Organic wastewater treatment equipment
By designing organic wastewater treatment equipment and using a lifting bracket and intelligent controller to adjust the phase interface in real time, the problem of time-consuming and labor-intensive phase entrainment adjustment in the initial stage of the existing centrifugal extractor was solved, a stable separation effect was achieved, maintenance was simplified, and treatment efficiency was improved.
Patent Information
- Application Number
- CN202510415886.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-03
- Publication Date
- 2025-09-05
AI Technical Summary
Existing centrifugal extractors are time-consuming and labor-intensive to adjust phase entrainment in the initial stage. Changes in the proportion of organic matter in wastewater lead to poor separation effects, and maintenance is cumbersome, affecting treatment efficiency.
An organic wastewater treatment equipment was designed, including a lifting bracket, an intelligent controller, a centrifugal extraction component, a maintenance assistant, an assembled centrifugal component and an output combination mechanism. It can dynamically adjust the phase entrainment by real-time detection and adjustment of the phase interface position and simplify the maintenance process.
It achieves a stable separation effect when the proportion of organic matter changes, simplifies the maintenance process, and improves treatment efficiency and practicality.
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Figure CN120589846A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of sewage treatment equipment, and more particularly to an organic wastewater treatment equipment. Background Art
[0002] Organic wastewater is a common type of wastewater, which contains a large amount of organic matter. If the organic wastewater is discharged directly, it will not only cause great pollution to the environment, but also cause great harm to the health of the surrounding people. Therefore, organic wastewater must be treated and meet the standards before it can be discharged. Centrifugal extractor is a device for treating organic wastewater. It is a new, fast and efficient liquid-liquid mixing and separation equipment. It uses a motor to drive the drum to rotate at high speed. Two liquids with different densities and immiscible with each other complete mixing and mass transfer under the action of the shear force generated by the rotation of the drum or blades, and are quickly separated under the action of the centrifugal force generated by the high-speed rotation of the drum. It is widely used in fine chemicals, pharmaceuticals, hydrometallurgy, petrochemicals, environmental protection, plant extraction and other industries.
[0003] The existing centrifugal extractor needs to adjust the phase entrainment in the initial stage of use. When adjusting the phase entrainment, a certain amount of light phase discharge liquid and heavy phase discharge liquid is first collected, and then the proportion of heavy phase in the light phase discharge liquid and the proportion of light phase in the heavy phase discharge liquid are measured. Then, when the above proportions do not meet the requirements, the phase entrainment is adjusted by controlling the heavy phase flow rate or the light phase flow rate, and then sampling and retesting are performed until the phase entrainment meets the requirements. However, the work of adjusting the phase entrainment is extremely time-consuming and labor-intensive, resulting in low wastewater treatment efficiency, and the proportion of organic matter in the wastewater is not fixed. When the proportion of organic matter in the wastewater changes, the phase entrainment will also change, resulting in poor separation effect. At the same time, in order to make the centrifugal extractor work normally, people need to maintain it regularly. The maintenance method is too troublesome, time-consuming and labor-intensive. Therefore, it is urgent to design an organic wastewater sewage treatment equipment. Summary of the Invention
[0004] 1. Technical problems to be solved
[0005] In view of the existing centrifugal extractors in the prior art, it is necessary to adjust the phase entrainment in the initial stage of use. When adjusting the phase entrainment, a certain amount of light phase discharge liquid and heavy phase discharge liquid is first collected, and then the proportion of heavy phase in the light phase discharge liquid and the proportion of light phase in the heavy phase discharge liquid are measured. Then, when the above proportions do not meet the requirements, the phase entrainment is adjusted by controlling the heavy phase flow rate or the light phase flow rate, and then sampling and re-testing are performed until the phase entrainment meets the requirements. However, the work of adjusting the phase entrainment is extremely time-consuming and labor-intensive, resulting in low wastewater treatment efficiency, and the proportion of organic matter in the wastewater is not fixed. When the proportion of organic matter in the wastewater changes, the phase entrainment will also change, resulting in poor separation effect. At the same time, in order to make the centrifugal extractor work normally, people need to maintain it regularly. The maintenance method is too troublesome, time-consuming and labor-intensive. The purpose of the present invention is to provide an organic wastewater sewage treatment equipment, 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] An organic wastewater treatment equipment includes a lifting bracket, the lifting bracket includes a lifting plate, a lifting leg is fixedly connected to the side of the lifting plate, an intelligent controller is fixedly installed on the left side of one of the lifting legs, a centrifugal extraction component is provided on the lifting plate, the centrifugal extraction component includes a stationary cylinder, the stationary cylinder is fixedly plugged into the lifting plate, a dislocation assistant is provided at the bottom end of the lifting leg, the dislocation assistant includes a load-bearing pad, the top surface of the load-bearing pad is fixedly connected to the bottom end of the lifting leg, a maintenance assistant is provided on the load-bearing pad, and the maintenance assistant includes a load-bearing slide Block, the load-bearing slider is installed on the top surface of the load-bearing pad, and the interior of the load-bearing slider is provided with an assembling centrifugal component, a splicing installation component, and a fixed locking component. The assembling centrifugal component includes an inner flower groove tube, and the inner flower groove tube is movably inserted on the top surface of the load-bearing slider. The splicing installation component includes a splicing chamber, and the splicing chamber is opened inside the load-bearing slider. The fixed locking component includes a fixed upper cavity, and the fixed upper cavity is opened inside the load-bearing slider. An output combination mechanism is provided on the top surface of the stationary cylinder, and the output combination mechanism includes a fixed frustum, and the fixed frustum is fixedly connected to the top surface of the stationary cylinder.
[0009] Preferably, the centrifugal extraction component further comprises a centrifugal column chamber, which is arranged inside the stationary cylinder, and a tapered through-hole is provided on the bottom surface of the inner cavity of the centrifugal column chamber, a centrifugal bucket located in the middle thereof is movably connected inside the tapered through-hole, and the top of the centrifugal bucket extends upward into the interior of the centrifugal column chamber, an annular gap mixing chamber is formed between the surface of the centrifugal bucket, the inner wall of the centrifugal column chamber and the inner wall of the tapered through-hole, a wastewater inlet pipe is fixedly connected to the left side of the stationary cylinder, a wastewater electric valve is installed on the wastewater inlet pipe, a solvent inlet pipe is fixedly connected to the right side of the stationary cylinder, a solvent electric valve is installed on the solvent inlet pipe, a centrifugal flower slot pipe located in the middle thereof is movably connected inside the centrifugal bucket, radial blades are fixedly connected to the surface of the centrifugal flower slot pipe, a shielding disc located at the bottom end of the centrifugal flower slot pipe is fixedly sleeved on the outside of the centrifugal flower slot pipe, the bottom end of the radial blades is fixedly connected to the top surface of the shielding disc, the bottom end of the centrifugal flower slot pipe is transmission-connected to the centrifugal motor, and a conveying through-hole is provided on the bottom surface of the centrifugal bucket.
[0010] Preferably, the maintenance assistant also includes an equipment groove, which is provided on the top surface of the load-bearing sliding block, the centrifugal motor is located inside the equipment groove and fixedly installed on the bottom surface of its inner cavity, the inner flower slot tube is movably inserted on the bottom surface of the inner cavity of the equipment groove, and a transmission chamber located below the equipment groove is provided inside the load-bearing sliding block, and an auxiliary motor is fixedly installed on the bottom surface of the inner cavity of the equipment groove, and the bottom end of the output shaft on the auxiliary motor extends downward to the interior of the transmission chamber and is fixedly connected to the action bevel gear, and a mounting boss is fixedly connected on the top surface of the inner cavity of the transmission chamber, and a transmission transverse shaft is movably inserted inside the mounting boss, and a passive bevel gear is fixedly sleeved on the outside of the transmission transverse shaft, and the passive bevel gear is meshed with the action bevel gear, and the left and right ends of the transmission transverse shaft are fixedly connected to the driving bevel gear, and two transmission vertical rods are movably inserted on the bottom surface of the inner cavity of the transmission chamber. The two transmission vertical rods are respectively located at the left and right ends of the transmission chamber. The outside of the transmission vertical rod is fixedly sleeved with a driven bevel gear, and the driven bevel gear is meshed with the driving bevel gear. The top end of the transmission vertical rod is transmission-connected with an auxiliary threaded rod, and the external thread of the auxiliary threaded rod is sleeved with an auxiliary lifting plate. The top surface of the auxiliary lifting plate is in contact with the bottom surface of the stationary cylinder. A frustum-shaped pipe is fixedly connected to the top surface of the auxiliary lifting plate, and a frustum-shaped sealing ring is provided on the outside of the frustum-shaped pipe. The maintenance assistant also includes a tapered opening, which is opened on the bottom surface of the stationary cylinder and connected to the tapered through hole. The frustum-shaped pipe and the frustum-shaped sealing ring are both movably inserted into the inside of the tapered opening. The maintenance assistant also includes a socket groove, which is opened on the bottom surface of the stationary cylinder and located on one side of the tapered opening. The top end of the auxiliary threaded rod is movably inserted into the inside of the socket groove.
[0011] Preferably, the assembled centrifugal assembly also includes a transmission bevel gear and a centrifugal bevel gear. The transmission bevel gear is fixedly connected to the end of the output shaft on the centrifugal motor. The centrifugal bevel gear is fixedly sleeved on the outside of the inner flower slot tube. The inner part of the inner flower slot tube is movably plugged with an outer flower slot rod. The outer sliding sleeve of the outer flower slot rod is provided with an inner flower slot rotating tube. The outer sliding sleeve of the inner flower slot rotating tube is provided with a seal. The seal is fixedly inserted into the interior of the auxiliary lifting plate. The outer part of the inner flower slot rotating tube is fixedly sleeved with a mixing disc located inside the frustum-shaped pipe. The top surface of the mixing disc is fixed A stirring column is fixedly connected, and a positioning support ring is fixedly sleeved on the outside of the stirring column. The assembled centrifugal component also includes a receiving hole, which is opened on the bottom surface of the centrifugal barrel. The top of the stirring column is movably inserted into the inside of the receiving hole, and the top surface of the positioning support ring is against the bottom surface of the centrifugal barrel. The top of the inner flower groove rotating tube extends from the conveying through hole to the inside of the centrifugal barrel. The top of the inner flower groove rotating tube is connected to the outer angular inner spline tube, and the outer side of the outer angular inner spline tube is movably sleeved with the inner angular tube, and the inner angular tube is fixedly connected to the bottom surface of the shielding disc.
[0012] Preferably, the patchwork installation assembly also includes a patchwork slide, which is opened on the right side of the inner cavity of the patchwork chamber, and the patchwork slide is slidably inserted into the interior of the patchwork slide, and the patchwork slide is fixedly connected to the patchwork flower trough tube, which is slidably inserted into the interior of the patchwork chamber, and the interior of the patchwork flower trough tube is slidably inserted into the interior of the patchwork chamber. A transmission flower trough rod is slidably inserted into the interior of the patchwork chamber, and the top of the transmission vertical rod extends to the interior of the patchwork chamber and is fixedly connected to the bottom end of the transmission flower trough rod, and the external movable sleeve of the transmission flower trough rod is provided with a jacking spring, and the bottom surface of the patchwork flower trough tube is transmission-connected to the bottom surface of the inner cavity of the patchwork chamber through the jacking spring. The bottom end of the auxiliary threaded rod is fixedly connected to the top surface of the patchwork flower trough tube, and a load-bearing linkage plate is provided on the top surface of the patchwork flower trough tube. The top end of the patchwork flower trough tube is movably sleeved on the bottom surface of the load-bearing linkage plate. A through hole is provided on the load-bearing linkage plate. The auxiliary threaded rod is movably inserted into the inside of the through hole. An accommodating through hole is provided in the middle of the load-bearing linkage plate. The outer flower trough rod is movably inserted into the inside of the accommodating through hole. The patchwork installation assembly also includes a load-bearing small plate, which is fixedly sleeved on the outside of the outer flower trough rod, and the top surface of the load-bearing small plate is in contact with the bottom surface of the load-bearing linkage plate.
[0013] The top end of the prestressed spring is fixedly connected to the top surface of the inner cavity of the fixed lower cavity, and the top end of the prestressed spring is fixedly connected to the top surface of the inner cavity of the fixed upper cavity, and the bottom end of the prestressed spring is fixedly connected to the inner cavity of the fixed lower cavity, and the bottom end of the prestressed spring is fixedly connected to the inner cavity of the fixed lower cavity.
[0014] Preferably, the dislocation assistant also includes a dislocation slide, the dislocation slide is opened on the top surface of the load-bearing pad, the end of the dislocation slide perpendicular to the paper surface is sealed, and the end of the dislocation slide perpendicular to the paper surface is open, the load-bearing slider is movably inserted into the interior of the dislocation slide, and locking screws are movably inserted on the left and right side surfaces of the inner cavity of the dislocation slide, one end of the locking screw extends from the side of the load-bearing pad and is fixedly connected to a locking disc, and the locking screw is threadedly matched with the load-bearing pad, the dislocation assistant also includes a locking groove, the locking groove is opened on the side of the load-bearing slider, and the end of the locking screw is movably inserted into the interior of the locking groove, the dislocation assistant also includes a walking pulley, the walking pulley is installed on the bottom surface of the load-bearing slider, and the walking pulley is located on the bottom surface of the inner cavity of the dislocation slide, and the dislocation assistant also includes a traction handle, which is fixedly connected to the front of the load-bearing slider.
[0015] Preferably, the output assembly mechanism further comprises a frustum-shaped chamber, which is provided on the bottom surface of the fixed frustum and is connected to the centrifugal column cavity. A hole-blocking frustum is movably inserted into the interior of the frustum-shaped chamber, and the hole-blocking frustum is fixedly sleeved on the outside of the centrifugal barrel and located at its top. A straightening groove is provided on the top surface of the inner cavity of the frustum-shaped chamber, and the top end of the centrifugal flower groove tube is movably inserted into the inside of the straightening groove. The top end of the fixed frustum is fixedly connected to a fixed column. The output assembly mechanism further comprises a pressure cover disc, which is located on the top surface of the stationary cylinder. A truncated cone groove is provided on the bottom surface of the cylinder, and the top of the fixed column is against the top surface of the inner cavity of the truncated cone groove. A light phase annular chamber is formed between the top surface of the stationary cylinder, the surface of the fixed cone, the surface of the fixed column and the inner wall of the truncated cone groove. A light phase overflow groove is provided on the top surface of the fixed column, and the light phase overflow groove is connected with the light phase annular chamber. A light phase overflow hole is provided on the bottom surface of the inner cavity of the light phase overflow groove, and the light phase overflow hole extends downward and is connected with the centrifugal drum. A light phase discharge pipe is fixedly connected to the left side surface of the pressure cover disc, and the light phase discharge pipe is connected with the light phase annular chamber. A light phase flowmeter is installed on the discharge pipe, a heavy phase annular chamber is provided on the top surface of the gland disc, a heavy phase overflow groove is provided on the inner wall of the heavy phase annular chamber, the top of the heavy phase overflow groove is open, a heavy phase overflow hole is provided on the bottom surface of the inner cavity of the heavy phase overflow groove, the bottom end of the heavy phase overflow hole extends downward and passes through the fixed column and is connected with the centrifugal drum, the light phase overflow hole is closer to the centrifugal flower groove pipe than the heavy phase overflow hole, a heavy phase discharge pipe is fixedly connected to the right side surface of the gland disc, the heavy phase discharge pipe is connected with the heavy phase annular chamber, and a heavy phase flowmeter is installed on the heavy phase discharge pipe. The top surface of the gland disc is covered with a sealing gland, and a long mounting bolt is movably inserted on the sealing gland. The bottom end of the long mounting bolt passes downward through the gland disc and is movably inserted on the top surface of the stationary cylinder in the form of a threaded fit. Two monitoring channels are provided on the top surface of the gland disc, and the bottom end of the monitoring channel is connected with the frustum-shaped chamber and the centrifugal barrel. A transparent plate at the bottom end is fixedly embedded in the interior of the monitoring channel, and a heavy phase monitoring head is fixedly installed on the top surface of one transparent plate, and a light phase monitoring head is fixedly installed on the top surface of the other transparent plate.
[0016] 3. Beneficial effects
[0017] Compared with the prior art, the advantages of the present invention are:
[0018] ① Through the centrifugal extraction component, the organic wastewater treatment equipment can force the aqueous phase and the organic phase to separate, thereby achieving the purpose of treating organic wastewater. Through the output combination mechanism, the organic wastewater treatment equipment can respectively export the light phase and the heavy phase. At the same time, the output combination mechanism can detect the phase interface position between the light phase and the heavy phase in real time. By raising the bracket, the output combination mechanism can be adjusted according to the data detected by the output combination mechanism, and then the phase interface position between the light phase and the heavy phase is adjusted, which plays the role of adjusting the phase entrainment, so that the phase entrainment fluctuates within the specified range, ensuring better separation effect, and realizing the purpose of dynamically adjusting the phase entrainment, so that the organic wastewater treatment equipment can still play a good separation effect when the proportion of organic matter in the wastewater changes, which saves more time and effort, and improves the practicality of the organic wastewater treatment equipment.
[0019] ② By fixing the locking assembly, the maintenance assistant and the centrifugal extraction assembly can be assembled together more stably to ensure that the centrifugal extraction assembly can work normally. At the same time, people can remove the restrictions on the maintenance assistant by fixing the locking assembly, and can control the maintenance assistant by lifting the bracket to make the maintenance assistant run. The centrifugal extraction assembly and the maintenance assistant can be separated by the running maintenance assistant, so that the maintenance assistant can move downward with the assembled centrifugal assembly to open the tapered opening and move the centrifugal bucket out, so as to maintain the tapered through hole, the inner wall of the centrifugal column cavity, the centrifugal bucket, and the radial blades. The centrifugal extraction component can be completely disassembled. Through the dislocation assistant, the maintenance assistant can move the assembled centrifugal component in the direction perpendicular to the paper surface and outward, and is used to stagger the centrifugal barrel and the stationary cylinder front and back so that people can better perform maintenance work. Through the assembled centrifugal component, people can more conveniently disassemble the centrifugal barrel, centrifugal flower trough tube, and radial blades for maintenance, making maintenance work simpler. Through the output combination mechanism, people can clean up blockages more quickly, further simplifying maintenance work. People can complete maintenance work more time-saving and labor-saving, thereby improving the practicality of the organic wastewater treatment equipment. 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 structure of the central dislocation assistant;
[0022] Figure 3 For the present invention Figure 2 Schematic diagram of the internal structure;
[0023] Figure 4 For the present invention Figure 3Schematic diagram of the internal structure of the patchwork installation assembly;
[0024] Figure 5 For the present invention Figure 3 Schematic diagram of the internal structure of the fixed locking assembly;
[0025] Figure 6 For the present invention Figure 1 Schematic diagram of the internal structure of the centrifugal extraction component;
[0026] Figure 7 For the present invention Figure 6 Schematic diagram of the internal structure of the assembled centrifugal component;
[0027] Figure 8 For the present invention Figure 6 Schematic diagram of the internal structure of the output combination mechanism;
[0028] Figure 9 For the present invention Figure 8 Schematic diagram of the left view internal structure.
[0029] Description of the numbers in the figure:
[0030] 1. Elevating bracket; 11. Elevating plate; 12. Elevating legs; 13. Intelligent controller; 2. Centrifugal extraction component; 201. Stationary cylinder; 202. Centrifugal column chamber; 203. Tapered through hole; 204. Centrifugal drum; 205. Annular mixing chamber; 206. Wastewater inlet pipe; 207. Wastewater electric valve; 208. Solvent inlet pipe; 209. Solvent electric valve; 210. Centrifugal flower trough pipe; 211. Radial blades; 212. Blocking disc; 213. Centrifugal motor; 214. Conveying through hole; 3. Maintenance aid; 301. Load-bearing slider; 302. Equipment groove; 303. Transmission chamber; 304. Auxiliary motor; 305. Action bevel gear; 306. Mounting boss; 3 07, transmission horizontal shaft; 308, passive bevel gear; 309, driving bevel gear; 310, transmission vertical rod; 311, driven bevel gear; 312, auxiliary threaded rod; 313, auxiliary lifting plate; 314, frustum-type pipe; 315, frustum-type sealing ring; 316, tapered opening; 317, socket groove; 4, assembling centrifugal components; 401, transmission bevel gear; 402, inner flower slot tube; 403, centrifugal bevel gear; 404, outer flower slot rod; 405, inner flower slot rotating tube; 406, seal; 407, mixing disc; 408, stirring column; 409, positioning support ring; 410, receiving hole; 411, outer angular inner spline tube; 412, inner angular tube; 5, piecing together the installation components; 5 01. Assemble the chamber; 502. Assemble the chute; 503. Assemble the slide; 504. Assemble the flower trough tube; 505. Transmission flower trough rod; 506. Lifting spring; 507. Load-bearing linkage plate; 508. Through hole; 509. Accommodating hole; 510. Load-bearing small plate; 6. Fixed locking assembly; 61. Fixed upper chamber; 62. Fixed lower chamber; 63. Control lead wire; 64. Control slide plug; 65. Control ratchet head; 66. Control ratchet gear; 67. Prestressed spring; 68. Adjustment threaded rod; 69. Adjustment dial; 7. Misalignment auxiliary device; 71. Load-bearing pad; 72. Misalignment chute; 73. Locking screw; 74. Locking disc; 75. Locking groove; 76. Walking pulley; 77. Traction Guide handle; 8. Output combination mechanism; 801. Fixed cone; 802. Cone-shaped chamber; 803. Blocking cone; 804. Righting groove; 805. Fixed column; 806. Covering disc; 807. Cone-containing groove; 808. Light phase annular chamber; 809. Light phase overflow groove; 810. Light phase overflow hole; 811. Light phase discharge pipe; 812. Light phase flowmeter; 813. Heavy phase annular chamber; 814. Heavy phase overflow groove; 815. Heavy phase overflow hole; 816. Sealing cover; 817. Mounting long bolt; 818. Monitoring channel; 819. Transparent plate; 820. Heavy phase monitoring head; 821. Light phase monitoring head; 822. Heavy phase discharge pipe; 823. Heavy phase flowmeter. DETAILED DESCRIPTION
[0031] The following will be combined with the accompanying drawings to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without creative effort shall fall within the scope of protection of the present invention.
[0032] An organic wastewater treatment device, comprising a lifting bracket 1, see Figure 1 The lifting bracket 1 includes a lifting plate 11, and a lifting leg 12 is fixedly connected to the side of the lifting plate 11. An intelligent controller 13 is fixedly installed on the left side of one of the lifting legs 12, which can control the maintenance assistant 3 to make the maintenance assistant 3 run. The lifting bracket 1 can adjust the output combination mechanism 8 according to the data detected by the output combination mechanism 8, and then adjust the phase interface position between the light phase and the heavy phase, so as to adjust the phase entrainment and make the phase entrainment fluctuate within the prescribed range to ensure better separation effect and achieve the purpose of dynamically adjusting the phase entrainment, so that the organic wastewater treatment equipment can still play a good separation effect when the proportion of organic matter in the wastewater changes, which saves more time and effort and improves the practicality of the organic wastewater treatment equipment. A centrifugal extraction component 2 is provided on the lifting plate 11, please refer to Figure 6 The centrifugal extraction assembly 2 includes a stationary cylinder 201, which is fixedly plugged into the elevated plate 11. Figure 1 , the bottom end of the lifting leg 12 is provided with a dislocation assisting device 7, please refer to Figure 3 The dislocation assisting device 7 includes a load-bearing pad 71, the top surface of which is fixedly connected to the bottom end of the lifting leg 12. Figure 2 , the load-bearing pad 71 is provided with a maintenance aid 3, please refer to Figure 3 The maintenance assistant 3 includes a load-bearing slider 301, which is installed on the top surface of the load-bearing pad 71. The interior of the load-bearing slider 301 is provided with an assembling centrifugal component 4, an assembly assembly 5, and a fixed locking component 6. The assembling centrifugal component 4 includes an inner flower groove tube 402, which is movably plugged into the top surface of the load-bearing slider 301. Please refer to Figure 4 The assembly assembly 5 includes an assembly chamber 501, which is located inside the load-bearing slider 301. Figure 5 The fixed locking assembly 6 includes a fixed upper cavity 61, which is opened inside the load-bearing slider 301. Figure 6 The top surface of the stationary cylinder 201 is provided with an output assembly mechanism 8, see Figure 9 The output assembly mechanism 8 includes a fixed frustum 801 , which is fixedly connected to the top surface of the stationary cylinder 201 .
[0033] See also Figure 6 The centrifugal extraction component 2 also includes a centrifugal column chamber 202, which is opened inside the stationary cylinder 201. A tapered through-hole 203 is opened on the bottom surface of the inner cavity of the centrifugal column chamber 202. A centrifugal bucket 204 located in the middle of the tapered through-hole 203 is movably inserted into the interior of the centrifugal column chamber 202. The top of the centrifugal bucket 204 extends upward into the interior of the centrifugal column chamber 202. An annular mixing chamber 205 is formed between the surface of the centrifugal bucket 204, the inner wall of the centrifugal column chamber 202, and the inner wall of the tapered through-hole 203. A wastewater inlet pipe 206 is fixedly inserted on the left side of the stationary cylinder 201, and a wastewater electric valve 207 is installed on the wastewater inlet pipe 206. A solvent inlet pipe 208 is fixedly inserted on the right side of the stationary cylinder 201, and a solvent electric valve 209 is installed on the solvent inlet pipe 208. A centrifugal flower slot pipe 210 located in the middle of the centrifugal bucket 204 is movably inserted into the interior of the centrifugal bucket 204, and radial blades 211 are fixedly connected to the surface of the centrifugal flower slot pipe 210. Figure 7 The outer portion of the centrifugal flower slot tube 210 is fixedly sleeved with a shielding disc 212 at its bottom end, and the bottom end of the radial blade 211 is fixedly connected to the top surface of the shielding disc 212. Figure 3 and Figure 7 The bottom end of the centrifugal flower trough tube 210 is connected to a centrifugal motor 213, and a conveying through hole 214 is opened on the bottom surface of the centrifugal drum 204, so that the organic wastewater treatment equipment can force the aqueous phase and the organic phase to separate, thereby achieving the purpose of treating organic wastewater.
[0034] See also Figure 3 The maintenance assistant 3 also includes an equipment groove 302, which is opened on the top surface of the load-bearing slider 301. The centrifugal motor 213 is located inside the equipment groove 302 and is fixedly installed on the bottom surface of its inner cavity. The inner flower groove tube 402 is movably plugged into the bottom surface of the inner cavity of the equipment groove 302. The interior of the load-bearing slider 301 is provided with a transmission chamber 303 located below the equipment groove 302. An auxiliary motor 304 is fixedly installed on the bottom surface of the inner cavity of the equipment groove 302. The bottom end of the output shaft on the auxiliary motor 304 extends downward to the interior of the transmission chamber 303 and is fixedly connected to the action bevel gear 305. The inner cavity of the transmission chamber 303 The top surface is fixedly connected with a mounting boss 306, and a transmission horizontal shaft 307 is movably connected to the interior of the mounting boss 306. A passive bevel gear 308 is fixedly sleeved on the outside of the transmission horizontal shaft 307, and the passive bevel gear 308 meshes with the action bevel gear 305. The left and right ends of the transmission horizontal shaft 307 are fixedly connected with a driving bevel gear 309. Two transmission vertical rods 310 are movably inserted on the bottom surface of the inner cavity of the transmission chamber 303. The two transmission vertical rods 310 are respectively located at the left and right ends of the transmission chamber 303. A driven bevel gear 311 is fixedly sleeved on the outside of the transmission vertical rod 310, and the driven bevel gear 311 meshes with the driving bevel gear 309. Please refer to Figure 4The top of the transmission vertical rod 310 is connected to the auxiliary threaded rod 312, see Figure 6 The external thread of the auxiliary threaded rod 312 is connected with an auxiliary lifting plate 313, and the bottom surface of the auxiliary lifting plate 313 is connected with a vent pipe with a control valve, which is used to release the residual liquid inside the centrifugal column chamber 202 and the tapered through hole 203 during maintenance. The top surface of the auxiliary lifting plate 313 is in contact with the bottom surface of the stationary cylinder 201, and a frustum-shaped pipe 314 is fixedly connected to the top surface of the auxiliary lifting plate 313. The outer sleeve of the frustum-shaped pipe 314 is provided with a frustum-shaped sealing ring 315. The maintenance assistant 3 also includes a tapered opening 316. The tapered opening 316 is opened on the bottom surface of the stationary cylinder 201 and is connected to the tapered through hole 203. The frustum-shaped pipe 314 and the frustum-shaped sealing ring 315 are fixedly connected to the top surface of the auxiliary lifting plate 313. The rings 315 are movably inserted into the interior of the tapered opening 316. The maintenance assistant 3 also includes a socket groove 317. The socket groove 317 is opened on the bottom surface of the stationary cylinder 201 and is located on one side of the tapered opening 316. The top end of the auxiliary threaded rod 312 is movably inserted into the interior of the socket groove 317. The running maintenance assistant 3 can separate the centrifugal extraction component 2 and the maintenance assistant 3 so that the maintenance assistant 3 can move downward with the assembled centrifugal component 4 to open the tapered opening 316 and move the centrifugal bucket 204 out, so as to maintain the tapered through hole 203, the inner wall of the centrifugal column cavity 202, the centrifugal bucket 204, and the radial blades 211.
[0035] See also Figure 3 The assembled centrifugal assembly 4 also includes a transmission bevel gear 401 and a centrifugal bevel gear 403. The transmission bevel gear 401 is fixedly connected to the end of the output shaft on the centrifugal motor 213. The centrifugal bevel gear 403 is fixedly sleeved on the outside of the inner flower slot tube 402. The inner flower slot tube 402 is provided with a spring. The inner flower slot tube 402 is movably connected to the outer flower slot rod 404. Figure 7The outer sliding sleeve of the outer flower groove rod 404 is provided with an inner flower groove rotating tube 405, and the outer sliding sleeve of the inner flower groove rotating tube 405 is provided with a seal 406. The seal 406 is fixedly inserted into the interior of the auxiliary lifting plate 313. The outer fixed sleeve of the inner flower groove rotating tube 405 is provided with a mixing disc 407 located inside the frustum-shaped pipe 314. The top surface of the mixing disc 407 is fixedly connected with a stirring column 408. The outer fixed sleeve of the stirring column 408 is provided with a positioning support ring 409. The assembled centrifugal assembly 4 also includes a receiving hole 410. The receiving hole 410 is opened on the bottom surface of the centrifugal barrel 204. The top of the stirring column 408 is fixedly connected to the mixing disc 407. The end is movably inserted into the inside of the receiving hole 410, the top surface of the positioning ring 409 is against the bottom surface of the centrifugal barrel 204, and the top of the inner flower groove rotating tube 405 extends from the conveying through hole 214 to the inside of the centrifugal barrel 204. The top of the inner flower groove rotating tube 405 is connected to the outer angular inner spline tube 411, and the outer part of the outer angular inner spline tube 411 is movably sleeved with the inner angular tube 412, and the inner angular tube 412 is fixedly connected to the bottom surface of the shielding disc 212, so that people can more conveniently disassemble the centrifugal barrel 204, the centrifugal flower groove tube 210, and the radial blades 211 for maintenance, making maintenance work simpler.
[0036] See also Figure 4 The splicing installation component 5 also includes a splicing slide 502, which is opened on the right side of the inner cavity of the splicing chamber 501. The splicing slide 503 is slidably inserted into the interior of the splicing slide 503, and the splicing slide 503 is fixedly connected to the splicing flower trough tube 504. The splicing flower trough tube 504 is slidably inserted into the interior of the splicing chamber 501, and the splicing flower trough tube 504 is slidably inserted into the interior of the splicing chamber 501. The transmission flower trough rod 505 is slidably inserted into the interior of the splicing chamber 501. The top end of the transmission vertical rod 310 extends to the interior of the splicing chamber 501 and is fixedly connected to the bottom end of the transmission flower trough rod 505. The external movable sleeve of the transmission flower trough rod 505 is provided with a lifting spring Spring 506, the bottom surface of the patchwork flower trough tube 504 is transmission-connected to the bottom surface of the inner cavity of the patchwork chamber 501 through the jacking spring 506, the top of the jacking spring 506 is slidingly connected to the bottom surface of the patchwork flower trough tube 504, the bottom end of the auxiliary threaded rod 312 is fixedly connected to the top surface of the patchwork flower trough tube 504, and a load-bearing linkage plate 507 is provided on the top surface of the patchwork flower trough tube 504. The top of the patchwork flower trough tube 504 is movably sleeved on the bottom surface of the load-bearing linkage plate 507, and a through-hole 508 is provided on the load-bearing linkage plate 507. The auxiliary threaded rod 312 is movably inserted into the inside of the through-hole 508. Figure 3 The load-bearing linkage plate 507 is provided with a receiving through hole 509 in the middle thereof, and the outer flower groove rod 404 is movably inserted into the inside of the receiving through hole 509. The assembled installation component 5 also includes a load-bearing small plate 510, which is fixedly sleeved on the outside of the outer flower groove rod 404. The top surface of the load-bearing small plate 510 is in contact with the bottom surface of the load-bearing linkage plate 507, so that the centrifugal extraction component 2 can be completely disassembled.
[0037] See also Figure 5 The fixed locking assembly 6 also includes a fixed lower chamber 62, which is opened inside the load-bearing slider 301 and is located below the fixed upper chamber 61. A control lead 63 is fixedly connected to the top surface of the inner cavity of the fixed upper chamber 61. The bottom end of the control lead 63 extends downward to the interior of the fixed lower chamber 62 and is fixedly connected to a control slide 64. The control slide 64 is slidably inserted into the interior of the fixed lower chamber 62, and a control ratchet head 65 is fixedly connected to the bottom surface of the control slide 64. The bottom end of the control ratchet head 65 extends downward to the interior of the transmission chamber 303. The fixed locking assembly 6 also includes a control ratchet gear 66, which is fixedly sleeved on the outside of the transmission horizontal shaft 307. The control ratchet gear 66 is unidirectionally meshed with the control ratchet head 65. A prestressed spring 67 is fixedly connected to the top surface of the inner cavity of the fixed lower chamber 62, and an adjusting threaded rod 68 is movably inserted into the interior of the fixed upper chamber 61. Figure 2 One end of the adjusting threaded rod 68 extends from the front of the load-bearing slider 301 and is fixedly connected to the adjusting dial 69. The adjusting threaded rod 68 is threadedly engaged with the load-bearing slider 301, so that the maintenance assistant 3 and the centrifugal extraction component 2 can be assembled together more stably, ensuring that the centrifugal extraction component 2 can work normally. At the same time, people can remove the restriction on the maintenance assistant 3 by fixing the locking component 6.
[0038] See also Figure 3 When the locking cam 75 is in the state of being lifted up, the locking cam 71 is locked and the locking cam 73 is in the state of being firmly fixed on the locking cam 74, so that the lock cam 73 can be locked to the locking cam 74 were it not to be locked, the lock cam 73 is locked and the corresponding locking cam 73 is in the state of being firmly fixed on the locking cam 74. Figure 2 The dislocation assistant 7 also includes a traction handle 77, which is fixedly connected to the front of the load-bearing slider 301, so that the maintenance assistant 3 can move the assembled centrifugal assembly 4 in the direction perpendicular to the paper and outward, and is used to stagger the centrifugal bucket 204 and the stationary cylinder 201 front and back so that people can better perform maintenance work.
[0039] See also Figure 9 The output assembly mechanism 8 further includes a cone-shaped chamber 802, which is provided on the bottom surface of the fixed cone 801 and communicates with the centrifugal column chamber 202. A hole-blocking cone 803 is movably inserted into the interior of the cone-shaped chamber 802. The hole-blocking cone 803 is fixedly sleeved on the outside of the centrifugal drum 204 and is located at the top thereof. A straightening groove 804 is provided on the top surface of the inner cavity of the cone-shaped chamber 802. The top end of the centrifugal flower slot tube 210 is movably inserted into the straightening groove 804. The fixed cone 80 1 is fixedly connected to the top of the stationary cylinder 201 with a fixed column 805. The output assembly mechanism 8 also includes a cover disc 806. The cover disc 806 is located on the top surface of the stationary cylinder 201. The bottom surface of the cover disc 806 is provided with a truncated cone groove 807. The top of the fixed column 805 is against the top surface of the inner cavity of the truncated cone groove 807. A light phase annular chamber 808 is formed between the top surface of the stationary cylinder 201, the surface of the fixed cone 801, the surface of the fixed column 805, and the inner wall of the truncated cone groove 807. Figure 8 A light phase overflow groove 809 is provided on the top surface of the fixed column 805, and the light phase overflow groove 809 is connected to the light phase annular chamber 808. A light phase overflow hole 810 is provided on the bottom surface of the inner cavity of the light phase overflow groove 809, and the light phase overflow hole 810 extends downward and is connected to the centrifugal drum 204. A light phase discharge pipe 811 is fixedly connected to the left side surface of the gland disc 806, and the light phase discharge pipe 811 is connected to the light phase annular chamber 808. A light phase flowmeter 812 is installed on the light phase discharge pipe 811. A heavy phase annular chamber 813 is provided on the top surface of the gland disc 806. The heavy phase annular chamber 813 A heavy phase overflow trough 814 is provided on the inner wall of the heavy phase overflow trough 814. The top of the heavy phase overflow trough 814 is open. A heavy phase overflow hole 815 is provided on the bottom surface of the inner cavity of the heavy phase overflow trough 814. The bottom end of the heavy phase overflow hole 815 extends downward and passes through the fixed column 805 and is connected to the centrifugal bucket 204. The light phase overflow hole 810 is closer to the centrifugal flower groove tube 210 than the heavy phase overflow hole 815. A heavy phase discharge pipe 822 is fixedly connected to the right side surface of the pressure cover disc 806. The heavy phase discharge pipe 822 is connected to the heavy phase annular chamber 813. A heavy phase flowmeter 823 is installed on the heavy phase discharge pipe 822. Please refer to Figure 9The top surface of the gland disc 806 is covered with a sealing gland 816, and a long mounting bolt 817 is movably inserted on the sealing gland 816. The bottom end of the long mounting bolt 817 passes through the gland disc 806 downward and is movably inserted on the top surface of the stationary cylinder 201 in the form of a threaded fit. Two monitoring holes 818 are provided on the top surface of the gland disc 806. The bottom end of the monitoring hole 818 is connected to the frustum-shaped chamber 802 and the centrifugal bucket 204. The interior of the monitoring hole 818 is fixedly embedded with a transparent plate 819 at its bottom end. The top of a transparent plate 819 A heavy phase monitoring head 820 is fixedly installed on the surface, and a light phase monitoring head 821 is fixedly installed on the top surface of another transparent plate 819. The heavy phase monitoring head 820 and the light phase monitoring head 821 are both ultrasonic probes, which enable the organic wastewater treatment equipment to respectively derive the light phase and the heavy phase. At the same time, the output combination mechanism 8 can detect the phase interface position between the light phase and the heavy phase in real time, so that people can clean up the blockage more quickly, further simplifying the maintenance work. People can complete the maintenance work more time-saving and labor-saving, thereby improving the practicality of the organic wastewater treatment equipment.
[0040] Working principle:
[0041] First, the centrifugal motor 213 is controlled to run by the intelligent controller 13, and then the centrifugal motor 213 rotates with the inner flower groove tube 402 through the meshing action between the transmission bevel gear 401 and the centrifugal bevel gear 403, and then the inner flower groove tube 402 rotates with the outer flower groove rod 404, and then the outer flower groove rod 404 rotates with the inner flower groove rotating tube 405, and then the inner flower groove rotating tube 405 rotates with the mixing disc 407, and then the mixing disc 407 rotates with the centrifugal rotating barrel 204 through the plugging action between the stirring column 408 and the receiving hole 410, so as to stir the solution. At the same time, the inner flower groove rotating tube 405 rotates with the shielding disc 212 through the plugging action between the outer angular inner spline tube 411 and the inner angular tube 412, and then the shielding disc 212 is rotated. The retaining disc 212 rotates with the centrifugal flower groove tube 210 and the radial blades 211, and then a total flow value is set inside the intelligent controller 13, and then the solvent electric valve 209 is controlled to open by the intelligent controller 13, and then the extractant enters the annular gap mixing chamber 205 through the solvent input pipe 208 at the speed of the total flow value, and then the extractant enters the centrifugal drum 204 through the delivery through hole 214 and adheres to its inner wall under the action of centrifugal force, and then the extractant covers the transparent plate 819, and then the heavy phase monitoring head 820 and the light phase monitoring head 821 detect the characteristics of the extractant and send the detection results to the intelligent controller 13, the intelligent controller 13 analyzes and determines the detection results, and then the extractant passes through the light phase overflow hole 810 and the light phase monitoring head 821. The light phase is discharged from the overflow trough 809, the light phase annular chamber 808, and the light phase discharge pipe 811. At the same time, the extractant is discharged through the heavy phase overflow hole 815, the heavy phase overflow trough 814, the heavy phase annular chamber 813, and the heavy phase discharge pipe 822. The light phase flowmeter 812 detects the flow inside the light phase discharge pipe 811, and the heavy phase flowmeter 823 detects the flow inside the heavy phase discharge pipe 822. Then, the wastewater electric valve 207 is gradually opened by the intelligent controller 13, and then the organic wastewater enters the annular gap mixing chamber 205 through the wastewater input pipe 206. During the opening process of the wastewater electric valve 207, the intelligent controller 13 controls the solvent electric valve 209 to be gradually closed, so that the flow values inside the wastewater input pipe 206 and the solvent input pipe 208 are added together to obtain the total flow. The value is obtained, and then the extractant and the organic wastewater are evenly mixed under the stirring of the centrifugal drum 204, the stirring column 408, and the mixing disc 407 to achieve extraction, so that the organic phase enters the extractant, and then the mixed liquid enters the centrifugal drum 204 through the conveying through-hole 214. Then, the mixed liquid is stratified under the action of centrifugal force to form a light phase and a heavy phase. The heavy phase is in direct contact with the inner wall of the centrifugal drum 204, and the light phase is located on the inner side of the heavy phase until the data detected by the heavy phase monitoring head 820 and the light phase monitoring head 821 suddenly change and differ greatly. At this time, the heavy phase monitoring head 820 is aligned with the heavy phase, and the light phase monitoring head 821 is aligned with the light phase. Then the intelligent controller 13 controls the opening and closing degrees of the wastewater electric valve 207 and the solvent electric valve 209 to be fixed, and the adjustment of the phase entrainment is completed.Then the light phase is discharged through the light phase overflow hole 810, the light phase overflow trough 809, the light phase annular chamber 808, and the light phase discharge pipe 811, and the heavy phase is discharged through the heavy phase overflow hole 815, the heavy phase overflow trough 814, the heavy phase annular chamber 813, and the heavy phase discharge pipe 822. Thereafter, the organic wastewater is continuously treated according to the above principle. When the proportion of organic matter in the wastewater changes greatly, the phase interface between the light phase and the heavy phase will shift. When the data detected by the heavy phase monitoring head 820 and the light phase monitoring head 821 suddenly changes and the difference becomes smaller, the intelligent controller 13 adjusts the position of the phase interface by controlling the opening and closing degree of the wastewater electric valve 207 and the solvent electric valve 209 until the heavy phase monitoring head 820 is aligned with the heavy phase and the light phase monitoring head 821 is aligned with the light phase. When maintenance is required, the centrifugal motor 213 is turned off, and the mounting long bolts 817 are removed, and then the sealing gland 816 and the gland disc 806 are removed in sequence, and then the blockages inside the light phase annular chamber 808, the light phase overflow groove 809, the light phase overflow hole 810, the heavy phase annular chamber 813, the heavy phase overflow groove 814, and the heavy phase overflow hole 815 are cleaned, and then the sealing gland 816, the gland disc 806, and the mounting long bolts 817 are installed back to their original positions, and then the adjusting dial 69 is rotated, and then the adjusting dial 69 rotates with the adjusting threaded rod 68, and then the adjusting threaded rod 68 moves outward and rotates and applies force to the control lead 63, and then the control lead 63 bends and pulls the control slide 64 to move upward, and then the control slide 64 The control ratchet head 65 moves upward, and then the control ratchet head 65 is separated from the control ratchet gear 66, releasing the restriction on the transmission horizontal shaft 307, and then the auxiliary motor 304 is controlled to run through the intelligent controller 13, and then the auxiliary motor 304 rotates the transmission horizontal shaft 307 through the meshing action between the action bevel gear 305 and the passive bevel gear 308, and then the transmission horizontal shaft 307 rotates with the transmission vertical rod 310 through the meshing action between the driving bevel gear 309 and the driven bevel gear 311, and then the transmission vertical rod 310 rotates with the transmission flower slot rod 505, the spliced flower slot tube 504, and the auxiliary threaded rod 312, and then the auxiliary lifting plate 313 moves downward under the action of the threaded cooperation between it and the auxiliary threaded rod 312, and then the auxiliary lifting plate 313 moves downward. The lowering plate 313 moves downward with the frustum-shaped connecting pipe 314, the frustum-shaped sealing ring 315, the inner flower groove rotating tube 405, the sealing element 406, the mixing disc 407, the stirring column 408, the positioning ring 409, the centrifugal rotating barrel 204, the outer angular inner spline tube 411, the inner angular tube 412, the shielding disc 212, and the centrifugal flower groove tube 210. At the same time, the outer flower groove rod 404 passes through the inner flower groove rotating tube 405, the outer angular inner spline tube 411 and extends into the interior of the centrifugal flower groove tube 210. Then, the top end of the centrifugal flower groove tube 210 passes through the tapered opening 316 and moves out. Then, the auxiliary motor 304 is controlled to stop by the intelligent controller 13, and then downward pressure is applied to the load-bearing linkage plate 507, and then the load-bearing linkage plate 507 moves downward.Then the load-bearing linkage plate 507 moves downward with the auxiliary threaded rod 312 through the spliced flower slot tube 504, and at the same time, the load-bearing linkage plate 507 moves downward with the outer flower slot rod 404 through the load-bearing small plate 510, and the outer flower slot rod 404 squeezes the spring inside the inner flower slot tube 402, and then the auxiliary threaded rod 312 is pulled out from the socket groove 317, and the outer flower slot rod 404 is pulled out from the tapered opening 316, and then the locking disc 74 is rotated, and then the locking disc 74 rotates with the locking screw 73, and then the locking screw 73 is pulled out from the locking groove 75, releasing the load-bearing slider 301, and then a pulling force perpendicular to the paper surface is applied to the traction handle 77, and then the traction handle 77 moves the load-bearing slider 301 outward along the vertical paper surface, and then the centrifugal drum 204 is pulled out The lower part of the stationary cylinder 201 moves away, and then the load-bearing linkage plate 507 is released, and then the assembled trough tube 504 is reset upward with the load-bearing linkage plate 507 under the action of the elastic force of the jacking spring 506, and the outer trough rod 404 moves upward and resets under the action of the spring, and then an upward lifting force is applied to the centrifugal trough tube 210, and then the centrifugal trough tube 210 moves upward with the inner angular tube 412 through the blocking disc 212, and then the outer angular inner spline tube 411 is pulled out from the inside of the inner angular tube 412, and then the centrifugal trough tube 210 is taken out and placed on the ground, and then an upward lifting force is applied to the centrifugal drum 204, and then the stirring column 408 is pulled out from the receiving hole 410, and then the centrifugal drum 204 is taken out and placed on the ground, and then The centrifugal column cavity 202, the inner wall of the tapered through hole 203, the centrifugal flower slot tube 210, the radial blades 211, and the centrifugal drum 204 are maintained. After the maintenance work is completed, the centrifugal drum 204 and the centrifugal flower slot tube 210 are installed back to their original positions in turn, and then pressure is applied to the load-bearing linkage plate 507 to enable the auxiliary threaded rod 312 and the outer flower slot rod 404 to move under the stationary cylinder 201. Then, a thrust perpendicular to the paper surface is applied to the traction handle 77, and then the load-bearing slider 301 enters the interior of the dislocation slide 72. Then, the locking disc 74 is rotated in the opposite direction to insert the locking screw 73 into the locking groove 75 to fix the load-bearing slider 301. Then, the load-bearing linkage plate 507 is released, and then the auxiliary threaded rod 312 is moved upward under the action of the elastic force of the lifting spring 506. Move, the outer flower groove rod 404 moves upward under the elastic force of the spring, and then the auxiliary threaded rod 312 is inserted into the socket groove 317, and the outer flower groove rod 404 is inserted into the tapered opening 316, and then the intelligent controller 13 controls the auxiliary motor 304 to run in reverse, and then the auxiliary lifting plate 313 moves upward, and then the centrifugal flower groove tube 210, radial blades 211, and centrifugal bucket 204 pass through the tapered opening 316 and the tapered through hole 203 in sequence to enter the centrifugal column cavity 202, and then the centrifugal flower groove tube 210 is inserted into the straightening groove 804, and the hole-blocking cone 803 is inserted into the cone-shaped chamber 802, and then the cone-shaped pipe 314 and the cone-shaped sealing ring 315 are inserted into the tapered opening 316 and block it, and then the intelligent controller 13 controls the auxiliary motor 304 to stop,Then, reverse the adjustment dial 69 to loosen the control wire 63. The control slide 64 then moves downward with the control ratchet head 65 under the action of the prestressed spring 67. The control ratchet head 65 then engages with the control ratchet gear 66, securing the transmission shaft 307. This completes the maintenance work.
[0042] The above description is only a preferred specific embodiment of the present invention; however, 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 conception of the present invention shall be covered within the protection scope of the present invention.
Claims
1. An organic wastewater treatment device, comprising a lifting bracket (1), characterized in that: The lifting bracket (1) includes a lifting plate (11), a lifting leg (12) is fixedly connected to the side of the lifting plate (11), an intelligent controller (13) is fixedly installed on the left side of one lifting leg (12), a centrifugal extraction component (2) is provided on the lifting plate (11), the centrifugal extraction component (2) includes a stationary cylinder (201), the stationary cylinder (201) is fixedly plugged into the lifting plate (11), a dislocation assistant (7) is provided at the bottom end of the lifting leg (12), the dislocation assistant (7) includes a load-bearing pad (71), the top surface of the load-bearing pad (71) is fixedly connected to the bottom end of the lifting leg (12), a maintenance assistant (3) is provided on the load-bearing pad (71), and the maintenance assistant (3) includes a load-bearing slider (301), and the load-bearing slider (301) is installed on the load-bearing pad. On the top surface of the load-bearing slider (71), an assembling centrifugal assembly (4), an assembling installation assembly (5), and a fixed locking assembly (6) are provided inside the load-bearing slider (301), wherein the assembling centrifugal assembly (4) includes an inner flower groove tube (402), which is movably plugged into the top surface of the load-bearing slider (301), the assembling installation assembly (5) includes an assembling chamber (501), which is opened inside the load-bearing slider (301), and the fixed locking assembly (6) includes a fixed upper chamber (61), which is opened inside the load-bearing slider (301). An output combination mechanism (8) is provided on the top surface of the stationary cylinder (201), wherein the output combination mechanism (8) includes a fixed cone (801), which is fixedly connected to the top surface of the stationary cylinder (201).
2. The organic wastewater treatment equipment according to claim 1, characterized in that: The centrifugal extraction component (2) further comprises a centrifugal column chamber (202), the centrifugal column chamber (202) being provided inside the stationary cylinder (201), a tapered through hole (203) being provided on the bottom surface of the inner cavity of the centrifugal column chamber (202), a centrifugal rotating bucket (204) being movably inserted into the inner portion of the tapered through hole (203), the top end of the centrifugal rotating bucket (204) extending upwardly into the inner portion of the centrifugal column chamber (202), an annular gap mixing chamber (205) being formed between the surface of the centrifugal rotating bucket (204), the inner wall of the centrifugal column chamber (202), and the inner wall of the tapered through hole (203), a wastewater inlet pipe (206) being fixedly inserted into the left side surface of the stationary cylinder (201), and a wastewater electric valve being installed on the wastewater inlet pipe (206) (207), a solvent input pipe (208) is fixedly connected to the right side of the stationary cylinder (201), a solvent electric valve (209) is installed on the solvent input pipe (208), a centrifugal flower groove pipe (210) located in the middle thereof is movably connected inside the centrifugal rotating barrel (204), radial blades (211) are fixedly connected to the surface of the centrifugal flower groove pipe (210), a shielding disc (212) located at the bottom end of the centrifugal flower groove pipe (210) is fixedly sleeved on the outside, the bottom end of the radial blades (211) is fixedly connected to the top surface of the shielding disc (212), the bottom end of the centrifugal flower groove pipe (210) is transmission-connected to a centrifugal motor (213), and a conveying through hole (214) is opened on the bottom surface of the centrifugal rotating barrel (204).
3. The organic wastewater treatment equipment according to claim 2, characterized in that: The maintenance assistant (3) further comprises an equipment groove (302), the equipment groove (302) being provided on the top surface of the load-bearing slider (301), the centrifugal motor (213) being located inside the equipment groove (302) and being fixedly mounted on the bottom surface of its inner cavity, the inner flower groove tube (402) being movably plugged into the bottom surface of the inner cavity of the equipment groove (302), the interior of the load-bearing slider (301) being provided with a transmission chamber (303) located below the equipment groove (302), the bottom surface of the inner cavity of the equipment groove (302) being fixedly mounted with an auxiliary motor (304), the bottom end of the output shaft on the auxiliary motor (304) extending downward to the transmission chamber (303). The interior of the chamber (303) is fixedly connected to an action bevel gear (305), the top surface of the inner cavity of the transmission chamber (303) is fixedly connected to a mounting boss (306), the interior of the mounting boss (306) is movably plugged with a transmission horizontal shaft (307), the exterior of the transmission horizontal shaft (307) is fixedly sleeved with a passive bevel gear (308), the passive bevel gear (308) is meshed with the action bevel gear (305), the left and right ends of the transmission horizontal shaft (307) are fixedly connected to driving bevel gears (309), the bottom surface of the inner cavity of the transmission chamber (303) is movably plugged with two transmission vertical rods (310), the two transmission vertical rods (31 0) are respectively located at the left and right ends of the transmission chamber (303), the outside of the transmission vertical rod (310) is fixedly sleeved with a driven bevel gear (311), the driven bevel gear (311) is meshed with the driving bevel gear (309), the top of the transmission vertical rod (310) is transmission-connected with an auxiliary threaded rod (312), the external thread of the auxiliary threaded rod (312) is sleeved with an auxiliary lifting disk (313), the top surface of the auxiliary lifting disk (313) is in contact with the bottom surface of the stationary cylinder (201), the top surface of the auxiliary lifting disk (313) is fixedly connected with a frustum-shaped pipe (314), the outer sleeve of the frustum-shaped pipe (314) is provided with a conical The maintenance assistant (3) further comprises a cone-shaped sealing ring (315), the cone-shaped sealing ring (315) is provided on the bottom surface of the stationary cylinder (201) and is connected to the cone-shaped through hole (203), the cone-shaped pipe (314) and the cone-shaped sealing ring (315) are both movably inserted into the inside of the cone-shaped opening (316), the maintenance assistant (3) further comprises a socket groove (317), the socket groove (317) is provided on the bottom surface of the stationary cylinder (201) and is located on one side of the cone-shaped opening (316), and the top end of the auxiliary threaded rod (312) is movably inserted into the inside of the socket groove (317).
4. The organic wastewater treatment equipment according to claim 3, characterized in that: The assembled centrifugal assembly (4) further comprises a transmission bevel gear (401) and a centrifugal bevel gear (403). The transmission bevel gear (401) is fixedly connected to the end of the output shaft of the centrifugal motor (213). The centrifugal bevel gear (403) is fixedly sleeved on the outside of the inner flower groove tube (402). The inner flower groove tube (402) is movably plugged with an outer flower groove rod (404). The outer sliding sleeve of the outer flower groove rod (404) is provided with an inner flower groove rotating tube (405). The outer sliding sleeve of the inner flower groove rotating tube (405) is provided with a sealing member (406). The sealing member (406) is fixedly inserted into the inside of the auxiliary lifting plate (313). The outer surface of the inner flower groove rotating tube (405) is fixedly sleeved with a mixing disc (407) located inside the frustum-shaped pipe (314). The top surface of the mixing disc (407) is fixedly connected with a The stirring column (408) is fixedly sleeved with a positioning ring (409) on the outside of the stirring column (408). The assembled centrifugal assembly (4) further includes a receiving hole (410). The receiving hole (410) is opened on the bottom surface of the centrifugal barrel (204). The top of the stirring column (408) is movably inserted into the inside of the receiving hole (410). The top surface of the positioning ring (409) is against the bottom surface of the centrifugal barrel (204). The top of the inner flower groove rotating tube (405) extends from the conveying through hole (214) to the inside of the centrifugal barrel (204). The top of the inner flower groove rotating tube (405) is connected to an outer angular inner spline tube (411). The outer side of the outer angular inner spline tube (411) is movably sleeved with an inner angular tube (412). The inner angular tube (412) is fixedly connected to the bottom surface of the shielding disc (212).
5. The organic wastewater treatment equipment according to claim 4, characterized in that: The splicing installation component (5) also includes a splicing chute (502), which is opened on the right side of the inner cavity of the splicing chamber (501), and the splicing chute (502) is slidably plugged with a splicing slide (503) inside the splicing chute (502), and the splicing slide (503) is fixedly connected with a splicing flower trough tube (504), which is slidably plugged into the interior of the splicing chamber (501), and the splicing flower trough tube (504) is slidably plugged into the interior of the splicing chamber (501), and a transmission flower trough rod (505) is slidably plugged into the interior of the splicing chamber (501), and the top end of the transmission vertical rod (310) extends to the interior of the splicing chamber (501) and is fixedly connected to the bottom end of the transmission flower trough rod (505), and the external movable sleeve of the transmission flower trough rod (505) is provided with a lifting spring (506), and the bottom surface of the splicing flower trough tube (504) is transmission-connected to the bottom surface of the inner cavity of the splicing chamber (501) through the lifting spring (506), and the auxiliary The bottom end of the auxiliary threaded rod (312) is fixedly connected to the top surface of the spliced flower trough tube (504), and a load-bearing linkage plate (507) is provided on the top surface of the spliced flower trough tube (504). The top end of the spliced flower trough tube (504) is movably sleeved on the bottom surface of the load-bearing linkage plate (507). A through hole (508) is provided on the load-bearing linkage plate (507). The auxiliary threaded rod (312) is movably inserted into the inside of the through hole (508). A receiving through hole (509) is provided in the middle of the load-bearing linkage plate (507). The outer flower trough rod (404) is movably inserted into the inside of the receiving through hole (509). The spliced installation component (5) further includes a load-bearing small plate (510). The load-bearing small plate (510) is fixedly sleeved on the outside of the outer flower trough rod (404), and the top surface of the load-bearing small plate (510) is in contact with the bottom surface of the load-bearing linkage plate (507).
6. The organic wastewater treatment equipment according to claim 3, characterized in that: The fixed locking assembly (6) further comprises a fixed lower chamber (62), the fixed lower chamber (62) being opened inside the load-bearing slider (301) and being located below the fixed upper chamber (61), a control lead (63) being fixedly connected to the top surface of the inner cavity of the fixed upper chamber (61), the bottom end of the control lead (63) extending downward to the inside of the fixed lower chamber (62) and being fixedly connected to a control slide (64), the control slide (64) being slidably inserted into the inside of the fixed lower chamber (62), a control ratchet head (65) being fixedly connected to the bottom surface of the control slide (64), the bottom end of the control ratchet head (65) extending downward to the inside of the transmission chamber (303), and the fixed locking assembly (6) The component (6) further includes a control ratchet gear (66), which is fixedly sleeved on the outside of the transmission horizontal shaft (307). The control ratchet gear (66) is in one-way meshing with the control ratchet head (65). A prestressed spring (67) is fixedly connected to the top surface of the control slide (64). The top end of the prestressed spring (67) is fixedly connected to the top surface of the inner cavity of the fixed lower cavity (62). An adjusting threaded rod (68) is movably inserted into the interior of the fixed upper cavity (61). One end of the adjusting threaded rod (68) extends from the front of the load-bearing slider (301) and is fixedly connected to the adjusting dial (69). The adjusting threaded rod (68) is threadedly engaged with the load-bearing slider (301).
7. An organic wastewater treatment equipment according to any one of claims 1 to 6, characterized in that: The dislocation auxiliary device (7) further comprises a dislocation chute (72), the dislocation chute (72) being provided on the top surface of the load-bearing pad (71), the end of the dislocation chute (72) being perpendicular to the paper surface and facing inward is sealed, the end of the dislocation chute (72) being perpendicular to the paper surface and facing outward is open, the load-bearing slider (301) is movably plugged into the interior of the dislocation chute (72), the left and right side surfaces of the inner cavity of the dislocation chute (72) are movably plugged with locking screws (73), one end of the locking screw (73) extends from the side surface of the load-bearing pad (71) and is fixedly connected to a locking disc (74), the locking screw (73) and the load-bearing pad ( 71) threaded fit, the dislocation assistant (7) also includes a locking groove (75), the locking groove (75) is opened on the side of the load-bearing slider (301), the end of the locking screw (73) is movably inserted into the interior of the locking groove (75), the dislocation assistant (7) also includes a walking pulley (76), the walking pulley (76) is installed on the bottom surface of the load-bearing slider (301), the walking pulley (76) is located on the bottom surface of the inner cavity of the dislocation slot (72), the dislocation assistant (7) also includes a traction handle (77), the traction handle (77) is fixedly connected to the front of the load-bearing slider (301).
8. An organic wastewater treatment equipment according to any one of claims 2 to 6, characterized in that: The output assembly mechanism (8) further comprises a cone-shaped chamber (802), the cone-shaped chamber (802) being provided on the bottom surface of the fixed cone (801) and being in communication with the centrifugal column chamber (202), a hole-blocking cone (803) being movably inserted into the interior of the cone-shaped chamber (802), the hole-blocking cone (803) being fixedly sleeved on the exterior of the centrifugal drum (204) and being located at the top thereof, a straightening groove (804) being provided on the top surface of the inner cavity of the cone-shaped chamber (802), the top end of the centrifugal flower groove tube (210) being movably inserted into the inside of the straightening groove (804), the top end of the fixed cone (801) being fixedly connected to a fixed column (805), and the output assembly mechanism (8) further comprises a pressure cover disc (806), the pressure cover disc (806) 06) is located on the top surface of the stationary cylinder (201), and a truncated cone groove (807) is provided on the bottom surface of the pressure cover disc (806). The top of the fixed column (805) is against the top surface of the inner cavity of the truncated cone groove (807). A light phase annular chamber (808) is formed between the top surface of the stationary cylinder (201), the surface of the fixed cone (801), the surface of the fixed column (805), and the inner wall of the truncated cone groove (807). A light phase overflow groove (809) is provided on the top surface of the fixed column (805). The light phase overflow groove (809) is connected to the light phase annular chamber (808). A light phase overflow hole (810) is provided on the bottom surface of the inner cavity of the light phase overflow groove (809). The light phase overflow hole (810) extends downward and is connected to the centrifugal rotor. The centrifugal drum (204) is connected to the centrifugal drum (204), and a light phase discharge pipe (811) is fixedly connected to the left side of the pressure cover disc (806), and the light phase discharge pipe (811) is connected to the light phase annular chamber (808). A light phase flow meter (812) is installed on the light phase discharge pipe (811). A heavy phase annular chamber (813) is provided on the top surface of the pressure cover disc (806), and a heavy phase overflow groove (814) is provided on the inner wall of the heavy phase annular chamber (813). The top of the heavy phase overflow groove (814) is open, and a heavy phase overflow hole (815) is provided on the bottom surface of the inner cavity of the heavy phase overflow groove (814). The bottom end of the heavy phase overflow hole (815) extends downward and passes through the fixed column (805) and is connected to the centrifugal drum (204). The light phase overflow hole (815) 10) Compared with the heavy phase overflow hole (815), it is closer to the centrifugal flower groove tube (210). A heavy phase discharge pipe (822) is fixedly connected to the right side of the gland disc (806). The heavy phase discharge pipe (822) is connected to the heavy phase annular chamber (813). A heavy phase flowmeter (823) is installed on the heavy phase discharge pipe (822). A sealing gland (816) is provided on the top surface of the gland disc (806). A mounting long bolt (817) is movably connected to the sealing gland (816). The bottom end of the mounting long bolt (817) passes through the gland disc (806) downward and is movably connected to the top surface of the stationary cylinder (201) in the form of threaded engagement. Two monitoring channels (818) are provided on the top surface of the gland disc (806).The bottom end of the monitoring channel (818) is connected to the cone-shaped chamber (802) and the centrifugal drum (204). A transparent plate (819) is fixedly embedded in the monitoring channel (818) at its bottom end. A heavy phase monitoring head (820) is fixedly installed on the top surface of one transparent plate (819), and a light phase monitoring head (821) is fixedly installed on the top surface of the other transparent plate (819).