Concrete pouring shunting device

Through the combined design of the rotating mechanism and the reciprocating mechanism, the problem of inconsistent groove height caused by material collision in the concrete pouring diversion device is solved, and the uniform diversion of concrete is achieved and the effect of improving diversion is improved.

CN223190063UActive Publication Date: 2025-08-05HUBEI ZONGRUI CONSTR ENG CO LTD
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Patent Information

Application Number
CN202421970275.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-15
Publication Date
2025-08-05
Estimated Expiration
2034-08-15

AI Technical Summary

Technical Problem

The existing concrete pouring diversion device collides with each other during diversion, which cannot ensure that the amount of material obtained in each groove is consistent, resulting in inconsistent groove height, which in turn extrudes the dark grid, and the diversion effect is poor.

Method used

The combination design of the rotating mechanism and the reciprocating mechanism is adopted. The rotating mechanism drives the reciprocating mechanism to knock back and forth, so that the concrete falls at the same time after reaching the same height, ensuring that the internal feed of each pipe meets the requirements.

Benefits of technology

The uniform flow of concrete is achieved, reducing the inconsistent groove heights and improving the flow effect.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223190063U_ABST
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Abstract

The utility model relates to the field of concrete, discloses a concrete pouring shunting device, and solves the problems that materials collide with each other during shunting in the prior art, the required quantity of materials obtained by grooves corresponding to required materials cannot be ensured, the heights of the two grooves needing the materials are easily inconsistent, a concealed compartment is further extruded, and the shunting effect is poor. The concrete pouring flow dividing device comprises a flow dividing pipe body, a rotating mechanism is arranged on the outer side of the flow dividing pipe body, and a reciprocating mechanism is arranged on the outer side of the rotating mechanism. Through the arrangement of the rotating mechanism, internal feeding of each pipe can basically meet the feeding requirement when the rotating mechanism rotates, and the rotating mechanism drives the reciprocating mechanism to perform reciprocating knocking when rotating, so that concrete quickly flows down and falls down at the same height, and the purpose of better flow dividing effect is achieved.
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Description

Technical Field

[0001] The utility model relates to the field of concrete, and specifically relates to a concrete pouring diversion device. Background Technique

[0002] A concrete pouring diversion device is a device or apparatus used in the process of concrete pouring. The main purpose is to ensure that the concrete can be evenly and efficiently distributed into different pouring areas or structural formworks. This device is usually used in large-scale concrete construction, such as high-rise buildings, bridges, underground projects, etc., to improve the construction efficiency and the quality of the concrete.

[0003] The publication number is CN215671128U, which discloses a concrete pouring diversion device, including a first diversion box, a first diversion plate, a diversion baffle, a longitudinal partition plate, a second diversion plate and a second diversion box; an insertion groove is formed on the inner bottom wall of the first diversion box; the diversion baffle is slidably connected to the side wall of the first diversion box; there are two first diversion plates arranged oppositely, and the tops of the two first diversion plates are fixed to the top side wall of the first diversion box. When the existing concrete pouring diversion device is separating, it mainly uses a baffle arranged inside the receiving barrel and the diversion pipe, and the baffle is removed for diversion after reaching a certain amount. However, when diverting, the materials collide with each other, and it cannot be guaranteed that the materials obtained by the corresponding grooves requiring materials are the required quantities, which easily causes the heights of the two grooves requiring materials to be inconsistent, and then squeezes the hidden grid, resulting in a poor diversion effect. Content of the Utility Model

[0004] The purpose of the utility model is to provide a concrete pouring diversion device. By using this device to work, the problem that when diverting, the materials collide with each other, it cannot be guaranteed that the materials obtained by the corresponding grooves requiring materials are the required quantities, which easily causes the heights of the two grooves requiring materials to be inconsistent, and then squeezes the hidden grid, resulting in a poor diversion effect is solved.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A concrete pouring diversion device includes a diversion pipe main body, a rotating mechanism is arranged outside the diversion pipe main body, and a reciprocating mechanism is arranged outside the rotating mechanism;

[0006] The rotating mechanism includes a first support plate fixedly connected to one side of the shunt pipe body. Above the first support plate, a motor is fixedly connected. The output end of the motor is fixedly connected with a first rotating shaft. The upper end of the shunt pipe body is fixedly connected with a material receiving cylinder. Inside the material receiving cylinder, a rotating cylinder is arranged. Inside the rotating cylinder, a material receiving groove is arranged. The rotating cylinder is fixedly connected to the first rotating shaft. Below the material receiving cylinder, a first hole is communicated. On the outer side of the first rotating shaft, a rotating disc is fixedly connected. Inside the rotating disc, a first guiding groove is arranged. Inside the first support plate, a second hole is arranged. Inside the second hole, a first push rod is arranged. The lower end of the first push rod is fixedly connected with a first connecting rod. Inside the lower part of the shunt pipe body, a baffle is arranged. On the other side of the shunt pipe body, a gear is arranged. The outer side of the gear is meshed with a rack. The rack is fixedly connected to the first connecting rod. Inside the gear, a second rotating shaft is key-connected. The second rotating shaft is fixedly connected to the baffle. Inside the first guiding groove, a first guiding rod is arranged. The first guiding rod is fixedly connected to the first push rod.

[0007] Preferably, the outer side surface of the material receiving cylinder fits with the upper surface of the second hole, and the two end surfaces of the material receiving cylinder fit with the inner side surface of the material receiving cylinder.

[0008] Preferably, the inner side surface of the second hole fits with the outer side surface of the upper end of the first push rod, and the outer appearance structure of the upper end of the first push rod is a cuboid.

[0009] Preferably, the first guiding groove is composed of an arc-shaped groove and a "V"-shaped groove, and the acute angle direction of the "V"-shaped groove is the same as the opening direction of the material receiving groove.

[0010] Preferably, the reciprocating mechanism includes a second support plate arranged on the side of the first support plate away from the rack. The second support plate is fixedly connected to the shunt pipe body. Inside the second support plate, a third hole is arranged. Inside the third hole, a second push rod is arranged. Inside the outer part of the rotating disc, a second guiding groove is arranged. Inside the second guiding groove, a second guiding rod is arranged. The second guiding rod is fixedly connected to the second push rod. The end of the second push rod away from the first support plate is fixedly connected with a striking plate.

[0011] Preferably, the second guiding groove is composed of two arc-shaped grooves with opposite directions and equally spaced distribution, and the matching mode between the second guiding groove and the second guiding rod is clearance fit, and the arc-shaped grooves are interconnected with each other.

[0012] Preferably, the outer side surface of the second push rod fits with the inner side surface of the third hole, and the outer appearance structure of the third hole is a cuboid.

[0013] A concrete pouring shunt device proposed by the utility model, by setting a rotating mechanism and a reciprocating mechanism, when the rotating mechanism rotates, the internal feeding of each pipe can basically meet the feeding requirements. When the rotating mechanism rotates, it drives the reciprocating mechanism to perform reciprocating knocking, so that the concrete flows down quickly, and when the materials reach the same height, they fall simultaneously. Compared with the prior art, it reduces the situation that the concrete heights in the feeding grooves on both sides are inconsistent during feeding, thereby achieving the purpose of better shunt effect. Brief Description of the Drawings

[0014] Figure 1 It is the overall top - view three - dimensional structure schematic diagram of the utility model;

[0015] Figure 2 It is the front - view sectional structure schematic diagram of the shunt pipe main body of the utility model;

[0016] Figure 3 It is the right - view sectional structure schematic diagram of the second support plate of the utility model;

[0017] Figure 4 For the utility model's Figure 3 Schematic diagram of the structure at position A.

[0018] In the figure: 1. Shunt pipe main body; 2. Rotating mechanism; 3. Reciprocating mechanism; 201. First support plate; 202. Motor; 203. First rotating shaft; 204. Material - receiving cylinder; 205. Rotating cylinder; 206. Material - receiving groove; 207. First hole; 208. Rotating disk; 209. First guiding groove; 210. Second hole; 211. First push rod; 212. First connecting rod; 213. Baffle; 214. Gear; 215. Rack; 216. Second rotating shaft; 217. First guiding rod; 301. Second support plate; 302. Third hole; 303. Second push rod; 304. Second guiding groove; 305. Second guiding rod; 306. Knocking plate. Specific Implementation Scheme

[0019] Next, the technical solutions in the embodiments of the utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the utility model. Obviously, the described embodiments are only a part of the embodiments of the utility model, rather than all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the utility model.

[0020] Please refer to Figures 1 - 4 , the utility model provides a technical solution: a concrete pouring shunt device, including a shunt pipe main body 1, a rotating mechanism 2 is arranged on the outer side of the shunt pipe main body 1, and a reciprocating mechanism 3 is arranged on the outer side of the rotating mechanism 2;

[0021] The rotating mechanism 2 includes a first support plate 201 fixedly connected to one side of the shunt pipe main body 1. Above the first support plate 201, a motor 202 is fixedly connected. The output end of the motor 202 is fixedly connected with a first rotating shaft 203. The upper end of the shunt pipe main body 1 is fixedly connected with a material receiving cylinder 204. The outer side surface of the material receiving cylinder 204 is in contact with the upper surface of the second hole 210, and the two end surfaces of the material receiving cylinder 204 are in contact with the inner side surface of the material receiving cylinder 204, so that the concrete will not flow out from the gap between the shunt pipe main body 1 and the material receiving cylinder 204. Inside the material receiving cylinder 204, there is a rotating cylinder 205. Inside the rotating cylinder 205, there is a material receiving groove 206. The rotating cylinder 205 is fixedly connected to the first rotating shaft 203. Below the material receiving cylinder 204, there is a first hole 207 connected. On the outer side of the first rotating shaft 203, there is a rotating disc 208 fixedly connected. Inside the rotating disc 208, there is a first guiding groove 209. Inside the first support plate 201, there is a second hole 210. Inside the second hole 210, there is a first push rod 211. The inner side surface of the second hole 210 is in contact with the upper outer side surface of the first push rod 211, and the upper appearance structure of the first push rod 211 is a cuboid, so that the first push rod 211 will not shake or rotate when moving inside the second hole 210. The lower end of the first push rod 211 is fixedly connected with a first connecting rod 212. Inside the lower part of the shunt pipe main body 1, there is a baffle 213. On the other side of the shunt pipe main body 1, there is a gear 214. The outer side of the gear 214 is meshed with a rack 215. The rack 215 is fixedly connected to the first connecting rod 212. Inside the gear 214, there is a second rotating shaft 216 key-connected. The second rotating shaft 216 is fixedly connected to the baffle 213. Inside the first guiding groove 209, there is a first guiding rod 217. The first guiding rod 217 is fixedly connected to the first push rod 211. The first guiding groove 209 is composed of an arc-shaped groove and a "V"-shaped groove, and the acute angle direction of the "V"-shaped groove is the same as the opening direction of the material receiving groove 206, so that the first guiding rod 217 will not move up and down when moving inside the arc-shaped groove of the first guiding groove 209, and will move up and down when moving inside the "V"-shaped groove of the first guiding groove 209.

[0022] The reciprocating mechanism 3 includes a second support plate 301 disposed on the side of the first support plate 201 away from the rack 215. The second support plate 301 is fixedly connected to the main body of the shunt pipe 1. A third hole 302 is provided inside the second support plate 301. A second push rod 303 is provided inside the third hole 302. The outer side surface of the second push rod 303 fits with the inner side surface of the third hole 302. The outer structure of the third hole 302 is a cuboid, so that the second push rod 303 will not rotate when moving inside the third hole 302. A second guide groove 304 is provided inside the outer side of the rotating disk 208. A second guide rod 305 is provided inside the second guide groove 304. The second guide rod 305 is fixedly connected to the second push rod 303. A knocking plate 306 is fixedly connected to the end of the second push rod 303 away from the first support plate 201. The second guide groove 304 is composed of two arc grooves with opposite orientations equally distributed. The second guide groove 304 and the second guide rod 305 are in clearance fit, and the arc grooves are interconnected with each other, so that the second guide rod 305 and the second push rod 303 can be reciprocated when the second guide groove 304 rotates.

[0023] When discharging is required, start the motor 202 to drive the first rotating shaft 203 and the first rotating shaft 203 to rotate. At this time, the inside of the material receiving cylinder 204 has been loaded with concrete, and the two material receiving grooves 206 with different volumes have been filled with materials. The material receiving grooves 206 coincide with the first holes 207 for discharging. At this time, the rotating disk 208 rotates, driving the second guide groove 304 to rotate. Since the second guide groove 304 is composed of two arc grooves with opposite orientations equally distributed, and the second guide groove 304 and the second guide rod 305 are in clearance fit, and the arc grooves are interconnected with each other, the second guide rod 305 and the second push rod 303 perform reciprocating motions, driving the knocking plate 306 to knock on the main body of the shunt pipe 1, accelerating the falling of the concrete, so that the concrete on both sides of the main body of the shunt pipe 1 can quickly move to the baffle 213. Since the first guide groove 209 is composed of an arc-shaped groove and a "V"-shaped groove, and the acute angle of the "V"-shaped groove faces the same direction as the opening direction of the material receiving groove 206, when the material receiving groove 206 returns to the inside of the material receiving cylinder 204 again, the first guide rod 217 contacts the "V"-shaped groove, and the first guide rod 217 moves upward, and the first push rod 211, the first connecting rod 212 and the rack 215 move upward, so that the second rotating shaft 2,16 and the baffle 213 rotate, realizing simultaneous discharging, making the rising speed of the concrete rising inside the groove to be discharged as consistent as possible, and reducing the occurrence of local deformation.

[0024] It should be noted that in this text, relational terms such as "first" and "second" are only used 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 "comprising", "including" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device.

[0025] Although the embodiments of the present invention 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 invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A concrete pouring diversion device, comprising a diversion pipe body (1), characterized in that: A rotating mechanism (2) is provided on the outside of the diverter pipe body (1), and a reciprocating mechanism (3) is provided on the outside of the rotating mechanism (2); The rotating mechanism (2) comprises a first supporting plate (201) fixedly connected to one side of the shunt pipe body (1); the upper portion of the first supporting plate (201) is fixedly connected to the motor (202); the output end of the motor (202) is fixedly connected to the first rotating shaft (203); the upper end of the shunt pipe body (1) is fixedly connected to a material receiving cylinder (204); a rotating cylinder (205) is provided on the inner side of the material receiving cylinder (204); a material receiving groove (206) is provided inside the rotating cylinder (205); the rotating cylinder (205) and the first rotating shaft (203) are connected in a fixed manner; a first hole (207) is connected below the material receiving cylinder (204); a rotating disk (208) is fixedly connected to the outer side of the first rotating shaft (203); a first guide groove (209) is provided inside the inner side of the rotating disk (208); the first supporting plate (201) is fixedly connected to the outer side of the first rotating shaft (203); ) is provided with a second hole (210) inside, a first push rod (211) is provided on the inner side of the second hole (210), the lower end of the first push rod (211) is fixedly connected to the first connecting rod (212), a baffle (213) is provided on the lower inner side of the diverter pipe body (1), a gear (214) is provided on the other side of the diverter pipe body (1), the outer side of the gear (214) is meshed with a rack (215), the rack (215) and the first connecting rod (212) are connected in a fixed manner, the inner key of the gear (214) is connected to a second rotating shaft (216), the second rotating shaft (216) and the baffle (213) are connected in a fixed manner, a first guide rod (217) is provided on the inner side of the first guide groove (209), and the first guide rod (217) and the first push rod (211) are connected in a fixed manner.

2. A concrete pouring diversion device according to claim 1, characterized in that: The outer side surface of the material receiving cylinder (204) is in contact with the upper surface of the second hole (210), and the two end surfaces of the material receiving cylinder (204) are in contact with the inner side surface of the material receiving cylinder (204).

3. A concrete pouring diversion device according to claim 1, characterized in that: The inner side surface of the second hole (210) is in contact with the outer side surface of the upper end of the first push rod (211), and the upper end of the first push rod (211) has an outer appearance structure of a rectangular parallelepiped.

4. A concrete pouring diversion device according to claim 1, characterized in that: The first guide groove (209) is composed of an arc-shaped groove and a V-shaped groove, and the acute angle of the V-shaped groove is oriented in the same direction as the opening direction of the receiving groove (206).

5. A concrete pouring diversion device according to claim 1, characterized in that: The reciprocating mechanism (3) includes a second support plate (301) arranged on a side of the first support plate (201) away from the rack (215); the second support plate (301) is connected to the shunt pipe body (1) in a fixed manner; a third hole (302) is provided on the inner side of the second support plate (301); a second push rod (303) is provided on the inner side of the third hole (302); a second guide groove (304) is provided on the inner side of the outer side of the rotating disk (208); a second guide rod (305) is provided on the inner side of the second guide groove (304); the second guide rod (305) is fixedly connected to the second push rod (303); and a knocking plate (306) is fixedly connected to the end of the second push rod (303) away from the first support plate (201).

6. A concrete pouring diversion device according to claim 5, characterized in that: The second guide groove (304) is composed of two circular arc grooves equidistantly distributed in opposite directions, and the second guide groove (304) and the second guide rod (305) are matched in a clearance fit, and the circular arc grooves are connected to each other.

7. The concrete pouring diversion device according to claim 5, characterized in that: The outer side surface of the second push rod (303) is fitted with the inner side surface of the third hole (302), and the appearance structure of the third hole (302) is a rectangular parallelepiped.

Citation Information

Patent Citations

  • Concrete pouring shunting device

    CN215671128U