Wastewater recovery device for wool products

By automatically cleaning the filter net impurities using vibrating components and mobile components in the wool product wastewater recycling device, the problem of easy blockage of the filter net is solved, the wastewater recycling efficiency is improved, and the manual cleaning time is reduced.

CN120288852AInactive Publication Date: 2025-07-11NANGONG SENSHENG FUR & LEATHER CO LTD
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Patent Information

Application Number
CN202510305061.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-14
Publication Date
2025-07-11
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When the existing wool product wastewater recycling device treats wastewater with high impurity content, the filter net is often blocked frequently, resulting in low wastewater recycling efficiency and requires frequent manual cleaning of impurities, which is time-consuming and labor-intensive.

Method used

The vibration component is used to drive the filter to vibrate, and combine the first moving component and the second moving component to automatically push impurities into the buffer shell, and pass through the impurities on the filter and collect them to reduce the need for manual cleaning.

Benefits of technology

The filter net is not easy to block, and it automatically cleans up impurities, improves wastewater recycling efficiency, and saves manual cleaning time.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention relates to a waste water recovery device for wool products, and belongs to the technical field of waste water recovery, the waste water recovery device comprises a box body and a stirring device for stirring, the box body is provided with a water outlet and a feeding port, the box body is connected with a water inlet pipe, and a filter screen is slidably connected in the water inlet pipe; a vibration assembly used for driving the filter screen to vibrate is arranged at the filter screen, a power assembly used for providing power for the vibration assembly is arranged in the water inlet pipe, buffer shells are fixedly arranged on the two opposite side walls of the water inlet pipe, receding grooves are formed in the sides, facing the water inlet pipe, of the buffer shells, and a first push plate is arranged on the side, away from the box body, of the filter screen. A first moving assembly used for driving the first push plate to move towards the avoiding groove is arranged in the water inlet pipe, a supporting plate is arranged in the buffer shell, and a second moving assembly used for driving the supporting plate to move in the vertical direction is arranged at the buffer shell.
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Description

Technical Field

[0001] This application relates to the technical field of wastewater recycling, and particularly to a wastewater recycling device for wool products. Background Art

[0002] A large amount of wastewater is generated during the processing of wool products. This wastewater mainly comes from processes such as soaking, washing, and rinsing of wool, and contains organic and inorganic pollutants such as wool grease, detergents, softeners, and pigments. The wastewater recycling device for wool products aims to remove harmful substances in this wastewater through a series of treatment processes to achieve the purification and recycling of wastewater.

[0003] The existing wastewater recycling device mainly consists of a reaction tank, which is equipped with an inlet and an outlet. At the same time, a filter screen is fixedly installed at the inlet to intercept large particle impurities in the wastewater. The reaction tank is also designed with a dosing port for adding chemical agents, and a stirring device is built-in to promote the full mixing of wastewater and chemical agents. In the wastewater recycling process, the wastewater first enters the reaction tank through the inlet, and during this process, the filter screen effectively blocks impurities. After the wastewater injection is completed, chemical agents are added into the tank through the dosing port, and then the stirring device is started to ensure the full reaction of wastewater and chemical agents. After the reaction is completed, the treated water is discharged from the outlet to achieve the efficient recycling treatment of wastewater. To avoid clogging of the filter screen, the staff will manually clean the accumulated impurities, thus creating convenient conditions for subsequent wastewater recycling operations.

[0004] In view of the above-related technologies, when the impurity content of the wastewater is high, during the process of discharging wastewater into the reaction tank, the filter screen is prone to frequent clogging, and the staff needs to continuously clean the impurities. This process is both time-consuming and laborious, thus having the defect of low wastewater recycling efficiency. Summary of the Invention

[0005] In order to improve the working efficiency of wastewater recycling, this application provides a wastewater recycling device for wool products.

[0006] The wastewater recycling device for wool products provided by this application adopts the following technical solutions:

[0007] A wastewater recovery device for wool products comprises a box body and a stirring device for stirring, the box body is provided with a water outlet and a feeding port, the upper side wall of the box body is connected with a water inlet pipe, the water inlet pipe is horizontally arranged, the water inlet pipe and the box body are connected, a filter screen is slidably connected in the water inlet pipe, a vibration component for driving the filter screen to vibrate is arranged at the filter screen, a power component for providing power to the vibration component is arranged in the water inlet pipe, a buffer shell is fixedly provided on the opposite side walls of the water inlet pipe, an avoidance groove is provided on the side of the buffer shell facing the water inlet pipe, the buffer shell and the water inlet pipe are connected at the avoidance groove, a first push plate is provided on the side of the filter screen away from the box body, and a second push plate is provided on the side of the filter screen facing away from the box body. The bottom side of a push plate abuts against the bottom wall of the water inlet pipe, a first moving component for driving the first push plate to move toward the avoidance groove is arranged in the water inlet pipe, a support plate is arranged in the buffer shell, and a second moving component for driving the support plate to move in the vertical direction is arranged at the buffer shell, two guide pipes are fixedly arranged on the top wall of the water inlet pipe, the guide pipes are connected to the water inlet pipe, one end of the guide pipe away from the water inlet pipe is fixedly connected to the buffer shell and corresponds one to one, a through hole is provided at the connection between the buffer shell and the guide pipe, a collecting box is connected to one side of the buffer shell, a debris outlet is provided at the connection between the buffer shell and the collecting box, and a pushing component capable of pushing impurities toward the debris outlet is provided on the support plate.

[0008] By adopting the above technical solution, during the wastewater treatment process, wastewater is introduced from one end of the water inlet pipe away from the box body, and is filtered through the filter screen when flowing in the pipe. At the same time, the power component provides energy to the vibration component, so that it drives the filter screen to vibrate, effectively causing the impurities on the filter screen to fall to the inner bottom of the water inlet pipe. At this time, the first moving component is started, driving the first push plate to make reciprocating motion in the water inlet pipe. During the movement, the first push plate pushes the impurities on the inner bottom wall to the avoidance grooves on both sides, so that the impurities accumulate on the support plate. In particular, when the first push plate pushes the impurities to the avoidance groove on one side, the second moving component on the other side drives the support plate to rise, driving the impurities and the wastewater entering the buffer shell to rise together. When the wastewater reaches the through hole position, it will pass through the through hole and flow back into the water inlet pipe under the guidance of the guide pipe. When the support plate moves to the impurity outlet position, the pushing component plays a role and pushes the impurities into the collection shell. Subsequently, the second moving component is started again, driving the support plate to descend and reset. This process eliminates the need for manual cleaning of impurities, saving time and thus improving the efficiency of wastewater recycling.

[0009] Optionally, guide rails are fixedly provided on the opposite side walls of the water inlet pipe, the opposite ends of the guide rails are closed, a slider is slidably connected in the guide rail, and the side of the slider facing the filter is fixedly connected to the filter.

[0010] By adopting the above technical solution, during the vibration of the filter screen, the filter screen drives the slider to move in the guide rail. The arrangement of the guide rail and the slider realizes the sliding connection between the filter screen and the water inlet pipe.

[0011] Optionally, the vibration assembly includes a rotating rod and a cam. The two ends of the rotating rod are respectively rotatably connected to the opposite side walls of the water inlet pipe. The cam is fixedly arranged on the rotating rod and abuts against the filter screen. A first spring is fixedly arranged between the slider and one side wall of the guide rail, and the telescopic direction of the first spring is parallel to the length direction of the guide rail.

[0012] By adopting the above technical solution, the power assembly drives the rotating rod to rotate, and the rotating rod drives the cam to rotate. Under the cooperative action of the cam and the first spring, the function of driving the filter screen to vibrate is realized.

[0013] Optionally, one end of the water inlet pipe connected to the box body is rectangular, and the end of the water inlet pipe far from the box body is cylindrical. A transmission rod is arranged inside the rectangular end of the water inlet pipe close to the cylindrical end. The two ends of the transmission rod are respectively rotatably connected to the opposite inner walls of the water inlet pipe. The power assembly includes a rotating plate and a sail plate. The rotating plate is arranged on the transmission rod, and the transmission rod passes through the rotating plate and is fixedly connected to the rotating plate. A plurality of sail plates are arranged, and the plurality of sail plates are sequentially fixedly connected to the rotating plate along the circumferential side of the rotating plate. A first linkage assembly for linking with the rotating rod is arranged at the transmission rod.

[0014] By adopting the above technical solution, during the process of wastewater flowing in the water inlet pipe, the wastewater pushes some of the sail plates to move. The sail plates drive the rotating plate to rotate, the rotating plate drives the transmission rod to rotate, and the transmission rod drives the rotating rod to rotate through the first linkage assembly. Thus, the power assembly realizes the function of providing power for the vibration assembly.

[0015] Optionally, the first linkage assembly includes a first synchronous pulley, a second synchronous pulley and a synchronous belt. The first synchronous pulley is fixedly arranged on the first transmission rod, the second synchronous pulley is fixedly arranged on the first rotating rod, and the synchronous belt is sleeved outside the first synchronous pulley and the second synchronous pulley.

[0016] By adopting the above technical solution, during the rotation of the transmission rod, the transmission rod drives the first synchronous pulley to rotate, the first synchronous pulley drives the synchronous belt to rotate, the synchronous belt drives the second synchronous pulley to rotate, and the second synchronous pulley drives the rotating rod to rotate. Thus, the first linkage assembly realizes the linkage between the transmission rod and the rotating rod.

[0017] Optionally, the first moving component includes a reciprocating lead screw and a moving plate. The reciprocating lead screw is made by opening thread grooves on the outer side wall of the rod body in the forward and reverse directions along its circumferential direction. The forward thread groove and the reverse thread groove are connected end to end and cross-connected. The two ends of the reciprocating lead screw are respectively rotatably connected to the opposite inner walls of the water inlet pipe. The moving plate is arranged on the reciprocating lead screw. The reciprocating lead screw passes through the moving plate and is slidably connected to the moving plate. A guiding block is slidably connected to the reciprocating lead screw in the thread groove. The guiding block is connected to the moving plate. One end of the moving plate is fixedly connected to the first push plate. A first guiding rod is arranged on one side of the reciprocating lead screw. The two ends of the first guiding rod are respectively fixedly connected to the two side walls of the water inlet pipe. The first guiding rod passes through the moving plate and is slidably connected to the moving plate. A second linkage component for linking with the first rotating rod is arranged at the reciprocating lead screw.

[0018] By adopting the above technical solution, under the action of the second linkage component, the transmission rod drives the reciprocating lead screw to rotate. Under the guiding action of the first guiding rod and the moving plate, the reciprocating lead screw drives the guiding block to move in the thread groove. The guiding block drives the moving plate to move, and the moving plate drives the first push plate to move. Thus, the first moving component realizes the function of driving the first push plate to move.

[0019] Optionally, the second linkage component includes a first gear and a second gear. The first gear is fixedly arranged on the first rotating rod, and the second gear is fixedly arranged on the reciprocating lead screw. The first gear meshes with the second gear.

[0020] By adopting the above technical solution, the transmission rod drives the first gear to rotate. The first gear drives the second gear to rotate, and the second gear drives the reciprocating lead screw to rotate. Thus, the second linkage component realizes the linkage between the transmission rod and the reciprocating lead screw.

[0021] Optionally, the second moving component includes a first thread sleeve and a first screw rod. The first thread sleeve is vertically arranged in the buffer housing. The bottom end of the first thread sleeve is rotatably connected to the inner bottom wall of the buffer housing. A motor is fixedly arranged on the bottom wall of the buffer housing. The output shaft of the motor is fixedly connected to the first thread sleeve. The first screw rod is in threaded connection with the first thread sleeve. The upper end of the first screw rod is fixedly connected to the support plate.

[0022] By adopting the above technical solution, when the motor is started, the motor drives the first thread sleeve to rotate. Under the guiding action of the support plate, the first thread sleeve drives the first screw rod to move upward, and the first screw rod drives the support plate to move upward. Thus, the second moving component realizes the function of driving the support plate to move upward.

[0023] Optionally, an auxiliary plate is fixedly provided on one side of the upper surface of the support plate, and the opposite sides of the auxiliary plate abut against the inner walls of the opposite sides of the buffer shell, and the pushing assembly includes a second push plate, a second threaded sleeve and a second screw, the second push plate is arranged on the support plate, the second push plate and the auxiliary plate are parallel, the second threaded sleeve is arranged on the side of the auxiliary plate away from the second push plate, one end of the second threaded sleeve is rotatably connected to the auxiliary plate, the second screw is threadedly connected to the second threaded sleeve, one end of the second screw penetrates the auxiliary plate and is fixedly connected to the second push plate, a second guide rod is provided on the auxiliary plate, the length direction of the second guide rod is parallel to the length direction of the second threaded sleeve, the second guide rod penetrates the auxiliary plate and is slidably connected to the auxiliary plate, one end of the second guide rod is fixedly connected to the second push plate, a rack is fixedly provided on the side wall of the buffer shell, a third gear is fixedly provided on the second threaded sleeve, and the third gear is meshed with the rack.

[0024] By adopting the above technical scheme, in the process of the support plate moving upward, the support plate drives the auxiliary plate and the second push plate to move synchronously, the auxiliary plate drives the second threaded sleeve to move, the second threaded sleeve drives the second screw and the third gear to move, during the movement of the third gear, under the guidance of the rack, the third gear rotates, the third gear drives the second threaded sleeve to rotate, the second threaded sleeve drives the second screw to move under the guidance of the second guide rod, the second screw drives the second push plate to move, during the movement of the second push plate, the impurities are pushed toward the side wall of the buffer shell where the impurity outlet is opened, when the support plate rises to the impurity outlet, the second push plate pushes the impurities and the support plate to separate, thereby the pushing component realizes the function of pushing the impurities toward the impurity outlet.

[0025] Optionally, a baffle for shielding the avoidance groove is fixedly provided on one side of the lower surface of the support plate close to the water inlet pipe.

[0026] By adopting the above technical solution, when the support plate moves upward, the support plate drives the baffle plate to move, and the baffle plate blocks the avoidance groove, making it difficult for wastewater to enter the buffer shell.

[0027] In summary, the present application includes at least one of the following beneficial technical effects:

[0028] 1. The vibration component makes the filter screen less likely to be blocked, and at the same time makes the impurities fall onto the inner bottom wall of the water inlet pipe. Then the first moving component drives the first push plate to move back and forth, pushing the impurities into the buffer shells on both sides. The staff does not need to constantly clean the impurities on the filter screen, which saves time and improves the efficiency of wastewater recovery.

[0029] 2. The transmission rod and the reciprocating screw are linked by the second linkage assembly, so there is no need to provide power for the rotation of the reciprocating screw alone, saving resources;

[0030] 3. By setting the third gear and the rack, the movement of the pushing component is realized, and there is no need to provide power for the pushing component separately, thus saving resources. Brief Description of the Drawings

[0031] Figure 1 is a schematic structural diagram of a waste water recycling device for wool products according to an embodiment of the present application;

[0032] Figure 2 is a cross-sectional view of the structure inside the water inlet pipe to show in the embodiment of the present application;

[0033] Figure 3 is a cross-sectional view of the structure at the guide rail to show in the embodiment of the present application;

[0034] Figure 4 is a cross-sectional view of the structure inside the buffer housing to show in the embodiment of the present application.

[0035] In the figure, 1. Box body; 11. Stirring device; 12. Water outlet; 13. Feeding port; 14. Water inlet pipe; 141. Filter screen; 142. First push plate; 143. Guide rail; 144. Slide block; 145. First spring; 146. Transmission rod; 147. First guide rod; 2. Vibration component; 21. Rotating rod; 22. Cam; 3. Power component; 31. Rotating plate; 32. Sailboard; 4. Buffer housing; 41. Avoidance groove; 42. Support plate; 43. Diversion pipe; 44. Through hole; 45. Collection box; 46. Impurity outlet; 47. Motor; 48. Auxiliary plate; 481. Second guide rod; 482. Third gear; 483. Rack; 49. Baffle; 5. First moving component; 51. Reciprocating lead screw; 52. Moving plate; 521. Guide block; 6. Second moving component; 61. First thread sleeve; 62. First screw rod; 7. Pushing component; 71. Second push plate; 72. Second thread sleeve; 73. Second screw rod; 8. First linkage component; 81. First synchronous pulley; 82. Second synchronous pulley; 83. Timing belt; 9. Second linkage component; 91. First gear; 92. Second gear. Detailed Embodiment

[0036] The following will Figures 1-4 be further described in detail with reference to the attached

[0037] The embodiment of the present application discloses a waste water recycling device for wool products.

[0038] Refer to Figure 1, A wastewater recycling device for wool products includes a box body 1. On one side of the upper end of the box body 1, a water inlet pipe 14 is fixedly installed. The water inlet pipe 14 is horizontally arranged. One end of the water inlet pipe 14 close to the box body 1 is rectangular, and the end of the water inlet pipe 14 far from the box body 1 is cylindrical. A feeding port 13 for putting chemical agents is opened on the top wall of the box body 1. An outlet 12 is opened on the side wall of the box body 1. A stirring device 11 for stirring wastewater and chemical agents is arranged on the box body 1.

[0039] Discharge the wastewater into the box body 1 from the water inlet. After the discharge is completed, put the chemical agent into the box body 1 from the feeding port 13. Start the stirring device 11. The stirring device 11 completes the mixing of the wastewater and the chemical agent. After the reaction is completed, the treated water can be discharged from the box body 1 through the outlet 12.

[0040] Reference Figure 1 、 Figure 2 And Figure 3 , A filter screen 141 is arranged inside the rectangular end of the water inlet pipe 14. The filter screen 141 is parallel to the length direction of the water inlet pipe 14. Guide rails 143 are fixedly installed on the inner walls of the opposite sides of the water inlet pipe 14. The length direction of the guide rails 143 is parallel to the filter screen 141. A slider 144 is slidably connected inside the guide rails 143. One side of the slider 144 facing the inside of the water inlet pipe 14 is fixedly connected to the filter screen 141. The opposite ends of the guide rails 143 are closed. A first spring 145 is fixedly installed between the slider 144 and one inner wall of the guide rails 143. The telescopic direction of the first spring 145 is parallel to the length direction of the guide rails 143. A vibration assembly 2 for driving the filter screen 141 to vibrate is arranged at the filter screen 141.

[0041] The vibration assembly 2 includes a rotating rod 21 and a cam 22. The rotating rod 21 is horizontally arranged. The two ends of the rotating rod 21 are respectively rotatably connected to the opposite side walls of the water inlet pipe 14. The cam 22 is fixedly installed on the rotating rod 21. The cam 22 is always in contact with the filter screen 141.

[0042] During the process of discharging wastewater into the water inlet pipe 14, the filter screen 141 filters the wastewater, making it difficult for large particle impurities to enter the box body 1. At the same time, the rotating rod 21 rotates, and the rotating rod 21 drives the cam 22 to rotate. Under the combined action of the cam 22 and the first spring 145, the filter screen 141 vibrates, causing the impurities on the filter screen 141 to fall onto the inner bottom wall of the water inlet pipe 14.

[0043] Reference Figure 1 、 Figure 2 And Figure 3 , A transmission rod 146 is arranged at the connection between the rectangular end and the cylindrical end of the water inlet pipe 14. The length direction of the transmission rod 146 is parallel to the rotating rod 21. The two ends of the transmission rod 146 are respectively rotatably connected to the opposite side walls of the water inlet pipe 14. A power assembly 3 for providing power for the rotation of the rotating rod 21 is arranged on the transmission rod 146.

[0044] The power assembly 3 includes a rotating plate 31 and a sail plate 32. The rotating plate 31 is arranged on the transmission rod 146, and the transmission rod 146 penetrates through the rotating plate 31 and is fixedly connected to the rotating plate 31. There are multiple sail plates 32, and the multiple sail plates 32 are arranged in sequence along the circumferential side wall of the rotating plate 31. One end of the sail plate 32 is fixedly connected to the rotating plate 31, and a first linkage assembly 8 for linkage with the rotating rod 21 is arranged on the transmission rod 146.

[0045] The first linkage assembly 8 includes a first synchronous pulley 81, a second synchronous pulley 82, and a synchronous belt 83. The first synchronous pulley 81 is fixedly arranged on the transmission rod 146, the second synchronous pulley 82 is fixedly arranged on the rotating rod 21, and the synchronous belt 83 is sleeved outside the first synchronous pulley 81 and the second synchronous pulley 82.

[0046] During the process of discharging wastewater into the water inlet pipe 14, the wastewater impacts some of the sail plates 32, causing the sail plates 32 to move. The sail plates 32 drive the rotating plate 31 to rotate, the rotating plate 31 drives the transmission rod 146 to rotate, the transmission rod 146 drives the first synchronous pulley 81 to rotate, the first synchronous pulley 81 drives the synchronous belt 83 to rotate, the synchronous belt 83 drives the second synchronous pulley 82 to rotate, and the second synchronous pulley 82 drives the rotating rod 21 to rotate.

[0047] Reference Figure 1 、 Figure 2 and Figure 3 , buffer shells 4 are fixedly arranged on the opposite side walls of the water inlet pipe 14. An avoidance groove 41 is formed on the side wall of the buffer shell 4 connected to the water inlet pipe 14, and the buffer shell 4 is communicated with the water inlet pipe 14 at the avoidance groove 41. A first push plate 142 is arranged in the water inlet pipe 14. The length direction of the first push plate 142 is parallel to the length direction of the water inlet pipe 14. The first push plate 142 is perpendicular to the filter net 141. The lower surface of the first push plate 142 abuts against the inner bottom wall of the water inlet pipe 14. A first moving assembly 5 for driving the first push plate 142 to reciprocate towards the direction of the avoidance groove 41 is arranged in the water inlet pipe 14.

[0048] The first moving component 5 includes a reciprocating lead screw 51 and a moving plate 52. The length direction of the reciprocating lead screw 51 is parallel to the length direction of the transmission rod 146. The opposite ends of the reciprocating lead screw 51 are respectively rotationally connected to the opposite side walls of the water inlet pipe 14. The moving plate 52 is arranged on the reciprocating lead screw 51. The reciprocating lead screw 51 penetrates through the moving plate 52 and is slidably connected to the moving plate 52. A guiding block 521 is slidably connected to the reciprocating lead screw 51 in a thread groove. One end of the guiding block 521 is connected to the moving plate 52. The bottom plate of the moving plate 52 is fixedly connected to the upper end of the first pushing plate 142. A first guiding rod 147 is arranged on one side of the reciprocating lead screw 51. The length direction of the first guiding rod 147 is parallel to the length direction of the reciprocating lead screw 51. The two ends of the first guiding rod 147 are respectively fixedly connected to the opposite side walls of the water inlet pipe 14. The first guiding rod 147 penetrates through the moving plate 52 and is slidably connected to the moving plate 52. A second linkage component 9 for linking with the transmission rod 146 is arranged at the reciprocating lead screw 51.

[0049] The second linkage component 9 includes a first gear 91 and a second gear 92. The first gear 91 is fixedly arranged at one end of the transmission rod 146. The second gear 92 is fixedly arranged at one end of the reciprocating lead screw 51. The first gear 91 and the second gear 92 are meshed.

[0050] During the rotation of the transmission rod 146, the transmission rod 146 drives the first gear 91 to rotate. The first gear 91 drives the second gear 92 to rotate. The second gear 92 drives the reciprocating lead screw 51 to rotate. Under the guiding action of the first guiding rod 147, the reciprocating lead screw 51 drives the guiding block 521 to move in the thread groove. The guiding block 521 drives the moving plate 52 to move. The moving plate 52 drives the first pushing plate 142 to move. The first pushing plate 142 pushes the impurities on the inner wall of the water inlet pipe 14 towards the direction of one buffer housing 4, so that the impurities enter the buffer housing 4 from the avoidance groove 41. During the movement in the direction of the moving plate 52, the impurities on the inner bottom wall of the water inlet pipe 14 are pushed into the buffer housing 4 on the other side again, so that the filter net 141 is not easily blocked.

[0051] Reference Figure 2 、 Figure 3 and Figure 4, a diversion pipe 43 is fixedly arranged on the upper side wall of the upper end of the buffer housing 4. One end of the diversion pipe 43 far away from the buffer housing 4 is fixedly connected to the water inlet pipe 14. The diversion pipe 43 is communicated with the water inlet pipe 14. A through hole 44 is arranged at the connection of the buffer housing 4 and the diversion pipe 43. A support plate 42 is horizontally arranged in the buffer housing 4. Three side walls of the support plate 42 are abutted against the inner wall of the buffer housing 4. A baffle 49 is fixedly arranged on the lower surface of the support plate 42 on the side close to the box body 1. The baffle 49 is perpendicular to the support plate 42. An auxiliary plate 48 is fixedly arranged on the side of the support plate 42 that is not abutted against the buffer housing 4. The auxiliary plate 48 is perpendicular to the support plate 42. A collection box 45 is connected to one side wall of the buffer housing 4. An impurity outlet 46 is arranged at the position of the buffer housing 4 corresponding to the collection box 45. The impurity outlet 46 is above the through hole 44. A motor 47 is fixedly arranged on the lower surface of the buffer housing 4. A second moving component 6 for driving the support plate 42 to move in the vertical direction is arranged in the buffer housing 4.

[0052] The second moving component 6 includes a first threaded sleeve 61 and a first screw rod 62. The first threaded sleeve 61 is arranged below the support plate 42. The first threaded sleeve 61 is vertically arranged. The bottom end of the first threaded sleeve 61 is rotatably connected to the inner bottom wall of the buffer housing 4. The output shaft of the motor 47 is fixedly connected to the bottom end of the first threaded sleeve 61. The first screw rod 62 is threadedly connected to the first threaded sleeve 61. The upper end of the first screw rod 62 is fixedly connected to the support plate 42. A pushing component 7 for pushing impurities towards the direction of the impurity outlet 46 is arranged on the support plate 42.

[0053] The pushing component 7 includes a second push plate 71, a second threaded sleeve 72 and a second screw rod 73. The second push plate 71 is arranged on the support plate 42. The second push plate 71 is parallel to the auxiliary plate 48. The length direction of the second threaded sleeve 72 is perpendicular to the auxiliary plate 48. The second threaded sleeve 72 is arranged on the side of the auxiliary plate 48 away from the second push plate 71. One end of the second threaded sleeve 72 is rotatably connected to the auxiliary plate 48. The second screw rod 73 is threadedly connected to the second threaded sleeve 72. One end of the second screw rod 73 penetrates through the auxiliary plate 48 and is fixedly connected to the second push plate 71. A second guiding rod 481 is arranged at the auxiliary plate 48. The length direction of the second guiding rod 481 is parallel to the length direction of the second threaded sleeve 72. The second guiding rod 481 penetrates through the auxiliary plate 48 and is slidably connected to the auxiliary plate 48. One end of the second guiding rod 481 is fixedly connected to the second push plate 71. A third gear 482 is fixedly arranged on the second threaded sleeve 72. A rack 483 is fixedly arranged on the side wall of the buffer housing 4. The length direction of the rack 483 is parallel to the length direction of the second threaded sleeve 72. The third gear 482 is meshed with the rack 483.

[0054] After the impurities enter the buffer housing 4, they fall onto the support plate 42. During the process of the moving plate 52 moving towards one side of the buffer housing 4, the motor 47 at the other side of the buffer housing 4 starts, driving the first threaded sleeve 61 to rotate. Under the guiding action of the support plate 42, the first threaded sleeve 61 drives the first screw rod 62 to move, and the first screw rod 62 drives the support plate 42 to move upward. The support plate 42 drives the impurities on the support plate 42 and the wastewater entering the buffer housing 4 to move upward. At the same time, the support plate 42 drives the auxiliary plate 48 to move upward, and the auxiliary plate 48 drives the third gear 482 to move. Under the guiding action of the rack 483, the third gear 482 rotates, and the third gear 482 drives the second threaded sleeve 72 to rotate. Under the guiding action of the second guiding rod 481, the second threaded sleeve 72 drives the second screw rod 73 to move, and the second screw rod 73 drives the second push plate 71 to move. The second push plate 71 pushes the impurities on the support plate 42 towards the side wall of the buffer housing 4 where the impurity outlet 46 is opened. When the wastewater moves to the through hole 44, the wastewater passes through the through hole 44 and re-enters the water inlet pipe 14 along the diversion pipe 43. When the support plate 42 moves above the through hole 44, at this time, the second push plate 71 pushes the impurities and the support plate 42 to separate, and the impurities fall into the collection housing, making it not easy for impurities to accumulate in the buffer housing 4. At the same time, during the upward movement of the support plate 42, the support plate 42 drives the baffle plate 49 to move, and the baffle plate 49 seals the avoidance groove 41, making it not easy for wastewater to enter the buffer housing 4 during the upward movement of the support plate 42.

[0055] The implementation principle of the wastewater recycling device for wool products in the embodiment of the present application is as follows: During the process of discharging wastewater into the water inlet pipe 14, the filter screen 141 filters the wastewater, blocking large particle impurities from entering the box body 1. At the same time, the power assembly 3 provides power for the vibration assembly 2, and the vibration assembly 2 drives the filter screen 141 to vibrate, causing the impurities on the filter screen 141 to fall onto the inner bottom wall of the water inlet pipe 14. The first moving assembly 5 drives the first push plate 142 to reciprocate in the water inlet pipe 14. During the movement of the first push plate 142, the impurities on the bottom wall of the water inlet pipe 14 are pushed onto the support plate 42 inside the two buffer housings 4. Then, the second moving assembly 6 drives the support plate 42 to move upward, and through the pushing of the pushing assembly 7 on the impurities, the impurities fall into the collection housing from the impurity outlet 46, eliminating the need for staff to continuously clean the impurities at the filter screen 141, saving time, and thus improving the working efficiency of wastewater recycling.

[0056] The embodiments of the present specific implementation manners are all preferred embodiments of the present application, and do not limit the protection scope of the present application accordingly. Therefore, all equivalent changes made according to the structure, shape, and principle of the present application should be covered within the protection scope of the present application.

Claims

1. A wastewater recycling device for wool products, comprising a box body (1) and a stirring device (11) for stirring. An outlet (12) and a feeding port (13) are formed on the box body (1). It is characterized in that: The upper side wall of the housing (1) is connected to a water inlet pipe (14), the water inlet pipe (14) is arranged horizontally, the water inlet pipe (14) and the housing (1) are connected, a filter screen (141) is slidably connected inside the water inlet pipe (14), a vibration assembly (2) for driving the filter screen (141) to vibrate is arranged at the filter screen (141), a power assembly (3) for providing power to the vibration assembly (2) is arranged inside the water inlet pipe (14), a buffer shell (4) is fixedly arranged on opposite side walls of the water inlet pipe (14), a side of the buffer shell (4) facing the water inlet pipe (14) is provided with an avoidance groove (41), the buffer shell (4) and the water inlet pipe (14) are connected at the avoidance groove (41), a first push plate (142) is arranged on the side of the filter screen (141) facing away from the housing (1), the bottom side of the first push plate (142) is in contact with the inner bottom wall of the water inlet pipe (14), and the water inlet pipe (14) is provided with a first push plate (142). ) is provided in the buffer shell (4) for driving the first push plate (142) to move toward the avoidance groove (41), a support plate (42) is provided in the buffer shell (4), a second moveable assembly (6) for driving the support plate (42) to move in the vertical direction is provided at the buffer shell (4), two guide pipes (43) are fixedly provided on the top wall of the water inlet pipe (14), the guide pipes (43) are connected to the water inlet pipe (14), one end of the guide pipe (43) away from the water inlet pipe (14) is fixedly connected to the buffer shell (4) and has a one-to-one correspondence, a through hole (44) is provided at the connection between the buffer shell (4) and the guide pipe (43), a collection box (45) is connected to one side of the buffer shell (4), and a foreign matter outlet (46) is provided on the buffer shell (42) at the connection to the collection box (45), and a pushing assembly (7) capable of pushing foreign matter toward the foreign matter outlet (46) is provided on the support plate (42).

2. The waste water recycling device for wool products according to claim 1, characterized in that: Guide rails (143) are fixedly provided on opposite side walls of the water inlet pipe (14), opposite ends of the guide rails (143) are closed, a slider (144) is slidably connected inside the guide rails (143), and the side of the slider (144) facing the filter screen (141) is fixedly connected to the filter screen (141).

3. The wastewater recycling device for wool products according to claim 2, wherein: The vibration assembly (2) comprises a rotating rod (21) and a cam (22). The two ends of the rotating rod (21) are rotatably connected to opposite side walls of the water inlet pipe (14), respectively. The cam (22) is fixedly arranged on the rotating rod (21). The cam (22) abuts against the filter screen (141). A first spring (145) is fixedly arranged between the slider (144) and a side wall of the guide rail (143). The expansion and contraction direction of the first spring (145) is parallel to the length direction of the guide rail (143).

4. The wastewater recycling device for wool products according to claim 3, characterized in that: The end of the water inlet pipe (14) connected to the box body (1) is rectangular, and the end of the water inlet pipe (14) away from the box body (1) is cylindrical. A transmission rod (146) is arranged inside the rectangular end of the water inlet pipe (14) near the cylindrical end. The two ends of the transmission rod (146) are respectively rotatably connected to the inner walls of the water inlet pipe (14) on two opposite sides. The power component (3) comprises a rotating plate (31) and a sailboard (32). The rotating plate (31) is arranged on the transmission rod (146). The transmission rod (146) passes through the rotating plate (31) and is fixedly connected to the rotating plate (31). A plurality of sailboards (32) are arranged. The plurality of sailboards (32) are fixedly connected to the rotating plate (31) in sequence along the circumference of the rotating plate (31). A first linkage component (8) for linkage with the rotating rod (21) is arranged at the transmission rod (146).

5. The wastewater recycling device for wool products according to claim 4, characterized in that: The first linkage assembly (8) comprises a first synchronous wheel (81), a second synchronous wheel (82) and a synchronous belt (83); the first synchronous wheel (81) is fixed on the transmission rod (146); the second synchronous wheel (82) is fixed on the rotating rod (21); and the synchronous belt (83) is sleeved outside the first synchronous wheel (81) and the second synchronous wheel (82).

6. The wastewater recycling device for wool products according to claim 4, characterized in that: The first moving assembly (5) comprises a reciprocating screw rod (51) and a moving plate (52). The reciprocating screw rod (51) is made of a rod body with thread grooves provided in positive and negative directions along its circumferential outer wall. The positive thread groove and the reverse thread groove are connected end to end and cross-connected. The two ends of the reciprocating screw rod (51) are respectively rotatably connected to the inner walls of the opposite sides of the water inlet pipe (14). The moving plate (52) is arranged on the reciprocating screw rod (51). The reciprocating screw rod (51) passes through the moving plate (52) and is slidably connected to the moving plate (52). The reciprocating screw rod (51) is in the thread groove. A guide block (521) is slidably connected, the guide block (521) is connected to the movable plate (52), one end of the movable plate (52) is fixedly connected to the first push plate (142), a first guide rod (147) is provided on one side of the reciprocating screw rod (51), two ends of the first guide rod (147) are respectively fixedly connected to the two side walls of the water inlet pipe (14), the first guide rod (147) penetrates the movable plate (52) and is slidably connected to the movable plate (52), and a second linkage component (9) for linkage with the rotating rod (21) is provided at the reciprocating screw rod (51).

7. A wastewater recycling device for wool products according to claim 6, characterized in that: The second linkage assembly (9) comprises a first gear (91) and a second gear (92); the first gear (91) is fixed on the rotating rod (21), the second gear (92) is fixed on the reciprocating screw rod (51), and the first gear (91) and the second gear (92) are meshed.

8. A wastewater recycling device for wool products according to claim 1, characterized in that: The second moving assembly (6) comprises a first threaded sleeve (61) and a first screw rod (62); the first threaded sleeve (61) is vertically arranged in the buffer shell (4); the bottom end of the first threaded sleeve (61) is rotatably connected to the bottom wall of the buffer shell (4); a motor (47) is fixedly arranged on the bottom wall of the buffer shell (4); the output shaft of the motor (47) is fixedly connected to the first threaded sleeve (61); the first screw rod (62) is threadedly connected to the first threaded sleeve (61); and the upper end of the first screw rod (62) is fixedly connected to the support plate (42).

9. The wastewater recycling device for wool products according to claim 1, characterized in that: On one side of the upper surface of the pallet (42), an auxiliary plate (48) is fixedly provided. Opposite sides of the auxiliary plate (48) are in contact with the inner walls of opposite sides of the buffer housing (4). The pushing assembly (7) includes a second push plate (71), a second threaded sleeve (72), and a second screw rod (73). The second push plate (71) is arranged on the pallet (42), and the second push plate (71) is parallel to the auxiliary plate (48). The second threaded sleeve (72) is arranged on the side of the auxiliary plate (48) facing away from the second push plate (71). One end of the second threaded sleeve (72) is rotatably connected to the auxiliary plate (48). The second screw rod (73) is threadedly connected to the second threaded sleeve (72). One end of the second screw rod (73) penetrates through the auxiliary plate (48) and is fixedly connected to the second push plate (71). A second guide rod (481) is provided on the auxiliary plate (48). The length direction of the second guide rod (481) is parallel to the length direction of the second threaded sleeve (72). The second guide rod (481) penetrates through the auxiliary plate (48) and is slidably connected to the auxiliary plate (48). One end of the second guide rod (481) is fixedly connected to the second push plate (71). A rack (483) is fixedly provided on the side wall of the buffer housing (4). A third gear (482) is fixedly provided on the second threaded sleeve (72). The third gear (482) meshes with the rack (483).

10. A wastewater recycling device for wool products according to claim 1, characterized in that: On one side of the lower surface of the pallet (42) close to the water inlet pipe (14), a baffle (49) is fixedly provided for shielding the avoidance groove (41).