Water pumping glass equipment for secondary grouting
Through an improved snap-fit mechanism and multi-layer coating design, the problems of inconvenient disassembly and easy damage to glass tubes in traditional water pumping glass equipment have been solved, enabling quick connection and disassembly, and improving the ease of maintenance and service life of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CIVIL ENG OF CHINA CONSTR SECOND ENG BURESU
- Filing Date
- 2025-04-03
- Publication Date
- 2026-04-21
AI Technical Summary
Traditional water pumping glass equipment is inconvenient to disassemble and reassemble, and ordinary glass tubes are brittle, have limited pressure resistance, and are easily damaged.
The glass tube is assembled and disassembled quickly by means of a snap-fit mechanism, including a connector, snap-fit seat, sealing ring, connecting ring plate, arc plate, spring and adjusting bolt; the outer layer of the glass tube is coated with a corrosion-resistant, heat-insulating, fire-resistant, sun-proof and scratch-resistant coating to improve durability.
It enables quick connection and disassembly of glass tubes, facilitating equipment maintenance and improving the mechanical strength, fire resistance, and service life of the glass tubes.
Smart Images

Figure CN224148708U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of pumping glass equipment for secondary grouting, and specifically to a pumping glass equipment for secondary grouting. Background Technology
[0002] Secondary grouting is an important process in construction engineering for reinforcing foundations and filling voids. Therefore, it is necessary to invent a pumping glass device for secondary grouting.
[0003] Traditional water glass pumping equipment has the following problems: when pumping water glass, the glass tubes are inconvenient to disassemble and connect, making equipment maintenance difficult; and ordinary glass tubes (such as high borosilicate glass) are brittle and have limited pressure resistance, which can cause damage to the glass tubes during grouting. Utility Model Content
[0004] The purpose of this invention is to provide a pumping glass device for secondary grouting to solve the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:
[0006] A pumping glass device for secondary grouting includes a storage tank, a movable wheel plate fixedly connected to one end of the storage tank, a connecting pipe fixedly connected to one side of the storage tank, a snap-fit mechanism installed at one end of the connecting pipe, a glass tube installed at one end of the snap-fit mechanism, an axial flow pump installed at one end of the glass tube, a glass grout outlet pipe installed at one end of the axial flow pump via the snap-fit mechanism, and a grouting pipe installed at one end of the glass grout outlet pipe.
[0007] The snap-fit mechanism includes a connecting seat, which is threaded to one end of the glass tube. A snap-fit seat is snapped onto one side of the connecting seat. A second sealing ring and a first sealing ring are vertically arranged inside both the connecting seat and the snap-fit seat. A snap-fit element is provided between the connecting seat and the snap-fit seat. A guide tube is inserted between the first sealing ring and the second sealing ring.
[0008] A further improvement of this utility model is that the snap-fit component includes a connecting ring plate, an arc-shaped plate, an arc-shaped limiting block, and a spring. A connecting ring plate is provided on one side of the connecting seat. Several limiting cavities are equidistantly opened inside one side of the connecting ring plate. An arc-shaped plate is movably installed within each limiting cavity. Several springs are equidistantly fixed to the inner arc surface of each arc-shaped plate, and the inner end of each spring is fixed to the inner bottom surface of the limiting cavity. An arc-shaped limiting block is fixed to the outer arc surface of each arc-shaped plate, and the outer end of the arc-shaped limiting block movably extends out of the limiting cavity. A connecting groove is provided on the inner wall of the outer opening of the connecting seat to match the connecting ring plate, allowing the connecting ring plate on the snap-fit seat to be threaded into the connecting groove of the connecting seat. When the connecting ring plate is continuously threaded into the connecting groove, it facilitates the compression of the arc-shaped limiting block into the limiting cavity through the inner wall of the connecting groove.
[0009] A further improvement of this utility model is that: the inner wall of the connecting groove is provided with several equidistant limiting grooves on the inner side of the connecting groove, and the outer end of each of the arc-shaped limiting blocks is movably inserted into the limiting groove; a sealing ring is vertically fixed to one side of the connecting ring plate, and an annular sealing groove is provided in the middle of the inner end face of the connecting groove in conjunction with the sealing ring, and the inner end of the sealing ring abuts against the sealing groove. When the connecting ring plate is threaded to the bottom of the connecting groove, it is convenient to push the arc-shaped plate outward under the elastic force of the spring.
[0010] A further improvement of this utility model is that: the outer side of the surface of the connecting seat is provided with several threaded holes with equidistant matching limiting grooves, and each threaded hole is threaded with an adjusting bolt.
[0011] A further improvement of this utility model's technical solution lies in the following: the glass tube includes a corrosion-resistant coating, the corrosion-resistant coating 45 improves the internal corrosion resistance, the corrosion-resistant coating is an epoxy resin coating, the outer side of the corrosion-resistant coating is fixedly connected to the inner layer of the glass tube, the outer side of the inner layer of the glass tube is fixedly connected to the outer layer of the glass tube, and the outer side of the outer layer of the glass tube is fixedly connected to a heat-insulating and fire-resistant reinforcing layer, the heat-insulating and fire-resistant reinforcing layer includes a cesium potassium fire-resistant glass layer, a heat-insulating layer and a braided reinforcing layer, the cesium potassium fire-resistant glass layer improves the fire resistance, the braided reinforcing layer formed by interwoven irregular fibers and metal wires improves the sun protection performance through the sun-protective coating, and the scratch-resistant coating improves the surface scratch resistance, the scratch-resistant coating is a transparent polyurethane coating, and the light transmittance of the scratch-resistant coating is greater than 90%.
[0012] A further improvement of this utility model is that: a sun-protective coating is fixedly connected to the outer side of the heat-insulating and fire-resistant reinforcing layer, and a scratch-resistant coating is fixedly connected to the outer side of the sun-protective coating.
[0013] Due to the adoption of the above technical solution, the technological progress achieved by this utility model compared to the prior art is as follows:
[0014] This utility model provides a pumping glass device for secondary grouting. A connecting ring plate on a snap-fit seat is threaded into the connecting groove of the connecting seat. As the connecting ring plate continues to be threaded into the connecting groove, it facilitates the compression of the arc-shaped limiting block into the limiting cavity through the inner wall of the connecting groove, thus compressing the spring. When the connecting ring plate is threaded to the bottom of the connecting groove, the arc-shaped plate is easily pushed outward by the spring force. This outward movement of the arc-shaped plate facilitates the locking of the arc-shaped limiting block into the upper limiting groove on the inner wall of the connecting groove, enabling rapid splicing of the glass tubes at both ends. When disassembly is required, rotating the adjusting bolt into the limiting groove lowers the bolt, pushing the arc-shaped limiting block out of the limiting groove. Then, rotating the snap-fit seat drives the connecting ring plate out of the connecting groove to complete disassembly. This facilitates equipment maintenance and reduces maintenance costs.
[0015] This utility model provides a pumping glass device for secondary grouting. The heat insulation and fireproof reinforcement layer includes a cesium potassium fireproof glass layer, a heat insulation layer, and a woven reinforcement layer. The cesium potassium fireproof glass layer improves fire resistance. The woven reinforcement layer, composed of irregularly shaped fibers and metal wires, has good mechanical strength and shock resistance. The heat insulation layer, composed of borosilicate-modified polyvinyl butyral resin and silica aerogel particles, has good flame retardancy and high temperature resistance, improving flame retardancy, high temperature resistance, and durability. The sun protection coating improves sun protection performance, and the scratch-resistant coating improves surface scratch resistance. The scratch-resistant coating is a transparent polyurethane coating with a light transmittance greater than 90%. The corrosion-resistant coating improves internal corrosion resistance. The corrosion-resistant coating is an epoxy resin coating, further improving service life and durability. This solves the problems of ordinary glass tubes being easily damaged and having poor strength, thereby improving the durability of pumping water glass. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0017] Figure 2 This is a cross-sectional structural diagram of the snap-fit mechanism of this utility model;
[0018] Figure 3 for Figure 2 Schematic diagram of the structure at point A in the middle section;
[0019] Figure 4 This is a schematic diagram of the arc-shaped limiting block of this utility model;
[0020] Figure 5 This is a schematic diagram of the structure of the glass tube of this utility model.
[0021] In the diagram: 1. Storage tank; 2. Connecting pipe; 3. Snap-fit mechanism; 30. Connecting seat; 31. Snap-fit seat; 32. First sealing ring; 33. Second sealing ring; 34. Guide pipe; 35. Snap-fit component; 350. Adjusting bolt; 351. Arc-shaped limiting block; 352. Spring; 353. Sealing ring; 354. Arc-shaped plate; 355. Connecting ring plate; 4. Glass tube; 40. Scratch-resistant coating; 41. Sunscreen coating; 42. Heat-insulating and fire-resistant reinforcing layer; 43. Outer layer of glass tube; 44. Inner layer of glass tube; 45. Corrosion-resistant coating; 5. Axial flow pump; 6. Glass slurry outlet pipe; 7. Grouting pipe; 8. Moving wheel plate. Detailed Implementation
[0022] The present invention will be further described in detail below with reference to embodiments:
[0023] Example 1
[0024] like Figures 1-5 As shown, this utility model provides a pumping glass device for secondary grouting, including a storage tank 1, a movable wheel plate 8 fixedly connected to one end of the storage tank 1, a connecting pipe 2 fixedly connected to one side of the storage tank 1, a snap-fit mechanism 3 installed at one end of the connecting pipe 2, a glass tube 4 installed at one end of the snap-fit mechanism 3, an axial flow pump 5 installed at one end of the glass tube 4, a glass grout outlet pipe 6 installed at one end of the axial flow pump 5 through the snap-fit mechanism 3, and a grouting pipe 7 installed at one end of the glass grout outlet pipe 6.
[0025] The snap-fit mechanism 3 includes a connecting seat 30, which is threaded to one end of the glass tube 4. A snap-fit seat 31 is snapped onto one side of the connecting seat 30. A second sealing ring 33 and a first sealing ring 32 are vertically arranged inside both the connecting seat 30 and the snap-fit seat 31. A snap-fit component 35 is provided between the connecting seat 30 and the snap-fit seat 31. A guide tube 34 is inserted between the first sealing ring 32 and the second sealing ring 33. The snap-fit component 35 includes a connecting ring plate 355, an arc plate 354, an arc-shaped limiting block 351, and a spring 352. A connecting ring plate 355 is provided on one side of the connecting seat 30. Several limiting cavities are equally spaced inside one side of the connecting ring plate 355. An arc plate 354 is movably arranged in each limiting cavity. Several springs 352 are equally spaced and fixed on the inner arc surface of each arc plate 354. All ends are fixedly connected to the inner bottom surface of the limiting cavity. Arc-shaped limiting blocks 351 are fixedly connected to the outer arc surface of the arc plate 354. The outer end of the arc-shaped limiting block 351 moves through the limiting cavity. The inner wall of the outer opening of the connecting seat 30 is provided with a connecting groove to match the connecting ring plate 355. The inner side of the inner wall of the connecting groove is provided with several limiting grooves equidistantly provided with the arc-shaped limiting blocks 351. The outer end of each arc-shaped limiting block 351 is movably inserted into the limiting groove. A sealing ring 353 is vertically fixed to one side of the connecting ring plate 355. A ring-shaped sealing groove is provided in the middle of the inner end face of the connecting groove to match the sealing ring 353. The inner end of the sealing ring 353 abuts against the sealing groove. Several threaded holes are provided equidistantly on the outer side of the surface of the connecting seat 30 to match the limiting groove. An adjusting bolt 350 is threaded into each threaded hole.
[0026] Specifically, when it is necessary to connect the two glass tubes, the connecting seat 30 is threaded onto one end of the glass tube 4, and the other end of the glass tube 4 is threaded onto the snap-fit seat 31. The connecting ring plate 355 on the snap-fit seat 31 is threaded into the connecting groove of the connecting seat 30. As the connecting ring plate 355 continues to be threaded into the connecting groove, it facilitates the compression of the arc-shaped limiting block 351 into the limiting cavity through the inner wall of the connecting groove, which facilitates the compression of the spring 352. When the connecting ring plate 355 is threaded to the bottom of the connecting groove, it facilitates the compression of the spring 352 under the elastic force of the spring. This facilitates the outward movement of the arc-shaped plate 354, which in turn allows the arc-shaped limiting block 351 to be engaged in the upper limit groove on the inner wall of the connecting groove. This facilitates the rapid splicing of the two glass tubes 4 and also allows for their separation. When disassembly is required, rotating the adjusting bolt 350 into the limiting groove lowers the arc-shaped limiting block 351, which is engaged in the limiting groove, and then rotating the locking seat 31 causes the connecting ring plate 355 to exit the connecting groove, thus completing the disassembly.
[0027] Example 2
[0028] like Figures 1-5As shown, based on Embodiment 1, this utility model provides a technical solution: Preferably, the glass tube 4 includes a corrosion-resistant coating 45, an inner glass tube 44 is fixedly connected to the outside of the corrosion-resistant coating 45, an outer glass tube 43 is fixedly connected to the outside of the inner glass tube 44, a heat-insulating and fire-resistant reinforcing layer 42 is fixedly connected to the outside of the outer glass tube 43, a sun-proof coating 41 is fixedly connected to the outside of the heat-insulating and fire-resistant reinforcing layer 42, and a scratch-resistant coating 40 is fixedly connected to the outside of the sun-proof coating 41.
[0029] Specifically, a heat-insulating and fire-resistant reinforcing layer 42 is provided on the outer layer 43 of the glass tube. The heat-insulating and fire-resistant reinforcing layer 42 includes a cesium potassium fire-resistant glass layer, a heat insulation layer, and a braided reinforcing layer. The cesium potassium fire-resistant glass layer improves the fire resistance. The braided reinforcing layer, which is made of irregularly shaped fibers and metal wires, has good mechanical strength and shock resistance. The heat insulation layer, composed of borosilicate-modified polyvinyl butyral resin and silica aerogel particles, has good flame retardancy and high temperature resistance, improving flame retardancy, high temperature resistance, and durability. The sun-protective coating 41 improves the sun protection performance, and the scratch-resistant coating 40 improves the surface scratch resistance. The scratch-resistant coating 40 is a transparent polyurethane coating with a light transmittance of more than 90%. The corrosion-resistant coating 45 improves the internal corrosion resistance. The corrosion-resistant coating 45 is an epoxy resin coating, further improving the service life and durability. This solves the problems of ordinary glass tubes being easily damaged, having poor strength and other properties, and being not durable enough.
[0030] The working principle of this secondary grouting pumping glass equipment will be explained in detail below:
[0031] like Figures 1-5As shown, a storage tank 1 is used to store water glass. One end of the storage tank 1 is fixedly connected to a connecting pipe 2, and a clamping mechanism 3 is installed at one end of the connecting pipe 2. The clamping mechanism 3 is used to connect another glass tube 4. One end of the other glass tube 4 is also equipped with the clamping mechanism 3, and an axial flow pump 5 is installed at one end of the clamping mechanism 3. The axial flow pump 5 drives the water glass in the storage tank 1 to be drawn out and then transmitted from the other end of the axial flow pump 5. One end of the axial flow pump 5 is clamped to the glass slurry outlet pipe 6 through the clamping mechanism 3. The axial flow pump 5 transmits the water glass to the grouting pipe 7 through the glass slurry outlet pipe 6 for grouting. When the glass tube 4 needs to be replaced, the connecting seat 30 is threaded to one end of the glass tube 4, and the other end of the glass tube 4 is threaded to the clamping seat 31. The connecting ring plate 355 on the clamping seat 31 is threaded into the connecting groove of the connecting seat 30. When the connecting ring plate 355 is continuously threaded into the connecting groove, it facilitates the compression of the arc-shaped limiting block 351 into the limiting cavity through the inner wall of the connecting groove, which in turn facilitates the compression of the spring 352. When the connecting ring plate 355 is threaded to the bottom of the connecting groove, it facilitates the movement of the arc-shaped plate 354 outward under the elastic force of the spring 352. The outward movement of the arc-shaped plate 354 facilitates the movement of the arc-shaped limiting block 351 into the upper limiting groove on the inner wall of the connecting groove, which facilitates the quick splicing of the two glass tubes 4 and the separation of the two glass tubes 4. When disassembly is required, the adjusting bolt 350 is rotated into the limiting groove. The lowering of the adjusting bolt 350 facilitates the pressing of the arc-shaped limiting block 351 out of the limiting groove. Then, the connecting ring plate 355 is driven out of the connecting groove by rotating the locking seat 31 to complete the disassembly.
[0032] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements that do not depart from the spirit of the present invention are within the protection scope of the present invention.
Claims
1. A pumping glass apparatus for secondary grouting, comprising a liquid storage tank (1), characterized in that: One end of the storage tank (1) is fixedly connected to a movable wheel plate (8), and one side of the storage tank (1) is fixedly connected to a connecting pipe (2). One end of the connecting pipe (2) is equipped with a snap-fit mechanism (3), one end of the snap-fit mechanism (3) is equipped with a glass tube (4), one end of the glass tube (4) is equipped with an axial flow pump (5), one end of the axial flow pump (5) is equipped with a glass slurry outlet pipe (6) through the snap-fit mechanism (3), and one end of the glass slurry outlet pipe (6) is equipped with a grouting pipe (7). The snap-fit mechanism (3) includes a connecting seat (30), which is threaded to one end of the glass tube (4). A snap-fit seat (31) is snapped onto one side of the connecting seat (30). A second sealing ring (33) and a first sealing ring (32) are vertically arranged inside both the connecting seat (30) and the snap-fit seat (31). A snap-fit member (35) is provided between the connecting seat (30) and the snap-fit seat (31). A guide tube (34) is inserted between the first sealing ring (32) and the second sealing ring (33).
2. The pumping glass equipment for secondary grouting according to claim 1, characterized in that: The snap-fit component (35) includes a connecting ring plate (355), an arc plate (354), an arc-shaped limiting block (351), and a spring (352). The connecting seat (30) has a connecting ring plate (355) on one side. The connecting ring plate (355) has several limiting cavities equidistantly arranged inside one side. The arc plate (354) is movably arranged in each limiting cavity. Several springs (352) are fixedly connected at equal intervals on the inner arc surface of each arc plate (354). The inner end of each spring (352) is fixedly connected to the inner bottom surface of the limiting cavity. The arc-shaped limiting block (351) is fixedly connected to the outer arc surface of each arc plate (354). The outer end of the arc-shaped limiting block (351) moves through the limiting cavity. The inner wall of the outer opening of the connecting seat (30) is provided with a connecting groove to cooperate with the connecting ring plate (355).
3. A water pumping glass apparatus for secondary grouting according to claim 2, characterized in that: The inner wall of the connecting groove is provided with several limiting grooves at equal intervals, which are matched with arc-shaped limiting blocks (351), and the outer end of each arc-shaped limiting block (351) is movably inserted into the limiting groove; a sealing ring (353) is vertically fixed to one side of the connecting ring plate (355), and a ring-shaped sealing groove is opened in the middle of the inner end face of the connecting groove in conjunction with the sealing ring (353), and the inner end of the sealing ring (353) abuts against the sealing groove.
4. The pumping apparatus for secondary grouting according to claim 3, wherein: The outer side of the surface of the connecting seat (30) is provided with several threaded holes that are equidistantly fitted with limiting grooves, and each of the threaded holes is threaded with an adjusting bolt (350).
5. The pumping apparatus for secondary grouting according to claim 1, wherein: The glass tube (4) includes a corrosion-resistant coating (45), and an inner glass tube layer (44) is fixedly connected to the outside of the corrosion-resistant coating (45). An outer glass tube layer (43) is fixedly connected to the outside of the inner glass tube layer (44), and a heat-insulating and fire-resistant reinforcing layer (42) is fixedly connected to the outside of the outer glass tube layer (43).
6. A water pumping glass apparatus for secondary grouting according to claim 5, characterized in that: The heat insulation and fireproof reinforcement layer (42) is fixedly connected to a sun protection coating (41), and the sun protection coating (41) is fixedly connected to a scratch-resistant coating (40).