Convergence plate structure

By designing a sliding bar and an electric motor on the manifold, combined with the vibration cleaning function of the vibration block, the problem of easy clogging of the manifold is solved, and smooth flow of fluid is achieved.

CN223388233UActive Publication Date: 2025-09-26SHENZHEN NUOXINBO COMM CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422674117.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-04
Publication Date
2025-09-26
Estimated Expiration
2034-11-04

AI Technical Summary

Technical Problem

Traditional manifolds are easily corroded by dust and tiny particles in the operating environment, causing channel blockage and affecting the smooth flow of fluids.

Method used

A manifold structure with a sliding bar and an electric motor was designed. The sliding bar was used to control the opening and closing of the flow channel and the air blowing screw. Combined with the periodic vibration cleaning of the vibration block, particle accumulation was prevented.

Benefits of technology

The manifold is self-cleaning, keeping the channel unobstructed, avoiding blockage and ensuring smooth flow of fluid.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223388233U_ABST
    Figure CN223388233U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of confluence plates, and discloses a confluence plate structure which comprises a confluence plate shell, a confluence groove is formed in the front face of the confluence plate shell, and inlet holes are evenly distributed in the surface of the confluence plate shell. The optical fiber is arranged on the lower portion of the back face of the confluence plate shell, a sliding strip is installed on the left side of the confluence plate shell, an air cylinder is installed on the upper surface of the sliding strip, a sealing block is installed at the right end of the air cylinder, and an air blowing connector is installed on the surface of the confluence plate shell; according to the scheme, the additionally-arranged sliding strip can close or open the flow channel, the problems that air leakage is caused due to the fact that a similar structure is lacked in a traditional scheme, and the air pressure is insufficient to blow the screw to other equipment are solved, the additionally-arranged electric motor can finally drive the vibration block to move, tiny particles in the confluence plate are loosened, the confluence groove is prevented from being blocked, and the service life of the confluence plate is prolonged. And smooth circulation of fluid is not influenced.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of busbars, in particular to a busbar structure. Background Art

[0002] A manifold is a fixed object that brings together multiple fluid channels, also known as a gas source distribution area, valve plate, valve seat, or gas manifold. In the design and use of complete sets of automation equipment.

[0003] Common manifolds generally have air holes on the surface of the base plate to receive gas from the gas source and distribute the gas to various branch pipes or connection points. The manifold is designed with fixing points so that it can be installed in the appropriate position. Bolts and clamps are generally used to install the manifold.

[0004] In electric batch production, a manifold is often used for airflow transportation of the screw accessories of the electric batch. However, due to the large weight of the screw material, the traditional solution lacks a structure to seal the flow channel. Air leaks upward during blowing, and it is impossible to generate sufficient pressure to blow the screw to other processing equipment. In addition, since the manifold may be exposed to tiny particles such as dust and sand in the use environment, these particles may enter the interior of the manifold through wind erosion, friction, etc., causing tiny particles to accumulate in the channel, causing blockage of the channel and affecting the smooth flow of the fluid. Utility Model Content

[0005] (1) Technical problems solved

[0006] In response to the shortcomings of the existing technology, the present invention provides a busbar structure to solve the problem proposed in the above background technology that the busbar may be exposed to tiny particles such as dust and sand in the use environment. These particles may enter the interior of the busbar through wind erosion, friction, etc., causing tiny particles to accumulate in the channel, causing blockage of the channel and affecting the smooth flow of the fluid.

[0007] (2) Technical solution

[0008] To achieve the above objectives, the present invention provides the following technical solutions: a busbar structure, comprising:

[0009] A manifold housing, wherein a manifold groove is provided on the front of the manifold housing, and inlet holes are evenly distributed on the surface of the manifold housing;

[0010] The optical fiber is arranged at the lower back portion of the manifold housing. A sliding bar is installed on the left side of the manifold housing. A cylinder is installed on the upper surface of the sliding bar. A sealing block is installed on the right end of the cylinder. An air blowing interface is installed on the surface of the manifold housing.

[0011] Cover plate, arranged on the front of the busbar housing. Screws are evenly distributed on the surface of the cover plate. A discharge pipe is installed at the bottom of the busbar housing, and a feeding pipe is installed at the bottom end of the discharge pipe.

[0012] Electric motor, arranged at the bottom of the sliding bar. A turntable is coaxially installed on the rotor of the electric motor. A first connecting plate is installed on the surface of the turntable through a bearing. A second connecting plate is installed on the surface of the first connecting plate through a bearing. A vibration block is arranged on the right side of the second connecting plate. A receiving block is arranged on the right side of the vibration block. The receiving block is installed on the surface of the busbar housing.

[0013] Preferably, a mounting bracket is installed on the front of the sliding bar. The electric motor is installed on the surface of the mounting bracket. Threaded rods are evenly distributed on the upper part of the surface of the mounting bracket. The mounting bracket can be installed on the surface of the sliding bar through the threaded rods.

[0014] Preferably, the mounting bracket is of a U-shaped design. A plugging rod is inserted between the mounting bracket and the second connecting plate. When the first connecting plate rotates through the plugging rod, the second connecting plate can be tilted.

[0015] Preferably, a slider is installed at the bottom of the vibration block. A sliding track is arranged at the position corresponding to the slider on the surface of the busbar housing. The slider is inserted into the inside of the sliding track, so that the vibration block can move linearly.

[0016] Preferably, a fixing plate is installed on the surface of the sliding track. A fixing rod is screwed on the surface of the fixing plate. The sliding track can be installed on the surface of the busbar housing through the fixing rod.

[0017] Preferably, a support plate is installed at the bottom of the sliding track. A mounting plate is installed at the bottom of the support plate. A mounting rod is screwed on the surface of the mounting plate. The mounting plate can be installed on the surface of the busbar housing through the mounting rod, and the support plate can be fixed, so that the support plate can stably support the sliding track.

[0018] Beneficial effects

[0019] Compared with the prior art, the utility model provides a busbar structure, which has the following beneficial effects:

[0020] The added sliding bar of the manifold structure can close or open the flow channel. When the flow channel is opened, the screw can fall into the feed pipe below. When the flow channel is closed, the screw can be sent to other equipment by blowing air, avoiding the problems of air leakage and insufficient air pressure to blow the screw to other equipment due to the lack of similar structure in traditional solutions. The added electric motor can drive the turntable to rotate, thereby driving the first connecting plate to rotate, and then driving the second connecting plate to move, and finally driving the vibration block to move, impacting the surface of the receiving block, causing the manifold shell to vibrate, which can loosen the tiny particles inside the manifold. Through periodic vibration, the manifold can achieve self-cleaning, maintain the internal channel unobstructed, avoid blockage of the manifold groove, and will not affect the smooth flow of the fluid. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 This is a schematic diagram of the structure of the utility model;

[0022] Figure 2 This is an exploded perspective view of the utility model;

[0023] Figure 3 This is a structural diagram of the sliding bar of the utility model;

[0024] Figure 4 This is a schematic diagram of the installation structure of the electric motor of the utility model;

[0025] Figure 5 It is a structural schematic diagram of the sliding track of the utility model.

[0026] In the figure: 1. Manifold housing; 2. Manifold slot; 3. Inlet hole; 4. Optical fiber; 5. Sliding bar; 6. Cylinder; 7. Sealing block; 8. Cover plate; 9. Blowing interface; 10. Screw; 11. Discharge pipe; 12. Feed pipe; 13. Electric motor; 14. Turntable; 15. First connecting plate; 16. Second connecting plate; 17. Vibrating block; 18. Supporting block; 19. Mounting frame; 20. Threaded rod; 21. Connecting rod; 22. Slider; 23. Sliding track; 24. Fixed plate; 25. Fixed rod; 26. Support plate; 27. Mounting plate; 28. Mounting rod. DETAILED DESCRIPTION

[0027] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0028] The utility model provides a technical solution, a manifold structure, please refer to Figure 1 , including manifold housing 1, see Figure 2 The front of the busbar housing 1 is provided with a busbar groove 2, and the surface of the busbar housing 1 is evenly distributed with inlet holes 3;

[0029] Optical fiber 4 is provided at the lower back portion of the manifold housing 1. A sliding bar 5 is installed on the left side of the manifold housing 1. A cylinder 6 is installed on the upper surface of the sliding bar 5. A sealing block 7 is installed on the right end of the cylinder 6. An air blowing interface 9 is installed on the surface of the manifold housing 1.

[0030] The cover plate 8 is provided on the front of the manifold housing 1. Screws 10 are evenly distributed on the surface of the cover plate 8. A discharge pipe 11 is installed at the bottom of the manifold housing 1. A feed pipe 12 is installed at the bottom end of the discharge pipe 11.

[0031] The feed tube 12 is used to connect to the surface of the screw assembly equipment;

[0032] See also Figure 3 The electric motor 13 is arranged at the bottom of the sliding bar 5. The rotor of the electric motor 13 is coaxially mounted with a turntable 14. The surface of the turntable 14 is mounted with a first connecting plate 15 through a bearing. The surface of the first connecting plate 15 is mounted with a second connecting plate 16 through a bearing. Figure 4 , a vibration block 17 is provided on the right side of the second connecting plate 16, and a receiving block 18 is provided on the right side of the vibration block 17. The receiving block 18 is mounted on the surface of the manifold housing 1;

[0033] The manifold in this solution is used to converge the screws from all silos into a single outlet. Multiple inlet holes 3 are provided on both sides and the top of the manifold. A tree-like manifold 2 is provided on the front of the manifold. The upper portions of the branches of the manifold 2 are connected to the inlet holes 3. A discharge pipe 11 is installed at the lower end of the manifold 2 to facilitate connection to the screw assembly equipment. The manifold is equipped with a cover plate 8, which is assembled with the manifold housing 1 using screws 10 to form a closed channel for the manifold 2. A sliding bar 5 is provided at the lower portion of the manifold to seal the manifold 2. The sliding bar 5 is equipped with a cylinder 6, which drives a sealing block 7 along the surface of the sliding bar 5, closing or opening the channel of the manifold 2. An optical fiber 4 is installed at the bottom of the manifold 2, above the end of the sliding bar 5, to sense any screws that fall from the manifold 2 onto the sliding bar 5. The upper end of the lowest branch of the tree-like confluence trough 2 is equipped with a blowing interface 9. When the sliding bar 5 is closed, compressed air is blown into the blowing port to blow the screw in the discharge pipe 11 to the screw assembly equipment.

[0034] The sliding bar 5 of this solution can close or open the flow channel. When it is open, the screw can fall to the bottom and enter the feeding pipe 12. When it is closed, the upper flow channel can be closed, so that the screw can be blown into other equipment by blowing. The traditional solution lacks a structure similar to the sliding bar 5 of this solution. When blowing, air will leak upward, and it is impossible to form sufficient pressure to blow the screw into other equipment.

[0035] A mounting bracket 19 is installed on the front of the sliding bar 5 , and the electric motor 13 is installed on the surface of the mounting bracket 19 . Threaded rods 20 are evenly distributed on the upper surface of the mounting bracket 19 , and the mounting bracket 19 can be installed on the surface of the sliding bar 5 through the threaded rods 20 .

[0036] The mounting frame 19 is of a V-shaped design, and a connecting rod 21 is inserted between the mounting frame 19 and the second connecting plate 16. The connecting rod 21 enables the second connecting plate 16 to tilt when the first connecting plate 15 rotates.

[0037] The bottom of the vibration block 17 is equipped with a slider 22, see Figure 3 A sliding track 23 is provided on the surface of the manifold housing 1 at a position corresponding to the slider 22 , and the slider 22 is inserted into the interior of the sliding track 23 , so that the vibration block 17 can move linearly.

[0038] See also Figure 5 A fixing plate 24 is installed on the surface of the sliding track 23 , and a fixing rod 25 is screwed on the surface of the fixing plate 24 . The sliding track 23 can be installed on the surface of the manifold housing 1 through the fixing rod 25 .

[0039] A support plate 26 is installed at the bottom of the sliding rail 23, and a mounting plate 27 is installed at the bottom of the support plate 26. A mounting rod 28 is screwed on the surface of the mounting plate 27. The mounting plate 27 can be installed on the surface of the busbar housing 1 through the mounting rod 28, and the support plate 26 can be fixed so that the support plate 26 can stably support the sliding rail 23.

[0040] The device operates as follows: First, a cover plate 8 is installed on the manifold, which is screwed to the manifold housing 1 using screws 10 to form a closed channel in the manifold 2. A sliding bar 5 is installed at the bottom of the manifold to seal the manifold 2. A cylinder 6 is mounted on the sliding bar 5, which drives a sealing block 7 along the surface of the sliding bar 5, closing or opening the manifold 2. An optical fiber 4 is then installed at the bottom of the manifold 2, above the end of the sliding bar 5, to sense any screws that fall onto the sliding bar 5. The upper end of the lowest branch of the tree-shaped confluence trough 2 is equipped with a blowing interface 9. When the sliding bar 5 is closed, compressed air is blown into the blowing port, which can blow the screw in the discharge pipe 11 to the screw assembly equipment. Finally, starting the electric motor 13 can drive the turntable 14 to rotate, thereby driving the first connecting plate 15 to rotate, and then driving the second connecting plate 16 to move, and finally driving the vibration block 17 to move along the inner cavity of the sliding track 23, and impacting the surface of the receiving block 18, so that the confluence plate shell 1 vibrates, which can loosen the tiny particles inside the confluence plate. Through periodic vibration, the confluence plate can achieve self-cleaning, maintain the smooth flow of the internal channel, avoid blockage of the confluence trough 2, and will not affect the smooth flow of the fluid.

[0041] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0042] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A busbar structure, characterized in that: Comprising: A busbar housing (1), on the front surface of the busbar housing (1) there is a busbar groove (2), and on the surface of the busbar housing (1) there are evenly distributed inlet holes (3); An optical fiber (4), arranged at the lower part of the back surface of the busbar housing (1), on the left side of the busbar housing (1) there is a sliding bar (5) installed, on the upper surface of the sliding bar (5) there is a cylinder (6) installed, on the right end of the cylinder (6) there is a sealing block (7) installed, and on the surface of the busbar housing (1) there is a blowing interface (9); A cover plate (8), arranged on the front surface of the busbar housing (1), on the surface of the cover plate (8) there are evenly distributed screws (10), at the bottom of the busbar housing (1) there is a discharge pipe (11) installed, and at the bottom end of the discharge pipe (11) there is a feeding pipe (12) installed; An electric motor (13), arranged at the bottom of the sliding bar (5), the rotor of the electric motor (13) is coaxially installed with a turntable (14), on the surface of the turntable (14) there is a first connecting plate (15) installed through a bearing, on the surface of the first connecting plate (15) there is a second connecting plate (16) installed through a bearing, on the right side of the second connecting plate (16) there is a vibration block (17), on the right side of the vibration block (17) there is a receiving block (18), and the receiving block (18) is installed on the surface of the busbar housing (1).

2. The busbar structure according to claim 1, characterized in that: On the front surface of the sliding bar (5) there is an installation frame (19) installed, the electric motor (13) is installed on the surface of the installation frame (19), and on the upper part of the surface of the installation frame (19) there are evenly distributed threaded rods (20).

3. The busbar structure according to claim 2, characterized in that: The installation frame (19) is of a U-shaped design, and an insertion rod (21) is inserted between the installation frame (19) and the second connecting plate (16).

4. The busbar structure according to claim 1, characterized in that: At the bottom of the vibration block (17) there is a slider (22) installed, and at the corresponding position on the surface of the busbar housing (1) and the slider (22) there is a sliding track (23).

5. The busbar structure according to claim 4, characterized in that: On the surface of the sliding track (23) there is a fixing plate (24) installed, and on the surface of the fixing plate (24) there is a fixing rod (25) screwed.

6. The busbar structure according to claim 4, characterized in that: The sliding track (23) At the bottom there is a support plate (26) installed, at the bottom of the support plate (26) there is a mounting plate (27) installed, On the surface of the mounting plate (27) there is a mounting rod (28) screwed.