Noise reduction type spore machine distribution structure
By introducing anti-siphon valves, capillary tubes, and damping plates into the spore generator's distribution structure, the problem of high noise in the water-air distribution structure was solved, effectively reducing noise and improving the practicality of the distribution pipe.
Patent Information
- Application Number
- CN202520622014.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-03
- Publication Date
- 2026-03-17
- Estimated Expiration
- 2035-04-03
AI Technical Summary
The existing water and gas distribution structure generates a great deal of noise during operation, affecting residents' sleep and workers' health.
The noise-reducing spore dispenser adopts a combination design of anti-siphon valve, capillary tube, friction plate and damping plate to reduce noise by using fluid counterflow and flow rectification. Combined with the fixed connection of the installation components, the flow path of the water-air mixture is optimized.
It effectively reduced noise levels, protected residents' sleep and workers' health, and improved the practicality and distribution efficiency of the distribution pipes.
Smart Images

Figure CN224001112U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of distribution structure technology, and in particular to a noise-reducing spore dispenser distribution structure. Background Technology
[0002] In wastewater treatment plants, spore generators are commonly used for wastewater treatment. The water-air distribution pipe of the spore generator introduces pressurized water-air mixture into the distribution pipe through one inlet and then discharges it through multiple outlets. The water-air distribution structure of the spore generator plays an important role in wastewater treatment plants. Its structural features, working process, technical parameters and application scenarios have been carefully designed to meet the needs of wastewater treatment processes.
[0003] In the existing technology, the noise generated by the existing water and air distribution structure during operation is extremely high, reaching 100 decibels according to measurements. This is close to or even exceeds the noise level of some industrial equipment. This not only affects residents' sleep and rest, seriously impacting their quality of life and interfering with their normal lives, but also has a significant impact on the health of water plant workers. Therefore, it is necessary to improve the noise reduction spore machine distribution structure to solve the above problems. Utility Model Content
[0004] In order to overcome the problem that the existing water and gas distribution structure generates extremely high noise during operation, which, according to measurements, reaches 100 decibels, not only affects residents' sleep and rest, but also has a significant impact on the health of water plant workers.
[0005] The technical solution of this utility model is as follows: a noise-reducing spore generator distribution structure, including a water inlet pipe, a sleeve, and an installation assembly. An anti-siphon valve for controlling the flow of water vapor inside the water inlet pipe is provided on the outside of the water inlet pipe. A connecting pipe is fixedly connected to the outside of the water inlet pipe. A distribution main pipe is fixedly connected between the connecting pipes. A distribution pipe is fixedly connected inside the distribution main pipe. An installation assembly for installation at the outer right end of the distribution pipe is provided. A sleeve is fixedly connected inside the connecting pipe. A capillary tube is fixedly connected inside the sleeve. A mortise plate is fixedly connected inside the distribution main pipe. A through hole is opened inside the mortise plate. A damping plate is adhered to the outside of the distribution main pipe. A cable tie is provided on the outside of the damping plate.
[0006] Preferably, the connecting pipe has a U-shaped structure, with one end connected to the water inlet pipe and the other end, away from the water inlet pipe, connected to the main distribution pipe.
[0007] Preferably, two sets of sleeves are provided, and the two sets of sleeves are symmetrically distributed inside the connecting pipe.
[0008] Preferably, several capillaries are provided, and these capillaries are evenly distributed inside the sleeve.
[0009] Preferably, there are two sets of mortar plates, each set having five mortar plates, and the two sets of mortar plates are symmetrically distributed inside the distribution manifold.
[0010] Preferably, nineteen through holes are provided, and the nineteen through holes are distributed sequentially inside the mortise.
[0011] Preferably, the mounting assembly includes an external thread, which is located outside the distribution pipe. An mounting sleeve is located outside the distribution pipe, and an internal thread is located inside the mounting sleeve. The internal thread is threaded to the outside of the external thread, and a mounting plate is fixedly connected to the right end of the mounting sleeve.
[0012] The beneficial effects of this invention are as follows: Compared to existing water-air distribution structures that generate significant noise during operation, this invention allows a portion of the water-air mixture to continue flowing in the inlet pipe, while the remaining portion enters the connecting pipes. Through the cooperation of capillary tubes, friction plates, and damping plates, the water-air mixture entering from the inlet pipe collides with the water-air mixture in the connecting pipes, creating fluid counter-current. This reduces the noise generated by the impact of the water-air mixture on the inner wall of the main distribution pipe, thus reducing the noise impact on the surrounding environment. This ensures the health of workers and avoids the problem of not only affecting residents' sleep and rest but also significantly impacting the health of water plant workers. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0014] Figure 2 This is a cross-sectional structural diagram of the water inlet pipe, connecting pipe, and distribution main pipe of this utility model;
[0015] Figure 3 This is a schematic diagram of the capillary structure of this utility model;
[0016] Figure 4 This is a schematic diagram of the through-hole structure of this utility model;
[0017] Figure 5 This is a schematic diagram of the installation component structure of this utility model.
[0018] Explanation of reference numerals in the attached drawings: 1. Inlet pipe; 21. Pipe sleeve; 22. Capillary tube; 23. Friction pad; 24. Through hole; 25. Damping plate; 26. Cable tie; 31. External thread; 32. Mounting sleeve; 33. Internal thread; 34. Mounting plate; 4. Anti-siphon valve; 5. Connecting pipe; 6. Main distribution pipe; 7. Distribution pipe. Detailed Implementation
[0019] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0020] Please see Figure 1 - Figure 5 This utility model provides an embodiment of a noise-reducing spore generator distribution structure, including a water inlet pipe 1, a sleeve 21, and an installation assembly. An anti-siphon valve 4 is installed outside the water inlet pipe 1 to control the flow of water vapor inside. A connecting pipe 5 is fixedly connected to the outside of the water inlet pipe 1. A distribution main pipe 6 is fixedly connected between the connecting pipes 5. A distribution pipe 7 is fixedly connected inside the distribution main pipe 6. An installation assembly for installation at the outer right end of the distribution pipe 7 is provided. A sleeve 21 is fixedly connected inside the connecting pipe 5. A capillary tube 22 is fixedly connected inside the sleeve 21. A mortise plate 23 is fixedly connected inside the distribution main pipe 6. A through hole 24 is opened inside the mortise plate 23. A damping plate 25 is adhered to the outside of the distribution main pipe 6. The unit is equipped with cable ties 26. A portion of the water-air mixture continues to flow within the inlet pipe 1, while the remaining portion enters the connecting pipes 5. Through the cooperation of capillary tubes 22, friction plates 23, and damping plates 25, the water-air mixture entering from the inlet pipe 1 collides with the water-air mixture in the connecting pipes 5, creating fluid counter-current and reducing the noise generated by the impact of the water-air mixture on the inner wall of the distribution main pipe 6. The installation assembly secures the installation sleeve 32 with internal threads 33 to the distribution pipe 7 by screwing it into the outside of external threads 31. This facilitates the fixing of the distribution pipe 7 to external pipes using the mounting plate 34, allowing it to be discharged to various parts of the wastewater treatment system. This also facilitates the use of mounting plates 34 with corresponding hole numbers for external pipes. The corresponding mounting plate 34 is installed on the right end of the distribution pipe 7 to improve its distribution effect and practicality. The connecting pipe 5 has a U-shaped structure, with one end connected to the inlet pipe 1 and the other end connected to the main distribution pipe 6. This allows a portion of the water-air mixture after passing through the anti-siphon valve 4 to continue flowing in the inlet pipe 1, while the other portion enters the connecting pipe 5, increasing its fluidity. Two sets of pipe sleeves 21 are symmetrically distributed inside the connecting pipe 5, which helps to stabilize the flow of the water-air mixture on both sides of the connecting pipe 5, thus aiding in noise reduction. Several capillary tubes 22 are provided. Several capillaries 22 are evenly distributed inside the sleeve 21, which changes the flow direction of the water-air mixture from a turbulent flow direction to a stable flow direction, reducing the impact of the water-air mixture on the inner wall of the distribution main pipe 6 and thus reducing noise. Two sets of mortars 23 are provided, each set with five mortars 23, and the two sets of mortars 23 are symmetrically distributed inside the distribution main pipe 6. Through the two sets of mortars 23, the flow rate of the water-air mixture is reduced to the position of the water inlet pipe 1, thus reducing noise. Nineteen through holes 24 are provided, which are sequentially distributed inside the mortars 23. Through the nineteen through holes 24, the water-air mixture is easily guided and its flow rate is reduced, thus effectively reducing noise.
[0021] Please see Figure 1 , Figure 5 In this embodiment, the mounting assembly includes an external thread 31, which is disposed on the outside of the distribution pipe 7. An mounting sleeve 32 is disposed on the outside of the distribution pipe 7, and an internal thread 33 is disposed inside the mounting sleeve 32. The internal thread 33 is threadedly connected to the outside of the external thread 31. A mounting plate 34 is fixedly connected to the right end of the mounting sleeve 32. The mounting assembly fixes the mounting sleeve 32 with the internal thread 33 to the outside of the external thread 31 by screwing it into the mounting sleeve 32, which in turn fixes the distribution pipe 7 to the distribution pipe 7. This facilitates the fixing of the distribution pipe 7 to the external pipeline according to the mounting plate 34, allowing it to be discharged to various parts of the sewage treatment system. It also facilitates the installation of the corresponding mounting plate 34 on the right end of the distribution pipe 7 according to the number of holes of the external pipeline, thereby improving the distribution effect of the distribution pipe 7 and enhancing its practicality.
[0022] During operation, after opening the anti-siphon valve 4, the high-pressure water-air mixture enters the rear of the inlet pipe 1. A portion of the water-air mixture continues to flow within the inlet pipe 1 after passing through the anti-siphon valve 4, while the other portion enters the connecting pipes 5. After passing through the sleeve 21, the flow of the water-air mixture is rectified by the capillary tube 22 inside the sleeve 21, changing the turbulent flow direction to a stable one. After reaching the distribution manifold 6 from the sleeve 21, the flow velocity is reduced by the friction plate 23 before reaching the inlet pipe 1, where it counteracts the water-air mixture entering from the inlet pipe 1. This reduces the impact of the water-air mixture on the inner wall of the distribution manifold 6, thereby reducing noise levels. Furthermore, it also... The damping plate 25 absorbs some noise, and the two ends of the damping plate 25 are reinforced by the cable tie 26, which reduces the overall noise and reduces the impact of noise on the surrounding environment, ensuring the health of workers. By screwing the mounting sleeve 32 with internal thread 33 into the outside of external thread 31, the mounting sleeve 32 is fixed to the distribution pipe 7, making it easy to fix the distribution pipe 7 to the external pipeline according to the mounting plate 34, so that it can be discharged to various parts of the sewage treatment system. It is also easy to install the corresponding mounting plate 34 on the right end of the distribution pipe 7 according to the corresponding number of holes of the external pipeline, thereby improving the distribution effect of the distribution pipe 7 and improving its practicality.
[0023] Through the above steps, a portion of the water-air mixture continues to flow in the inlet pipe 1, while the other portion enters the connecting pipe 5. Then, through the cooperation of the capillary tube 22, the friction plate 23, and the damping plate 25, the water-air mixture entering from the inlet pipe 1 collides with the water-air mixture in the connecting pipe 5 to form fluid counterflow, reducing the noise generated by the impact of the water-air mixture on the inner wall of the distribution main pipe 6. This solves the problem that not only affects the sleep and rest of residents but also has a significant impact on the health of the water plant workers.
Claims
1. A spore dispenser structure with noise reduction, comprising a water inlet pipe (1), characterized in that: The utility model also includes a sleeve (21) and a mounting assembly, the outside of the water inlet pipe (1) is provided with an anti-siphon valve (4) for controlling the water vapor flow in the water inlet pipe (1), the outside of the water inlet pipe (1) is fixedly connected with connecting pipes (5), the connecting pipes (5) are fixedly connected with distribution main pipes (6), the inside of the distribution main pipes (6) is fixedly connected with distribution pipes (7), the outside right end of the distribution pipes (7) is provided with a mounting assembly mounted with the outer end, the inside of the connecting pipes (5) is fixedly connected with sleeves (21), the inside of the sleeves (21) is fixedly connected with capillary tubes (22), the inside of the distribution main pipes (6) is fixedly connected with friction pieces (23), the inside of the friction pieces (23) is provided with through holes (24), the outside of the distribution main pipes (6) is attached with damping pieces (25), the outside of the damping pieces (25) is provided with a cable tie (26).
2. The noise reducing spore machine dispensing structure of claim 1, wherein: The connecting pipe (5) is in U-shaped structure, one end of the connecting pipe (5) is communicated with the water inlet pipe (1), and the end away from the water inlet pipe (1) is communicated with the distribution main pipe (6).
3. The noise reducing spore machine dispensing structure of claim 1, wherein: The sleeve (21) is provided with two groups, and the two groups of sleeves (21) are symmetrically distributed in the inside of the connecting pipe (5).
4. The noise reducing spore machine dispensing structure of claim 1, wherein: The capillary tube (22) is provided with a plurality of capillary tubes (22), and the plurality of capillary tubes (22) are uniformly distributed in the inside of the sleeve (21).
5. The noise reducing spore machine dispensing structure of claim 1, wherein: The friction piece (23) is provided with two groups, each group of friction pieces (23) is provided with five friction pieces (23), and the two groups of friction pieces (23) are symmetrically distributed in the inside of the distribution main pipe (6).
6. The noise reducing spore machine dispensing structure of claim 1, wherein: The through hole (24) is provided with nineteen through holes (24), and the nineteen through holes (24) are sequentially distributed in the inside of the friction piece (23).
7. The noise reducing spore machine dispensing structure of claim 1, wherein: The mounting assembly includes an external thread (31), the external thread (31) is arranged on the outside of the distribution pipe (7), the outside of the distribution pipe (7) is provided with a mounting sleeve (32), the inside of the mounting sleeve (32) is provided with an internal thread (33), the internal thread (33) is threadedly connected on the outside of the external thread (31), and the right end of the mounting sleeve (32) is fixedly connected with a mounting plate (34).