Brickwork rear plug opening inclined building control tool
Through the inclined masonry control tooling, the feed pipe and push plate are used to apply pressure to the mortar, which solves the problem that the gap between the inclined bricks and the bottom of the beam is difficult to fully fill, and improves the integrity and thermal insulation performance of the wall.
Patent Information
- Application Number
- CN202422044696.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-22
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-08-22
AI Technical Summary
In masonry construction, the gap between the oblique bricks and the bottom of the beam is difficult to fully fill, affecting the integrity, stability and thermal insulation performance of the wall.
The tooling is controlled by oblique masonry rear plug port, and the two sides of the rear plug port are clamped through the tooling plate, and the mortar is applied by feeding pipes and pushing plates to extrude the mortar into the gap. The electric telescopic rod and adjustment mechanism are combined to adapt to different beam body widths to achieve full filling.
It effectively improves the full filling of the gap between the inclined brickwork and the bottom of the beam, improves the integrity and stability of the wall, and enhances the thermal insulation performance.
Smart Images

Figure CN223048477U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of post-insertion joints of masonry, in particular to an inclined masonry control tooling for post-insertion joints of masonry. Background Technique
[0002] During the construction of masonry, a post-insertion joint needs to be left between the bottom of the beam and the horizontally laid masonry bricks. Subsequently, the gap between the post-insertion joint and the bottom of the beam is filled by inclined masonry and mortar to enhance the integrity and stability of the masonry.
[0003] However, during the subsequent process of filling the post-insertion joint by inclined masonry, there is still a large gap between the inclined masonry bricks and the bottom of the beam, and mortar is required to fill the gap. However, it is difficult to fully fill the gap between the bricks and the bottom of the beam during mortar filling, resulting in the impact on the integrity, stability, heat preservation and other properties of the wall.
[0004] Therefore, we propose an inclined masonry control tooling for post-insertion joints of masonry. Content of the Utility Model
[0005] In view of the problem existing in the prior art that during the subsequent process of filling the post-insertion joint by inclined masonry, there is still a large gap between the inclined masonry bricks and the bottom of the beam, and mortar is required to fill the gap. However, it is difficult to fully fill the gap between the bricks and the bottom of the beam during mortar filling, resulting in the impact on the integrity, stability, heat preservation and other properties of the wall, the main purpose of the utility model is to provide an inclined masonry control tooling for post-insertion joints of masonry.
[0006] The technical solution of the utility model is as follows: an inclined masonry control tooling for post-insertion joints of masonry, including a beam body. A plurality of horizontally laid masonry bricks are stacked at the bottom of the beam body. A post-insertion joint main body is reserved between the beam body and the plurality of horizontally laid masonry bricks. A plurality of inclined masonry bricks are stacked inside the post-insertion joint main body. An L-shaped tooling plate one is arranged on one side of the beam body, and a tooling plate two is arranged on the other side of the beam body. Accommodation grooves are respectively opened on the sides of the tooling plate one and the tooling plate two close to each other. Push plates are respectively slidably connected inside the accommodation grooves. Feeding pipes are respectively fixedly connected to the tops of the tooling plate one and the tooling plate two. One end of the feeding pipe extends into the corresponding accommodation groove.
[0007] By adopting the above technical solution, mortar is poured into the accommodation groove through the feeding pipe, and then the push plate in the accommodation groove is driven to apply pressure to the mortar, extruding the mortar into the post-insertion joint main body and fully filling the gap between the bricks and the bottom of the beam body, thereby being able to improve the problem that it is difficult to fully fill the gap between the inclined masonry bricks and the bottom of the beam body.
[0008] As a preferred embodiment, pushing mechanisms are provided on the outer sides of the tooling plate one and the tooling plate two. The pushing mechanisms include two electric telescopic rods fixedly installed on the outer sides of the tooling plate two and the tooling plate one. The piston rods of the electric telescopic rods extend into the accommodating grooves and are fixedly connected to the corresponding pushing plates.
[0009] By adopting the above technical solution, the piston rods of the electric telescopic rods push the corresponding pushing plates to slide in the accommodating grooves, so as to apply pressure to the mortar in the rear plugging main body.
[0010] As a preferred embodiment, an adjusting mechanism is provided on the outer side of the beam body. The adjusting mechanism includes an adjusting plate slidably connected inside the tooling plate two. A screw rod is threadedly connected inside the tooling plate two. The screw rod is rotatably connected to the outer side of the adjusting plate. A rotating plate is rotatably connected to the side of the adjusting plate away from the tooling plate two.
[0011] By adopting the above technical solution, by screwing the screw rod, the adjusting plate can be driven to move inside the tooling plate two, so as to adjust the length of the adjusting plate, and thus adapt to beam bodies of different widths.
[0012] As a preferred embodiment, a locking mechanism is provided on the outer side of the beam body. The locking mechanism includes two locking plates fixedly connected to the side of the rotating plate close to the tooling plate one. A clamping groove for cooperating with the locking plates is formed inside the tooling plate one. The locking plates are clamped with the clamping groove. Through holes are formed in the locking plates. A long rod is inserted into the tooling plate one. The long rods penetrate through the through holes. External threads are provided on both sides of the long rod. Nuts are threadedly connected to both ends of the outer side of the long rod. The nuts are in contact with the outer side of the tooling plate one.
[0013] By adopting the above technical solution, by inserting the locking plates on the rotating plate into the corresponding clamping grooves and locking the rotating plate with the long rod and the nuts, the purpose of quickly installing the control tooling can be achieved.
[0014] As a preferred embodiment, a cooperating mechanism is provided on the outer side of the beam body. The cooperating mechanism includes a sliding groove formed inside the tooling plate one. A limiting block is slidably connected inside the sliding groove. A limiting plate is fixedly connected to one side of the limiting block. The side of the limiting plate away from the limiting block is fixedly connected to the tooling plate two.
[0015] By adopting the above technical solution, it can cooperate with the adjusting plate to move, so as to clamp beam bodies of different widths.
[0016] As a preferred embodiment, sealing gaskets are fixedly connected to the sides of the first tooling plate and the second tooling plate that are close to each other and located on the outer periphery of the accommodating groove. A flange is provided at the end of the material conveying pipe away from the second tooling plate. Handles are fixedly connected to the sides of the first tooling plate and the second tooling plate that are away from each other.
[0017] By adopting the above technical solution, through the arrangement of the sealing gasket, the sealing performance between the beam body and the first tooling plate and the second tooling plate is improved.
[0018] As a preferred embodiment, two mounting plates are fixedly connected to the tops of the first tooling plate and the second tooling plate, and mounting holes are formed inside the mounting plates.
[0019] By adopting the above technical solution, it is convenient to carry out grouting operations.
[0020] Compared with the prior art, the advantages and positive effects of the present utility model are as follows:
[0021] 1. In the present utility model, when the subsequent inclined masonry brick is filled into the plugging main body, the first tooling plate and the second tooling plate can be clamped on both sides of the plugging main body. Then, the material conveying pipe is connected to the output end of the mortar pump through the flange, and mortar is poured into the accommodating groove through the material conveying pipe. Then, the push plate in the accommodating groove is driven to apply pressure to the mortar, extruding the mortar into the plugging main body and fully filling the gap between the brick and the bottom of the beam body, thereby being able to improve the problem that it is difficult to fully fill the gap between the inclined masonry brick and the bottom of the beam body.
[0022] 2. In the present utility model, by turning the screw rod, the adjusting plate can be driven to move inside the second tooling plate, and thus the length of the adjusting plate can be adjusted, so as to adapt to the use of beam bodies with different widths, improve the applicability of the tooling, and lock the rotating plate through the long rod and the nut, thereby achieving the purpose of quickly installing the control tooling. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 is the overall three-dimensional view of the present utility model;
[0024] Figure 2 is the overall structural schematic diagram of the present utility model;
[0025] Figure 3 is the present utility model Figure 1 The enlarged view at A in.
[0026] Legend: 1. Beam body; 2. Tooling plate 1; 3. Rear plugging opening main body; 4. Electric telescopic rod; 5. Tooling plate 2; 6. Screw rod; 7. Adjusting plate; 8. Chute; 9. Limiting plate; 10. Accommodating groove; 11. Pushing plate; 12. Sealing gasket; 13. Feeding pipe; 14. Rotating plate; 15. Locking plate; 16. Card slot; 17. Long rod; 18. Nut. Detailed implementation manners
[0027] The following will clearly and completely describe the technical solutions in the embodiments of the present application with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present application.
[0028] Refer to Figures 1-3 , a control tooling for inclined masonry of the rear plugging opening of masonry, including a beam body 1. A plurality of horizontally laid bricks are stacked at the bottom of the beam body 1. A rear plugging opening main body 3 is reserved between the beam body 1 and the plurality of horizontally laid bricks. A plurality of inclined bricks are stacked inside the rear plugging opening main body 3. An L-shaped tooling plate 1 is arranged on one side of the beam body 1, and a tooling plate 2 is arranged on the other side of the beam body 1. Accommodating grooves 10 are respectively formed on the sides of the tooling plate 1 and the tooling plate 2 close to each other. Pushing plates 11 are respectively slidably connected inside the accommodating grooves 10. Feeding pipes 13 are respectively fixedly connected to the tops of the tooling plate 1 and the tooling plate 2. One end of the feeding pipe 13 extends into the corresponding accommodating groove 10. When the inclined bricks are filled into the rear plugging opening main body 3 subsequently, the tooling plate 1 and the tooling plate 2 can be clamped on both sides of the rear plugging opening main body 3, and then the feeding pipe 13 is connected to the output end of the mortar pump through a flange, and mortar is poured into the accommodating groove 10 through the feeding pipe 13, and then the pushing plates 11 in the accommodating grooves 10 are driven to apply pressure to the mortar, extrude the mortar into the rear plugging opening main body 3, and fully fill the gap between the bricks and the bottom of the beam body 1, thereby being able to improve the problem that it is difficult to fully fill the gap between the inclined bricks and the bottom of the beam body 1.
[0029] Refer to Figure 1 , a pushing mechanism is arranged on the outer sides of the tooling plate 1 and the tooling plate 2. The pushing mechanism includes two electric telescopic rods 4 fixedly installed on the outer sides of the tooling plate 2 and the tooling plate 1. The piston rods of the electric telescopic rods 4 extend into the accommodating grooves 10 and are fixedly connected to the corresponding pushing plates 11. By starting the electric telescopic rods 4, the corresponding pushing plates 11 can be pushed by the piston rods of the electric telescopic rods 4 to slide in the accommodating grooves 10, thereby being able to apply pressure to the mortar in the rear plugging opening main body 3.
[0030] Refer to Figure 1, an adjusting mechanism is provided on the outer side of the beam body 1. The adjusting mechanism includes an adjusting plate 7 slidably connected inside the second tooling plate 5. A screw rod 6 is threadedly connected inside the second tooling plate 5. The screw rod 6 is rotationally connected to the outer side of the adjusting plate 7. One side of the adjusting plate 7 away from the second tooling plate 5 is rotationally connected to a rotating plate 14. By turning the screw rod 6, the adjusting plate 7 can be driven to move inside the second tooling plate 5, and then the length of the adjusting plate 7 can be adjusted, so as to be able to adapt to beam bodies 1 of different widths for use, thereby improving the applicability of the tooling.
[0031] Refer to Figure 3 , a locking mechanism is provided on the outer side of the beam body 1. The locking mechanism includes two locking plates 15 fixedly connected to one side of the rotating plate 14 close to the first tooling plate 2. A clamping groove 16 for cooperating with the locking plates 15 is formed inside the first tooling plate 2. The locking plates 15 are clamped with the clamping groove 16. Through holes are formed inside the locking plates 15. A long rod 17 is inserted inside the first tooling plate 2. The long rod 17 passes through the inside of the through holes. External threads are provided on both sides of the long rod 17. Nuts 18 are threadedly connected to both ends of the outer side of the long rod 17. The nuts 18 are both in contact with the outer side of the first tooling plate 2. By inserting the locking plates 15 on the rotating plate 14 into the corresponding clamping grooves 16 and locking the rotating plate 14 through the long rod 17 and the nuts 18, the purpose of quickly installing the control tooling can be achieved. At the same time, the detachable rotating plate 14 is provided, so that the whole masonry post-insertion inclined masonry control tooling can be disassembled from the beam body 1.
[0032] Refer to Figure 2 , a cooperating mechanism is provided on the outer side of the beam body 1. The cooperating mechanism includes a sliding groove 8 formed inside the first tooling plate 2. A limiting block is slidably connected inside the sliding groove 8. One side of the limiting block is fixedly connected to a limiting plate 9. The side of the limiting plate 9 away from the limiting block is fixedly connected to the second tooling plate 5. When the length of the adjusting plate 7 and the rotating plate 14 in the adjusting mechanism gradually increases or decreases, the limiting plate 9 in the sliding groove 8 will move, and then can cooperate with the adjusting plate 7 to move, so as to be able to clamp beam bodies 1 of different widths.
[0033] Refer to Figure 2 , sealing gaskets 12 are fixedly connected to the sides of the first tooling plate 2 and the second tooling plate 5 close to each other and located on the outer periphery of the accommodating groove 10. A flange is provided at one end of the material conveying pipe 13 away from the second tooling plate 5. Handles are fixedly connected to the sides of the first tooling plate 2 and the second tooling plate 5 away from each other. Through the setting of the sealing gaskets 12, the sealing performance between the beam body 1 and the first tooling plate 2 and the second tooling plate 5 can be improved, and the phenomenon of mortar leakage during sand filling can be reduced.
[0034] Refer to Figure 1, two mounting plates are fixedly connected to the tops of the fixture plate one 2 and the fixture plate two 5 respectively. Mounting holes are formed inside the mounting plates, and fixing bolts can be used to install the mounting plates around the rear plugging opening main body 3 through the mounting holes, so as to facilitate the grouting operation.
[0035] Working principle: When subsequently filling the rear plugging opening main body 3 with the inclined masonry bricks, first, by turning the screw rod 6, the adjusting plate 7 can be driven to move inside the fixture plate two 5, and then the length of the adjusting plate 7 can be adjusted, so as to adapt to beam bodies 1 with different widths for use, thereby improving the applicability of the fixture. And by inserting the locking plate 15 on the rotating plate 14 into the corresponding card slot 16 and locking the rotating plate 14 with the long rod 17 and the nut 18, the purpose of quickly installing the control fixture can be achieved;
[0036] Then, move the inclined masonry rear plugging control fixture to the vicinity of the rear plugging opening main body 3, and use fixing bolts to fix the control fixture on the beam body 1. Subsequently, the fixture plate one 2 and the fixture plate two 5 can be used to clamp both sides of the rear plugging opening main body 3, and the feeding pipe 13 is connected to the output end of the mortar pump through a flange plate. Mortar is poured into the accommodating groove 10 through the feeding pipe 13, and then the push plate 11 in the accommodating groove 10 is driven to apply pressure to the mortar, extruding the mortar into the rear plugging opening main body 3 and fully filling the gap between the brick body and the bottom of the beam body 1, thereby being able to improve the problem that it is difficult to fully fill the gap between the inclined masonry brick body and the bottom of the beam body 1.
[0037] The above are only the preferred embodiments of the present application and are not used to limit the present application. Although the present application has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present application shall be included within the protection scope of the present application.
Claims
1. A masonry rear plugging inclined masonry control tool, comprising a beam body (1), characterized in that: A plurality of horizontal brick bodies are stacked at the bottom of the beam body (1), a rear plug body (3) is reserved between the beam body (1) and the plurality of horizontal brick bodies, a plurality of oblique brick bodies are stacked inside the rear plug body (3), a tooling plate 1 (2) of an L-shaped structure is arranged on one side of the beam body (1), a tooling plate 2 (5) is arranged on the other side of the beam body (1), a receiving groove (10) is provided on the side where the tooling plate 1 (2) and the tooling plate 2 (5) are close to each other, a push plate (11) is slidably connected inside the receiving groove (10), a material conveying pipe (13) is fixedly connected at the top of the tooling plate 1 (2) and the tooling plate 2 (5), and one end of the material conveying pipe (13) extends to the inside of the corresponding receiving groove (10).
2. A masonry rear plugging and oblique masonry control tool as claimed in claim 1, characterized in that: The outer sides of the tooling plate 1 (2) and the tooling plate 2 (5) are both provided with a pushing mechanism, the pushing mechanism comprising two electric telescopic rods (4) fixedly mounted on the outer sides of the tooling plate 2 (5) and the tooling plate 1 (2), the piston rods of the electric telescopic rods (4) both extending into the interior of the accommodating groove (10) and fixedly connected to the corresponding pushing plates (11).
3. The tooling for controlling the oblique masonry after plugging of masonry according to claim 1, characterized in that: An adjustment mechanism is provided on the outer side of the beam body (1), the adjustment mechanism comprising an adjustment plate (7) slidably connected to the interior of the second tooling plate (5), the interior of the second tooling plate (5) being threadedly connected to a screw rod (6), the screw rod (6) being rotationally connected to the outer side of the adjustment plate (7), and a rotating plate (14) being rotationally connected to a side of the adjustment plate (7) away from the second tooling plate (5).
4. The tooling for controlling the oblique masonry after plugging of masonry according to claim 1, characterized in that: The outer side of the beam body (1) is provided with a locking mechanism, the locking mechanism comprising two locking plates (15) fixedly connected to the rotating plate (14) near the side of the tooling plate (2), the tooling plate (2) is provided with a slot (16) for use with the locking plates (15), the locking plates (15) are engaged with the slot (16), the locking plates (15) are provided with through holes, the tooling plate (2) is inserted with a long rod (17), the long rod (17) is inserted into the through hole, both sides of the long rod (17) are provided with external threads, the two ends of the outer side of the long rod (17) are threadedly connected with nuts (18), the nuts (18) are in conflict with the outer side of the tooling plate (2).
5. The tooling for controlling the oblique masonry after plugging of masonry according to claim 1, characterized in that: A matching mechanism is provided on the outer side of the beam body (1), the matching mechanism comprising a slide groove (8) provided inside the tooling plate (2), the interior of the slide groove (8) being slidably connected to a limit block, one side of the limit block being fixedly connected to a limit plate (9), and the side of the limit plate (9) away from the limit block being fixedly connected to the tooling plate (5).
6. The tooling for controlling the oblique masonry after plugging of masonry according to claim 1, characterized in that: A sealing gasket (12) is fixedly connected to the side of the tooling plate (2) close to the tooling plate (5) and located on the outer periphery of the accommodating groove (10), a flange is provided at one end of the conveying pipe (13) away from the tooling plate (5), and a handle is fixedly connected to the side of the tooling plate (2) away from the tooling plate (5).
7. The tooling for controlling the oblique masonry after plugging of masonry according to claim 1, characterized in that: The tops of the tooling plate 1 (2) and the tooling plate 2 (5) are fixedly connected to two mounting plates, and mounting holes are provided inside the mounting plates.