Sewage treatment all-in-one machine
By integrating a flocculation tank, a sedimentation tank and a clear water tank into a sewage treatment all-in-one machine, combined with a pneumatic diaphragm pump and a sludge filter press, the problems of equipment dispersion and discontinuous sludge treatment are solved, achieving efficient and intensive sewage treatment and sludge management.
Patent Information
- Application Number
- CN202511241787.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-02
- Publication Date
- 2025-10-03
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing industrial wastewater treatment equipment has scattered processes, complex pipelines between equipment, large space, insufficient sludge treatment continuity, and sedimentation tanks that require manual cleaning, which can easily lead to environmental pollution.
A sewage treatment all-in-one machine is designed, which integrates a flocculation tank, a sedimentation tank and a clear water tank. It uses a pneumatic diaphragm pump and a sludge filter press to achieve integrated sludge treatment. It combines mud pushing, dredging and spreading components to improve sludge treatment efficiency and sedimentation uniformity.
It realizes the intensification of sewage treatment process, reduces pipeline complexity and land occupation, reduces labor costs, improves sludge treatment efficiency and sedimentation effect, and ensures the recycling of water resources.
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Figure CN120736652A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of sewage treatment, and in particular to an integrated sewage treatment machine. Background Art
[0002] Industrial wastewater treatment is an important part of the environmental protection field. Especially in industrial production such as ultrasonic cleaning and heat treatment, wastewater containing suspended particles, grease, metal debris and a small amount of chemical residues will be generated. The existing industrial wastewater treatment technology has formed a relatively mature treatment system, which usually follows the idea of combining physical separation with chemical reaction. In the treatment process, large particles of impurities are generally removed through facilities such as screens, and then enter the regulating tank to balance the water quality and quantity. Subsequently, with the help of flocculation reaction, flocculants are added to the sewage to make the fine suspended particles condense into flocs. The flocs are then separated from the water in the sedimentation tank, and the supernatant enters the subsequent treatment unit. The precipitated sludge is transported to the sludge treatment equipment through the sludge pump for dehydration and reduction. Finally, the clean water that meets the treatment standards can be reused or discharged, and the dehydrated sludge is disposed of according to the specifications. These technologies are widely used in industrial production and have played an important role in controlling water pollution and realizing the recycling of water resources.
[0003] However, the existing technology has the following problems: Existing industrial wastewater treatment equipment has the problem of decentralized processes. It is usually necessary to set up independent facilities such as flocculation tanks, sedimentation tanks, sludge tanks, and filter press rooms. The pipelines between the equipment are complicated, the overall area is large and maintenance is inconvenient. At the same time, the sludge treatment is not consistent enough. The sludge at the bottom of the sedimentation tank needs to be manually cleaned regularly and then transferred to the filter press equipment, which not only consumes manpower and material resources, but also easily leads to deterioration of the on-site environment due to sludge leakage. Summary of the Invention
[0004] The purpose of the present invention is to provide an integrated sewage treatment machine in order to solve the above problems and overcome the defects of the prior art, as described in detail below.
[0005] To achieve the above objectives, the present invention provides the following technical solutions: The present invention provides an integrated sewage treatment machine, comprising: a box body, wherein a flocculation tank, a sedimentation tank and a clear water tank are arranged inside the box body; a sludge treatment component is arranged on the box body, which is used for filter pressing to treat the sludge in the sedimentation tank; a first flat plate and a second flat plate are installed in the sedimentation tank, and a plurality of inclined pipes are installed between the first flat plate and the second flat plate; a mud pushing component is provided in the sedimentation tank, which is used to push the sludge at the bottom of the sedimentation tank; a dredging component is also provided in the sedimentation tank, which is used to dredge the inclined pipe; a spreading component is also provided in the sedimentation tank, which is used to spread the sludge above the first flat plate.
[0006] Preferably, a partition is installed in the flocculation tank, two agitators are installed on the flocculation tank, a water inlet pipe and two dosing pipes are provided on the flocculation tank, and both dosing pipes are connected to an automatic dosing device for adding flocculants.
[0007] Preferably, the sludge treatment component includes a pneumatic diaphragm pump and a sludge filter press, both of which are installed on a box body, the pneumatic diaphragm pump is connected to a sludge suction pipe, the end of the sludge suction pipe away from the pneumatic diaphragm pump is located at the bottom of the sedimentation tank, the pneumatic diaphragm pump is connected to the sludge filter press through a sludge pipe, the sludge filter press is installed with a return pipe, the return pipe is used to receive the clean water discharged from the sludge filter press and introduce the clean water into the clean water tank, the box body is installed with a mud receiving pan, the mud receiving pan is used to receive the sludge discharged from the sludge filter press.
[0008] Preferably, the mud pushing assembly includes a slide and a push-pull frame, the slide is horizontally slidably connected in the sedimentation tank, a plurality of mounting seats are installed on the slide, a mud pushing plate is rotatably connected to the mounting seat, both ends of the mud pushing plate are respectively hinged with a rotating rod, and the rotating rods on the multiple mud pushing plates are all hinged to the push-pull frame, a hydraulic cylinder is installed in the sedimentation tank, and the output end of the hydraulic cylinder is connected to the push-pull frame.
[0009] Preferably, a first limiting rod and a second limiting rod are installed on the mounting seat, the first limiting rod is located below the mud pushing plate, and the second limiting rod is located above the mud pushing plate.
[0010] Preferably, the dredging assembly includes a lifting frame, which is vertically slidably connected in the sedimentation tank. Two connecting rods are hinged on the lifting frame, and the ends of the two connecting rods away from the lifting frame are hinged to the slide. When the slide moves horizontally back and forth, the two connecting rods can be used to drive the lifting frame to move vertically back and forth. A plurality of light rods are hinged on the lifting frame, and the top ends of the light rods are connected to mounting rods. A plurality of dredging rods are hinged on the mounting rod in a circular array, and a movable ring is slidably sleeved on the mounting rod. A top rod is hinged on the dredging rod, and the end of the top rod away from the dredging rod is hinged to the movable ring.
[0011] Preferably, the top end of the mounting rod is connected to a ball head rod, and the ball head rod is in sliding contact with the inner wall of the inclined tube.
[0012] Preferably, a leaf spring is connected to the polished rod, one end of the leaf spring away from the polished rod is connected to the lifting frame, and a spring is provided between the movable ring and the polished rod.
[0013] Preferably, the paving assembly includes a rotating shaft, which is rotatably mounted on the first flat plate, a paving rod being connected to the top of the rotating shaft, a sliding shaft being vertically slidably connected to the inner wall of the bottom of the rotating shaft, and a lifting frame being connected to the end of the sliding shaft away from the rotating shaft, an arc-shaped groove being provided in the rotating shaft, a sliding tongue being mounted on the sliding shaft, the sliding tongue being slidably connected to the arc-shaped groove, and being able to drive the rotating shaft to rotate reciprocally through the arc-shaped groove when the sliding tongue moves vertically back and forth.
[0014] The beneficial effects are: The integrated sewage treatment machine integrates the flocculation tank, sedimentation tank and clear water tank into one through the setting of the box body, achieving the technical effects of intensifying the sewage treatment process, shortening the transportation path of each link, reducing the complexity of pipelines and saving floor space, avoiding the problems of scattered equipment, large floor space and complex pipelines in traditional treatment methods; through the setting of sludge treatment components, the sedimentation, collection, transportation, filtration and recycling of sludge are completed in an integrated manner, achieving the technical effects of reducing sludge transportation links, reducing labor costs and disposal costs, and realizing the recycling of water resources, avoiding the problems of time-consuming and labor-intensive sludge transportation and poor on-site environment; the integrated sewage treatment machine, through the setting of mud pushing components, enables the sludge at the bottom of the sedimentation tank to be pushed to the pump in a one-way and efficient manner The mud pipe achieves the technical effect of avoiding sludge accumulation and improving sludge suction efficiency, avoiding the problem that the sludge far away from the mud suction pipe cannot be effectively treated and the accumulated sludge is carried back in reverse; the sewage treatment integrated machine, through the setting of the dredging component, can effectively remove the sludge lumps in the inclined pipe, achieving the technical effect of preventing the inclined pipe from being blocked and ensuring the stability of the sedimentation efficiency, and avoiding the problem that the inclined pipe is blocked by sludge adhesion and agglomeration, thereby affecting the sedimentation; the sewage treatment integrated machine, through the setting of the spreading component, can evenly spread the sludge above the first flat plate, achieving the technical effect of allowing each inclined pipe to evenly receive and treat the sludge and ensuring the uniformity of sludge sedimentation at the bottom of the sedimentation tank, and avoiding the problem of uneven sludge distribution in the inclined pipe due to the fixation of the overflow port of the flocculation tank. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0016] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic structural diagram of the sludge treatment component of the present invention; Figure 3 It is a schematic structural diagram of the flocculation tank of the present invention; Figure 4 It is a schematic structural diagram of the mud pushing assembly of the present invention; Figure 5 It is a schematic diagram of the push-pull frame structure of the present invention; Figure 6 It is a schematic structural diagram of a mud pusher of the present invention; Figure 7 It is a schematic structural diagram of the dredging assembly of the present invention; Figure 8 It is a schematic diagram of the lifting frame structure of the present invention; Figure 9 2. It is a schematic diagram of the polished rod structure of the present invention; Figure 10 It is a schematic diagram of the structure of the dredging rod of the present invention; Figure 11 is a schematic structural diagram of the paving assembly of the present invention; Figure 12 It is a schematic diagram of the arc groove structure of the present invention.
[0017] The following are the descriptions of the reference numerals: 1. Box body; 2. Flocculation tank; 21. Partition; 3. Sedimentation tank; 31. First plate; 32. Second plate; 33. Inclined tube; 4. Clear pool; 5. Agitator; 6. Sludge treatment assembly; 61. Sludge extraction pipe; 62. Pneumatic diaphragm pump; 63. Sludge filter press; 64. Return pipe; 65. Sludge receiving tray; 7. Mud pushing assembly; 71. Hydraulic cylinder; 72. Slide; 73. Mounting seat; 74. Mud pushing plate; 75. First limiting rod; 76. Second limiting rod; 77. Rotating rod; 78. Push-pull frame; 8. Dredging assembly; 81. Lifting frame; 82. Connecting rod; 83. Polished rod; 84. Leaf spring; 85. Mounting rod; 86. Dredging rod; 87. Ejector rod; 88. Movable ring; 89. Ball rod; 9. Paving assembly; 91. Rotating shaft; 92. Paving rod; 93. Arc groove; 94. Sliding shaft; 95. Sliding tongue. DETAILED DESCRIPTION
[0018] To make the objectives, technical solutions, and advantages of the present invention more clear, the technical solutions of the present invention will be described in detail below. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other implementations obtained by ordinary technicians in this field without making any creative work are within the scope of protection of the present invention.
[0019] Example 1 Existing sewage treatment methods usually require the separate establishment of flocculation tanks, sedimentation tanks, sludge tanks, and filter press rooms. The equipment is dispersed, occupies a large area, and has complex pipelines. In addition, the sedimentation tank needs to be cleaned regularly and the sludge is transferred to the filter press. Transferring the sludge to the filter press is time-consuming and labor-intensive, and transferring the sludge will also lead to a poor on-site environment. This embodiment is specially invented to solve the above problems.
[0020] See also Figure 1 - Figure 6 A sewage treatment system comprises a housing 1 housing a flocculation tank 2, a sedimentation tank 3, and a clear water tank 4. Housing 1 serves as the supporting structure for the entire system, integrating these three elements into a single unit, thereby achieving an intensified sewage treatment process. Industrial wastewater to be treated first enters flocculation tank 2 for flocculation, generating flocs that flow into sedimentation tank 3 for sedimentation and separation. The separated clear water enters clear water tank 4 for storage and reuse. The various tanks are interconnected within housing 1, shortening the sewage transport path between treatment stages, reducing the complexity of the piping, and conserving the overall equipment footprint.
[0021] Furthermore, a first flat plate 31 and a second flat plate 32 are installed in the sedimentation tank 3, and a plurality of inclined tubes 33 are installed between the first flat plate 31 and the second flat plate 32; the first flat plate 31 and the second flat plate 32 play a fixed supporting role for the inclined tubes 33, ensuring that the inclined tubes 33 are arranged at a stable angle in the sedimentation tank 3. When the sewage with flocculant added enters the sedimentation tank 3, the water flows through the channels in the plurality of inclined tubes 33, and the sludge in the sewage settles into the inner walls of the plurality of inclined tubes 33 under the action of gravity, and then slides down along the inner walls of the inclined tubes 33 to the bottom of the sedimentation tank 3, thereby achieving the effect of sludge sedimentation.
[0022] In addition, a partition 21 is installed in the flocculation tank 2, two stirrers 5 are installed on the flocculation tank 2, an overflow port is provided on the partition 21, and an overflow port is also provided on the flocculation tank 2. A water inlet pipe and two dosing pipes are provided on the flocculation tank 2. The two dosing pipes are connected to the automatic dosing equipment for adding flocculants. The partition 21 divides the flocculation tank 2 into two areas. The two stirrers 5 stir the two areas respectively, and the two dosing pipes add flocculants to the two areas respectively. The sewage first enters the first area through the water inlet pipe, and under the action of the stirrer 5 in this area, the sewage The flocculant undergoes a preliminary mixing reaction to form small flocs, and then the sewage enters the second area through the overflow port on the partition 21. This overflow port design extends the flow path of the sewage in the flocculation tank 2, so that the sewage is further stirred by another agitator 5 in the second area, and fully reacts with the newly added flocculant, allowing the small flocs to gradually aggregate into larger and more stable flocs. The sewage that has undergone two stages of sufficient flocculation reaction flows smoothly into the sedimentation tank 3 through the overflow port on the flocculation tank 2, creating favorable conditions for subsequent sedimentation and separation, and improving the flocculation effect and sewage treatment efficiency as a whole.
[0023] In addition, the box body 1 is provided with a sludge treatment component 6 for filter pressing the sludge in the sedimentation tank 3; the sludge treatment component 6 includes a pneumatic diaphragm pump 62 and a sludge filter press 63, both of which are installed on the box body 1, and the pneumatic diaphragm pump 62 is connected to a sludge pumping pipe 61, and the end of the sludge pumping pipe 61 away from the pneumatic diaphragm pump 62 is located at the bottom of the sedimentation tank 3, and the pneumatic diaphragm pump 62 is connected to the sludge filter press 63 through the sludge pipe. The sludge filter press 63 is provided with a return pipe 64, which is used to receive the clean water discharged from the sludge filter press 63 and introduce the clean water into the clean water tank 4, and the box body 1 is provided with a mud receiving tray 65, which is used to receive the sludge filter press 63. The sludge deposited at the bottom of the sedimentation tank 3 is extracted by the pneumatic diaphragm pump 62 through the mud extraction pipe 61. The pneumatic diaphragm pump 62 uses air pressure to drive the diaphragm to reciprocate to generate suction and thrust, and transports the sludge through the sludge pipe to the sludge filter press 63. The sludge filter press 63 applies pressure to the sludge, so that the water in the sludge is separated through the filter cloth, and the formed clean water flows into the clean water tank 4 through the return pipe 64 for recovery, and the dehydrated sludge is discharged from the sludge filter press 63 and falls into the mud receiving tray 65. The entire sludge processing assembly 6 realizes the integrated processing of sludge from collection, transportation, filtration and recovery, reduces the sludge transportation link, reduces labor cost and disposal cost, and realizes the recycling of water resources.
[0024] It is worth noting that a mud pushing assembly 7 is provided in the sedimentation tank 3 for pushing the sludge at the bottom of the sedimentation tank 3; the mud pushing assembly 7 includes a slide 72 and a push-pull frame 78, the slide 72 is horizontally slidably connected in the sedimentation tank 3, a plurality of mounting seats 73 are installed on the slide 72, and a mud pushing plate 74 is rotatably connected to the mounting seat 73, and the two ends of the mud pushing plate 74 are respectively hinged with a rotating rod 77, and the two rotating rods 77 on the mud pushing plate 74 are set as a pair, and the rotating rods 77 on the plurality of mud pushing plates 74 are all hinged with the push-pull frame 78, and the sedimentation tank 3 is installed with a hydraulic cylinder 71, the output end of the hydraulic cylinder 71 is connected to the push-pull frame 78, and the first limit rod 75 and the second limit rod 76 are installed on the mounting seat 73. The first limit rod 75 is located below the mud pushing plate 74, and the second limit rod 76 is located above the mud pushing plate 74; the mud pumping pipe 61 is located to the right of the multiple mud pushing plates 74. When the hydraulic cylinder 71 is running, it can drive the push-pull frame 78 to move back and forth left and right. When the hydraulic cylinder 71 pulls the push-pull frame 78 to the right, the push-pull frame 78 synchronously drives multiple pairs of rotating rods 77. When the hopper 73 is in the closed position, the hopper 73 is in the closed position, and the hopper 73 is in the closed position, so that the hopper 73 is in the open position, and the hopper 73 is in the closed position, so that the hopper 73 is in the closed position, and the hopper 73 is in the closed position, so that the hopper 73 is in the closed position, and the hopper 73 is in the closed position When the hydraulic cylinder 71 drives the push-pull frame 78 to move to the left, the rotating rod 77 drives the mud pushing plate 74 to flip counterclockwise until the mud pushing plate 74 is against the second limit rod 76. At this time, the mud pushing plate 74 is in a nearly horizontal state. In this state, when the slide 72 is reset to the left, the mud pushing plate 74 will not have a significant pushing effect on the bottom sludge, thereby avoiding the accumulated sludge from being brought back in the reverse direction, ensuring the one-way high efficiency of sludge pushing, and further improving the working efficiency of the sludge treatment component 6.
[0025] Example 2 Based on Example 1, after long-term use, sludge will adhere to the inner wall of the inclined tube 33, and some sludge will easily agglomerate after entering the sedimentation tank 3. When there is a lot of sludge attached to the inclined tube 33 or agglomerated sludge enters, it may cause the inclined tube 33 to be blocked, thereby affecting the sludge sedimentation efficiency. This embodiment is specially invented to solve the above problems.
[0026] See also Figure 2 、 Figure 7 - Figure 10, a dredging assembly 8 is also provided in the sedimentation tank 3 for dredging the inclined pipe 33; the dredging assembly 8 includes a lifting frame 81, which is vertically slidably connected to the sedimentation tank 3, and two connecting rods 82 are hinged on the lifting frame 81. The ends of the two connecting rods 82 away from the lifting frame 81 are hinged to the slide 72. When the slide 72 moves back and forth horizontally, the two connecting rods 82 can be used to drive the lifting frame 81 to move back and forth vertically. A plurality of light rods 83 are hinged on the lifting frame 81, and the top of the light rod 83 is connected to a mounting rod 85. A plurality of dredging rods 86 are hinged on the mounting rod 85 in a circular array, and a movable sleeve is slidably connected on the mounting rod 85. Ring 88, a push rod 87 is hinged on the dredging rod 86, and the end of the push rod 87 away from the dredging rod 86 is hinged to the movable ring 88; the top of the mounting rod 85 is connected to a ball rod 89, and the ball rod 89 is in sliding contact with the inner wall of the inclined tube 33; a leaf spring 84 is connected to the light rod 83, and the end of the leaf spring 84 away from the light rod 83 is connected to the lifting frame 81, and a spring is provided between the movable ring 88 and the light rod 83; when the slide 72 moves back and forth horizontally in the sedimentation tank 3, the two connecting rods 82 drive the lifting frame 81 to do vertical reciprocating motion synchronously in the sedimentation tank 3, and when the lifting frame 81 moves up, it drives multiple light rods 83 to move up accordingly. The mounting rod 85 at the top of the light rod 83 brings the ball head rod 89 to slide along the inner wall of the inclined tube 33. Since the light rod 83 is hinged to the lifting frame 81 and is equipped with a leaf spring 84, the light rod 83 will naturally tilt with the angle of the inclined tube 33. The elastic force of the leaf spring 84 always ensures that the ball head rod 89 fits the inner wall of the inclined tube 33, and at the same time assists the light rod 83 to reset after moving down. When the light rod 83 drives the mounting rod 85 to move upward, the multiple dredging rods 86 are in a folded state (similar to a folded umbrella), which can smoothly pass through the sludge block in the inclined tube 33. When the light rod 83 drives the mounting rod 85 to move downward, the sludge block will block the dredging rod 86. The force pushes the multiple dredging rods 86 to flip outward, and the multiple dredging rods 86 drive the movable ring 88 to slide up along the mounting rod 85 through the top rod 87, so that the dredging rods 86 are in an open state (similar to an open umbrella), thereby hooking the sludge block and bringing it downward. When the dredging rods 86 are separated from the inclined tube 33, the spring between the movable ring 88 and the light rod 83 generates a reset force, pulling the movable ring 88 down. When the movable ring 88 moves downward, the dredging rods 86 are retracted through the top rod 87, and the light rod 83 is also reset by the elastic force of the leaf spring 84, completing one dredging, effectively preventing the inclined tube 33 from being blocked by sludge agglomeration and affecting the sedimentation efficiency.
[0027] Example 3 On the basis of Example 2, since the overflow port of the flocculation tank 2 is fixed, the sludge overflowing from the overflow port is easily deposited near the overflow port, so that there is more sludge in the inclined tube 33 close to the overflow port, and less sludge in the inclined tube 33 far from the overflow port, resulting in uneven distribution of sludge in multiple inclined tubes 33, and further resulting in uneven sedimentation of sludge at the bottom of the sedimentation tank 3. This embodiment is specially invented to solve the above problem.
[0028] See also Figure 2 、 Figure 11 - Figure 12 , a spreading assembly 9 is also provided in the sedimentation tank 3 for spreading the sludge above the first flat plate 31. The spreading assembly 9 includes a rotating shaft 91, which is rotatably mounted on the first flat plate 31. A spreading rod 92 is connected to the top of the rotating shaft 91, and a sliding shaft 94 is vertically slidably connected to the inner wall of the bottom of the rotating shaft 91. The end of the sliding shaft 94 away from the rotating shaft 91 is connected to the lifting frame 81. An arc groove 93 is provided in the rotating shaft 91, and a sliding tongue 95 is installed on the sliding shaft 94. The sliding tongue 95 is slidably connected to the arc groove 93. When the sliding tongue 95 moves back and forth vertically, it can drive the rotating shaft 91 to rotate back and forth through the arc groove 93. When the lifting frame 81 makes a vertical reciprocating motion, it will synchronize The sliding shaft 94 connected to it is driven to slide up and down on the inner wall of the bottom of the rotating shaft 91. At this time, the sliding tongue 95 on the sliding shaft 94 will slide along the arc groove 93 in the rotating shaft 91. Since the arc groove 93 is designed in a curved trajectory, the vertical movement of the sliding tongue 95 will be converted into a rotational force of the rotating shaft 91 through the guiding effect of the arc groove 93, driving the rotating shaft 91 to rotate back and forth on the first flat plate 31. The spreading rod 92 at the top of the rotating shaft 91 rotates synchronously with the rotating shaft 91, forming a fan-shaped spreading track above the first flat plate 31, which can evenly spread the sludge accumulated near the overflow port of the flocculation tank 2 to the surrounding area, avoiding excessive accumulation of sludge in local areas. Through this reciprocating spreading action, the sludge above the first flat plate 31 can be evenly distributed, and then the inclined pipes 33 at different positions can evenly receive and process the sludge, effectively solving the problem of uneven sludge distribution in the inclined pipe 33 caused by the fixed overflow port, ensuring the uniformity of sludge sedimentation at the bottom of the sedimentation tank 3, and improving the overall sedimentation effect.
[0029] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any modifications or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present invention should be included in the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be based on the scope of protection of the claims.
Claims
1. A sewage treatment integrated machine, characterized in that: include: A box body (1), wherein a flocculation tank (2), a sedimentation tank (3) and a clear water tank (4) are provided in the box body (1); The box (1) is provided with a sludge treatment component (6) for filtering and treating the sludge in the sedimentation tank (3); A first flat plate (31) and a second flat plate (32) are installed in the sedimentation tank (3), and a plurality of inclined tubes (33) are installed between the first flat plate (31) and the second flat plate (32); The sedimentation tank (3) is provided with a mud pushing component (7) for pushing the mud at the bottom of the sedimentation tank (3); The sedimentation tank (3) is further provided with a dredging component (8) for dredging the inclined pipe (33); The sedimentation tank (3) is also provided with a paving assembly (9) for paving the sludge above the first flat plate (31).
2. The integrated sewage treatment machine according to claim 1, characterized in that: A partition (21) is installed in the flocculation tank (2), two agitators (5) are installed on the flocculation tank (2), and a water inlet pipe and two dosing pipes are provided on the flocculation tank (2). Both dosing pipes are connected to an automatic dosing device for adding flocculants.
3. The integrated sewage treatment machine according to claim 2, characterized in that: The sludge treatment component (6) includes a pneumatic diaphragm pump (62) and a sludge filter press (63), both of which are installed on the box body (1). The pneumatic diaphragm pump (62) is connected to a sludge pumping pipe (61), and one end of the sludge pumping pipe (61) away from the pneumatic diaphragm pump (62) is located at the bottom of the sedimentation tank (3). The pneumatic diaphragm pump (62) is connected to the sludge filter press (63) through the sludge pipe. The sludge filter press (63) is installed with a return pipe (64), and the return pipe (64) is used to receive the clean water discharged from the sludge filter press (63) and introduce the clean water into the clean water tank (4). The box body (1) is installed with a mud receiving pan (65), and the mud receiving pan (65) is used to receive the sludge discharged from the sludge filter press (63).
4. The integrated sewage treatment machine according to claim 3, characterized in that: The mud pushing assembly (7) includes a slide (72) and a push-pull frame (78), the slide (72) is horizontally slidably connected in the sedimentation tank (3), a plurality of mounting seats (73) are installed on the slide (72), a mud pushing plate (74) is rotatably connected to the mounting seat (73), and both ends of the mud pushing plate (74) are respectively hinged with a rotating rod (77), and the rotating rods (77) on the plurality of mud pushing plates (74) are all hinged to the push-pull frame (78), a hydraulic cylinder (71) is installed in the sedimentation tank (3), and the output end of the hydraulic cylinder (71) is connected to the push-pull frame (78).
5. The integrated sewage treatment machine according to claim 4, characterized in that: A first limiting rod (75) and a second limiting rod (76) are mounted on the mounting seat (73), wherein the first limiting rod (75) is located below the mud pushing plate (74), and the second limiting rod (76) is located above the mud pushing plate (74).
6. The integrated sewage treatment machine according to claim 4, characterized in that: The dredging assembly (8) includes a lifting frame (81), the lifting frame (81) is vertically slidably connected in the sedimentation tank (3), two connecting rods (82) are hinged on the lifting frame (81), and the ends of the two connecting rods (82) away from the lifting frame (81) are hinged to the slide (72). When the slide (72) moves horizontally back and forth, the two connecting rods (82) can drive the lifting frame (81) to move vertically back and forth, and a plurality of light rods (83) are hinged on the lifting frame (81), and the top ends of the light rods (83) are connected to the mounting rods (85). A plurality of dredging rods (86) are hinged on the mounting rods (85) in a circumferential array, and a movable ring (88) is slidably sleeved on the mounting rods (85). A top rod (87) is hinged on the dredging rods (86), and the end of the top rod (87) away from the dredging rods (86) is hinged to the movable ring (88).
7. The integrated sewage treatment machine according to claim 6, characterized in that: The top end of the mounting rod (85) is connected to a ball rod (89), and the ball rod (89) is in sliding contact with the inner wall of the inclined tube (33).
8. The integrated sewage treatment machine according to claim 7, characterized in that: The polished rod (83) is connected to a leaf spring (84), one end of the leaf spring (84) away from the polished rod (83) is connected to the lifting frame (81), and a spring is provided between the movable ring (88) and the polished rod (83).
9. The integrated sewage treatment machine according to claim 6, characterized in that: The paving assembly (9) includes a rotating shaft (91), which is rotatably mounted on the first flat plate (31), a paving rod (92) is connected to the top of the rotating shaft (91), and a sliding shaft (94) is vertically slidably connected to the inner wall of the bottom of the rotating shaft (91), and the end of the sliding shaft (94) away from the rotating shaft (91) is connected to the lifting frame (81), an arc groove (93) is provided in the rotating shaft (91), and a sliding tongue (95) is installed on the sliding shaft (94), and the sliding tongue (95) is slidably connected to the arc groove (93). When the sliding tongue (95) moves vertically back and forth, it can drive the rotating shaft (91) to rotate back and forth through the arc groove (93).