the assembly line 500 along the conveying direction, and shunting the defective or non-uniformly sized silk cakes to the corresponding area of the assembly line 500. While blocking the silk cake from passing between the second side part 322 and the other side part of the assembly line 500 along the conveying direction (the first shunting column 521), the shunting of the silk cake trays 100 on the assembly line 500 can be realized, thereby realizing the shunting of the silk cakes.

[0041] When the silk cakes detected by the detection component have no defects and are of uniform size specifications, the silk cakes are conveyed to the shunt component 300 under the drive of the assembly line 500. The shunt plate 320 maintains its existing state without swinging, allowing the silk cakes to directly pass between the second side part and the other side part of the assembly line along the conveying direction (the first shunting column 521).

[0042] Please refer to Figures 1 to 3, the material of the base 310 in the shunt component 300 can be aluminum profile. The base 310 provides an installation foundation for other components and is installed on the central separation base frame 530 of the shunt section 520 of the assembly line 500. The application of aluminum profile facilitates the adjustment of the installation positions of the components installed on the aluminum profile. The aluminum profile can be 4080 standard aluminum profile, or 3060 standard aluminum profile and other models of aluminum profiles. This application does not make a limitation and can be set according to actual requirements.

[0043] The base 310 is installed above the assembly line 500, and other components of the shunt component 300 are installed on the base 310. In this way, other components of the shunt component 300 can be installed on the assembly line 500 through the base 310, which is convenient for the shunt component 300 to be installed on the assembly line 500 and adapted to the assembly line 500, so that the shunt component 300 is integrated into the assembly line 500.

[0044] Please refer to Figure 2 , the shunt plate 320 is a sheet metal part formed by bending a cold plate and is welded with reinforcing ribs to enhance the stability of the shunt plate 320. The shunt plate 320 is a sheet metal triangular plate and is provided with an intersecting first side 321 and a second side 322. The shunt plate 320 is swingably connected to the base 310. The first connection point (not shown in the figure) between the shunt plate 320 and the base 310 is located between the first side 321 and the second side 322. Rotate the shunt plate 320, and the first side 321 contacts the bobbin tray 100 loaded with bobbins, so that the bobbin tray 100 passes through between the first side 321 and one side of the assembly line 500 (the second shunt column 522), and blocks the bobbin tray 100 from passing through between the second side 322 and the other side of the assembly line 500 (the first shunt column 521). Through the rotational connection between the shunt plate 320 and the base 310 on the assembly line 500, the shunt of the bobbin tray 100 on the assembly line 500 can be realized, and thus the shunt of the bobbins can be realized.

[0045] In some embodiments, when there is no bobbin loaded on the bobbin tray 100, the shunt of the bobbin tray 100 without loaded bobbins can also be realized through the rotational connection between the shunt plate 320 and the base 310 on the assembly line 500.

[0046] To facilitate the swinging of the diverter plate 320, the diverter assembly 300 further includes a telescopic member 330. The fixed end of the telescopic member 330 is rotatably connected to the base 310, and the telescopic end of the telescopic member 330 is swingably connected to the diverter plate 320, so that the telescopic member 330 can drive the diverter plate 320 to swing. Specifically, the second connection point (not shown in the figure) between the diverter plate 320 and the telescopic end of the telescopic member 330 is located between the first connection point and the second side portion 322 and close to the second side portion 322. Driven by the telescopic member 330, by adjusting the swinging angle of the diverter plate 320, the cake tray 100 carrying the cake can be guided to different areas of the production line 500, realizing the diversion of the cake tray 100, and further realizing the diversion of the cake. It should be noted that the telescopic member 330 can be a cylinder or other retractable driving members, which is not limited in this application and can be set according to actual needs.

[0047] The first connection point is located on the bisector between the first side portion 321 and the second side portion 322, and the second connection point is located between the bisector and the second side portion 322 and close to the second side portion 322, which is convenient for the telescopic member 330 to drive the diverter plate 320 to swing.

[0048] Please refer to Figure 2 , the diverter assembly 300 further includes a first nylon guide strip 350 and a second nylon guide strip (not shown in the figure). The first nylon guide strip 350 is detachably mounted on the first side portion 321, and the second nylon guide strip is detachably mounted on the second side portion 322. The materials of the first nylon guide strip 350 and the second nylon guide strip can be nylon materials respectively. In this way, when guiding the diversion of the cake tray 100, the sliding contact friction with the cake tray 100 can be reduced, and it is easy to replace when worn.

[0049] The diverter assembly 300 further includes a first mounting plate 352 and a second mounting plate (not shown in the figure). To facilitate the detachable connection between the first nylon guide strip 350 and the diverter plate 320, the first mounting plate 352 is located between the first nylon guide strip 350 and the first side portion 321. The first mounting plate 352 is fixedly mounted on the first side portion 321 of the diverter plate 320 by bolts, and the first nylon guide strip 350 is mounted on the first mounting plate 352 by countersunk head bolts, which is easy to disassemble and replace the first nylon guide strip 350.

[0050] The second mounting plate is located between the second nylon guide strip and the second side portion 322. The second mounting plate is fixedly mounted on the second side portion 322 of the diverter plate 320 by bolts, and the second nylon guide strip is mounted on the second mounting plate by countersunk head bolts, which is easy to disassemble and replace the second nylon guide strip.

[0051] It should be noted that the first mounting plate 352 and the second mounting plate can be cut from angle aluminum profiles. When the flow splitting assembly 300 is in different flow splitting states, the first nylon guide bar 350 or the second nylon guide bar can be directly in contact with the bobbin tray 100. The nylon material can lubricate and reduce resistance, and can be detachably replaced when worn, so as to ensure smooth operation when the bobbin tray 100 is in contact with the first nylon guide bar 350 or the second nylon guide bar, and guide the bobbin tray 100 to different areas of the production line 500, realizing the flow splitting of the bobbins on the bobbin tray 100 on the production line 500.

[0052] A first transfer hole 325 is provided at the position of the first connection point on the flow splitting plate 320. Please refer to Figure 2 , the flow splitting assembly 300 further includes a first flange seat 311 and a first rotating shaft 312. The first flange seat 311 is installed on the base 310 by bolts, and a plugging groove 315 is provided on the side away from the base 310. The first rotating shaft 312 is plugged into the plugging groove 315 and fixedly connected to the first flange seat 311 through a hoop. The first rotating shaft 312 movably passes through the first transfer hole 325.

[0053] It should be noted that the first rotating shaft 312 can also be threadedly connected to the plugging groove 315 to realize the fixed connection between the first rotating shaft 312 and the first flange seat 311, improving the connection stability between the first rotating shaft 312 and the first flange seat 311.

[0054] The flow splitting assembly 300 further includes a first flange bearing seat 327 and a second flange bearing seat 328. The first flange bearing seat 327 and the second flange bearing seat 328 are respectively installed on the flow splitting plate 320, are arranged on both sides of the flow splitting plate 320 and correspond to the first transfer hole 325. The first flange bearing seat 327, the second flange bearing seat 328 and the flow splitting plate 320 are fixedly connected by bolts, so that the first flange bearing seat 327 and the second flange bearing seat clamp the flow splitting plate 320 at the same time, preventing the flow splitting plate 320 from tilting during the swinging process. The first flange bearing seat 327, the second flange bearing seat 328 and the flow splitting plate 320 are locked and fixed by bolts. Supported by the first flange seat 311, the whole formed by the first flange bearing seat 327, the second flange bearing seat 328 and the flow splitting plate 320 can rotate freely around the first rotating shaft 312, but cannot slide axially.

[0055] The first bearing hole of the first flange bearing seat 327 and the second bearing hole of the second flange bearing seat 328 are respectively communicated with the first transfer hole 325, and the first rotating shaft 312 passes through the first bearing hole, the first transfer hole 325 and the second bearing hole in sequence. So that the whole formed by the first flange bearing seat 327, the flow splitting plate 320 and the second flange bearing seat 328 can rotate around the first rotating shaft 312, realizing the swinging of the flow splitting plate 320 relative to the base 310.

[0056] A second transfer hole 326 is provided at the position of the second connection point on the flow dividing plate 320. The flow dividing assembly 300 further includes a second flange seat 329 and a second rotating shaft 313. The second flange seat 329 is fixedly installed on the lower side of the flow dividing plate 320, and the second flange seat 329 is configured with a plug hole corresponding to and communicating with the second transfer hole 326. The second rotating shaft 313 is inserted into the plug hole and fixedly connected to the second flange seat 329. The telescopic end of the telescopic member 330 is rotatably connected to the second rotating shaft 313 through a movable ball head.

[0057] The flow dividing assembly 300 further includes a fixed seat 340. The fixed seat 340 is installed on the base 310. The fixed end of the telescopic member 330 is movably connected to the fixed seat 340 through a bolt. The fixed seat 340 and the first flange seat 311 are spaced apart and installed on the aluminum profile. By adjusting the gap between the fixed seat 340 and the first flange seat 311, the adjustment of the swing center position of the flow dividing plate 320 is realized, and the convenience of adjusting the swing center of the flow dividing plate 320 is improved. The swing amplitude of the flow dividing plate 320 can be adjusted by adjusting the telescopic stroke of the telescopic member 330. By adjusting the gap between the fixed seat 340 and the first flange seat 311 and the telescopic stroke of the telescopic member 330, the assembly error of the flow dividing assembly 300 can be enlarged, and the practicability and applicability of the flow dividing assembly 300 are improved.

[0058] The flow dividing assembly 300 further includes a monitoring member 360. The monitoring member 360 is fixedly installed on the top end of the first rotating shaft 312 away from the first flange seat 311 through a bolt. The monitoring member 360 is a monitoring monitoring member and faces the reverse direction of the assembly line 500, and does not rotate with the rotation of the flow dividing plate 320. The user can remotely observe and monitor the operation state of the bobbin conveying system through the monitoring monitoring member, without the need for the user to be on-site, improving the comfort and convenience of the user's operation.

[0059] The implementation process of the flow dividing assembly 300: Before the bobbin tray 100 loaded with bobbins or the bobbin tray 100 not loaded with bobbins enters the flow dividing assembly 300 on the assembly line 500, after the flow dividing assembly receives the flow dividing instruction sent by the controller of the upper computer, the telescopic member 330 drives the flow dividing plate 320 to deflect to the opposite side of the assembly line 500. The bobbin tray 100 relies on the driving force of the roller assembly line 500 to pass the bobbin tray 100 between the first side 321 and one side of the assembly line 500, and blocks the bobbin tray 100 from passing between the second side 322 and the other side of the assembly line 500. Through the rotational connection between the flow dividing plate 320 and the base 310 on the assembly line 500, the diversion of the bobbins on the assembly line 500 can be realized.

[0060] In this application, the components of the flow splitting assembly 300 can be standard parts, with simple structures, stable performance, convenient assembly, and certain strength and stability, meeting the environmental requirements of the industrial production line 500, facilitating the adaptation of the flow splitting assembly 300 to the production line 500, and improving the convenience of splitting the silk cakes on the production line 500.

[0061] In this application, unless otherwise clearly defined and limited, the first feature being "on" or "under" the second feature may include the direct contact between the first and second features, or may include the situation where the first and second features are not in direct contact but in contact through additional features therebetween. Moreover, the first feature being "above", "over" and "on top of" the second feature includes that the first feature is directly above and obliquely above the second feature, or merely means that the horizontal height of the first feature is higher than that of the second feature. The first feature being "under", "below" and "beneath" the second feature includes that the first feature is directly below and obliquely below the second feature, or merely means that the horizontal height of the first feature is lower than that of the second feature.

[0062] In the description of this application, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise" is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing this application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to this application.

[0063] In this application, unless otherwise clearly defined and limited, terms such as "connection" and "fixation" should be understood in a broad sense. For example, "fixation" can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and can be the internal communication of two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in this application can be understood according to specific circumstances.

[0064] In addition, in this application, descriptions such as "first" and "second" are only for descriptive purposes, and should not be construed as indicating or implying their relative importance or implicitly indicating the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more features. In the description of this application, the meaning of "a plurality" is two or more, unless otherwise clearly and specifically defined.

[0065] Although the embodiments of the present application have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present application. The scope of the present application is defined by the claims and their equivalents.

Claims

1. A shunt component for shunting silk cakes on a production line, characterized in that The shunt component includes: A base, which is installed on the production line; A shunt plate, which is swingably connected to the base. The shunt plate is configured with two sides to divide the production line into two conveying channels. By swinging the shunt plate, it is possible to control the silk cake on the production line to pass through one of the conveying channels.

2. The shunt component according to claim 1, wherein The shunt component further includes: A telescopic member, with both ends of the telescopic member rotatably connected to the base and the shunt plate respectively.

3. The shunt component according to claim 2, characterized in that, The two sides intersect. The shunt plate is connected to the base through a first rotating shaft, and the telescopic member is connected to the shunt plate through a second rotating shaft. The second rotating shaft is arranged between the first rotating shaft and one of the sides.

4. The flow splitting component according to claim 3, characterized in that, The second rotating shaft is located on the bisector between the two sides of the shunt plate.

5. The flow splitting component according to any one of claims 2 to 4, characterized in that The shunt component further includes: A fixed seat, which is installed on the base, and the fixed end of the telescopic member is rotatably connected to the fixed seat.

6. The shunt assembly according to claim 1, wherein There is a first connection point for swing connection between the shunt plate and the base. A first transfer hole is provided at the position of the first connection point. The shunt component further includes: A first flange seat, which is installed on the base and is configured with a plug-in groove on the side away from the base; A first rotating shaft, which is inserted into the plug-in groove and fixedly connected to the first flange seat, and the first rotating shaft movably passes through the first transfer hole.

7. The flow splitting component according to claim 6, characterized in that, The shunt component further includes: A first flange bearing seat and a second flange bearing seat, which are respectively installed on the shunt plate, are arranged on both sides of the shunt plate and correspond to the first transfer hole; The first bearing hole of the first flange bearing seat and the second bearing hole of the second flange bearing seat are respectively communicated with the first transfer hole, and the first rotating shaft sequentially passes through the first bearing hole, the first transfer hole and the second bearing hole.

8. The shunt component according to claim 6, characterized in that The shunt component further includes: A monitoring member, which is installed on the side of the first rotating shaft away from the first flange seat.

9. The shunt assembly according to claim 2 or 3, characterized in that, There is a second connection point for swing connection between the shunt plate and the telescopic end of the telescopic member. A second transfer hole is provided at the position of the second connection point on the shunt plate. The shunt component further includes: A second flange seat, which is installed on the shunt plate and is configured with a plug-in hole corresponding to and communicated with the second transfer hole; A second rotating shaft, which is sequentially movably inserted into the plug-in hole and the second transfer hole, and the telescopic end of the telescopic member is rotatably connected to the second rotating shaft.

10. The flow splitting component according to any one of claims 1 to 3 and 5 to 6, characterized in that The two sides of the shunt plate are configured as an intersecting first side and a second side. The shunt component further includes: A first nylon guide strip and a second nylon guide strip, which are respectively detachably installed on the first side and the second side.