An integrated river sewage treatment device
By designing an integrated river sewage treatment device containing a variety of innovative treatment systems, the problem of easy blockage of filter devices in the prior art and inability to effectively filter small particles is solved, and the effect of improving river water treatment efficiency and system practicality is achieved.
Patent Information
- Application Number
- CN202310455933.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-04-25
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2043-04-25
AI Technical Summary
The filtering device of the existing river sewage integrated treatment device is easily blocked by debris, resulting in a reduced speed of river water passing, reducing the processing efficiency of river water, and can only filter large impurities, leaving small particulate impurities to increase the load of the water quality purification device.
A river sewage integrated treatment device is designed, and a treatment system including a filter box, a toggle mechanism, a central controller, a disengagement mechanism, a fine filter head, a precipitation mechanism, an exchange mechanism and a flow interruption mechanism are adopted. The toggle mechanism cleans up impurities, the central controller controls the disengagement mechanism and the exchange mechanism to alternately operate. The fine filter head filters small particulate impurities, the precipitation mechanism reduces the amount of backflush water, and the flow-breaking mechanism ensures the normal operation of the fine filter head.
It effectively avoids the filtering device being blocked, improves the passing speed and treatment efficiency of river water, can effectively filter small particles and impurities, reduces the load of the water quality purification device, and improves the practicality of the overall treatment system.
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Figure CN116332261B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of sewage treatment equipment, and more specifically, to an integrated river sewage treatment device. Background Art
[0002] The water in the river contains dissolved substances such as carbonates, sulfates and calcium, which is different from seawater which mainly contains chlorides and sodium. The physical properties of river water mainly refer to water temperature, color, transparency, smell and taste; the chemical properties are determined by the gases, ions, molecules, colloids and suspended solids, microorganisms and the content of these substances dissolved and dispersed in the river water. With the development of industry, human activities directly or indirectly introduce substances or energy into the river environment, causing river pollution, which not only damages the river's biological resources, but also damages the quality of river water and river environment, and endangers human health. The degree of pollution changes over time, and it has the characteristics of rapid diffusion and large pollution impact. In order to improve the river environment and protect human health, it is necessary to use river sewage integrated treatment equipment to treat polluted river water.
[0003] The existing integrated river sewage treatment device is mainly composed of a pumping system, a filtering device, a water purification device, etc. When in use, the pumping system draws river water and pumps it into the filtering device, and then the filtering device filters out impurities in the river water. Then the filtered river water enters the water purification device for treatment, and then the river water is discharged after being treated by the water purification device and meets the standards. However, the filtering device is easily clogged by debris, resulting in a decrease in the speed of river water passing through, which reduces the treatment efficiency of the river water, and can only filter larger impurities. There are still many small particle impurities in the filtered river water, which will increase the load of the water purification device and further reduce the treatment efficiency of the river water. Therefore, it is urgent to design an integrated river sewage treatment device. Summary of the invention
[0004] 1. Technical issues to be solved
[0005] The existing river sewage integrated treatment device in the prior art is mainly composed of a pumping system, a filtering device, a water purification device, etc. When in use, the pumping system draws river water and pumps it into the filtering device, and then the filtering device filters out impurities in the river water. Then the filtered river water enters the water purification device for treatment, and then the river water is discharged after being treated by the water purification device and meets the standards. However, the filtering device is easily clogged by debris, resulting in a decrease in the speed of river water passing through, thereby reducing the treatment efficiency of the river water. Moreover, the filtering device can only filter larger impurities. There are still many small particle impurities in the filtered river water, which will increase the load of the water purification device and further reduce the treatment efficiency of the river water. The purpose of the present invention is to provide a river sewage integrated treatment device, which can well solve the problems raised in the background technology.
[0006] 2. Technical solution
[0007] To solve the above problems, the present invention adopts the following technical solutions.
[0008] A river sewage integrated treatment device comprises a treatment box, wherein the treatment box comprises a filter box, the left side surface of the filter box is fixedly connected with an input pipe located at the top thereof, an inclined partition is fixedly connected to the left side surface of the inner cavity of the filter box, the right end of the inclined partition is inclined downward and fixedly connected with an arc partition, the right end of the arc partition is fixedly connected to the right side surface of the inner cavity of the filter box, the inclined partition and the arc partition together separate the inner cavity of the filter box, a toggle mechanism located above the arc partition is provided in the filter box, a plurality of filtering slits are provided on the arc partition, and a filter slit located above the arc partition is fixedly connected to the right side surface of the inner cavity of the filter box The material dropping pipe at the top, the filter box and the material dropping pipe are all provided with matching holes connected with the filter slit, the left side surface of the inner cavity of the filter box is fixedly connected with a liquid level gauge located at its bottom, the front of the filter box is fixedly installed with a power switch located in the middle, the front of the filter box is provided with a maintenance manhole located at its bottom, the back of the filter box is fixedly connected with an output pipe, one end of the output pipe extends to the interior of the filter box and is provided with a central controller, the bottom surface of the filter box is fixedly connected with a loading plate, the top surface of the loading plate is provided with a collecting bucket located on the right side of the filter box, and the collecting bucket is adapted to the material dropping pipe.
[0009] Preferably, the toggle mechanism includes a toggle shaft, one end of the toggle shaft is movably sleeved on the inner wall of the filter box and is located above the arc partition, a toggle roller is fixedly sleeved on the outside of the toggle shaft, three toggle plates are fixedly connected to the outer surface of the toggle roller, the three toggle plates are evenly distributed on the surface of the toggle roller, a plurality of toggle comb teeth are fixedly connected to the end surface of the other end of the toggle plate, the plurality of toggle comb teeth are equidistantly distributed on the end surface of the toggle plate, the toggle comb teeth are adapted to the filter slits, the toggle comb teeth can move inside the filter slits and the adaptation holes, the other end of the toggle shaft extends from the front side of the filter box and is fixedly sleeved with a toggle driven wheel, the toggle driven wheel is connected to the toggle driving wheel through a toggle driving belt transmission, a toggle motor is fixedly connected to the toggle driving wheel, and the toggle motor is fixedly mounted on the top surface of the filter box.
[0010] Preferably, the central controller includes a central control box, which is fixedly connected to the left side of the inner cavity of the filter box, the top of the central control box is fixedly connected to the bottom of the inclined partition, a detachment mechanism is provided on the bottom of the central control box, a seepage hole is opened on the bottom of the central control box, the top of the liquid level meter is fixedly connected to the bottom of the central control box, a triangular box is fixedly connected to the right side of the central control box, an intelligent controller is fixedly installed on the left side of the inner cavity of the triangular box, a differential pressure water pump is fixedly installed on the bottom of the inner cavity of the triangular box, the end of the output pipe extends to the interior of the triangular box and is connected to the differential pressure water pump, a transport pipe is fixedly connected to the front of the differential pressure water pump, the other end of the transport pipe extends from the bottom of the triangular box and is provided with an exchange mechanism, and a rotating mechanism is provided inside the central control box.
[0011] Preferably, the disengagement mechanism includes a waterproof sleeve, and there are two waterproof sleeves. The top end of the waterproof sleeve is fixedly connected to the bottom surface of the central control box, and the bottom end of the waterproof sleeve is fixedly connected to the bottom surface of the inner cavity of the filter box. An electric telescopic rod is provided inside the waterproof sleeve, and the bottom end of the electric telescopic rod is fixedly installed on the bottom surface of the inner cavity of the filter box. The top end of the extension rod on the electric telescopic rod extends to the interior of the central control box and is fixedly connected to a disengagement block. A baffle plate located at the left end of the baffle plate is fixedly connected to the bottom surface of the disengagement block, and the bottom end of the baffle plate extends from the bottom surface of the central control box. The baffle plate is movably plugged into the bottom surface of the central control box, and a bending tube is fixedly plugged into the interior of the disengagement block. The left end of the bending tube is fixedly connected to a rotary joint, and a fine filter head is provided at the bottom end of the rotary joint. A centrifugal bevel gear is fixedly sleeved on the outside of the rotary joint.
[0012] Preferably, the fine filter head includes a crossing through tube, two of which are fixedly inserted on the bottom surface of the central control box, a crossing long rod is movably inserted inside the crossing through tube, the top of the crossing long rod is fixedly connected to the bottom surface of the rotary joint, the bottom end of the crossing long rod extends to the interior of the filter box and is fixedly sleeved with an upper centrifugal disk, the external thread of the crossing long rod is sleeved with an internal threaded ring located below the upper centrifugal disk, an L-shaped bent rod is fixedly connected to the side surface of the internal threaded ring, the bottom end of the L-shaped bent rod is fixedly connected to the lower centrifugal disk, the two surfaces of the upper centrifugal disk and the lower centrifugal disk that are close to each other are fixedly connected with a plug-in connector, the external movably sleeved with a filtering porous tube, the end face of the top end of the filtering porous tube is in contact with the bottom surface of the upper centrifugal disk, the end face of the bottom end of the filtering porous tube is in contact with the top surface of the lower centrifugal disk, and a precipitation mechanism is provided inside the lower centrifugal disk.
[0013] Preferably, the precipitation mechanism includes a precipitation chamber, which is opened inside the lower centrifugal disk, and a precipitation hole is opened on the bottom surface of the inner cavity of the precipitation chamber. The bottom end of the precipitation hole is open and the opening is arranged on the bottom surface of the lower centrifugal disk. A precipitation cone hole is opened on the top surface of the inner cavity of the precipitation chamber. The top of the precipitation cone hole is open and the opening is arranged on the top surface of the lower centrifugal disk. The precipitation cone hole is connected to the filtering porous tube. A lifting spring located in the middle of the precipitation chamber is fixedly connected to the bottom surface of the inner cavity of the precipitation chamber. A hole blocking cone head is provided on the top of the lifting spring. The top of the lifting spring is slidably connected to the bottom surface of the hole blocking cone head. The top of the hole blocking cone head is movably inserted into the interior of the precipitation cone hole. The bottom surface of the hole blocking cone head is fixedly connected to a linkage slide rod located in the middle of the precipitation chamber. The bottom end of the linkage slide rod passes through the lifting spring and extends to the outside of the lower centrifugal disk and is fixedly connected with a U-shaped rod. The linkage slide rod is movably inserted into the interior of the lower centrifugal disk, and the U-shaped rod is buckled on the outside of the lower centrifugal disk.
[0014] Preferably, the exchange mechanism includes an exchange block, which is fixedly inserted on the bottom surface of the central control box and located between two water-blocking sleeves. An exchange chamber located at its bottom end is provided inside the exchange block. The end of the transport pipe is fixedly inserted on the bottom surface of the exchange block and communicates with the exchange chamber. A pressure sensor located on the left side of the transport pipe is fixedly inserted on the bottom surface of the exchange block, and the top of the pressure sensor extends to the interior of the exchange chamber. Two receiving sockets are provided on the top surface of the exchange block, and the two receiving sockets are respectively located at the left and right ends of the exchange block. The end of the bent tube is matched with the receiving socket, and the end of one bent tube is movably connected to the receiving socket at the left end of the exchange block. A water hole is provided on the bottom surface of the inner cavity of the receiving socket, and the bottom end of the water hole is communicated with the exchange chamber. Two flow-breaking mechanisms are provided inside the exchange block, and the flow-breaking mechanisms are matched with the water holes.
[0015] Preferably, the flow cut-off mechanism includes a flow cut-off power chamber, which is arranged inside the exchange block, a flow cut-off slide rod is fixedly connected to the left side surface of the inner cavity of the flow cut-off power chamber, a flow cut-off spring and a flow cut-off push plate are movably sleeved on the outside of the flow cut-off slide rod, the left side surface of the inner cavity of the flow cut-off power chamber is transmission-connected to the flow cut-off push plate through the flow cut-off spring, the flow cut-off push plate is slidably plugged into the inner cavity of the flow cut-off power chamber, a constant pressure through hole is arranged on the flow cut-off push plate, a touch slide hole at the top thereof is arranged on the right side surface of the inner cavity of the flow cut-off power chamber, the touch slide hole is connected to the receiving socket, a position hole is fixedly connected to the right side surface of the flow cut-off push plate A trigger rod is arranged at the top of the trigger rod, which is movably inserted in the inside of the trigger sliding hole. The right end of the trigger rod is fixedly connected with a right-angled trapezoidal block, which is slidably inserted in the inside of the trigger sliding hole. The right-angled trapezoidal block is adapted to the bending tube. A guide sliding hole located at its bottom end is provided on the right side surface of the inner cavity of the flow-cutting power chamber. A guide piston located at its bottom end is fixedly connected to the right side surface of the flow-cutting push plate. A sealing cone head is fixedly connected to the right end of the guide piston. A flow-cutting cone groove is provided on the right side surface of the inner cavity of the guide sliding hole. The flow-cutting cone groove is connected with the water through hole, and the sealing cone head is movably inserted in the inside of the flow-cutting cone groove.
[0016] Preferably, the rotating mechanism comprises a rotating fixed column, a rotating long rod and a protective shell, the number of rotating fixed columns is two, the left end of the rotating fixed column is fixedly connected to the left side surface of the inner cavity of the central control box, and the right end surface of the rotating fixed column is movably connected with a rotating rotating column, the outer side of the rotating rotating column is fixedly sleeved with a rotating bevel gear, and the right end of the rotating rotating column is fixedly sleeved with a transmission bevel gear, and the transmission bevel gear is meshed with the centrifugal bevel gear. One end of the rotating long rod is movably sleeved on the inner wall of the central control box, and the outer side of the rotating long rod is fixedly sleeved with two rotating threaded strips, the rotating threaded strips are meshed with the rotating bevel gear, and the other end of the rotating long rod extends from the front of the central control box and extends from the front of the filter box and is fixedly sleeved with a rotating wheel, the rotating wheel is connected to a large pulley through a rotating belt transmission, the large pulley is fixedly sleeved on the outside of the toggle long shaft, and the protective shell is fixedly connected to the front of the filter box, and the rotating wheel, rotating belt, large pulley, toggle driven wheel, and toggle driving belt are all located inside the protective shell.
[0017] 3. Beneficial effects
[0018] Compared with the prior art, the advantages of the present invention are:
[0019] The larger impurities in the river water can be filtered out through the treatment box to reduce the load of subsequent treatment equipment, which helps to increase the treatment efficiency of the river water. The impurities filtered out by the treatment box can be pulled out through the toggle mechanism to prevent the treatment box from being blocked by impurities, which can increase the speed of river water passing through, which helps to further increase the treatment efficiency of the river water. The two disengagement mechanisms can be controlled to operate alternately through the central controller, and the alternating operation of the disengagement mechanisms can move the two fine filter heads up and down alternately. The precipitation mechanism can automatically release the water inside the fine filter head that moves upward to the extreme position to reduce the amount of water for backwashing, which helps to reduce the water content of impurities and can reduce the time the central controller takes to drain impurities. The exchange mechanism can connect the fine filter head that moves downward to the extreme position with the central controller, so that the central controller can apply suction force to the fine filter head to ensure the fine filter head It can play a filtering role normally, and can finely filter river water through the fine filter head to filter out small particles of impurities in the river water, which can reduce the load of subsequent treatment equipment and help to increase the treatment efficiency of river water again. The exchange mechanism can be sealed through the cut-off mechanism so that the suction force inside the exchange mechanism will not leak, providing the necessary conditions for the alternating operation of the two fine filter heads. The fine filter head that moves upward to the extreme position can be rotated at high speed through the rotating mechanism, and the impurities adhered to the surface of the fine filter head can be thrown out by centrifugal force. At the same time, the residual river water in the fine filter head will reversely pass through the pores on the fine filter head from the inside of the fine filter head under the action of centrifugal force, which has a recoil effect, and is used to flush out the impurities inside the pores of the fine filter head to restore the permeability of the fine filter head, which can increase the passage speed of the river water and improve the practicability of the integrated river sewage treatment device. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a structural schematic diagram of the present invention;
[0021] Figure 2 For the present invention Figure 1 Schematic diagram of the internal structure of the middle protective shell;
[0022] Figure 3 For the present invention Figure 1 Schematic diagram of the internal structure of the filter box;
[0023] Figure 4 For the present invention Figure 3 A schematic diagram of the structure of the middle toggle mechanism;
[0024] Figure 5 For the present invention Figure 3 The structural diagram of the rotating mechanism;
[0025] Figure 6 For the present invention Figure 5 Left view of the rotating thread strip;
[0026] Figure 7 For the present invention Figure 3 Left view of the disengagement mechanism;
[0027] Figure 8 For the present invention Figure 7 Schematic diagram of the internal structure of the exchange mechanism;
[0028] Fig. 9 For the present invention Figure 7 Schematic diagram of the internal structure of the middle water-insulating casing;
[0029] Fig.10 For the present invention Figure 7 Schematic diagram of the internal structure of the medium fine filter head.
[0030] Description of the numbers in the figure:
[0031] 1. Processing box; 101. Filter box; 102. Input pipe; 103. Inclined partition; 104. Arc partition; 105. Filter slit; 106. Dropping pipe; 107. Liquid level gauge; 108. Power switch; 109. Inspection manhole; 110. Output pipe; 111. Loading plate; 112. Collection bucket; 2. Toggle mechanism; 21. Toggle long shaft; 22. Toggle roller; 23. Toggle plate; 24. Toggle comb teeth; 25. Toggle driven wheel; 26. Toggle drive belt; 27. Toggle drive driving wheel; 28, toggle motor; 3, central controller; 31, central control box; 32, triangle box; 33, intelligent controller; 34, differential pressure pump; 35, transport pipe; 36, cleaning door; 4, disengagement mechanism; 41, water-proof casing; 42, electric telescopic rod; 43, disengagement block; 44, shielding plate; 45, bending pipe; 46, rotating joint; 47, centrifugal bevel gear; 5, fine filter head; 51, through pipe; 52, through long rod; 53, upper centrifugal disc; 54, internal thread ring; 55, L-shaped bending rod; 56, lower centrifugal disc; 57, plug-in pipe joint; 58, filtering porous tube; 6, precipitation mechanism; 61, precipitation chamber; 62, precipitation hole; 63, precipitation cone hole; 64, lifting spring; 65, plugging cone head; 66, linkage slide rod; 67, U-shaped rod; 7, exchange mechanism; 71, exchange block; 72, exchange chamber; 73, pressure sensor; 74, receiving socket; 75, water hole; 8, flow cut-off mechanism; 801, flow cut-off power chamber; 802, flow cut-off slide rod; 803, flow cut-off spring Spring; 804, flow-cutting push plate; 805, trigger slide hole; 806, trigger rod; 807, right-angle trapezoidal block; 808, guide slide hole; 809, guide piston; 810, blocking cone head; 811, flow-cutting cone groove; 9, rotating mechanism; 901, rotating fixed column; 902, rotating rotating column; 903, rotating bevel gear; 904, transmission bevel gear; 905, rotating long rod; 906, rotating threaded strip; 907, rotating wheel; 908, rotating belt; 909, large pulley; 910, protective shell. DETAILED DESCRIPTION
[0032] 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. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without creative work are within the scope of protection of the present invention.
[0033] See also Figure 1-10, a river sewage integrated treatment device includes a treatment box 1, the treatment box 1 includes a filter box 101, the left side surface of the filter box 101 is fixedly connected with an input pipe 102 located at the top thereof, an inclined partition 103 is fixedly connected to the left side surface of the inner cavity of the filter box 101, the right end of the inclined partition 103 is inclined downward and fixedly connected with an arc partition 104, the right end of the arc partition 104 is fixedly connected to the right side surface of the inner cavity of the filter box 101, the inclined partition 103 and the arc partition 104 jointly separate the inner cavity of the filter box 101, a toggle mechanism 2 is provided in the filter box 101 above the arc partition 104, a plurality of filtering slits 105 are opened on the arc partition 104, a drop pipe 106 located at the top thereof is fixedly connected to the right side surface of the filter box 101, the filter box 101, the drop pipe 106 ... The material passage pipe 106 is provided with an adapter hole connected to the filter slit 105, a liquid level gauge 107 located at the bottom is fixedly connected to the left side surface of the inner cavity of the filter box 101, a power switch 108 located in the middle is fixedly installed on the front of the filter box 101, and a maintenance manhole 109 located at the bottom of the front of the filter box 101 is provided. The maintenance manhole 109 is used to clean the impurities deposited on the bottom surface of the inner cavity of the filter box 101. An output pipe 110 is fixedly inserted on the back of the filter box 101, one end of the output pipe 110 extends to the interior of the filter box 101 and is provided with a central controller 3, a loading plate 111 is fixedly connected to the bottom surface of the filter box 101, and a collecting bucket 112 located on the right side of the filter box 101 is provided on the top surface of the loading plate 111, and the collecting bucket 112 is adapted to the material passage pipe 106.
[0034] The toggle mechanism 2 includes a toggle shaft 21, one end of which is movably sleeved on the inner wall of the filter box 101 and is located above the arc partition 104, and a toggle roller 22 is fixedly sleeved on the outside of the toggle shaft 21, and three toggle plates 23 are fixedly connected to the outer surface of the toggle roller 22, and the three toggle plates 23 are evenly distributed on the surface of the toggle roller 22, and a plurality of toggle comb teeth 24 are fixedly connected to the end surface of the other end of the toggle plate 23, and the plurality of toggle comb teeth 24 are fixedly connected to the end surface of the toggle plate 23. The toggle comb teeth 24 are distributed at equal distances on the filter box 101, and are adapted to the filter slits 105. The toggle comb teeth 24 can move inside the filter slits 105 and the adapting holes. The other end of the toggle long axis 21 extends from the front of the filter box 101 and is fixedly sleeved with a toggle driven wheel 25. The toggle driven wheel 25 is connected to a toggle driving wheel 27 through a toggle driving belt 26. A toggle motor 28 is fixedly connected to the toggle driving wheel 27, and the toggle motor 28 is fixedly mounted on the top surface of the filter box 101.
[0035] The central controller 3 includes a central control box 31, which is fixedly connected to the left side of the inner cavity of the filter box 101, the top of the central control box 31 is fixedly connected to the bottom of the inclined partition 103, the bottom of the central control box 31 is provided with a disengagement mechanism 4, the bottom of the central control box 31 is provided with a seepage hole, the top of the liquid level meter 107 is fixedly connected to the bottom of the central control box 31, the right side of the central control box 31 is fixedly connected to a triangular box 32, the left side of the inner cavity of the triangular box 32 is fixedly installed with an intelligent controller 33, the bottom of the inner cavity of the triangular box 32 is fixedly installed with a differential pressure water pump 34, and the end of the output pipe 110 extends to the bottom of the output pipe 110. It extends to the interior of the triangular box 32 and is connected with the differential pressure water pump 34. A transport pipe 35 is fixedly connected to the front of the differential pressure water pump 34. The other end of the transport pipe 35 extends from the bottom of the triangular box 32 and is provided with an exchange mechanism 7. A rotating mechanism 9 is provided inside the central control box 31. The power switch 108 is electrically connected to the intelligent controller 33. The intelligent controller 33 is electrically connected to an external power supply. The intelligent controller 33 is electrically connected to a liquid level meter 107, a toggle motor 28, a differential pressure water pump 34, and an electric telescopic rod 42. A cleaning door 36 adapted to the central control box 31 is provided on the front of the filter box 101 for cleaning impurities inside the central control box 31.
[0036] The disengagement mechanism 4 includes a waterproof sleeve 41, the number of which is two. The top end of the waterproof sleeve 41 is fixedly connected to the bottom surface of the central control box 31, and the bottom end of the waterproof sleeve 41 is fixedly connected to the bottom surface of the inner cavity of the filter box 101. An electric telescopic rod 42 is arranged inside the waterproof sleeve 41, and the bottom end of the electric telescopic rod 42 is fixedly installed on the bottom surface of the inner cavity of the filter box 101. The top end of the extension rod on the electric telescopic rod 42 extends to the interior of the central control box 31 and is fixedly connected to a disengagement block 43. The bottom surface of the disengagement block 43 is fixedly connected to a The baffle plate 44 is used to block the impurities that are thrown off and prevent the impurities from being attached to the exchange mechanism 7. The bottom end of the baffle plate 44 extends from the bottom surface of the central control box 31. The baffle plate 44 is movably inserted on the bottom surface of the central control box 31. A bending tube 45 is fixedly inserted inside the disengagement block 43. The left end of the bending tube 45 is fixedly connected to a rotary joint 46. The bottom end of the rotary joint 46 is provided with a fine filter head 5. The outside of the rotary joint 46 is fixedly sleeved with a centrifugal bevel gear 47. There are two fine filter heads 5, the one immersed in water is the first, and the other is the second.
[0037] The fine filter head 5 includes a through pipe 51, and the number of the through pipes 51 is two. The through pipes 51 are fixedly inserted on the bottom surface of the central control box 31, and a through long rod 52 is movably inserted inside the through pipe 51. The top of the through long rod 52 is fixedly connected to the bottom surface of the rotary joint 46, and the bottom end of the through long rod 52 extends to the inside of the filter box 101 and is fixedly sleeved with an upper centrifugal disc 53. The outer thread of the through long rod 52 is sleeved with an internal thread ring 54 located below the upper centrifugal disc 53. The internal thread ring 54 is 4 is fixedly connected to the side surface of the upper centrifugal disk 53, the bottom end of the L-shaped bent rod 55 is fixedly connected to the lower centrifugal disk 56, the upper centrifugal disk 53 and the lower centrifugal disk 56 are fixedly connected to the two surfaces close to each other with a plug-in pipe joint 57, the outer movably sleeve of the plug-in pipe joint 57 is connected to a filtering porous tube 58, the end surface of the top end of the filtering porous tube 58 is in contact with the bottom surface of the upper centrifugal disk 53, the end surface of the bottom end of the filtering porous tube 58 is in contact with the top surface of the lower centrifugal disk 56, and the lower centrifugal disk 56 is provided with a precipitation mechanism 6 inside.
[0038] The precipitation mechanism 6 includes a precipitation chamber 61, which is opened inside the lower centrifugal disk 56. A precipitation hole 62 is opened on the bottom surface of the inner cavity of the precipitation chamber 61. The bottom end of the precipitation hole 62 is open and the opening is arranged on the bottom surface of the lower centrifugal disk 56. A precipitation cone hole 63 is opened on the top surface of the inner cavity of the precipitation chamber 61. The top of the precipitation cone hole 63 is open and the opening is arranged on the top surface of the lower centrifugal disk 56. The precipitation cone hole 63 is connected to the filtering porous tube 58. A lifting spring 64 located in the middle of the precipitation chamber 61 is fixedly connected to the bottom surface of the inner cavity of the precipitation chamber 61. A hole-blocking cone head 65 is provided on the top of the lifting spring 64, and the top of the lifting spring 64 is slidably connected to the bottom surface of the hole-blocking cone head 65. The top of the hole-blocking cone head 65 is movably inserted into the interior of the precipitation cone hole 63, and the bottom surface of the hole-blocking cone head 65 is fixedly connected to a linkage slide rod 66 located in the middle thereof. The bottom end of the linkage slide rod 66 passes through the lifting spring 64 and extends to the outside of the lower centrifugal disk 56 and is fixedly connected to a U-shaped rod 67. The linkage slide rod 66 is movably inserted into the interior of the lower centrifugal disk 56, and the U-shaped rod 67 is buckled on the outside of the lower centrifugal disk 56.
[0039] The exchange mechanism 7 includes an exchange block 71, which is fixedly plugged into the bottom surface of the central control box 31 and is located between the two waterproof casings 41. The exchange block 71 is provided with an exchange chamber 72 at its bottom end. The end of the transport pipe 35 is fixedly plugged into the bottom surface of the exchange block 71 and communicates with the exchange chamber 72. A pressure sensor 73 located on the left side of the transport pipe 35 is fixedly plugged into the bottom surface of the exchange block 71. The top end of the pressure sensor 73 extends to the inside of the exchange chamber 72. The exchange block 71 is provided with a pressure sensor 73 located on the left side of the transport pipe 35. Two receiving sockets 74 are provided on the top surface of the exchange block 71, and the two receiving sockets 74 are respectively located at the left and right ends of the exchange block 71. The ends of the bent tube 45 are matched with the receiving sockets 74. The end of one bent tube 45 is movably plugged into the receiving socket 74 at the left end of the exchange block 71. A water hole 75 is provided on the bottom surface of the inner cavity of the receiving socket 74. The bottom end of the water hole 75 is connected to the exchange cavity 72. Two flow cut-off mechanisms 8 are provided inside the exchange block 71, and the flow cut-off mechanism 8 is matched with the water hole 75.
[0040] The flow cut-off mechanism 8 includes a flow cut-off power chamber 801, which is opened inside the exchange block 71, and a flow cut-off slide bar 802 is fixedly connected to the left side surface of the inner cavity of the flow cut-off power chamber 801, and a flow cut-off spring 803 and a flow cut-off push plate 804 are movably sleeved on the outside of the flow cut-off slide bar 802. The left side of the inner cavity of the flow cut-off power chamber 801 is transmission-connected with the flow cut-off push plate 804 through the flow cut-off spring 803, and the flow cut-off push plate 804 is slidably plugged into the interior of the flow cut-off power chamber 801. A constant pressure through hole is opened on the flow cut-off push plate 804, and a touch slide hole 805 located at its top is opened on the right side surface of the inner cavity of the flow cut-off power chamber 801, and the touch slide hole 805 is connected to the receiving socket 74, and a touch slide hole 805 located at its top is fixedly connected on the right side surface of the flow cut-off push plate 804. A trigger rod 806, which is movably inserted into the inside of the trigger slide hole 805, and a right-angled trapezoidal block 807 is fixedly connected to the right end of the trigger rod 806. The right-angled trapezoidal block 807 is slidably inserted into the inside of the trigger slide hole 805, and the right-angled trapezoidal block 807 is adapted to the bending tube 45. A guide slide hole 808 located at its bottom end is provided on the right side surface of the inner cavity of the flow-cutting power chamber 801, and a guide piston 809 located at its bottom end is fixedly connected to the right side surface of the flow-cutting push plate 804, and a blocking cone head 810 is fixedly connected to the right end of the guide piston 809. A flow-cutting cone groove 811 is provided on the right side surface of the inner cavity of the guide slide hole 808, and the flow-cutting cone groove 811 is connected to the water through hole 75, and the blocking cone head 810 is movably inserted into the inside of the flow-cutting cone groove 811.
[0041] The rotating mechanism 9 includes a rotating fixed column 901, a rotating long rod 905 and a protective shell 910. There are two rotating fixed columns 901. The left end of the rotating fixed column 901 is fixedly connected to the left side surface of the inner cavity of the central control box 31. A rotating column 902 is movably inserted on the right end surface of the rotating fixed column 901. The outer portion of the rotating column 902 is fixedly sleeved with a rotating bevel gear 903. The right end of the rotating column 902 is fixedly sleeved with a transmission bevel gear 904. The transmission bevel gear 904 is meshed with the centrifugal bevel gear 47. One end of the rotating long rod 905 is movably sleeved on the inner wall of the central control box 31. The outer portion of the rotating long rod 905 is fixedly sleeved with a rotating helical gear 903. Two rotating thread strips 906 are sleeved, and the rotating thread strips 906 are meshed with the rotating bevel gear 903. The other end of the rotating long rod 905 extends from the front of the central control box 31 and extends from the front of the filter box 101 and is fixedly sleeved with a rotating wheel 907. The rotating wheel 907 is connected to a large pulley 909 through a rotating belt 908. The large pulley 909 is fixedly sleeved on the outside of the toggle long shaft 21. The protective shell 910 is fixedly connected to the front of the filter box 101. The rotating wheel 907, the rotating belt 908, the large pulley 909, the toggle driven wheel 25, and the toggle driving belt 26 are all located inside the protective shell 910.
[0042] Working principle:
[0043] First, river water is pumped into the filter box 101 through the input pipe 102, and then the river water falls on the top surface of the inclined partition 103 and flows into the inside of the arc partition 104, and then the river water passes through the filter slit 105 and falls on the bottom surface of the inner cavity of the filter box 101. At the same time, larger impurities in the river water are intercepted inside the arc partition 104, and then the intelligent controller 33 is turned on by the power switch 108. The intelligent controller 33 controls the operation of the toggle motor 28, and then the toggle motor 28 drives the toggle drive wheel 27 to rotate, and then the toggle drive wheel 27 drives the toggle driven wheel 25 to rotate through the toggle drive belt 26, and then the toggle driven wheel 25 drives the toggle long shaft 21 to rotate, and then the toggle long shaft 21 drives the toggle roller 22 to rotate, and then the toggle roller 22 drives the toggle long shaft 21 to rotate. The moving plate 23 moves in a counterclockwise circular motion, and then the toggle plate 23 pushes the impurities inside the arc partition 104 to move counterclockwise along the inner wall of the arc partition 104, and then the impurities slide from the right end of the arc partition 104 and enter the blanking tube 106, and then the impurities slide downward along the bottom surface of the inner cavity of the blanking tube 106, and then the impurities fall off from the right end of the blanking tube 106 and enter the collecting bucket 112, and at the same time, the toggle plate 23 moves in a circular motion with the toggle comb teeth 24, and then the toggle comb teeth 24 enter the filter slit 105 and slide counterclockwise inside it, which is used to poke out the impurities inside the filter slit 105 to prevent the filter slit 105 from being blocked by impurities, and then the intelligent controller 33 turns on the pressure difference water pump 34, and then the river water on the bottom surface of the inner cavity of the filter box 101 is pumped out by the pressure difference water pump 34. Driven by the pump 34, the impurities in the water enter through the pores on the filtration porous tube 58 in the first fine filter head 5 and are discharged through the long rod 52, the rotary joint 46, the bending tube 45, the water hole 75, the flow-blocking cone groove 811, the exchange chamber 72, the transport pipe 35, the pressure difference water pump 34, and the output pipe 110 and enter the next processing link. Then, the small particle impurities in the water are intercepted on the surface of the filtration porous tube 58. Then, more and more impurities are intercepted on the surface of the filtration porous tube 58, more and more pores are blocked, and the hydraulic resistance is getting greater and greater. Then, the hydraulic pressure inside the exchange chamber 72 gradually decreases, and then the pressure sensor 73 monitors the hydraulic pressure changes inside the exchange chamber 72 in real time and sends the hydraulic pressure data to the intelligent controller 33. After the hydraulic pressure data is compared with the internal prediction of the intelligent controller 33, the hydraulic pressure inside the exchange chamber 72 is gradually reduced. When the set values are consistent, the intelligent controller 33 controls the corresponding electric telescopic rod 42 to shorten, and then the electric telescopic rod 42 moves downward with the baffle plate 44 and the bending tube 45 through the disengagement block 43, and then the bending tube 45 moves downward with the centrifugal bevel gear 47 through the rotary joint 46, and then the centrifugal bevel gear 47 is separated from the transmission bevel gear 904, and then the rotary joint 46 moves downward with the upper centrifugal disc 53, the internal thread ring 54, the L-shaped bending rod 55, the lower centrifugal disc 56, the plug-in connector 57, and the filtering porous tube 58 on the second fine filter head 5 through the long rod 52, and then the U-shaped rod 67 is separated from the bottom surface of the central control box 31, and then the blocking cone head 65 moves upward under the action of the elastic force of the lifting spring 64 and inserts into the precipitation cone hole 63 and blocks it.Then the upper centrifugal disc 53, the internal threaded ring 54, the L-shaped bending rod 55, the lower centrifugal disc 56, the plug-in pipe connector 57, and the filtering porous tube 58 are immersed in the river water inside the filter box 101, and then the end of the corresponding bending tube 45 is inserted into the corresponding receiving socket 74, and then the bottom end of the bending tube 45 contacts the inclined surface of the right-angled trapezoidal block 807 and applies pressure thereto, and then the right-angled trapezoidal block 807 moves toward the inside of the trigger sliding hole 805, and then the right-angled trapezoidal block 807 moves toward the inside of the cut-off power chamber 801 through the trigger rod 806 with the cut-off push plate 804, and then the cut-off push plate 804 squeezes the cut-off spring 803, and then the cut-off spring 803 is elastically compressed and the elastic potential energy increases, and then the cut-off push plate 804 is brought by the guide piston 809 to seal the cone head 810 is pulled out from the inside of the flow-breaking cone groove 811, and then the electric telescopic rod 42 is shortened to the shortest state. At this time, the second fine filter head 5 moves downward to the lower pole, and then the river water inside the filter box 101 can enter through the pores on the filtering porous tube 58 in the second fine filter head 5 and pass through the corresponding long rod 52, rotating joint 46, bending pipe 45, water hole 75, flow-breaking cone groove 811, exchange chamber 72, transport pipe 35, pressure difference water pump 34, output pipe 110 and enter the next processing link. Then the intelligent controller 33 controls another electric telescopic rod 42 to extend, and then the electric telescopic rod 42 passes through the separation block 43, bending pipe 45, rotating joint 46 with the centrifugal bevel gear 47 and the upper centrifugal disk 53 on the first fine filter head 5. , the inner thread ring 54, the L-shaped bending rod 55, the lower centrifugal disk 56, the plug-in pipe connector 57, and the filtering porous tube 58 move upward, and then the upper centrifugal disk 53, the inner thread ring 54, the L-shaped bending rod 55, the lower centrifugal disk 56, the plug-in pipe connector 57, and the filtering porous tube 58 on the first fine filter head 5 are pulled out of the river water and enter the central control box 31, and then the bottom surface of the central control box 31 contacts and applies pressure to the U-shaped rod 67, and then the U-shaped rod 67 moves downward relative to the lower centrifugal disk 56, and then the U-shaped rod 67 pulls the hole blocking cone head 65 to move downward relative to the lower centrifugal disk 56 through the linkage sliding rod 66, and then the hole blocking cone head 65 is pulled out from the inside of the precipitation cone hole 63, and then the precipitation cone hole 63 is opened, and then the filtering porous tube 58 on the first fine filter head 5 The river water inside the filter box 101 flows back through the precipitation cone hole 63, the precipitation chamber 61 and the precipitation hole 62 to the inside of the filter box 101, and then the centrifugal bevel gear 47 meshes with the corresponding transmission bevel gear 904, and then the long shaft 21 is moved through the large pulley 909, the rotating belt 908, the rotating wheel 907, the rotating long rod 905, the meshing action of the rotating thread strip 906 and the rotating bevel gear 903, the rotating column 902, the meshing action of the transmission bevel gear 904 and the centrifugal bevel gear 47, and the rotating joint 46 with the upper centrifugal disc 53, the internal thread ring 54, the L-shaped bending rod 55, the lower centrifugal disc 56, the plug-in connector 57 and the filtering porous tube 58 on the first fine filter head 5 to rotate rapidly, and then the impurities intercepted on the outer surface of the filtering porous tube 58 are thrown away under the action of centrifugal force.At the same time, the river water remaining on the inner surface of the filter porous tube 58 will reversely pass through the pores of the filter porous tube 58 under the action of centrifugal force, playing a backwashing effect, which is used to flush out the impurities inside the pores of the filter porous tube 58 to restore the permeability of the filter porous tube 58. Then the impurities that are thrown off fall on the bottom surface of the inner cavity of the central control box 31. After that, the river water inside the impurities flows back to the river water on the bottom surface of the inner cavity of the filter box 101 through the seepage holes under the action of gravity, and then the above operation is repeated.
[0044] The above is only a preferred specific implementation manner of the present invention; but the protection scope of the present invention is not limited thereto; any technician familiar with the technical field within the technical scope disclosed by the present invention; any equivalent replacement or change based on the technical solution and improved concept of the present invention shall be covered by the protection scope of the present invention.
Claims
1. An integrated river sewage treatment device, comprising a treatment tank (1), characterized in that: The processing box (1) comprises a filter box (101), the left side surface of the filter box (101) is fixedly connected to an input pipe (102) located at the top thereof, the left side surface of the inner cavity of the filter box (101) is fixedly connected to an inclined partition (103), the right end of the inclined partition (103) is tilted downward and fixedly connected to an arc partition (104), the right end of the arc partition (104) is fixedly connected to the right side surface of the inner cavity of the filter box (101), the inclined partition (103) and the arc partition (104) together partition the inner cavity of the filter box (101), a toggle mechanism (2) located above the arc partition (104) is provided in the filter box (101), a plurality of filtering slits (105) are provided on the arc partition (104), the right side surface of the filter box (101) is fixedly connected to a material drop pipe (106) located at the top thereof, and the filter box (1 01), and the material-dropping through-pipe (106) are provided with an adapting hole connected to the filtering slit (105); a liquid level gauge (107) located at the bottom of the filtering box (101) is fixedly connected to the left side surface of the inner cavity of the filtering box (101); a power switch (108) located in the middle of the filtering box (101) is fixedly installed on the front side; a maintenance manhole (109) located at the bottom of the filtering box (101) is provided on the front side; an output pipe (110) is fixedly plugged into the back side of the filtering box (101); one end of the output pipe (110) extends into the interior of the filtering box (101) and is provided with a central controller (3); a loading plate (111) is fixedly connected to the bottom surface of the filtering box (101); a collecting bucket (112) located on the right side of the filtering box (101) is provided on the top surface of the loading plate (111); the collecting bucket (112) is adapted to the material-dropping through-pipe (106); The central controller (3) includes a central control box (31), and a disengagement mechanism (4) is provided on the bottom surface of the central control box (31). The disengagement mechanism (4) includes a waterproof casing (41). The number of waterproof casings (41) is two. The top end of the waterproof casing (41) is fixedly connected to the bottom surface of the central control box (31), and the bottom end of the waterproof casing (41) is fixedly connected to the bottom surface of the inner cavity of the filter box (101). An electric telescopic rod (42) is provided inside the waterproof casing (41), and the bottom end of the electric telescopic rod (42) is fixedly installed on the bottom surface of the inner cavity of the filter box (101). The extension rod on the electric telescopic rod (42) The top of the detachable block (43) extends to the interior of the central control box (31) and is fixedly connected to the detachable block (43); the bottom surface of the detachable block (43) is fixedly connected to a shielding plate (44) located at the left end thereof; the bottom end of the shielding plate (44) extends from the bottom surface of the central control box (31); the shielding plate (44) is movably plugged into the bottom surface of the central control box (31); a bending tube (45) is fixedly plugged into the interior of the detachable block (43); the left end of the bending tube (45) is fixedly connected to a rotating joint (46); a fine filter head (5) is provided at the bottom end of the rotating joint (46); and a centrifugal bevel gear (47) is fixedly sleeved on the outside of the rotating joint (46); The fine filter head (5) comprises a through pipe (51), the number of the through pipes (51) being two, the through pipes (51) being fixedly plugged into the bottom surface of the central control box (31), a through long rod (52) being movably plugged into the inside of the through pipe (51), the top end of the through long rod (52) being fixedly connected to the bottom surface of the rotary joint (46), the bottom end of the through long rod (52) extending into the inside of the filter box (101) and being fixedly sleeved with an upper centrifugal disc (53), the outer thread of the through long rod (52) being sleeved with an internal thread ring (54) located below the upper centrifugal disc (53), the internal thread ring An L-shaped bending rod (55) is fixedly connected to the side surface of the upper centrifugal disk (54), and the bottom end of the L-shaped bending rod (55) is fixedly connected to the lower centrifugal disk (56). The upper centrifugal disk (53) and the lower centrifugal disk (56) are fixedly connected to two surfaces close to each other with a plug-in pipe joint (57). The plug-in pipe joint (57) is movably sleeved with a filtering porous tube (58) on the outside. The end surface of the top end of the filtering porous tube (58) is in contact with the bottom surface of the upper centrifugal disk (53), and the end surface of the bottom end of the filtering porous tube (58) is in contact with the top surface of the lower centrifugal disk (56). A precipitation mechanism (6) is provided inside the lower centrifugal disk (56).
2. The integrated river sewage treatment device according to claim 1 is characterized by: The toggle mechanism (2) comprises a toggle shaft (21), one end of the toggle shaft (21) being movably sleeved on the inner wall of the filter box (101) and located above the arc partition plate (104), a toggle roller (22) being fixedly sleeved on the outside of the toggle shaft (21), three toggle plates (23) being fixedly connected to the outer surface of the toggle roller (22), the three toggle plates (23) being evenly distributed on the surface of the toggle roller (22), a plurality of toggle comb teeth (24) being fixedly connected to the end surface of the other end of the toggle plate (23), the plurality of toggle comb teeth (24) being arranged on the toggle plate (23). The toggle comb teeth (24) are evenly spaced on the end surface of the filter box (101), the toggle comb teeth (24) are matched with the filter slits (105), the toggle comb teeth (24) move inside the filter slits (105) and the matching holes, the other end of the toggle long shaft (21) extends from the front side of the filter box (101) and is fixedly sleeved with a toggle driven wheel (25), the toggle driven wheel (25) is connected to a toggle drive wheel (27) through a toggle drive belt (26), the toggle drive wheel (27) is fixedly connected to a toggle motor (28), and the toggle motor (28) is fixedly mounted on the top surface of the filter box (101).
3. The integrated river sewage treatment device according to claim 2 is characterized by: The central control box (31) is fixedly connected to the left side of the inner cavity of the filter box (101); the top of the central control box (31) is fixedly connected to the bottom of the inclined partition (103); a water seepage hole is provided on the bottom of the central control box (31); the top of the liquid level meter (107) is fixedly connected to the bottom of the central control box (31); the right side of the central control box (31) is fixedly connected to the triangular box (32); the left side of the inner cavity of the triangular box (32) is fixedly mounted with an intelligent controller (33); the bottom of the inner cavity of the triangular box (32) is fixedly mounted with a differential pressure pump (34); the end of the output pipe (110) extends into the interior of the triangular box (32) and is in communication with the differential pressure pump (34); the front of the differential pressure pump (34) is fixedly connected with a transport pipe (35); the other end of the transport pipe (35) extends from the bottom of the triangular box (32) and is provided with an exchange mechanism (7); and a rotating mechanism (9) is provided inside the central control box (31).
4. The integrated river sewage treatment device according to claim 3 is characterized by: The precipitation mechanism (6) comprises a precipitation chamber (61), the precipitation chamber (61) being arranged inside the lower centrifugal disk (56), a precipitation hole (62) being arranged on the bottom surface of the inner cavity of the precipitation chamber (61), the bottom end of the precipitation hole (62) being in an open shape and the opening being arranged on the bottom surface of the lower centrifugal disk (56), a precipitation cone hole (63) being arranged on the top surface of the inner cavity of the precipitation chamber (61), the top end of the precipitation cone hole (63) being in an open shape and the opening being arranged on the top surface of the lower centrifugal disk (56), the precipitation cone hole (63) being in communication with the filtering porous tube (58), and a lifting spring (64) being fixedly connected to the bottom surface of the inner cavity of the precipitation chamber (61) and being arranged in the middle thereof. ), a hole-blocking cone head (65) is provided on the top of the lifting spring (64), the top of the lifting spring (64) is slidably connected to the bottom surface of the hole-blocking cone head (65), the top of the hole-blocking cone head (65) is movably inserted into the interior of the precipitation cone hole (63), the bottom surface of the hole-blocking cone head (65) is fixedly connected to a linkage slide rod (66) located in the middle thereof, the bottom end of the linkage slide rod (66) passes through the lifting spring (64) and extends to the outside of the lower centrifugal disk (56) and is fixedly connected to a U-shaped rod (67), the linkage slide rod (66) is movably inserted into the interior of the lower centrifugal disk (56), and the U-shaped rod (67) is buckled onto the outside of the lower centrifugal disk (56).
5. The integrated river sewage treatment device according to claim 4 is characterized by: The exchange mechanism (7) comprises an exchange block (71), the exchange block (71) is fixedly plugged into the bottom surface of the central control box (31) and is located between the two waterproof casings (41), an exchange chamber (72) is provided at the bottom end of the exchange block (71), an end of the transport pipe (35) is fixedly plugged into the bottom surface of the exchange block (71) and is in communication with the exchange chamber (72), a pressure sensor (73) located on the left side of the transport pipe (35) is fixedly plugged into the bottom surface of the exchange block (71), the top end of the pressure sensor (73) extends to the inside of the exchange chamber (72), and the exchange block (71) is provided with a plurality of pressure sensors. 1) is provided with two receiving sockets (74) on the top surface, the two receiving sockets (74) are respectively located at the left and right ends of the exchange block (71), the ends of the bent tube (45) are matched with the receiving sockets (74), the end of one bent tube (45) is movably plugged into the receiving socket (74) at the left end of the exchange block (71), a water through hole (75) is provided on the bottom surface of the inner cavity of the receiving socket (74), the bottom end of the water through hole (75) is communicated with the exchange cavity (72), and two flow cut-off mechanisms (8) are provided inside the exchange block (71), the flow cut-off mechanisms (8) are matched with the water through holes (75).
6. The integrated river sewage treatment device according to claim 5 is characterized by: The flow cut-off mechanism (8) comprises a flow cut-off power chamber (801), the flow cut-off power chamber (801) is arranged inside the exchange block (71), a flow cut-off slide bar (802) is fixedly connected to the left side surface of the inner cavity of the flow cut-off power chamber (801), a flow cut-off spring (803) and a flow cut-off push plate (804) are movably sleeved on the outside of the flow cut-off slide bar (802), the left side surface of the inner cavity of the flow cut-off power chamber (801) is transmission-connected to the flow cut-off push plate (804) via the flow cut-off spring (803), the flow cut-off push plate (804) is slidably plugged into the inner cavity of the flow cut-off power chamber (801), a constant pressure through hole is arranged on the flow cut-off push plate (804), a touch slide hole (805) is arranged on the right side surface of the inner cavity of the flow cut-off power chamber (801) at the top thereof, the touch slide hole (805) is communicated with the receiving socket (74), and a touch slide hole (805) is fixedly connected to the right side surface of the flow cut-off push plate (804) at the top thereof. A trigger rod (806) is movably inserted into the inside of the trigger sliding hole (805). The right end of the trigger rod (806) is fixedly connected to a right-angled trapezoidal block (807). The right-angled trapezoidal block (807) is slidably inserted into the inside of the trigger sliding hole (805). The right-angled trapezoidal block (807) is adapted to the bent tube (45). A guide sliding hole (45) is provided on the right side surface of the inner cavity of the cut-off power cavity (801) at its bottom end. 808), a guide piston (809) located at the bottom end thereof is fixedly connected to the right side surface of the flow-breaking push plate (804), a blocking cone head (810) is fixedly connected to the right end of the guide piston (809), a flow-breaking cone groove (811) is opened on the right side surface of the inner cavity of the guide sliding hole (808), the flow-breaking cone groove (811) is connected to the water through hole (75), and the blocking cone head (810) is movably plugged into the inside of the flow-breaking cone groove (811).
7. The integrated river sewage treatment device according to claim 6 is characterized by: The rotating mechanism (9) comprises a rotating fixed column (901), a rotating long rod (905) and a protective shell (910). There are two rotating fixed columns (901). The left end of the rotating fixed column (901) is fixedly connected to the left side surface of the inner cavity of the central control box (31). A rotating rotating column (902) is movably inserted on the right end surface of the rotating fixed column (901). A rotating bevel gear (903) is fixedly sleeved on the outside of the rotating rotating column (902). A transmission bevel gear (904) is fixedly sleeved on the right end of the rotating rotating column (902). The transmission bevel gear (904) is meshed with the centrifugal bevel gear (47). One end of the rotating long rod (905) is movably sleeved on the inner wall of the central control box (31). The outer fixed sleeve of the rotating long rod (905) is fixedly sleeved. Two rotating threaded strips (906) are connected, and the rotating threaded strips (906) are meshed with the rotating bevel gear (903). The other end of the rotating long rod (905) extends from the front of the central control box (31) and extends from the front of the filter box (101) and is fixedly sleeved with a rotating wheel (907). The rotating wheel (907) is connected to a large pulley (909) through a rotating belt (908). The large pulley (909) is fixedly sleeved on the outside of the toggle long shaft (21). The protective shell (910) is fixedly connected to the front of the filter box (101). The rotating wheel (907), the rotating belt (908), the large pulley (909), the toggle driven wheel (25), and the toggle driving belt (26) are all located inside the protective shell (910).
Citation Information
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Superfine grille capable of achieving self sewage disposal
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