Water supply and drainage integrated module for sewage after building treatment
By adopting a combined structure of bearing plates and springs in the sewage supply and drainage integration module after building treatment, it automatically separates debris such as construction waste powder and fragments, solving the problem of debris blockage in traditional sewage treatment systems, improving treatment efficiency and equipment life, and protecting the environment.
Patent Information
- Application Number
- CN202421339691.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-13
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2034-06-13
AI Technical Summary
In traditional sewage treatment systems, debris such as construction waste powder and debris can easily block the filter net, causing sewage flow to be blocked, increasing maintenance costs, shortening the service life of the equipment, and may cause sewage to overflow and pollute the environment.
A sewage supply and drainage integrated module after building treatment is designed, using a combined structure of bearing plate and spring. When sewage flows into the temporary sink and flows along the U-shaped channel, debris is deposited on the bearing plate. When the spring threshold exceeds, the bearing plate rotates, and the debris is washed and falls off, realizing automatic separation.
It effectively avoids debris blockage problems, improves the working efficiency of the sewage treatment system, reduces maintenance costs, extends the service life of the equipment, prevents sewage from overflowing, and protects the environment.
Smart Images

Figure CN222835041U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water supply and drainage, in particular to an integrated module for water supply and drainage of treated sewage from a building. Background Art
[0002] The integrated module for building treated sewage water supply and drainage is an integrated device technology designed for urban water conservation needs. With the development of society, water conservation and rational use of water resources have become the focus of attention, especially in areas with scarce water resources. It is particularly important to explore and implement effective water resource management and water-saving technologies. The integrated module for building treated sewage water supply and drainage came into being under such a background. It aims to optimize the utilization of water resources, reduce water waste, and improve the utilization rate of water resources through technical means. It has a wide range of applications.
[0003] In the prior art, a large amount of sewage is generated during construction and daily operations. The sewage contains not only common mud and other fine particles, but also a large amount of debris such as construction waste powder and fragments. In the traditional sewage treatment process, the filter is a commonly used primary treatment method for intercepting and separating solid impurities in sewage. Since the particle size of construction waste powder and fragments is usually large and easy to deposit, it is very easy to clog the filter during the filtration process, resulting in obstruction of sewage flow, thereby reducing the working efficiency of the entire water supply and drainage system. Manual cleaning is required, which not only increases maintenance costs, but also affects the overall workflow and reduces operating efficiency. Frequent clogging of the filter will shorten its service life and increase the frequency of equipment replacement. At the same time, if the clogging problem cannot be discovered and solved in time, it will also cause sewage overflow, thereby polluting the surrounding environment and posing a potential threat to the ecology and residents' health. Utility Model Content
[0004] The utility model aims to solve the shortcomings in the prior art and proposes an integrated module for supplying and draining sewage after building treatment.
[0005] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme: an integrated module for sewage water supply and drainage after building treatment, comprising an integrated module body, a plurality of water supply ports are provided on the top of the integrated module body, a temporary water tank is provided at the bottom of the water supply port, an impurity bin is provided at the bottom of the temporary water tank, a flat inlet is provided on one side of the temporary water tank, a U-shaped channel is provided at one end of the flat inlet, a flat outlet is provided at one end of the U-shaped channel, a sewer is provided at one end of the sewer, a wastewater drainage bin is fixed at one end of the sewer, a rotating shaft is fixed on the top of the impurity bin, and the rotating shaft is rotatably connected to the circumference of the rotating shaft There is a fixed shaft plate, a retaining spring is fixed on one side of the fixed shaft plate, one end of the retaining spring is fixed to the circumferential surface of the rotating shaft, and a support plate is fixed on the bottom of the fixed shaft plate. In the prior art, a large amount of sewage is generated during construction and daily operation. The sewage not only contains common mud and other fine particles, but also contains a large amount of debris such as building waste powder and fragments. In the traditional sewage treatment process, the filter is a commonly used primary treatment method for intercepting and separating solid impurities in sewage. Since the particle size of building waste powder and fragments is usually large and easy to deposit, it is very easy to clog the filter during the filtration process, resulting in obstruction of sewage flow, thereby reducing the working efficiency of the entire water supply and drainage system, and manual cleaning is required, which not only increases the maintenance cost, but also affects the overall workflow and reduces the operating efficiency. Frequent clogging of the filter will shorten its service life and increase the frequency of equipment replacement. At the same time, if the clogging problem cannot be discovered and solved in time, it will also cause sewage overflow, thereby polluting the surrounding environment and posing a potential threat to the ecology and residents' health. In response to such problems, the utility model solves the problem by installing a support plate, which realizes that when the sewage flows into the water supply after the building treatment When the sewage is discharged, it is first retained in the temporary water trough. When the sewage is large and reaches the height of the flat inlet, the sewage flows into the flat inlet and along the U-shaped channel, flat outlet and sewer until it flows into the wastewater drainage tank. When the debris in the sewage is deposited on the support plate, due to the large density of the debris, when it exceeds the threshold of the retaining spring, the support plate rotates clockwise, the retaining spring is squeezed and accumulates elastic potential energy, the debris is washed away by the sewage, and the weight is reduced. The retaining spring releases the elastic potential energy to make the support plate rotate counterclockwise quickly and close again, so that the debris is separated. At the same time, the outflowing sewage is also within an acceptable range, thereby achieving the effect of improving work efficiency.
[0006] Preferably, an auxiliary frame is fixed to the side of the integrated module body, and an installation through-hole is opened on the surface of the auxiliary frame. The inner wall of the installation through-hole is slidably connected with a mounting column, and a ladder is fixed to one side of the mounting column. In the prior art, workers often need to climb to the top of the integrated module body to work, so that some equipment placed on the ground for use is installed with a fixed ladder on one side, and the main body of the equipment in some application scenarios is buried in the soil, and the ladder is difficult to remove, resulting in a reduction in its scope of application. To solve this problem, the utility model adopts a method of installing an auxiliary frame, which realizes that when the staff places the equipment on the ground for use, the mounting column can be slid into the mounting through-hole of the auxiliary frame, and then the ladder can be used to climb to the top of the equipment without the help of others. When the equipment body is buried in the ground, the staff can select a ladder of appropriate height according to the exposed depth of the equipment and then install it, thereby improving the user experience.
[0007] Preferably, a slide groove is provided on the inner wall of the flat inlet channel, and a limiting plate is slidably connected to the inner wall of the slide groove, and a filter plate is fixed to the bottom of the limiting plate. In the prior art, some debris with lower density tends to float on the water surface, causing it to flow into the flat inlet channel with sewage, making subsequent processing more troublesome. To solve such problems, the utility model adopts a method of installing a filter plate, which enables the filter plate to filter fine, floating debris and improve the separation effect. At the same time, the staff can easily slide out and replace it, thereby improving the user experience and reducing the subsequent processing costs.
[0008] Preferably, a plate magnet is fixed to the inner wall of one end of the support plate, a waterproof shell is fixed to one end of the top of the impurity bin, and a fixed magnetic part is fixed to the inner wall of the waterproof shell. The gravitational force between the magnetic parts can increase the rotation threshold of the support plate to prevent misjudgment of rotation, and at the same time increase the rebound speed to prevent excessive sewage outflow.
[0009] Preferably, a pad is fixed to the bottom end of the mounting column to prevent the mounting column from tilting and causing the auxiliary frame to deform due to pulling by staff during use, thereby increasing the service life of the equipment.
[0010] Preferably, a counterweight is fixed to the top of the other end of the support plate to increase the rebound speed.
[0011] Preferably, a bottom limit bar is fixed at the bottom of the integrated module body to facilitate forklifts and other sports equipment and improve user experience.
[0012] Beneficial effects:
[0013] 1. In the prior art, a large amount of sewage is generated during construction and daily operations. The sewage contains not only common mud and other fine particles, but also a large amount of debris such as construction waste powder and fragments. In the traditional sewage treatment process, the filter is a commonly used primary treatment method to intercept and separate solid impurities in sewage. Since the particle size of construction waste powder and fragments is usually large and easy to deposit, it is very easy to clog the filter during the filtration process, resulting in obstruction of sewage flow, thereby reducing the working efficiency of the entire water supply and drainage system. Manual cleaning is required, which not only increases maintenance costs, but also affects the overall workflow and reduces operating efficiency. Frequent clogging of the filter will shorten its service life and increase the frequency of equipment replacement. At the same time, if the clogging problem cannot be discovered and resolved in time The utility model solves this problem by installing a support plate, so that when the sewage flows into the water inlet after building treatment, the sewage is first retained in the temporary water tank. When the sewage is large and reaches the height of the flat inlet, the sewage flows into the flat inlet and along the U-shaped channel, the flat outlet and the sewer until it flows into the wastewater drainage bin. When the debris in the sewage is deposited on the support plate, due to the large density of the debris, when it exceeds the threshold of the retaining spring, the support plate rotates clockwise, the retaining spring is squeezed to accumulate elastic potential energy, the debris is washed away by the sewage, and the weight is reduced. The retaining spring releases the elastic potential energy to make the support plate rotate counterclockwise quickly and close again, so that the debris is separated and the sewage flowing out is also within an acceptable range, thereby achieving the effect of improving work efficiency.
[0014] 2. In the prior art, workers often need to climb to the top of the integrated module body to work, so that some equipment placed on the ground for use is installed with a fixed ladder on one side. In some application scenarios, the main body of the equipment is buried in the soil, and the ladder is difficult to remove, resulting in a reduction in its scope of application. To address this problem, the utility model solves it by installing an auxiliary frame, so that when the worker places the equipment on the ground for use, the mounting column can be slid into the mounting through-hole of the auxiliary frame, and then the ladder can be used to climb to the top of the equipment without the help of others. When the main body of the equipment is buried in the ground, the worker can select a ladder of appropriate height according to the exposed depth of the equipment for installation, thereby improving the user experience.
[0015] 3. In the prior art, some debris with lower density tends to float on the water surface, causing it to flow into the horizontal inlet with sewage, making subsequent treatment more troublesome. To address this problem, the utility model solves it by installing a filter plate, which enables the filter plate to filter out small, floating debris and improve the separation effect. At the same time, the staff can easily slide it out and replace it, thereby improving the user experience and reducing the subsequent treatment costs. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1It is a three-dimensional structural schematic diagram of the utility model;
[0017] Figure 2 It is an exploded view of the installation column of the utility model;
[0018] Figure 3 It is a cross-sectional view of the water supply port of the utility model;
[0019] Figure 4 It is a cross-sectional view of the support plate of the utility model;
[0020] Figure 5 It is a cross-sectional view of the counterweight of the utility model;
[0021] Figure 6 It is a cross-sectional view of the rotating shaft of the utility model.
[0022] Legend:
[0023] 1. Integrated module body; 101. Bottom limit strip; 2. Water inlet; 201. Temporary water trough; 202. Flat inlet; 203. U-shaped channel; 204. Flat outlet; 205. Sewer; 206. Wastewater drainage bin; 207. Impurity bin; 208. Rotating shaft; 209. Retaining spring; 2010. Fixed shaft plate; 2011. Supporting plate; 3. Limiting plate; 301. Filter plate; 4. Auxiliary frame; 401. Installation perforation; 402. Installation column; 403. Ladder; 404. Pad; 5. Fixed magnetic part; 501. Plate magnetic part; 502. Waterproof shell; 503. Counterweight. DETAILED DESCRIPTION
[0024] In order to make the technical means, creative features, objectives and effects of the present invention easy to understand, the present invention is further described below in conjunction with specific embodiments and drawings, but the following embodiments are only preferred embodiments of the present invention, not all. Based on the embodiments in the implementation mode, other embodiments obtained by those skilled in the art without creative work are all within the protection scope of the present invention.
[0025] The specific embodiments of the present utility model are described below in conjunction with the accompanying drawings. Specific embodiment:
[0027] Reference Figure 1-6A sewage treatment integrated module for building, comprising an integrated module body 1, a plurality of water supply ports 2 are provided on the top of the integrated module body 1, a temporary water tank 201 is provided at the bottom of the water supply port 2, an impurity bin 207 is provided at the bottom of the temporary water tank 201, a flat inlet 202 is provided on one side of the temporary water tank 201, a U-shaped channel 203 is provided at one end of the flat inlet 202, a flat outlet 204 is provided at one end of the U-shaped channel 203, a sewer 205 is provided at one end of the flat outlet 204, a wastewater drainage bin 206 is fixed at one end of the sewer 205, a rotating shaft 208 is fixed on the top of the impurity bin 207, and a fixed shaft plate is connected to the rotating shaft 208 for rotation 2010, a retaining spring 209 is fixed on one side of the fixed shaft plate 2010, one end of the retaining spring 209 is fixed to the circumference of the rotating shaft 208, and a support plate 2011 is fixed on the bottom of the fixed shaft plate 2010. During construction and daily operation, a large amount of sewage will be generated. The sewage contains not only common mud and other fine particles, but also a large amount of debris such as powder and fragments of construction waste. In the traditional sewage treatment process, the filter is a common primary treatment method for intercepting and separating solid impurities in sewage. Since the particle size of powder and fragments of construction waste is usually large and easy to settle, it is very easy to clog the filter during the filtration process. The filter screen blocks the flow of sewage, thereby reducing the working efficiency of the entire water supply and drainage system, and requires manual cleaning, which not only increases the maintenance cost, but also affects the overall workflow and reduces the operating efficiency. Frequent blockage of the filter screen will shorten its service life and increase the frequency of equipment replacement. At the same time, if the blockage problem is not discovered and solved in time, it will also cause sewage overflow, thereby polluting the surrounding environment and posing a potential threat to the ecology and residents' health. The solution is to install a carrier plate 2011, which realizes that when the treated sewage from the building flows into the water supply port 2, the sewage is first retained in the temporary water tank 201, and when the sewage is large, it reaches When the height of the flat inlet 202 is reached, the sewage flows into the flat inlet 202 and flows along the U-shaped channel 203, the flat outlet 204 and the sewer 205 until it flows into the wastewater drainage bin 206. When the debris in the sewage is deposited on the carrier plate 2011, due to the large density of the debris, when it exceeds the threshold of the retaining spring 209, the carrier plate 2011 rotates clockwise, and the retaining spring 209 accumulates elastic potential energy under compression. The debris is washed away by the sewage and the weight is reduced. The retaining spring 209 releases the elastic potential energy to make the carrier plate 2011 rotate counterclockwise quickly and close again, so that the debris is separated and the sewage flowing out is also within an acceptable range, thereby achieving the effect of improving work efficiency. A plate magnet 501 is fixed to the inner wall of one end of the carrier plate 2011, a waterproof shell 502 is fixed to one end of the top of the impurity bin 207, and a fixed magnetic piece 5 is fixed to the inner wall of the waterproof shell 502. The attraction between the magnetic pieces increases the rotation threshold of the carrier plate 2011 to prevent misjudgment of rotation, and increases the rebound speed to prevent excessive sewage outflow. A counterweight 503 is fixed to the top of the other end of the carrier plate 2011 to increase the rebound speed.A slide groove is provided on the inner wall of the flat inlet 202, and a limiting plate 3 is slidably connected to the inner wall of the slide groove. A filter plate 301 is fixed to the bottom of the limiting plate 3. Some debris with lower density tends to float on the water surface, causing it to flow into the flat inlet 202 along with the sewage, making subsequent treatment more troublesome. This problem is solved by installing the filter plate 301, so that the filter plate 301 can filter small, floating debris and improve the separation effect. At the same time, the staff can slide it out and replace it conveniently, thereby improving the user experience and reducing the subsequent treatment costs.
[0028] An auxiliary frame 4 is fixed on the side of the integrated module body 1, and an installation through hole 401 is provided on the surface of the auxiliary frame 4. The inner wall of the installation through hole 401 is slidably connected with an installation column 402. A ladder 403 is fixed on one side of the installation column 402. The staff often needs to climb to the top of the integrated module body 1 to work, so that some equipment placed on the ground for use has a fixed ladder installed on one side. However, the main body of some application scenarios is buried in the soil, and the ladder is difficult to remove, resulting in a reduction in its scope of application. The installation of the auxiliary frame 4 is used to solve the problem. When the staff puts the equipment on the ground for use, the installation column 402 can be slid into the installation through hole 401 of the auxiliary frame 4, and then climb to the top of the equipment through the ladder 403 without the help of others. When the main body of the equipment is buried in the ground, the staff can select a ladder 403 of a suitable height according to the depth of the equipment exposure and then install it, so as to improve the user experience. A pad 404 is fixed at the bottom of the installation column 402 to prevent the installation column 402 from tilting and causing the auxiliary frame 4 to deform due to the pulling of the staff during use, thereby improving the service life of the equipment. A bottom limit bar 101 is fixed at the bottom of the integrated module body 1, which is convenient for forklifts and other sports equipment and improves user experience.
[0029] The working principle of the utility model is as follows: when the sewage after building treatment flows into the water supply port 2, the sewage is firstly retained in the temporary water tank 201. When the sewage is large and reaches the height of the flat inlet 202, the sewage flows into the flat inlet 202, and the filter plate 301 filters the fine and floating debris, and flows along the U-shaped channel 203, the flat outlet 204 and the sewer 205 until it flows into the wastewater drainage bin 206. When the debris in the sewage is deposited on the carrier plate 2011, due to the large density of the debris, when it exceeds the threshold of the retaining spring 209, the carrier plate 2011 rotates clockwise, and the retaining spring 209 is squeezed to accumulate elastic potential energy, and the debris is washed off by the sewage, and the weight is reduced. The retaining spring 209 releases the elastic potential energy to make the carrier plate 2011 rotate counterclockwise quickly and close again, so that the debris is separated and the sewage flowing out is also within an acceptable range.
[0030] In the present utility model, unless otherwise clearly specified and limited, a first feature being "above" or "below" a second feature may include that the first and second features are in direct contact, or may include that the first and second features are not in direct contact but are in contact through another feature between them. Moreover, a first feature being "above", "above" and "above" a second feature includes that the first feature is directly above and obliquely above the second feature, or simply indicates that the first feature is higher in level than the second feature. A first feature being "below", "below" and "below" a second feature includes that the first feature is directly below and obliquely below the second feature, or simply indicates that the first feature is lower in level than the second feature.
[0031] The above shows and describes the basic principle, main features and advantages of the utility model. Those skilled in the art should understand that the utility model is not limited by the above embodiments. The above embodiments and descriptions are only preferred examples of the utility model and are not used to limit the utility model. Without departing from the spirit and scope of the utility model, the utility model may have various changes and improvements, which fall within the scope of the utility model to be protected. The scope of protection of the utility model is defined by the attached claims and their equivalents.
Claims
1. An integrated module for building treated sewage water supply and drainage, comprising an integrated module body (1), wherein a plurality of water supply ports (2) are provided on the top of the integrated module body (1), and characterized in that: A temporary water trough (201) is provided at the bottom of the water inlet (2), an impurity bin (207) is provided at the bottom of the temporary water trough (201), a flat inlet channel (202) is provided on one side of the temporary water trough (201), a U-shaped channel (203) is provided at one end of the flat inlet channel (202), a flat outlet channel (204) is provided at one end of the U-shaped channel (203), a sewer channel (205) is provided at one end of the sewer channel (204), and the sewer channel (205) is provided at one end of the sewer channel (205). A wastewater drainage bin (206) is fixed at one end of the channel (205), a rotating shaft (208) is fixed at the top of the impurity bin (207), a fixed shaft plate (2010) is rotatably connected to the circumference of the rotating shaft (208), a retaining spring (209) is fixed to one side of the fixed shaft plate (2010), one end of the retaining spring (209) is fixed to the circumference of the rotating shaft (208), and a support plate (2011) is fixed to the bottom of the fixed shaft plate (2010).
2. The integrated module for building treated sewage water supply and drainage according to claim 1, characterized in that: An auxiliary frame (4) is fixed on the side of the integrated module body (1); a mounting through hole (401) is provided on the surface of the auxiliary frame (4); a mounting column (402) is slidably connected to the inner wall of the mounting through hole (401); and a ladder (403) is fixed on one side of the mounting column (402).
3. The integrated module for building treated sewage water supply and drainage according to claim 1, characterized in that: The inner wall of the flat inlet channel (202) is provided with a slide groove, the inner wall of the slide groove is slidably connected to a limiting plate (3), and a filter plate (301) is fixed to the bottom of the limiting plate (3).
4. The integrated module for building treated sewage water supply and drainage according to claim 1, characterized in that: A plate magnet (501) is fixed to the inner wall of one end of the support plate (2011), a waterproof shell (502) is fixed to one end of the top of the impurity bin (207), and a fixed magnet (5) is fixed to the inner wall of the waterproof shell (502).
5. The integrated module for building treated sewage water supply and drainage according to claim 2, characterized in that: A backing plate (404) is fixed to the bottom end of the mounting column (402).
6. The integrated module for building treated sewage water supply and drainage according to claim 4, characterized in that: A counterweight (503) is fixed to the top of the other end of the support plate (2011).
7. The integrated module for building treated sewage water supply and drainage according to claim 1, characterized in that: A bottom limit strip (101) is fixed to the bottom of the integrated module body (1).