Liquid distribution device for multi-pipeline output butt joint

By designing a liquid distribution device for multi-pipe output docking, the distribution frame box and the mobile and docking mechanism are used to achieve accurate liquid distribution, which solves the problem of inefficient traditional liquid distribution and avoids color mixing and color difference caused by liquid residue.

CN223294644UActive Publication Date: 2025-09-02CHANGZHOU JIANGCHENG AUTOMATION TECH CO LTD
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Patent Information

Application Number
CN202422825069.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-20
Publication Date
2025-09-02
Estimated Expiration
2034-11-20

AI Technical Summary

Technical Problem

Traditional liquid distribution methods are inefficient, rely on manual operations and are prone to errors, and a single or simple branch pipeline system causes liquid retention to affect product quality.

Method used

A liquid distribution device for multi-pipe output docking is designed, using a distribution frame box, a moving mechanism, a docking mechanism and a lifting mechanism to achieve fast and accurate liquid transportation through the plugging of the male and female connectors.

Benefits of technology

The precise distribution of liquid is achieved, the distribution efficiency is improved, the color mixing and color difference problems caused by liquid residue are avoided, and the product quality is ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of liquid distribution devices, and particularly relates to a liquid distribution device for multi-pipeline output butt joint, which comprises a distribution frame box, a plurality of first connector male heads and a plurality of second connector male heads, one end of each first connector male head is communicated with a corresponding discharging conveying pipe; the moving mechanism is arranged in the distribution frame box and comprises a walking base plate; the butt joint mechanism is arranged in the distribution frame box and comprises a first air cylinder arranged on the walking base plate and a connector female head connected with the telescopic end of the first air cylinder; according to the liquid distribution device for multi-pipeline output butt joint, when the walking base plate drives the first air cylinder to move to the corresponding first connector male head, the first air cylinder extends to enable the connector female head to be connected with the first connector male head in an inserted mode to form a conveying channel, so that the liquid distribution efficiency is improved, liquid is prevented from remaining in the connector female head, and the liquid distribution efficiency is improved. And the problems of color mixing and color difference caused by trace residues in the pipeline are effectively avoided.
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Description

Technical Field

[0001] The utility model belongs to the technical field of liquid distribution devices, and in particular relates to a liquid distribution device for multi-pipeline output docking. Background Art

[0002] The textile industry often involves precise distribution and delivery of various liquids during production. For example, in the dyeing and printing of fabrics, different colored dyes, auxiliaries, and other liquids must be accurately delivered to the corresponding processing areas according to specific ratios and flow rates. In the pretreatment of textile fibers, chemical liquids such as sizing agents and softeners also need to be precisely distributed to various processing locations.

[0003] Traditional liquid distribution relies on manual labor, which is not only inefficient but also highly dependent on the accuracy and timeliness of manual operation, making it prone to errors and deviations. Alternatively, a single pipeline or a simple branching system can be used for delivery. However, this method, which uses a main pipeline with on-site branches, requires the connection of a large number of switching valves. The complex flow path structures within the valves (such as the valve core and valve seat) can easily form liquid retention areas. This is especially true when dark residue affects light-colored dye, resulting in color differences that affect product quality.

[0004] Therefore, in order to solve the above problems, it is necessary to design a liquid distribution device for multi-pipeline output docking. Utility Model Content

[0005] The purpose of the utility model is to provide a liquid distribution device for multi-pipeline output docking to solve the technical problems mentioned in the background technology.

[0006] In order to solve the above technical problems, the utility model provides a liquid distribution device for multi-pipeline output docking, comprising:

[0007] The distribution frame box has a plurality of first connector male heads arranged transversely embedded on its side wall;

[0008] One end of each of the first connector male ends is connected to the corresponding discharge conveying pipe;

[0009] The moving mechanism is arranged in the distribution frame box, which includes: a walking base plate;

[0010] The docking mechanism provided in the distribution frame box comprises: a first cylinder provided on the walking base plate and a female connector connected to the telescopic end of the first cylinder;

[0011] One end of the female connector is connected to the feed conveying pipe;

[0012] When the walking base plate drives the first cylinder to move to the corresponding first connector male head, the first cylinder extends to enable the connector female head to be plugged into the first connector male head to form a conveying passage.

[0013] Furthermore, the moving mechanism further comprises: two first guide rails arranged in the distribution frame box, two first sliders arranged on the first guide rails, two synchronous wheels connected to the distribution frame box bearings, a synchronous belt wound around the two synchronous wheels, a reducer connected to any of the synchronous wheels, and a drive motor connected to the reducer; wherein

[0014] Each of the first sliders and the synchronous belt is connected to the walking base plate; and

[0015] When the driving motor is started, it drives any synchronous wheel to rotate through the reducer, and any synchronous wheel drives the other synchronous wheel to rotate through the synchronous belt. When the synchronous belt moves, it drives the first slider on the walking base to slide on the first guide rail.

[0016] Furthermore, a plurality of second connector male heads arranged transversely are embedded on the side wall of the distribution frame box;

[0017] The second connector male head is located above the first connector male head;

[0018] The walking base plate is provided with a lifting mechanism;

[0019] The lifting mechanism includes: two second guide rails arranged on the walking base plate, a second slider slidably connected to the second guide rails, a connecting plate connected to the two second sliders, a floating connector arranged on the top of the connecting plate, and a second cylinder arranged on the walking base plate; wherein

[0020] The telescopic end of the second cylinder is connected to the floating connector;

[0021] The first cylinder is arranged on the connecting plate;

[0022] The second cylinder is suitable for driving the floating connector, the connecting plate and the second slider to move up and down during extension and contraction, so that the second slider slides on the second guide rail, so that the first cylinder and the connector female head correspond to the first connector male head or the second connector male head.

[0023] Furthermore, the docking mechanism further comprises: four front studs connected to the inner side of the connecting plate, a flange copper sleeve fixing plate connected to the four front studs, and a flange copper sleeve embedded in the flange copper sleeve fixing plate; wherein

[0024] The flange copper sleeve is mounted on the female connector and is slidably connected to the female connector;

[0025] The connecting plate is provided with a first avoidance portion;

[0026] The walking base plate is provided with a second avoidance portion and four third avoidance portions;

[0027] The first avoidance portion is adapted to avoid the forward and backward movement of the female connector;

[0028] The second avoidance portion is adapted to avoid the up and down movement of the female connector;

[0029] Each of the third avoidance portions is suitable for avoiding the up and down movement of the corresponding front stud.

[0030] Furthermore, the docking mechanism further comprises: four rear studs arranged on the outside of the connecting plate, a mounting plate connected to the four rear studs, an upper clamping block and a lower clamping block for clamping the female connector, two connecting studs connected to the upper clamping block, and a connecting block connected to the two connecting studs; wherein

[0031] The upper clamping block is connected to the lower clamping block;

[0032] The first cylinder is fixed to the mounting plate; and

[0033] The telescopic end of the first cylinder is connected to the connecting block;

[0034] When the first cylinder is extended or retracted, the connecting block, the two connecting studs, the upper clamping block, the lower clamping block and the female connector are driven to move.

[0035] Furthermore, the docking mechanism further comprises: a bend pipe, a quick-release clamp for connecting the bend pipe and the female connector, and a hose connected to the bend pipe; wherein

[0036] The hose is suitable for being connected to a feed conveying pipe.

[0037] Furthermore, a drag chain support frame is provided at the bottom of the connecting plate;

[0038] The outer side of the hose is provided with a drag chain;

[0039] One end of the drag chain is connected to the drag chain support frame; and

[0040] The other end of the drag chain is fixed on the distribution frame box.

[0041] Furthermore, a water receiving trough is provided on the side wall of the distribution frame box;

[0042] The bottom of the water receiving trough is connected to a drain pipe;

[0043] The drain pipe passes through the distribution frame box to discharge the liquid in the water receiving trough from the distribution frame box.

[0044] Furthermore, the distribution frame box is provided with a box door; wherein

[0045] The box door is hinged to the distribution frame box.

[0046] The beneficial effects of the utility model are:

[0047] (1) When liquid needs to be transported to a specific discharge conveying pipe, the moving mechanism is started, and the walking base plate drives the docking mechanism to move to the corresponding first connector male head. The first cylinder extends, pushing the connector female head to plug into the current first connector male head, forming a liquid conveying path from the feed conveying pipe to the discharge conveying pipe. Through the above steps, the liquid can be transported to the designated discharge conveying pipe through this path, thereby realizing accurate distribution of the liquid; through the cooperation of the moving mechanism and the docking mechanism, the docking between different conveying pipes can be realized quickly and accurately, thereby improving the liquid distribution efficiency. At the same time, due to the plugging of the connector female head and the first connector male head, liquid residue in the connector female head is avoided, and the problem of color mixing and color difference caused by trace residue in the pipeline is effectively avoided.

[0048] Other features and advantages of the present invention will be described in the following description, and in part will become apparent from the description, or understood by practicing the present invention. The purpose and other advantages of the present invention are realized and obtained by the structures particularly pointed out in the description and the drawings.

[0049] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, preferred embodiments are given below and described in detail with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0050] In order to more clearly illustrate the specific implementation methods of the utility model or the technical solutions in the prior art, the drawings required for use in the specific implementation methods or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are some implementation methods of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0051] Figure 1 It is a three-dimensional preferred embodiment of the overall utility model Figure 1 ;

[0052] Figure 2 yes Figure 1 A partial enlarged view of area A in the middle;

[0053] Figure 3 It is a three-dimensional preferred embodiment of the overall utility model Figure 2 ;

[0054] Figure 4 It is a three-dimensional diagram of a preferred embodiment of the lifting mechanism of the present utility model;

[0055] Figure 5 It is a three-dimensional diagram of a preferred embodiment of the docking mechanism of the present utility model;

[0056] Figure 6 It is a three-dimensional diagram of a preferred embodiment of the walking base plate of the present utility model;

[0057] Figure 7 It is a three-dimensional preferred embodiment of the overall utility model Figure 3 ;

[0058] Figure 8 It is a three-dimensional diagram of the preferred embodiment of the utility model. Figure 4 .

[0059] In the picture:

[0060] Distribution frame box 1, first connector male head 2;

[0061] Moving mechanism 3, walking base plate 301, second avoidance portion 3011, third avoidance portion 3012, first guide rail 302, first slider 303, synchronous wheel 304, synchronous belt 305, speed reducer 306, driving motor 307;

[0062] Docking mechanism 4, first cylinder 401, female connector 402, front stud 403, flange copper sleeve fixing plate 404, flange copper sleeve 405, rear stud 406, mounting plate 407, upper clamping block 408, lower clamping block 409, connecting stud 410, connecting block 411, elbow 412, quick-release clamp 413, hose 414;

[0063] Second connector male head 5, lifting mechanism 6, second guide rail 601, second slider 602, connecting plate 603, first avoidance portion 6031, floating connector 604, second cylinder 605;

[0064] Drag chain support frame 7, drag chain 8, water trough 9, drain pipe 10, and box door 11. DETAILED DESCRIPTION

[0065] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts shall fall within the scope of protection of the present invention. Example 1

[0066] like Figures 1 to 8 As shown, this embodiment provides a liquid distribution device for multi-pipeline output docking, comprising:

[0067] A distribution frame box 1 is provided with a plurality of first connector male heads 2 arranged laterally on its side walls; one end of each of the first connector male heads 2 is connected to the corresponding discharge conveying pipe; a moving mechanism 3 is arranged in the distribution frame box 1, which includes: a walking base plate 301; a docking mechanism 4 is arranged in the distribution frame box 1, which includes: a first cylinder 401 arranged on the walking base plate 301 and a connector female head 402 connected to the telescopic end of the first cylinder 401; one end of the connector female head 402 is connected to the feed conveying pipe; when the walking base plate 301 drives the first cylinder 401 to move to the corresponding first connector male head 2, the first cylinder 401 extends so that the connector female head 402 is plugged into the first connector male head 2 to form a conveying passage; a sealing rubber gasket is provided in the connector female head 402 to ensure the sealing after docking with the first connector male head 2.

[0068] In this embodiment, when liquid needs to be transported to a specific discharge conveying pipe, the moving mechanism 3 is started, and the walking base plate 301 drives the docking mechanism 4 to move to the corresponding first connector male head 2. The first cylinder 401 extends, pushing the connector female head 402 to be plugged into the current first connector male head 2, forming a liquid conveying path from the feed conveying pipe to the discharge conveying pipe. Through the above steps, the liquid can be transported to the designated discharge conveying pipe through this path, thereby realizing accurate distribution of the liquid; through the cooperation of the moving mechanism 3 and the docking mechanism 4, the docking between different conveying pipes can be realized quickly and accurately, thereby improving the liquid distribution efficiency. At the same time, due to the plugging of the connector female head 402 and the first connector male head 2, liquid residue in the connector female head 402 is avoided, and the problem of color mixing and color difference caused by trace residue in the pipeline is effectively avoided.

[0069] The moving mechanism 3 also includes: two first guide rails 302 arranged in the distribution frame box 1, two first sliders 303 arranged on the first guide rails 302, two synchronous wheels 304 connected to the bearings of the distribution frame box 1, a synchronous belt 305 wound around the two synchronous wheels 304, a reducer 306 connected to any synchronous wheel 304 and a drive motor 307 connected to the reducer 306; wherein each of the first sliders 303 and the synchronous belt 305 is connected to the walking base plate 301; and the drive motor 307 drives any synchronous wheel 304 to rotate through the reducer 306 when starting, and any synchronous wheel 304 drives the other synchronous wheel 304 to rotate through the synchronous belt 305, and the synchronous belt 305 drives the first slider 303 on the walking base plate 301 to slide on the first guide rail 302 when moving.

[0070] In this embodiment, when the walking base 301 needs to be moved, the driving motor 307 is started, and after the speed is reduced and the torque is increased by the reducer 306, the synchronous wheel 304 connected to the reducer 306 is driven to rotate. Since the synchronous belt 305 is wound around the two synchronous wheels 304, when one synchronous wheel 304 rotates, the other synchronous wheel 304 will also rotate synchronously. The movement of the synchronous belt 305 drives the first slider 303 connected to the walking base 301 to slide on the first guide rail 302, thereby realizing the linear movement of the walking base 301. Through the cooperation of the synchronous belt 305 and the synchronous wheel 304, high-precision positioning of the walking base 301 is achieved, ensuring that the docking mechanism 4 can accurately dock with the target first connector male head 2; through the cooperation of the first guide rail 302 and the first slider 303 and the smooth operation of the synchronous belt 305, the stability and reliability of the walking base 301 during the movement are ensured.

[0071] The side wall of the distribution frame box 1 is embedded with a plurality of second connector male heads 5 arranged in a transverse direction; wherein the second connector male heads 5 are located above the first connector male heads 2; a lifting mechanism 6 is provided on the walking base plate 301; the lifting mechanism 6 comprises: two second guide rails 601 provided on the walking base plate 301, a second slider 602 slidably connected to the second guide rails 601, a connecting plate 603 connected to the two second sliders 602, a floating connector 604 provided on the top of the connecting plate 603 and a second cylinder 605 provided on the walking base plate 301; wherein the extension of the second cylinder 605 The retracted end is connected to the floating connector 604; the first cylinder 401 is arranged on the connecting plate 603; the second cylinder 605 is suitable for driving the floating connector 604, the connecting plate 603 and the second slider 602 to move up and down during extension and contraction, so that the second slider 602 slides on the second guide rail 601, so that the first cylinder 401 and the connector female head 402 correspond to the first connector male head 2 or the second connector male head 5; wherein, by setting the floating connector 604, the position can be automatically adjusted when docking with the connector male head, thereby reducing docking errors and improving connection stability, thereby ensuring a good connection effect.

[0072] In this embodiment, according to the docking requirements, the first connector male head 2 or the second connector male head 5 is selected as the target, and the second cylinder 605 is started to extend or retract its telescopic end to drive the connecting plate 603, the floating connector 604 and the second slider 602 to slide on the second guide rail 601 and adjust to the same height as the target connector male head. After the lifting mechanism 6 is adjusted into place, the walking mechanism 3 is started to move the walking base plate 301 to the front of the target connector male head, and then the first cylinder 401 is started to drive the connector female head 402 to move toward the target connector male head to achieve close docking for subsequent conveying operations. Through the above steps, the effect of docking different connectors in a limited space can be achieved.

[0073] The docking mechanism 4 further includes: four front studs 403 connected to the inner side of the connecting plate 603, a flange copper sleeve fixing plate 404 connected to the four front studs 403, and a flange copper sleeve 405 embedded in the flange copper sleeve fixing plate 404; wherein the flange copper sleeve 405 is sleeved on the connector female head 402 and is slidably connected to the connector female head 402; a first avoidance portion 6031 is provided on the connecting plate 603; a second avoidance portion 3011 and four third avoidance portions 3012 are provided on the walking base plate 301; wherein the first avoidance portion 6031 is suitable for avoiding the forward and backward movement of the connector female head 402; the second avoidance portion 3011 is suitable for avoiding the up and down movement of the connector female head 402; each of the third avoidance portions 3012 is suitable for avoiding the up and down movement of the corresponding front stud 403; wherein, by arranging four front studs 403, a flange copper sleeve fixing plate 404 and a flange copper sleeve 405, the connector female head is stably supported, and the flange copper sleeve 405 is slidably connected to the connector female head 402, which not only ensures the stable support of the connector female head 402, but also allows it to move forward and backward.

[0074] The docking mechanism 4 also includes: four rear studs 406 arranged on the outside of the connecting plate 603, a mounting plate 407 connected to the four rear studs 406, an upper clamping block 408 and a lower clamping block 409 for clamping the connector female head 402, two connecting studs 410 connected to the upper clamping block 408 and a connecting block 411 connected to the two connecting studs 410; wherein the upper clamping block 408 and the lower clamping block 409 are connected; the first cylinder 401 is fixed on the mounting plate 407; and the telescopic end of the first cylinder 401 is connected to the connecting block 411; when the first cylinder 401 is extended and retracted, it drives the connecting block 411, the two connecting studs 410, the upper clamping block 408, the lower clamping block 409 and the connector female head 402 to move; wherein the upper clamping block 408 and the lower clamping block 409 are connected by but not limited to bolts.

[0075] In this embodiment, when it is necessary to dock the female connector 402, the first cylinder 401 is activated to extend and retract, so as to drive the connecting block 411, the two connecting studs 410, the upper clamping block 408, the lower clamping block 409 and the clamped female connector 402 to move together. The first cylinder 401 is extended, and the female connector 402 moves forward at this time until the female connector 402 docks with the corresponding male connector (the first male connector 2 or the second male connector 5). The first cylinder 401 is retracted, and the female connector 402 moves backward at this time to achieve separation. The clamping action of the upper clamping block 408 and the lower clamping block 409 ensures the stability of the female connector 402 during the docking process, thereby reducing docking failures caused by shaking or offset.

[0076] The docking mechanism 4 also includes: a bend 412, a quick-release clamp 413 for connecting the bend 412 and the connector female head 402, and a hose 414 connected to the bend 412; wherein the hose 414 is suitable for being connected to the feed conveying pipe; by providing the bend 412, it is possible to adapt to different installation spaces; by providing the quick-release clamp 413, it is possible to quickly connect the bend 412 and the connector female head 402; wherein by providing the hose 414, it is possible to achieve the effect that the hose 414 can follow the movement when the connector female head 402 moves.

[0077] A drag chain support frame 7 is provided at the bottom of the connecting plate 603; a drag chain 8 is provided on the outside of the hose 414; one end of the drag chain 8 is connected to the drag chain support frame 7; and the other end of the drag chain 8 is fixed on the distribution frame box 1; the drag chain 8 is provided to protect the hose 414 and avoid the hose 414 from being entangled.

[0078] A water receiving trough 9 is provided on the side wall of the distribution frame box 1; the bottom of the water receiving trough 9 is connected to a drain pipe 10; wherein the drain pipe 10 passes through the distribution frame box 1 to discharge the liquid in the water receiving trough 9 from the distribution frame box 1; wherein, by providing the water receiving trough 9 and the drain pipe 10, the effect of collecting the residual liquid leaked from the male head of the connector during the separation process and discharging it to the corresponding position through the drain pipe 10 is achieved.

[0079] The distribution frame box 1 is provided with a box door 11 ; wherein the box door 11 is hinged to the distribution frame box 1 .

[0080] The various devices selected in this application (components whose specific structures are not described) are all universal standard parts or components known to those skilled in the art, and their structures and principles can be known to those skilled in the art through technical manuals or conventional experimental methods.

[0081] In the description of the embodiments of the present invention, unless otherwise specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances.

[0082] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating positions or relationships, are based on the positions or relationships shown in the accompanying drawings and are intended solely to facilitate the description of this utility model and simplify the description. They do not indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0083] In the several embodiments provided in this application, it should be understood that the disclosed systems, devices and methods can be implemented in other ways. The device embodiments described above are merely schematic. For example, the division of the units is merely a logical function division. There may be other division methods in actual implementation. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed may be through some communication interface, indirect coupling or communication connection of devices or units, which may be electrical, mechanical or other forms.

[0084] The units described as separate components may or may not be physically separate, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed across multiple network units. Some or all of these units may be selected to achieve the purpose of this embodiment according to actual needs.

[0085] In addition, each functional unit in each embodiment of the present invention may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit.

[0086] Based on the above-mentioned ideal embodiment of the present invention, and in accordance with the above description, relevant personnel can make various changes and modifications without departing from the technical scope of the present invention. The technical scope of the present invention is not limited to the content of the specification, but must be determined according to the scope of the claims.

Claims

1. A liquid distribution device for multi-pipeline output docking, characterized in that: include: A distribution frame box (1) has a side wall on which a plurality of first connector male heads (2) arranged transversely are embedded; in One end of each of the first connector male ends (2) is connected to the corresponding discharge conveying pipe; A moving mechanism (3) provided in the distribution frame box (1) comprises: a walking base plate (301); A docking mechanism (4) provided in a distribution frame box (1) comprises: a first cylinder (401) provided on a walking base plate (301) and a female connector (402) connected to a telescopic end of the first cylinder (401); wherein One end of the connector female head (402) is connected to the feed conveying pipe; When the walking base plate (301) drives the first cylinder (401) to move to the corresponding first connector male head (2), the first cylinder (401) extends to allow the connector female head (402) to be plugged into the first connector male head (2) to form a conveying path.

2. The liquid distribution device for multi-pipeline output docking according to claim 1, characterized in that: The moving mechanism (3) further comprises: two first guide rails (302) arranged in the distribution frame box (1), two first sliders (303) arranged on the first guide rails (302), two synchronous wheels (304) connected to the bearings of the distribution frame box (1), a synchronous belt (305) wound around the two synchronous wheels (304), a reducer (306) connected to any one of the synchronous wheels (304), and a drive motor (307) connected to the reducer (306); wherein Each of the first sliders (303) and the synchronous belt (305) is connected to the walking base plate (301); and When the driving motor (307) is started, it drives any synchronous wheel (304) to rotate via the speed reducer (306), and any synchronous wheel (304) drives the other synchronous wheel (304) to rotate via the synchronous belt (305). When the synchronous belt (305) moves, it drives the first slider (303) on the walking base plate (301) to slide on the first guide rail (302).

3. The liquid distribution device for multi-pipeline output docking according to claim 2, characterized in that: A plurality of second connector male heads (5) arranged transversely are embedded on the side wall of the distribution frame box (1); wherein The second connector male head (5) is located above the first connector male head (2); The walking base plate (301) is provided with a lifting mechanism (6); The lifting mechanism (6) comprises: two second guide rails (601) arranged on the walking base plate (301), a second slider (602) slidably connected to the second guide rails (601), a connecting plate (603) connected to the two second sliders (602), a floating connector (604) arranged on the top of the connecting plate (603), and a second cylinder (605) arranged on the walking base plate (301); wherein The telescopic end of the second cylinder (605) is connected to the floating connector (604); The first cylinder (401) is arranged on a connecting plate (603); The second cylinder (605) is suitable for driving the floating connector (604), the connecting plate (603) and the second slider (602) to move up and down during extension and contraction, so that the second slider (602) slides on the second guide rail (601), so that the first cylinder (401) and the connector female head (402) correspond to the first connector male head (2) or the second connector male head (5).

4. The liquid distribution device for multi-pipeline output docking according to claim 3, characterized in that: The docking mechanism (4) further comprises: four front studs (403) connected to the inner side of the connecting plate (603), a flange copper sleeve fixing plate (404) connected to the four front studs (403), and a flange copper sleeve (405) embedded in the flange copper sleeve fixing plate (404); wherein The flange copper sleeve (405) is sleeved on the connector female head (402) and is slidably connected to the connector female head (402); The connecting plate (603) is provided with a first avoidance portion (6031); The walking base plate (301) is provided with a second avoidance portion (3011) and four third avoidance portions (3012); The first avoidance portion (6031) is suitable for avoiding the forward and backward movement of the connector female head (402); The second avoidance portion (3011) is suitable for avoiding the upward and downward movement of the connector female head (402); Each of the third avoidance portions (3012) is suitable for avoiding the upward and downward movement of the corresponding front stud (403).

5. The liquid distribution device for multi-pipeline output docking according to claim 4, characterized in that: The docking mechanism (4) further comprises: four rear studs (406) arranged outside the connecting plate (603), a mounting plate (407) connected to the four rear studs (406), an upper clamping block (408) and a lower clamping block (409) for clamping the female connector (402), two connecting studs (410) connected to the upper clamping block (408), and a connecting block (411) connected to the two connecting studs (410); wherein The upper clamping block (408) and the lower clamping block (409) are connected; The first cylinder (401) is fixed on a mounting plate (407); and The telescopic end of the first cylinder (401) is connected to the connecting block (411); When the first cylinder (401) is extended or retracted, it drives the connecting block (411), the two connecting studs (410), the upper clamping block (408), the lower clamping block (409) and the connector female head (402) to move.

6. The liquid distribution device for multi-pipeline output docking according to claim 5, characterized in that: The docking mechanism (4) further comprises: a bend pipe (412), a quick-release clamp (413) for connecting the bend pipe (412) and the female connector (402), and a hose (414) connected to the bend pipe (412); wherein The hose (414) is suitable for being connected to a feed conveying pipe.

7. The liquid distribution device for multi-pipeline output docking according to claim 6, characterized in that: A drag chain support frame (7) is provided at the bottom of the connecting plate (603); A drag chain (8) is provided on the outside of the hose (414); wherein One end of the drag chain (8) is connected to the drag chain support frame (7); and The other end of the drag chain (8) is fixed on the distribution frame box (1).

8. The liquid distribution device for multi-pipeline output docking according to claim 7, characterized in that: A water receiving trough (9) is provided on the side wall of the distribution frame box (1); The bottom of the water receiving trough (9) is connected to a drainage pipe (10); wherein The drainage pipe (10) passes through the distribution frame box (1) to discharge the liquid in the water receiving trough (9) from the distribution frame box (1).

9. The liquid distribution device for multi-pipeline output docking according to claim 8, characterized in that: The distribution frame box (1) is provided with a box door (11); wherein The box door (11) is hinged to the distribution frame box (1).