Pipeline anti-corrosion protection plate structure and mounting method thereof
The curved guard plate structure and the locking screw connection method solve the problems of high cost and difficult disassembly of traditional anti-corrosion guard plates, achieving the effect of low cost and convenient installation.
Patent Information
- Application Number
- CN202511170084.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-20
- Publication Date
- 2025-10-10
AI Technical Summary
Traditional anti-corrosion guard plate materials are expensive and difficult to disassemble, and traditional splicing methods cannot be disassembled.
It adopts an arc-shaped guard plate structure, is connected by clipping, and is fixed with screws to avoid glue adhesion.
It reduces material costs, is easy to install and disassemble, and adapts to different construction environments.
Smart Images

Figure CN120759348A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of construction, in particular to a pipeline anti-corrosion guard plate structure and an installation method thereof. Background Art
[0002] In the construction industry, pipelines are often found on walls, floors, and ceilings. These pipelines include electrical wires, water pipes, and other conduits. To achieve aesthetically pleasing appearance, these pipelines are typically embedded within the walls. For protection, these pipelines are typically protected with anti-corrosion panels. Because pipelines are relatively long, these panels are often spliced together.
[0003] However, in the traditional way, these anti-corrosion guard plates on the market are all tubular. On the one hand, the material cost is relatively high, and on the other hand, it is troublesome to disassemble after splicing (for example, two tubular guard plates are inserted into each other and glued together, and they cannot be disassembled after bonding). Summary of the Invention
[0004] (1) Technical problems solved
[0005] In view of the deficiencies in the prior art, the present invention provides a pipeline anti-corrosion guard plate structure and an installation method thereof to solve the above technical problems.
[0006] (2) Technical solution
[0007] To solve the above technical problems, the present invention provides a technical solution: a pipeline anti-corrosion guard plate structure, characterized in that it includes: a first guard plate, which is provided with a first receiving groove along its length direction, wherein a first clamping portion extends from the bottom end of one side of the first receiving groove of the first guard plate, and a second clamping portion extends from the bottom end of the other side of the first receiving groove of the first guard plate, and the first clamping portion, the inner wall of the first receiving groove and the second clamping portion form a receiving groove; a second guard plate, one end of which is arranged in one end of the receiving groove, wherein the second guard plate is provided with a second receiving groove along its length direction; a third guard plate, one end of which is arranged in the other end of the receiving groove, wherein the third guard plate is provided with a third receiving groove along its length direction; wherein a first threaded hole is provided at the top end of one end of the first guard plate, which is connected to the first receiving groove, and a first screw is threadedly connected in the first threaded hole to squeeze the top end of the second guard plate in the receiving groove by the first screw; and a second threaded hole is provided at the top end of the other end of the first guard plate, which is connected to the first receiving groove, and a second screw is threadedly connected in the second threaded hole to squeeze the top end of the third guard plate in the receiving groove by the second screw.
[0008] Furthermore, the second guard plate is in a straight line shape, and the third guard plate is in a right angle shape.
[0009] Furthermore, the first clamping portion and the second clamping portion are symmetrically arranged.
[0010] Furthermore, the cross-sections of the first guard plate, the second guard plate, and the third guard plate are all arc-shaped, and the first receiving groove, the second receiving groove, and the third receiving groove are all arc-shaped.
[0011] Furthermore, the outer wall of the second guard plate is tightly attached to the inner wall of the first receiving groove, the outer wall of the third guard plate is tightly attached to the inner wall of the first receiving groove, the bottom end of one side of the second guard plate is set on the top surface of the first clamping portion, the bottom end of the other side of the second guard plate is set on the top surface of the second clamping portion, the bottom end of one side of the third guard plate is set on the top surface of the first clamping portion, and the bottom end of the other side of the third guard plate is set on the top surface of the second clamping portion.
[0012] Furthermore, the first screw includes a first screw body and a first nut, the width of the first nut is greater than the aperture of the first threaded hole, and the length of the first screw body is greater than the depth of the first threaded hole. The second screw includes a second screw body and a second nut, the width of the second nut is greater than the aperture of the second threaded hole, and the length of the second screw body is greater than the depth of the second threaded hole.
[0013] To solve the above technical problems, the present invention provides another technical solution: a method for installing a pipeline anti-corrosion guard plate structure, characterized in that it uses the pipeline anti-corrosion guard plate structure described in any one of the above items to work, and the installation method includes: when the pipeline is laid on the wall in a straight direction and the length of the second guard plate is not long enough, one end of the second guard plate is set in one end of the receiving slot of the first guard plate, and one end of the other second guard plate is set in the other end of the receiving slot of the first guard plate; a first screw is threadedly connected to a first threaded hole at one end of the first guard plate, and the first screw is rotated so that the first screw body of the first screw is squeezed into the top end of the second guard plate in the receiving slot, and a second screw is threadedly connected to a second threaded hole at the other end of the first guard plate, and the second screw is rotated so that the second screw body of the second screw is squeezed into the top end of the second guard plate in the receiving slot; the two connected second guard plates and the first guard plate are covered in the wire trough to cover the pipeline in the wire trough.
[0014] Furthermore, the installation method also includes: when the pipeline turns and is laid on the wall, one end of the second guard plate is set in one end of the receiving slot of the first guard plate, and one end of the third guard plate is set in the other end of the receiving slot of the first guard plate, and a first screw is threadedly connected to the first threaded hole so that the first screw body of the first screw is squeezed on the top of the second guard plate in the receiving slot, and a second screw is threadedly connected to the second threaded hole so that the second screw body of the second screw is squeezed on the top of the third guard plate in the receiving slot, so that the second guard plate, the first guard plate and the third guard plate are at right angles; the connected and right-angled second guard plate, the first guard plate and the third guard plate are covered in the wire trough to cover the pipeline in the right-angled wire trough.
[0015] Furthermore, the pipeline includes a water pipe and an electrical conductor.
[0016] (3) Beneficial effects
[0017] Compared with the prior art, the present invention provides a pipeline anti-corrosion guard plate structure and an installation method thereof, which have the following beneficial effects: the pipeline anti-corrosion guard plate structure disclosed in the present invention includes: a first guard plate, which is provided with a first receiving groove along its length direction, wherein a first clamping portion is extended from the bottom end of one side of the first receiving groove of the first guard plate, and a second clamping portion is extended from the bottom end of the other side of the first receiving groove of the first guard plate, and the first clamping portion, the inner wall of the first receiving groove and the second clamping portion form a receiving slot; a second guard plate, one end of which is arranged in one end of the receiving slot, wherein the second guard plate is provided with a second receiving groove along its length direction; a third guard plate, one end of which is arranged in the other end of the receiving slot, wherein the third guard plate is provided with a third receiving groove along its length direction. In the above manner, the guard plate of the pipeline anti-corrosion guard plate structure disclosed in the present invention adopts an arc-shaped structure, which has a lower material cost than a tubular pipe body, and the connection between the two guard plates adopts a clamping connection, which does not require glue, and is convenient to install and disassemble. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic diagram of the three-dimensional structure of the pipeline anti-corrosion guard plate structure of the present invention;
[0019] Figure 2 for Figure 1 Schematic diagram of the cross-sectional structure of the middle anti-corrosion guard plate structure;
[0020] Figure 3 for Figure 1 A schematic structural diagram of the first guard plate;
[0021] Figure 4 for Figure 1 Schematic diagram of the first partial structure of the middle anti-corrosion guard plate structure;
[0022] Figure 5 for Figure 1 Schematic diagram of the second partial structure of the middle anti-corrosion guard plate structure;
[0023] Figure 6 This is a schematic flow chart of a first embodiment of a method for installing a pipeline anti-corrosion guard plate structure according to the present invention;
[0024] Figure 7 This is a flow chart of a second embodiment of the method for installing a pipeline anti-corrosion guard plate structure according to the present invention. DETAILED DESCRIPTION
[0025] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0026] like Figure 1-5 As shown, a pipeline anti-corrosion guard plate structure provided by the present invention includes a first guard plate 1, a second guard plate 2 and a third guard plate 3.
[0027] The first guard plate 1 has a first receiving groove 11 along its length. A first clamping portion 12 extends from the bottom end of one side of the first receiving groove 11 of the first guard plate 1, and a second clamping portion 13 extends from the bottom end of the other side of the first receiving groove 11 of the first guard plate 1. A receiving slot is formed by the first clamping portion 12, the inner wall of the first receiving groove 11, and the second clamping portion 13. It should be understood that the first clamping portion 12 and the second clamping portion 13 are spaced apart.
[0028] One end of the second guard plate 2 is disposed in one end of the receiving slot, wherein the second guard plate 2 is provided with a second receiving groove 21 along its length direction.
[0029] One end of the third guard plate 3 is disposed in the other end of the receiving slot, wherein the third guard plate 3 is provided with a third receiving groove 31 along the length direction thereof.
[0030] It can be understood that one end of the second guard plate 2 is clamped in the receiving slot, and one end of the third guard plate 3 is clamped in the receiving slot, and then the first receiving groove 11, the second receiving groove 21 and the third receiving groove 31 will be connected to each other, and water pipes, electric wires (power wires), etc. can be accommodated in the first receiving groove 11, the second receiving groove 21 and the third receiving groove 31, so that the pipelines can be protected uninterruptedly.
[0031] In this embodiment, a first threaded hole 14 is provided at the top end of one end of the first guard plate 1, which is connected to the first receiving groove 11. A first screw 15 is threadedly connected to the first threaded hole 14, so that the top end of the second guard plate 2 located in the receiving groove is squeezed by the first screw 15. It should be understood that when one end of the second guard plate 2 is placed in one end of the receiving groove, the first clamping portion 12 and the second clamping portion 13 will clamp the bottom ends of the second guard plate 2 on both sides, so that the second guard plate 2 cannot be removed from the first receiving groove 11 at the bottom end of the first guard plate 1 and can only be removed from the receiving groove of the first guard plate 1. Therefore, when one end of the second guard plate 2 is placed in one end of the receiving groove, the first screw 15 can be rotated to squeeze the top end of the second guard plate 2 located in the receiving groove, so that the second guard plate 2 is stably placed in the first guard plate 1. Since the connection is made by screw squeezing, no glue is required between the two guard plates, making installation and disassembly convenient.
[0032] It can be understood that after one end of the second guard plate 2 is set in the receiving slot of the first guard plate 1, the worker can screw in the first screw 15 through the first threaded hole 14, so that the bottom end of the first screw 15 is squeezed against the top of the second guard plate 2 in the receiving slot, so that the two sides of the bottom end of the second guard plate 2 can be firmly pressed against the first clamping portion 12 and the second clamping portion 13, thereby achieving the effect of fastening the second guard plate 2 to the first guard plate 1. This connection is also detachable, and can adapt to most construction environments, allowing pipelines to be flexibly arranged while the anti-corrosion guard plate structure can also flexibly protect the pipelines.
[0033] In this embodiment, the top of the other end of the first guard plate 1 is provided with a second threaded hole 16 connected to the first receiving groove 11, and a second screw 17 is threadedly connected in the second threaded hole 16 to squeeze the top of the third guard plate 3 in the receiving slot through the second screw 17.
[0034] Preferably, the outer wall of the second guard plate 2 is in close contact with the inner wall of the first receiving groove 11 , and the outer wall of the third guard plate 3 is in close contact with the inner wall of the first receiving groove 11 .
[0035] In addition, the bottom end of one side of the second guard plate 2 is arranged on the top surface of the first clamping portion 12, the bottom end of the other side of the second guard plate 2 is arranged on the top surface of the second clamping portion 13, the bottom end of one side of the third guard plate 3 is arranged on the top surface of the first clamping portion 12, and the bottom end of the other side of the third guard plate 3 is arranged on the top surface of the second clamping portion 13. It should be understood that when the second guard plate 2 is clamped into the receiving slot of the first guard plate 1, the outer wall of the second guard plate 2 is tightly attached to the inner wall of the first receiving groove 11, and when the worker turns the first screw 15, the first screw 15 will squeeze the outer top wall of the second guard plate 2, pressing the bottom ends of both sides of the second guard plate 2 tightly against the top surfaces of the first clamping portion 12 and the second clamping portion 13, and at this time, the top outer wall of the second guard plate 2 is a small distance away from the inner wall of the first receiving groove 11 (the small distance is caused by the deformation caused by the squeezing force of the first guard plate 1 and the second guard plate 2, as shown in FIG. Figure 2 The tiny distance shown is 1-2 mm), and when the third guard plate 3 is clamped to the other end of the receiving slot of the first guard plate 1, the outer wall of the third guard plate 3 is tightly attached to the inner wall of the first receiving groove 11, and when the worker turns the second screw 17, the second screw 17 will squeeze the outer top wall of the third guard plate 3, and press the bottom ends of both sides of the third guard plate 3 tightly against the top surfaces of the first clamping portion 12 and the second clamping portion 13. At this time, the top outer wall of the third guard plate 3 is also at a tiny distance from the inner wall of the first receiving groove 11 (the tiny distance is caused by the deformation caused by the squeezing force of the first guard plate 1 and the third guard plate 3, and the tiny distance is 1-2 mm).
[0036] Preferably, the first clamping portion 12 and the second clamping portion 13 are symmetrically arranged. It should be understood that the symmetrical arrangement of the first clamping portion 12 and the second clamping portion 13 allows both ends of the second guard plate 2 and the third guard plate 3 to simultaneously touch the clamping portions when the second guard plate 2 and the third guard plate 3 are clamped in the receiving slot of the first guard plate 1, thereby making the connection between the first guard plate 1, the second guard plate 2 and the third guard plate 3 more stable.
[0037] In this embodiment, the cross-sections of the first, second, and third guard plates 1, 2, and 3 are all arc-shaped, and the first, second, and third receiving recesses 11, 21, and 31 are also arc-shaped. It should be understood that the first, second, and third receiving recesses 11, 21, and 31 are primarily used to accommodate water pipes and electrical wires, and the arc-shaped receiving spaces can accommodate most pipelines. Of course, the first and second receiving recesses 11, 21, and 21 may also be rectangular, triangular, or other shapes.
[0038] It should be understood that in some embodiments, the cross-sections of the first guard plate 1, the second guard plate 2 and the third guard plate 3 are all semicircular, and the first receiving groove 11, the second receiving groove 21 and the third receiving groove 31 are semicircular, wherein the aperture of the first receiving groove 11 of the first guard plate 1 is equal to the aperture of the outer wall of the second guard plate 2, and the aperture of the first receiving groove 11 of the first guard plate 1 is equal to the aperture of the outer wall of the third guard plate 3, so that the second guard plate 2 and the third guard plate 3 are stably received in the first receiving groove 11.
[0039] Furthermore, the first screw 15 includes a first screw body 151 and a first nut 152. The width of the first nut 152 is greater than the aperture of the first threaded hole 14, so that the first nut 152 is stuck outside the first threaded hole 14, and the length of the first screw body 151 is greater than the depth of the first threaded hole 14, so that the first screw body 151 passes through the first threaded hole 14 and is squeezed on the top of the second guard plate 2.
[0040] Furthermore, the second screw 17 includes a second screw body 171 and a second nut 172. The width of the second nut 172 is greater than the aperture of the second threaded hole 16, so that the second nut 172 is stuck outside the second threaded hole 16. The length of the second screw body 171 is greater than the depth of the second threaded hole 16, so that the second screw body 171 passes through the second threaded hole 16 and is squeezed on the top of the third guard plate 3.
[0041] In this embodiment, the second guard plate 2 is linear, and the third guard plate 3 is right-angled. The second guard plate 2 and the third guard plate 3 can be connected by the first guard plate 1, so that the guard plate structure can be bent and can protect the bent pipeline. In other words, two linear second guard plates 2 can be connected by the first guard plate 1, a linear second guard plate 2 and a right-angled third guard plate 3 can be connected by the first guard plate 1, and a right-angled third guard plate 3 and a right-angled third guard plate 3 can be connected by the first guard plate 1.
[0042] It should be understood that the first guard plate 1 , the second guard plate 2 and the third guard plate 3 in this embodiment can be made of PVC material or other anti-corrosion materials.
[0043] In addition, in some embodiments, the side walls at both ends of the first receiving groove 11 of the first guard plate 1 are respectively provided with a first positioning hole and a second positioning hole, both ends of the second guard plate 2 are provided with a first positioning column for being clamped in the first positioning hole or the second positioning hole, and both ends of the third guard plate 3 are provided with a second positioning column for being clamped in the first positioning hole or the second positioning hole.
[0044] Further, such as Figure 6As shown, the present invention also discloses a method for installing a pipeline anti-corrosion guard plate structure. The installation method uses the above pipeline anti-corrosion guard plate structure to work (i.e., install). Specifically, the installation method includes:
[0045] Step S101: When the pipeline is laid on the wall (or ground) in a straight line and the length of the second guard plate 2 is not long enough, one end of a second guard plate 2 is set in one end of the receiving slot of the first guard plate 1, and one end of another second guard plate 2 is set in the other end of the receiving slot of the first guard plate 1.
[0046] It should be understood that step S101 is to connect two straight-line long second guard plates 2 together through the first guard plate 1 to cover relatively long pipelines to protect and prevent corrosion of these pipelines.
[0047] Step S102: Thread a first screw 15 into the first threaded hole 47 at one end of the first guard plate 1, and rotate the first screw 15 so that the first screw body 151 of the first screw 15 squeezes the top of the second guard plate 2 in the receiving slot, and thread a second screw 17 into the second threaded hole 16 at the other end of the first guard plate 1, and rotate the second screw 17 so that the second screw body 171 of the second screw 17 squeezes the top of the second guard plate 2 in the receiving slot.
[0048] Step S103: Cover the two connected second guard plates 2 and the first guard plate 1 in the wire trough to cover the pipelines in the wire trough.
[0049] It should be understood that the two connected second guard plates 2 and the first guard plate 1 are arranged in a straight line.
[0050] Further, such as Figure 7 As shown, the installation method of the pipeline anti-corrosion guard plate structure also includes the following steps:
[0051] Step S201: When the pipeline turns and is laid on the wall, one end of a second guard plate 2 is set in one end of the receiving slot of the first guard plate 1, and one end of the third guard plate 3 is set in the other end of the receiving slot of the first guard plate 1, and the first screw 15 is threadedly connected to the first threaded hole 14 so that the first screw body 151 of the first screw 15 squeezes the top of the second guard plate 2 in the receiving slot, and the second screw 17 is threadedly connected to the second threaded hole 16 so that the second screw body 171 of the second screw 17 squeezes the top of the third guard plate 3 in the receiving slot, so that the second guard plate 2, the first guard plate 1 and the third guard plate 3 are at right angles.
[0052] Step S202: Cover the connected right-angled second guard plate 2, first guard plate 1 and third guard plate 3 in the wire trough to cover the pipelines in the right-angled wire trough.
[0053] Preferably, the pipeline comprises a water pipe and an electrical conductor.
[0054] It is to be understood that the terms "including", "comprising", or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can include other elements not expressly listed or inherent to such process, method, article, or apparatus. An element proceeded by "comprises a... " does not, without more constraints, exclude the existence of additional identical elements in the process, method, article, or apparatus that comprises the element.
[0055] While embodiments of the application have been shown and described, it is to be understood that the application is not limited to the details of the embodiments described, since the scope of the application is defined with respect to the appended claims.
Claims
1. A pipeline anti-corrosion guard plate structure, characterized in that: include: A first guard plate is provided with a first receiving groove along its length, wherein a first clamping portion is extended from a bottom end of one side of the first receiving groove of the first guard plate, and a second clamping portion is extended from a bottom end of the other side of the first receiving groove of the first guard plate, and a receiving slot is formed by the first clamping portion, the inner wall of the first receiving groove, and the second clamping portion; A second guard plate, one end of which is disposed in one end of the receiving slot, wherein the second guard plate is provided with a second receiving groove along its length; A third guard plate, one end of which is disposed within the other end of the receiving slot, wherein the third guard plate is provided with a third receiving groove along its length; Among them, the top end of one end of the first guard plate is provided with a first threaded hole connected to the first receiving groove, and a first screw is threadedly connected to the first threaded hole to squeeze the top end of the second guard plate in the receiving slot through the first screw, and the top end of the other end of the first guard plate is provided with a second threaded hole connected to the first receiving groove, and a second screw is threadedly connected to the second threaded hole to squeeze the top end of the third guard plate in the receiving slot through the second screw.
2. The pipeline anti-corrosion guard plate structure according to claim 1, characterized in that: The second guard plate is in a straight line shape, and the third guard plate is in a right angle shape.
3. The pipeline anti-corrosion guard plate structure according to claim 1, characterized in that: The first clamping portion and the second clamping portion are symmetrically arranged.
4. The pipeline anti-corrosion guard plate structure according to claim 1, characterized in that: The cross sections of the first guard plate, the second guard plate and the third guard plate are all arc-shaped, and the first receiving groove, the second receiving groove and the third receiving groove are all arc-shaped.
5. The pipeline anti-corrosion guard plate structure according to claim 4, characterized in that: The outer wall of the second guard plate is tightly attached to the inner wall of the first receiving groove, the outer wall of the third guard plate is tightly attached to the inner wall of the first receiving groove, the bottom end of one side of the second guard plate is arranged on the top surface of the first clamping portion, the bottom end of the other side of the second guard plate is arranged on the top surface of the second clamping portion, the bottom end of one side of the third guard plate is arranged on the top surface of the first clamping portion, and the bottom end of the other side of the third guard plate is arranged on the top surface of the second clamping portion.
6. The pipeline anti-corrosion guard plate structure according to claim 5, characterized in that: The first screw includes a first screw body and a first nut, the width of the first nut is greater than the aperture of the first threaded hole, and the length of the first screw body is greater than the depth of the first threaded hole. The second screw includes a second screw body and a second nut, the width of the second nut is greater than the aperture of the second threaded hole, and the length of the second screw body is greater than the depth of the second threaded hole.
7. A method for installing a pipeline anti-corrosion guard plate structure, characterized in that: The pipeline anti-corrosion guard plate structure according to any one of claims 1 to 6 is used for operation, and the installation method includes: When the pipeline is laid on the wall in a straight line and the length of the second guard plate is not long enough, one end of the second guard plate is placed in one end of the receiving slot of the first guard plate, and one end of the other second guard plate is placed in the other end of the receiving slot of the first guard plate; A first screw is threadedly connected to a first threaded hole at one end of the first guard plate, and the first screw is rotated so that the first screw body of the first screw is pressed against the top end of the second guard plate in the receiving slot; a second screw is threadedly connected to a second threaded hole at the other end of the first guard plate, and the second screw is rotated so that the second screw body of the second screw is pressed against the top end of the second guard plate in the receiving slot; Place the two connected second guard plates and the first guard plate in the wire trough to cover the pipelines in the wire trough.
8. The installation method according to claim 7, characterized in that: The installation method also includes: When the pipeline is laid on the wall at a turn, one end of the second guard plate is set in one end of the receiving slot of the first guard plate, and one end of the third guard plate is set in the other end of the receiving slot of the first guard plate, and a first screw is threadedly connected to the first threaded hole so that the first screw body of the first screw presses the top end of the second guard plate in the receiving slot, and a second screw is threadedly connected to the second threaded hole so that the second screw body of the second screw presses the top end of the third guard plate in the receiving slot, so that the second guard plate, the first guard plate and the third guard plate form a right angle; Place the second guard plate, the first guard plate and the third guard plate that are connected and in a right-angle shape in the wire trough to cover the pipelines in the right-angled wire trough.
9. The installation method according to claim 8, characterized in that: The pipeline includes a water pipe and an electric wire.