Accurate discharging integrated equipment used after deep dewatering and shaping of sludge
Through the sludge unloading equipment with a coordinated extrusion of hydraulic rods and push plates and a multi-stage filter structure, the problems of low efficiency and secondary pollution of traditional sludge unloading are solved, and efficient, stable and environmentally friendly sludge treatment is achieved.
Patent Information
- Application Number
- CN202510700585.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-28
- Publication Date
- 2025-07-25
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional sludge unloading methods are inefficient and uneven, and are prone to sticking to equipment, resulting in low processing efficiency and secondary pollution, making it difficult to meet the needs of large-scale processing.
The hydraulic rod in the viscous material transfer box is used to jointly extrude with the push plate, combined with multi-stage filtration structure and automated control to achieve step by step dehydration and impurity separation of the sludge, and automatic unloading is achieved through push plate cutting and vibration treatment and molding.
It improves the efficiency and purity of sludge dehydration, reduces the processing volume and transportation costs, reduces manual strength, and achieves efficient, stable operation of the equipment and environmental protection and energy saving.
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Figure CN120361600A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of sewage treatment and processing, and in particular to integrated equipment for precise unloading of sludge after deep dehydration and shaping. Background Art
[0002] With the gradual expansion of sewage treatment scale, the treatment of sludge after deep dehydration has become a key link in the field of environmental protection. The moisture content of sludge after dehydration usually drops below 60%, forming block or semi-solid materials, which need to be unloaded efficiently and accurately to connect with subsequent disposal (such as landfill, incineration or resource utilization).
[0003] Traditional unloading methods (such as manual shoveling and gravity drop) have problems such as low efficiency, uneven unloading, and secondary pollution, and are difficult to meet the needs of large-scale treatment. In addition, high-viscosity sludge is easy to stick to equipment, resulting in incomplete unloading and difficult cleaning, further restricting treatment efficiency.
[0004] In conjunction with the above content, it should be noted that: For example, the Chinese patent application number CN2021223819817 discloses a sludge storage and unloading device, which is equipped with a stirring mechanism for stirring the sludge and a unloading mechanism for unloading the sludge, which can prevent stones from affecting the unloading of the material and prevent the sludge above the inside of the device from drying, making it inconvenient to unload;
[0005] In fact, during the initial treatment of the sludge, most of its internal impurities have been filtered out. During the deep dehydration process, the dehydration degree is more likely to fail to meet the standard, and after deep dehydration, the sludge adheres to the inside of the device, affecting the efficiency of subsequent continuous processing. Summary of the invention
[0006] The purpose of the present invention is to provide an integrated device for accurate unloading of sludge after deep dehydration and shaping, so as to solve the problems raised.
[0007] To achieve the above-mentioned purpose, the present invention provides the following technical solution: an integrated device for accurate unloading of sludge after deep dehydration and shaping, comprising a viscous material transfer box, a plurality of groups of injection valves are symmetrically arranged on the top of one end of the viscous material transfer box, a slag unloading push plate is slidably arranged on the inner wall of one end of the viscous material transfer box, and an extrusion push plate is slidably arranged on the inner wall of the other end of the viscous material transfer box;
[0008] A partition frame is arranged at the center of the top of the viscous material transfer box, a hydraulic pressing piece is arranged side by side on the side of the partition frame, a blocking cover frame is arranged side by side on the side of the hydraulic pressing piece, and a separation unloading frame is arranged at the bottom of the viscous material transfer box;
[0009] A bottom bin frame connected to the bottom of the viscous material transfer box is arranged at the top center of the separation unloading rack, a movable plate is slidably sleeved on one end of the bottom bin frame close to the extrusion push plate, a slag unloading bin is arranged below one end of the separation unloading rack close to the movable plate, and a water filter bin is arranged on one end of the separation unloading rack close to the slag unloading push plate.
[0010] Furthermore, propulsion hydraulic rods that are transmission-connected to the slag unloading push plate and the extrusion push plate are symmetrically arranged on the inner walls on both sides of the viscous material transfer box, a pressure filter frame connected to the water filter bin is arranged on the bottom wall at one end of the viscous material transfer box, and a middle-layer compartment that cooperates with the partition frame is opened through the center of the top of the viscous material transfer box.
[0011] Furthermore, an outer layer clamping compartment cooperating with the sealing cover frame is provided through the top edge of the viscous material transfer box, and a rectangular groove recessed on the inner top wall of the viscous material transfer box and connected to the hydraulic pressing member is provided between the middle layer clamping compartment and the outer layer clamping compartment.
[0012] Furthermore, the hydraulic pressing parts are provided with multiple groups and are symmetrically penetrated and sleeved on the tops of both sides of the rectangular groove. The bottom of the hydraulic pressing parts is provided with a pressing frame which is slidably sleeved with the inside of the rectangular groove. The pressing frame is designed as a rectangular structure with a notch in the top plate, and the bottom of the pressing frame is provided with an inclined surface which is adapted to the inner wall of the viscous material transfer box.
[0013] Furthermore, a storage inner bin connected to the inner cavity of the viscous material transfer box is provided at the bottom of the partition frame, a cutting plate is slidably sleeved inside the storage inner bin, and multiple spray racks facing the cutting plate are provided on the bottom surfaces of both ends of the storage inner bin;
[0014] Cleaning pipes penetrating the storage inner bin and connected to the spray rack are symmetrically arranged at both ends of the partition frame top, and lifting cylinders 1 connected to the cutting plate transmission are symmetrically arranged inside the frame bodies on both sides of the partition frame.
[0015] Furthermore, a gate plate that penetrates into the inner cavity of the viscous material transfer box is slidably sleeved on the bottom of the blocking cover frame, and two lifting cylinders that are transmission-connected to the gate plate are symmetrically arranged in the inner walls on both sides of the blocking cover frame, and several groups of injection valves are arranged on the end of the top of the viscous material transfer box away from the blocking cover frame.
[0016] Furthermore, a rectangular slag unloading groove is provided on the bottom bin frame near the hydraulic pressing member, a sliding cavity connected to the rectangular slag unloading groove is provided on the inner wall at the top of the bottom bin frame, and adjustable hydraulic arms are symmetrically provided on the inner walls on both sides of the sliding cavity;
[0017] The movable plate is sleeved between multiple groups of adjustable hydraulic arms, an adjusting card plate is sleeved at the top center of the movable plate, and a lifting cylinder three is arranged inside the movable plate, which is transmission-connected to the adjusting card plate. A special-shaped frame is arranged at the bottom of the inner wall of the rectangular slag unloading groove near one end of the sliding cavity, and an inclined filter plate is arranged on the inclined surface of the special-shaped frame.
[0018] Furthermore, a plurality of groups of fine filter inclined plates are sleeved on the inner wall of the water filter bin, a flip plate connected with the plurality of groups of fine filter inclined plates is arranged on the inner wall of one end of the water filter bin close to the slag discharge bin, and a rotary cylinder connected with the water filter bin is arranged on the top of the flip plate;
[0019] A through opening is provided between the turnover plate and the slag unloading bin, a plurality of groups of vibration frames are symmetrically provided on the inner walls at both ends of the top of the slag unloading bin, vibration rods are provided between the plurality of groups of vibration frames, and a conveyor belt is provided at the bottom of the slag unloading bin.
[0020] The beneficial effects of the present invention are:
[0021] 1. The present invention promotes the coordinated extrusion of the hydraulic rod, the extrusion push plate and the slag unloading push plate to promote the step-by-step dehydration and solidification of the viscous sediment. Compared with the traditional dehydration method, the dehydration efficiency and degree are significantly improved, and the sediment is squeezed into a regular rectangular parallelepiped, which reduces the subsequent processing volume and transportation cost, and achieves efficient and deep dehydration.
[0022] 2. The present invention realizes secondary filtration and interception of fine impurities in sewage by means of pressure filter racks, fine filter inclined racks and other structures, and effectively separates impurities from sewage in combination with flip plates, unloading cylinders and other devices, thereby preventing impurities from clogging pipes or mixing into subsequent treatment links, ensuring the purity of separation treatment, and accurately separating impurities.
[0023] 3. The present invention cuts the rectangular sediment into sheets as needed, extrude and explode them into loose sediment blocks, and further mechanically processes them into small blocks, so as to meet the diversified processing needs of sediments in different scenarios, improve the scope of application of the equipment, and flexibly process them; the various components of the equipment operate in coordination, and automatic control is achieved from injection, extrusion dehydration, cutting and forming, explosion processing to unloading and cleaning, thereby reducing manual intervention, reducing labor intensity, and improving production efficiency and stability.
[0024] 4. The present invention uses a cleaning pipe in conjunction with a spray rack to clean the cutting plate and the inside of the equipment to prevent impurities from sticking and affecting the operation of the equipment. At the same time, the cleaning liquid and sewage can be discharged centrally through a specific pipe, which is convenient for daily maintenance of the equipment and prolongs its service life. Through multi-stage deep dehydration and separation, the sewage and impurities are diverted and transported, reducing pollutant emissions and meeting environmental protection requirements. Efficient operation of the equipment also reduces energy consumption and achieves effective utilization of resources. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0026] Figure 1 Is a three-dimensional view of the overall structure of the present invention;
[0027] Figure 2 Is a schematic diagram of the internal structure of the viscous material transfer box of the present invention;
[0028] Figure 3 Is a schematic diagram of the connection structure between the viscous material transfer box and the bottom bin rack of the present invention;
[0029] Figure 4 Is a schematic diagram of the structure of the bottom bin rack of the present invention;
[0030] Figure 5 Is a schematic diagram of the structure of the partition rack and the sealing cover rack of the present invention;
[0031] Figure 6 Is a schematic diagram of the structure of the separation and unloading rack of the present invention.
[0032] Reference numerals: 1, viscous material transfer box; 101, slag discharge push plate; 102, pressure-bearing filter rack; 104, middle layer clamping bin; 105, outer layer clamping bin; 106, extrusion push plate; 107, propulsion hydraulic rod; 2, separation and unloading rack; 201, water filtration bin; 202, slag discharge bin; 203, fine filter inclined plate; 204, turning plate; 205, vibration rack; 206, vibration rod; 207, conveyor belt; 3, injection valve; 4, partition rack; 401, storage inner bin; 402, cleaning pipeline; 403, cutting plate; 404, spraying rack; 5, sealing cover rack; 501, gate plate; 6, bottom bin rack; 601, adjusting hydraulic arm rod; 602, movable plate; 603, adjusting clamping plate; 604, special-shaped frame; 605, inclined filter plate; 7, hydraulic pressing part; 701, pressing frame. Specific embodiments
[0033] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0034] Embodiment 1: Please refer to Figure 1 - Figure 6As shown, this embodiment is an integrated device for accurate unloading of sludge after deep dehydration and shaping, including a viscous material transfer box 1, a plurality of groups of injection valves 3 are symmetrically arranged on the top of one end of the viscous material transfer box 1, a slag unloading push plate 101 is slidably arranged on the inner wall of one end of the viscous material transfer box 1, and an extrusion push plate 106 is slidably arranged on the inner wall of the other end of the viscous material transfer box 1;
[0035] A partition frame 4 is arranged at the top center of the viscous material transfer box 1, and hydraulic pressing parts 7 are arranged side by side on the side of the partition frame 4, and sealing cover frames 5 are arranged side by side on the side of the hydraulic pressing parts 7. The viscous sediment obtained by the preliminary dehydration treatment enters the interior of the unloading integrated equipment through pipes, and is connected to external pipe fittings by several groups of symmetrically arranged injection valves 3, which are used to guide the viscous sediment to enter the inner cavity of the viscous material transfer box 1 in a quantitative manner, and start the operation of the unloading integrated equipment after the inner cavity is filled once.
[0036] On the inner walls on both sides of the viscous material transfer box 1, there are symmetrically arranged propulsion hydraulic rods 107 which are transmission-connected to the slag unloading push plate 101 and the extrusion push plate 106; on the bottom wall at one end of the viscous material transfer box 1, there is arranged a pressure filter frame 102 which is connected to the water filter bin 201; and a middle-layer sandwich bin 104 which cooperates with the partition frame 4 is opened through the top center of the viscous material transfer box 1.
[0037] A plurality of groups of propulsion hydraulic rods 107 work in coordination and drive the extrusion push plate 106 to slide axially along the inner cavity close to the slag discharge push plate 101. During this process, the viscous sediment is squeezed close to the slag discharge push plate 101, and the bottom of the slag discharge push plate 101 is connected to the filter water bin 201 through the pressure filter frame 102. The viscous sediment is continuously squeezed, causing the residual water mixed inside to be squeezed out and penetrate into the filter water bin 201 along the pressure filter plate, so that the internal pressure of the viscous material transfer box 1 is relieved, and the viscous sediment is continuously squeezed and compressed, gradually deeply dehydrated and slowly solidified, until the viscous sediment is squeezed into a regular rectangular sediment above the pressure filter frame 102.
[0038] After a certain period of extrusion molding, the hydraulic rod 107 drives the extrusion push plate 106 to reset, and the slag unloading push plate 101 drives the rectangular parallelepiped to slide downward along the inner cavity until it moves close to the top of the movable plate 602 to wait for unloading processing.
[0039] An outer sandwich compartment 105 cooperating with the sealing cover frame 5 is provided through the top edge of the viscous material transfer box 1 , and a rectangular groove recessed on the inner top wall of the viscous material transfer box 1 and connected to the hydraulic pressing member 7 is provided between the middle sandwich compartment 104 and the outer sandwich compartment 105 .
[0040] The hydraulic pressing parts 7 are provided with multiple groups and symmetrically penetrate and sleeved on the tops of both sides of the rectangular groove. The bottom of the hydraulic pressing parts 7 is provided with a pressing frame 701 which is slidably sleeved with the inside of the rectangular groove. The pressing frame 701 is designed as a rectangular structure with a notch in the top plate, and the bottom of the pressing frame 701 is provided with an inclined surface adapted to the inner cavity wall of the viscous material transfer box 1.
[0041] A storage inner bin 401 connected to the inner cavity of the viscous material transfer box 1 is arranged at the bottom of the partition frame 4, a cutting plate 403 is slidably sleeved inside the storage inner bin 401, and multiple groups of spray racks 404 facing the cutting plate 403 are arranged on the bottom surfaces of both ends of the storage inner bin 401, and cleaning pipes 402 that penetrate the storage inner bin 401 and are connected to the spray racks 404 are symmetrically arranged at both ends of the top of the partition frame 4, and lifting cylinders 1 that are transmission-connected to the cutting plate 403 are symmetrically arranged inside the frame bodies on both sides of the partition frame 4.
[0042] When the extrusion push plate 106 and the slag unloading push plate 101 cooperate to clamp and entrain the rectangular block and move it through the partition frame 4, the lifting cylinder drives the partition frame 4 to slide down, causing the cutting plate 403 to penetrate into the interior of the rectangular sediment and cut off the rectangular sediment. The rectangular sediment is cut into several groups of flaky sediment solid blocks as needed. The cleaning pipe 402 is used to guide a small amount of cleaning liquid into the spray frame 404, which is used to spray a small amount of cleaning liquid on the surfaces of both ends of the cutting plate 403, so that the surface of the cutting plate 403 is clean and free of impurities.
[0043] A gate plate 501 penetrating into the inner cavity of the viscous material transfer box 1 is slidably sleeved at the bottom of the blocking cover frame 5, and two lifting cylinders are symmetrically arranged on the inner walls on both sides of the blocking cover frame 5 and are transmission-connected to the gate plate 501. A plurality of groups of injection valves 3 are arranged at one end of the top of the viscous material transfer box 1 away from the blocking cover frame 5.
[0044] The flaky sediment solid block is pushed and transferred to the top of the movable plate 602 and retained therein. The hydraulic pressing member 7 is initially started, and the hydraulic pressing member 7 initially drives the pressing frame 701 to contact the top of the flaky sediment solid block, and initially squeezes and explodes the flaky sediment solid block to obtain loose sediment blocks, which are retained between the squeezing push plate 106 and the slag unloading push plate 101. After the movable plate 602 is opened, the loose sediment blocks fall onto several groups of vibration frames 205, and the pressing frame 701 is further pressed down to squeeze the loose sediment blocks through the vibration frames 205, so as to cooperate with the vibration frames 205 to further mechanically process the loose sediment blocks to obtain small block sediments.
[0045] Embodiment 2: This embodiment is an integrated device for precise discharging after deep dewatering and shaping of sludge, including a separation discharging frame 2 disposed at the bottom of a viscous material storage tank 1. A bottom bin frame 6 connected to the bottom of the viscous material storage tank 1 is provided at the center of the top of the separation discharging frame 2. An activity plate 602 is slidably sleeved at one end of the bottom bin frame 6 close to the extrusion push plate 106. A slag discharging bin 202 is provided below one end of the separation discharging frame 2 close to the activity plate 602, and a water filtering bin 201 is provided at one end of the separation discharging frame 2 close to the slag discharging push plate 101.
[0046] A rectangular slag discharging through slot is provided through the bottom bin frame 6 close to the hydraulic pressing member 7. A sliding cavity communicated with the rectangular slag discharging through slot is provided on the inner wall of the top of the bottom bin frame 6. Adjusting hydraulic arm rods 601 are symmetrically arranged on both inner walls of the sliding cavity. The activity plate 602 is sleeved between multiple groups of adjusting hydraulic arm rods 601. An adjusting clamping plate 603 is sleeved at the center of the top of the activity plate 602, and a lifting cylinder three drivingly connected to the adjusting clamping plate 603 is arranged inside the activity plate 602. An abnormal-shaped frame 604 is provided at the bottom of the inner wall of one end of the rectangular slag discharging through slot close to the sliding cavity. An inclined filter plate 605 is provided on the inclined surface of the abnormal-shaped frame 604.
[0047] The lifting cylinder three drives the adjusting clamping plate 603 to slide down, causing the adjusting clamping plate 603 to be embedded inside the activity plate 602 and keep the same height as the sliding cavity. The adjusting hydraulic arm rods 601 drive the activity plate 602 to reset into the sliding cavity, causing the rectangular slag discharging through slot to be temporarily communicated with the slag discharging bin 202, and the loose sediment drops into the slag discharging bin 202 along the rectangular slag discharging through slot.
[0048] After the cleaning of this group of sediments is completed, the spraying frame 404 sprays and cleans the residual cleaning liquid in the middle area of the inner cavity of the viscous material storage tank 1, and part of the sewage remaining in the viscous material storage tank 1 flows along the inner cavity and converges above the rectangular slag discharging through slot, and flows down along the tops of both ends of the rectangular slag discharging through slot. It should be noted that two sets of symmetric abnormal-shaped frames 604 can be provided according to needs, which are respectively fixed at both ends of the rectangular slag discharging through slot, and a pipeline connecting the bottom of the water filtering bin 201 is arranged inside the rectangular slag discharging through slot for guiding and centrally discharging the cleaning liquid and sewage.
[0049] Vibration motors are arranged between several groups of vibration frames 205. The vibration frames 205 drive the vibration rods 206 to vibrate synchronously at a high frequency, mechanically process and burst the loose sediment blocks in contact with the vibration rods 206, and the sediment blocks drop onto the conveyor belt 207 along the gaps between several groups of vibration rods 206, and are orderly transported to the outside by the conveyor belt 207.
[0050] A number of groups of fine filter inclined plates 203 are sleeved on the inner wall of the water filtering bin 201. A turnover plate 204 which is cooperatively connected with the number of groups of fine filter inclined plates 203 is arranged on the inner wall of one end of the water filtering bin 201 close to the slag discharging bin 202. A rotary cylinder connected with the water filtering bin 201 is arranged on the top of the turnover plate 204. A through port is arranged through between the turnover plate 204 and the slag discharging bin 202. A number of groups of vibrating frames 205 are symmetrically arranged on the inner walls at both ends of the top of the slag discharging bin 202. A vibrating rod 206 is arranged between the number of groups of vibrating frames 205. A conveyor belt 207 is arranged at the bottom of the slag discharging bin 202.
[0051] The water filtering bin 201 guides the squeezed sewage to concentrate and pass through by means of the pressure-bearing filter rack 102, and uses a number of groups of fine filter racks to perform secondary filtration treatment on the sewage, further intercepting and retaining the fine impurities in the sewage. The sewage is centrally discharged outside along the bottom of the water filtering bin 201. After the slag discharging push plate 101 is started and passes above the pressure-bearing filter plate, the rotary cylinder drives the turnover plate 204 to rotate, and the turnover plate 204 unfolds the opening;
[0052] Affected by the installation inclination angle of the main body of the fine filter inclined plate 203, the fine impurities are promoted to slide along the surface of the fine filter inclined plate 203 and enter the through port. A reciprocating sliding discharging cylinder part and a discharging scraper can be arranged inside the through port, which are used to guide the fine impurities inside the through port into the slag discharging bin 202 until they fall on the conveyor belt 207, realizing the multiple separation and conveying of the impurities, as well as the multi-stage deep dehydration separation treatment of the sewage, and keeping the separate conveying of the sewage and the impurities.
[0053] Combining Embodiment 1 and Embodiment 2, it can be seen that high-efficiency deep dehydration is realized through the cooperative extrusion of the hydraulic rod and the push plate, reducing the treatment volume and cost; the multi-stage filtering structure is used to accurately separate impurities to ensure the purity; the sediment can be flexibly processed to adapt to different requirements; the whole process of the equipment runs automatically, reducing the labor intensity and improving the efficiency and stability; in addition, the multi-stage dehydration separation realizes the separate flow of the sewage and the impurities, reduces the pollution discharge, and the efficient operation reduces the energy consumption, having both environmental protection and energy-saving benefits.
[0054] The preferred embodiments of the present invention disclosed above are only used to help explain the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the present invention to only the specific implementation manners. Obviously, according to the content of this specification, many modifications and changes can be made. These embodiments are selected and specifically described in this specification to better explain the principle and practical application of the present invention, so that those skilled in the relevant technical field can well understand and utilize the present invention. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. An integrated device for accurate unloading of sludge after deep dehydration and shaping, comprising a viscous material transfer box (1), wherein a plurality of groups of injection valves (3) are symmetrically arranged on the top of one end of the viscous material transfer box (1), a slag unloading push plate (101) is slidably arranged on the inner wall of one end of the viscous material transfer box (1), and an extrusion push plate (106) is slidably arranged on the inner wall of the other end of the viscous material transfer box (1), characterized in that: A partition frame (4) is arranged at the top center of the viscous material transfer box (1), hydraulic pressing parts (7) are arranged side by side on the partition frame (4), and sealing cover frames (5) are arranged side by side on the hydraulic pressing parts (7), and a separation unloading frame (2) is arranged at the bottom of the viscous material transfer box (1); A bottom bin frame (6) connected to the bottom of the viscous material transfer box (1) is arranged at the top center of the separation unloading frame (2); a movable plate (602) is slidably sleeved on one end of the bottom bin frame (6) close to the extrusion push plate (106); a slag discharge bin (202) is arranged below one end of the separation unloading frame (2) close to the movable plate (602); and a water filter bin (201) is arranged at one end of the separation unloading frame (2) close to the slag discharge push plate (101).
2. The precise discharging integrated equipment for the deep dewatering and shaping of sludge according to claim 1, characterized in that Propulsion hydraulic rods (107) which are transmission-connected to the slag discharge push plate (101) and the extrusion push plate (106) are symmetrically arranged on the inner walls on both sides of the viscous material transfer box (1); a pressure filter frame (102) which is connected to the water filter bin (201) is arranged on the bottom wall at one end of the viscous material transfer box (1); and a middle-layer sandwich bin (104) which cooperates with the partition frame (4) is opened through the center of the top of the viscous material transfer box (1).
3. The precise discharging integrated equipment for the deep dehydration and shaping of sludge according to claim 2, characterized in that, An outer layer clamping compartment (105) cooperating with the sealing cover frame (5) is provided through the top edge of the viscous material transfer box (1), and a rectangular groove recessed on the inner top wall of the viscous material transfer box (1) and connected to the hydraulic pressing member (7) is provided between the middle layer clamping compartment (104) and the outer layer clamping compartment (105).
4. The precise discharging integrated equipment for sludge after deep dehydration and shaping according to claim 3, characterized in that, The hydraulic pressing parts (7) are provided with multiple groups and are symmetrically inserted through the tops of both sides of the rectangular groove. The bottom of the hydraulic pressing parts (7) is provided with a pressing frame (701) which is slidably sleeved in the inside of the rectangular groove. The pressing frame (701) is designed as a rectangular structure with a notch in the top plate, and the bottom of the pressing frame (701) is provided with an inclined surface adapted to the inner cavity wall of the viscous material transfer box (1).
5. The precise discharging integrated device for the sludge after deep dehydration and shaping according to claim 1, characterized in that, The bottom of the partition frame (4) is provided with a storage inner bin (401) connected to the inner cavity of the viscous material transfer box (1), a cutting plate (403) is slidably sleeved inside the storage inner bin (401), and the bottom surfaces at both ends of the storage inner bin (401) are provided with a plurality of spray racks (404) facing the cutting plate (403); Cleaning pipes (402) penetrating the storage inner bin (401) and connected to the spray rack (404) are symmetrically arranged at both ends of the top of the partition rack (4), and lifting cylinders 1 drivingly connected to the cutting plate (403) are symmetrically arranged inside the frame bodies on both sides of the partition rack (4).
6. The precise discharging integrated equipment for the deeply dewatered and shaped sludge according to claim 1, wherein, A gate plate (501) which penetrates into the inner cavity of the viscous material storage tank (1) is slidably sleeved at the bottom of the blocking cover frame (5). Lifting cylinders II which are symmetrically arranged on the inner walls of both sides of the blocking cover frame (5) and are in driving connection with the gate plate (501) are provided. A plurality of groups of filling valves (3) are arranged at one end of the top of the viscous material storage tank (1) far away from the blocking cover frame (5).
7. The precise discharging integrated equipment for the deeply dewatered and shaped sludge according to claim 1, wherein A rectangular slag discharging through groove is penetrated and arranged below the hydraulic pressing member (7) near the bottom bin frame (6). A sliding cavity communicated with the rectangular slag discharging through groove is arranged on the inner wall of the top of the bottom bin frame (6). Adjusting hydraulic arm rods (601) are symmetrically arranged on the inner walls of both sides of the sliding cavity; A movable plate (602) is sleeved between a plurality of groups of adjusting hydraulic arm rods (601). An adjusting clamping plate (603) is sleeved at the center of the top of the movable plate (602). A lifting cylinder III which is in driving connection with the adjusting clamping plate (603) is arranged inside the movable plate (602). A special-shaped frame (604) is arranged at the bottom of the inner wall of one end of the rectangular slag discharging through groove close to the sliding cavity. An inclined filter plate (605) is arranged on the inclined surface of the special-shaped frame (604).
8. The precise discharging integrated equipment for the sludge after deep dehydration and shaping according to claim 1, characterized in that A plurality of groups of fine filter inclined plates (203) are sleeved on the inner wall of the water filtering bin (201). A turning plate (204) which is in cooperative connection with the plurality of groups of fine filter inclined plates (203) is arranged on the inner wall of one end of the water filtering bin (201) close to the slag discharging bin (202). A rotary cylinder connected with the water filtering bin (201) is arranged at the top of the turning plate (204); A through port is penetrated and arranged between the turning plate (204) and the slag discharging bin (202). A plurality of groups of vibrating frames (205) are symmetrically arranged on the inner walls of both ends of the top of the slag discharging bin (202). A vibrating rod (206) is arranged between the plurality of groups of vibrating frames (205). A conveyor belt (207) is arranged at the bottom of the slag discharging bin (202).