A point wave net partition wall separating a pipeline from a structure wall body and a forming method and installation system thereof
By using the dotted wave mesh partition wall structure, the problems of low efficiency and high cost in separating pipelines from structural walls in existing technologies are solved, enabling flexible separation and renewal of pipelines from structural walls, and enhancing sound insulation and heat preservation effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHANGHAI CONCRETE QIAN CONSTR TECH CO LTD
- Filing Date
- 2026-05-15
- Publication Date
- 2026-06-12
Smart Images

Figure CN122190410A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of prefabricated buildings, and in particular relates to a dotted wave mesh partition wall with pipelines and structural walls separated, as well as its forming method and installation system. Background Technology
[0002] The macro-level strategic policy proposes "standardized design, factory production, prefabricated construction, integrated decoration, information management, and intelligent application," and advocates "separation of building structure, equipment pipelines, and interior decoration systems." The policy encourages "separation of pipelines from structure." Furthermore, the guiding opinions from various parties explicitly promote fully furnished buildings, advocate menu-style fully furnished decoration, and promote prefabricated decoration methods. It promotes pipeline separation and integrated decoration technologies, promotes integrated modular building components, and improves decoration quality. Among these, "pipeline separation" is explicitly proposed as a specific technical path. Separating pipelines from the main structural walls, adhering to the concept of a century-old residence, allows pipelines to be removed and replaced without damaging the structural walls.
[0003] Existing technologies can be broadly categorized into the following three types: (1) Light steel keel interior partition wall: The interior is hollow, with steel keel as the structural frame, and lightweight gypsum board covering both sides. Disadvantages: The interior of the wall is hollow, so it is not suitable for residential buildings. Where pipelines pass through the keel, holes need to be drilled at the corresponding positions of the keel, which causes structural damage to the keel, is inefficient, and has high costs.
[0004] (2) Ordinary brick wall: that is, the ordinary brick-concrete wall used in existing residential buildings. Disadvantages: pipelines need to be trenched on the construction site, which generates a lot of dust, is inefficient and noisy, and pipelines cannot be separated. Trenching has already damaged the structural wall.
[0005] (3) Corrugated wire mesh wall: formed by spraying mortar through corrugated wire mesh. Disadvantages: the corrugated protrusions of the wire mesh need to be cut when the pipes are inserted horizontally. The wire mesh and the outer cement mortar are a whole, and the pipes cannot be separated.
[0006] Therefore, this invention came into being.
[0007] It should be noted that the information disclosed in the background section of this invention is intended only to enhance the understanding of the general background of this invention, and should not be construed as an admission or in any way implying that the information constitutes prior art known to those skilled in the art. Summary of the Invention
[0008] One objective of this invention is to provide an internal partition wall for pipeline separation and replacement. The second objective of this invention is to provide a method for forming an internal partition wall that separates pipelines and is used for replacement; The third objective of this invention is to propose an installation system for internal partition walls that separates pipelines and is used for replacement.
[0009] To achieve one of the above objectives, the present invention first provides a dotted wave mesh partition wall that separates pipelines from structural walls, comprising: Structural walls; The dot-wave mesh includes a planar mesh body and multiple protrusions formed on the planar mesh body by a dot matrix. The protrusions protrude from the planar mesh body to one side, forming a convex surface and a concave surface opposite to it. The convex surface faces the structural wall. The dot-wave mesh is connected to the structural wall from the concave surface by an assembly. A conduit space is formed between the plane of the planar mesh body and the wall surface of the structural wall. A mortar layer is applied to the concave side of the dotted wave mesh and fills the protrusions.
[0010] Preferably, the dotted wave mesh is an integrally formed mesh component, and the planar mesh body and the protrusions of the dotted wave mesh are continuously formed from the same material.
[0011] Preferably, the plurality of protrusions on the planar mesh are arranged in a matrix or in a crisscross pattern.
[0012] Preferably, the wall surface of the structural wall is further provided with a thermal insulation layer and a sound insulation layer, the thermal insulation layer and the sound insulation layer being located between the protrusion and the structural wall, and being integrally connected to the structural wall by the fittings.
[0013] Preferably, the pipeline space is implemented as a sound insulation cavity between the mortar layer and the sound insulation layer.
[0014] Preferably, the pipeline space is planned into a continuous pipeline path by the multiple protrusions.
[0015] Preferably, the fitting is a nail or a through bolt; the structural wall is an ALC wall.
[0016] Preferably, the distance between adjacent protrusions is 200-400mm; the length, width and depth dimensions of the protrusions are 60-90mm: 60-90mm: 20-25mm.
[0017] The technical effects of the above-mentioned technical solutions of the present invention arise from one or more of the following combinations: The dotted protrusions in this application allow pipelines to travel freely in both longitudinal and transverse directions without damaging the wire mesh. Furthermore, the structural wall and the dotted mesh are arranged separately, with the dotted mesh fixed to the structural wall using fittings. If the pipeline needs to be updated or removed, it is only necessary to pull out the dotted mesh fittings and reinstall new dotted mesh and nails, without damaging the structural wall. This constitutes a separation of pipelines from the structural wall.
[0018] This application can also arrange an insulation layer and a sound insulation layer between the structural wall and the dotted wave mesh to form a combined wall that can achieve pipeline separation.
[0019] The raised sections of the dot-wave mesh can be designed in various ways according to the pipeline route, resulting in structural reinforcement in both the longitudinal and transverse directions.
[0020] To achieve the above two objectives, the present invention provides a method for producing a dotted wave mesh partition wall that separates pipelines from the structural wall, comprising the following steps: Provide the Dianlang.com website as described above; The dotted wave mesh is installed on the structural wall with the side with the protrusions facing the structural wall, so that a pipeline space is formed between the planar mesh of the dotted wave mesh and the wall surface of the structural wall. After installation, mortar is sprayed onto the side of the dotted wave mesh facing away from the structural wall to form a mortar layer.
[0021] Preferably, it also includes at least one of the following steps: Before installing the dotted wave net on the wall surface of the structural wall, pipelines are laid on the wall surface. The pipeline routing path is calculated to be within the pipeline routing space and avoids the protruding positions on the dotted wave net. Before installing the wave netting on the wall surface of the structural wall, a thermal insulation layer and a sound insulation layer are laid on the wall surface. The thermal insulation layer and the sound insulation layer are located between the protrusion and the structural wall and are integrally connected to the structural wall by the fittings.
[0022] The technical effects of the above-mentioned technical solutions of the present invention arise from one or more of the following combinations: The dotted protrusions in this application allow pipelines to travel freely in both longitudinal and transverse directions without damaging the wire mesh. Furthermore, the structural wall and the dotted mesh are arranged separately, with the dotted mesh fixed to the structural wall using fittings. If the pipeline needs to be updated or removed, it is only necessary to pull out the dotted mesh fittings and reinstall new dotted mesh and nails, without damaging the structural wall. This constitutes a separation of pipelines from the structural wall.
[0023] To achieve the above three objectives, the present invention also provides an installation system for a dotted wave mesh partition wall that separates pipelines from structural walls, wherein the dotted wave mesh partition wall is installed between the main building structures; the structural wall of the dotted wave mesh partition wall is covered by a functional layer, wherein the functional layer is a thermal insulation layer and / or a sound insulation layer.
[0024] The technical effects of the above-mentioned technical solution of the present invention are as follows: By covering the structural walls with functional layers, acoustic bridges and / or thermal bridges can be blocked. Attached Figure Description
[0025] Figure 1 This is a side view of the dotted wave mesh partition wall of the present invention.
[0026] Figure 2 This is a side view showing the structural disassembly of a dotted wave mesh partition wall according to the present invention.
[0027] Figure 3 This is a side view showing another structural disassembly of the dotted wave mesh partition wall of the present invention.
[0028] Figure 4 This is a three-dimensional structural disassembly diagram of a dotted wave mesh partition wall according to the present invention.
[0029] Figure 5 This is a diagram showing the pipeline routing path in the dotted wave mesh partition wall of the present invention.
[0030] Figure 6 This is a schematic diagram of the dot wave mesh structure in the dot wave mesh partition wall of the present invention.
[0031] Figure 7 This is the first raised arrangement diagram of the dot wave mesh in the dot wave mesh partition wall of the present invention.
[0032] Figure 8 This is a second type of raised arrangement diagram of the dotted wave mesh in the dotted wave mesh partition wall of the present invention.
[0033] Figure 9 This is a process flow diagram of the forming process of the dotted wave mesh partition wall of the present invention.
[0034] Figure 10 This is a schematic diagram of the dot wave mesh structure in the dot wave mesh partition wall of the present invention.
[0035] Figure 11 This is an installation effect diagram of the dotted wave mesh partition wall of the present invention.
[0036] The components include: 1. Structural wall; 2. Dotted wave mesh; 21. Protrusion; 3. Mortar layer; 30. Pipeline space; 31. Shear key; 4. Pipeline; 5. Fittings; 5a. Through bolt; 5b. Nail; 6. Thermal insulation layer; 7. Sound insulation layer; 8. Main building structure. Detailed Implementation
[0037] The following description is provided to enable those skilled in the art to implement and use the invention and adapt it to specific application contexts. Various modifications and uses in different applications will be readily apparent to those skilled in the art, and the general principles defined herein are applicable to a wide range of embodiments. Therefore, the invention is not limited to the embodiments given herein, but should be granted the broadest scope consistent with the principles and novel features disclosed herein.
[0038] In the following detailed description, numerous specific details are set forth to provide a more thorough understanding of the invention. However, it will be apparent to those skilled in the art that practice of the invention is not necessarily limited to these specific details. In other words, well-known structures and devices are shown in block diagram form without being depicted in detail to avoid obscuring the invention.
[0039] Readers should note all documents and references submitted concurrently with this specification and open to public inspection, the contents of which are incorporated herein by reference. Unless otherwise expressly stated, all features disclosed in this specification (including any appended claims, abstracts, and drawings) may be replaced by alternative features for the same, equivalent, or similar purposes. Therefore, unless explicitly stated otherwise, each disclosed feature is merely one example of a set of equivalent or similar features.
[0040] Note that, where used, the markings vertical, horizontal, left, right, front, back, top, bottom, front, back, clockwise, and counterclockwise are used merely for convenience and do not imply any specific fixed direction. In fact, they are used to reflect the relative position and / or orientation between the various parts of an object. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0041] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0042] Note that, in practice, "further," "preferably," "even further," and "more preferably" are simply starting points for describing another embodiment based on the foregoing embodiments. The combination of the content following "further," "preferably," "even further," or "more preferably" with the foregoing embodiments constitutes the complete configuration of another embodiment. Any combination of several "further," "preferably," "even further," or "more preferably" settings following the same embodiment can form yet another embodiment.
[0043] The present invention will now be described in detail with reference to the accompanying drawings and specific embodiments. It should be noted that the aspects described below with reference to the accompanying drawings and specific embodiments are merely exemplary and should not be construed as limiting the scope of protection of the present invention in any way.
[0044] "And / or" in parallel: means "both A and B"; "or" in alternative: means "either A or B"; "and / or" in combination: means "both A and B, and either A or B".
[0045] It needs to be stated that, Figures 1-9 To facilitate a concise representation of the overall structure, the dotted wave mesh 2 is not shown in the form of a mesh opening. However, those skilled in the art should understand that the parameters of the mesh openings are based on the shotcrete forming process and are not the only limitation in this embodiment. This invention aims at structural improvement, not at the design of the mesh openings themselves.
[0046] Example 1: Please combine Figures 1-8 This embodiment provides a dot-wave mesh partition wall that separates pipelines from the structural wall, including a structural wall 1, a dot-wave mesh 2, and a mortar layer 3. The dot-wave mesh 2 includes a planar mesh body and multiple protrusions 21 formed on the planar mesh body. Each protrusion 21 protrudes from the planar mesh body to one side, forming a convex surface and a concave surface opposite it. The convex surface faces the structural wall 1. The dot-wave mesh 2 is connected to the structural wall 1 from the concave surface via fittings 5, forming a pipeline space 30 between the plane of the planar mesh body and the wall surface of the structural wall 1. The mortar layer 3 covers the concave side of the dot-wave mesh 2 and fills the protrusions 21 to form shear keys 31.
[0047] In this embodiment, the dotted wave mesh 2 can be laid on one or both sides of the structural wall 1. This embodiment takes the two sides as an example and includes illustrations (e.g.) Figure 1 , Figure 2 and Figure 3 (As shown) will be described in detail.
[0048] Please see Figure 6 , Figure 7 and Figure 8 In this embodiment, the core component, the dotted wave mesh 2, is integrally formed from a planar mesh body and protrusions 21. The specific forming method provided in this embodiment is as follows: a thin sheet is stretched and rolled using a stamping die to form a sheet with dotted protrusions 21, and then punched to form a dotted wave mesh plate. Preferably, the distance between adjacent protrusions 21 is 200-400mm. Further, the length, width, and depth dimensions of the protrusions 21 are optimally 60-90mm:60-90mm:20-25mm. Even further, the convex surface of the protrusion 21 is flat, and its size is preferably 20-50mm. As a preferred embodiment, the specific parameters are implemented with a center distance of 300mm between adjacent protrusions 21; length, width, and depth dimensions of the protrusions 21 of 80mm:80mm:25mm; and a convex surface diameter of 20mm for the protrusions 21.
[0049] It should be noted that, for clarity of illustration in this embodiment, the mesh openings of the wave mesh 2 are not shown in lines. However, those skilled in the art should understand that the mesh density of the wave mesh 2 is set with parameters such as aperture size. This is a common setting in the shotcrete-coated mesh forming process and is existing technology. This embodiment aims to improve the mesh structure; existing standards also exist for setting the coating parameters for flat and wave meshes.
[0050] In this embodiment, the dotted wave mesh is a one-piece molded mesh component, with the planar mesh body and protrusions of the dotted wave mesh continuously constructed from the same material. Galvanized steel is preferred.
[0051] The dotted wave mesh 2 in this embodiment differs from the wave mesh in that its dotted layout of protrusions 21 can be designed and arranged. Specifically, the plurality of protrusions 21 on the planar mesh body are arranged in a... Figure 7 The matrix arrangement shown or Figure 8 The crisscrossing arrangement shown in the diagram allows the mortar layer 3 to be sprayed onto the dotted mesh 2, forming multiple densely distributed shear keys 31, which enhance stiffness in both the longitudinal and transverse directions.
[0052] Furthermore, since there are no protrusions 21 on the outer side of the dotted wave mesh 2, it is more convenient to add structural ribs (not shown) between the multiple longitudinally and transversely arranged protrusions 21 for reinforcement. Figure 2 As shown, the side of the dot wave mesh 2 facing the structural wall 1 is defined as the in-plane side, and the opposite side is defined as the out-of-plane side.
[0053] Furthermore, to improve the functionality of the partition wall in this embodiment, as a preferred implementation method, please refer to... Figure 3 The wall surface of the structural wall 1 is also provided with a heat insulation layer 6 and a sound insulation layer 7. The heat insulation layer 6 and the sound insulation layer 7 are located between the protrusion 21 and the structural wall 1, and are integrally connected to the structural wall 1 by the fitting 5.
[0054] Preferably, in this embodiment, the structural wall 1 is an ALC wall; the insulation layer is an XPS insulation layer; and the sound insulation layer is fiber sound insulation felt or other Class A fireproof and sound insulation materials. The mounting accessory 5 is a nail 5b or a through bolt 5a. Specifically, when laying the wave mesh 2 on one side, the nail 5b is preferred, and when laying the wave mesh 2 on both sides, the through bolt 5a is preferred; or a combination of both can be used.
[0055] In a preferred embodiment, the pipe routing space 30 is further configured as a soundproof cavity between the mortar layer 3 and the soundproof layer 7, with sound insulation achieved through an air layer. Furthermore, the pipe routing space 30 is planned with multiple protrusions 21 to create a continuous path for the pipes 4. Since there are no obstructions in the longitudinal and transverse directions, the paths between the dotted protrusions 21 can be freely planned, and the transitions in the longitudinal and transverse directions are continuous. Therefore, no structural damage to the wall is required, and the pipes 4 and the wall remain separate. They can be removed for maintenance or replacement at any time.
[0056] Example 2: This embodiment provides a method for forming a dotted wave mesh partition wall that separates pipelines from the structural wall, mainly including the following steps: S1 provides a dot wave net 2 as described in the above structural embodiment: Specifically, the dot-wave mesh 2 is installed on the structural wall 1 with the side with protrusions 21 facing the structural wall 1 through the fittings 5, so that the planar mesh of the dot-wave mesh 2 and the wall surface of the structural wall 1 form a pipeline space 30.
[0057] Furthermore, the dot-matrix mesh 2 includes a planar mesh body and multiple protrusions 21 formed on the planar mesh body. Each protrusion 21 extends from the planar mesh body to one side, forming a convex surface and a concave surface opposite it. The convex surface faces the structural wall 1. The dot-matrix mesh 2 is connected to the structural wall 1 from the concave surface via fittings 5, forming a conduit space 30 between the plane of the planar mesh body and the wall surface of the structural wall 1. A mortar layer 3 covers the concave side of the dot-matrix mesh 2 and fills the protrusions 21.
[0058] In this embodiment, the dotted wave mesh 2 can be laid on one or both sides of the structural wall 1. This embodiment takes the two sides as an example and provides a detailed description with accompanying illustrations.
[0059] Please see Figure 6 , Figure 7 and Figure 8 In this embodiment, the core component, the dotted wave mesh 2, is integrally formed by a planar mesh body and protrusions 21. The specific forming method provided in this embodiment is as follows: a thin sheet is stretched and rolled using a stamping die to form a sheet with dotted protrusions 21, and then punched to form holes to create the dotted wave mesh plate. Preferably, as follows... Figure 9As shown, the distance between adjacent protrusions 21 is 200-400mm. Further, the optimal dimensions of the protrusion 21 are 60-90mm: 60-90mm: 20-25mm. Even further, the convex surface of the protrusion 21 is flat, and its dimensions are preferably 20-50mm. As a preferred embodiment of this invention, the specific parameters are implemented with a center distance of 300mm between adjacent protrusions 21; dimensions of 80mm: 80mm: 25mm for the protrusion 21; and a convex surface diameter of 20mm for the protrusion 21.
[0060] The dotted wave mesh 2 in this embodiment differs from the wave mesh in that its dotted layout of protrusions 21 can be designed and arranged. Specifically, the multiple protrusions 21 on the planar mesh are arranged in a matrix or in a crisscross pattern. After the mortar layer 3 is sprayed onto the dotted wave mesh 2, it forms multiple densely distributed shear keys 31, which enhance stiffness in both the longitudinal and transverse directions.
[0061] Furthermore, since there are no protrusions 21 on the outer side of the dotted wave mesh 2, it is more convenient to add structural ribs between the multiple protrusions 21 arranged in the longitudinal and transverse directions for reinforcement.
[0062] S2 installs the dotted mesh 2 onto the structural wall 1 with the side having protrusions 21 facing the structural wall 1 using the fitting 5, thus creating a conduit space 30 between the planar mesh of the dotted mesh 2 and the wall surface of the structural wall 1. Furthermore, in order to improve the functionality of the partition wall in this embodiment, as a preferred embodiment, the wall surface of the structural wall 1 is also provided with a thermal insulation layer 6 and a sound insulation layer 7. The thermal insulation layer 6 and the sound insulation layer 7 are located between the protrusion 21 and the structural wall 1, and are integrally connected to the structural wall 1 by the fitting 5.
[0063] Preferably, the structural wall 1 in this embodiment is an ALC wall. The fitting 5 is a nail 5b or a through bolt 5a. Specifically, when laying the dotted wave mesh 2 on one side, the nail 5b is preferred, and when laying the dotted wave mesh 2 on both sides, the through bolt 5a is preferred.
[0064] As a preferred embodiment of step one, before installing the wave mesh 2 on the wall surface of the structural wall 1, a thermal insulation layer 6 and a sound insulation layer 7 are laid on the wall surface. The thermal insulation layer 6 and the sound insulation layer 7 are located between the protrusion 21 and the structural wall 1, and are integrally connected to the structural wall 1 by the fitting 5. The thermal insulation layer 6 is an XPS thermal insulation layer 6; the sound insulation layer 7 is a fiber sound insulation felt or other Class A fireproof and sound insulation material.
[0065] In a preferred embodiment, the pipeline space 30 is further configured as a soundproof cavity between the mortar layer 3 and the soundproof layer 7, with sound insulation achieved through an air layer. Furthermore, the pipeline space 30 is planned with a continuous pipeline path 4 by multiple protrusions 21. Since there are no obstructions in the longitudinal and transverse directions, the paths between the dotted protrusions 21 can be freely planned, and the transitions in the longitudinal and transverse directions are continuous. Therefore, no structural damage to the wall is required, and the pipeline 4 and the wall remain separate. It can be removed for maintenance or replacement at any time. In a preferred embodiment of step one, before installing the dotted mesh 2 on the structural wall 1, the pipeline 4 is laid on the wall surface. The pipeline path 4 is calculated to be within the pipeline space 30. For workers constructing the pipeline 4 on-site, no autonomy is required; they can simply follow the drawings step by step.
[0066] Exemplary implementation: like Figure 9 As shown, the pipeline 4 is installed on the structural wall 1 according to the designed pipeline 4 path. The pipeline 4 is designed to avoid the protrusion 21 of the subsequent dotted wave mesh 2. Then the dotted wave mesh 2 is laid and installed on the structural wall 1 with nails 5b or through bolts 5a.
[0067] S3 sprays mortar on the side of the installed dotted wave mesh 2 facing away from the structural wall 1 to form mortar layer 3: Specifically, workers simply spray the slurry through a spray pipe to form the coating. This operation is simple and a routine skill for workers.
[0068] Exemplary implementation: like Figure 9 As shown, workers spray the outer side of the wave mesh 2 using a spray pipe, forming a mortar layer 3. This mortar layer 3 fills the depression on the outer side of the protrusion 21, forming a shear key 31. If pipeline 4 needs to be replaced later, simply locate the position of the nail 5b or the through bolt 5a according to the design drawings, break off part of the mortar layer 3, pull out the nail 5b or remove the locking nut on the through bolt 5a to complete the overall disassembly, then replace pipeline 4; finally, reinstall and fill the mortar layer 3.
[0069] Example 3: Please see Figure 11 This embodiment also provides a dotted wave mesh partition wall installation system that separates pipelines from structural walls. The dotted wave mesh partition wall has been described in detail in Embodiment 1 and will not be repeated here.
[0070] The core of this embodiment lies in installing dotted wave mesh partitions between the main building structures 8. The structural wall 1 of the dotted wave mesh partition is covered by a functional layer, which is an insulation layer 6 and / or a sound insulation layer 7. The main building structure 8 can be implemented as a beam, and is preferably a structural beam.
[0071] The insulation layer 6 or the sound insulation layer 7 can individually achieve thermal bridge blocking or sound bridge blocking. However, in a preferred embodiment of this example, the insulation layer 6 and the sound insulation layer 7 are wrapped around the structural wall 1 and integrally connected to the structural wall 1 by the fitting 5. This blocks the sound transmission between the main building structures 8 of the floors. Preferably, in this embodiment, the structural wall 1 is an ALC wall; the insulation layer is an XPS insulation layer; and the sound insulation layer is fiber sound insulation felt or other Class A fireproof and sound insulation materials. The fitting 5 is a nail 5b or a through bolt 5a. Specifically, when laying the wave mesh 2 on one side, the nail 5b is preferred; when laying the wave mesh 2 on both sides, the through bolt 5a is preferred; or a combination of both can be used.
[0072] Furthermore, the present invention has been described in detail above with reference to the accompanying drawings and embodiments. Those skilled in the art can make various modifications to the present invention based on the above description. Therefore, certain details in the embodiments should not be construed as limiting the present invention, and the scope of protection of the present invention shall be defined by the appended claims.
Claims
1. A dotted wave mesh partition wall separating pipelines from structural walls, characterized in that, include: Structural walls; The dot-wave mesh includes a planar mesh body and multiple protrusions formed on the planar mesh body by a dot matrix. The protrusions protrude from the planar mesh body to one side, forming a convex surface and a concave surface opposite to it. The convex surface faces the structural wall. The dot-wave mesh is connected to the structural wall from the concave surface by an assembly. A conduit space is formed between the plane of the planar mesh body and the wall surface of the structural wall. A mortar layer is applied to the concave side of the dotted wave mesh and fills the protrusions.
2. The dotted wave mesh partition wall as described in claim 1, characterized in that: The dotted wave mesh is an integrally formed mesh component, and the planar mesh body and the protrusions of the dotted wave mesh are continuously composed of the same material.
3. The dotted wave mesh partition wall as described in claim 2, characterized in that: The multiple protrusions on the planar mesh are arranged in a matrix or in a crisscross pattern.
4. The dotted wave mesh partition wall as described in claim 1, characterized in that: The wall surface of the structural wall is also provided with a thermal insulation layer and a sound insulation layer. The thermal insulation layer and the sound insulation layer are located between the protrusion and the structural wall and are integrally connected to the structural wall by the fittings.
5. The dotted wave mesh partition wall as described in claim 4, characterized in that: The space for the pipeline is implemented as a soundproof cavity between the mortar layer and the soundproof layer.
6. The dotted wave mesh partition wall as described in claim 1, characterized in that: The pipeline space is planned into a continuous pipeline path by multiple protrusions.
7. The dotted wave mesh partition wall as described in claim 1, characterized in that: The fittings are nails or through bolts; the structural wall is an ALC wall.
8. The dotted wave mesh partition wall as described in claim 1, characterized in that: The distance between adjacent protrusions is 200-400mm; the length, width and depth dimensions of the protrusions are 60-90mm: 60-90mm: 20-25mm.
9. A method for forming a dotted wave mesh partition wall with pipelines separated from the structural wall, characterized in that, Includes the following steps: Provide a dot wave net as described in any one of claims 1-8; The dotted wave mesh is installed on the structural wall with the side with the protrusions facing the structural wall, so that a pipeline space is formed between the planar mesh of the dotted wave mesh and the wall surface of the structural wall. After installation, mortar is sprayed onto the side of the dotted wave mesh facing away from the structural wall to form a mortar layer.
10. The molding method as described in claim 9, characterized in that, It also includes at least one of the following steps: Before installing the dotted wave net on the wall surface of the structural wall, pipelines are laid on the wall surface. The pipeline routing path is calculated to be within the pipeline routing space and avoids the protruding positions on the dotted wave net. Before installing the wave netting on the structural wall, an insulation layer and a sound insulation layer are laid on the wall. The insulation layer and the sound insulation layer are located between the protrusion and the structural wall and are integrally connected to the structural wall by the fittings.
11. An installation system for a dotted wave mesh partition wall where pipelines are separated from the structural wall, characterized in that, The dotted wave mesh partition wall according to any one of claims 1-8 is installed between the main building structures; the structural wall of the dotted wave mesh partition wall is covered by a functional layer, which is a thermal insulation layer and / or a sound insulation layer.