Dust particle treatment device for green building construction
By designing the interlocking structure of the water-blocking trough and the water-blocking panel, and an auxiliary water delivery system, the installation compatibility problem of the device was solved, achieving efficient dust adsorption and stability, and improving the construction environment and personnel health.
Patent Information
- Application Number
- CN202520111418.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-17
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-01-17
AI Technical Summary
The installation location and area of the dust suppression structure of existing dust particle treatment devices used in green building construction cannot be fully adapted to water baffles of different specifications, resulting in inconvenience in installation.
A dust particle treatment device including a water-blocking groove plate and a water-blocking panel is designed. The water-blocking groove plate and the water-blocking panel are engaged by grooves and protrusions. A cotton layer block is provided on the inner side of the built-in frame plate. The auxiliary structure includes a water injection pipe, a water distribution pipe and a water delivery pipe. Water is introduced into the cotton layer block through these pipes to enhance the adsorption performance.
It improves dust adsorption efficiency, enhances the stability and adaptability of the device, reduces dust contamination, simplifies the installation process, and improves the cleanliness of the construction environment and the health protection of personnel.
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Figure CN223760680U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of green building construction technology, specifically a dust particle treatment device for green building construction. Background Technology
[0002] Water barriers are primarily used in green building construction for waterproofing, protecting building structures and maintaining indoor dryness. They can also indirectly prevent dust, such as by enclosing spaces, controlling water flow, and preventing dust from adsorbing. Dust control is crucial, and water barriers are one dust control method, though their effectiveness is influenced by various factors. Water barriers are building materials used to prevent water penetration, commonly used in building walls or floors. They are made of various materials such as PVC, fiberglass, and aluminum alloy, and feature low resistance, light weight, high strength, corrosion resistance, aging resistance, and good water-air separation. Types include those for central air conditioning terminal units (using fiberglass or PVC for vapor-water separation), flood control (made of stainless steel or stainless steel to prevent rainwater from entering underground garages and featuring reflective strips), river construction (increasing stability), and subway entrance floodgates (made of aluminum alloy, suitable for various entrances and providing excellent sealing and waterproofing). Functions include preventing water penetration, controlling water flow, and generating electricity, and they are widely used in building decoration, central air conditioning systems, flood control facilities, river construction, and subway entrances.
[0003] Publication number CN115475467B discloses a dust particle treatment device for green building construction, including a water baffle. One side of the water baffle has symmetrically arranged fixing rings, and a dust suppression mechanism that uses water spraying is installed between the two fixing rings. A vertical plate is connected to the other side of the water baffle, forming an installation groove between the vertical plate and the water baffle. A wind guide plate is provided on one side of the first inclined plate, and the wind guide plate is used to shield the water sprayed by the dust suppression mechanism. This invention, through the water baffle and wind guide plate, shields the water sprayed from the nozzles, preventing the nozzles from spraying water outside the fence and wetting pedestrians. Simultaneously, the arc-shaped water baffle and the baffle plate work together to collect the water sprayed into the groove. When dust in the air falls into the water collected in the groove, it undergoes secondary dust suppression, enhancing the dust suppression efficiency.
[0004] The above technology utilizes a dust suppression mechanism to remove dust from the baffle plate. However, during installation, the installation position and area of the dust suppression structure cannot be fully adapted to the baffle plate of different specifications.
[0005] Therefore, in view of this, we have studied and improved the existing shortcomings and proposed a dust particle treatment device for green building construction. Utility Model Content
[0006] The purpose of this invention is to provide a dust particle treatment device for green building construction, so as to solve the problems mentioned in the background art.
[0007] To achieve the above objectives, this utility model provides the following technical solution: a dust particle treatment device for green building construction, comprising: a water-blocking trough plate and a water-blocking panel, wherein grooves are provided on both sides of the rear end of the water-blocking trough plate, and protrusions are provided on both sides of the front side of the water-blocking panel, and a dust inlet is provided on the front side of the water-blocking trough plate, and cavities are provided inside both the water-blocking trough plate and the water-blocking panel, wherein an internal frame plate is vertically arranged inside the cavity of the water-blocking trough plate, the inner side of the internal frame plate presents a grid structure, and cotton layer blocks are installed inside the grid of the internal frame plate;
[0008] An auxiliary structure is vertically installed on the inner side of the water-blocking panel.
[0009] Furthermore, the area of the built-in frame plate is slightly smaller than the area of the internal cavity of the water-retaining channel plate, so that the built-in frame plate can be fully installed inside the water-retaining channel plate.
[0010] Furthermore, the lower end of the outer side of the cotton layer is divided into an inclined structure, which facilitates the surface of the cotton layer to adsorb most of the dust.
[0011] Furthermore, the surfaces of the groove and the protrusion are provided with multiple insertion holes to facilitate the installation of the water distribution pipe.
[0012] Furthermore, the auxiliary structure includes a water injection pipe, a water distribution pipe, and a water delivery pipe. A water delivery pipe is vertically arranged inside the cavity of the water-blocking panel. A water injection pipe is arranged at the top of the water delivery pipe. A water distribution pipe is arranged on the outside of the water delivery pipe. The diameter of the outer side of the water distribution pipe is equal to the inner diameter of the insertion hole opened on the surface of the protrusion and the groove, which is convenient.
[0013] Furthermore, the water injection pipe and the water delivery pipe are fixedly connected to prevent water from overflowing.
[0014] Furthermore, the front part of the water distribution pipe does not come into contact with the rear end face of the cotton layer, which facilitates the outflow of water.
[0015] Compared with the prior art, the beneficial effects of this utility model are:
[0016] 1. This utility model uses a water-blocking groove plate as the main structure to block dust, which is placed in the construction environment. When external dust enters the outside of the water-blocking groove plate, the dust inlet guides the dust to the surface of the inner frame plate. At the same time, the cotton layer inside the inner frame plate can stick the dust. In addition, the protrusion at the front of the water-blocking panel and the groove on the inner side of the water-blocking groove plate are interlocked. In this way, during the dust absorption process, only the water-blocking groove plate undertakes most of the dust absorption task, and the cotton layer inside the inner frame plate directly absorbs the dust particles. There is no need to add extra structures to the outside of the water-blocking groove plate and the groove, which increases the stability of the water-blocking groove plate and the water-blocking panel.
[0017] 2. In this utility model, water is introduced into the water injection pipe and then into the water distribution pipe. The water distribution pipe guides the water into the interior of the water baffle plate. At this time, the water soaks into all the cotton layers inside the built-in frame plate, which increases the dust adsorption performance of the cotton layers and improves the dust absorption effect of the water baffle plate. Attached Figure Description
[0018] Figure 1 This is a side view of the structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the axial front view of the present invention;
[0020] Figure 3 This is a schematic diagram showing the position and structure of the first built-in frame plate and the cotton layer block of this utility model;
[0021] Figure 4 This is a schematic diagram showing the position and structure of the second built-in frame plate and the cotton layer block of this utility model;
[0022] Figure 5 This is a schematic diagram of the first auxiliary structure of this utility model;
[0023] Figure 6 This is a schematic diagram of the second auxiliary structure of this utility model.
[0024] In the diagram: 1. Water-retaining groove plate; 2. Internal frame plate; 3. Auxiliary structure; 31. Water injection pipe; 32. Water distribution pipe; 33. Water delivery pipe; 4. Water-retaining panel; 5. Protrusion; 6. Groove; 7. Cotton layer block; 8. Dust inlet. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0026] like Figures 1-6 As shown, a dust particle treatment device for green building construction includes: a water-blocking trough plate 1 and a water-blocking panel 4. The water-blocking trough plate 1 has grooves 6 on both sides of its rear end, and the water-blocking panel 4 has protrusions 5 on both sides of its front side. The water-blocking trough plate 1 has a dust inlet 8 on its front side. Both the water-blocking trough plate 1 and the water-blocking panel 4 have cavities inside. An internal frame plate 2 is vertically installed inside the cavity of the water-blocking trough plate 1. The inner side of the internal frame plate 2 has a grid structure, and cotton layer blocks 7 are installed inside the grid of the internal frame plate 2.
[0027] An auxiliary structure 3 is vertically installed on the inner side of the water-blocking panel 4.
[0028] Furthermore, since the groove 6 on the inner side of the water-blocking plate 1 and the protrusion 5 on the outer side of the water-blocking panel 4 can engage with each other, and the cavity inside the water-blocking plate 1 can accommodate the inner frame plate 2 and the cotton layer 7, when dust flies towards the surface of the water-blocking plate 1, the dust inlet 8 on the surface of the water-blocking plate 1 allows the dust to directly contact the cotton layer 7. At this time, the water-blocking plate 1 is increased in direct contact area with the dust, and the cotton structure of the cotton layer 7 itself can adsorb most of the dust particles. This avoids adding unnecessary structures to the outside of the water-blocking plate 1 and the water-blocking panel 4, and uses the structure of the water-blocking plate 1 and the water-blocking panel 4 itself as a container to achieve the effect of absorbing dust. Users can also increase the distance between the water-blocking plate 1 and the water-blocking panel 4 so that the dust absorbed by the surface of the water-blocking plate 1 will not excessively adhere to the surface of the water-blocking panel 4.
[0029] This has resulted in the following effects and novel technologies:
[0030] This dust particle treatment device for green building construction boasts multiple benefits and innovative technologies. Firstly, it offers highly efficient dust treatment. The dust inlet 8 of the water-retaining trough plate 1 allows dust to come into contact with the cotton layer 7, which absorbs most of the dust particles, reducing dust levels, improving the construction environment, and protecting the health of personnel and the surrounding environment. Secondly, it features a compact structure, using the water-retaining trough plate 1 and the water-retaining panel 4 as containers to absorb dust, saving space and facilitating installation and use. Thirdly, it prevents dust contamination. The distance between the two can be adjusted to avoid excessive dust contamination of the water-retaining panel 4, reducing maintenance workload. Regarding innovative technologies, the unique structural combination ensures stability and facilitates easy installation, disassembly, inspection, and replacement of the internal frame plate 2 and cotton layer 7. In the internal adsorption structure, the grid structure of the internal frame plate 2 within the water-retaining trough plate 1 and the cotton layer 7 increase the contact area and improve adsorption efficiency.
[0031] like Figures 1-6 As shown, a dust particle treatment device for green building construction includes an auxiliary structure 3 comprising a water injection pipe 31, a water distribution pipe 32, and a water delivery pipe 33. A water delivery pipe 33 is vertically installed inside the cavity of a water-blocking panel 4. A water injection pipe 31 is installed at the top of the water delivery pipe 33. A water distribution pipe 32 is installed on the outer side of the water delivery pipe 33. The diameter of the outer side of the water distribution pipe 32 is equal to the inner diameter of the insertion hole opened on the surface of the protrusion 5 and the groove 6.
[0032] As for the rest, after the water enters the water supply pipe 33 through the water injection pipe 31, the water distribution pipe 32 guides the water into the water baffle plate 1. The cotton layer 7 inside the water baffle plate 1 combines with the water, increasing the dust absorption effect. Users can increase or decrease the length of the water distribution pipe 32 to control the distance between the water baffle plate 4 and the water baffle plate 1. Users can increase the number of water distribution pipes 32 to ensure that when a small amount of water enters the water distribution pipe 32 through the water injection pipe 31, multiple water distribution pipes 32 can evenly guide the water into the inner side of the cotton layer 7.
[0033] This has resulted in the following effects and novel technologies:
[0034] The auxiliary structure 3 of this green building construction dust particle treatment device brings significant effects and novel technology. In terms of effect, it enhances dust adsorption. Through the cooperation of the water injection pipe 31, water distribution pipe 32, and water delivery pipe 33, the water combines with the cotton layer block 7, increasing adsorption capacity. Simultaneously, it allows for flexible adjustment of the device structure; by changing the length of the water distribution pipe 32, the distance between the water-blocking panel 4 and the water-blocking groove plate 1 can be controlled, adapting to different construction environments. Furthermore, uniform water distribution is another effect; by increasing the number of water distribution pipes 32, it ensures that the water is evenly introduced into the cotton layer. Block 7 avoids uneven water distribution affecting dust adsorption. In terms of novel technology, the auxiliary structure 3 is uniquely designed. It integrates water injection pipe 31, water distribution pipe 32, and water delivery pipe 33, realizing the function of water delivery and distribution. At the same time, the structure of the device and the water distribution can be controlled by adjusting the length and number of water distribution pipes 32. This is a relatively novel design among similar devices. In addition, the dust adsorption effect is affected by the regulation of water entering the cotton layer block 7. This design concept closely links the role of water with dust adsorption, providing a new method to improve dust treatment efficiency.
[0035] Working principle: When using this dust particle treatment device for green building construction, firstly, the built-in frame plate 2 and the cotton layer block 7 are placed inside the water-blocking trough plate 1. Then, the water injection pipe 31, the water distribution pipe 32, and the water delivery pipe 33 are respectively installed inside the water-blocking panel 4, so that the water distribution pipe 32 is inserted into the water-blocking trough plate 1. Then, the protrusion 5 on the surface of the water-blocking panel 4 and the groove 6 on the inner side of the water-blocking trough plate 1 are engaged with each other. The dust inlet 8 on the front of the water-blocking trough plate 1 absorbs the dust inside the air. The water enters the water delivery pipe 33 through the water injection pipe 31 and is then injected into the water-blocking trough plate 1 by the water distribution pipe 32. At this time, the water wets the cotton layer block 7 on the inner side of the built-in frame plate 2. After being wetted, the cotton layer block 7 has an improved ability and effect to absorb dust. This is the working principle of the dust particle treatment device for green building construction.
[0036] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.
Claims
1. A dust particle processing device for green building construction, comprising: Water baffle groove plate (1) and water baffle panel (4), characterized in that the two sides of the rear end of the water baffle groove plate (1) are provided with grooves (6), the front of the water baffle panel (4) is provided with convex parts (5), the front of the water baffle groove plate (1) is provided with dust inlet (8), the inside of the water baffle groove plate (1) and the water baffle panel (4) are provided with cavities, the inside of the cavity of the water baffle groove plate (1) is vertically provided with built-in frame plate (2), the inside of the built-in frame plate (2) is grid type structure, the inside of the grid of the built-in frame plate (2) is provided with cotton layer block (7). The inside of the water baffle panel (4) is vertically provided with auxiliary structure (3).
2. The dust particle treatment device for green building construction according to claim 1, characterized in that, The area of the built-in frame plate (2) is slightly smaller than the area of the cavity inside the water baffle groove plate (1).
3. The dust particle treatment device for green building construction according to claim 1, characterized in that, The lower end of the outside of the cotton layer block (7) is inclined structure.
4. The dust particle treatment device for green building construction according to claim 1, characterized in that, The surface of the groove (6) and the convex part (5) is provided with a plurality of insertion holes.
5. The dust particle treatment device for green building construction according to claim 1, characterized in that, The auxiliary structure (3) includes water injection pipe (31), water distribution pipe (32) and water delivery pipe (33), the inside of the cavity of the water baffle panel (4) is vertically provided with water delivery pipe (33), the top end of the water delivery pipe (33) is provided with water injection pipe (31), the outside of the water delivery pipe (33) is provided with water distribution pipe (32), the diameter of the outside of the water distribution pipe (32) is equal to the inside diameter of the insertion hole of the convex part (5) and the groove (6).
6. The dust particle treatment device for green building construction according to claim 5, characterized in that, The water injection pipe (31) and the water delivery pipe (33) are fixedly connected.
7. The dust particle treatment device for green building construction according to claim 5, characterized in that, The front part of the water distribution pipe (32) does not contact the rear end surface of the cotton layer block (7).
Citation Information
Patent Citations
A dust particle treatment device for green building construction
CN115475467B