Structure reinforcing slurry pouring structure
By designing a reinforced grout injection structure and combining grout fabrication and injection components, the problems of inconvenient grout injection and laborious transportation were solved, achieving efficient and safe grout injection and solidification.
Patent Information
- Application Number
- CN202520326787.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-27
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-02-27
AI Technical Summary
When reinforcing a structure, grout injection is inconvenient and transportation is time-consuming and labor-intensive, especially when the reinforcement area is relatively dispersed.
A structurally reinforced grout injection structure was designed, including a grout production component and an injection component. The efficient production and injection of grout are achieved through the combination of components such as a movable base, a delivery pump, a mixing tank, and a clamping plate. The clamping structure of the protective plate and the limiting rod stabilizes the grout delivery.
It achieves convenient and time-saving grouting, adapts to the needs of different structural reinforcements, and improves operational efficiency and safety.
Smart Images

Figure CN223922678U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of structural reinforcement technology, specifically a structural reinforcement grouting structure. Background Technology
[0002] When reinforcing a structure, it is necessary to prepare grout for injection. However, when the areas to be reinforced are scattered, injection is inconvenient and the transportation of grout is time-consuming and labor-intensive.
[0003] Therefore, it is necessary to design a structurally reinforced grout injection structure to solve the problems mentioned in the background technology. Utility Model Content
[0004] The purpose of this utility model is to solve the problems in the prior art by proposing a structurally reinforced grout injection structure.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A structural reinforcement grouting structure includes a grout preparation component and a grouting component, wherein the grout preparation component is provided on one side;
[0007] The slurry preparation assembly consists of a movable base, a delivery pump, a first mounting frame, a support frame, a hopper, a top cover, a mixing tank, a mixing shaft, a second mounting frame, a mixing motor, a drive wheel, a driven wheel, a discharge port baffle, a rotating shaft, and a pull rod. The movable base is connected to the first mounting frame and the support frame at its upper end. The first mounting frame is connected to the mixing tank at its upper end. The mixing tank is connected to the top cover at its upper end. A hopper is located below the mixing tank. The delivery pump is connected to the lower end of the hopper. The second mounting frame is connected to the second mounting frame. The mixing motor is connected to the upper end of the mixing motor. A drive wheel is connected to the upper end of the mixing motor. A driven wheel is connected to one side of the drive wheel. The mixing shaft is connected to the lower end of the driven wheel. A rotating shaft is located in the middle of the mixing shaft. A discharge port baffle is connected to the lower end of the rotating shaft. A pull rod is connected to the upper end of the rotating shaft.
[0008] The injection assembly consists of a protective plate, a limiting rod, and a clamping plate, with the protective plate inside the clamping plate and the limiting rods connected to the upper two sides of the clamping plate.
[0009] As a preferred embodiment of this utility model, the movable base and the movable base are connected by bolts, and the discharge port of the conveying pump is provided with a conveying pipe that is sleeved and connected to the upper part of the support frame.
[0010] As a preferred embodiment of this utility model, the first mounting frame, the movable base, the conveying pump, the hopper, and the mixing tank are all connected by bolts, and the hopper and the feed inlet of the conveying pump are connected by flanges.
[0011] As a preferred embodiment of this utility model, the second mounting bracket and the top cover and the stirring motor are all connected by bolts, the top cover and the hopper are connected by bolts, the driving wheel and the driven wheel are connected by meshing, the driving wheel and the stirring motor are connected by spline connection, and the driven wheel and the top cover are connected by bearings.
[0012] As a preferred embodiment of this utility model, the rotating shaft and the mixing tank are connected by a thread, and the rotating shaft, the mixing shaft, and the driven wheel are connected by a bearing. The lower end of the mixing tank near the edge is provided with a sliding groove that fits into the discharge port baffle.
[0013] As a preferred embodiment of this utility model, the protective plate is fitted onto the structural reinforcement area and then clamped by multiple sets of clamping plates, and the multiple sets of clamping plates are connected by bolts, and the limiting rod and the clamping plates are connected by a sleeve.
[0014] In summary, the technical effects and advantages of this utility model are as follows: When using this reinforced grouting structure, a protective plate is placed over the reinforced area, and multiple sets of clamping plates are used to limit the movement of the protective plate, ensuring its stability. A limiting rod is then placed over the clamping plates to further stabilize them, forming a limiting and protective structure at the reinforced area. This facilitates grout injection and solidification. The protective plate and limiting rod can be customized to the structure of the reinforced area, and the multiple sets of clamping plates can be adjusted as needed. Operation is convenient and quick. During grout preparation, raw materials are placed in a mixing tank, and the mixing motor is started. The driving wheel drives the driven wheel and mixing shaft for mixing. After mixing, the pull rod is pulled, causing the discharge port baffle to move away from the discharge port of the mixing tank, allowing the mixture to enter the hopper. The mixture is then transported to the protective plate via a pump and pipeline. When not in use, the pipeline on the pump can be stored and wound around a support frame. The grout preparation component can be moved to the desired location, making operation convenient and saving time and effort. Attached Figure Description
[0015] Figure 1 This is an overall structural diagram of the present invention;
[0016] Figure 2 This is a structural diagram of the slurry production component of this utility model.
[0017] Figure 3 This is a structural diagram of the infusion assembly of this utility model;
[0018] Figure 4 This is a diagram of the regular clamping structure of the clamping plate of this utility model;
[0019] Figure 5 This is a top view of the irregular clamping plate structure of this utility model.
[0020] In the diagram: 1. Slurry preparation assembly; 101. Movable base; 102. Conveying pump; 103. First mounting frame; 104. Support frame; 105. Hopper; 106. Top cover; 107. Mixing tank; 108. Mixing shaft; 109. Second mounting frame; 110. Mixing motor; 111. Drive wheel; 112. Driven wheel; 113. Discharge port baffle; 114. Rotating shaft; 115. Tie rod; 2. Injection assembly; 201. Protective plate; 202. Limiting rod; 203. Clamping plate. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0022] Reference Figures 1-5 A structurally reinforced grout injection structure includes a grout preparation component 1 and an injection component 2. The injection component 2 is located on one side of the grout preparation component 1. The grout preparation component 1 consists of a movable base 101, a delivery pump 102, a first mounting frame 103, a support frame 104, a hopper 105, a top cover 106, a mixing tank 107, a mixing shaft 108, a second mounting frame 109, a mixing motor 110, a drive wheel 111, a driven wheel 112, a discharge port baffle 113, a rotating shaft 114, and a pull rod 115. The upper end of the movable base 101 is connected to the first mounting frame 103 and the support frame 104. The upper end of the first mounting frame 103 is connected to the mixing tank 107, and the upper end of the mixing tank 107 is connected to the top cover 106. A hopper 105 is provided below, and a conveying pump 102 is connected to the lower end of the hopper 105. A second mounting bracket 109 is connected to the upper cover 106. A stirring motor 110 is connected inside the second mounting bracket 109. A drive wheel 111 is connected to the upper end of the stirring motor 110. A driven wheel 112 is connected to one side of the drive wheel 111. A stirring shaft 108 is connected to the lower end of the driven wheel 112. A rotating shaft 114 is provided in the middle of the stirring shaft 108. A discharge port baffle 113 is connected to the lower end of the rotating shaft 114. A pull rod 115 is connected to the upper end of the rotating shaft 114. The filling assembly 2 is composed of a protective plate 201, a limiting rod 202 and a clamping plate 203. The clamping plate 203 is provided with a protective plate 201 inside. The upper two sides of the clamping plate 203 are connected with limiting rods 202.
[0023] Reference Figure 1 and Figure 2When reinforcing a structure, grout needs to be prepared for injection. However, when the areas requiring reinforcement are scattered, injection is inconvenient, and grout transportation is time-consuming and labor-intensive. The movable bases 101 are connected by bolts. The discharge port of the conveying pump 102 is equipped with a conveying pipe that is sleeved and connected to the upper part of the support frame 104. The first mounting frame 103 is bolted to the movable base 101, the conveying pump 102, the hopper 105, and the mixing tank 107. The hopper 105 is connected to the inlet of the conveying pump 102 by a flange. The second mounting frame 109 is bolted to the top cover 106 and the mixing motor 110. The top cover 106 is bolted to the hopper 105. The driving wheel 111 and the driven wheel 112 are meshed. The driving wheel 111 and the mixing motor 110 are connected by a spline fit. The driven wheel 112 and the top cover 104 are connected by a spline fit. The components 6 are connected by bearings, the rotating shaft 114 and the mixing tank 107 are connected by threads, and the rotating shaft 114, the mixing shaft 108, and the driven wheel 112 are connected by bearings. The lower end of the mixing tank 107 is provided with a sliding groove that fits with the discharge port baffle 113 near the edge. When making the slurry, the raw materials are put into the mixing tank 107, the mixing motor 110 is started, and the driven wheel 112 and the mixing shaft 108 are driven by the driving wheel 111 to mix. After the mixing is completed, the pull rod 115 is pulled to move the discharge port baffle 113 to the discharge port of the mixing tank 107, so that the mixture enters the hopper 105 and is transported to the protective plate 201 through the conveying pump 102 and the pipeline. When the pipeline on the conveying pump 102 is not in use, it can be stored and wound on the support frame 104. The slurry making component 1 can be moved to the required site, which is convenient to operate and saves more time and effort.
[0024] Reference Figures 1-5 After the protective plate 201 is fitted onto the structural reinforcement, it is clamped and limited by multiple sets of clamping plates 203. The multiple sets of clamping plates 203 are connected by bolts, and the limiting rod 202 is connected to the clamping plate 203 by a sleeve. In use, the protective plate 201 is fitted onto the structural reinforcement, and then the multiple sets of clamping plates 203 are used to limit the protective plate 201 from the outside to keep it stable. Then the limiting rod 202 is fitted onto the clamping plate 203 to keep the clamping plate 203 stable. This forms a limiting and protective structure at the structural reinforcement, which facilitates the injection of grout and the solidification of the grout. The protective plate 201 and the limiting rod 202 can be made according to the structure of the structural reinforcement, and the multiple sets of clamping plates 203 can be adjusted as needed, making the operation convenient and quick.
[0025] Working principle: After the protective plate 201 of the grout-filled structure is fitted onto the reinforced area, it is clamped and limited by multiple sets of clamping plates 203. These clamping plates 203 are connected by bolts, and the limiting rod 202 is connected to the clamping plates 203 by a sleeve connection. In use, the protective plate 201 is fitted onto the reinforced area, and then the multiple sets of clamping plates 203 are used to limit and stabilize the protective plate 201. Finally, the limiting rod 202 is fitted onto the clamping plates 203 to stabilize them, thus forming a limiting and protective structure at the reinforced area. The system facilitates grout injection and solidification. The protective plate 201 and limiting rod 202 can be customized to fit the structure of the reinforced area. Multiple clamping plates 203 can be adjusted as needed, ensuring convenient and quick operation. The movable bases 101 are connected by bolts. The discharge port of the conveying pump 102 is equipped with a conveying pipe that connects to the upper part of the support frame 104. The first mounting frame 103, movable base 101, conveying pump 102, hopper 105, and mixing tank 107 are all connected by bolts. The hopper 105 and the inlet of the conveying pump 102 are connected by a flange. The second mounting bracket 109, the upper cover 106, and the stirring motor 110 are all connected by bolts. The upper cover 106 and the hopper 105 are also connected by bolts. The driving wheel 111 and the driven wheel 112 are connected by meshing. The driving wheel 111 and the stirring motor 110 are connected by a spline connection. The driven wheel 112 and the upper cover 106 are connected by bearings. The rotating shaft 114 and the mixing tank 107 are connected by threads. The rotating shaft 114, the stirring shaft 108, and the driven wheel 112 are connected by bearings. A discharge port baffle 113 is provided at the lower end of the mixing tank 107 near the edge. The slurry is connected to the mixing tank 107. When making the slurry, the raw materials are put into the mixing tank 107 and the mixing motor 110 is started. The driving wheel 111 drives the driven wheel 112 and the mixing shaft 108 to mix. After mixing is completed, the pull rod 115 is pulled to move the discharge port baffle 113 to the discharge port of the mixing tank 107, so that the mixture enters the hopper 105 and is transported to the protective plate 201 through the conveying pump 102 and the pipeline. When not in use, the pipeline on the conveying pump 102 can be stored and wound on the support frame 104. The slurry making component 1 can be moved to the required site, which is convenient to operate and saves more time and effort.
[0026] Although 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 alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A structural reinforcement grouting structure, comprising a grout preparation component (1) and a grouting component (2), characterized in that: The slurry preparation component (1) is provided with a grouting component (2) on one side; The slurry preparation assembly (1) consists of a movable base (101), a delivery pump (102), a first mounting frame (103), a support frame (104), a hopper (105), a top cover (106), a mixing tank (107), a mixing shaft (108), a second mounting frame (109), a mixing motor (110), a drive wheel (111), a driven wheel (112), a discharge port baffle (113), a rotating shaft (114), and a pull rod (115). The movable base (101) is connected to the first mounting frame (103) and the support frame (104) at its upper end. The first mounting frame (103) is connected to the mixing tank (107) at its upper end. The mixing tank (107) is connected to the top cover (106) at its upper end. The mixing tank (107) is provided with a hopper (105) below it. The lower end of the hopper (105) is connected to a conveying pump (102). The upper cover (106) is connected to a second mounting bracket (109). The second mounting bracket (109) is connected to a stirring motor (110). The upper end of the stirring motor (110) is connected to a drive wheel (111). The drive wheel (111) is connected to a driven wheel (112) on one side. The lower end of the driven wheel (112) is connected to a stirring shaft (108). The stirring shaft (108) is provided with a rotating shaft (114) in the middle. The lower end of the rotating shaft (114) is connected to a discharge port baffle (113). The upper end of the rotating shaft (114) is connected to a pull rod (115). The injection assembly (2) consists of a protective plate (201), a limiting rod (202) and a clamping plate (203), and the clamping plate (203) is provided with a protective plate (201) inside, and the upper two sides of the clamping plate (203) are connected to the limiting rod (202).
2. The structural reinforcement grouting structure according to claim 1, characterized in that: The movable base (101) and the movable base (102) are connected by bolts, and the discharge port of the conveying pump (102) is provided with a conveying pipe that is sleeved and connected to the upper part of the support frame (104).
3. The structural reinforcement grouting structure according to claim 1, characterized in that: The first mounting bracket (103) and the movable base (101), the conveying pump (102), the hopper (105), and the mixing tank (107) are all connected by bolts, and the hopper (105) and the feed inlet of the conveying pump (102) are connected by flanges.
4. The structural reinforcement grouting structure according to claim 1, characterized in that: The second mounting bracket (109) and the upper cover (106) and the stirring motor (110) are all connected by bolts. The upper cover (106) and the hopper (105) are connected by bolts. The driving wheel (111) and the driven wheel (112) are connected by meshing. The driving wheel (111) and the stirring motor (110) are connected by spline connection. The driven wheel (112) and the upper cover (106) are connected by bearings.
5. The structural reinforcement grouting structure according to claim 1, characterized in that: The rotating shaft (114) and the mixing tank (107) are connected by threads. The rotating shaft (114) is connected to the mixing shaft (108) and the driven wheel (112) by bearings. The lower end of the mixing tank (107) near the edge is provided with a sliding groove that fits with the discharge port baffle (113).
6. The structural reinforcement grouting structure according to claim 1, characterized in that: After the protective plate (201) is sleeved on the structural reinforcement, it is limited and clamped by multiple sets of clamping plates (203), and the multiple sets of clamping plates (203) are connected by bolts. The limiting rod (202) and the clamping plate (203) are connected by sleeve.