A dynamic electrolysis sewage treatment device
By setting a rotating shaft and a dynamic electrolytic mechanism in the electrolytic chamber of the sewage treatment device, the anode plate and cathode plate on the electrolytic column can be continuously in contact with the sewage, which solves the problem of low sewage treatment efficiency due to the fixation of the electrode plate in the existing device, and achieves more efficient sewage treatment and convenient device operation.
Patent Information
- Application Number
- CN202411735152.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2044-11-29
AI Technical Summary
Due to the fixed electrode plate setting of the existing electrolytic sewage treatment device, the sewage cannot be fully in contact with the electrode plate, and some pollutants cannot be effectively redox, reducing treatment efficiency.
A dynamic electrolytic sewage treatment device is designed. By setting a rotating shaft and a dynamic electrolytic mechanism in the electrolytic chamber, the anode plate and cathode plate on the electrolytic column can continuously contact the sewage, thereby improving the electrolytic efficiency.
Through the design of the dynamic electrolytic mechanism, the electrolytic efficiency of the sewage treatment device is improved, the redox reaction of pollutants is enhanced, the effect of sewage treatment is improved, and the convenience of the device is improved.
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Figure CN119285045B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of sewage treatment, and in particular relates to a dynamic electrolysis type sewage treatment device. Background Art
[0002] Sewage treatment is mainly to completely mineralize the pollutants in the sewage. The mineralization of pollutants mainly refers to oxidation and electrolysis and their associated processes. Existing electrolytic sewage treatment devices usually set electrode plates in the sewage treatment tank. When the sewage passes through the electrode plates, redox reactions occur, thereby mineralizing and settling the harmful substances in the sewage.
[0003] After searching, in the prior art, Chinese patent announcement number: CN116514235B, announcement date: 2023.09.22, discloses an electrolysis device for sewage treatment, which relates to the technical field of sewage treatment, and includes a box body, a driving member, a separator, a connecting component and an electrolysis component; the box body is arranged vertically, and the box body includes an electrolysis box, a transfer box, a sewage tank and a sludge box connected in sequence from top to bottom; one side of the electrolysis box is connected with an inlet pipe; one side of the sewage tank is connected with an outlet pipe, and a water filter plate is arranged at one end of the outlet pipe; the bottom end of the sludge box is connected with a drain pipe, and a butterfly valve is installed on the drain pipe; the driving member is used to drive the separator to move in the vertical direction in the transfer box, the sewage tank and the sludge tank; a drain hole is opened on the separator; the connecting component is used to make the sewage below the separator flow to the top of the separator through the drain hole; the electrolysis component is used to mineralize harmful substances in the sewage into sludge. This application has the effect of enabling the sludge to be discharged separately.
[0004] But the device still has the following defects:
[0005] When the existing electrolytic sewage treatment device is working, the electrode plates are fixed, resulting in that the sewage cannot fully contact the electrode plates, making it impossible for some pollutants to effectively undergo oxidation-reduction reactions, thereby reducing the working efficiency of the sewage treatment device. Summary of the invention
[0006] In view of the above problems, the present invention provides a dynamic electrolysis type sewage treatment device, comprising a sewage treatment device body, wherein an electrolysis chamber is arranged in the sewage treatment device body; the electrolysis chamber has a circular top view cross section; a rotating shaft is arranged in the electrolysis chamber; and a plurality of groups of dynamic electrolysis mechanisms are arranged in a circular array on the outer wall of the rotating shaft;
[0007] The dynamic electrolysis mechanism comprises a mounting frame; a plurality of groups of electrolytic columns are arranged at equal intervals in the mounting frame; each group of electrolytic columns is in the shape of a rounded triangular prism;
[0008] A group of cathode plates is provided on one side wall of each group of electrolytic columns perpendicular to the outer wall of the rotating shaft; a group of anode plates is provided on the other two side walls of each group of electrolytic columns;
[0009] By controlling the rotating shaft, several groups of electrolytic columns are driven to rotate in the sewage, so that the two groups of anode plates and cathode plates on the electrolytic columns can continuously contact new sewage.
[0010] Furthermore, an electric slide is provided on the inner wall of one side of the installation frame close to the rotating shaft; a cleaning plate is transmission-connected to the output end of the electric slide; and the cleaning plate is movably sleeved on the outer walls of several groups of electrolytic columns.
[0011] Furthermore, a conductive slip ring is provided on the outer wall of the rotating shaft; the conductive slip ring is electrically connected to a plurality of groups of dynamic electrolysis mechanisms; a separation chamber is provided below the electrolysis chamber; a separation mechanism is provided on the top of the separation chamber; the separation mechanism is communicated with the electrolysis chamber; a pollution collecting mechanism is movably penetrated through one side wall of the sewage treatment device body; the pollution collecting mechanism is communicated with the separation mechanism; a drain pipe is provided on one side wall of the sewage treatment device body; the drain pipe is communicated with the separation chamber.
[0012] Furthermore, a storage groove is provided at the bottom of the sewage treatment device body; a support plate is connected to the storage groove in a damping sliding manner along the vertical direction; a plurality of groups of universal wheels are provided at the bottom edge of the support plate; a plurality of groups of sliding cavities are provided in the support plate; a movable baffle is slidably connected to each group of the sliding cavities; and two groups of movable holes are symmetrically provided on the top and bottom inner walls of each group of the sliding cavities.
[0013] Furthermore, the bottom of the support plate is provided with several groups of first electric slides with the same number as the sliding cavities; the output end of each group of the first electric slides is transmission connected with a corresponding group of movable baffles; each group of the movable baffles can movably close the corresponding two groups of movable holes; several groups of first electric push rods with the same number as the movable baffles are provided at the top edge of the storage groove; the output end of each group of the first electric push rods is transmission connected with a group of pads; each group of the pads can movably pass through the corresponding two groups of movable holes.
[0014] Furthermore, the sewage collecting mechanism includes a mounting plate; a handle is provided on a side wall of the mounting plate away from the electrolysis chamber; a knob is provided on a side wall of the mounting plate away from the electrolysis chamber; a sewage collecting pipe is provided on a side wall of the mounting plate close to the electrolysis chamber; and a plurality of groups of first drainage holes are evenly distributed on the outer wall of the sewage collecting pipe.
[0015] Furthermore, a sewage collecting chamber is provided in the sewage collecting pipe; a threaded rod is provided in the sewage collecting chamber; the threaded rod is transmission-connected to the knob; a compression plate is slidingly connected in the sewage collecting chamber along the horizontal direction; a plurality of groups of elastic plates are distributed in a circular array on a side wall of the compression plate close to the mounting plate; a connecting block is rotatably connected to the end of the threaded rod away from the mounting plate.
[0016] Furthermore, the end of the connecting block close to the threaded rod is circular, and the end away from the threaded rod is rectangular; a first magnet is provided on a side wall of the connecting block close to the threaded rod; two groups of limit plates are symmetrically provided on the outer wall of one end of the threaded rod close to the connecting block; second magnets are provided on the opposite ends of the two groups of limit plates; and the first magnet is located between the two groups of second magnets.
[0017] Furthermore, the separation mechanism includes a separation tube; the separation tube is connected to the sewage collecting pipe; a motor box is provided at one end of the separation tube away from the sewage collecting mechanism; a sewage discharge groove is provided at the top of the separation tube; a rotating column is provided in the separation tube; and the rotating column is transmission-connected to the output end of the motor box.
[0018] Furthermore, a spiral pushing blade is provided on the outer wall of the rotating column; a connecting groove is provided at one end of the rotating column close to the sewage collecting mechanism; the connecting block is movably inserted into the connecting groove; a plurality of groups of second drainage holes are evenly distributed on the outer wall of the separation tube; and a sealing plate is provided on the inner wall of one side of the sewage drainage groove.
[0019] The beneficial effects of the present invention are:
[0020] 1. By controlling the rotating shaft, several groups of dynamic electrolysis mechanisms are driven to rotate. Since there are gaps between several groups of electrolytic columns and the electrolytic columns are in the shape of rounded triangular prisms, the dynamic electrolysis mechanism has a lower disturbance to the water, so that the rotation speed of several groups of electrolytic columns is greater than the rotation speed of sewage, so that the two groups of anode plates on the electrolytic columns can continuously contact and electrolyze new sewage, thereby improving the electrolysis efficiency. At the same time, since the dynamic motor mechanism can drive the sewage to rotate at a corresponding speed, the centripetal force is used to quickly concentrate the precipitated pollutants in the center of the sewage to facilitate subsequent separation and treatment work, thereby improving the working efficiency of the sewage treatment device and the use effect.
[0021] 2. As the connecting block is movable and penetrates into the connecting groove, the rotating column will drive the threaded rod to rotate. Under the threaded connection relationship between the threaded rod and the compression plate, the compression plate slowly moves toward the side away from the separation mechanism. As the pushing speed of the spiral pushing blade is greater than the moving speed of the compression plate, the impurities will be squeezed and dehydrated quickly. After the separation work is completed, when the threaded rod is controlled to rotate in the opposite direction, the impurities can be quickly discharged from the sewage collecting chamber, thereby improving the pollutant treatment effect of the sewage treatment device.
[0022] 3. By controlling the sealing plate to open, water and impurities enter the separation tube through the drainage groove, and then the water enters the separation chamber through several groups of second drainage holes evenly distributed. At the same time, the rotating column drives the spiral push blades to rotate and push the impurities toward the sewage collection mechanism, so that the impurities can quickly enter the sewage collection mechanism for collection, thereby improving the sewage and water separation efficiency of the treatment device.
[0023] 4. By controlling several groups of movable baffles to block or unblock the corresponding two groups of movable holes, when the first electric push rod drives the corresponding pad to descend, the pad can be made to contact the top of the movable baffle so that the support plate can drive several groups of universal wheels to contact the ground to move the treatment device, or the pad can be made to descend and contact the ground after passing through the corresponding movable hole to freely adjust the height of the sewage treatment device, thereby improving the convenience of using the sewage treatment device.
[0024] Other features and advantages of the present invention will be described in the following description, and partly become apparent from the description, or understood by practicing the present invention. The purpose and other advantages of the present invention can be realized and obtained by the structures pointed out in the description, claims and drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the 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 creative work.
[0026] Figure 1 A schematic structural diagram of a sewage treatment device according to an embodiment of the present invention is shown;
[0027] Figure 2 A schematic cross-sectional view of a sewage treatment device according to an embodiment of the present invention is shown;
[0028] Figure 3 A bottom view structural schematic diagram of a support plate according to an embodiment of the present invention is shown;
[0029] Figure 4 A bottom cross-sectional schematic diagram of a support plate according to an embodiment of the present invention is shown;
[0030] Figure 5 A schematic structural diagram of a dirt collection mechanism according to an embodiment of the present invention is shown;
[0031] Figure 6 A cross-sectional schematic diagram of a dirt collection mechanism according to an embodiment of the present invention is shown;
[0032] Figure 7 The embodiment of the present invention is shown Figure 8 A magnified schematic diagram of
[0033] Figure 8 A schematic structural diagram of a dynamic electrolysis mechanism according to an embodiment of the present invention is shown;
[0034] Fig. 9 A schematic top view of a cross-sectional view of an electrolytic column according to an embodiment of the present invention is shown;
[0035] Fig.10 A schematic structural diagram of a separation mechanism according to an embodiment of the present invention is shown;
[0036] Fig.11 A left side cross-sectional schematic diagram of a separation mechanism according to an embodiment of the present invention is shown.
[0037] In the figure: 1, treatment device body; 2, handrail; 3, top cover; 4, motor; 5, water injection pipe; 6, drainage pipe; 7, sewage collection mechanism; 8, electrolysis chamber; 9, rotating shaft; 10, conductive slip ring; 11, dynamic electrolysis mechanism; 12, separation chamber; 13, separation mechanism; 14, storage slot; 15, support plate; 16, universal wheel; 17, first electric push rod; 18, pad; 19, first electric slide; 20, movable hole; 21, sliding cavity; 22, movable baffle; 701, mounting plate; 702, handle; 703, knob; 704, sewage collection pipe; 705, first drainage hole; 706, sewage collecting chamber; 707, threaded rod; 708, compression plate; 709, elastic plate; 710, connecting block; 711, first magnet; 712, limit plate; 713, second magnet; 1101, mounting frame; 1102, electrolytic column; 1103, electric slide; 1104, cleaning plate; 1105, cathode plate; 1106, anode plate; 1301, separation tube; 1302, motor box; 1303, sewage discharge channel; 1304, rotating column; 1305, spiral push blade; 1306, connecting groove; 1307, second drainage hole; 1308, sealing plate. DETAILED DESCRIPTION
[0038] In order to make the purpose, technical solution and advantages of the embodiments of the present invention clearer, the technical solution in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are 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.
[0039] The embodiment of the present invention provides a dynamic electrolysis type sewage treatment device, including a sewage treatment device body 1. For example, Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, two groups of handrails 2 are symmetrically provided on the two side walls of the sewage treatment device body 1; an electrolysis chamber 8 is provided in the sewage treatment device body 1; the top cross-section of the electrolysis chamber 8 is circular; a top cover 3 is provided on the top of the electrolysis chamber 8; a rotating shaft 9 is provided in the electrolysis chamber 8; a plurality of groups of dynamic electrolysis mechanisms 11 are distributed in a ring array on the outer wall of the rotating shaft 9; a conductive slip ring 10 is provided on the outer wall of the rotating shaft 9; the conductive slip ring 10 is electrically connected to the plurality of groups of dynamic electrolysis mechanisms 11; a motor 4 is provided at the top center of the top cover 3; the output end of the motor 4 extends into the electrolysis chamber 8 and is transmission-connected to the rotating shaft 9; a water injection pipe 5 is provided on the top of the top cover 3; the water injection pipe 5 is communicated with the electrolysis chamber 8.
[0040] Specifically, a separation chamber 12 is provided below the electrolysis chamber 8; a separation mechanism 13 is provided on the top of the separation chamber 12; the separation mechanism 13 is communicated with the electrolysis chamber 8; a pollution collecting mechanism 7 is movably penetrated through one side wall of the sewage treatment device body 1; the pollution collecting mechanism 7 is communicated with the separation mechanism 13; a drain pipe 6 is provided on one side wall of the sewage treatment device body 1; the drain pipe 6 is communicated with the separation chamber 12.
[0041] Specifically, a receiving groove 14 is provided at the bottom of the sewage treatment device body 1; a support plate 15 is connected to the receiving groove 14 in a vertical damping sliding manner; a plurality of universal wheels 16 are provided at the bottom edge of the support plate 15; a plurality of sliding cavities 21 are provided in the support plate 15; a movable baffle 22 is slidably connected in each group of the sliding cavities 21; two groups of movable holes 20 are symmetrically provided on the top and bottom inner walls of each group of the sliding cavities 21; a plurality of groups of sliding cavities 21 are provided at the bottom of the support plate 15 1, the first electric slides 19 are of the same number; the output end of each group of the first electric slides 19 is transmission-connected with a corresponding group of movable baffles 22; each group of the movable baffles 22 can movably close the corresponding two groups of movable holes 20; a plurality of groups of first electric push rods 17 of the same number as the movable baffles 22 are provided at the top edge of the storage slot 14; a group of pads 18 are transmission-connected to the output end of each group of the first electric push rods 17; each group of the pads 18 can movably penetrate the corresponding two groups of movable holes 20.
[0042] Before the sewage treatment device is used, several groups of first electric push rods 17 can be controlled to drive several groups of pads 18 to descend. After passing through the corresponding movable holes 20, the several groups of pads 18 can contact the ground and lift the sewage treatment device body 1 to achieve height adjustment of the sewage treatment device. When the sewage treatment device needs to be moved, several groups of first electric push rods 17 can be controlled to drive several groups of pads 18 to rise above the support plate 15, and then several groups of first electric slides 19 can be controlled to drive the movable baffles 22 to block the corresponding movable holes 20, and then several groups of first electric push rods 17 can be controlled to drive several groups of pads 18 to descend and contact the movable baffles 22, so that the support plate 15 drives several groups of universal wheels 16 to descend and contact the ground and lift the sewage treatment device body 1. At this time, the sewage treatment device can be directly moved, which improves the convenience of using the sewage treatment device.
[0043] When the sewage treatment device is used, the sewage is injected into the electrolysis chamber 8 through the water injection pipe 5, and then the motor 4 is controlled to drive the rotating shaft 9 to rotate, and the rotating shaft 9 drives a plurality of groups of dynamic electrolysis mechanisms 11 to rotate, and the sewage is electrolyzed to oxidize and reduce the pollutants in the sewage. During the rotation of the plurality of groups of dynamic electrolysis mechanisms 11, the sewage can fully contact the dynamic electrolysis mechanisms 11, thereby improving the oxidation-reduction efficiency of the pollutants. When the electrolysis of the sewage is completed, the separation mechanism 13 separates the electrolyzed impurities from the water and transfers the impurities to the pollution collection mechanism 7, and the water enters the separation chamber 12.
[0044] For example, Figure 5 , Figure 6 and Figure 7 As shown, the sewage collecting mechanism 7 comprises a mounting plate 701; a handle 702 is provided on one side wall of the mounting plate 701 away from the electrolysis chamber 8; a knob 703 is provided on one side wall of the mounting plate 701 away from the electrolysis chamber 8; a sewage collecting pipe 704 is provided on one side wall of the mounting plate 701 close to the electrolysis chamber 8; a plurality of groups of first drainage holes 705 are evenly distributed on the outer wall of the sewage collecting pipe 704; a sewage collecting cavity 706 is provided in the sewage collecting pipe 704; a threaded rod 707 is provided in the sewage collecting cavity 706; the threaded rod 707 is transmission-connected to the knob 703;
[0045] Specifically, a compression plate 708 is slidably connected in the horizontal direction in the dirt collecting chamber 706; a plurality of groups of elastic plates 709 are distributed in a ring array on a side wall of the compression plate 708 close to the mounting plate 701; a connecting block 710 is rotatably connected to the end of the threaded rod 707 away from the mounting plate 701; the end of the connecting block 710 close to the threaded rod 707 is circular, and the end away from the threaded rod 707 is rectangular; a first magnet 711 is provided on a side wall of the connecting block 710 close to the threaded rod 707; two groups of limiting plates 712 are symmetrically provided on the outer wall of one end of the threaded rod 707 close to the connecting block 710; second magnets 713 are provided on the opposite ends of the two groups of limiting plates 712; the first magnet 711 is located between the two groups of second magnets 713.
[0046] For example, Fig.10 and Fig.11 As shown, the separation mechanism 13 includes a separation tube 1301; the separation tube 1301 is connected with the sewage collecting pipe 704; a motor box 1302 is provided at the end of the separation tube 1301 away from the sewage collecting mechanism 7; a sewage discharge groove 1303 is provided at the top of the separation tube 1301; a rotating column 1304 is provided in the separation tube 1301; the rotating column 1304 is transmission-connected with the output end of the motor box 1302; a spiral pushing blade 1305 is provided on the outer wall of the rotating column 1304; a connecting groove 1306 is provided at the end of the rotating column 1304 close to the sewage collecting mechanism 7; the connecting block 710 is movably inserted into the connecting groove 1306; a plurality of groups of second drainage holes 1307 are evenly distributed on the outer wall of the separation tube 1301; a sealing plate 1308 is provided on the inner wall of one side of the sewage discharge groove 1303.
[0047] After the electrolysis work is completed, the pollutants in the sewage are oxidized and reduced to impurities suspended in the water during the electrolysis process, and then the sealing plate 1308 is controlled to open, so that water and impurities enter the separation tube through the sewage discharge groove 1303, and then the water enters the separation chamber 12 through a number of groups of second drainage holes 1307 that are evenly distributed. At the same time, the rotating column 1304 drives the spiral pushing blade 1305 to rotate and push the impurities to move toward the sewage collection mechanism 7. Since the connecting block 710 is movable and penetrates into the connecting groove 1306, the rotating column 1304 will drive the threaded rod 707 to rotate Under the threaded connection relationship between the threaded rod 707 and the compression plate 708, the compression plate 708 slowly moves toward the side away from the separation mechanism 13. Since the pushing speed of the spiral pushing blade 1305 is greater than the moving speed of the compression plate 708, the impurities will be squeezed and dehydrated quickly. When the compression plate 708 moves to the boundary, several groups of elastic plates 709 are squeezed and the compression plate 708 releases the threaded connection with the threaded rod 707, which will not affect the continuous rotation of the rotating column 1304, thereby improving the separation efficiency of the impurities and water in the treatment device.
[0048] After the separation work is completed, the dirt collecting mechanism 7 is pulled out from the separation chamber 12. At this time, the elastic plate 709 is squeezed and the compression plate 708 is applied with corresponding pressure. When the personnel twists the knob 703 to drive the threaded rod 707 to rotate, the compression plate 708 is threadedly connected with the threaded rod 707 and moves, and the impurities are quickly discharged from the dirt collecting chamber 706, thereby improving the collection efficiency of the impurities. Since the two ends of the first magnet 711 are respectively different from the magnetic poles of a group of second magnets 713, the first magnet 711 is always in the middle of the two groups of second magnets 713 before the connection block 710 is connected to the connection groove 1306, and since the shape of the connection block 710 is a table-like structure with a round bottom and a square top, the connection groove 1306 can always adapt to the connection groove 1306 by rotating to both sides, and then when the rotating column 1304 rotates, the threaded rod 707 can be driven to rotate by the restriction of the limit plates 712 on both sides of the threaded rod 707.
[0049] For example, Figure 8 and Fig. 9 As shown, the dynamic electrolysis mechanism 11 includes a mounting frame 1101; a plurality of groups of electrolytic columns 1102 are arranged at equal intervals in the mounting frame 1101; an electric slide 1103 is arranged on the inner wall of the mounting frame 1101 close to the rotating shaft 9; a cleaning plate 1104 is transmission-connected to the output end of the electric slide 1103; the cleaning plate 1104 is movably sleeved on the outer walls of a plurality of groups of electrolytic columns 1102; each group of the electrolytic columns 1102 is in the shape of a rounded triangular prism; a group of cathode plates 1105 is arranged on one side wall of each group of the electrolytic columns 1102 perpendicular to the outer wall of the rotating shaft 9; a group of anode plates 1106 are respectively arranged on the other two side walls of each group of the electrolytic columns 1102.
[0050] When the sewage is electrolyzed, the motor 4 drives several groups of dynamic electrolysis mechanisms 11 to rotate through the rotating shaft 9. Since there are gaps between the several groups of electrolysis columns 1102 and the electrolysis columns 1102 are in the shape of rounded triangular prisms, the dynamic electrolysis mechanisms 11 cause less disturbance to the water, so that the rotation speed of the several groups of electrolysis columns 1102 is greater than the rotation speed of the sewage, so that the two groups of anode plates 1106 on the electrolysis columns 1102 can continuously contact and electrolyze new sewage, thereby improving the electrolysis efficiency. In addition, due to the improvement in the electrolysis efficiency, the oxidation rate of pollutants is accelerated, which speeds up the precipitation rate. At this time, the electric slide 1103 can be used to drive the cleaning plate 1104 to move in the vertical direction to clean the pollutants attached to the surfaces of the anode plate 1106 and the cathode plate 1105 to avoid affecting the electrolysis efficiency. At the same time, since the dynamic motor mechanism 11 can drive the sewage to rotate at a corresponding speed, the centripetal force is used to quickly concentrate the precipitated pollutants at the center of the sewage to facilitate subsequent separation and treatment work.
[0051] The rotating shaft 9 is controlled to drive several groups of dynamic electrolysis mechanisms 11 to rotate. Since there are gaps between the several groups of electrolysis columns 1102 and the electrolysis columns 1102 are in the shape of rounded triangular prisms, the dynamic electrolysis mechanisms 11 have less disturbance on the water, so that the rotation speed of the several groups of electrolysis columns 1102 is greater than the rotation speed of the sewage, so that the two groups of anode plates 1106 on the electrolysis columns 1102 can continuously contact and electrolyze new sewage, thereby improving the electrolysis efficiency. At the same time, since the dynamic motor mechanism 11 can drive the sewage to rotate at a corresponding speed, the centripetal force is used to quickly concentrate the precipitated pollutants in the center of the sewage to facilitate subsequent separation and treatment work, thereby improving the working efficiency of the sewage treatment device and the use effect.
[0052] By controlling the sealing plate 1308 to open, water and impurities enter the separation tube through the drainage groove 1303, and then the water enters the separation chamber 12 through a number of evenly distributed second drainage holes 1307. At the same time, the rotating column 1304 drives the spiral pushing blade 1305 to rotate and push the impurities toward the sewage collecting mechanism 7, so that the impurities can quickly enter the sewage collecting mechanism 7 for collection, thereby improving the sewage and water separation efficiency of the treatment device.
[0053] Since the connecting block 710 is movable and penetrates into the connecting groove 1306, the rotating column 1304 will drive the threaded rod 707 to rotate. Under the threaded connection relationship between the threaded rod 707 and the compression plate 708, the compression plate 708 slowly moves toward the side away from the separation mechanism 13. Since the pushing speed of the spiral pushing blade 1305 is greater than the moving speed of the compression plate 708, the impurities will be squeezed and dehydrated quickly. After the separation work is completed, when the threaded rod 707 is controlled to rotate in the opposite direction, the impurities can be quickly discharged from the sewage collecting chamber 706, thereby improving the pollutant treatment effect of the sewage treatment device.
[0054] By controlling a plurality of groups of movable baffles 22 to block or unblock the corresponding two groups of movable holes 20, when the first electric push rod 17 drives the corresponding pad 18 to descend, the pad 18 can be made to contact the top of the movable baffle 22, so that the support plate 15 can drive a plurality of groups of universal wheels 16 to contact the ground to move the treatment device, or the pad 18 can be made to descend and contact the ground after passing through the corresponding movable hole 20, so as to freely adjust the height of the sewage treatment device, thereby improving the convenience of use of the sewage treatment device.
[0055] Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent substitutions for some of the technical features therein; and these modifications or substitutions do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A dynamic electrolytic sewage treatment device, comprising a sewage treatment device body (1), characterized in that: An electrolysis chamber (8) is provided in the sewage treatment device body (1); the electrolysis chamber (8) has a circular cross-section when viewed from above; a rotating shaft (9) is provided in the electrolysis chamber (8); and a plurality of groups of dynamic electrolysis mechanisms (11) are arranged in a circular array on the outer wall of the rotating shaft (9); The dynamic electrolysis mechanism (11) comprises a mounting frame (1101); a plurality of groups of electrolysis columns (1102) are arranged at equal intervals in the mounting frame (1101); each group of electrolysis columns (1102) is in the shape of a rounded triangular prism; An electric slide (1103) is provided on the inner wall of one side of the installation frame (1101) close to the rotating shaft (9); a cleaning plate (1104) is drivingly connected to the output end of the electric slide (1103); the cleaning plate (1104) is movably sleeved on the outer walls of a plurality of groups of electrolytic columns (1102); A group of cathode plates (1105) is provided on one side wall of each group of electrolytic columns (1102); the surface of each group of cathode plates (1105) is perpendicular to the cross section of the intersection of the rotating shaft (9) and the mounting frame (1101); and a group of anode plates (1106) is provided on the other two side walls of each group of electrolytic columns (1102); A separation chamber (12) is provided below the electrolysis chamber (8); a separation mechanism (13) is provided on the top of the separation chamber (12); the separation mechanism (13) is in communication with the electrolysis chamber (8); a sewage collecting mechanism (7) is movably penetrated through a side wall of the sewage treatment device body (1); the sewage collecting mechanism (7) comprises a mounting plate (701); a sewage collecting pipe (704) is provided on a side wall of the mounting plate (701) close to the electrolysis chamber (8); a sewage collecting chamber (706) is provided in the sewage collecting pipe (704); a threaded rod (707) is provided in the sewage collecting chamber (706); a compression plate (708) is slidably connected in a horizontal direction in the sewage collecting chamber (706); an end of the threaded rod (707) away from the mounting plate (701) is rotatably connected to a connecting block (710); The separation mechanism (13) comprises a separation tube (1301); the separation tube (1301) is in communication with a sewage collecting tube (704); a rotating column (1304) is provided in the separation tube (1301); a spiral pushing blade (1305) is provided on the outer wall of the rotating column (1304); a connecting groove (1306) is provided at one end of the rotating column (1304) close to the sewage collecting mechanism (7); and the connecting block (710) is movably inserted into the connecting groove (1306); By controlling the rotating shaft (9), a plurality of groups of electrolytic columns (1102) are driven to rotate in the sewage, so that the two groups of anode plates (1106) and cathode plates (1105) on the electrolytic columns (1102) can continuously contact new sewage.
2. A dynamic electrolysis sewage treatment device according to claim 1, characterized in that: A conductive slip ring (10) is provided on the outer wall of the rotating shaft (9); the conductive slip ring (10) is electrically connected to a plurality of groups of dynamic electrolysis mechanisms (11); the sewage collecting mechanism (7) is in communication with the separation mechanism (13); a drainage pipe (6) is provided on a side wall of the sewage treatment device body (1); the drainage pipe (6) is in communication with the separation chamber (12).
3. A dynamic electrolysis sewage treatment device according to claim 2, characterized in that: A receiving groove (14) is provided at the bottom of the sewage treatment device body (1); a support plate (15) is connected to the receiving groove (14) in a damping sliding manner in a vertical direction; a plurality of groups of universal wheels (16) are provided at the bottom edge of the support plate (15); a plurality of groups of sliding cavities (21) are provided in the support plate (15); a movable baffle (22) is slidably connected to each group of the sliding cavities (21); and two groups of movable holes (20) are symmetrically provided on the top and bottom inner walls of each group of the sliding cavities (21).
4. A dynamic electrolysis sewage treatment device according to claim 3, characterized in that: The bottom of the support plate (15) is provided with a plurality of first electric slides (19) of the same number as the sliding cavity (21); the output end of each group of the first electric slides (19) is transmission-connected to a corresponding group of movable baffles (22); each group of the movable baffles (22) movably closes the corresponding two groups of movable holes (20); the top edge of the storage groove (14) is provided with a plurality of first electric push rods (17) of the same number as the movable baffles (22); the output end of each group of the first electric push rods (17) is transmission-connected to a group of pads (18); each group of the pads (18) movably penetrates the corresponding two groups of movable holes (20).
5. A dynamic electrolysis sewage treatment device according to claim 1, characterized in that: A handle (702) is provided on a side wall of the mounting plate (701) away from the electrolysis chamber (8); a knob (703) is provided on a side wall of the mounting plate (701) away from the electrolysis chamber (8); and a plurality of groups of first drainage holes (705) are evenly distributed on the outer wall of the sewage collecting pipe (704).
6. A dynamic electrolysis sewage treatment device according to claim 5, characterized in that: The threaded rod (707) is drivingly connected to the knob (703); a plurality of groups of elastic plates (709) are arranged in a circular array on a side wall of the compression plate (708) close to the mounting plate (701).
7. A dynamic electrolysis sewage treatment device according to claim 6, characterized in that: One end of the connecting block (710) close to the threaded rod (707) is circular, and the other end away from the threaded rod (707) is rectangular; a first magnet (711) is provided on a side wall of the connecting block (710) close to the threaded rod (707); two groups of limiting plates (712) are symmetrically provided on an outer wall of one end of the threaded rod (707) close to the connecting block (710); second magnets (713) are provided on opposite ends of the two groups of limiting plates (712); and the first magnet (711) is located between the two groups of second magnets (713).
8. A dynamic electrolysis sewage treatment device according to claim 1, characterized in that: A motor box (1302) is provided at one end of the separation tube (1301) away from the dirt collection mechanism (7); a dirt discharge slot (1303) is provided at the top of the separation tube (1301); and the rotating column (1304) is drivingly connected to the output end of the motor box (1302).
9. A dynamic electrolysis sewage treatment device according to claim 8, characterized in that: A plurality of groups of second drainage holes (1307) are evenly distributed on the outer wall of the separation tube (1301); and a sealing plate (1308) is provided on the inner wall of one side of the sewage discharge channel (1303).
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