Heat preservation structure of water supply pipeline
By introducing a connection mechanism into the insulation structure of the water supply pipe, the design of sliding holes, sliding chutes, sliders and elastic snaps can be used to achieve convenient disassembly and dust prevention, solving the problems of maintenance in the existing technology, and improving the use effect and efficiency of the insulation structure of the water supply pipe.
Patent Information
- Application Number
- CN202422302199.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-20
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-09-20
AI Technical Summary
The existing water supply pipe insulation structure is fixedly connected by tools and wire, which leads to inconvenience in maintenance, complicated dismantling process and easy to damage the insulation structure, affecting the use effect and efficiency.
The connecting mechanism is adopted, including the first arc block and the second arc block, through the cooperation of sliding holes, slides, sliders, elastic snaps and rubber rods, the insulation structure can be manually removed and avoided damage.
The maintenance process of water supply pipes is simplified, the use effect and efficiency of the insulation structure are improved, and dust is prevented from entering the slip hole.
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Figure CN223242408U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water supply pipelines, in particular to a water supply pipeline insulation structure. Background Art
[0002] A water supply pipe is a piping system used to transport various types of water resources, such as domestic water and industrial water. In cold areas, when the water temperature drops below freezing, the water in the pipe will freeze and expand. In order to prevent the pipe from bursting due to the expansion of ice, causing leakage or even flooding, people generally install insulation structures on the outer wall of the water supply pipe.
[0003] The existing water supply pipe insulation structure is generally fixedly connected to the water supply pipe by using tools and wire. Although this connection method can tightly connect the insulation structure to the water supply pipe, it is not convenient for later maintenance of the water supply pipe. That is, when the water supply pipe needs to be repaired later, since the wire is fixedly connected to the water supply pipe insulation structure by tools, the process of removing the wire is relatively complicated and requires the use of specific tools. In addition, the insulation structure is easily damaged if it is not operated with care. Once the insulation structure is damaged, cracks or breakages are likely to occur, thereby affecting the later insulation performance of the insulation structure, which not only reduces the use effect of the water supply pipe insulation structure, but also reduces the use efficiency of the water supply pipe insulation structure.
[0004] Therefore, it is necessary to propose a water supply pipeline insulation structure to solve the above-mentioned technical problems. Utility Model Content
[0005] The purpose of the present invention is to solve the problem that the existing water supply pipe insulation structure in the prior art is generally fixedly connected to the water supply pipe by the combination of tools and iron wire, and this connection method is inconvenient for the later maintenance of the water supply pipe. That is, when the water supply pipe needs to be repaired in the later period, since the iron wire is fixedly connected to the water supply pipe insulation structure by tools, the process of removing the iron wire is relatively complicated and requires the use of specific tools. In addition, the insulation structure is easily damaged if the operation is not done carefully. Once the insulation structure is damaged, cracks or breakages are likely to occur, thereby affecting the later thermal insulation performance of the insulation structure, reducing the use effect of the water supply pipe insulation structure, and also reducing the use efficiency of the water supply pipe insulation structure. A water supply pipe insulation structure is proposed.
[0006] In order to achieve the above-mentioned purpose, the present invention adopts the following technical solutions: a water supply pipe insulation structure, comprising: a pipe body and two insulation shells, wherein a connecting mechanism is provided between the two insulation shells;
[0007] The connecting mechanism includes two first arc blocks and two second arc blocks, each of the first arc blocks is provided with two symmetrical sliding holes on the surface, and each of the second arc blocks is provided with two symmetrical first sliding grooves on the side close to the sliding hole. A slider is slidably connected between the interior of each sliding hole and the interior of each first sliding groove, and an elastic clip is installed inside the two grooves of each slider. T-shaped holes are provided on both sides of the inner wall of each first sliding groove, and a rubber rod is movably sleeved inside each T-shaped hole.
[0008] Preferably, the two insulation shells are adapted to each other, the inner walls of the two insulation shells are in contact with the outer wall of the pipe body, the inner walls of the two first arc blocks are respectively bonded to the outer wall of one of the insulation shells near the two sides, and the two second arc blocks are respectively bonded to the outer wall of the other insulation shell near the two sides.
[0009] Preferably, the surface of each of the first arc-shaped blocks is in contact with a surface of each of the second arc-shaped blocks close to the sliding hole, and the clamping end of each of the elastic buckles is movably clamped in the interior of each T-shaped hole.
[0010] Preferably, an arc-shaped piece is fixed on the surface of each slider, a rubber sleeve is bonded to the outer surface of each arc-shaped piece, and a second sliding groove is formed on the inner wall of each sliding hole.
[0011] Preferably, an arc-shaped rod is fixed on the surface of each slider, an arc-shaped spring is installed on the surface of each slider, and an arc-shaped groove is formed on the inner wall of each sliding hole.
[0012] Preferably, each of the rubber sleeves is slidably connected to the inside of each second sliding groove, and the surface of each of the rubber sleeves is in contact with the inner wall of each sliding hole.
[0013] Preferably, one end of each arc spring away from the slider is respectively installed on the inner wall of each sliding hole, the outer surface of each arc rod is respectively movably sleeved inside each arc spring, and each arc rod is respectively movably sleeved inside each arc groove.
[0014] Compared with the prior art, the advantages and positive effects of the present invention are:
[0015] 1. In the present invention, by setting up a connecting mechanism, it is convenient to carry out maintenance of the water supply pipe in the later stage. That is, when the water supply pipe needs to be repaired in the later stage, the insulation structure can be manually removed from the water supply pipe. At the same time, the insulation structure will not be damaged during the manual removal of the insulation structure, which not only improves the use effect of the insulation structure of the water supply pipe, but also improves the use efficiency of the insulation structure of the water supply pipe. By cooperating with the elastic buckle and the T-shaped hole, the slider can be fixed between the inside of the corresponding sliding hole and the inside of the corresponding first sliding groove. By the action of the rubber rod, dust can be prevented from entering the inside of the corresponding first sliding groove from the corresponding T-shaped hole.
[0016] 2. In the present invention, the arc-shaped spring can be contracted and stretched along a certain trajectory by the cooperation of the arc-shaped rod and the arc-shaped groove. The cooperation of the arc-shaped sheet, the rubber sleeve, the second slide groove and the slider can prevent dust and other impurities from entering the corresponding slide hole. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 A three-dimensional diagram of a water supply pipe insulation structure proposed by the utility model;
[0018] Figure 2 This is a partial three-dimensional diagram of a water supply pipe insulation structure proposed by the utility model;
[0019] Figure 3 This is a partial cutaway perspective view of a water supply pipe insulation structure proposed by the utility model;
[0020] Figure 4 This is a partial sectional perspective view of a connection mechanism of a water supply pipe insulation structure proposed by the utility model;
[0021] Figure 5 The utility model provides a partial cross-sectional structural diagram of a water supply pipe insulation structure;
[0022] Figure 6 This is a partial three-dimensional view from another angle of the water supply pipe insulation structure proposed by the utility model.
[0023] Legend: 1. Pipe body; 2. Insulation shell; 3. Connecting mechanism; 301. First arc block; 302. Second arc block; 303. Sliding hole; 304. First sliding groove; 305. Slider; 306. Elastic buckle; 307. T-shaped hole; 308. Rubber rod; 4. Arc sheet; 5. Rubber sleeve; 6. Second sliding groove; 7. Arc rod; 8. Arc spring; 9. Arc groove. DETAILED DESCRIPTION
[0024] In order to more clearly understand the above-mentioned purpose, features and advantages of the present invention, the present invention is further described below with reference to the accompanying drawings and embodiments. It should be noted that the embodiments of the present application and the features therein can be combined with each other without conflict.
[0025] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways than those described herein. Therefore, the present invention is not limited to the specific embodiments disclosed in the following specification.
[0026] like Figures 1-6 As shown, the utility model provides a water supply pipe insulation structure, comprising: a pipe body 1 and two insulation shells 2, with a connecting mechanism 3 provided between the two insulation shells 2;
[0027] The connecting mechanism 3 includes two first arc blocks 301 and two second arc blocks 302. The surface of each first arc block 301 is provided with two symmetrical sliding holes 303, and each second arc block 302 is provided with two symmetrical first sliding grooves 304 on a side close to the sliding hole 303. A slider 305 is slidably connected between the interior of each sliding hole 303 and the interior of each first sliding groove 304. An elastic clip 306 is installed inside the two grooves of each slider 305. T-shaped holes 307 are provided on both sides of the inner wall of each first sliding groove 304. A rubber rod 308 is movably sleeved inside each T-shaped hole 307. The two insulation shells 2 are adapted, and the inner walls of the two insulation shells 2 are in contact with the outer wall of the pipe body 1. The inner walls of the two first arc blocks 301 are respectively bonded to the outer wall of one of the insulation shells 2 near the two sides, and the two second arc blocks 302 are respectively bonded to the outer wall of the other insulation shell 2 near the two sides. The surface of the shaped block 301 is respectively in contact with a surface of each second arc block 302 close to the sliding hole 303, and the clamping end of each elastic clip 306 is respectively movably clamped in the inside of each T-shaped hole 307, and the surface of each slider 305 is fixed with an arc piece 4, and the outer surface of each arc piece 4 is bonded and connected with a rubber sleeve 5, and the inner wall of each sliding hole 303 is provided with a second sliding groove 6, and the surface of each slider 305 is fixed with an arc rod 7, and the surface of each slider 305 is installed with an arc spring 8, and the inner wall of each sliding hole 303 is provided with an arc groove 9.
[0028] The effect achieved is that when the water supply pipe needs to be repaired, one of the rubber rods 308 is first pulled out from the inside of the corresponding T-shaped hole 307, and then the pulled-out rubber rod 308 is rotated 180 degrees, and then the rotated rubber rod 308 is inserted into the inside of the corresponding T-shaped hole 307, and then the remaining rubber rods 308 are operated according to the above operation steps. When all the rubber rods 308 have completed the above operation, two of the rubber rods 308 are pressed first, and the two rubber rods 308 are moved toward each other. When the two rubber rods 308 are moved to the point where they can no longer be inserted, When moving, the opposite ends of the two rubber rods 308 will cause the corresponding elastic buckle 306 to move out from the inside of the corresponding T-shaped hole 307, that is, the opposite ends of the two rubber rods 308 will cause the corresponding elastic buckle 306 to elastically deform. At this time, the corresponding slider 305 will slide towards the direction close to the corresponding second sliding groove 6 under the cooperation of the two elastically deformed elastic buckles 306, the corresponding sliding hole 303 and the corresponding arc spring 8. When the corresponding slider 305 moves, the pressure on the two rubber rods 308 is released. At this time, the corresponding slider 305 will drive the corresponding two elastic buckles 306 to move, and the sliding slider 305 will drive the corresponding rubber sleeve 5 to slide inside the corresponding second slide groove 6 with the cooperation of the corresponding arc-shaped piece 4. At the same time, the sliding slider 305 will also drive the corresponding arc rod 7 to slide inside the corresponding arc groove 9. When the corresponding arc spring 8 completes elastic recovery and is in a stationary state, the corresponding slider 305 and the two corresponding elastic buckles 306 are both moved out from the corresponding first slide groove 304. The above-mentioned components will stop sliding, and then the above-mentioned operating steps will be followed to operate the remaining sliders 305 so that the sliding operation can be performed. When the remaining sliders 305 have completed the above-mentioned sliding operation, the two second arc blocks 302 can be separated from the corresponding first arc blocks 301, and then the two insulation shells 2 are moved in opposite directions so that the inner walls of the two insulation shells 2 are not in contact with the outer wall of the pipe body 1. At this time, the pipe body 1 can be repaired. When the maintenance operation of the pipe body 1 is completed, the above-mentioned operating steps are followed to perform the reverse operation so that the above-mentioned components are reset to their original positions.
[0029] Working principle: When the water supply pipe needs to be repaired, first pull out one of the rubber rods 308 from the inside of the corresponding T-shaped hole 307, then rotate the pulled-out rubber rod 308 180 degrees, and then insert the rotated rubber rod 308 into the inside of the corresponding T-shaped hole 307, and then operate the remaining rubber rods 308 according to the above operation steps. When all the rubber rods 308 have completed the above operation, press two of the rubber rods 308 and make the two rubber rods 308 move toward each other. When the two rubber rods 308 are moved to a point where they can no longer move, At this time, the opposite ends of the two rubber rods 308 will make the corresponding elastic buckle 306 move out from the inside of the corresponding T-shaped hole 307, that is, the opposite ends of the two rubber rods 308 will make the corresponding elastic buckle 306 elastically deformed. At this time, the corresponding slider 305 will slide towards the direction close to the corresponding second sliding groove 6 under the cooperation of the two elastically deformed elastic buckles 306, the corresponding sliding holes 303 and the corresponding arc spring 8. When the corresponding slider 305 moves, the pressure on the two rubber rods 308 is released, which When the corresponding slider 305 is in the state of being moved, the corresponding two elastic buckles 306 are moved. At the same time, the sliding slider 305 drives the corresponding rubber sleeve 5 to slide inside the corresponding second sliding groove 6 under the cooperation of the corresponding arc-shaped piece 4. At the same time, the sliding slider 305 also drives the corresponding arc rod 7 to slide inside the corresponding arc groove 9. When the corresponding arc spring 8 completes elastic recovery and is in a stationary state, the corresponding slider 305 and the two corresponding elastic buckles 306 are all moved out from the corresponding first sliding groove 304. The above components will stop sliding, and then the above-mentioned operating steps are performed to make the remaining sliders 305 slide. When the remaining sliders 305 complete the above-mentioned sliding operations, the two second arc blocks 302 can be separated from the corresponding first arc blocks 301, and then the two insulation shells 2 are moved in opposite directions so that the inner walls of the two insulation shells 2 are not in contact with the outer wall of the pipe body 1. At this time, the pipe body 1 can be repaired. When the maintenance operation of the pipe body 1 is completed, the above-mentioned operating steps are performed in reverse so that the above-mentioned components are reset to their original positions.
[0030] The elastic buckle 306 is similar to the elastic card on the rib of an umbrella.
[0031] The rubber rod 308 is adapted to the T-shaped hole 307 after completing the 180-degree rotation.
[0032] The above description is only a preferred embodiment of the present invention and does not limit the present invention in any other form. Any technician familiar with the profession may use the technical content disclosed above to change or modify it into an equivalent embodiment with equivalent changes for application in other fields. However, any simple modification, equivalent change and modification of the above embodiment made according to the technical essence of the present invention without departing from the content of the technical solution of the present invention shall still fall within the scope of protection of the technical solution of the present invention.
Claims
1. A water supply pipe insulation structure, characterized in that: include: A pipeline body (1) and two heat-insulating shells (2), wherein a connecting mechanism (3) is provided between the two heat-insulating shells (2); The connecting mechanism (3) comprises two first arc blocks (301) and two second arc blocks (302), each of the first arc blocks (301) is provided with two symmetrical sliding holes (303) on its surface, and each of the second arc blocks (302) is provided with two symmetrical first sliding grooves (304) on a side close to the sliding hole (303), a slider (305) is slidably connected between the interior of each sliding hole (303) and the interior of each first sliding groove (304), and an elastic buckle (306) is installed inside the two grooves of each slider (305), and a T-shaped hole (307) is provided on both sides of the inner wall of each first sliding groove (304), and a rubber rod (308) is movably sleeved inside each T-shaped hole (307).
2. The water supply pipe insulation structure according to claim 1, characterized in that: The two insulation shells (2) are adapted to each other, and the inner walls of the two insulation shells (2) are in contact with the outer wall of the pipe body (1). The inner walls of the two first arc blocks (301) are respectively bonded to the outer wall of one insulation shell (2) near both sides, and the two second arc blocks (302) are respectively bonded to the outer wall of the other insulation shell (2) near both sides.
3. The water supply pipe insulation structure according to claim 1, characterized in that: The surface of each first arc-shaped block (301) is in contact with a surface of each second arc-shaped block (302) close to the sliding hole (303), and the clamping end of each elastic buckle (306) is movably clamped in the interior of each T-shaped hole (307).
4. The water supply pipe insulation structure according to claim 1, characterized in that: An arc-shaped piece (4) is fixed on the surface of each slider (305), a rubber sleeve (5) is bonded to the outer surface of each arc-shaped piece (4), and a second sliding groove (6) is provided on the inner wall of each sliding hole (303).
5. The water supply pipe insulation structure according to claim 1, characterized in that: An arc-shaped rod (7) is fixed on the surface of each slider (305), an arc-shaped spring (8) is installed on the surface of each slider (305), and an arc-shaped groove (9) is opened on the inner wall of each sliding hole (303).
6. The water supply pipe insulation structure according to claim 4, characterized in that: Each of the rubber sleeves (5) is slidably connected to the inside of each second sliding groove (6), and the surface of each of the rubber sleeves (5) is in contact with the inner wall of each sliding hole (303).
7. The water supply pipe insulation structure according to claim 5, characterized in that: One end of each arc spring (8) away from the slider (305) is respectively installed with the inner wall of each sliding hole (303), the outer surface of each arc rod (7) is respectively movably sleeved inside each arc spring (8), and each arc rod (7) is respectively movably sleeved inside each arc groove (9).
Citation Information
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