Novel graphene building pipe

By designing the inner layer, corrosion-resistant layer and outer protective layer in building pipes, and setting up a filter mesh structure that is easy to disassemble, the problem of inconvenient deposition and maintenance in traditional pipes is solved, and efficient filtration and maintenance is achieved.

CN120140562APending Publication Date: 2025-06-13SHANGHAI LONGZHEN NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202510402538.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-01
Publication Date
2025-06-13

AI Technical Summary

Technical Problem

The lack of effective filtration measures inside traditional building pipes, resulting in impurities deposits, pipeline blockages, and inconvenient maintenance of the filter mesh.

Method used

A new type of graphene building pipe is designed. The main body of the pipe includes the inner layer of graphene, corrosion-resistant layer and outer protective layer. It is equipped with an installation port, a discharging port and a collection box. The filter net is fixed to the connecting ring. Through the design of locking parts and arc-shaped rods, the filter net is easily disassembled and automatic impurity discharge.

Benefits of technology

It realizes convenient cleaning and replacement of filters, reduces maintenance difficulty, avoids pipeline blockage, improves the operating efficiency and water quality of the drainage system, and extends the service life of the pipeline.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a novel graphene building pipe, and relates to the technical field of building pipes, the novel graphene building pipe comprises a pipe main body, the pipe main body comprises a graphene inner layer, a corrosion-resistant layer is arranged on the outer side of the graphene inner layer, an outer protective layer is arranged on the outer side of the corrosion-resistant layer, and a mounting opening is formed in the upper side surface of the pipe main body. An impurity discharging opening is formed in the bottom face of the pipeline body, the pipeline body is fixedly connected with a connecting piece in a sleeved mode, a locking piece is installed on the connecting piece, when the filter screen needs to be cleaned or replaced, an operator only needs to push a clamping block to enable the clamping block to be separated from a clamping groove, then the locking piece can be rotated, a connecting ring and the filter screen can be pulled out from an installation opening, and the operation is simple, convenient and fast. And meanwhile, in the process of disassembling the filter screen, sealing of the baffle to the discharging opening can be automatically relieved, impurities in the collecting box can be smoothly discharged, the workload of manually cleaning the impurities is reduced, and the maintenance efficiency is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of building pipes, and particularly relates to a new type of graphene building pipe. Background Art

[0002] In the field of modern construction engineering, building pipes, as an important part of the infrastructure, directly affect the operation effect and service life of the building water supply and drainage system with their performance advantages and disadvantages.

[0003] The current building pipes are found to have at least the following technical problems:

[0004] First, the interior of traditional pipes lacks effective filtering measures, and these impurities are prone to deposit and accumulate in the pipes. As time goes by, the water passing section of the pipes gradually shrinks, ultimately leading to pipe blockage. Although some traditional pipes are provided with filters to intercept impurities, the maintenance of the filters is very inconvenient.

[0005] Second, in traditional designs, the disassembly of the filter often requires the assistance of various tools, with cumbersome operations, increasing the work difficulty and intensity of maintenance personnel. Moreover, when cleaning the filter, the device for collecting impurities usually cannot automatically discharge the impurities and requires manual cleaning, which is not only time-consuming and laborious but also prone to cause secondary pollution. Summary of the Invention

[0006] (1) Technical Problems to be Solved

[0007] In view of the deficiencies of the prior art, the present invention provides a new type of graphene building pipe to solve the above technical problems.

[0008] (2) Technical Solutions

[0009] To achieve the above objectives, the present invention is realized through the following technical solutions:

[0010] A new type of graphene building pipe, comprising a pipe body. The pipe body includes a graphene inner layer, an anti-corrosion layer is arranged on the outer side of the graphene inner layer, an outer protective layer is arranged on the outer side of the anti-corrosion layer. An installation opening is provided on the upper surface of the pipe body, a waste discharge opening is provided on the bottom surface of the pipe body. A connecting piece is fixedly sleeved on the pipe body, a locking piece is installed on the connecting piece, a connecting ring is arranged between the connecting piece and the locking piece. A filter screen is fixedly installed at the bottom end of the connecting ring. The connecting ring and the filter screen are inserted into the pipe body from the installation opening. A collection box is fixedly installed at the bottom end of the pipe body, the waste discharge opening is communicated with the collection box. A discharge opening is provided on the surface of the collection box, a baffle is arranged at the discharge opening. A sliding rod is arranged on one side of the baffle, a convex block is fixedly installed inside the sliding rod. A fixed block is fixedly installed at the bottom end of the connecting piece, an arc rod one and an arc rod two are fixedly installed on the fixed block. Both the arc rod one and the arc rod two movably penetrate through the convex block, an arc spring is movably sleeved on the arc rod one. The convex block is fixedly connected with the fixed block through the arc spring.

[0011] Preferably: Grooves one and two are respectively provided on both sides of the upper surface of the connecting piece, a clamping groove is provided on the inner wall of the groove two. One end of the locking piece is fixedly connected with a connecting shaft, and the other end is provided with a sliding groove.

[0012] Preferably: The connecting shaft is rotatably installed in the groove one, a clamping block is slidably installed in the sliding groove. Two round rods movably penetrate through the clamping block, a spring is movably sleeved on each round rod. Each round rod is fixedly installed in the sliding groove. The clamping block is fixedly connected with the inner wall of the sliding groove through the two springs.

[0013] Preferably: The clamping block is L-shaped, a groove three is provided on the inner side surface of the locking piece. The top of the connecting ring is arranged in the groove three, the other end of the locking piece is inserted into the groove two, and the clamping block is inserted into the clamping groove.

[0014] Preferably: The bottom surface of the inner wall of the collection box is inclined, an L-shaped rod is fixedly connected to the end of the collection box. An arc groove one is provided on the surface of the collection box. The L-shaped rod, the arc groove one and the discharge opening are on the same side of the collection box.

[0015] Preferably: An arc strip two and an arc strip one are provided on the baffle. The arc strip one is slidably installed in the arc groove one, an arc groove two is provided on the inner side surface of the L-shaped rod. The arc strip two is slidably installed in the arc groove two.

[0016] Preferably: A fixed rod is fixedly connected between the sliding rod and the baffle. A connecting head is fixedly connected to the top end of the sliding rod. The connecting head abuts against one end of the locking piece at the clamping block for abutting against the connecting head.

[0017] Preferably, the filter screen is circular in design, and connecting flanges are fixedly installed at both ends of the pipeline body.

[0018] Preferably, both the locking member and the connecting member are arc-shaped in design, and the locking member is movably sleeved on the outer surface of the pipeline body.

[0019] Preferably, the connecting member is fixedly connected to the collection box, and the baffle is used to block the discharge port.

[0020] (III) Beneficial Effects

[0021] First: When the filter screen needs to be cleaned or replaced, the operator only needs to push the block so that it disengages from the card slot, and then can rotate the locking member to pull out the connecting ring and the filter screen from the installation port. This is simple and convenient, reducing the difficulty and intensity of maintenance work. At the same time, during the process of disassembling the filter screen, the sealing of the discharge port by the baffle can be automatically released, enabling the impurities in the collection box to be discharged smoothly, reducing the workload of manual impurity cleaning, and improving the maintenance efficiency.

[0022] Second: The circular filter screen installed inside the pipeline body can effectively intercept impurities in the sewage, ensuring the smooth operation of the drainage system. During the filtering process, it can prevent impurities from depositing and accumulating in the pipeline, avoiding pipeline blockage, reducing the maintenance cost and economic losses caused by pipeline blockage, and improving the quality of the discharged water through filtration and purification, reducing the pressure on the subsequent sewage treatment process.

[0023] Third: The first arc-shaped rod and the second arc-shaped rod movably penetrate the convex block, playing a limiting role in the sliding of the sliding rod and the baffle, ensuring that the sliding rod, the convex block, and the baffle can only slide along a specific arc direction, making their operation more stable and reliable. The bottom surface of the inner wall of the collection box is inclined, and together with the automatically opened discharge port, it is convenient for impurities to be discharged, avoiding the residue of impurities in the collection box and affecting the normal operation of the pipeline. The arc-shaped design of the locking member and the connecting member fits the outer shape of the pipeline body, which is not only convenient for installation but also can provide reliable fixation.

[0024] Fourth: The pipeline body adopts a three-layer structure. The graphene inner layer has good chemical stability and can initially resist the erosion of acid and alkaline substances in the sewage. The corrosion-resistant layer further enhances the pipeline's resistance to corrosive substances, and the outer protective layer can prevent damage to the pipeline caused by external physical factors. These three layers cooperate with each other to improve the corrosion resistance, wear resistance, and compressive resistance of the pipeline, and extend the service life of the pipeline.

[0025] Fifth: The connecting flanges fixedly installed at both ends of the pipeline body are convenient for connecting with other pipelines or equipment, improving the versatility and adaptability of the pipe material, and enabling quick and accurate connection during the installation process. Description of the Drawings

[0026] The above description is only an overview of the technical solution of the present invention. In order to understand the technical means of the present invention more clearly and implement it according to the content of the specification, the following is a detailed description of the preferred embodiments of the present invention in conjunction with the accompanying drawings as follows.

[0027] Figure 1 It is a structural diagram of the overall novel graphene building pipe of the present invention;

[0028] Figure 2 It is a structural diagram of the connecting ring of the present invention;

[0029] Figure 3 It is a structural diagram of the locking member of the present invention;

[0030] Figure 4 It is a structural diagram of the sliding rod of the present invention;

[0031] Figure 5 It is a structural diagram of the connecting member of the present invention;

[0032] Figure 6 It is a structural diagram of the collection box of the present invention;

[0033] Figure 7 It is a structural diagram of the installation port of the present invention;

[0034] Figure 8 It is a structural diagram of the connecting flange of the present invention;

[0035] Figure 9 It is a structural diagram of the clamping block of the present invention;

[0036] Figure 10 It is a structural diagram of the pipe body of the present invention.

[0037] Legend description: 1. Pipe body; 11. Graphene inner layer; 12. Corrosion-resistant layer; 13. Outer protective layer; 2. Installation port; 21. Impurity discharge port; 22. Connecting flange; 3. Connecting member; 31. Groove 1; 32. Groove 2; 33. Card slot; 4. Connecting ring; 41. Filter screen; 5. Locking member; 51. Connecting shaft; 52. Slide groove; 53. Clamping block; 54. Round rod; 55. Spring; 56. Groove 3; 6. Collection box; 61. Discharge port; 62. L-shaped rod; 63. Arc groove 1; 7. Slide rod; 71. Connecting head; 72. Convex block; 73. Fixed rod; 8. Baffle; 81. Arc strip 1; 82. Arc strip 2; 9. Fixed block; 91. Arc rod 1; 92. Arc rod 2; 93. Arc spring. Detailed implementation manners

[0038] The following further describes the implementation manners of the present invention in detail in conjunction with the accompanying drawings and embodiments. The following embodiments are used to illustrate the present invention, but cannot be used to limit the scope of the present invention.

[0039] Embodiment: AsFigure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 , Figure 9 and Figure 10As shown, in view of the problems existing in the prior art, the present invention provides a novel graphene building pipe, comprising a pipe body 1, the pipe body 1 comprising a graphene inner layer 11, a corrosion-resistant layer 12 is arranged on the outer side of the graphene inner layer 11, an outer protective layer 13 is arranged on the outer side of the corrosion-resistant layer 12, an installation port 2 is provided on the upper side surface of the pipe body 1, a debris discharge port 21 is provided on the bottom surface of the pipe body 1, a connecting piece 3 is fixedly sleeved on the pipe body 1, a locking piece 5 is installed on the connecting piece 3, a connecting ring 4 is arranged between the connecting piece 3 and the locking piece 5, a filter screen 41 is fixedly installed at the bottom end of the connecting ring 4, the connecting ring 4 and the filter screen 41 are inserted into the pipe body 1 from the installation port 2, a collecting box 6 is fixedly installed at the bottom end of the pipe body 1, and the debris discharge port 21 and the collecting box 6 are connected to the collecting box 6. The box 6 is connected, and a discharge port 61 is provided on the surface of the collection box 6. A baffle 8 is provided at the discharge port 61. A slide rod 7 is provided on one side of the baffle 8. A protrusion 72 is fixedly installed on the inner side of the slide rod 7. A fixed block 9 is fixedly installed on the bottom end of the connecting member 3. An arc rod 1 91 and an arc rod 2 92 are fixedly installed on the fixed block 9. The arc rod 1 91 and the arc rod 2 92 are both movably inserted through the protrusion 72. An arc spring 93 is movably sleeved on the arc rod 1 91. The protrusion 72 is fixedly connected to the fixed block 9 through the arc spring 93. A groove 1 31 and a groove 2 32 are respectively provided on both sides of the upper surface of the connecting member 3. A card slot 33 is provided on the inner wall of the groove 2 32. A connecting shaft 51 is fixedly connected to one end of the locking member 5, and a slide slot 52 is provided on the other end. The connecting shaft 51 is rotatably installed In the groove 1 31, a block 53 is slidably installed in the slide groove 52, and two round rods 54 are movably penetrated on the block 53, and a spring 55 is movably sleeved on each round rod 54. Each round rod 54 is fixedly installed in the slide groove 52, and the block 53 is fixedly connected to the inner wall of the slide groove 52 through two springs 55. The block 53 is L-shaped, and a groove 3 56 is provided on the inner side surface of the locking member 5. The top of the connecting ring 4 is arranged in the groove 3 56, and the other end of the locking member 5 is inserted in the groove 2 32. The block 53 is inserted in the groove 33. The bottom surface of the inner wall of the collection box 6 is inclined. The end of the collection box 6 is fixedly connected with an L rod 62, and the surface of the collection box 6 is provided with an arc groove 1 63. The L rod 62, the arc groove 1 63 and the discharge port 61 are at the same position of the collection box 6. On one side, the baffle 8 is provided with an arc strip 2 82 and an arc strip 1 81, the arc strip 1 81 is slidably installed in the arc groove 1 63, the inner surface of the L rod 62 is provided with an arc groove 2, the arc strip 2 82 is slidably installed in the arc groove 2, a fixing rod 73 is fixedly connected between the slide rod 7 and the baffle 8, a connector 71 is fixedly connected to the top of the slide rod 7, the connector 71 is fitted with one end of the locking member 5 located at the block 53, and is used to resist the connector 71, the filter screen 41 is circular in design, and connecting flanges 22 are fixedly installed at both ends of the pipe body 1, the locking member 5 and the connecting member 3 are both arc-shaped in design, the locking member 5 is movably sleeved on the outer surface of the pipe body 1, the connecting member 3 is fixedly connected to the collecting box 6, and the baffle 8 is used to block the discharge port 61;

[0040] When using this graphene building pipe, sewage flows into the pipe body 1. The filter screen 41 arranged in the pipe body 1 can intercept and filter the impurities in the sewage. The filtered water continues to flow in the pipe, while the intercepted impurities gradually settle under the action of gravity and fall into the collection box 6 through the impurity discharge port 21. At the same time, the three-layer structure of the pipe body 1 plays its respective roles. The graphene inner layer 11, relying on the good chemical stability of graphene, initially resists the erosion of acid and alkali substances in the sewage, and the corrosion-resistant layer 12 further enhances the resistance to corrosive substances. The outer protective layer 13 prevents the pipe from being damaged by external physical factors, ensuring the normal use of the pipe;

[0041] When it is necessary to clean or replace the filter screen 41, the operator pushes the block 53 to overcome the resistance of the spring 55 and retracts it into the chute 52, and then disengages from the card slot 33. At this time, the locking member 5 is no longer limited and blocked by the card slot 33 and can rotate around the connecting shaft 51. The operator rotates the locking member 5 to one side to release its block on the connecting ring 4. Subsequently, the user can pull out the connecting ring 4 and the filter screen 41 from the installation port 2 to clean or replace the filter screen 41 to ensure its filtering performance;

[0042] When the locking member 5 is rotated to one side, one end of the locking member 5 no longer exerts a force on the connector 71. Under the elastic reset action of the arc spring 93, the slide rod 7, the convex block 72, the fixed rod 73 and the baffle 8 slide along the arc direction of the arc rod one 91. Since the arc rod one 91 and the arc rod two 92 pass through the convex block 72 movably, they limit the sliding of the slide rod 7 and the baffle 8, making them only slide along a specific arc direction. As the baffle 8 slides, it no longer covers the discharge port 61. Coupled with the inclined design of the inner wall bottom surface of the collection box 6, the impurities deposited in the collection box 6 smoothly discharge from the discharge port 61 under the action of gravity. In this way, during the disassembly process of the filter screen 41, the sealing of the discharge port 61 by the baffle 8 can be released at the same time, realizing the automatic discharge of impurities;

[0043] When installing the filter screen 41, the operator inserts the filter screen 41 into the pipeline main body 1 from the installation port 2, then presses the clamping block 53 to make it retract into the sliding groove 52. At this time, the spring 55 is compressed under force. Then, the locking member 5 is rotated around the connecting shaft 51, so that one end of the locking member 5 is inserted into the second groove 32. After releasing the clamping block 53, the spring 55, by virtue of its elastic reset function, pushes the clamping block 53 to reset and insert it into the clamping groove 33, completing the locking of the locking member 5. At this time, the connecting ring 4 is located in the third groove 56 and is subjected to the pressure of the locking member 5, thereby fixing the filter screen 41. During the process of locking the locking member 5, one end of the locking member 5 will exert a force on the connector 71, causing the sliding rod 7 to slide along the arc direction of the first arc-shaped rod 91. The sliding rod 7 drives the baffle 8 to move and block the discharge port 61, restoring the closed state of the collection box 6;

[0044] During the whole process, the L-shaped rod 62, the first arc-shaped groove 63 and the first arc-shaped strip 81 on the baffle 8 cooperate with each other to assist in limiting the sliding of the baffle 8 to ensure its stable movement. At the same time, the second arc-shaped strip 82 on the baffle 8 is slidably installed in the second arc-shaped groove at the L-shaped rod 62, further ensuring the stability and accuracy of the baffle 8 during the sliding process, and working together with other structures to ensure the smooth realization of the functions of filtering, impurity discharging, etc. of the new graphene building pipe.

[0045] Working principle:

[0046] First step, when using this graphene building pipe, sewage flows into the pipeline main body 1. The filter screen 41 arranged in the pipeline main body 1 can intercept and filter the impurities in the sewage. The filtered water continues to flow in the pipeline, while the intercepted impurities gradually settle under the action of gravity and fall into the collection box 6 through the impurity discharge port 21. At the same time, the three-layer structure of the pipeline main body 1 plays its respective roles. The graphene inner layer 11, relying on the good chemical stability of graphene, initially resists the erosion of acid and alkali substances in the sewage, the corrosion-resistant layer 12 further enhances the resistance to corrosive substances, and the outer protective layer 13 prevents external physical factors from damaging the pipeline, ensuring the normal use of the pipeline;

[0047] Second step, when it is necessary to clean or replace the filter screen 41, the operator pushes the clamping block 53 to make it overcome the resistance of the spring 55 and retract into the sliding groove 52, and then disengage from the clamping groove 33. At this time, the locking member 5 is no longer limited and blocked by the clamping groove 33 and can rotate around the connecting shaft 51. The operator rotates the locking member 5 to one side to release its block on the connecting ring 4. Subsequently, the user can pull out the connecting ring 4 and the filter screen 41 from the installation port 2 to clean or replace the filter screen 41 to ensure its filtering performance;

[0048] Step 3: When the locking member 5 is rotated to one side, one end of the locking member 5 no longer exerts a force on the connector 71. Under the elastic reset action of the arc spring 93, the slide rod 7, the convex block 72, the fixed rod 73, and the baffle 8 slide along the arc direction of the first arc rod 91. Since the first arc rod 91 and the second arc rod 92 pass through the convex block 72 movably, it plays a limiting role in the sliding of the slide rod 7 and the baffle 8, making them only slide along a specific arc direction. As the baffle 8 slides, it no longer covers the discharge port 61. In addition, the bottom surface of the inner wall of the collection box 6 is designed as an inclined surface. The impurities deposited in the collection box 6 are smoothly discharged from the discharge port 61 under the action of gravity. In this way, during the disassembly process of the filter screen 41, the sealing of the discharge port 61 by the baffle 8 can be released simultaneously, realizing the automatic discharge of impurities;

[0049] Step 4: When installing the filter screen 41, the operator inserts the filter screen 41 into the pipeline main body 1 from the installation port 2, then presses the clamping block 53 to make it retract into the chute 52. At this time, the spring 55 is compressed under force. Then, the locking member 5 is rotated around the connecting shaft 51 as the axis, so that one end of the locking member 5 is inserted into the second groove 32. After releasing the clamping block 53, the spring 55, by virtue of its elastic reset action, pushes the clamping block 53 to reset and makes it insert into the card slot 33 to complete the locking of the locking member 5. At this time, the connecting ring 4 is located in the third groove 56 and is under the pressure of the locking member 5, thereby fixing the filter screen 41. During the locking process of the locking member 5, one end of the locking member 5 will exert a force on the connector 71, causing the slide rod 7 to slide along the arc direction of the first arc rod 91. The slide rod 7 drives the baffle 8 to move and block the discharge port 61, restoring the closed state of the collection box 6;

[0050] Step 5: During the whole process, the L-shaped rod 62, the first arc groove 63, and the first arc strip 81 on the baffle 8 cooperate with each other to assist in limiting the sliding of the baffle 8 to ensure its stable movement. At the same time, the second arc strip 82 on the baffle 8 is slidably installed in the second arc groove at the L-shaped rod 62, further ensuring the stability and accuracy of the baffle 8 during the sliding process, and working together with other structures to ensure the smooth realization of functions such as filtering and impurity discharge of the new graphene building pipe.

[0051] Finally, it should be noted that: Obviously, the above embodiments are only examples for clearly explaining the present invention and are not limitations on the implementation manners. For those of ordinary skill in the art, other different forms of changes or variations can be made based on the above description. It is not necessary and impossible to enumerate all the implementation manners here. And the obvious changes or variations derived therefrom are still within the protection scope of the present invention.

Claims

1. A novel graphene building pipe, comprising a pipe body (1), characterized in that: The pipeline body (1) comprises a graphene inner layer (11), a corrosion-resistant layer (12) is arranged on the outer side of the graphene inner layer (11), an outer protective layer (13) is arranged on the outer side of the corrosion-resistant layer (12), an installation opening (2) is provided on the upper side surface of the pipeline body (1), a debris discharge opening (21) is provided on the bottom surface of the pipeline body (1), a connecting piece (3) is fixedly sleeved on the pipeline body (1), a locking piece (5) is installed on the connecting piece (3), a connecting ring (4) is arranged between the connecting piece (3) and the locking piece (5), a filter screen (41) is fixedly installed at the bottom end of the connecting ring (4), and the connecting ring (4) and the filter screen (41) are inserted into the pipeline body (1) from the installation opening (2); A collecting box (6) is fixedly mounted at the bottom end of the pipeline body (1), the impurity discharge port (21) is in communication with the collecting box (6), a discharge port (61) is provided on the surface of the collecting box (6), and a baffle (8) is provided at the discharge port (61); A slide bar (7) is provided on one side of the baffle (8), a protrusion (72) is fixedly installed on the inner side of the slide bar (7), a fixed block (9) is fixedly installed on the bottom end of the connecting member (3), an arc-shaped rod 1 (91) and an arc-shaped rod 2 (92) are fixedly installed on the fixed block (9), the arc-shaped rod 1 (91) and the arc-shaped rod 2 (92) are both movably inserted through the protrusion (72), an arc-shaped spring (93) is movably sleeved on the arc-shaped rod 1 (91), and the protrusion (72) is fixedly connected to the fixed block (9) via the arc-shaped spring (93).

2. A novel graphene building pipe according to claim 1, characterized in that: A first groove (31) and a second groove (32) are respectively formed on two sides of the upper surface of the connecting member (3), and a clamping groove (33) is formed on the inner wall of the second groove (32); One end of the locking member (5) is fixedly connected to a connecting shaft (51), and the other end is provided with a sliding groove (52).

3. The novel graphene building pipe according to claim 2, characterized in that: The connecting shaft (51) is rotatably mounted in the groove 1 (31), a clamping block (53) is slidably mounted in the slide groove (52), and two round rods (54) are movably penetrated through the clamping block (53); Wherein, each of the round rods (54) is movably sleeved with a spring (55), each of the round rods (54) is fixedly installed in the slide groove (52), and the clamping block (53) is fixedly connected to the inner wall of the slide groove (52) via two springs (55).

4. The novel graphene building pipe according to claim 3, characterized in that: The clamping block (53) is L-shaped, and a groove three (56) is provided on the inner surface of the locking member (5), and the top of the connecting ring (4) is arranged in the groove three (56); The other end of the locking member (5) is inserted into the second groove (32), and the clamping block (53) is inserted into the clamping slot (33).

5. The novel graphene building pipe according to claim 4, characterized in that: The inner wall bottom surface of the collection box (6) is designed to be inclined, an L-rod (62) is fixedly connected to the end of the collection box (6), and an arc-shaped groove (63) is provided on the surface of the collection box (6); Wherein, the L-bar (62), the arc-shaped groove (63) and the discharge port (61) are on the same side of the collection box (6).

6. The novel graphene building pipe according to claim 5, characterized in that: The baffle plate (8) is provided with a second arc strip (82) and a first arc strip (81), the first arc strip (81) is slidably mounted in the first arc slot (63), and the inner surface of the L-bar (62) is provided with a second arc slot; Wherein, the arc-shaped strip 2 (82) is slidably installed in the arc-shaped groove 2.

7. The novel graphene building pipe according to claim 6, characterized in that: A fixing rod (73) is fixedly connected between the sliding rod (7) and the baffle (8), and a connecting head (71) is fixedly connected to the top end of the sliding rod (7); The connecting head (71) is fitted with one end of the locking member (5) located at the clamping block (53) to resist the connecting head (71).

8. The novel graphene building pipe according to claim 7, characterized in that: The filter screen (41) is of circular design, and connecting flanges (22) are fixedly mounted on both ends of the pipeline body (1).

9. The novel graphene building pipe according to claim 8, characterized in that: The locking member (5) and the connecting member (3) are both designed in an arc shape; Wherein, the locking member (5) is movably sleeved on the outer surface of the pipeline body (1).

10. The novel graphene building pipe according to claim 9, characterized in that: The connecting member (3) is fixedly connected to the collecting box (6); Wherein, the baffle (8) is used to block the discharge port (61).