Efficient papermaking wastewater treatment device
By designing a papermaking wastewater treatment device including a reaction treatment chamber, a filter chamber and a reservoir, and using a servo motor to drive the stirring rod and components such as sprockets, chains, bevel gears, etc. for the separation and reuse of catalysts, the problem of catalyst waste in the prior art is solved, and efficient wastewater treatment and reuse of catalysts are achieved.
Patent Information
- Application Number
- CN202411995824.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-05-30
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When existing papermaking wastewater treatment devices treat large amounts of sewage, they need to add more catalysts, resulting in waste of catalysts.
A device including a reaction treatment chamber, a filter chamber and a reservoir is designed, and the stirring rod is driven by a servo motor, and the catalyst is separated and reused using components such as sprockets, chains, bevel gears and reciprocating screws.
Through the design of the device, it is possible to effectively reduce the waste of catalyst, improve the processing efficiency, and make the device easier to use.
Smart Images

Figure CN120058012A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of papermaking wastewater treatment, and specifically to an efficient papermaking wastewater treatment device. Background Art
[0002] With the help of chemical flocculants, papermaking wastewater treatment equipment can reduce the suspended solids and toxic substances in sewage to the greatest extent. In the papermaking industry, this equipment can be used to treat white water of paper machines and terminal wastewater such as deinking wastewater. On the one hand, fibers can be recovered, and on the other hand, the treated sewage can be reused or discharged up to standard, thus greatly reducing the pressure on environmental protection.
[0003] Chinese Patent CN108101169B authorized and announced on March 30, 2021 discloses an industrial papermaking wastewater treatment device, which includes a machine frame, a first bevel gear, a first bearing, a first rotating shaft, a stirring tank, a second bearing, a second rotating shaft, a stirring rod, a first gear, a feed pipe, a feed valve, etc.; First bevel gears are symmetrically arranged on the left and right inside the machine frame. A first bearing is arranged between the two first bevel gears. The two first bearings are interference-connected with a first rotating shaft, and a stirring tank is arranged between the two first rotating shafts. In the above application document, a stirring rod is used to stir the sewage and catalyst in the reaction treatment chamber, so as to perform a certain degree of treatment operation. After the preliminary treatment is completed, the catalyst and the sewage after the treatment operation are separated. In the case of adding a large amount of sewage to the reaction treatment chamber for treatment in sequence, a large amount of catalyst often needs to be added, resulting in waste of the catalyst. Summary of the Invention
[0004] In view of the deficiencies of the prior art, the present invention provides an efficient papermaking wastewater treatment device, which solves the problems raised in the above background art. To achieve the above objectives, the present invention is realized through the following technical solutions: An efficient papermaking wastewater treatment device includes a support base, on the sides of which a reaction treatment chamber, a filtration chamber and a reservoir are respectively assembled. A servo motor is assembled on the top of the reaction treatment chamber, and a stirring rod is drivenly connected to the bottom of the servo motor. A sealable delivery pipe is assembled at the bottom of the reaction treatment chamber, and a filter plate is assembled inside the filtration chamber; A processing component is arranged inside the filtering bin. The processing component includes a fixed rod. A first sprocket is drivingly connected to the bottom of the servo motor. A chain is assembled on the outer side of the first sprocket. A second sprocket is rotatably connected to the bottom of the first sprocket. A first bevel gear is drivingly connected to the bottom of the second sprocket. A fixed seat is assembled on the side of the filtering bin. A reciprocating lead screw passing through is rotatably connected inside the fixed seat. A second bevel gear is fixedly connected to the side of the reciprocating lead screw. The second bevel gear meshes with the first bevel gear. A sliding block is assembled on the outer side of the reciprocating lead screw. A fixed block is fixedly connected to the side of the sliding block. A torsion spring block is rotatably connected to the side of the fixed block. A force-bearing plate and a cleaning brush are respectively fixedly connected to the outer side of the torsion spring block. An extrusion rod is fixedly connected to the inner wall of the filtering bin. Collection bins are respectively assembled on both sides of the filtering bin. When separating the treated sewage and the catalyst, in cooperation with the fixed rod, the first sprocket, the chain, the second sprocket, the first bevel gear, the fixed seat, the reciprocating lead screw, the second bevel gear, the sliding block, the fixed block, the torsion spring block, the cleaning brush, the force-bearing plate and the extrusion rod, the catalyst in the collection bin can be reused, and in this case, the waste of the catalyst is reduced.
[0005] Preferably, one end of the chain away from the first sprocket is assembled at the outer side position of the second sprocket.
[0006] Preferably, the sliding block is located inside the fixed seat and is in a sliding connection state with the fixed seat.
[0007] Preferably, stirring plates are assembled on the side of the stirring rod. A stirring component is arranged inside the reaction processing bin. The stirring component includes a first hydraulic chamber. A cam is drivingly connected to the bottom of the second sprocket. A force-bearing rod is slidably connected to one end of the first hydraulic chamber. A toothed ring is slidably connected to the other end of the first hydraulic chamber. A first spring is assembled on the side of the force-bearing rod. A gear and a rotating rod are respectively rotatably connected inside the stirring plate. A third bevel gear is drivingly connected to the bottom of the gear. A fourth bevel gear is drivingly connected to the side of the rotating rod. The fourth bevel gear meshes with the third bevel gear. A swinging plate is fixedly connected to the outer side of the rotating rod. When the second sprocket rotates, in cooperation with the first hydraulic chamber, the cam, the force-bearing rod, the toothed ring, the first spring, the gear, the third bevel gear, the rotating rod and the fourth bevel gear, the swinging plates on the stirring plate swing to a certain extent in turn, improving the stirring effect of the device and thus improving the processing efficiency of the device.
[0008] Preferably, when the stirring component is in an enabled state, the gear meshes with the toothed ring.
[0009] Preferably, the swinging plates are circumferentially arranged in an array with respect to the rotating rod.
[0010] Preferably, an anti-blocking component is arranged inside the conveying pipe. The anti-blocking component includes a second hydraulic chamber. A transmission rod is slidably connected to the bottom of the second hydraulic chamber. A connecting rod is assembled on the side of the transmission rod, and a dredging rod is fixedly connected to the side of the connecting rod. Since the second hydraulic chamber is communicated with the first hydraulic chamber, during the reciprocating movement of the force-bearing rod, the opened conveying pipe can be dredged to a certain extent in cooperation with the transmission rod, the connecting rod and the dredging rod, making the device easier to use.
[0011] Preferably, the second hydraulic chamber is assembled at the bottom of the first hydraulic chamber and is in a communicating state with the first hydraulic chamber.
[0012] The present invention provides an efficient papermaking wastewater treatment device, which has the following beneficial effects: (1) When separating the treated sewage and the catalyst in the efficient papermaking wastewater treatment device, in cooperation with the fixed rod, the first sprocket, the chain, the second sprocket, the first bevel gear, the fixed seat, the reciprocating lead screw, the second bevel gear, the sliding block, the fixed block, the torsion spring block, the cleaning brush, the force-bearing plate and the extrusion rod, the catalyst in the collection chamber can be reused, reducing the waste of the catalyst in this case.
[0013] (2) When the second sprocket rotates in the efficient papermaking wastewater treatment device, in cooperation with the first hydraulic chamber, the cam, the force-bearing rod, the toothed ring, the first spring, the gear, the third bevel gear, the rotating rod and the fourth bevel gear, the swing plates on the stirring plate swing to a certain extent in sequence, improving the stirring effect of the device and thus the treatment efficiency of the device.
[0014] (3) In the efficient papermaking wastewater treatment device, since the second hydraulic chamber is communicated with the first hydraulic chamber, during the reciprocating movement of the force-bearing rod, the opened conveying pipe can be dredged to a certain extent in cooperation with the transmission rod, the connecting rod and the dredging rod, making the device easier to use. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a three-dimensional structure diagram of the overall appearance of the present invention; Figure 2 is a three-dimensional sectional structure diagram of the overall of the present invention; Figure 3 is a three-dimensional structure diagram of the treatment component of the present invention; Figure 4 is a three-dimensional structure diagram of the treatment component of the present invention from another perspective; Figure 5 is for the present invention Figure 3 magnified structure diagram at A in; Figure 6 is for the present invention Figure 4 magnified structure diagram at B in; Figure 7 is a three-dimensional structural schematic diagram of the stirring assembly of the present invention; Figure 8 of the present invention Figure 7 is an enlarged structural schematic diagram at position C in; Figure 9 of the present invention Figure 7 is an enlarged structural schematic diagram at position D in; Figure 10 is a three-dimensional structural schematic diagram of the anti-blocking assembly of the present invention.
[0016] In the figure: 100, support base; 200, reaction processing chamber; 300, filtration chamber; 400, water storage tank; 500, servo motor; 600, stirring rod; 700, stirring plate; 800, delivery pipe; 900, filter plate; 1000, processing assembly; 1001, fixing rod; 1002, sprocket one; 1003, chain; 1004, sprocket two; 1005, bevel gear one; 1006, fixing seat; 1007, reciprocating lead screw; 1008, bevel gear two; 1009, sliding block; 1010, fixing block; 1011, torsion spring block; 1012, cleaning brush; 1013, stress plate; 1014, extrusion rod; 1015, collection bin; 1100, stirring assembly; 1101, hydraulic chamber one; 1102, cam; 1103, stress rod; 1104, tooth ring; 1105, spring one; 1106, gear; 1107, bevel gear three; 1108, rotating rod; 1109, bevel gear four; 1110, swinging plate; 1200, anti-blocking assembly; 1201, hydraulic chamber two; 1202, transmission rod; 1203, connecting rod; 1204, dredging rod. Detailed implementation manners
[0017] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Embodiment 1
[0018] Please refer to Figures 1 - 6, An efficient papermaking wastewater treatment device, including a support base 100. The sides of the support base 100 are respectively equipped with a reaction treatment chamber 200, a filtration chamber 300, and a water storage tank 400. The top of the reaction treatment chamber 200 is equipped with a servo motor 500, and the bottom of the servo motor 500 is drivingly connected to a stirring rod 600. The bottom of the reaction treatment chamber 200 is equipped with a sealable delivery pipe 800. The inside of the filtration chamber 300 is equipped with a filter plate 900. Add sewage, treatment agent, and catalyst into the reaction treatment chamber 200 in sequence. At this time, the delivery pipe 800 is in a sealed state. Then start the servo motor 500, which can drive the stirring rod 600 drivingly connected to it to rotate, and react and treat the sewage. Subsequently, open the delivery pipe 800 to separate the treated sewage and catalyst through the filter plate 900; A treatment component 1000 is arranged inside the filtration chamber 300. The treatment component 1000 includes a fixed rod 1001. The bottom of the servo motor 500 is drivingly connected to a first sprocket 1002. A chain 1003 is assembled outside the first sprocket 1002. The bottom of the first sprocket 1002 is rotatably connected to a second sprocket 1004. One end of the chain 1003 away from the first sprocket 1002 is assembled at the outside position of the second sprocket 1004. When separating the treated sewage and catalyst through the filter plate 900, the servo motor 500 synchronously drives the first sprocket 1002 drivingly connected to it to rotate, and cooperates with the chain 1003 assembled outside the first sprocket 1002, so that the second sprocket 1004 drivingly connected to the first sprocket 1002 through the chain 1003 rotates.
[0019] The bottom of the second sprocket 1004 is drivingly connected to a first bevel gear 1005. A fixed seat 1006 is assembled on the side of the filtration chamber 300. A through reciprocating lead screw 1007 is rotatably connected inside the fixed seat 1006. A second bevel gear 1008 is fixedly connected to the side of the reciprocating lead screw 1007. The second bevel gear 1008 meshes with the first bevel gear 1005. When the second sprocket 1004 rotates, it can drive the first bevel gear 1005 drivingly connected to it to rotate, so that the first bevel gear 1005 drives the second bevel gear 1008 meshing with it to rotate, and the second bevel gear 1008 drives the reciprocating lead screw 1007 fixedly connected to it to rotate.
[0020] A sliding block 1009 is assembled on the outer side of the reciprocating lead screw 1007. The sliding block 1009 is located inside the fixed seat 1006 and is in a sliding connection state with the fixed seat 1006. A fixed block 1010 is fixedly connected to the side surface of the sliding block 1009. A torsion spring block 1011 is rotatably connected to the side surface of the fixed block 1010. A force-bearing plate 1013 and a cleaning brush 1012 are respectively fixedly connected to the outer side of the torsion spring block 1011. When the reciprocating lead screw 1007 rotates, since the sliding block 1009 is assembled on the outer side of the reciprocating lead screw 1007, the sliding block 1009 reciprocates horizontally. The sliding block 1009 drives the fixed block 1010 fixedly connected thereto to move, so that the fixed block 1010 drives the cleaning brush 1012 to reciprocate horizontally through the torsion spring block 1011, and the catalyst on the filter plate 900 is pushed.
[0021] An extrusion rod 1014 is fixedly connected to the inner wall of the filtration chamber 300. Collection chambers 1015 are respectively assembled on both sides of the filtration chamber 300. When the fixed block 1010 moves to the inner wall of the filtration chamber 300, the force-bearing plate 1013 can be extruded by the extrusion rod 1014 to generate rotation, driving the torsion spring block 1011 fixedly connected to the force-bearing plate 1013 to rotate, so that the torsion spring block 1011 drives the cleaning brush 1012 fixedly connected thereto to rotate, and the catalyst is pushed into the collection chambers 1015 on both sides; subsequently, the catalyst in the collection chambers 1015 can be reused, reducing the waste of the catalyst.
[0022] In use, sewage, a treatment agent, and a catalyst are sequentially added into the reaction treatment chamber 200. At this time, the conveying pipe 800 is in a sealed state. Then, the servo motor 500 is started, which can drive the stirring rod 600 connected to it in a transmission manner to rotate, and react and treat the sewage. Subsequently, the conveying pipe 800 is opened, and the treated sewage and catalyst are separated through the filter plate 900. At this time, the servo motor 500 synchronously drives the first sprocket 1002 connected to it in a transmission manner to rotate. Cooperating with the chain 1003 assembled outside the first sprocket 1002, the second sprocket 1004 connected to the first sprocket 1002 through the chain 1003 rotates. The second sprocket 1004 drives the first bevel gear 1005 connected to it in a transmission manner to rotate, causing the first bevel gear 1005 to drive the second bevel gear 1008 meshing with it to rotate. The second bevel gear 1008 drives the reciprocating lead screw 1007 connected to it fixedly to rotate. Also, since a sliding block 1009 is assembled outside the reciprocating lead screw 1007, the sliding block 1009 reciprocates horizontally. The sliding block 1009 drives the fixed block 1010 connected to it fixedly to move, causing the fixed block 1010 to drive the cleaning brush 1012 to reciprocate horizontally through the torsion spring block 1011, pushing the catalyst on the filter plate 900. And when the fixed block 1010 moves to the inner wall of the filtration chamber 300, the force receiving plate 1013 can be squeezed by the extrusion rod 1014 to generate rotation, driving the torsion spring block 1011 connected to the force receiving plate 1013 to rotate, causing the torsion spring block 1011 to drive the cleaning brush 1012 connected to it fixedly to rotate, and pushing the catalyst into the collection bins 1015 on both sides. Subsequently, the catalyst in the collection bins 1015 can be reused. Embodiment 2
[0023] Please refer to Figures 1 - 8 , on the basis of Embodiment 1, a stirring plate 700 is assembled on the side surface of the stirring rod 600, and a stirring assembly 1100 is arranged inside the reaction treatment chamber 200. The stirring assembly 1100 includes a first hydraulic chamber 1101, and a cam 1102 is connected to the bottom of the second sprocket 1004 in a transmission manner. When the second sprocket 1004 rotates, it can drive the cam 1102 connected to it in a transmission manner to rotate synchronously.
[0024] One end of the first hydraulic chamber 1101 is slidably connected to a force-receiving rod 1103, and the other end of the first hydraulic chamber 1101 is slidably connected to a toothed ring 1104. A first spring 1105 is assembled on the side surface of the force-receiving rod 1103. When the protruding part of the cam 1102 rotates to the position of the force-receiving rod 1103, the force-receiving rod 1103 can be squeezed and driven to move. When the protruding part of the cam 1102 moves away from the force-receiving rod 1103, the force-receiving rod 1103 can be reset under the action of the first spring 1105. In this way, the force-receiving rod 1103 can reciprocate, and in cooperation with the first hydraulic chamber 1101 slidably connected to the force-receiving rod 1103, the toothed ring 1104 slidably connected to the first hydraulic chamber 1101 is driven to reciprocate.
[0025] A gear 1106 and a rotating rod 1108 are respectively rotatably connected inside the stirring plate 700. When the stirring assembly 1100 is in the enabled state, the gear 1106 meshes with the toothed ring 1104, and a third bevel gear 1107 is drivingly connected to the bottom of the gear 1106. When the toothed ring 1104 moves to the position of the gear 1106, it can mesh with the gear 1106, and the rotating stirring rod 600 drives the stirring plate 700 to rotate, so that the stirring plate 700 drives the gear 1106 rotatably connected thereto to revolve. At this time, due to the restriction of the toothed ring 1104, the gear 1106 rotates synchronously while revolving, so that the gear 1106 drives the third bevel gear 1107 drivingly connected thereto to rotate.
[0026] A fourth bevel gear 1109 is drivingly connected to the side surface of the rotating rod 1108, and the fourth bevel gear 1109 meshes with the third bevel gear 1107. A swing plate 1110 is fixedly connected to the outside of the rotating rod 1108, and the swing plates 1110 are circumferentially arranged in a whole circle with respect to the rotating rod 1108. When the third bevel gear 1107 rotates, the third bevel gear 1107 drives the fourth bevel gear 1109 meshing therewith to rotate, so that the fourth bevel gear 1109 drives the rotating rod 1108 drivingly connected thereto to rotate, and the rotating rod 1108 drives the swing plate 1110 fixedly connected thereto to rotate; in this way, during the rotation of the stirring plate 700, the swing plates 1110 thereon swing to a certain extent in sequence, improving the stirring effect of the device, thereby improving the processing efficiency of the device.
[0027] During use, on the basis of the first embodiment, when the sprocket two 1004 rotates, it can drive the cam 1102 connected to it in transmission to rotate synchronously. When the protruding part of the cam 1102 rotates to the stress rod 1103, it can squeeze the stress rod 1103 and drive the stress rod 1103 to move. When the protruding part of the cam 1102 moves away from the stress rod 1103, the stress rod 1103 can be reset under the action of the first spring 1105. In this way, the stress rod 1103 can reciprocate, cooperating with the hydraulic chamber one 1101 slidably connected to the stress rod 1103, driving the gear ring 1104 slidably connected to the hydraulic chamber one 1101 to reciprocate; when the gear ring 1104 moves to the gear 1106, it can mesh with the gear 1106, and the rotating stirring rod 600 drives the stirring plate 700 to rotate, so that the stirring plate 700 drives the gear 1106 rotatably connected to it to revolve. At this time, due to the restriction of the gear ring 1104, the gear 1106 rotates synchronously while revolving, so that the gear 1106 drives the bevel gear three 1107 connected to it in transmission to rotate, and the bevel gear three 1107 drives the bevel gear four 1109 meshing with it to rotate, so that the bevel gear four 1109 drives the rotating rod 1108 connected to it in transmission to rotate, and the rotating rod 1108 drives the swing plate 1110 fixedly connected to it to rotate; in this way, during the rotation of the stirring plate 700, the swing plate 1110 thereon swings to a certain extent in turn. Embodiment 3
[0028] Please refer to Figures 1 - 10 , on the basis of the first and second embodiments, an anti-blocking assembly 1200 is arranged inside the conveying pipe 800. The anti-blocking assembly 1200 includes a hydraulic chamber two 1201, and the hydraulic chamber two 1201 is assembled at the bottom of the hydraulic chamber one 1101 and is in a communicating state with the hydraulic chamber one 1101. A transmission rod 1202 is slidably connected to the bottom of the hydraulic chamber two 1201. Since the hydraulic chamber two 1201 is communicated with the hydraulic chamber one 1101, during the reciprocating movement of the stress rod 1103, the transmission rod 1202 slidably connected to the hydraulic chamber two 1201 reciprocates in the vertical direction. A connecting rod 1203 is assembled on the side of the transmission rod 1202, and a dredging rod 1204 is fixedly connected to the side of the connecting rod 1203. When the transmission rod 1202 reciprocates in the vertical direction, the transmission rod 1202 drives the connecting rod 1203 connected to it to move, and the connecting rod 1203 drives the dredging rod 1204 fixedly connected to it to reciprocate, so as to carry out a certain degree of dredging operation on the opened conveying pipe 800, making the device easier to use.
[0029] During use, based on the first and second embodiments, since the second hydraulic chamber 1201 is communicated with the first hydraulic chamber 1101, when the force-bearing rod 1103 reciprocates, the transmission rod 1202 slidably connected to the second hydraulic chamber 1201 reciprocates in the vertical direction, causing the transmission rod 1202 to drive the connecting rod 1203 connected thereto to move, and the connecting rod 1203 drives the dredging rod 1204 fixedly connected thereto to reciprocate, thereby performing a certain degree of dredging operation on the opened conveying pipe 800.
[0030] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, making equivalent substitutions or changes should be covered within the protection scope of the present invention.
Claims
1. An efficient papermaking wastewater treatment device, comprising a support base (100), wherein a reaction treatment chamber (200), a filtering chamber (300) and a water reservoir (400) are respectively mounted on the sides of the support base (100), a servo motor (500) is mounted on the top of the reaction treatment chamber (200), a stirring rod (600) is transmission-connected to the bottom of the servo motor (500), a sealable conveying pipe (800) is mounted on the bottom of the reaction treatment chamber (200), and a filter plate (900) is mounted inside the filtering chamber (300); Features: A processing assembly (1000) is arranged inside the filter chamber (300), and the processing assembly (1000) comprises a fixed rod (1001); the bottom of the servo motor (500) is connected to a sprocket wheel 1 (1002) in a transmission manner; the outer side of the sprocket wheel 1 (1002) is equipped with a chain (1003); the bottom of the sprocket wheel 1 (1002) is connected to a sprocket wheel 2 (1004) in a rotation manner; the bottom of the sprocket wheel 2 (1004) is connected to a bevel gear 1 (1005); a fixed seat (1006) is installed on the side of the filter chamber (300); the interior of the fixed seat (1006) is connected to a reciprocating screw rod (1007) that penetrates the fixed seat (1006) in a rotation manner; the reciprocating screw rod (1007) is connected to the fixed seat (1006) in a rotation manner; the reciprocating screw rod (1007) is connected to the fixed seat (1006) in a rotation manner. 07) is fixedly connected to the side of bevel gear 2 (1008), and bevel gear 2 (1008) is meshed with bevel gear 1 (1005); a sliding block (1009) is installed on the outer side of the reciprocating screw (1007); a fixed block (1010) is fixedly connected to the side of the sliding block (1009); a torsion spring block (1011) is rotatably connected to the side of the fixed block (1010); a force plate (1013) and a cleaning brush (1012) are respectively fixedly connected to the outer side of the torsion spring block (1011); an extrusion rod (1014) is fixedly connected to the inner wall of the filter bin (300); and collection bins (1015) are respectively installed on both sides of the filter bin (300).
2. The efficient papermaking wastewater treatment device according to claim 1 is characterized by: One end of the chain (1003) away from the sprocket one (1002) is assembled at an outer position of the sprocket two (1004).
3. The efficient papermaking wastewater treatment device according to claim 1 is characterized by: The sliding block (1009) is located inside the fixing seat (1006) and is in a sliding connection with the fixing seat (1006).
4. The efficient papermaking wastewater treatment device according to claim 1 is characterized by: The side of the stirring rod (600) is equipped with a stirring plate (700), and the interior of the reaction processing chamber (200) is provided with a stirring assembly (1100), and the stirring assembly (1100) includes a hydraulic chamber 1 (1101), the bottom of the sprocket 2 (1004) is connected to a cam (1102) in a transmission manner, one end of the hydraulic chamber 1 (1101) is slidably connected to a force-bearing rod (1103), and the other end of the hydraulic chamber 1 (1101) is slidably connected to a gear ring (1104), and the force-bearing rod (1103) is connected to the other end of the hydraulic chamber 1 (1101). The side of the stirring plate (700) is equipped with a spring one (1105), the interior of the stirring plate (700) is rotatably connected to a gear (1106) and a rotating rod (1108), the bottom of the gear (1106) is transmission-connected to a bevel gear three (1107), the side of the rotating rod (1108) is transmission-connected to a bevel gear four (1109), the bevel gear four (1109) is meshed with the bevel gear three (1107), and the outer side of the rotating rod (1108) is fixedly connected to a swing plate (1110).
5. The efficient papermaking wastewater treatment device according to claim 4 is characterized in that: When the stirring assembly (1100) is in an activated state, the gear (1106) is meshed with the gear ring (1104).
6. The efficient papermaking wastewater treatment device according to claim 4 is characterized by: The swing plates (1110) are arranged in a circular arrangement with respect to the rotating rod (1108).
7. The efficient papermaking wastewater treatment device according to claim 1 is characterized by: An anti-blocking component (1200) is arranged inside the conveying pipe (800), and the anti-blocking component (1200) comprises a hydraulic chamber 2 (1201), a transmission rod (1202) is slidably connected to the bottom of the hydraulic chamber 2 (1201), a connecting rod (1203) is mounted on the side of the transmission rod (1202), and a dredging rod (1204) is fixedly connected to the side of the connecting rod (1203).
8. The efficient papermaking wastewater treatment device according to claim 7 is characterized by: The hydraulic chamber 2 (1201) is assembled at the bottom of the hydraulic chamber 1 (1101) and is connected to the hydraulic chamber 1 (1101).
Citation Information
Patent Citations
An industrial papermaking wastewater treatment device
CN108101169B