A separation device for treating dienoketone acetate wastewater

By using spiral guides and a separating disc to disperse wastewater, and a transmission mechanism to drive the separation screen to vibrate, the automatic discharge and shock absorption design solves the problem of manual cleaning required in existing devices, and improves the filtration efficiency and equipment stability of dienol ketone acetate wastewater treatment.

CN115738449BActive Publication Date: 2025-12-02LONGHUI QUNFENG CHEM
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Patent Information

Application Number
CN202211620281.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-15
Publication Date
2025-12-02
Estimated Expiration
2042-12-15

AI Technical Summary

Technical Problem

Existing separation devices for treating dienolone acetate wastewater require manual cleaning of the filter screen after a period of use, which is cumbersome and affects filtration efficiency.

Method used

Wastewater is dispersed using a spiral guide and a liquid distribution plate, and the separation screen is driven to vibrate by a transmission mechanism. The material is automatically discharged using an ash collection pipe. Shock-absorbing legs and a uniform shock-absorbing mechanism are installed to prevent powder accumulation from affecting filtration efficiency.

Benefits of technology

It achieves manual cleaning without downtime, improves filtration efficiency, reduces equipment vibration, ensures stable operation, and enhances the overall filtration effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of separation device technology and provides a separation device for treating dienol ketone acetate wastewater. It includes: a main body; a liquid delivery component mounted on the main body, the liquid delivery component comprising an input pipe mounted on the main body and a spiral guide rotatably disposed inside the input pipe; a distributing plate at the bottom of the spiral guide, the distributing plate being located at the outlet of the input pipe; a filter assembly disposed inside the main body, the filter assembly including a recessed separation screen positioned below the distributing plate; a through hole in the middle of the separation screen, and a dust collection pipe positioned at the through hole; and a transmission mechanism that drives the separation screen to vibrate by rotating a locking rod. This invention eliminates the need for manual cleaning of the separation screen during use, and the spiral guide and distributing plate effectively disperse the wastewater, further improving filtration efficiency.
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Description

Technical Field

[0001] This invention relates to the field of separation device technology, specifically a separation device for treating dienolone acetate wastewater. Background Technology

[0002] Dienolone acetate is synthesized from diosgenin through catalytic ring-opening, oxidation and hydrolysis. The liquid obtained after centrifugation and washing is a white crystalline powder with no off-odor or taste. It is readily soluble in ethanol and methanol and insoluble in water.

[0003] During the processing of dienolone acetate, separation equipment is often required to treat the wastewater from dienolone acetate production.

[0004] A prior art separation device (CN202020550805.4) for treating dienolone acetate wastewater includes a wastewater separation tank. A motor housing is fixedly connected to the right side of the wastewater separation tank. A servo motor is fixedly connected to the right side wall of the motor housing. A drive rod is fixedly connected to the output shaft of the servo motor. A ring spring is fixedly connected to the inner bottom wall of the wastewater separation tank. A separation frame is fixedly connected to the top of the ring spring. A separation plate is fixedly connected to the inner side of the separation frame. A rotating block is fixedly connected to the left end of the drive rod. The wastewater... A fixed turntable is fixedly connected to the left side wall of the wastewater separation tank. A rotary motor is fixedly connected to the top of the wastewater separation tank. A rotating rod is fixedly connected to the output shaft of the rotary motor. A fixed block is fixedly connected to the bottom end of the rotating rod. A filter plate is fixedly connected to the bottom of the fixed block. A fixed cover is fixedly connected to the top of the filter plate. A feed funnel is fixedly connected to the top of the wastewater separation tank. Support legs are fixedly connected to the bottom of the wastewater separation tank. A discharge funnel is fixedly connected to the bottom of the wastewater separation tank. A movable door is movably connected to the front of the wastewater separation tank.

[0005] Existing technology requires manual collection of powder from the filter screen after a period of use, which is quite cumbersome. Summary of the Invention

[0006] The purpose of this invention is to provide a separation device for treating dienolone acetate wastewater, so as to solve the problems mentioned in the background art.

[0007] To achieve the above objectives, the present invention provides the following technical solution:

[0008] A separation device for treating dienolone acetate wastewater includes: a main body of the device;

[0009] An infusion component is installed on the main body of the device. The infusion component includes an input tube installed on the main body of the device and a spiral guide that is rotatably installed inside the input tube. A dispensing plate is provided at the bottom of the spiral guide and is located at the outlet of the input tube.

[0010] A filter assembly is installed inside the main body of the device. The filter assembly includes a recessed separation screen located below the liquid distribution plate. A through hole is provided in the middle of the separation screen, and a dust collection pipe is provided at the through hole.

[0011] And, a transmission mechanism that uses the rotation of the locking rod to drive the vibration of the separation net.

[0012] As a further embodiment of the present invention: the transmission mechanism includes two drive rods symmetrically arranged at the bottom of the liquid distribution plate;

[0013] And, two mating protrusions symmetrically installed on the separation net, the mating protrusions being arranged on the rotation trajectory of the drive rod.

[0014] As a further embodiment of the present invention: the middle position of the separation net is elastically installed on the ash collection pipe by not less than two elastic telescopic rods;

[0015] The spiral guide is elastically installed inside the input pipe along its length, and the overlap height between the drive rod and the mating protrusion is greater than the elastic telescopic height of either the elastic telescopic rod or the spiral guide.

[0016] As a further embodiment of the present invention: the spiral guide includes an intermediate shaft and spiral blades arranged on the outer side of the intermediate tube, the intermediate shaft being elastically rotatably mounted inside the input tube.

[0017] As a further embodiment of the present invention: the automatic material discharge mechanism includes a mounting shaft that is rotatably disposed at the bottom outlet position of the ash collection pipe;

[0018] A rotating sleeve fitted onto the outside of the mounting shaft;

[0019] A self-opening mechanism is provided between the rotating sleeve and the mounting shaft;

[0020] Furthermore, multiple partitions are arranged in an array on the outside of the rotating sleeve, and during the rotation of the rotating sleeve, some partitions always abut against the inner wall of the ash collection pipe to close the outlet of the ash collection pipe.

[0021] As a further embodiment of the present invention: the self-opening mechanism includes a locking rod that is elastically rotatably mounted on the mounting shaft;

[0022] Multiple protrusions are provided inside the rotating sleeve, the number of which is equal to the number of partitions, and they are arranged in a circumferential array on the rotating sleeve;

[0023] Furthermore, a mounting locking rod is flexibly rotatably mounted on the mounting shaft, with one of the protrusions abutting against the locking rod at the end furthest from the rotating sleeve.

[0024] As a further aspect of the present invention, the main body of the device is provided with multiple shock-absorbing legs.

[0025] As a further embodiment of the present invention: the shock-absorbing support leg includes a fixed base;

[0026] And, a connecting rod installed on the main body of the device; the fixed seat is shock-absorbingly connected to the connecting rod.

[0027] As a further aspect of the present invention, a uniform damping mechanism capable of absorbing vibration is also provided between the fixed base and the connecting rod.

[0028] As a further embodiment of the present invention: the uniform damping mechanism includes:

[0029] Multiple first racks are arranged on the outside of the connecting rod;

[0030] Transmission gears that mesh with multiple first racks respectively;

[0031] Installation sleeve;

[0032] A lifting component that slides up and down on the mounting sleeve;

[0033] A second rack is provided on the lifting component; the second rack meshes with the transmission gear on the side away from the first rack.

[0034] And, an array of damping gears that are elastically rotated on the mounting sleeve, wherein the second rack meshes with the damping gear on one side.

[0035] Compared with the prior art, the beneficial effects of the present invention are: it avoids the presence of a large amount of powder on the surface of the separation screen during the filtration process, which affects the filtration efficiency; the present invention does not require manual cleaning of the separation screen during use, and the wastewater can be effectively dispersed by setting the spiral guide and the liquid distribution plate, further improving the filtration efficiency; the transmission mechanism drives the separation screen to vibrate up and down, accelerating the passage of filtered water through the separation screen, further improving the filtration efficiency. Attached Figure Description

[0036] Figure 1 This is a schematic diagram of the structure of a separation device for treating dienolone acetate wastewater according to an embodiment of the present invention.

[0037] Figure 2 for Figure 1 Enlarged view of point A in the middle.

[0038] Figure 3This is a schematic diagram of the shock-absorbing support leg in a separation device for treating dienolone acetate wastewater according to an embodiment of the present invention.

[0039] Figure 4 for Figure 3 Enlarged view of section B in the middle.

[0040] Figure 5 This is a schematic diagram of the shock-absorbing gear installation structure in a separation device for treating dienolone acetate wastewater according to an embodiment of the present invention.

[0041] In the diagram: 1-Main body of the device, 2-Shock-absorbing leg, 3-Input pipe, 4-Separation net, 5-Dust collection pipe, 6-Fixed seat, 7-Connecting rod, 8-Restoration spring, 9-Mounting sleeve, 10-First rack, 11-Transmission gear, 12-Lifting component, 13-Second rack, 14-Shock-absorbing gear, 15-Adjusting gear, 16-Matching gear, 17-Rotating rod, 18-Mounting shaft, 19-Elastic component, 20-Third rack, 21-Spiral guide component, 22-Distribution plate, 23-Drive rod, 25-Matching protrusion, 26-Elastic telescopic rod, 27-Automatic discharge mechanism, 28-Mounting shaft, 29-Rotating sleeve, 30-Partition plate, 31-Protrusion, 32-Locking rod. Detailed Implementation

[0042] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0043] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "top," "bottom," "inner," "outer," "upper," "lower," "front," "rear," "left," "right," "vertical," and "horizontal," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, in the description of this invention, unless otherwise stated, "a plurality of" means two or more. Features defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature.

[0044] Example 1

[0045] Please see Figures 1-2 In Embodiment 1 of the present invention, a structural diagram of a separation device for treating dienolone acetate wastewater is provided, comprising: a device body 1; a liquid delivery component disposed on the device body 1, the liquid delivery component including an input pipe 3 installed on the device body 1 and a spiral guide 21 rotatably disposed inside the input pipe 3; a liquid distribution plate 22 is disposed at the bottom of the spiral guide 21, and the liquid distribution plate 22 is disposed at the outlet of the input pipe 3;

[0046] A filter assembly is installed inside the main body 1 of the device. The filter assembly includes a recessed separation screen 4, which is located below the liquid distribution plate 22. A through hole is provided in the middle of the separation screen 4, and a dust collection pipe 5 is provided at the through hole position.

[0047] And, a transmission mechanism that uses the rotation of the locking rod 32 to drive the vibration of the separation net 4.

[0048] This invention inputs wastewater to be treated through input pipe 3, and then the wastewater passes through spiral guide 21, driving the spiral guide 21 to rotate. Simultaneously, the wastewater, generating a spiral rotation, is discharged through the distribution plate 22 and then dispersed onto the separation screen 4. The powder filtered off the surface of the separation screen 4 enters the ash collection pipe 5 under the impact of the wastewater. Since the powder is insoluble in water and heavier than water, it accumulates in the ash collection pipe 5. This avoids a large amount of powder on the surface of the separation screen 4 during the filtration process, which would affect the filtration efficiency. This invention does not require manual cleaning of the separation screen 4 during use, and the spiral guide 21 and distribution plate 22 effectively disperse the wastewater, further improving the filtration efficiency. A transmission mechanism drives the separation screen 4 to vibrate up and down, accelerating the flow of filtered water through the separation screen 4, further improving the filtration efficiency.

[0049] like Figure 1 As shown, in a preferred embodiment of the present invention, the transmission mechanism includes two drive rods 23 symmetrically arranged at the bottom of the separating tray 22; and two mating protrusions 25 symmetrically installed on the separating screen 4, the mating protrusions 25 being arranged on the rotation trajectory of the drive rods 23. The separating screen 4 is an elastic filter screen.

[0050] When the separating plate 22 drives the drive rod 23 to rotate, the drive rod 23 intermittently touches the mating protrusion 25 during the rotation process. The mating protrusion 25 causes the separating screen 4 to vibrate, thereby improving the wastewater passage efficiency.

[0051] like Figure 1As shown, in a preferred embodiment of the present invention, the separation net 4 is elastically mounted on the ash collection pipe 5 at its middle position via at least two elastic telescopic rods 26; the spiral guide 21 is elastically mounted inside the input pipe 3 along its length, and the overlap height between the drive rod 23 and the mating protrusion 25 is greater than the elastic telescopic height of either the elastic telescopic rod 26 or the spiral guide 21. Thus, when the drive rod 23 overlaps with the mating protrusion 25, it can simultaneously drive the separation net 4 and the liquid distribution plate 22 to move up and down, thereby improving the efficiency of wastewater passing through the separation net 4 and changing the height of the liquid distribution plate 22, thus changing the position of the wastewater scattered on the separation net 4 and further improving the wastewater filtration efficiency.

[0052] In a preferred embodiment of the present invention, the elastic telescopic rod 26 may include a telescopic rod and a first elastic element sleeved on the outside of the telescopic rod. The two ends of the telescopic rod are respectively fixedly installed on the separation net 4 and the ash collection pipe 5, and the two ends of the first elastic element are respectively connected to the two ends of the telescopic rod. The first elastic element may be a helical spring.

[0053] The spiral guide 21 includes an intermediate shaft and spiral blades arranged on the outer side of the intermediate tube. The intermediate shaft is elastically rotatably mounted inside the input tube 3. A second elastic element is sleeved on the intermediate shaft. One end of the second elastic element is fixedly mounted on the spiral guide 21, and the other end is rotatably mounted on a rotating ring inside the input tube 3. This achieves the elastic rotatable mounting of the spiral guide 21 inside the input tube 3.

[0054] When a certain amount of dust accumulates inside the ash collection pipe 5 and needs to be discharged, an automatic discharge mechanism 27 is provided inside the ash collection pipe 5.

[0055] like Figure 2 As shown, in a preferred embodiment of the present invention, the automatic discharge mechanism 27 includes an installation shaft 28 rotatably disposed at the bottom outlet position of the ash collection tube 5; a rotating sleeve 29 sleeved on the outside of the installation shaft 28; a self-opening mechanism disposed between the rotating sleeve 29 and the installation shaft 28; and multiple partitions 30 arranged in an array on the outside of the rotating sleeve 29. During the rotation of the rotating sleeve 29, some partitions 30 always abut against the inner wall of the ash collection tube 5 to close the outlet of the ash collection tube 5. In this way, the automatic discharge mechanism 27 closes the outlet of the ash collection tube 5. After the powder accumulated inside the ash collection tube 5 reaches a certain weight, the self-opening mechanism unlocks the lock between the rotating sleeve 29 and the installation shaft 28, and the rotating sleeve 29 rotates, carrying out the powder inside the ash collection tube 5, thus realizing automatic discharge.

[0056] like Figure 2As shown, in a preferred embodiment of the present invention, the self-opening mechanism includes a locking rod 32 elastically rotatably mounted on the mounting shaft 28 and a plurality of protrusions 31 disposed inside the rotating sleeve 29. The number of protrusions 31 is equal to that of the partition 30, and they are arranged in a circumferential array on the rotating sleeve 29. One of the protrusions 31 abuts against the locking rod 32 at the end away from the rotating sleeve 29. The locking rod 32 is elastically rotatably mounted on the mounting shaft 28. The rotating sleeve 29 is unidirectionally rotatably mounted on the mounting shaft 28. Thus, when the amount of powder piled on the collecting partition 30 exceeds a certain amount, the protrusions 31 overcome the elastic force of the locking rod 32, causing the locking rod 32 to deflect, which in turn causes the rotating sleeve 29 to deflect, discharging the powder from the ash collection pipe 5.

[0057] The locking rod 32 can be elastically rotated on the mounting shaft 28 via a torsion spring.

[0058] Example 2

[0059] Please see Figures 1-5 The main difference between this embodiment 2 and embodiment 1 is that in order to reduce the vibration of the equipment during operation, the main body 1 of the device is provided with multiple shock-absorbing legs 2.

[0060] The shock-absorbing support leg 2 includes a fixed base 6 and a connecting rod 7, with the connecting rod 7 mounted on the main body 1. The fixed base 6 is shock-absorbingly connected to the connecting rod 7. The fixed base 6 is slidably mounted on the connecting rod 7 via a restoring spring 8. A uniform shock-absorbing mechanism capable of measuring and absorbing vibration is also provided between the fixed base 6 and the connecting rod 7. This arrangement allows for uniform absorption of vibration during the shock absorption process, effectively absorbing vibration while maintaining a constant rebound force. This avoids the strong rebound force at the end of the shock absorption process in existing technologies, which causes energy to be transferred back to the main body 1, resulting in poor shock absorption performance.

[0061] The restoring spring 8 is a helical spring.

[0062] like Figure 4 , 5As shown, in a preferred embodiment of the present invention, the uniform damping mechanism includes a plurality of first racks 10 disposed on the outside of the connecting rod 7, the plurality of first racks 10 meshing with a transmission gear 11 respectively, the transmission gear 11 meshing with a second rack 13 on the lifting member 12 on the side away from the first racks 10, the lifting member 12 having a second rack 13 disposed on the side away from the second rack 13, the lifting member 12 being slidably disposed on the mounting sleeve 9, the mounting sleeve 9 being provided with a plurality of sets of damping gears 14, each set of damping gears 14 being arrayed on the mounting sleeve 9, the damping gears 14 being elastically rotatably mounted on the mounting sleeve 9, and the second rack 13 meshing with the damping gear 14 on the side closest to it. When vibration is received, the connecting rod 7 slides inside the fixed base 6, causing the first rack 10 to move up and down. The first rack 10 drives the transmission gear 11 to rotate, and the transmission gear 11 drives the lifting component 12 to slide up and down on the mounting sleeve 9. During the sliding process, the lifting component 12 engages with the damping gears 14 in sequence. Thus, during the damping process, the lifting component 12 always engages with the same number of damping gears 14, resulting in a constant damping force received by the connecting rod 7 throughout the entire damping process. This ensures stable damping and a low reaction force, leading to better damping performance. The return spring 8 is used to slowly return the ultrasonic generator 2 to its initial position after damping is completed.

[0063] The second rack 13 meshes with at least two of the damping gears 14, thereby making the operation more stable.

[0064] The upper ends of the lifting components 12 pass through the through holes in the mounting sleeve 9, thereby allowing the lifting components 12 to slide on the mounting sleeve 9. A second elastic element can also be fitted on the outer side of the lifting components 12, thereby making the operation more stable. The two ends of the second elastic element are fixedly installed on the lifting components 12 and the mounting sleeve 9, respectively.

[0065] The mounting sleeve 9 can be a cylindrical structure.

[0066] like Figure 5 As shown, in a preferred embodiment of the present invention, in order to achieve the elastic rotational mounting of the shock-absorbing gear 14 on the mounting sleeve 9, the shock-absorbing gear 14 is fixedly sleeved on the mounting shaft 18, and the mounting shaft 18 is rotatably mounted inside the mounting sleeve 9. The mounting shaft 18 is elastically mounted on the mounting sleeve 9 via an elastic element 19, thereby achieving the elastic rotational mounting of the shock-absorbing gear 14. The two ends of the elastic element 19 are respectively fixedly mounted on the mounting shaft 18 and the mounting sleeve 9, and the elastic element 19 can also be sleeved on the mounting shaft 18. This achieves the fixed setting of the elastic element 19.

[0067] like Figure 4 , 5As shown, in a preferred embodiment of the present invention, since the vibration damping requirements for different equipment installations are inconsistent, the mounting sleeve 9 is rotatably mounted on the fixed base 6, thereby allowing adjustment of the position of the mounting sleeve 9. Furthermore, the elastic elements 19 corresponding to the multiple sets of vibration damping gears 14 have different damping settings; the elastic elements 19 corresponding to each set of vibration damping gears 14 have the same damping, and the mounting sleeve 9 internally has an array of multiple sets of vibration damping gears 14 with different damping. Thus, by adjusting the position of the mounting sleeve 9, the sets of vibration damping gears 14 with different damping receive energy transmitted by the transmission gear 11 through the second rack 13, the lifting element 12, and the third rack 20, achieving different levels of vibration damping.

[0068] like Figure 4 , 5 As shown, in a preferred embodiment of the present invention, in order to adjust the position of the mounting sleeve 9, a position adjustment mechanism is provided between the fixing base 6 and the mounting sleeve 9, and the position adjustment mechanism is used to drive the mounting sleeve 9 to rotate.

[0069] Specifically, the position adjustment mechanism includes an adjusting gear 15 sleeved on the outside of the mounting sleeve 9. The adjusting gear 15 meshes with a mating gear 16 rotatably mounted on the fixed base 6. By driving the mating gear 16 to rotate, the mounting sleeve 9 is driven to rotate, thereby adjusting the position of the mounting sleeve 9. The mating gear 16 can be manually adjusted or electrically adjusted.

[0070] The mating gear 16 is rotatably mounted on the fixed base 6 via a rotating rod 17. The rotating rod 17 can be a telescopic rod, and a pull buckle is provided at the end of the rotating rod 17. This facilitates driving the rotating rod 17 to rotate the mating gear 16, thereby adjusting the position of the mounting sleeve 9.

[0071] To lock the position of the mounting sleeve 9, a locking rod can be provided between the mounting sleeve 9 and the fixing seat 6. The locking rod is elastically slidably disposed on the fixing seat 6, and one end is inserted into any one of the multiple locking slots on the mounting sleeve 9. There are multiple locking slots, which are arranged in an array on the outside of the mounting sleeve 9. This locks the position of the mounting sleeve 9, making the shock absorption between the mounting sleeve 9 and the connecting rod 7 more stable.

[0072] The working principle of this invention is:

[0073] During use, wastewater to be treated is input through input pipe 3, and then the wastewater passes through spiral guide 21, driving spiral guide 21 to rotate. At the same time, the wastewater generates spiral rotation and is discharged through liquid separator 22, and then disperses onto separation screen 4. The powder filtered off the surface of separation screen 4 enters ash collection pipe 5 under the impact of wastewater. Since the powder is insoluble in water and heavier than water, the powder will accumulate in ash collection pipe 5. When liquid separator 22 drives drive rod 23 to rotate, drive rod 23 intermittently touches mating protrusion 25 during rotation. The mating protrusion 25 drives separation screen 4 to vibrate, improving the wastewater passage efficiency. When the powder piled on the collector plate 30 exceeds a certain amount, protrusion 31 overcomes the elastic force of locking rod 32, causing locking rod 32 to deflect, which in turn causes rotating sleeve 29 to deflect, discharging the powder from ash collection pipe 5. When subjected to vibration, connecting rod 7 slides inside fixed seat 6, and connecting rod 7 drives first rack 10 to move up and down. The first rack 10 drives the transmission gear 11 to rotate, and the transmission gear 11 drives the lifting component 12 to slide up and down on the mounting sleeve 9. During the sliding process, the lifting component 12 engages with the damping gear 14 in sequence. In this way, the lifting component 12 always engages with the same number of damping gears 14 during the damping process, which results in the damping force received by the connecting rod 7 being constant throughout the entire damping process, making the damping stable and the reaction force is also very low, thus resulting in better damping effect. The return spring 8 is used to slowly return the ultrasonic generator 2 to the initial position after the damping is completed. When it is necessary to adjust the position of the mounting sleeve 9, the rotating rod 17 drives the adjusting gear 15 to rotate, and the adjusting gear 15 drives the mounting sleeve 9 to rotate inside the fixed seat 6. When adjusted to the appropriate position, the damping gears 14 of different damping groups engage with the third rack 20 on the matching lifting component 12 and the transmission gear 11, thereby realizing the adjustment of the transmission gear 11.

[0074] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0075] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A separation device for treating dienolone acetate wastewater, comprising: Main body of the device; An infusion component is installed on the main body of the device. The infusion component includes an input tube installed on the main body of the device and a spiral guide that is rotatably installed inside the input tube. A dispensing plate is provided at the bottom of the spiral guide and is located at the outlet of the input tube. The feature is that a filter assembly is disposed inside the main body of the device, the filter assembly including a recessed separation screen disposed below the liquid distribution plate; a through hole is provided in the middle of the separation screen, and a dust collection pipe is provided at the through hole position; And, a transmission mechanism that uses the rotation of the separatory disc to drive the vibration of the separation net; the transmission mechanism includes two drive rods symmetrically arranged at the bottom of the separatory disc and two mating protrusions symmetrically installed on the separation net, the mating protrusions being arranged on the rotation trajectory of the drive rods; The ash collection pipe is equipped with an automatic discharge mechanism, which includes a mounting shaft that is rotatably located at the bottom outlet of the ash collection pipe. A rotating sleeve fitted onto the outside of the mounting shaft; A self-opening mechanism is provided between the rotating sleeve and the mounting shaft; Multiple partitions are arranged in an array on the outside of the rotating sleeve. During the rotation of the rotating sleeve, some partitions always abut against the inner wall of the ash collection pipe to close the outlet of the ash collection pipe. The self-opening mechanism includes a locking rod that is elastically rotatably mounted on a mounting shaft; Multiple protrusions are provided inside the rotating sleeve, the number of which is equal to the number of partitions, and they are arranged in a circumferential array on the rotating sleeve; Furthermore, a mounting locking rod is flexibly rotatably mounted on the mounting shaft, with one of the protrusions abutting against the locking rod at the end furthest from the rotating sleeve.

2. The separation device for treating dienolone acetate wastewater according to claim 1, characterized in that, The separation net is elastically installed on the ash collection pipe at the middle position by no less than two elastic telescopic rods; The spiral guide is elastically installed inside the input pipe along its length, and the overlap height between the drive rod and the mating protrusion is greater than the elastic telescopic height of either the elastic telescopic rod or the spiral guide.

3. The separation device for treating dienolone acetate wastewater according to claim 1, characterized in that, The helical guide includes an intermediate shaft and helical blades arranged outside the intermediate shaft, the intermediate shaft being elastically rotatably mounted inside the input pipe.

4. A separation device for treating dienolone acetate wastewater according to any one of claims 1-3, characterized in that, The main body of the device is equipped with multiple shock-absorbing legs.

5. The separation device for treating dienolone acetate wastewater according to claim 4, characterized in that, The shock-absorbing outrigger includes a fixed base; And, a connecting rod installed on the main body of the device; the fixed seat is shock-absorbingly connected to the connecting rod.

6. The separation device for treating dienolone acetate wastewater according to claim 5, characterized in that, A uniform damping mechanism capable of absorbing vibration in a constant amount is also provided between the fixed base and the connecting rod.

7. The separation device for treating dienolone acetate wastewater according to claim 6, characterized in that, The uniform damping mechanism includes: Multiple first racks are arranged on the outside of the connecting rod; Transmission gears that mesh with multiple first racks respectively; Installation sleeve; A lifting component that slides up and down on the mounting sleeve; A second rack is provided on the lifting component; the second rack meshes with the transmission gear on the side away from the first rack. And, an array of damping gears that are elastically rotated on the mounting sleeve, wherein the second rack meshes with the damping gear on one side.

Citation Information

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