Spandex waste stock solution recovery device with separation function

By designing a spandex waste liquid recycling device with separation function, efficient separation and purification of waste liquid is achieved, the problem of spandex waste liquid not being effectively recycled is solved, and resource utilization and environmental protection effect are improved.

CN120247353AInactive Publication Date: 2025-07-04LIANYUNGANG DUZHONG NEW AOSHEN SPANDEX
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202510742638.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-05
Publication Date
2025-07-04
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The spandex waste liquid cannot be effectively separated and recycled during the production process, resulting in waste of resources and environmental pollution.

Method used

A spandex waste liquid recycling device with separation function is designed, including dissolved parts, solid separation parts and liquid purification parts, and the separation and purification of waste liquid is achieved through mechanical transmission and air pressure control.

Benefits of technology

It improves the recycling rate of spandex waste liquid, reduces resource waste and environmental pollution, and enhances the efficiency of waste liquid treatment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120247353A_ABST
    Figure CN120247353A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of spandex waste stock solution recovery, and discloses a spandex waste stock solution recovery device with a separation function, the spandex waste stock solution recovery device comprises a bottom plate, the end face of the bottom plate is fixedly connected with a reaction barrel, and the surface of the side, away from the bottom plate, of the reaction barrel is fixedly connected with a solid collection plate; a shell is clamped to the surface of the side, close to the solid collecting plate, of the reaction barrel, and a feeding plate is fixedly connected to the inner wall of the shell. When the device is used, liquid needing to be recycled is poured into the device through a feeding plate, at the moment, a motor is started in a dissolving part to drive an output shaft to operate, the output shaft can drive a discharging rotating plate to rotate and operate, and through connection with a fixed plate, the liquid entering the device intermittently enters a subsequent reaction part; when the air pressure of the reaction barrel is adjusted to react with the recycled liquid, the recycled liquid can be better recycled, meanwhile, when the output shaft operates, the ejection shaft can be driven to operate, and the ejection shaft can drive the transverse rotating plate to operate.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of recovery equipment for waste spandex stock solution, and specifically to a waste spandex stock solution recovery device with a separation function. Background Technique

[0002] Waste spandex stock solution refers to the waste stock solution generated during the production of spandex. Spandex is a polyurethane elastic fiber, which is widely used in the fields of underwear, socks, sports and leisure clothing, etc. due to its excellent elasticity and resilience. During the production process, a certain amount of waste stock solution will be generated due to various reasons.

[0003] If these waste stock solutions are not treated, it will not only cause waste of resources, but also have a negative impact on the environment. Whether it is the treatment or recovery of the waste liquid of spandex stock solution, it is necessary to determine the state of the spandex raw material, and different treatment methods are required for waste liquids in different states, but all need to be redissolved and then filtered and purified. In order to improve the recovery rate, it is necessary to separate the waste liquid to reduce waste of resources. Summary of the Invention

[0004] The purpose of the present invention is to provide a waste spandex stock solution recovery device with a separation function to solve the problems raised in the above background technique.

[0005] To solve the above technical problems, the present invention is realized through the following technical solutions: The present invention is a waste spandex stock solution recovery device with a separation function, including a bottom plate. The end face of the bottom plate is fixedly connected with a reaction barrel. The surface of the reaction barrel far from the bottom plate is fixedly connected with a solid collection plate. The surface of the reaction barrel close to the solid collection plate is clamped with a housing. The inner wall of the housing is fixedly connected with a feed plate, and further includes: A dissolution component, the dissolution component includes an output shaft, and a discharge rotating plate is fixedly connected to the surface of the output shaft. The inner wall of the housing close to the discharge rotating plate is fixedly connected with a fixed plate; A solid separation component, the solid separation component includes a sleeve column, and an extrusion plate is fixedly connected to the surface of the sleeve column. A connecting seat column is fixedly connected to the surface of the extrusion plate; A liquid purification component, the liquid purification component includes a filter rotating plate, an inner column is rotatably connected to the inner wall of the filter rotating plate, and an adsorption plate is fixedly connected to the inner wall of the inner column.

[0006] Furthermore, a liquid collection box is fixedly connected to the surface of the bottom plate close to the reaction barrel, a motor is fixedly connected to the surface of the bottom plate close to the liquid collection box, a control board is fixedly connected to the surface of the outer shell close to the feed plate, the number of the feed plates is two, and the two feed plates are symmetrically distributed on the surface of the outer shell. The number of the liquid collection boxes is four, and the four liquid collection boxes are divided into two groups, and the number of each group is two. The two groups of liquid collection boxes are symmetrically distributed on the surface of the bottom plate.

[0007] Furthermore, the dissolving component includes a top shaft, a transverse rotating plate is fixedly connected to the surface of the top shaft, a connecting column is rotatably connected to the inner wall of the transverse rotating plate, a transverse stirring plate is fixedly connected to the surface of the connecting column away from the transverse rotating plate, the surface of the output shaft penetrates through the inner wall of the reaction barrel to the surface of the top shaft close to the transverse rotating plate, and is rotatably connected to the inner wall of the reaction barrel. The end face of the output shaft close to the fixed plate is fixedly connected to the surface of the top shaft away from the transverse rotating plate. The number of the connecting columns is six, and the six connecting columns are symmetrically distributed around the center of the surface of the transverse rotating plate. The number of the transverse stirring plates is two, and the two transverse stirring plates are symmetrically distributed on the surface of the connecting column.

[0008] Furthermore, a push rod is arranged on the surface of the control board close to the output shaft, a push rod sealing plate is arranged on the surface of the push rod, a push block is fixedly connected to the surface of the push rod close to the push rod sealing plate, a push block chute is arranged on the inner wall of the outer shell close to the push block, a telescopic rod is fixedly connected to the surface of the push block away from the push rod sealing plate, and the surface of the push rod sealing plate away from the push rod is fixedly connected to the surface of the outer shell.

[0009] Furthermore, a connecting block is fixedly connected to the end face of the telescopic rod away from the push block, a protective elastic plate is fixedly connected to the surface of the connecting block, a seat plate is fixedly connected to the surface of the connecting block close to the protective elastic plate, a longitudinal stirring fan is rotatably connected to the inner wall of the seat plate, a protective collision plate is fixedly connected to the end face of the connecting block away from the telescopic rod, the number of the protective elastic plates is four, and the four protective elastic plates are divided into two groups, and the number of each group is two. The two groups of protective elastic plates are symmetrically distributed on the surface of the connecting block.

[0010] Furthermore, the solid separation component includes an extrusion fan. A solid-liquid partition plate is slidably connected to the surface of the extrusion plate. A liquid outlet plate is fixedly connected to the inner wall on the side of the solid-liquid partition plate away from the extrusion fan. The surface of the sleeve column on the side away from the extrusion plate is fixedly connected to the surface of the output shaft. Six extrusion plates are provided, and the six extrusion plates are symmetrically distributed around the center of the surface of the sleeve column. The surface of the connecting seat column on the side away from the extrusion plate is rotatably connected to the inner wall of the extrusion fan. Six liquid outlet plates are provided, and the six liquid outlet plates are symmetrically distributed around the center of the surface of the solid-liquid partition plate. The surface of the solid-liquid partition plate on the side away from the liquid outlet plate is fixedly connected to the inner wall of the reaction barrel.

[0011] Furthermore, a discharge control plate is rotatably connected to the inner wall of the solid collection plate on the side close to the reaction barrel. A valve plate is fixedly connected to the surface of the discharge control plate on the side close to the reaction barrel. A valve plate chute is formed in the inner wall of the reaction barrel on the side close to the valve plate. An outlet partition is fixedly connected to the surface of the valve plate on the side close to the reaction barrel. An inner partition is fixedly connected to the end face of the outlet partition away from the valve plate. Six valve plates are provided, and the six valve plates are symmetrically distributed around the center of the surface of the discharge control plate. The surface of the outlet partition on the side close to the valve plate is slidably connected to the inner wall of the reaction barrel. The surface of the inner partition on the side away from the outlet partition is slidably connected to the inner wall of the solid-liquid partition plate.

[0012] Furthermore, the liquid purification component includes an auxiliary vertical plate. A positioning spring is fixedly connected to the surface of the adsorption plate on the side away from the auxiliary vertical plate. A fixed column is fixedly connected to the surface of the positioning spring away from the adsorption plate. Six inner columns are provided, and the six inner columns are symmetrically distributed around the center of the surface of the filter rotating plate. The surface of the adsorption plate is fixedly connected to the surface of the auxiliary vertical plate. Eight auxiliary vertical plates are provided, and the eight auxiliary vertical plates are divided into two groups, with the number of each group being four. The two groups of auxiliary vertical plates are symmetrically distributed around the end face of the adsorption plate. The surface of the fixed column on the side away from the positioning spring is fixedly connected to the surface of the filter rotating plate.

[0013] Furthermore, a conveyor belt is drivingly connected to the surface of the output shaft on the side close to the filter rotating plate. A transmission shaft is rotatably connected to the inner wall of the conveyor belt on the side away from the output shaft. A conveyor belt partition is rotatably connected to the surface of the transmission shaft. A purification vertical plate is fixedly connected to the surface of the transmission shaft on the side away from the conveyor belt partition. Two transmission shafts are provided, and the two transmission shafts are symmetrically distributed around the inner wall of the conveyor belt. The surface of the conveyor belt partition on the side away from the transmission shaft is fixedly connected to the inner wall of the reaction barrel. Six purification vertical plates are provided, and the six purification vertical plates are symmetrically distributed around the center of the surface of the transmission shaft.

[0014] Furthermore, a periodic tooth plate is fixedly connected to the surface of the output shaft close to the conveyor belt side. A periodic rack is meshed with the surface of the periodic tooth plate. A pneumatic pressing plate is fixedly connected to the surface of the periodic rack away from the periodic tooth plate. An air box is arranged on the inner wall of the pneumatic pressing plate close to the periodic rack. A clamping column is arranged on the surface of the air box away from the pneumatic pressing plate. A partition plate is fixedly connected to the inner wall of the reaction barrel close to the conveyor belt partition. A liquid outlet hole is formed in the inner wall of the reaction barrel close to the partition plate. A liquid transfer pipe is fixedly connected to the surface of the reaction barrel close to the liquid outlet hole. The number of the pneumatic pressing plates is two, and the two pneumatic pressing plates are symmetrically distributed with respect to the center of the surface of the periodic rack. The surface of the air box is fixedly connected to the surface of the partition plate away from the output shaft. The surface of the clamping column close to the air box is fixedly connected to the inner wall of the reaction barrel. The end face of the liquid transfer pipe away from the liquid outlet hole is fixedly connected to the surface of the liquid collection box.

[0015] The present invention has the following beneficial effects: When the present invention is in use, the liquid to be recycled is poured into the device through the feeding plate. At this time, in the dissolving component, the motor starts and drives the output shaft to operate. The output shaft will drive the discharging rotating plate to rotate. Through the connection with the fixed plate, the liquid entering the device is intermittently fed into the subsequent reaction component. When adjusting the air pressure in the reaction barrel to react with the recycled liquid, it is better for recycling. At the same time, when the output shaft operates, it will drive the top shaft to operate, and the top shaft will drive the transverse rotating plate to operate. When the transverse rotating plate operates, it will drive the connecting column to operate, and the connecting column will drive the transverse stirring plate to operate. The transverse stirring plate continuously stirs the liquid in the housing horizontally, making it dissolve more completely and fully, increasing the recycling rate. At the same time, the control board starts and drives the push rod to operate. The push rod will drive the push rod sealing plate to slide along the surface of the housing. At the same time, when the push rod operates, it will drive the push block to slide along the inner wall of the push block chute to stabilize the push rod and prevent the push rod from damaging the inner wall of the device due to deviation during operation. At the same time, when the push block operates, it will drive the telescopic rod to operate, and the telescopic rod will drive the connecting block to operate. When the connecting block operates, it will drive the protective elastic plate to operate. The protective elastic plate protects the connecting block through its own elastic force to avoid damage to the device caused by the collision of the connecting block with the inner wall of the device during operation. At the same time, when the connecting block operates, it will drive the seat plate to operate, and the seat plate will drive the longitudinal stirring fan to operate. The longitudinal stirring fan will stir the liquid in the device longitudinally, increasing the recycling rate of the liquid. At the same time, when the telescopic rod expands and contracts, it will finally drive the protective collision plate to operate. The two protective collision plates protect the device during operation by contacting each other to prevent collision damage caused by excessive operation.

[0016] When the present invention is in use, within the solid separation component, when the output shaft operates, it drives the sleeve column to operate. The sleeve column then drives the extrusion plate to slide along the inner wall of the solid-liquid partition plate. Through the pressurization effect generated when the discharge rotating plate operates, the waste liquid entering the reaction barrel is extruded, enabling the dissolved waste liquid to better undergo solid-liquid separation. Meanwhile, when the extrusion plate operates, it drives the connecting seat column to operate, and the connecting seat column drives the extrusion fan to rotate, providing an auxiliary extrusion effect on the dissolved waste liquid and enhancing the recycling rate. Finally, the extruded liquid enters the liquid discharge plate through the surface of the solid-liquid partition plate near the liquid discharge plate side, and then enters the subsequent components. At the same time, the discharge control plate within the solid collection plate is controlled to operate. The discharge control plate drives the valve plate to slide along the inner wall of the valve plate chute. When the valve plate operates, it drives the discharge partition plate to operate, and the discharge partition plate drives the inner partition plate to operate. The extruded solid waste will be transmitted through the valve plate chute into the solid collection plate for the recycling of solid waste.

[0017] When the present invention is in use, within the liquid purification component, when the output shaft operates, it drives the filter rotating plate to operate. When the filter rotating plate operates, the inner column within it rotates by a certain angle. When the inner column rotates, it drives the adsorption plate to operate. The adsorption plate further adsorbs the waste liquid within the device, enabling better treatment of the solid particles within it and increasing the recycling rate. Meanwhile, when the adsorption plate operates, it drives the auxiliary vertical plate to operate. Through the connection of the auxiliary vertical plate to the adsorption plate, an offset effect can be generated, thereby better adsorbing the waste liquid. At the same time, when the adsorption plate operates, it drives the positioning spring on the other side surface to operate. Through the connection with the fixed column, the positioning spring generates an elastic force to reset the adsorption plate, preventing the adsorption plate from having too large an offset during operation and causing collision damage to the inner wall of the device. Meanwhile, when the output shaft operates, it drives the conveyor belt to drive. The conveyor belt drives the transmission shaft on its inner wall to rotate along the inner wall of the conveyor belt partition plate. When the transmission shaft operates, it drives the purification vertical plate to operate, and the purification vertical plate purifies the waste liquid within it for better recycling of the waste liquid. At the same time, the output shaft drives the periodic toothed plate to operate. Through the meshing effect on the surface, the periodic toothed plate drives the periodic rack to perform periodic reciprocating operation. When the periodic rack operates, it drives the air compression plate to operate, and the air compression plate exerts an extrusion effect on the air box, generating an air flow to provide a pressurization effect on the inner wall of the device, enabling the treated liquid to better flow out through the liquid discharge holes into the liquid transmission pipe and finally into the liquid collection box. At the same time, through the air flow pressurization effect generated by the air box, the waste liquid on the inner wall of the device can be better planned for treatment, enhancing the recycling rate.

[0018] Of course, it is not necessary for any product implementing the present invention to simultaneously achieve all the above-mentioned advantages. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0020] Figure 1 Schematic diagram of the overall structure of the present invention; Figure 2 Cross-sectional view of the overall structure of the present invention; Figure 3 Schematic diagram of the structure of the dissolution component of the present invention; Figure 4 For the present invention Figure 3 Enlarged view of part A in; Figure 5 For the present invention Figure 3 Enlarged view of part B in; Figure 6 Cross-sectional view of the structure of the solid separation component of the present invention; Figure 7 For the present invention Figure 6 Enlarged view of part C in; Figure 8 Schematic diagram of the structure of the liquid purification component of the present invention; Figure 9 Schematic diagram of the structure of the purification vertical plate of the present invention; Figure 10 Schematic diagram of the structure of the periodic rack of the present invention.

[0021] In the drawings, the list of components represented by each reference numeral is as follows: In the figure: 1, dissolution component; 2, solid separation component; 3, liquid purification component; 4, motor; 5, control board; 6, bottom plate; 7, reaction barrel; 8, solid collection plate; 9, outer shell; 10, feed plate; 11, liquid collection box; 21, output shaft; 22, discharge rotating plate; 23, fixing plate; 24, top shaft; 25, transverse rotating plate; 26, connecting column; 27, transverse stirring plate; 28, push rod; 29, push rod sealing plate; 30, push block; 31, push block chute; 32, telescopic rod; 33, connecting block; 34, protective elastic plate; 35, seat plate; 36, longitudinal stirring fan; 37, protective collision plate; 41, sleeve column; 42, extrusion plate; 43, connecting seat column; 44, extrusion fan; 45, liquid outlet plate; 46, solid-liquid partition board; 47, discharge control board; 48, valve plate; 49, valve plate chute; 50, discharge partition board; 51, inner partition board; 61, filtering rotating plate; 62, inner column; 63, adsorption plate; 64, auxiliary vertical plate; 65, fixed vertical column; 66, positioning spring; 67, conveyor belt; 68, transmission shaft; 69, conveyor belt partition board; 70, purification vertical plate; 71, periodic toothed plate; 72, periodic rack; 73, air compression plate; 74, air box; 75, clamping column; 76, liquid outlet hole; 77, liquid transmission pipe; 78, partition board. Detailed implementation mode

[0022] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0023] Please refer to Figure 1 - Figure 10 As shown in the figure, the present invention is a polyurethane waste stock solution recovery device with a separation function, including a bottom plate 6. The end face of the bottom plate 6 is fixedly connected with a reaction barrel 7. The surface of the reaction barrel 7 away from the bottom plate 6 is fixedly connected with a solid collection plate 8. The surface of the reaction barrel 7 close to the solid collection plate 8 is clamped with an outer shell 9. The inner wall of the outer shell 9 is fixedly connected with a feed plate 10, and further includes: The dissolution component 1, the dissolution component 1 includes an output shaft 21. When the motor 4 is started, it drives the output shaft 21 to run, and the output shaft 21 will drive the discharge rotating plate 22 to rotate. The surface of the output shaft 21 is fixedly connected with the discharge rotating plate 22. Through the connection with the fixing plate 23, the liquid entering the device is intermittently introduced into the subsequent reaction components. When adjusting the air pressure in the reaction barrel 7 to react with the recovered liquid, it can be better recycled. The inner wall of the outer shell 9 close to the discharge rotating plate 22 is fixedly connected with a fixing plate 23; The solid separation component 2, the solid separation component 2 includes a sleeve column 41. When the output shaft 21 operates, it will drive the sleeve column 41 to operate. The sleeve column 41 will drive the extrusion plate 42 to slide along the inner wall of the solid-liquid partition plate 46, and extrude the waste liquid entering the reaction barrel 7 through the pressurizing effect generated when the discharge rotating plate 22 operates, so that the dissolved waste liquid can be better separated into solid and liquid. The surface of the sleeve column 41 is fixedly connected with an extrusion plate 42. When the extrusion plate 42 operates, it will drive the connecting seat column 43 to operate. The surface of the extrusion plate 42 is fixedly connected with a connecting seat column 43. The connecting seat column 43 will drive the extrusion fan 44 to rotate, and play an auxiliary extrusion role on the dissolved waste liquid, enhancing the recycling rate. Finally, the extruded liquid enters the liquid discharge plate 45 through the surface of the solid-liquid partition plate 46 close to the liquid discharge plate 45, and then enters the subsequent components; The liquid purification component 3, the liquid purification component 3 includes a filtering rotating plate 61. When the output shaft 21 operates, it will drive the filtering rotating plate 61 to operate. When the filtering rotating plate 61 operates, the inner column 62 inside it will rotate at a certain angle. The inner wall of the filtering rotating plate 61 is rotatably connected with an inner column 62. When the inner column 62 rotates, it will drive the adsorption plate 63 to operate. The inner wall of the inner column 62 is fixedly connected with an adsorption plate 63. The adsorption plate 63 will further adsorb the waste liquid in the device, so that the solid particles in it can be better treated, increasing the recycling rate.

[0024] The surface of the bottom plate 6 close to the reaction barrel 7 is fixedly connected with a liquid collection box 11. The surface of the bottom plate 6 close to the liquid collection box 11 is fixedly connected with a motor 4. The surface of the outer shell 9 close to the feed plate 10 is fixedly connected with a control board 5. The number of feed plates 10 is set to two, and the two feed plates 10 are symmetrically distributed on the surface of the outer shell 9. The number of liquid collection boxes 11 is set to four. The four liquid collection boxes 11 are divided into two groups, and the number of each group is set to two. The two groups of liquid collection boxes 11 are symmetrically distributed on the surface of the bottom plate 6.

[0025] The dissolving component 1 includes a top shaft 24. When the output shaft 21 operates, it drives the top shaft 24 to operate. The top shaft 24 then drives the transverse rotating plate 25 to operate. The transverse rotating plate 25 is fixedly connected to the surface of the top shaft 24. When the transverse rotating plate 25 operates, it drives the connecting column 26 to operate. The inner wall of the transverse rotating plate 25 is rotatably connected to the connecting column 26. The connecting column 26 then drives the transverse stirring plate 27 to operate. The transverse stirring plate 27 is fixedly connected to the surface of the connecting column 26 on the side away from the transverse rotating plate 25. By continuously stirring the liquid in the outer shell 9 horizontally, the transverse stirring plate 27 enables more complete and thorough dissolution, increasing the recycling rate. The surface of the output shaft 21 penetrates through the inner wall of the reaction barrel 7 to the surface of the top shaft 24 on the side close to the transverse rotating plate 25 and is rotatably connected to the inner wall of the reaction barrel 7. The end face of the output shaft 21 near one end of the fixing plate 23 is fixedly connected to the surface of the top shaft 24 on the side away from the transverse rotating plate 25. The number of connecting columns 26 is set to six, and the six connecting columns 26 are symmetrically distributed around the center of the surface of the transverse rotating plate 25. The number of transverse stirring plates 27 is set to two, and the two transverse stirring plates 27 are symmetrically distributed around the surface of the connecting column 26.

[0026] A push rod 28 is arranged on the surface of the control board 5 on the side close to the output shaft 21. When the control board 5 is activated, it drives the push rod 28 to operate. The push rod 28 then drives the push rod sealing plate 29 to slide along the surface of the outer shell 9. The push rod sealing plate 29 is arranged on the surface of the push rod 28. When the push rod 28 operates, it drives the push block 30 to slide along the inner wall of the push block chute 31 to stabilize the push rod 28 and prevent the push rod 28 from damaging the inner wall of the device due to deviation during operation. The push block 30 is fixedly connected to the surface of the push rod 28 on the side close to the push rod sealing plate 29. When the push block 30 operates, it drives the telescopic rod 32 to operate. The push block chute 31 is formed in the inner wall of the outer shell 9 on the side close to the push block 30. The telescopic rod 32 is fixedly connected to the surface of the push block 30 on the side away from the push rod sealing plate 29. The telescopic rod 32 then drives the connecting block 33 to operate. The surface of the push rod sealing plate 29 on the side away from the push rod 28 is fixedly connected to the surface of the outer shell 9.

[0027] One end face of the telescopic rod 32 away from the push block 30 is fixedly connected with a connecting block 33. When the connecting block 33 operates, it will drive the protective elastic plate 34 to operate. The protective elastic plate 34 protects the connecting block 33 through its own elastic force, avoiding damage to the device caused by the collision of the connecting block 33 with the inner wall of the device during operation. The surface of the connecting block 33 is fixedly connected with the protective elastic plate 34. The surface of the connecting block 33 close to the protective elastic plate 34 is fixedly connected with a seat plate 35. When the connecting block 33 operates, it will drive the seat plate 35 to operate, and the seat plate 35 will drive the longitudinal stirring fan 36 to operate. The longitudinal stirring fan 36 is rotatably connected to the inner wall of the seat plate 35, and the longitudinal stirring fan 36 will longitudinally stir the liquid in the device, increasing the recycling rate of the liquid. One end face of the connecting block 33 away from the telescopic rod 32 is fixedly connected with a protective collision plate 37. When the telescopic rod 32 performs the telescopic action, it will ultimately drive the protective collision plate 37 to operate. The two protective collision plates 37 protect the device during operation by contacting each other, preventing collision damage caused by excessive operation. The number of the protective elastic plates 34 is set to four. The four protective elastic plates 34 are divided into two groups, and the number of each group is set to two. The two groups of protective elastic plates 34 are symmetrically distributed on the surface of the connecting block 33.

[0028] The solid separation component 2 includes an extrusion fan 44. A solid-liquid partition plate 46 is slidably connected to the surface of the extrusion plate 42. A liquid outlet plate 45 is fixedly connected to the inner wall of the solid-liquid partition plate 46 away from the extrusion fan 44. The surface of the sleeve column 41 away from the extrusion plate 42 is fixedly connected to the surface of the output shaft 21. The number of the extrusion plates 42 is set to six. The six extrusion plates 42 are symmetrically distributed around the center of the surface of the sleeve column 41. The surface of the connecting seat column 43 away from the extrusion plate 42 is rotatably connected to the inner wall of the extrusion fan 44. The number of the liquid outlet plates 45 is set to six. The six liquid outlet plates 45 are symmetrically distributed around the center of the surface of the solid-liquid partition plate 46. The surface of the solid-liquid partition plate 46 away from the liquid outlet plate 45 is fixedly connected to the inner wall of the reaction barrel 7.

[0029] On the inner wall of the solid collection plate 8 close to the reaction barrel 7, a discharge control plate 47 is rotatably connected. By controlling the operation of the discharge control plate 47 inside the solid collection plate 8, the discharge control plate 47 will drive the valve plate 48 to run along the inner wall of the valve plate chute 49. The valve plate 48 is fixedly connected to the surface of the discharge control plate 47 close to the reaction barrel 7. When the valve plate 48 runs, it will drive the discharge partition plate 50 to run. A valve plate chute 49 is provided on the inner wall of the reaction barrel 7 close to the valve plate 48. The discharge partition plate 50 is fixedly connected to the surface of the valve plate 48 close to the reaction barrel 7. The discharge partition plate 50 will drive the inner partition plate 51 to run. The squeezed solid waste will be transmitted through the valve plate chute 49 into the solid collection plate 8 for the recovery of solid waste. The inner partition plate 51 is fixedly connected to the end face of the discharge partition plate 50 away from the valve plate 48. The number of valve plates 48 is six, and the six valve plates 48 are symmetrically distributed around the center of the surface of the discharge control plate 47. The surface of the discharge partition plate 50 close to the valve plate 48 is slidably connected to the inner wall of the reaction barrel 7, and the surface of the inner partition plate 51 away from the discharge partition plate 50 is slidably connected to the inner wall of the solid-liquid partition plate 46.

[0030] The liquid purification component 3 includes an auxiliary vertical plate 64. When the adsorption plate 63 runs, it will drive the auxiliary vertical plate 64 to run. Through the connection of the auxiliary vertical plate 64 to the adsorption plate 63, an offset effect can be generated, so as to better adsorb the waste liquid. A positioning spring 66 is fixedly connected to the surface of the adsorption plate 63 away from the auxiliary vertical plate 64. When the adsorption plate 63 runs, it will drive the positioning spring 66 on the other surface to run. The fixing column 65 is fixedly connected to the surface of the positioning spring 66 away from the adsorption plate 63. By connecting the positioning spring 66 to the fixing column 65, an elastic force will be generated to reset the adsorption plate 63, avoiding excessive offset when the adsorption plate 63 runs and causing collision damage to the inner wall of the device. The number of inner columns 62 is six, and the six inner columns 62 are symmetrically distributed around the center of the surface of the filter rotating plate 61. The surface of the adsorption plate 63 is fixedly connected to the surface of the auxiliary vertical plate 64. The number of auxiliary vertical plates 64 is eight. The eight auxiliary vertical plates 64 are divided into two groups, and the number of each group is four. The two groups of auxiliary vertical plates 64 are symmetrically distributed around the end face of the adsorption plate 63. The surface of the fixing column 65 away from the positioning spring 66 is fixedly connected to the surface of the filter rotating plate 61.

[0031] On the surface of the output shaft 21 close to one side of the filtering rotating plate 61, a conveyor belt 67 is drivingly connected. When the output shaft 21 operates, it will drive the conveyor belt 67 to transmit. The conveyor belt 67 will drive the transmission shaft 68 on its inner wall to rotate along the inner wall of the conveyor belt partition 69. The transmission shaft 68 is rotatably connected to the inner wall of the conveyor belt 67 on the side far from the output shaft 21. When the transmission shaft 68 operates, it will drive the purification vertical plate 70 to operate. The purification vertical plate 70 will purify the waste liquid therein, and better recycle and utilize the waste liquid. The surface of the transmission shaft 68 is rotatably connected to the conveyor belt partition 69. On the surface of the transmission shaft 68 on the side far from the conveyor belt partition 69, a purification vertical plate 70 is fixedly connected. The number of the transmission shafts 68 is set to two, and the two transmission shafts 68 are symmetrically distributed with respect to the inner wall of the conveyor belt 67. The surface of the conveyor belt partition 69 on the side far from the transmission shaft 68 is fixedly connected to the inner wall of the reaction barrel 7. The number of the purification vertical plates 70 is set to six, and the six purification vertical plates 70 are symmetrically distributed with respect to the center of the surface of the transmission shaft 68.

[0032] On the surface of the output shaft 21 close to one side of the conveyor belt 67, a periodic tooth plate 71 is fixedly connected. The output shaft 21 will drive the periodic tooth plate 71 to operate. Through the meshing action on the surface, the periodic tooth plate 71 drives the periodic rack 72 to perform periodic reciprocating operation. The periodic tooth plate 71 is meshingly connected to the periodic rack 72. When the periodic rack 72 operates, it will drive the air compression plate 73 to operate. On the surface of the periodic rack 72 on the side far from the periodic tooth plate 71, an air compression plate 73 is fixedly connected. The air compression plate 73 will exert an extrusion effect on the air box 74, generating an air flow to increase the pressure on the inner wall of the device, so that the processed liquid can better flow out along the liquid outlet hole 76 into the liquid transmission pipe 77 and finally flow into the liquid collection box 11. At the same time, through the air flow pressure increase effect generated by the air box 74, the waste liquid on the inner wall of the device can be better planned and treated, enhancing the recycling rate. On the inner wall of the air compression plate 73 close to the periodic rack 72, an air box 74 is provided. On the surface of the air box 74 on the side far from the air compression plate 73, a clamping column 75 is provided. On the inner wall of the reaction barrel 7 close to one side of the conveyor belt partition 69, a partition 78 is fixedly connected. On the inner wall of the reaction barrel 7 close to the partition 78, a liquid outlet hole 76 is opened. On the surface of the reaction barrel 7 close to the liquid outlet hole 76, a liquid transmission pipe 77 is fixedly connected. The number of the air compression plates 73 is set to two, and the two air compression plates 73 are symmetrically distributed with respect to the center of the surface of the periodic rack 72. The surface of the air box 74 is fixedly connected to the surface of the partition 78 on the side far from the output shaft 21. The surface of the clamping column 75 close to the air box 74 is fixedly connected to the inner wall of the reaction barrel 7. The end face of the liquid transmission pipe 77 far from the liquid outlet hole 76 is fixedly connected to the surface of the liquid collection box 11.

[0033] During use, pour the liquid to be recycled into the device through the feed plate 10. At this time, inside the dissolution component 1, the motor 4 starts and drives the output shaft 21 to operate. The output shaft 21 will drive the discharge rotating plate 22 to rotate. Through the connection with the fixed plate 23, the liquid entering the device is intermittently fed into the subsequent reaction component. When adjusting the air pressure of the reaction barrel 7 to react with the recycled liquid for better recycling, at the same time, when the output shaft 21 operates, it will drive the top shaft 24 to operate. The top shaft 24 will drive the transverse rotating plate 25 to operate. When the transverse rotating plate 25 operates, it will drive the connecting column 26 to operate. The connecting column 26 will drive the transverse stirring plate 27 to operate. The transverse stirring plate 27 continuously stirs the liquid inside the outer shell 9 horizontally, enabling it to be more completely and fully dissolved, increasing the recycling rate. At the same time, the control board 5 starts and drives the push rod 28 to operate. The push rod 28 will drive the push rod sealing plate 29 to slide along the surface of the outer shell 9. At the same time, when the push rod 28 operates, it will drive the push block 30 to slide along the inner wall of the push block chute 31 to stabilize the push rod 28 and prevent the push rod 28 from damaging the inner wall of the device due to deviation during operation. At the same time, when the push block 30 operates, it will drive the telescopic rod 32 to operate. The telescopic rod 32 will drive the connecting block 33 to operate. When the connecting block 33 operates, it will drive the protective spring plate 34 to operate. The protective spring plate 34 protects the connecting block 33 through its own elastic force to prevent the connecting block 33 from colliding with the inner wall of the device and causing damage to the device. At the same time, when the connecting block 33 operates, it will drive the seat plate 35 to operate. The seat plate 35 will drive the longitudinal stirring fan 36 to operate. The longitudinal stirring fan 36 will stir the liquid inside the device longitudinally, increasing the recycling rate of the liquid. At the same time, when the telescopic rod 32 expands and contracts, it will ultimately drive the protective collision plate 37 to operate. The two protective collision plates 37 protect the device during operation by coming into contact with each other to prevent collision damage caused by excessive operation.At this time, inside the solid separation component 2, when the output shaft 21 operates, it will drive the sleeve column 41 to operate. The sleeve column 41 will then drive the extrusion plate 42 to slide along the inner wall of the solid-liquid partition plate 46. Through the pressurization effect generated when the discharge rotating plate 22 operates, the waste liquid entering the reaction barrel 7 is extruded, enabling the dissolved waste liquid to better perform solid-liquid separation. At the same time, when the extrusion plate 42 operates, it will drive the connecting seat column 43 to operate. The connecting seat column 43 will then drive the extrusion fan 44 to rotate, providing an auxiliary extrusion effect on the dissolved waste liquid and enhancing the recycling rate. Finally, the extruded liquid enters the liquid discharge plate 45 through the surface of the solid-liquid partition plate 46 near the liquid discharge plate 45 side, and then enters the subsequent components. At the same time, the discharge control plate 47 inside the solid collection plate 8 is controlled to operate. The discharge control plate 47 will drive the valve plate 48 to slide along the inner wall of the valve plate chute 49. When the valve plate 48 operates, it will drive the discharge partition plate 50 to operate. The discharge partition plate 50 will drive the inner partition plate 51 to operate. The extruded solid waste will be transmitted through the valve plate chute 49 into the solid collection plate 8 for the recycling of solid waste. At this time, inside the liquid purification component 3, when the output shaft 21 operates, it will drive the filter rotating plate 61 to operate. When the filter rotating plate 61 operates, the inner column 62 inside it will rotate by a certain angle. When the inner column 62 rotates, it will drive the adsorption plate 63 to operate. The adsorption plate 63 will further adsorb the waste liquid in the device, enabling better treatment of the solid particles inside and increasing the recycling rate. At the same time, when the adsorption plate 63 operates, it will drive the auxiliary vertical plate 64 to operate. Through the connection of the auxiliary vertical plate 64 to the adsorption plate 63, an offset effect can be generated, thereby better adsorbing the waste liquid. At the same time, when the adsorption plate 63 operates, it will drive the positioning spring 66 on the other side surface to operate. Through the connection of the positioning spring 66 with the fixed column 65, an elastic force will be generated to reset the adsorption plate 63, preventing the adsorption plate 63 from having too large an offset during operation and causing collision damage to the inner wall of the device. At the same time, when the output shaft 21 operates, it will drive the conveyor belt 67 to drive. The conveyor belt 67 will drive the transmission shaft 68 inside its inner wall to rotate along the inner wall of the conveyor belt partition plate 69. When the transmission shaft 68 operates, it will drive the purification vertical plate 70 to operate. The purification vertical plate 70 will purify the waste liquid inside it, enabling better recycling of the waste liquid. At the same time, the output shaft 21 will drive the periodic tooth plate 71 to operate. Through the meshing effect on the surface, the periodic rack 72 is driven to perform periodic reciprocating operation. When the periodic rack 72 operates, it will drive the air compression plate 73 to operate. The air compression plate 73 will exert an extrusion effect on the air box 74, generating an air flow to provide a pressurization effect on the inner wall of the device, enabling the treated liquid to better flow out along the liquid discharge hole 76 into the liquid transmission pipe 77 and finally flowing into the liquid collection box 11. At the same time, through the air flow pressurization effect generated by the air box 74, the waste liquid on the inner wall of the device can be better planned for treatment, enhancing the recycling rate.

[0034] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification in order to better explain the principles and practical applications of the present invention, so that those skilled in the art can well understand and utilize the present invention. The present invention is only limited by the claims and their full scope and equivalents.

Claims

1. A recovery device for waste ammonia liquor with separation function, comprising a bottom plate (6), the end face of the bottom plate (6) is fixedly connected with a reaction barrel (7), the surface of the reaction barrel (7) far away from the bottom plate (6) is fixedly connected with a solid collection plate (8), the surface of the reaction barrel (7) close to the solid collection plate (8) is clamped with a housing (9), and the inner wall of the housing (9) is fixedly connected with a feed plate (10), characterized in that, Further included are: a dissolving component (1), the dissolving component (1) includes an output shaft (21), a discharge rotating plate (22) is fixedly connected to the surface of the output shaft (21), and a fixed plate (23) is fixedly connected to the inner wall of the outer shell (9) on one side close to the discharge rotating plate (22); a solid separation component (2), the solid separation component (2) includes a sleeve column (41), an extrusion plate (42) is fixedly connected to the surface of the sleeve column (41), and a connecting seat column (43) is fixedly connected to the surface of the extrusion plate (42); a liquid purification component (3), the liquid purification component (3) includes a filtering rotating plate (61), an inner column (62) is rotatably connected to the inner wall of the filtering rotating plate (61), and an adsorption plate (63) is fixedly connected to the inner wall of the inner column (62).

2. The polyurethane waste stock solution recovery device with a separation function according to claim 1, wherein: A liquid collection box (11) is fixedly connected to the surface of the bottom plate (6) on one side close to the reaction barrel (7), a motor (4) is fixedly connected to the surface of the bottom plate (6) on one side close to the liquid collection box (11), a control board (5) is fixedly connected to the surface of the outer shell (9) on one side close to the feed plate (10), the number of the feed plates (10) is two, the two feed plates (10) are symmetrically distributed on the surface of the outer shell (9), the number of the liquid collection boxes (11) is four, the four liquid collection boxes (11) are divided into two groups, and the number of each group is two, and the two groups of liquid collection boxes (11) are symmetrically distributed on the surface of the bottom plate (6).

3. The polyurethane waste stock solution recovery device with a separation function according to claim 2, characterized in that: The dissolving component (1) includes a top shaft (24), a transverse rotating plate (25) is fixedly connected to the surface of the top shaft (24), a connecting column (26) is rotatably connected to the inner wall of the transverse rotating plate (25), a transverse stirring plate (27) is fixedly connected to the surface of the connecting column (26) on the side away from the transverse rotating plate (25), the surface of the output shaft (21) penetrates through the inner wall of the reaction barrel (7) to the surface of the top shaft (24) on the side close to the transverse rotating plate (25), and is rotatably connected to the inner wall of the reaction barrel (7), the end face of the output shaft (21) close to one end of the fixed plate (23) is fixedly connected to the surface of the top shaft (24) on the side away from the transverse rotating plate (25), the number of the connecting columns (26) is six, the six connecting columns (26) are symmetrically distributed with the center of the surface of the transverse rotating plate (25) as the center, the number of the transverse stirring plates (27) is two, and the two transverse stirring plates (27) are symmetrically distributed with the surface of the connecting column (26) as the center.

4. The polyurethane elastic fiber waste stock solution recovery device with a separation function according to claim 3, characterized in that: A push rod (28) is arranged on the surface of the control board (5) on one side close to the output shaft (21), a push rod sealing plate (29) is arranged on the surface of the push rod (28), a push block (30) is fixedly connected to the surface of the push rod (28) on the side close to the push rod sealing plate (29), a push block sliding groove (31) is formed in the inner wall of the outer shell (9) on the side close to the push block (30), a telescopic rod (32) is fixedly connected to the surface of the push block (30) on the side away from the push rod sealing plate (29), and the surface of the push rod sealing plate (29) on the side away from the push rod (28) is fixedly connected to the surface of the outer shell (9).

5. The polyurethane elastic fiber waste stock solution recovery device with a separation function according to claim 4, characterized in that: One end of the telescopic rod (32) away from the push block (30) is fixedly connected with a connecting block (33). The surface of the connecting block (33) is fixedly connected with a protective elastic plate (34). The surface of the connecting block (33) close to the protective elastic plate (34) is fixedly connected with a seat plate (35). The inner wall of the seat plate (35) is rotatably connected with a longitudinal stirring fan (36). One end of the connecting block (33) away from the telescopic rod (32) is fixedly connected with a protective collision plate (37). The number of the protective elastic plates (34) is set to four. The four protective elastic plates (34) are divided into two groups, and the number of each group is set to two. The two groups of protective elastic plates (34) are symmetrically distributed on the surface of the connecting block (33).

6. The polyurethane elastic fiber waste stock solution recovery device with a separation function according to claim 5, characterized in that: The solid separation component (2) includes an extrusion fan (44). A solid-liquid partition plate (46) is slidably connected to the surface of the extrusion plate (42). The inner wall of the solid-liquid partition plate (46) away from the extrusion fan (44) is fixedly connected with a liquid outlet plate (45). The surface of the sleeve column (41) away from the extrusion plate (42) is fixedly connected with the surface of the output shaft (21). The number of the extrusion plates (42) is set to six. The six extrusion plates (42) are symmetrically distributed about the center of the surface of the sleeve column (41). The surface of the connecting seat column (43) away from the extrusion plate (42) is rotatably connected with the inner wall of the extrusion fan (44). The number of the liquid outlet plates (45) is set to six. The six liquid outlet plates (45) are symmetrically distributed about the center of the surface of the solid-liquid partition plate (46). The surface of the solid-liquid partition plate (46) away from the liquid outlet plate (45) is fixedly connected with the inner wall of the reaction barrel (7).

7. The polyurethane elastic fiber waste stock solution recovery device with a separation function according to claim 6, wherein: The inner wall of the solid collection plate (8) close to the reaction barrel (7) is rotatably connected with a discharge control plate (47). The surface of the discharge control plate (47) close to the reaction barrel (7) is fixedly connected with a valve plate (48). A valve plate chute (49) is opened on the inner wall of the reaction barrel (7) close to the valve plate (48). The surface of the valve plate (48) close to the reaction barrel (7) is fixedly connected with a discharge partition plate (50). The end face of the discharge partition plate (50) away from the valve plate (48) is fixedly connected with an inner partition plate (51). The number of the valve plates (48) is set to six. The six valve plates (48) are symmetrically distributed about the center of the surface of the discharge control plate (47). The surface of the discharge partition plate (50) close to the valve plate (48) is slidably connected with the inner wall of the reaction barrel (7). The surface of the inner partition plate (51) away from the discharge partition plate (50) is slidably connected with the inner wall of the solid-liquid partition plate (46).

8. An ammonia fiber waste stock solution recovery device with a separation function according to claim 7, characterized in that: The liquid purification component (3) includes an auxiliary vertical plate (64). On the surface of the adsorption plate (63) away from the auxiliary vertical plate (64), a positioning spring (66) is fixedly connected. On the surface of the positioning spring (66) away from the adsorption plate (63), a fixed column (65) is fixedly connected. The number of the inner columns (62) is six, and the six inner columns (62) are symmetrically distributed about the center of the surface of the filtering rotating plate (61). The surface of the adsorption plate (63) is fixedly connected to the surface of the auxiliary vertical plate (64). The number of the auxiliary vertical plates (64) is eight. The eight auxiliary vertical plates (64) are divided into two groups, and the number of each group is four. The two groups of auxiliary vertical plates (64) are symmetrically distributed about the end face of the adsorption plate (63). The surface of the fixed column (65) away from the positioning spring (66) is fixedly connected to the surface of the filtering rotating plate (61).

9. The polyurethane elastic fiber waste stock solution recovery device with a separation function according to claim 8, characterized in that: On the surface of the output shaft (21) close to the filtering rotating plate (61), a conveyor belt (67) is drivingly connected. On the inner wall of the conveyor belt (67) away from the output shaft (21), a transmission shaft (68) is rotatably connected. On the surface of the transmission shaft (68), a conveyor belt partition (69) is rotatably connected. On the surface of the transmission shaft (68) away from the conveyor belt partition (69), a purification vertical plate (70) is fixedly connected. The number of the transmission shafts (68) is two, and the two transmission shafts (68) are symmetrically distributed about the inner wall of the conveyor belt (67). The surface of the conveyor belt partition (69) away from the transmission shaft (68) is fixedly connected to the inner wall of the reaction barrel (7). The number of the purification vertical plates (70) is six, and the six purification vertical plates (70) are symmetrically distributed about the center of the surface of the transmission shaft (68).

10. An ammonia fiber waste stock solution recovery device with a separation function according to claim 9, characterized in that: On the surface of the output shaft (21) close to the conveyor belt (67), a periodic toothed plate (71) is fixedly connected. On the surface of the periodic toothed plate (71), a periodic rack (72) is meshingly connected. On the surface of the periodic rack (72) away from the periodic toothed plate (71), a compressed air plate (73) is fixedly connected. Inside the inner wall of the compressed air plate (73) close to the periodic rack (72), an air tank (74) is arranged. On the surface of the air tank (74) away from the compressed air plate (73), a clamping column (75) is arranged. On the inner wall of the reaction barrel (7) close to the conveyor belt partition (69), a partition (78) is fixedly connected. On the inner wall of the reaction barrel (7) close to the partition (78), a liquid outlet hole (76) is formed. On the surface of the reaction barrel (7) close to the liquid outlet hole (76), a liquid transmission pipe (77) is fixedly connected. The number of the compressed air plates (73) is two, and the two compressed air plates (73) are symmetrically distributed about the center of the surface of the periodic rack (72). The surface of the air tank (74) is fixedly connected to the surface of the partition (78) away from the output shaft (21). The surface of the clamping column (75) close to the air tank (74) is fixedly connected to the inner wall of the reaction barrel (7). The end face of the liquid transmission pipe (77) away from the liquid outlet hole (76) is fixedly connected to the surface of the liquid collection box (11).

Citation Information

Patent Citations

  • Reaction kettle for producing perfluorononenoxy sodium benzenesulfonate

    CN119425586A

  • An environmentally friendly fire retardant coating production line coating stirring device

    CN119733399A

  • Waste liquid recycling device for preparation of lithium hexafluorophosphate

    WO2024108864A1