Solar power aeration oxygenation device and system
By adopting rotatable riser and air vent in the solar power aeration oxygen-filling device, combined with the design of casing and ratchet assembly, the problem of gas being blocked by sludge after stopping is solved, the gas is efficiently involved in the oxidation reaction, and the energy utilization rate and sewage treatment efficiency are improved.
Patent Information
- Application Number
- CN202510239498.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-03-03
AI Technical Summary
The existing aeration systems are easily covered by deposited activated sludge after stopping, resulting in gas blockage and affecting gas dispersion and energy utilization.
A solar-powered aeration oxygen-filling device is designed, using a rotatable riser and an aeration pipe, which controls the opening and closing of the aeration hole through the rotation of the sleeve, and uses a ratchet assembly and transmission assembly to drive the rotation of the aeration pipe and the sleeve to ensure that the gas participates in the oxidation reaction immediately when injected into the water.
It effectively avoids the ineffective consumption of gas by sludge after aeration is stopped, ensures the oxidation reaction between gas and sewage in the early stage of aeration, and improves energy utilization and sewage treatment efficiency.
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Figure CN119977149A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of sewage treatment equipment, and in particular to a solar-powered aeration and oxygenation device and system. Background Art
[0002] The solar-powered aeration and oxygenation device is a device that uses solar energy as its main energy source. When sunlight shines on the solar photovoltaic panels, the panels convert light energy into electrical energy and store it in batteries. Subsequently, the microcomputer control system controls the operation of the aeration system according to the set parameters and real-time monitoring data. The aeration system evenly injects air into the water of the sewage pool, thereby increasing the dissolved oxygen content in the water.
[0003] The existing aeration system is aerated through an aeration pipe installed at the bottom of the pool, and when aeration stops, the deposited activated sludge tends to quickly cover the aeration pipe, especially the aeration hole, causing blockage, which seriously affects the effective diffusion of the gas. This phenomenon delays the establishment of an aerobic environment and forces the aeration system to go through a slow startup period, during which a large amount of aeration gas is ineffectively consumed and fails to immediately participate in the oxidation reaction, resulting in low energy utilization and a double waste of time and resources. Based on this, the present invention purposely provides a solar-powered aeration oxygenation device and system that can avoid restarting after aeration stops and ineffective consumption of gas by deposited sludge, and ensure oxidation reaction between gas and sewage in the initial stage of aeration. Summary of the invention
[0004] The purpose of the present invention is to provide a solar powered aeration and oxygenation device and system to solve the technical problems in the prior art in view of the deficiencies in the prior art.
[0005] The purpose of the present invention can be achieved through the following technical solutions: A solar powered aeration and oxygenation device, comprising: A sewage pool, on the outer wall of which an exhaust fan is fixedly installed, the air inlet of the exhaust fan is connected to the air supply component, and the air outlet is connected to the air supply pipe, and the air supply pipe extends to the bottom of the sewage pool; A standpipe, which is rotatably mounted on the bottom plate of the sewage pool and driven to rotate by a driving source, wherein the air inlet end of the standpipe penetrates the sewage pool and extends into the gas pipeline, and the end is dynamically sealed at the connection with the gas pipeline, the standpipe is connected with an aeration pipe, the aeration pipe is provided with a plurality of aeration holes arranged at equal intervals, and the axis thereof is perpendicular to the axis of the standpipe, and an opening and closing assembly is provided on the standpipe; A sleeve is rotatably mounted on the outer wall of the aeration pipe and is provided with a plurality of openings arranged at equal intervals, and the plurality of openings correspond to the plurality of aeration holes one by one. The sleeve is driven to rotate by a ratchet assembly. When the ratchet assembly drives the sleeve to rotate so that the openings are aligned with the aeration holes, the gas in the aeration pipe enters the water body through the aeration holes and the openings in sequence. When the ratchet assembly drives the sleeve to rotate so that the openings are misaligned with the aeration holes, the sleeve blocks the aeration holes. When the driving source drives the riser to rotate clockwise, the opening and closing assembly drives the sleeve to rotate through the ratchet assembly. When the driving source drives the riser to rotate counterclockwise, the sleeve is stationary.
[0006] As a further solution of the present invention: the opening and closing assembly includes a vertical cylinder, a gear block and a first gear. The vertical cylinder is sleeved on the vertical pipe and fixedly connected to the bottom plate of the sewage tank. Multiple gear blocks are fixedly installed on the top of the vertical cylinder, and multiple gear blocks are arranged circumferentially. The first gear is sleeved on the aeration pipe, meshes with the gear block, and is connected to the ratchet assembly. When the vertical pipe rotates clockwise, the first gear rotates clockwise synchronously. At this time, the first gear drives the sleeve to rotate through the ratchet assembly. When the vertical pipe rotates counterclockwise, the first gear rotates counterclockwise synchronously. At this time, the sleeve is stationary.
[0007] As a further solution of the present invention: the ratchet assembly includes an outer wheel, an inner wheel, an inner ratchet and a pawl, the outer wheel and the inner wheel are both located between the first gear and the aeration pipe, the outer wheel is sleeved on the inner wheel, and is coaxially fixed with the first gear, one side of the inner wheel is fixed to the sleeve, the inner ratchet is opened on the inner wall of the outer wheel, a plurality of pawls are rotatably installed on the inner wheel, and when the first gear rotates clockwise, the inner wheel engages with the pawl, and when the first gear rotates counterclockwise, the inner wheel and the pawl slide in cooperation.
[0008] As a further solution of the present invention: a bracket is fixedly installed at one end of the aeration pipe away from the vertical pipe, a rotating rod is rotatably installed on the bracket, a plurality of stirring blades arranged at equal intervals are fixedly installed on the rotating rod, each stirring blade corresponds to an aeration hole, and the rotating rod is driven to rotate by a transmission assembly.
[0009] As a further solution of the present invention: the transmission assembly includes a ring, a transmission gear and a second gear, the ring is sleeved on the sleeve and is coaxially fixedly connected to the outer wheel, the transmission gear is coaxially fixedly connected to the ring, the second gear is coaxially fixedly connected to the rotating rod and is meshed with the transmission gear.
[0010] As a further solution of the present invention: a waterproof cylinder is fixedly installed on the vertical pipe, the waterproof cylinder is in contact with the bottom plate of the sewage pool, the opening and closing assembly, the ratchet assembly and the transmission assembly are all located in the waterproof cylinder, and the aeration pipe, sleeve and rotating rod all pass through the waterproof cylinder.
[0011] As a further solution of the present invention: the air supply component includes a central box and an air storage box. The central box is fixedly installed on the outer wall of the sewage pool, and its air outlet is connected to the air inlet of the exhaust fan. Multiple air storage boxes are fixedly installed on the outer wall of the sewage pool, and each air outlet of the air storage box is connected to the central box. Multiple air storage boxes are used to transport different gases to the water in the sewage pool. A detection component connected to the central box is provided on the outer wall of the sewage pool.
[0012] As a further solution of the present invention: the detection component includes a detection box, a water pump and a return pipe. The detection box is fixedly installed on the outer wall of the sewage pool, and has two chambers therein. A dissolved oxygen detection component is arranged in one chamber, and a pH detection component is arranged in the other chamber. Both the dissolved oxygen detection component and the pH detection component are connected to the central box. The water inlet end of the water pump is connected to the sewage pool, and the water outlet end of the water pump is connected to the two chambers respectively through the first water pipe and the second water pipe. The return pipe connects the two chambers with the sewage pool.
[0013] The present invention also provides a solar-powered aeration and oxygenation system, which includes a solar-powered aeration and oxygenation device as described in any one of claims 1 to 4, wherein the system also includes a solar power generation panel, a battery, an inverter, a PC-side control component, a host computer, and a battery that are electrically connected.
[0014] Beneficial effects of the present invention: 1. In the present invention, a rotatable vertical pipe and an aeration pipe arranged along a perpendicular axis of the vertical pipe are provided, and aeration holes are arranged on the aeration pipe, so that rotary aeration can be realized. The aeration pipe is sleeved by a sleeve, and the rotation of the sleeve can control the opening and closing of the aeration hole. When the aeration hole is closed, the aeration pipe can be driven by the vertical pipe to rotate to stir the deposited activated sludge before aeration so that it floats into the water body. Then, after the aeration hole is opened by rotating the sleeve, the water body at this time is a stirred water body, the sludge floats in the water body, and the aeration hole is not blocked by the sludge. The gas is immediately involved in the oxidation reaction when it is injected into the water body, which greatly improves the energy utilization rate. 2. In the present invention, after aeration starts, the driving source drives the riser to rotate counterclockwise again. When the riser rotates counterclockwise, the opening and closing assembly does not drive the sleeve to rotate through the ratchet assembly, thereby ensuring that the aeration hole is always in an open state. At the same time, the aeration pipe will also rotate synchronously with the riser. At this time, the aeration hole will rotate to inject gas into the water body, so that stirring and aeration are performed synchronously, further improving the efficiency of sewage treatment; 3. In the present invention, when the aeration holes and the openings are aligned, aeration is in progress, and the gas enters the water body through the aeration holes and the openings. At this time, the transmission assembly drives the rotating rod to rotate, thereby breaking up and stirring the gushing gas, and cutting large bubbles into smaller bubbles, thereby improving the oxygen transfer efficiency, enhancing the stirring effect, reducing sludge deposition, and improving the sewage treatment efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The present invention will be further described below in conjunction with the accompanying drawings.
[0016] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of the structure inside the sewage pool of the present invention; Figure 3 It is a schematic structural diagram of a sewage tank in cross section in the present invention; Figure 4 It is a schematic structural diagram of a cross-section of the waterproof tube in the present invention; Figure 5 is a schematic structural diagram of the ratchet assembly of the present invention; Figure 6 It is a schematic structural diagram of the cross-section of the outer circular wheel in the present invention; Figure 7 It is a structural schematic diagram of the standpipe in the present invention; Figure 8 It is a structural schematic diagram of the sleeve in the present invention; Fig. 9 It is a schematic diagram of the structure in which the openings and the aeration holes are aligned in the present invention; Fig.10 It is a schematic diagram of the structure in which the opening and the aeration hole are misaligned in the present invention; Fig.11 It is a structural schematic diagram of the transmission assembly in the present invention; Fig.12 It is a structural schematic diagram of the rotation of the transfer rod in the present invention.
[0017] In the figure: 1, sewage pool; 2, exhaust fan; 3, air supply assembly; 301, central box; 302, air storage box; 4, air transmission pipe; 5, vertical pipe; 6, aeration pipe; 601, aeration hole; 602, bracket; 7, casing; 701, opening; 8, opening and closing assembly; 801, vertical cylinder; 802, gear block; 803, first gear; 9, ratchet assembly; 901, outer wheel; 902, inner wheel; 903, inner ratchet; 904, ratchet; 10, rotating rod; 11 , stirring blade; 12, transmission assembly; 1201, collar; 1202, transmission gear; 1203, second gear; 13, waterproof tube; 14, detection box; 1401, dissolved oxygen detection assembly; 1402, pH detection assembly; 15, water pump; 1501, first water pipe; 1502, second water pipe; 16, return pipe; 17, battery; 18, inverter; 19, PC control assembly; 20, host computer; 21, solar panel. DETAILED DESCRIPTION
[0018] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0019] See also Figure 1-Figure 12 As shown, the present invention is a solar powered aeration and oxygenation device, comprising: A sewage pool 1, on the outer wall of which an exhaust fan 2 is fixedly installed, the air inlet of the exhaust fan 2 is connected to the air supply component 3, and the air outlet is connected to the air supply pipe 4, and the air supply pipe 4 extends to the bottom of the sewage pool 1; A standpipe 5 is rotatably mounted on the bottom plate of the sewage pool 1 and driven to rotate by a driving source. The air inlet end of the standpipe 5 penetrates the sewage pool 1 and extends into the air pipe 4, and the connection between the end and the air pipe 4 is dynamically sealed. The standpipe 5 is connected to an aeration pipe 6, and the aeration pipe 6 is provided with a plurality of aeration holes 601 arranged at equal intervals, and the axis thereof is perpendicular to the axis of the standpipe 5. The standpipe 5 is provided with an opening and closing assembly 8; The sleeve 7 is rotatably mounted on the outer wall of the aeration pipe 6, and is provided with a plurality of openings 701 arranged at equal intervals, and the plurality of openings 701 correspond to the plurality of aeration holes 601 one by one. The sleeve 7 is driven to rotate by the ratchet assembly 9. When the ratchet assembly 9 drives the sleeve 7 to rotate so that the openings 701 are aligned with the aeration holes 601, the gas in the aeration pipe 6 enters the water body through the aeration holes 601 and the openings 701 in turn. When the ratchet assembly 9 drives the sleeve 7 to rotate so that the openings 701 are misaligned with the aeration holes 601, the sleeve 7 blocks the aeration holes 601. When the driving source drives the riser 5 to rotate clockwise, the opening and closing assembly 8 drives the sleeve 7 to rotate through the ratchet assembly 9. When the driving source drives the riser 5 to rotate counterclockwise, the sleeve 7 is stationary.
[0020] In one case of this embodiment, the driving source can be a pulley assembly driven by a motor, a gear rack assembly driven by a motor, and other components, and other mechanisms capable of achieving rotational motion can also be selected. This embodiment is not specifically limited here. The dynamic seal is suitable for sealing shaft-type rotating parts.
[0021] Working principle of the present invention: when aeration is required, considering that the activated sludge is deposited on the bottom of the sewage pool 1 before aeration, and the sludge accumulates and covers the aeration pipe 6, before aeration, the vertical pipe 5 is first driven by the driving source to rotate counterclockwise, and the vertical pipe 5 will drive the aeration pipe 6 to rotate counterclockwise synchronously, so as to stir the deposited activated sludge. After a period of stirring, the activated sludge is fully dispersed into the water body. At this time, the driving source drives the vertical pipe 5 to rotate clockwise, and the opening and closing component 8 will drive the sleeve 7 to rotate through the ratchet component 9, and rotate the sleeve 7 until the opening 701 is aligned with the aeration hole 601. This process is as shown in FIG. Figure 10 to Figure 9 As shown, the exhaust fan 2 can be turned on at this time, and the exhaust fan 2 pumps the gas into the gas pipe 4 through the gas supply component 3, and transports the gas to the standpipe 5 through the gas pipe 4. The gas in the standpipe 5 enters the aeration pipe 6 and is injected into the water body from the aeration holes 601 and the openings 701 to perform aeration. At this time, the water body is a stirred water body, the sludge is floating in the water body, and the aeration holes 601 are not blocked by the sludge. The gas immediately participates in the oxidation reaction when injected into the water body, which greatly improves the energy utilization rate. After aeration begins, the driving source drives the riser 5 to rotate counterclockwise again. When the riser 5 rotates counterclockwise, the opening and closing assembly 8 does not drive the sleeve 7 to rotate through the ratchet assembly 9, thereby ensuring that the aeration hole 601 is always in an open state. At the same time, the aeration pipe 6 will also rotate synchronously with the riser 5. At this time, the aeration hole 601 will rotate to inject gas into the water body, so that stirring and aeration are performed synchronously, further improving the efficiency of sewage treatment; After aeration is completed, the driving source drives the riser 5 to rotate clockwise again, causing the sleeve 7 to rotate and block the aeration hole 601, thereby avoiding sludge deposition and blocking the aeration hole 601 during the aeration stop stage, ensuring that when aeration starts next time, there is no sludge blocking the gas from entering the water body when the aeration hole 601 is opened, thereby ensuring the efficiency of the initial stage of aeration.
[0022] like Figure 3-Figure 12 As shown, as a preferred embodiment of the present invention, the opening and closing component 8 includes a vertical cylinder 801, a tooth block 802 and a first gear 803. The vertical cylinder 801 is sleeved on the vertical pipe 5, and the vertical cylinder 801 is fixedly connected to the bottom plate of the sewage tank 1. Multiple tooth blocks 802 are fixedly installed on the top of the vertical cylinder 801, and multiple tooth blocks 802 are arranged circumferentially. The first gear 803 is sleeved on the aeration pipe 6, which is meshed with the tooth block 802 and connected to the ratchet assembly 9. When the vertical pipe 5 rotates clockwise, the first gear 803 rotates clockwise synchronously. At this time, the first gear 803 drives the sleeve 7 to rotate through the ratchet assembly 9. When the vertical pipe 5 rotates counterclockwise, the first gear 803 rotates counterclockwise synchronously. At this time, the sleeve 7 is stationary.
[0023] In practical application, if Figure 5As shown in the figure, the driving source drives the standpipe 5 to rotate clockwise. When the standpipe 5 drives the aeration pipe 6 to rotate synchronously, the first gear 803 sleeved on the aeration pipe 6 will rotate clockwise under the action of the tooth block 802. The clockwise rotation of the first gear 803 will drive the sleeve 7 to rotate through the ratchet assembly 9, thereby controlling the opening 701 to align with the aeration hole 601, or controlling the sleeve 7 to rotate after the aeration is completed so that the opening 701 is misaligned with the aeration hole 601 to avoid sludge blocking the aeration hole 601. At this time, the sludge will block the opening 701, and before the aeration work is performed, the driving source controls the standpipe 5 to rotate clockwise. When the tube 5 rotates counterclockwise, the aeration tube 6 will also rotate counterclockwise, thereby stirring the sludge, causing the sludge to float into the water body, and the sludge in the opening 701 will also float out with the water flow, and the counterclockwise rotation of the vertical tube 5 will drive the first gear 803 to rotate counterclockwise, and the counterclockwise rotation of the first gear 803 does not drive the sleeve 7 to rotate through the ratchet assembly 9, which means that the sleeve 7 is stationary on the aeration tube 6, and the opening 701 and the aeration hole 601 may be misaligned or aligned, and when the two are aligned, the process of rotational aeration is performed.
[0024] like Figure 3-Figure 12 As shown, as a preferred embodiment of the present invention, the ratchet assembly 9 includes an outer wheel 901, an inner wheel 902, an inner ratchet 903 and a pawl 904, the outer wheel 901 and the inner wheel 902 are both located between the first gear 803 and the aeration tube 6, the outer wheel 901 is sleeved on the inner wheel 902, and is coaxially fixedly installed with the first gear 803, one side of the inner wheel 902 is fixedly installed with the sleeve 7, the inner ratchet 903 is opened on the inner wall of the outer wheel 901, and a plurality of pawls 904 are rotatably installed on the inner wheel 902, and when the first gear 803 rotates clockwise, the inner wheel 902 engages with the pawl 904, and when the first gear 803 rotates counterclockwise, the inner wheel 902 and the pawl 904 slide in cooperation.
[0025] In practical application, if Figure 6 As shown in the figure, when the first gear 803 rotates clockwise, it drives the outer wheel 901 to rotate synchronously, and the inner wheel 902 is engaged with the ratchet 904, so the outer wheel 901 drives the inner wheel 902 to rotate synchronously, and the inner wheel 902 drives the sleeve 7 to rotate, as shown in FIG. Figure 9-10The middle sleeve 7 rotates, and this process is the process of controlling the opening and closing of the aeration hole 601. When the first gear 803 rotates counterclockwise, the inner wheel 902 and the ratchet 904 slide together. At this time, the outer wheel 901 cannot drive the inner wheel 902 to rotate. Therefore, the sleeve 7 will always maintain a posture on the aeration pipe 6, and the driving source drives the riser 5 to rotate in different directions to control the clockwise and counterclockwise states of the first gear 803. That is, before the aeration starts, the riser 5 is controlled to rotate counterclockwise all the time, so that the first gear 803 can rotate counterclockwise all the time. At this time, the riser 5 drives the aeration pipe 6 and the sleeve 7 to rotate counterclockwise all the time, thereby stirring the activated sludge deposited at the bottom. Fig.10 As shown, the sludge deposited at the opening 701 is dispersed with the water flow. When the sludge is fully suspended in the middle of the water body, the driving source controls the riser 5 to rotate rapidly clockwise, so that the first gear 803 rotates clockwise, thereby driving the sleeve 7 to rotate, so that the opening 701 and the aeration hole 601 are aligned. At this time, the aeration work can be started, and then the driving source controls the riser 5 to rotate counterclockwise again, so that rotary aeration is performed in the water body. At this time, the deposited sludge has been dispersed in the water and will not block the gas from entering the water for reaction.
[0026] like Figure 4-Figure 12 As shown, as a preferred embodiment of the present invention, a bracket 602 is fixedly installed at one end of the aeration pipe 6 away from the vertical pipe 5, a rotating rod 10 is rotatably installed on the bracket 602, a plurality of stirring blades 11 arranged at equal intervals are fixedly installed on the rotating rod 10, each stirring blade 11 corresponds to an aeration hole 601, and the rotating rod 10 is driven to rotate by a transmission assembly 12.
[0027] In practical application, if Figure 4 As shown in the example, when the aeration hole 601 and the opening 701 are aligned, aeration is in progress, and the gas enters the water body through the aeration hole 601 and the opening 701. At this time, the transmission assembly 12 drives the rotating rod 10 to rotate, thereby breaking up and stirring the gushing gas, and cutting large bubbles into smaller bubbles, thereby improving the oxygen transfer efficiency, enhancing the stirring effect, reducing sludge deposition, and improving the sewage treatment efficiency.
[0028] like Figure 4-Figure 12 As shown, as a preferred embodiment of the present invention, the transmission assembly 12 includes a collar 1201, a transmission gear 1202 and a second gear 1203, the collar 1201 is sleeved on the sleeve 7, and is coaxially fixedly connected to the outer wheel 901, the transmission gear 1202 is coaxially fixedly connected to the collar 1201, and the second gear 1203 is coaxially fixedly connected to the rotating rod 10, and is meshed with the transmission gear 1202.
[0029] In practical application, if Figure 5Taking the example shown, since the collar 1201 is coaxially fixedly connected with the outer wheel 901, as long as the stand pipe 5 rotates, the first gear 803 will definitely rotate under the action of the tooth block 802, and the first gear 803 will drive the outer wheel 901 to rotate synchronously. At this time, the collar 1201 will rotate synchronously with the outer wheel 901, and the collar 1201 drives the transmission gear 1202 to rotate, and the transmission gear 1202 is meshed with the second gear 1203, so as to drive the second gear 1203 to rotate, and then the rotating rod 10 is rotated. Such a design can use the power of the rotation of the stand pipe 5 to drive the rotating rod 10 to rotate, and reasonably use energy without the need for an additional power source; Moreover, with this driving mode, whether before or during aeration, the rotating rod 10 will rotate as long as the vertical pipe 5 rotates, thereby driving the stirring blade 11 to rotate. Specifically, before aeration, the rotation of the stirring blade 11 can be combined with the rotation of the aeration pipe 6 around the vertical pipe 5, thereby enhancing the stirring and mixing effect of the deposited sludge.
[0030] like Figure 1-Figure 12 As shown, as a preferred embodiment of the present invention, a waterproof cylinder 13 is fixedly installed on the vertical pipe 5, and the waterproof cylinder 13 is in contact with the bottom plate of the sewage pool 1. The opening and closing component 8, the ratchet component 9 and the transmission component 12 are all located in the waterproof cylinder 13, and the aeration pipe 6, the sleeve 7 and the rotating rod 10 all pass through the waterproof cylinder 13.
[0031] In actual application of this embodiment, the waterproof cylinder 13 can be provided to protect the components of the opening and closing assembly 8, the ratchet assembly 9 and the transmission assembly 12 to avoid direct contact with the deposited activated sludge, and the waterproof cylinder 13 and the bottom plate of the sewage pool 1 can be dynamically sealed to prevent water from entering the waterproof cylinder 13.
[0032] like Figure 1 As shown, as a preferred embodiment of the present invention, the air supply component 3 includes a central box 301 and an air storage box 302. The central box 301 is fixedly installed on the outer wall of the sewage pool 1, and its air outlet end is connected to the air inlet end of the exhaust fan 2. Multiple air storage boxes 302 are fixedly installed on the outer wall of the sewage pool 1, and the air outlet end of each air storage box 302 is connected to the central box 301. Multiple air storage boxes 302 are used to transport different gases to the water in the sewage pool 1. A detection component connected to the central box 301 is arranged on the outer wall of the sewage pool 1.
[0033] In actual application of this embodiment, the water body in the sewage pool 1 is detected according to the detection component. According to the detection result, the concentration box 301 can obtain the specific gas type required, control the opening of the gas storage box 302 for conveying the corresponding gas, and convey the corresponding gas to the concentration box 301, and the exhaust fan 2 will convey the gas in the concentration box 301 to the gas pipe 4, and finally aerate the most suitable gas into the water body of the sewage pool 1, so that the water body can be treated in a targeted manner.
[0034] like Figure 1 As shown, as a preferred embodiment of the present invention, the detection component includes a detection box 14, a water pump 15 and a return pipe 16. The detection box 14 is fixedly installed on the outer wall of the sewage pool 1, and has two chambers therein. A dissolved oxygen detection component 1401 is provided in one chamber, and a pH detection component 1402 is provided in the other chamber. The dissolved oxygen detection component 1401 and the pH detection component 1402 are both connected to the central box 301. The water inlet end of the water pump 15 is connected to the sewage pool 1, and the water outlet end of the water pump 15 is connected to the two chambers respectively through the first water pipe 1501 and the second water pipe 1502. The return pipe 16 connects the two chambers with the sewage pool 1.
[0035] In one case of this embodiment, the dissolved oxygen detection component 1401 includes a dissolved oxygen detector, a dissolved oxygen detection probe and other components, and the pH detection component 1402 includes a pH detector, a pH detection probe and other components. It should be noted that the above components and the detection box 14 are all prior arts, and the present invention does not improve them. Therefore, there is no need to disclose their specific mechanical structure and circuit structure, which does not affect the integrity of the present invention.
[0036] In actual application of this embodiment, the sewage in the sewage pool 1 is pumped into the two chambers of the detection box 14 by the water pump 15, and then the dissolved oxygen detection component 1401 and the pH detection component 1402 are used to detect the dissolved oxygen and pH value in the sewage respectively. The concentration of the gas to be aerated is determined according to the detected dissolved oxygen, and the pH value of the gas to be aerated is determined according to the detected pH value. This can provide a better living environment for the growth of microorganisms, effectively treat sewage, and provide different concentrations of oxygen for black and smelly water bodies, thereby increasing the dissolved oxygen content of the water body.
[0037] like Figure 1 As shown, the present invention also provides a solar-powered aeration and oxygenation system, which includes a solar-powered aeration and oxygenation device as described in any one of claims 1-8, and the system also includes a solar power generation panel 21, a battery 17, an inverter 18, a PC-side control component 19, a host computer 20, and a battery 17 electrically connected.
[0038] In one case of this embodiment, it should be noted that the solar panel 21, battery 17, inverter 18, PC-side control component 19 and host computer 20 described in the present invention are prior arts, and the present invention does not improve them. Therefore, there is no need to disclose their specific mechanical structure and circuit structure, which does not affect the integrity of the present invention.
[0039] The above is a detailed description of an embodiment of the present invention, but the content is only a preferred embodiment of the present invention and cannot be considered to limit the scope of implementation of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent coverage of the present invention.
Claims
1. A solar powered aeration and oxygenation device, characterized in that: include: A sewage pool (1) has an exhaust fan (2) fixedly mounted on its outer wall, the exhaust fan (2) having an air inlet connected to an air supply assembly (3) and an air outlet connected to an air supply pipe (4), the air supply pipe (4) extending to the bottom of the sewage pool (1); A standpipe (5) is rotatably mounted on the bottom plate of the sewage pool (1) and is driven to rotate by a driving source. The air inlet end of the standpipe (5) penetrates the sewage pool (1) and extends into the air supply pipe (4), and the connection between the end and the air supply pipe (4) is dynamically sealed. The standpipe (5) is connected to an aeration pipe (6), and the aeration pipe (6) is provided with a plurality of aeration holes (601) arranged at equal intervals, and the axis thereof is perpendicular to the axis of the standpipe (5). The standpipe (5) is provided with an opening and closing assembly (8); The sleeve (7) is rotatably mounted on the outer wall of the aeration pipe (6), and is provided with a plurality of openings (701) arranged at equal intervals, wherein the plurality of openings (701) correspond one to one with the plurality of aeration holes (601). The sleeve (7) is driven to rotate by a ratchet assembly (9). When the ratchet assembly (9) drives the sleeve (7) to rotate so that the openings (701) are aligned with the aeration holes (601), the gas in the aeration pipe (6) is sequentially discharged through the aeration pipe (6). The hole (601) and the opening (701) enter the water body. When the ratchet assembly (9) drives the sleeve (7) to rotate so that the opening (701) and the aeration hole (601) are misaligned, the sleeve (7) blocks the aeration hole (601). When the driving source drives the riser (5) to rotate clockwise, the opening and closing assembly (8) drives the sleeve (7) to rotate through the ratchet assembly (9). When the driving source drives the riser (5) to rotate counterclockwise, the sleeve (7) is stationary.
2. A solar powered aeration and oxygenation device according to claim 1, characterized in that: The opening and closing assembly (8) comprises a vertical cylinder (801), a tooth block (802) and a first gear (803); the vertical cylinder (801) is sleeved on the vertical pipe (5), and the vertical cylinder (801) is fixedly connected to the bottom plate of the sewage tank (1); a plurality of tooth blocks (802) are fixedly installed on the top of the vertical cylinder (801), and the plurality of tooth blocks (802) are arranged circumferentially; the first gear (803) is sleeved on the aeration pipe (6), meshes with the tooth block (802), and is connected to the ratchet assembly (9); when the vertical pipe (5) rotates clockwise, the first gear (803) rotates clockwise synchronously, and at this time, the first gear (803) drives the sleeve (7) to rotate through the ratchet assembly (9); when the vertical pipe (5) rotates counterclockwise, the first gear (803) rotates counterclockwise synchronously, and at this time, the sleeve (7) is stationary.
3. A solar powered aeration and oxygenation device according to claim 2, characterized in that: The ratchet assembly (9) comprises an outer wheel (901), an inner wheel (902), an inner ratchet (903) and a ratchet pawl (904); the outer wheel (901) and the inner wheel (902) are both located between the first gear (803) and the aeration pipe (6); the outer wheel (901) is sleeved on the inner wheel (902) and fixedly mounted coaxially with the first gear (803); one side of the inner wheel (902) is fixedly mounted on a sleeve (7); the inner ratchet (903) is disposed on the inner wall of the outer wheel (901); a plurality of ratchet pawls (904) are rotatably mounted on the inner wheel (902); and when the first gear (803) rotates clockwise, the inner wheel (902) engages with the ratchet pawl (904); and when the first gear (803) rotates counterclockwise, the inner wheel (902) and the ratchet pawl (904) are slidably engaged.
4. A solar powered aeration and oxygenation device according to claim 3, characterized in that: A bracket (602) is fixedly mounted on one end of the aeration pipe (6) away from the vertical pipe (5); a rotating rod (10) is rotatably mounted on the bracket (602); a plurality of stirring blades (11) arranged at equal intervals are fixedly mounted on the rotating rod (10); each stirring blade (11) corresponds to an aeration hole (601); and the rotating rod (10) is driven to rotate by a transmission assembly (12).
5. A solar powered aeration and oxygenation device according to claim 4, characterized in that: The transmission assembly (12) comprises a collar (1201), a transmission gear (1202) and a second gear (1203); the collar (1201) is sleeved on the sleeve (7) and is coaxially fixedly connected to the outer wheel (901); the transmission gear (1202) is coaxially fixedly connected to the collar (1201); and the second gear (1203) is coaxially fixedly connected to the rotating rod (10) and is meshed with the transmission gear (1202).
6. A solar powered aeration and oxygenation device according to claim 5, characterized in that: A waterproof cylinder (13) is fixedly mounted on the vertical pipe (5), the waterproof cylinder (13) is in contact with the bottom plate of the sewage pool (1), the opening and closing assembly (8), the ratchet assembly (9) and the transmission assembly (12) are all located in the waterproof cylinder (13), and the aeration pipe (6), the sleeve (7) and the rotating rod (10) all pass through the waterproof cylinder (13).
7. A solar powered aeration and oxygenation device according to claim 1, characterized in that: The gas supply assembly (3) comprises a centralizing box (301) and a gas storage box (302); the centralizing box (301) is fixedly mounted on the outer wall of the sewage pool (1); its gas outlet end is connected to the gas inlet end of the exhaust fan (2); a plurality of gas storage boxes (302) are fixedly mounted on the outer wall of the sewage pool (1); the gas outlet end of each gas storage box (302) is connected to the centralizing box (301); the plurality of gas storage boxes (302) are used to transport different gases to the water body in the sewage pool (1); and a detection assembly connected to the centralizing box (301) is arranged on the outer wall of the sewage pool (1).
8. A solar powered aeration and oxygenation device according to claim 7, characterized in that: The detection component comprises a detection box (14), a water pump (15) and a return pipe (16). The detection box (14) is fixedly mounted on the outer wall of the sewage pool (1) and has two chambers therein. A dissolved oxygen detection component (1401) is arranged in one chamber, and a pH detection component (1402) is arranged in the other chamber. The dissolved oxygen detection component (1401) and the pH detection component (1402) are both connected to a central box (301). The water inlet end of the water pump (15) is connected to the sewage pool (1). The water outlet end of the water pump (15) is connected to the two chambers via a first water delivery pipe (1501) and a second water delivery pipe (1502), respectively. The return pipe (16) connects the two chambers to the sewage pool (1).
9. A solar powered aeration and oxygenation system, characterized in that: It comprises a solar-powered aeration and oxygenation device as claimed in any one of claims 1 to 8, wherein the system further comprises a solar power generation panel (21), a battery (17), an inverter (18), a PC-side control component (19), a host computer (20), and a battery (17) which are electrically connected.
Citation Information
Patent Citations
Rotatable aerator
CN118637748A
Biological aerated filter device for upgrading and reconstruction of municipal sewage
CN215627041U
Solar photovoltaic integrated sewage treatment equipment
CN217351078U
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