A sewage purifier with a catalytic device

By setting up a catalytic unit and a uniform distribution unit in the sewage treatment tank, utilizing the contact between bubbles and catalysts, and combining diverter plates and cleaning units, the problem of low efficiency of traditional sewage treatment tanks is solved and efficient sewage purification effects are achieved.

CN119841370BActive Publication Date: 2025-09-12SHAANXI KELI CHUDAO ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510184284.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-19
Publication Date
2025-09-12
Estimated Expiration
2045-02-19

AI Technical Summary

Technical Problem

Traditional sewage treatment pools have suboptimal treatment efficiency and slow decomposition of pollutants, resulting in a lengthy wastewater treatment process and reduced treatment capacity.

Method used

A catalytic unit and a uniform distribution unit are set up in the sewage treatment tank. Dense bubbles are formed by the outside air to contact the catalyst. Combined with the diverter plate and the cleaning unit, the gas distribution is optimized and the small holes in the outer cylinder are cleaned to ensure uniform contact and efficient operation of the catalyst.

Benefits of technology

It significantly improves sewage treatment efficiency, shortens pollutant decomposition time, and increases catalyst service life and treatment effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a sewage purifier with a catalytic device, comprising a sewage treatment tank, a catalytic unit for improving the sewage treatment effect is provided between the two brackets, and a uniform distribution unit for improving the catalytic effect of the catalytic unit is provided at the bottom of the tank body. The present invention relates to the field of sewage purification technology. By adding a catalytic unit in the sewage treatment tank, the present invention effectively improves the sewage treatment efficiency, greatly accelerates the decomposition rate of pollutants, and improves the treatment effect. The special shape of the multiple diverter plates of the uniform distribution unit can effectively guide the incoming gas, ensuring uniform contact between the gas and various parts of the catalyst, which not only avoids the waste of catalyst, but also improves the catalytic efficiency. In addition, the rotation function of the multiple diverter plates can break up the airflow and can further guide and optimize the distribution of the airflow in the inner cylinder.
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Description

Technical Field

[0001] The present invention relates to the technical field of sewage purification, in particular to a sewage purifier with a catalytic device. Background Art

[0002] In existing sewage treatment technologies, sewage purifiers, as key environmental protection equipment, are widely used to treat wastewater from various sources, including industrial production and daily life. Their purpose is to reduce harmful components in wastewater, minimize pollution to natural water bodies, and protect the ecological environment. These purifiers, based on different treatment principles, utilize physical, chemical, or biological treatment methods to degrade and transform pollutants in sewage.

[0003] Despite this, traditional sewage treatment pools generally face the problem of unsatisfactory treatment efficiency in actual applications. This problem directly affects the decomposition rate of pollutants, making the wastewater treatment process time-consuming and reducing treatment capacity. Summary of the Invention

[0004] The purpose of the present invention is to provide a sewage purifier that can solve the problem of unsatisfactory treatment efficiency commonly faced by traditional sewage treatment pools in practical applications. This problem directly affects the speed of pollutant decomposition, making the wastewater treatment process time-consuming and reducing the treatment capacity.

[0005] The present invention provides a sewage purifier with a catalytic device, comprising a sewage treatment tank, the sewage treatment tank comprising a tank body and three guide walls, the three guide walls being fixedly arranged in the tank body, two brackets being fixedly arranged on the left side of the tank body and on the corresponding guide walls, a catalytic unit for improving the sewage treatment effect being arranged between the two brackets, and a uniform distribution unit for improving the catalytic effect of the catalytic unit being arranged at the bottom of the tank body;

[0006] The catalytic unit includes an outer cylinder, an inner cylinder, a bottom plate, a plurality of first connecting seats, a movable cover, a plurality of second connecting seats and an intake pipe, the inner cylinder and the outer cylinder are both open cylinders, and a plurality of small holes are opened on the inner cylinder and the outer cylinder, the inner cylinder is located on the inner side of the outer cylinder, the bottom plate is fixedly arranged at the bottom of the outer cylinder and the inner cylinder, the outer cylinder and the inner cylinder are filled with a catalyst, the outer cylinder is fixedly arranged between the two brackets, a plurality of first connecting seats are fixedly arranged on the outer wall of the outer cylinder, a plurality of second connecting seats are fixedly arranged on the outer edge of the movable cover, the first connecting seat corresponds to the second connecting seat, and they are connected by bolts, one end of the intake pipe is fixedly connected to the movable cover, and the intake pipe is communicated with the inner cylinder;

[0007] The uniform distribution unit includes two sliders, a support shell, a rotating shaft, a first motor, a first gear, a second gear, a driving shaft and a plurality of diverter plates, an annular groove is opened in the bottom of the pool body, and the two sliders are slidably connected to the annular groove, the support shell is fixedly arranged on the top ends of the two sliders, the rotating shaft is connected to the bottom of the pool body through a sealed bearing, and the top end of the rotating shaft is fixedly connected to the bottom outside the support shell, the first motor is fixedly arranged on the bottom outside the pool body, the first gear is fixedly arranged at the driving end of the first motor, the second gear is fixedly arranged at the bottom end of the rotating shaft, and the second gear is meshed with the first gear, the driving shaft is connected to the top and bottom of the support shell, and the driving shaft is connected to the bottom plate through a sealed bearing, and the plurality of diverter plates are fixedly arranged on the driving shaft, the diverter plate is a circular structure, and the surface of the diverter plate is evenly provided with continuously alternating protrusions and recesses with its center as the reference point;

[0008] The supporting shell is provided with a cleaning unit for cleaning the surface of the catalytic unit;

[0009] The cleaning unit includes two cleaning roller brushes, which are connected to the top and bottom of the support shell through sealed bearings, and the two cleaning roller brushes are respectively located on the left and right sides of the drive shaft;

[0010] The cleaning unit also includes a second motor, a first sprocket, two second sprockets and a chain, a receiving groove is opened inside the rotating shaft, the drive shaft is connected to the top and bottom of the support shell through sealed bearings, the driving end of the second motor is fixedly connected to one end of the drive shaft, the second motor is fixedly arranged in the receiving groove of the rotating shaft, the first sprocket is fixedly arranged on the drive shaft, the two second sprockets are respectively fixedly arranged on the two cleaning roller brushes, and the first sprocket and the two second sprockets are connected by a chain;

[0011] The raised portion of the diverter plate is provided with a guide hole;

[0012] The plurality of diverter plates are arranged in a rotationally staggered manner along the rotation axis, wherein each subsequent diverter plate is rotated 20 degrees relative to the previous diverter plate around the rotation axis;

[0013] Preferably, the diameter of the first sprocket is larger than the diameter of the second sprocket.

[0014] Preferably, the sewage treatment tank further comprises an inlet pipe and an outlet pipe, one end of the inlet pipe is fixedly connected to the left side of the tank body, and one end of the outlet pipe is fixedly connected to the right side of the tank body.

[0015] The present invention provides a sewage purifier with a catalytic device, which has the following improvements and advantages over the prior art: the present invention effectively improves sewage treatment efficiency by adding a catalytic unit to the sewage treatment tank. The present invention includes a catalyst unit in the sewage treatment tank, wherein external air enters the inner cylinder through the air inlet pipe and exits through the small holes to form dense bubbles. These bubbles, as they pass through the gaps between the catalysts, come into contact with the sewage and the catalyst surface over a large area, greatly accelerating the decomposition of pollutants and improving the treatment effect. The special shape of the multiple diverter plates in the uniform distribution unit can effectively guide the incoming gas, ensuring uniform contact between the gas and all parts of the catalyst, which not only avoids catalyst waste but also improves catalytic efficiency. In addition, the rotation function of the multiple diverter plates can break up the airflow and further guide and optimize the distribution of the airflow in the inner cylinder, thereby enhancing the uniform contact between the gas and the catalyst and improving the catalytic effect. At the same time, the provision of the cleaning unit enables the small holes of the outer cylinder to be effectively cleaned. The cleaning unit combines the rotation of the two cleaning roller brushes with the rotation around the outer cylinder, significantly improving the cleaning effect, ensuring unobstructed access to the small holes of the outer cylinder, and maintaining the efficient operation of the catalytic unit. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the specific embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0017] Figure 1 This is a schematic diagram of the main structure of a sewage purifier with a catalytic device;

[0018] Figure 2 This is a schematic diagram of the main structure of a uniform distribution unit and a cleaning unit of a sewage purifier with a catalytic device;

[0019] Figure 3 This is an axonometric structural diagram of a catalytic unit, a uniform distribution unit, and a cleaning unit of a sewage purifier with a catalytic device;

[0020] Figure 4 This is an axonometric structural diagram of a uniform distribution unit and a cleaning unit of a sewage purifier with a catalytic device;

[0021] Figure 5 This is a schematic diagram of the axonometric structure of a catalytic unit of a sewage purifier with a catalytic device in a disassembled state;

[0022] Figure 6This is an axonometric structural diagram of a diverter plate of a sewage purifier with a catalytic device;

[0023] Figure 7 This is a schematic diagram of the main structure of a diverter plate of a sewage purifier with a catalytic device;

[0024] Figure 8 The diagram is a top view of the first sprocket, the second sprocket and the chain of a sewage purifier with a catalytic device.

[0025] Description of reference numerals:

[0026] 1. Sewage treatment tank; 11. Tank body; 12. Guide wall; 13. Water inlet pipe; 14. Water outlet pipe; 2. Catalytic unit; 21. Outer cylinder; 22. Inner cylinder; 23. Bottom plate; 24. First connecting seat; 25. Loose cover; 26. Second connecting seat; 27. Inlet pipe; 28. Catalyst; 3. Uniform distribution unit; 31. Slider; 32. Support shell; 33. Rotating shaft; 34. First motor; 35. First gear; 36. Second gear; 37. Drive shaft; 38. Diverter plate; 38-1. Protrusion; 38-2. Recess; 38-3. Guide hole; 4. Cleaning unit; 41. Cleaning roller brush; 42. Second motor; 43. First sprocket; 44. Second sprocket; 45. Chain; 5. Bracket. DETAILED DESCRIPTION

[0027] The following will clearly and completely describe the technical solutions of the present invention in conjunction with the embodiments. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0028] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise" and the like to indicate directions or positional relationships based on the directions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operate in a specific direction, and therefore should not be understood as limiting the present invention.

[0029] In the description of the present invention, it should be understood that the terms "first" and "second" are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" may explicitly or implicitly include one or more of the said features. In the description of the present invention, the meaning of "multiple" is two or more, unless otherwise clearly and specifically defined. In addition, the terms "installed", "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection, or it can be an indirect connection through an intermediate medium, or it can be a communication between the two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to the specific circumstances.

[0030] See also Figure 1-8 , the present invention provides a technical solution: a sewage purifier with a catalytic device, including a sewage treatment tank 1, the sewage treatment tank 1 includes a tank body 11 and three guide walls 12, the three guide walls 12 are fixedly arranged in the tank body 11, the three guide walls 12 and the tank body 11 are existing equipment well known in the art, and their specific working principles and internal structures are not introduced in detail. Two brackets 5 are fixedly arranged on the left side of the tank body 11 and on the corresponding guide walls 12, and a catalytic unit 2 for improving the sewage treatment effect is arranged between the two brackets 5. The two brackets 5 are used to fix the catalytic unit 2 in the tank body 11, so that the catalytic unit 2 is fully in contact with the sewage in the tank body 11, thereby improving the decomposition efficiency of the pollutants. A uniform distribution unit 3 for improving the catalytic effect of the catalytic unit 2 is provided at the bottom of the tank body 11. The uniform distribution unit 3 can ensure that the outside air is evenly distributed before entering the catalytic unit 2, thereby optimizing the efficiency of the catalytic reaction;

[0031] The catalytic unit 2 includes an outer cylinder 21, an inner cylinder 22, a bottom plate 23, a plurality of first connecting seats 24, a movable cover 25, a plurality of second connecting seats 26 and an air inlet pipe 27. The inner cylinder 22 and the outer cylinder 21 are both open cylinders, and a plurality of small holes are opened on the inner cylinder 22 and the outer cylinder 21. These small holes are used to realize the circulation and exchange of gas. The inner cylinder 22 and the outer cylinder 21 are hollow cylindrical structures. The inner cylinder 22 is located on the inner side of the outer cylinder 21. The bottom plate 23 is fixedly arranged at the bottom of the outer cylinder 21 and the inner cylinder 22. The inner cylinder 22 and the outer cylinder 21 are connected to each other. A certain interval is maintained between the cylinders 21 to form an annular cavity. The annular cavity between the outer cylinder 21 and the inner cylinder 22 is filled with a replaceable catalyst 28. This design allows the catalyst 28 to be easily replaced after reaching a certain service life or its efficiency is reduced, thereby maintaining the processing capacity and efficiency of the system. The outer cylinder 21 is fixedly arranged between the two brackets 5 to ensure the stability of the outer cylinder 21 during use. A plurality of first connecting seats 24 are fixedly arranged on the outer wall of the outer cylinder 21, and a plurality of second connecting seats 26 are fixedly arranged on the outer edge of the movable cover 25. The first connecting seats 24 correspond to the second connecting seats 26 and are connected by bolts. Each first connecting seat 24 and its corresponding second connecting seat 26 are precisely aligned in spatial position so that the bolts can pass through the first connecting seat 24 and the second connecting seat 26 and be tightened by threads, thereby firmly connecting the outer cylinder 21 and the movable cover 25 together, ensuring the stability and sealing of the structure. This connection method is convenient for disassembly and assembly, so that the catalyst 28 can be replaced. One end of the intake pipe 27 is connected to The movable cover plate 25 is fixedly connected, and the air inlet pipe 27 is connected to the inner tube 22, forming a gas introduction channel, allowing gas to flow from the air inlet pipe 27 into and through the inner tube 22, ensuring that the gas can flow from the air inlet pipe 27 into and through the inner tube 22 without obstruction. The gas enters the inner tube 22 from the air inlet pipe 27, passes through the small hole, and then passes through the gap of the catalyst 28, forming dense bubbles. The gas passes through the small hole of the outer tube 21. During the gas passage, it contacts the catalyst 28 and sewage over a large area, accelerating the decomposition of pollutants.

[0032] The uniform distribution unit 3 includes two sliders 31, a support shell 32, a rotating shaft 33, a first motor 34, a first gear 35, a second gear 36, a driving shaft 37 and a plurality of diverter plates 38. An annular groove is provided at the bottom of the pool body 11, and the two sliders 31 are slidably connected to the annular groove. The support shell 32 is fixedly arranged at the top of the two sliders 31. The support shell 32 can rotate in an annular groove through the two sliders 31. The rotating shaft 33 is connected to the bottom of the pool body 11, and the top of the rotating shaft 33 is fixedly connected to the outer bottom of the supporting shell 32. The sealed bearing can ensure that the sewage will not leak out of the pool body 11 while the rotating shaft 33 rotates stably, ensuring good sealing. The first motor 34 is fixedly arranged at the outer bottom of the pool body 11, and the first gear 35 is fixedly arranged at the outer bottom of the pool body 11. The first gear 36 is fixedly arranged at the driving end of the first motor 34, the second gear 36 is fixedly arranged at the bottom end of the rotating shaft 33, and the second gear 36 is meshed with the first gear 35. The driving shaft 37 is connected to the top and bottom of the supporting shell 32, and the driving shaft 37 is connected to the bottom plate 23 through a sealed bearing. When the first motor 34 is running, its power is transmitted to the rotating shaft 33 through the first gear 35 and the second gear 36, so that the rotating shaft 33 further drives the driving shaft 37 to rotate. A plurality of diverter plates 38 are fixedly arranged on the driving shaft 37. The diverter plate 38 is a circular structure, and the surface of the diverter plate 38 is uniformly provided with continuously alternating protrusions 38-1 and recessed portions 38-2 with its center as the reference point. The diameter of the diverter plate 38 is smaller than the diameter of the inner cylinder 22 to ensure the normal passage of airflow.

[0033] The diverter plate 38 is used to disperse and optimize the gas transported by the intake pipe 27, ensuring uniform contact between the gas and various parts of the catalyst 28, thereby improving the catalytic effect and service life of the catalyst unit 2. When the gas flows through the diverter plate 38 having the recessed portion 38-2 and the raised portion 38-1, the recessed portion 38-2 promotes the formation of gas turbulence, helping to break the laminar flow state, enhance the mixing of gas molecules, and improve the uniformity of the contact between the gas and the catalyst 28. The recessed portion 38-2 reduces the channel for the gas to flow in a straight line, preventing the gas from repeatedly contacting a certain part of the catalyst 28, thereby ensuring the integrity and effectiveness of the catalytic reaction. At the same time, the raised portion 38-1 increases the residence time of the gas in the catalyst unit 2 by blocking the gas and changing its flow direction, causing the gas molecules to stir as they pass through. These movements help the gas molecules fully contact the subsequent catalyst 28, thereby improving the rate and efficiency of the catalytic reaction.

[0034] At the same time, on the basis of the above, the driving shaft 37 of the uniform distribution unit 3 can drive the diverter plate 38 to rotate. This rotation can continuously change the direction and speed of the gas flow, thereby forming a dynamic flow pattern inside the catalytic unit 2. This pattern helps to break the static distribution of the gas in the catalyst 28 layer, prevent the formation of a fixed flow channel, and ensure that the gas is in uniform contact with the catalyst 28 in each section; the rotational motion of the diverter plate 38 causes the gas to be continuously stirred when passing through the catalytic unit 2. This agitation not only enhances the turbulence of the gas, but also promotes the collision frequency between the gas molecules and the surface of the catalyst 28, thereby increasing the rate of the catalytic reaction; the diverter plate 38 can break up the airflow when rotating, causing it to diverge. Such a flow path increases the residence time of the gas molecules in the catalytic unit 2, helps to increase the contact time between the gas and the catalyst 28, thereby improving the conversion rate of the reaction, and the airflow will be continuously cut and reorganized. This continuous airflow breaking effect helps the airflow to be in uniform contact with all parts of the catalyst 28 to the greatest extent possible;

[0035] The supporting shell 32 is provided with a cleaning unit 4 for cleaning the surface of the catalytic unit 2;

[0036] Blockage of the small holes may restrict gas flow, reduce the contact area between the gas and the catalyst 28, thereby reducing catalytic efficiency and even causing failure of the catalytic unit 2. Real-time cleaning by the cleaning unit 4 ensures that the small holes on the outer cylinder 21 remain unobstructed, ensuring smooth passage of gas and maintaining efficient operation of the catalytic unit 2.

[0037] The cleaning unit 4 includes two cleaning roller brushes 41, which are connected to the top and bottom of the support housing 32 through sealed bearings, and the two cleaning roller brushes 41 are respectively located on the left and right sides of the drive shaft 37;

[0038] The two cleaning roller brushes 41 inside the cleaning unit 4 are in contact with the surface of the outer cylinder 21, and the two cleaning roller brushes 41 and the uniform distribution unit 3 share a power source;

[0039] The cleaning unit 4 also includes a second motor 42, a first sprocket 43, two second sprockets 44 and a chain 45. A receiving groove is opened inside the rotating shaft 33. The second motor 42 is fixedly arranged in the receiving groove of the rotating shaft 33. The receiving groove is used for installing the second motor 42. The drive shaft 37 is connected to the top and bottom of the support shell 32 through sealed bearings. The driving end of the second motor 42 is fixedly connected to one end of the drive shaft 37. The first sprocket 43 is fixedly arranged on the drive shaft 37. The two second sprockets 44 are respectively fixedly arranged on the two cleaning roller brushes 41. The two second sprockets 44 are respectively located on the left and right sides of the first sprocket 43. The first sprocket 43 and the two second sprockets 44 are connected by a chain 45.

[0040] In the design where the uniform distribution unit 3 and the cleaning unit 4 are opened synchronously, the cleaning unit 4 further limits the connection mode of the drive shaft 37;

[0041] In the absence of the cleaning unit 4, the drive shaft 37 is fixedly connected to the support housing 32. This connection ensures that the first motor 34 can directly drive the drive shaft 37 to rotate, thereby achieving uniform distribution of gas in the catalytic unit 2.

[0042] After the cleaning unit 4 is introduced, the connection method is further limited, that is, the drive shaft 37 and the support housing 32 are rotatably connected via a sealed bearing. This design allows the second motor 42 to be connected to the drive shaft 37, thereby forcing the drive shaft 37 to rotate, and the rotation direction of the rotating shaft 33 and the driving end of the second motor 42 are the same, while introducing the self-rotation action of the cleaning roller brush 41;

[0043] The self-rotation of the cleaning unit 4 enables the two cleaning roller brushes 41 to rotate around the outer cylinder 21 while forming self-rotation, thereby improving the uniformity and effectiveness of the contact between the cleaning roller brushes 41 and the surface of the outer cylinder 21, enhancing the cleaning effect, and increasing the contact frequency between the cleaning roller brushes 41 and the surface of the outer cylinder 21, making the cleaning more thorough and less likely to leave dead corners; the friction generated by the self-rotation helps to remove sediments at a deeper level, because the self-rotation enables the cleaning roller brushes 41 to act on the surface of the outer cylinder 21 at different angles and forces, thereby effectively destroying and removing stubborn dirt; the self-rotation action can also prevent the cleaning roller brushes 41 from uneven wear caused by long-term single-direction friction, thereby extending the service life of the cleaning roller brushes 41;

[0044] The raised portion 38 - 1 of the diverter plate 38 is provided with a guide hole 38 - 3 ;

[0045] The guide holes 38-3 can cause local acceleration of the gas when passing through the protrusion 38-1. This acceleration effect helps to enhance the turbulence of the gas, thereby increasing the collision frequency between the gas molecules and the surface of the catalyst 28 and promoting the catalytic reaction. Secondly, the existence of the guide holes 38-3 makes the flow path of the gas on the diverter plate 38 more complicated. This complex flow pattern helps to prevent the gas from forming a fixed flow channel in the catalytic unit 2, ensuring that the gas can evenly contact every part of the catalyst 28, thereby improving the catalytic efficiency. Thirdly, the guide holes 38-3 can also effectively disperse the gas flow, reduce the dead zone of the gas in the catalytic unit 2, and improve the utilization efficiency of the catalyst 28. Finally, the design of the guide holes 38-3 enables the diverter plate 38 to more effectively break up the airflow when rotating, thereby increasing the residence time of the gas molecules in the catalytic unit 2, which not only helps to increase the contact time between the gas and the catalyst 28, but also improves the conversion rate of the reaction, while ensuring that the airflow is in maximum uniform contact with each part of the catalyst 28, thereby improving the performance of the catalytic unit 2 as a whole.

[0046] Multiple diverter plates 38 are arranged in a rotationally staggered manner along the rotating shaft 33, wherein each subsequent diverter plate 38 is rotated 20 degrees around the rotating shaft 33 relative to the previous diverter plate 38, ensuring that the protrusion 38-1 of the subsequent diverter plate 38 and the recessed portion of the previous diverter plate 38 are located at the same position, ensuring that when the fluid passes through, the protrusion 38-1 and the guide hole 38-3 of each diverter plate 38 can interact with each other in a staggered manner, further optimizing the distribution and flow characteristics of the fluid, so that the fluid can be more evenly dispersed and mixed when passing through the catalytic unit 2, reducing the flow dead zone, and improving the contact efficiency between the fluid and the catalyst 28.

[0047] Specifically, the diameter of the first sprocket 43 is greater than the diameter of the second sprocket 44 .

[0048] The stability of the first sprocket 43 and the second sprocket 44 during the transmission process is improved.

[0049] Specifically, the sewage treatment tank 1 further includes an inlet pipe 13 and an outlet pipe 14 . One end of the inlet pipe 13 is fixedly connected to the left side of the tank body 11 , and one end of the outlet pipe 14 is fixedly connected to the right side of the tank body 11 .

[0050] Working principle: First, the staff passes the external gas into the air inlet pipe 27 of the catalytic unit 2, and the gas then enters the catalyst 28 layer through the small holes in the inner tube 22. In this process, the uniform distribution unit 3 and the cleaning unit 4 are started synchronously to achieve effective dispersion of the gas and continuous cleaning of the small holes on the surface of the outer tube 21. The diverter plate 38 in the uniform distribution unit 3 is designed with a recessed portion 38-2 and a raised portion 38-1. When the gas flows through these diverter plates 38, the recessed portion 38-2 promotes the formation of gas turbulence, which not only helps to break the laminar state of the gas, but also enhances the mixing of gas molecules, thereby improving the uniformity of the contact between the gas and the catalyst 28. At the same time, the recessed portion 38-2 reduces the channel for the straight flow of the gas, avoids repeated contact between the gas and a certain part of the catalyst 28, and ensures the integrity and efficiency of the catalytic reaction.

[0051] At the same time, the role of the protrusion 38-1 is to block the gas and change its flow direction, which increases the residence time of the gas in the catalytic unit 2 and causes the gas molecules to agitate as they pass through. These agitations help the gas molecules to fully contact with various parts of the catalyst layer 28, thereby improving the rate and efficiency of the catalytic reaction.

[0052] The drive shaft 37 of the uniform distribution unit 3 is driven by a second motor 42, which drives the diverter plate 38 through the drive shaft 37 to continuously rotate. This rotation continuously changes the direction and speed of gas flow, thereby forming a dynamic flow pattern within the catalytic unit 2. This pattern effectively breaks the static distribution of gas within the catalyst layer 28, prevents the formation of fixed flow channels, and ensures that the gas contacts every part of the catalyst 28 evenly.

[0053] While the uniform distribution unit 3 is working, the cleaning unit 4 is also operating synchronously. The second motor 42 in the cleaning unit 4 drives the drive shaft 37 to rotate. The rotation of the drive shaft 37 drives the diverter plate 38, and at the same time, the chain 45 transmission system is used to make the cleaning roller brush 41 rotate around the surface of the outer cylinder 21 to clean the small holes. The rotation of the cleaning roller brush 41 is synchronously driven by the first sprocket 43 on the drive shaft 37 through the chain 45 to drive the two second sprockets 44, thereby driving the cleaning roller brush 41 to rotate. This rotation, combined with the rotation around the outer cylinder 21, greatly improves the cleaning effect, ensures that the small holes of the outer cylinder 21 are unobstructed, and maintains the efficient operation of the catalytic unit 2. The working principle of the entire system ensures the uniformity of gas distribution and the cleanliness of the catalytic unit 2, thereby improving the efficiency of sewage purification and the service life of the catalytic unit 2.

[0054] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the above embodiments, or replace some or all of the technical features therein with equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. A sewage purifier with a catalytic device, comprising a sewage treatment tank (1), wherein the sewage treatment tank (1) comprises a tank body (11) and three guide walls (12), wherein the three guide walls (12) are fixedly arranged in the tank body (11), and characterized in that: Two brackets (5) are fixedly arranged on the left side of the tank body (11) and on the corresponding guide wall (12); a catalytic unit (2) for improving the sewage treatment effect is arranged between the two brackets (5); and a uniform distribution unit (3) for improving the catalytic effect of the catalytic unit (2) is arranged at the bottom of the tank body (11); The catalytic unit (2) comprises an outer cylinder (21), an inner cylinder (22), a bottom plate (23), a plurality of first connecting seats (24), a movable cover plate (25), a plurality of second connecting seats (26) and an air inlet pipe (27). The inner cylinder (22) and the outer cylinder (21) are both open cylinders, and a plurality of small holes are provided on the inner cylinder (22) and the outer cylinder (21). The inner cylinder (22) is located on the inner side of the outer cylinder (21). The bottom plate (23) is fixedly arranged at the bottom of the outer cylinder (21) and the inner cylinder (22). The outer cylinder (21) A catalyst (28) is filled between the outer tube (21) and the inner tube (22); the outer tube (21) is fixedly arranged between the two brackets (5); a plurality of the first connecting seats (24) are fixedly arranged on the outer wall of the outer tube (21); a plurality of the second connecting seats (26) are fixedly arranged on the outer edge of the movable cover (25); the first connecting seats (24) correspond to the second connecting seats (26) and are connected by bolts; one end of the intake pipe (27) is fixedly connected to the movable cover (25), and the intake pipe (27) is communicated with the inner tube (22); The uniform distribution unit (3) comprises two sliders (31), a support shell (32), a rotating shaft (33), a first motor (34), a first gear (35), a second gear (36), a driving shaft (37) and a plurality of diverter plates (38). An annular sliding groove is provided at the bottom of the pool body (11). The two sliders (31) are slidably connected to the annular sliding groove. The support shell (32) is fixedly arranged on the top ends of the two sliders (31). The rotating shaft (33) is connected to the bottom of the pool body (11) through a sealed bearing, and the top end of the rotating shaft (33) is fixedly connected to the outer bottom end of the support shell (32). The first motor (34) is fixedly arranged on the pool body (11). 1) an outer bottom portion, wherein the first gear (35) is fixedly arranged on the driving end of the first motor (34), the second gear (36) is fixedly arranged on the bottom end of the rotating shaft (33), and the second gear (36) is meshed with the first gear (35), the driving shaft (37) is connected to the top and bottom of the supporting shell (32), and the driving shaft (37) is connected to the bottom plate (23) through a sealed bearing, and a plurality of diverter plates (38) are fixedly arranged on the driving shaft (37), the diverter plates (38) are circular in structure, and the surface of the diverter plates (38) is uniformly provided with continuously alternating raised portions (38-1) and recessed portions (38-2) with the center of the circle as a reference point; The supporting shell (32) is provided with a cleaning unit (4) for cleaning the surface of the catalytic unit (2); The cleaning unit (4) comprises two cleaning roller brushes (41), the two cleaning roller brushes (41) are connected to the top and bottom of the support shell (32) through sealed bearings, and the two cleaning roller brushes (41) are respectively located on the left and right sides of the drive shaft (37); The cleaning unit (4) further comprises a second motor (42), a first sprocket (43), two second sprockets (44) and a chain (45); a receiving groove is provided inside the rotating shaft (33); the driving shaft (37) is connected to the top and bottom of the supporting shell (32) through a sealed bearing; the driving end of the second motor (42) is fixedly connected to one end of the driving shaft (37); the second motor (42) is fixedly arranged in the receiving groove of the rotating shaft (33); the first sprocket (43) is fixedly arranged on the driving shaft (37); the two second sprockets (44) are respectively fixedly arranged on the two cleaning roller brushes (41); the first sprocket (43) and the two second sprockets (44) are connected through a chain (45); The raised portion (38-1) of the diverter plate (38) is provided with a guide hole (38-3); The plurality of diverter plates (38) are arranged along the rotation axis (33) in a rotationally staggered manner, wherein each subsequent diverter plate (38) is rotated 20 degrees around the rotation axis (33) relative to the previous diverter plate (38).

2. The sewage purifier with a catalytic device according to claim 1, characterized in that: The diameter of the first sprocket (43) is greater than the diameter of the second sprocket (44).

3. The sewage purifier with a catalytic device according to claim 1, characterized in that: The sewage treatment tank (1) further comprises an inlet pipe (13) and an outlet pipe (14), one end of the inlet pipe (13) being fixedly connected to the left side of the tank body (11), and one end of the outlet pipe (14) being fixedly connected to the right side of the tank body (11).

Citation Information

Patent Citations

  • Rotary aeration structure of aeration device for sewage treatment equipment

    CN111003826A

  • Inner loop ozone catalytic unit

    CN205527942U

  • Sewage treatment pool wall descaling device

    CN222288241U