Waste recovery device for chemical medicine production

By designing waste recycling devices for separation components, transmission components and agitation components, the problem that existing devices cannot continuously handle glass bottles is solved, and efficient waste recycling and chemical reagent removal is achieved.

CN120079671AInactive Publication Date: 2025-06-03YANGZHOU QINYUAN PHARM TECH CO LTD
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Patent Information

Application Number
CN202510405302.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-02
Publication Date
2025-06-03
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing waste recycling devices for chemical production cannot continuously process glass bottles, resulting in inefficiency.

Method used

A waste recycling device including a separation assembly, a transmission assembly and agitating assembly is designed. The separation assembly realizes continuous separation and processing of glass bottles through the design of the rotor drum and No. 1 partition plate; the transmission assembly ensures continuous operation of the separation assembly through the reduction motor and gear system; the agitating assembly improves the contact range between the glass bottle and reagents through the design of the agitating plate and enhances the removal speed.

Benefits of technology

The continuous work of the waste recycling device is realized, the processing efficiency of the glass bottle is improved, and the removal ability of residual chemical reagents is enhanced.

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Abstract

The invention discloses a waste recovery device for chemical medicine production, and belongs to the technical field of medicine waste recovery, the waste recovery device comprises a mounting rack, a separation cylinder is fixedly connected to one side of the upper surface of the mounting rack, and a liquid storage tank is fixedly connected to the side, away from the separation cylinder, of the upper surface of the mounting rack; a bottom plate is fixedly connected to the side, close to the separation barrel, of the outer surface of the liquid storage box, and a separation assembly is arranged on the side, close to the liquid storage box, of the outer circle face of the separation barrel. By arranging the separation assembly, a glass bottle is added into one of six cavities in the rotary drum through the communication opening to be treated, and then a first rotary rod is driven to drive a first partition plate and the rotary drum to rotate, so that the glass bottle is driven to move, and the glass bottle is separated from water or other reagents; and meanwhile, the glass bottles continue to enter other cavities through the communicating openings, so that the glass bottles are continuously treated, and the working efficiency of the waste recovery device is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of pharmaceutical waste recycling, and more specifically, to a waste recycling device for chemical drug production. Background Art

[0002] Chemical drugs refer to active ingredients extracted from natural minerals, animals and plants through chemical or biological technologies, or drugs prepared through chemical synthesis or biological synthesis. These drugs are usually small molecule organic compounds with a molecular weight less than 1000. Chemical drugs can be used for the treatment and prevention of diseases, and their mechanism of action usually achieves the therapeutic effect by blocking or inhibiting signal transduction pathways in certain biological processes. However, a large amount of waste is generated during the production of chemical drugs, such as wastewater, waste catalysts, waste solvents, unqualified drugs, drug packaging materials, medical equipment, etc. Some of the waste can be recycled and reused, such as waste catalysts, waste solvents, drug packaging materials, etc.

[0003] Chemical reagents are used in the production process of chemical drugs. Most of the existing chemical reagents are stored in glass bottles, and the glass bottles are recyclable materials. Waste recycling devices are often used to recycle glass bottles. When recycling, the chemical reagents remaining on the glass bottles need to be cleaned first to prevent environmental pollution by chemical reagents. Then, the glass bottles are broken by the crushing method, and finally the glass fragments are remelted into brand-new glass bottles.

[0004] However, when separating the chemical reagents on the glass bottles by this waste recycling device, the glass bottles are usually added into the separation cylinder, and then water or other appropriate chemical reagents are added into the separation cylinder. Then the separation cylinder is started to rotate, so that the water or other appropriate chemical reagents can process the glass bottles in the separation cylinder. After the glass bottles are processed, the separation cylinder is stopped, and then the glass bottles are taken out of the separation cylinder. Then the processed glass bottles are added into the crushing device to break the glass bottles, and finally the glass fragments are remelted into brand-new glass bottles, so as to recycle and process this batch of glass bottles. After that, a new batch of glass bottles are added into the separation cylinder, and then the separation cylinder is started to process the new batch of glass bottles. As a result, after this waste recycling device processes a batch of glass bottles, it is necessary to stop this waste recycling device, and then add a new batch of glass bottles into this waste recycling device for processing again, and it is impossible to continuously process the glass bottles, which reduces the working efficiency of this waste recycling device. Summary of the Invention

[0005] Aiming at the problems existing in the prior art, the purpose of the present invention is to provide a waste recycling device for chemical drug production.

[0006] To solve the above problems, the present invention adopts the following technical solutions.

[0007] A waste recycling device for chemical drug production, including a mounting frame. On one side of the upper surface of the mounting frame, a separation cylinder is fixedly connected. On the side of the upper surface of the mounting frame far from the separation cylinder, a liquid storage tank is fixedly connected. On the side of the outer surface of the liquid storage tank close to the separation cylinder, a bottom plate is fixedly connected. On the outer circumferential surface of the separation cylinder close to the liquid storage tank, a separation component is arranged. The separation component includes a rotating cylinder rotatably connected to the outer circumferential surface of the separation cylinder close to the liquid storage tank, and one end of the rotating cylinder extends to the bottom plate and is rotatably connected to the outer circumferential surface of the bottom plate; At the central position inside the separation cylinder, a first rotating rod is rotatably connected, and one end of the first rotating rod extends into the bottom plate. Between the outer circumferential surface of the first rotating rod and the inner circumferential surface of the rotating cylinder, several uniformly distributed first partition plates are fixedly connected. One end of the first partition plate is attached to the outer surface of the bottom plate, and the other end of the first partition plate is attached to the outer surface of the separation cylinder. On the outer surface of the first partition plate, several uniformly distributed filtering holes are opened. At the lower end of the inner wall of the separation cylinder close to the rotating cylinder, a communication port is opened. At the upper end of one side of the outer surface of the bottom plate, a discharge port is opened.

[0008] Furthermore, on the upper side of the outer circumferential surface of the separation cylinder, a feeding hopper is fixedly connected. On one side of the outer surface of the feeding hopper, a liquid adding port is fixedly connected. At the lower end of the outer surface of the bottom plate far from the liquid storage tank, a liquid discharge port is opened, and the liquid discharge port extends into the liquid storage tank. An electromagnetic valve is arranged inside the liquid discharge port. On the upper surface of the liquid storage tank, a discharge chute is fixedly connected, and the discharge chute is located below the discharge port. At the lower end of the inner wall of the discharge chute above the liquid storage tank, a filter screen is fixedly connected.

[0009] Furthermore, on both sides of the outer circumferential surface of the separation cylinder, connection frames are fixedly connected. One end of the connection frame is fixedly connected to the discharge chute and the liquid storage tank. On both sides of the inner circumferential surface of the rotating cylinder, two annular grooves are opened. On the outer circumferential surface of the bottom plate and on one side of the outer circumferential surface of the separation cylinder, two limiting rings are fixedly connected, and the limiting rings are rotatably connected to the inside of the annular grooves.

[0010] Furthermore, six first partition plates are provided. On the outer circumferential surface of the first rotating rod inside the separation cylinder, six uniformly distributed second partition plates are fixedly connected, and through holes are opened on one side of the outer surfaces of the six second partition plates.

[0011] Further, one end of the first rotating rod close to the separation cylinder penetrates through the separation cylinder. A transmission component is arranged at the end of the first rotating rod penetrating through the separation cylinder. The transmission component includes a first circular plate fixedly connected to one end of the first rotating rod penetrating through the separation cylinder. Six uniformly distributed grooves are formed on the outer circular surface of the first circular plate. First arc-shaped grooves are formed at positions between the six grooves on the outer circular surface of the first circular plate. One side of the outer surface of the separation cylinder below the first circular plate is fixedly connected with a U-shaped plate. One side of the outer surface of the U-shaped plate is fixedly connected with a reduction motor. The output end of the reduction motor penetrates through the U-shaped plate and is fixedly connected with a second circular plate. The outer circular surface of the second circular plate is fitted with the inside of the first arc-shaped groove. A third circular plate is fixedly connected to the side of the outer circular surface of the second circular plate away from the reduction motor. A cylinder is fixedly connected to one side of the outer surface of the third circular plate close to the outside of the second circular plate. A second arc-shaped groove is formed at a position on the outer circular surface of the second circular plate close to the cylinder.

[0012] Further, stirring components are arranged at positions between the six first partition plates on the inner circular surface of the rotating cylinder. The stirring components include O-shaped grooves formed in the rotating cylinder between the six first partition plates. Moving belts are rotatably connected to the inside of the six O-shaped grooves. Eight uniformly distributed stirring plates are fixedly connected to the upper surfaces of the six moving belts. First installation grooves are formed at the lower ends of the inner walls of the O-shaped grooves. Synchronous belts are fixedly connected to the lower surfaces of the O-shaped grooves and extend into the first installation grooves. Belt gears are rotatably connected to both sides of the inside of the first installation grooves. The two belt gears are meshed with the synchronous belts.

[0013] Further, a second installation groove is formed on one side of the lower end of the inner wall of the first installation groove. The lower end of the belt gear extends into the second installation groove and is fixedly connected with a worm gear. A worm is rotatably connected to one side of the inside of the second installation groove close to the worm gear. The worm is meshed with the worm gear. One end of the worm is fixedly connected with a second rotating rod. One end of the second rotating rod penetrates through the outer surface of the rotating cylinder close to the separation cylinder and is fixedly connected with a third rotating rod.

[0014] Furthermore, a switching component is provided on one side of the outer cylindrical surface of the separation cylinder. The switching component includes a first mounting box fixedly connected to a position on the outer cylindrical surface of the separation cylinder close to the third circular plate, and the position of the first mounting box corresponds to one of the six third rotating rods. A circular sliding rod is slidably connected inside the first mounting box, and one end of the circular sliding rod close to the third rotating rod penetrates the outer surface of the first mounting box. Four uniformly distributed limiting grooves are provided on the outer cylindrical surface of the third rotating rod close to the circular sliding rod. Fixing holes are provided on the outer surface of the circular sliding rod close to the third rotating rod. Four uniformly distributed limiting blocks are fixedly connected to the inner circular surface of the fixing hole at a position away from the limiting grooves. A square sliding groove is provided on the outer surface of the circular sliding rod away from the fixing hole. A square sliding rod is slidably connected inside the square sliding groove. One end of the square sliding rod away from the circular sliding rod is fixedly connected to a rotating block. One end of the rotating block away from the square sliding rod penetrates the outer surface of the first mounting box and is fixedly connected to a first gear. A second gear is fixedly connected to one side of the outer surface of the third circular plate, and the second gear is meshed with the first gear.

[0015] Furthermore, a square sliding block is slidably connected inside the square sliding groove. A first spring is provided on one side of the outer surface of the square sliding block away from the square sliding rod. An electromagnet is fixedly connected to one side of the inner circular surface of the first mounting box close to the rotating block. A fixed magnet is fixedly connected to the outer surface of the circular sliding rod close to the electromagnet.

[0016] Furthermore, a control component is provided on one side of the outer cylindrical surface of the third circular plate. The control component includes an arc-shaped block fixedly connected to one side of the outer cylindrical surface of the third circular plate. A second mounting box is fixedly connected to the outer cylindrical surface of the separation cylinder close to the first mounting box. A slider is slidably connected inside the second mounting box. Two straight rods are fixedly connected to the upper surface of the slider. One ends of the two straight rods penetrate the outer surface of the second mounting box and are jointly fixedly connected to a fixed block, and the fixed block is close to the third circular plate and corresponds to the arc-shaped block. Second springs are provided on both sides of the lower surface of the slider. A first electrical block is fixedly connected to the middle position of the lower surface of the slider. A second electrical block is fixedly connected to the middle position of the lower end inner wall of the second mounting box. A single-chip microcomputer is fixedly connected to the outer surface of the separation cylinder close to the second mounting box, and the single-chip microcomputer is electrically connected to both the first electrical block and the second electrical block. A controller is fixedly connected to the outer surface of the separation cylinder close to the single-chip microcomputer, and the controller is electrically connected to the single-chip microcomputer and the electromagnet.

[0017] Compared with the prior art, the beneficial effects of the present invention are: (1) In this application, by setting up a separation component, a glass bottle is added into one of the six chambers in the rotating cylinder through a communication port, and then the glass bottle is processed with water or other reagents. Then, by driving the first rotating rod, the first partition plate and the rotating cylinder are rotated, thereby driving the glass bottle to move, separating the glass bottle from the water or other reagents. At the same time, through the communication port, the glass bottle continues to enter other chambers. When a batch of glass bottles is discharged from one chamber, the next batch of glass bottles is added into another chamber for processing, so as to continuously process the glass bottles, improving the working efficiency of the waste recycling device. (2) In this application, by setting up a transmission component, the reduction motor is started to drive the third circular plate and the cylinder to rotate. When the cylinder rotates to the position of the groove, the third circular plate is continuously rotated, so that the cylinder is inserted into the groove to drive the first circular plate to rotate, thereby driving the first rotating rod to rotate. The separation component is started, and through the setting of six grooves, after the third circular plate rotates one circle, the first circular plate is driven to rotate once, and rotates one-sixth of a circle on one side, thereby driving the first rotating rod to rotate one-sixth of a circle, enabling the reduction motor to continuously operate to drive the first circular plate to rotate, and further driving the separation component to continuously operate, improving the working efficiency of the waste recycling device. (3) In this application, by setting up a stirring component, driving the third rotating rod to rotate drives the worm to rotate, thereby driving the worm wheel to rotate. At the same time, the belt gear is driven to rotate, driving the synchronous belt to drive the moving belt to rotate, and at the same time driving the stirring plate to rotate, so that the stirring plate moves in the six chambers formed between the six first partition plates, thereby stirring the glass bottles and water or other reagents inside the chambers, increasing the contact range between the glass bottles and water or other reagents, improving the removal speed of the residual chemical reagents on the glass bottles, and further improving the working efficiency of the waste recycling device. Description of the Drawings

[0018] Figure 1 is the overall structural schematic diagram of the present invention; Figure 2 is the sectional structural schematic diagram of the separation component of the present invention; Figure 3 is of the present invention Figure 2 magnified structural schematic diagram of A in; Figure 4 is of the present invention Figure 2 magnified structural schematic diagram of B in; Figure 5 is the sectional structural schematic diagram of the stirring component of the present invention; Figure 6 is of the present invention Figure 5 magnified structural schematic diagram of C in; Figure 7 is the sectional structural schematic diagram of the switching component of the present invention; Figure 8 For the Figure 7 schematic enlarged structure diagram of D in the present invention; Figure 9 schematic cross-sectional structure diagram of the control component of the present invention; Figure 10 For the Figure 9 schematic enlarged structure diagram of E in the present invention.

[0019] Description of reference numerals in the figure: 1. Mounting frame; 2. Separation cylinder; 3. Bottom plate; 4. Connecting frame; 5. Separation component; 51. Rotary cylinder; 52. First rotating rod; 53. First partition plate; 54. Filter holes; 55. Communication ports; 56. Discharge ports; 57. Annular groove; 58. Limit ring; 59. Drainage port; 510. Solenoid valve; 511. Second partition plate; 512. Through holes; 6. Transmission component; 61. First circular plate; 62. Groove; 63. First arc-shaped groove; 64. U-shaped plate; 65. Reduction motor; 66. Second circular plate; 67. Second arc-shaped groove; 68. Third circular plate; 69. Cylinder; 7. Stirring component; 71. O-shaped groove; 72. Moving belt; 73. Stirring plate; 74. First installation groove; 75. Belt gear; 76. Synchronous belt; 77. Second installation groove; 78. Worm gear; 79. Worm; 710. Second rotating rod; 711. Third rotating rod; 8. Switching component; 81. First installation box; 82. Circular sliding rod; 83. Limit groove; 84. Fixed holes; 85. Limit block; 86. Square sliding groove; 87. Square sliding block; 88. Square sliding rod; 89. First spring; 810. Rotating block; 811. First gear; 812. Second gear; 813. Fixed magnet; 814. Electromagnet; 9. Control component; 91. Arc-shaped block; 92. Second installation box; 93. Slide block; 94. Straight rod; 95. Fixed block; 96. First electrical block; 97. Second electrical block; 98. Second spring; 99. Single-chip microcomputer; 910. Controller; 10. Discharge chute; 11. Liquid storage tank; 12. Filter screen; 13. Feeding hopper; 14. Liquid adding port. Detailed implementation manners

[0020] 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.

[0021] Please refer toFigures 1 to 10 , a waste recycling device for chemical drug production, including a mounting frame 1. On one side of the upper surface of the mounting frame 1, a separation cylinder 2 is fixedly connected. On the side of the upper surface of the mounting frame 1 away from the separation cylinder 2, a liquid storage tank 11 is fixedly connected. On the side of the outer surface of the liquid storage tank 11 close to the separation cylinder 2, a bottom plate 3 is fixedly connected. On the outer circumferential surface of the separation cylinder 2 close to the liquid storage tank 11, a separation component 5 is arranged. The separation component 5 includes a rotating cylinder 51 rotatably connected to the outer circumferential surface of the separation cylinder 2 close to the liquid storage tank 11, and one end of the rotating cylinder 51 extends to the bottom plate 3 and is rotatably connected to the outer circumferential surface of the bottom plate 3; At the central position inside the separation cylinder 2, a first rotating rod 52 is rotatably connected, and one end of the first rotating rod 52 extends into the bottom plate 3. Between the outer circumferential surface of the first rotating rod 52 and the inner circumferential surface of the rotating cylinder 51, several uniformly distributed first partition plates 53 are fixedly connected. One end of the first partition plate 53 is attached to the outer surface of the bottom plate 3, and the other end of the first partition plate 53 is attached to the outer surface of the separation cylinder 2. On the outer surfaces of the first partition plates 53, several uniformly distributed filtering holes 54 are opened. At the lower end of the inner wall of the separation cylinder 2 close to the rotating cylinder 51, a communication port 55 is opened. At the upper end of one side of the outer surface of the bottom plate 3, a discharge port 56 is opened.

[0022] As Figure 1 、 Figure 2 shown, on the upper side of the outer circumferential surface of the separation cylinder 2, a feeding hopper 13 is fixedly connected. On one side of the outer surface of the feeding hopper 13, a liquid adding port 14 is fixedly connected. At the lower end of the outer surface of the bottom plate 3 away from the liquid storage tank 11, a liquid discharge port 59 is opened, and the liquid discharge port 59 extends into the liquid storage tank 11. Inside the liquid discharge port 59, a solenoid valve 510 is arranged. On the upper surface of the liquid storage tank 11, a discharge chute 10 is fixedly connected, and the discharge chute 10 is located below the discharge port 56. At the lower end of the inner wall of the discharge chute 10 above the liquid storage tank 11, a filter screen 12 is fixedly connected.

[0023] As Figure 1 、 Figure 2 、 Figure 3 shown, on both sides of the outer circumferential surface of the separation cylinder 2, connecting frames 4 are fixedly connected. One end of the connecting frame 4 is fixedly connected to the discharge chute 10 and the liquid storage tank 11. On both sides of the inner circumferential surface of the rotating cylinder 51, two annular grooves 57 are opened. On the outer circumferential surface of the bottom plate 3 and on one side of the outer circumferential surface of the separation cylinder 2, two limiting rings 58 are fixedly connected, and the limiting rings 58 are rotatably connected to the inside of the annular grooves 57.

[0024] As Figure 1 、 Figure 2 shown, there are six first partition plates 53. On the outer circumferential surface of the first rotating rod 52 inside the separation cylinder 2, six uniformly distributed second partition plates 511 are fixedly connected, and on one side of the outer surfaces of the six second partition plates 511, through holes 512 are opened.

[0025] During use, glass bottles are added to the separation cylinder 2 through the hopper 13, and then water or other appropriate chemical reagents (hereinafter referred to as "other reagents") are added to the separation cylinder 2 through the liquid adding port 14. The residual chemical reagents on the glass bottles are removed by water or other reagents to prevent the residual chemical reagents on the glass bottles from causing harm to the environment. After the glass bottles are processed, the separation cylinder 2 is stopped, and then the glass bottles are taken out of the separation cylinder. Then the glass bottles are placed into a crushing device to crush the glass bottles. Finally, the glass fragments are remelted into brand-new glass bottles. After that, a new batch of glass bottles are added to the separation cylinder, and the separation cylinder is started again to process the new batch of glass bottles.

[0026] After a batch of glass bottles are processed by the waste recycling device, the waste recycling device needs to be stopped, and then a new batch of glass bottles are added to the waste recycling device for processing again. It is impossible to continuously process the glass bottles, which reduces the working efficiency of the waste recycling device. Therefore, a separation component 5 is provided. The glass bottles and water or other reagents entering the separation cylinder 2 enter the rotating cylinder 51 through the communication port 55, and the rotating cylinder 51 is divided into six chambers by six first partition plates 53. The glass bottles will enter the lowermost chamber among them. At the same time, through the filter holes 54, water or other reagents can enter the lower side inside the rotating cylinder 51. Then, an external motor is used to drive the first rotating rod 52 to rotate, thereby driving the six first partition plates 53 and the rotating cylinder 51 to rotate, further driving the glass bottles in one chamber to move. And through the filter holes 54, water or other reagents will not move with the rotation of the six first partition plates 53. At the same time, the glass bottles in the separation cylinder 2 enter other chambers through the communication port 55. When the chamber with the glass bottles rotates to the upper side, due to the certain inclination angle of the rotating cylinder 51 itself, the glass bottles automatically move downward and are then discharged through the discharge port 56, so that the glass bottles can be continuously processed, improving the working efficiency of the waste recycling device. At the same time, the separation cylinder 2 is divided into six parts by six second partition plates 511, so that the number of glass bottles entering the rotating cylinder 51 through the communication port 55 inside the separation cylinder 2 at one time is fixed, preventing too many glass bottles from entering one of the six chambers in the rotating cylinder 51, and improving the processing effect of the waste recycling device on the glass bottles. And through the discharge chute 10, the glass bottles can be conveniently discharged. Then, through the filter net 12, the water or other reagents on the surface of the glass bottles are collected into the liquid storage tank 11. Then, the water or other reagents used in the rotating cylinder 51 for a long time can be discharged into the liquid storage tank 11 through the liquid discharge port 59, and the opening or closing of the liquid discharge port 59 is controlled by the solenoid valve 510. Then, through the mounting frame 1 and the connecting frame 4, the stability between the bottom plate 3 and the separation cylinder 2 can be ensured. Through the rotational connection between the limiting ring 58 and the annular groove 57, the stability of the rotation of the rotating cylinder 51 is ensured.

[0027] As Figure 2 , Figure 4 shown, one end of the first rotating rod 52 close to the separation cylinder 2 penetrates through the separation cylinder 2. A transmission assembly 6 is arranged at the end of the first rotating rod 52 penetrating through the separation cylinder 2. The transmission assembly 6 includes a first circular plate 61 fixedly connected to one end of the first rotating rod 52 penetrating through the separation cylinder 2. Six evenly distributed grooves 62 are formed on the outer circumferential surface of the first circular plate 61. First arc-shaped grooves 63 are formed at positions between the six grooves 62 on the outer circumferential surface of the first circular plate 61. A U-shaped plate 64 is fixedly connected to the lower side of the first circular plate 61 on one side of the outer surface of the separation cylinder 2. A speed reduction motor 65 is fixedly connected to one side of the outer surface of the U-shaped plate 64. The output end of the speed reduction motor 65 penetrates through the U-shaped plate 64 and is fixedly connected to a second circular plate 66. The outer circumferential surface of the second circular plate 66 is in fit with the inside of the first arc-shaped groove 63. A third circular plate 68 is fixedly connected to the side of the outer surface of the second circular plate 66 away from the speed reduction motor 65. A cylinder 69 is fixedly connected to one side of the outer surface of the third circular plate 68 close to the outside of the second circular plate 66. A second arc-shaped groove 67 is formed at a position on the outer circumferential surface of the second circular plate 66 close to the cylinder 69.

[0028] In the above embodiment, a glass bottle is added into one of the six chambers in the rotating cylinder 51 through the communication port 55, and then the glass bottle is processed by water or other reagents. Then, by driving the first rotating rod 52 to rotate, the first partition plate 53 and the rotating cylinder 51 are driven to rotate, thereby driving the glass bottle to move, separating the glass bottle from the water or other reagents, and at the same time, enabling the glass bottle to continue to enter other chambers through the communication port 55, so as to continuously process the glass bottle, improving the working efficiency of the waste recycling device.

[0029] However, since it takes a certain amount of time for water or other reagents to remove the residual chemical reagents on the glass bottle during the treatment of the glass bottle, when the external motor drives the first rotating rod 52 to rotate, it is necessary to intermittently control the start or stop of the external motor, which reduces the working efficiency of the waste recycling device. Therefore, a transmission component 6 is provided. The reduction motor 65 fixed on the U-shaped plate 64 is started to drive the second circular plate 66 and the third circular plate 68 to rotate, thereby driving the cylinder 69 to rotate. When the cylinder 69 rotates to the position of the groove 62, the third circular plate 68 is continuously rotated, so that the cylinder 69 is inserted into the groove 62 to drive the first circular plate 61 to rotate, thereby driving the first rotating rod 52 to rotate. The separation component 5 is started, and through the arrangement of the six grooves 62, after the third circular plate 68 rotates one circle, the first circular plate 61 is driven to rotate once, and rotates one-sixth of a circle on one side, thereby driving the first rotating rod 52 to rotate one-sixth of a circle, so that the reduction motor 65 can continuously operate to drive the first circular plate 61 to rotate, and then drive the separation component 5 to continuously operate, further improving the working efficiency of the waste recycling device. And through the fitting of the second circular plate 66 and the first arc-shaped groove 63, when the second circular plate 66 rotates, the first circular plate 61 is limited, preventing the first circular plate 61 from rotating by itself, improving the stability of the use of the transmission component 6. At the same time, through the second arc-shaped groove 67, it is convenient for the cylinder 69 to drive the first circular plate 61 to rotate.

[0030] As Figure 2 , Figure 5 , Figure 6 shown, stirring components 7 are arranged at the positions of the inner circular surface of the rotating cylinder 51 between the six first partition plates 53. The stirring components 7 include O-shaped grooves 71 opened in the rotating cylinder 51 between the six first partition plates 53. Moving belts 72 are rotatably connected to the interiors of the six O-shaped grooves 71. Eight uniformly distributed stirring plates 73 are fixedly connected to the upper surfaces of the six moving belts 72. First installation grooves 74 are opened at the lower ends of the inner walls of the O-shaped grooves 71. Synchronous belts 76 are fixedly connected to the lower surfaces of the O-shaped grooves 71 and extend into the first installation grooves 74. Belt gears 75 are rotatably connected to both sides of the interiors of the first installation grooves 74, and both of the two belt gears 75 are meshed with the synchronous belts 76.

[0031] As Figure 5 , Figure 6 shown, a second installation groove 77 is opened at one side of the lower end of the inner wall of the first installation groove 74. A worm gear 78 is fixedly connected to the lower end of the belt gear 75 and extends into the second installation groove 77. A worm 79 is rotatably connected to one side of the second installation groove 77 close to the worm gear 78, and the worm 79 is meshed with the worm gear 78. One end of the worm 79 is fixedly connected to a second rotating rod 710, and one end of the second rotating rod 710 penetrates through the outer surface of the rotating cylinder 51 close to the separation cylinder 2 and is fixedly connected to a third rotating rod 711.

[0032] In the above embodiments, the first rotating rod 52 is driven by the transmission component 6 to rotate regularly once, so that the glass bottles in the lower chamber of the rotating cylinder 51 stay in water or other reagents for a certain period of time, improving the working efficiency of the waste recycling device. However, when the glass bottles stay in water or other reagents, the glass bottles are stationary, so that the contact positions between the water or other reagents and the residual chemical reagents on the glass bottles are fixed, reducing the removal speed of the water or other reagents for the residual chemical reagents on the glass bottles and reducing the working efficiency of the waste recycling device.

[0033] Therefore, a stirring component 7 is provided. The third rotating rod 711 is driven to rotate by an externally connected motor, and then the worm 79 is driven to rotate and connect in the second installation groove 77 by the second rotating rod 710, thereby driving the worm wheel 78 to rotate. At the same time, the belt gear 75 is driven to rotate inside the first installation groove 74, thereby driving the synchronous belt 76 to rotate, and further driving the moving belt 72 to rotate inside the O-shaped groove 71. At the same time, the stirring plate 73 is driven to rotate, so that the stirring plate 73 moves in the six chambers formed between the six first partition plates 53, thereby stirring the glass bottles and water or other reagents inside the chambers, increasing the contact range between the glass bottles and the water or other reagents, improving the removal speed of the residual chemical reagents on the glass bottles, and improving the working efficiency of the waste recycling device.

[0034] As Figure 5 、 Figure 7 、 Figure 8 As shown in the figure, a switching component 8 is provided on one side of the outer circular surface of the separation cylinder 2. The switching component 8 includes a first installation box 81 fixedly connected to a position on the outer circular surface of the separation cylinder 2 close to the third circular plate 68, and the position of the first installation box 81 corresponds to one of the six third rotating rods 711. A circular sliding rod 82 is slidably connected inside the first installation box 81, and one end of the circular sliding rod 82 close to the third rotating rod 711 penetrates the outer surface of the first installation box 81. Four uniformly distributed limiting grooves 83 are formed on the outer circular surface of the third rotating rod 711 close to the circular sliding rod 82. A fixing hole 84 is formed on the outer surface of the circular sliding rod 82 close to the third rotating rod 711. Four uniformly distributed limiting blocks 85 are fixedly connected to a position on the inner circular surface of the fixing hole 84 far from the limiting grooves 83. A square sliding groove 86 is formed on the outer surface of the circular sliding rod 82 far from the fixing hole 84. A square sliding rod 88 is slidably connected inside the square sliding groove 86. One end of the square sliding rod 88 far from the circular sliding rod 82 is fixedly connected to a rotating block 810. One end of the rotating block 810 far from the square sliding rod 88 penetrates the outer surface of the first installation box 81 and is fixedly connected to a first gear 811. A second gear 812 is fixedly connected to one side of the outer surface of the third circular plate 68, and the second gear 812 is meshed with the first gear 811.

[0035] As Figure 8As shown, a square slider 87 is slidably connected inside the square chute 86. On one side of the outer surface of the square slider 87 away from the square slide bar 88, a first spring 89 is provided. On the inner circular surface of the first mounting box 81, close to the rotating block 810, an electromagnet 814 is fixedly connected. On the outer surface of the circular slide bar 82, close to the electromagnet 814, a fixed magnet 813 is fixedly connected.

[0036] In the above embodiment, through the stirring assembly 7, the stirring plate 73 is driven to move in the six chambers formed between the six first partition plates 53 inside the rotating cylinder 51, thereby stirring the glass bottles and water or other reagents inside the chambers, increasing the contact range between the glass bottles and water or other reagents, and improving the working efficiency of the waste recycling device. However, since the water or other reagents are located at the lower side inside the rotating cylinder 51, the glass bottles are only in the lowermost one of the six chambers inside the rotating cylinder 51, where the water or other reagents completely submerge the glass bottles. But the stirring assembly 7 drives the stirring plate 73 to move in the six chambers respectively, reducing the use effect of the stirring assembly 7.

[0037] Therefore, the switching assembly 8 is provided. The circular slide bar 82 is driven by the first spring 89 to move inside the first mounting box 81 towards the third rotating rod 711, so that one third rotating rod 711 is inserted into the fixing hole 84, and at the same time, four limiting blocks 85 are respectively inserted into the four limiting grooves 83. Then, the second gear 812 is driven to rotate by the rotation of the third circular plate 68, thereby driving the rotating block 810 to rotate, and at the same time driving the square slide bar 88 and the square slider 87 to rotate, and further driving the circular slide bar 82 to rotate. Then, through one third rotating rod 711 being inserted into the fixing hole 84 and the limiting block 85 being inserted into the limiting groove 83, the third rotating rod 711 is driven to rotate, and then the stirring assembly 7 is started to drive the stirring plate 73 in the lowermost one of the six chambers formed between the six first partition plates 53 inside the rotating cylinder 51 to move, so that the stirring assembly 7 drives the stirring plate 73 in the lowermost one of the six chambers to move once, and at the same time does not drive the stirring plates 73 in the other five chambers to move, improving the use effect of the stirring assembly 7. And before the rotating cylinder 51 starts to rotate and drives the third rotating rod 711 to rotate, the electromagnet 814 is started, so that the electromagnet 814 generates electromagnetic force, thereby driving the fixed magnet 813 to move towards the electromagnet 814, and further driving the circular slide bar 82 to move towards the electromagnet 814, pulling out the third rotating rod 711 from the fixing hole 84. Then, the rotating cylinder 51 is driven to drive the third rotating rod 711 to rotate, so that another third rotating rod 711 moves to the position of the circular slide bar 82. Then, the electromagnet 814 is turned off, and the circular slide bar 82 is driven to move by the first spring 89, so that another third rotating rod 711 is inserted into the fixing hole 84, so that the switching assembly 8 can only drive the stirring plate 73 in the lowermost one of the six chambers formed between the six first partition plates 53 inside the rotating cylinder 51 to move, improving the use effect of the switching assembly 8.

[0038] As Figure 7 , Figure 9 , Figure 10 shown, a control component 9 is arranged on one side of the outer circumferential surface of the third circular plate 68. The control component 9 includes an arc-shaped block 91 fixedly connected to one side of the outer circumferential surface of the third circular plate 68. One side of the outer circumferential surface of the separation cylinder 2 close to the first mounting box 81 is fixedly connected with a second mounting box 92. A slider 93 is slidably connected inside the second mounting box 92. Two straight rods 94 are fixedly connected to the upper surface of the slider 93. One ends of the two straight rods 94 both penetrate through the outer surface of the second mounting box 92 and are jointly fixedly connected with a fixed block 95, and the fixed block 95 is close to the third circular plate 68 and corresponds to the arc-shaped block 91. Second springs 98 are arranged on both sides of the lower surface of the slider 93. A first electric block 96 is fixedly connected to the middle position of the lower surface of the slider 93. A second electric block 97 is fixedly connected to the middle position of the lower end inner wall of the second mounting box 92. A single-chip microcomputer 99 is fixedly connected to the outer surface of the separation cylinder 2 close to the second mounting box 92, and the single-chip microcomputer 99 is electrically connected to both the first electric block 96 and the second electric block 97. A controller 910 is fixedly connected to the outer circumferential surface of the separation cylinder 2 close to the single-chip microcomputer 99, and the controller 910 is electrically connected to the single-chip microcomputer 99 and the electromagnet 814.

[0039] In the above embodiment, the stirring component 7 is driven by the switching component 8, so that among the six chambers formed between the six first partition plates 53 inside the rotating cylinder 51 at the same time, only the stirring plate 73 in the lowermost chamber moves, improving the use effect of the stirring component 7. And when the switching component 8 is operating, different third rotating rods 711 are controlled by the electromagnet 814 to insert into or be drawn out from the fixing holes 84, but the switching component 8 cannot start and close the electromagnet 814 on time during operation, reducing the practicability of the switching component 8.

[0040] Therefore, a control component 9 is provided. When the third circular plate 68 drives the cylinder 69 to rotate to the position of the groove 62, it simultaneously drives the arc-shaped block 91 to rotate above the fixed block 95, thereby driving the fixed block 95 to move towards the second mounting box 92. Then, through the straight rod 94, the slider 93 is driven to move, thereby driving the first electrical block 96 to move towards the second electrical block 97, causing the first electrical block 96 to fit with the second electrical block 97. Then, the electrical signal of the fit between the first electrical block 96 and the second electrical block 97 is transmitted into the single-chip microcomputer 99, and the single-chip microcomputer 99 processes the electrical signal. Then, the signal processed by the single-chip microcomputer 99 is transmitted into the controller 910. Finally, the controller 910 controls the electromagnet 814 to start, thereby pulling out the third rotating rod 711 from the fixing hole 84. Then, the third circular plate 68 is continuously driven to drive the cylinder 69 to rotate, so that the cylinder 69 is inserted into the groove 62 to drive the first circular plate 61 to rotate. Then, when the cylinder 69 drives the first circular plate 61 to rotate and move out of the groove 62, at the same time, the arc-shaped block 91 is driven to rotate away from the fixed block 95 through the third circular plate 68. Then, the slider 93 is driven to move towards the arc-shaped block 91 through the second spring 98, causing the first electrical block 96 and the second electrical block 97 to separate. Then, the electrical signal of the fit between the first electrical block 96 and the second electrical block 97 is transmitted into the single-chip microcomputer 99, the single-chip microcomputer 99 processes the electrical signal. Then, the signal processed by the single-chip microcomputer 99 is transmitted into the controller 910. Finally, the controller 910 controls the electromagnet 814 to close, enabling the switching component 8 to accurately start and close the electromagnet 814 during operation, improving the practicability of the switching component 8.

[0041] Usage method: First, add a glass bottle into the separation cylinder 2 through the feeding hopper 13, then add water or other reagents into the separation cylinder 2 through the liquid adding port 14, and then add the glass bottle into the lowermost one of the six chambers formed between the six first partition plates 53 inside the rotating cylinder 51 through the communication port 55. At the same time, the water or other reagents enter the lower side inside the rotating cylinder 51. Then, start the transmission assembly 6 to drive the second gear 812 to rotate, thereby starting the switching assembly 8 to drive the third rotating rod 711 to rotate, and further starting the stirring assembly 7 to drive the stirring plate 73 in the lowermost one of the six chambers to move, so as to stir the glass bottle and the water or other reagents. Then, when the third circular plate 68 drives the cylinder 69 to rotate to the position of the groove 62, it simultaneously drives the arc-shaped block 91 to rotate to the position of the fixed block 95, driving the first electric block 96 and the second electric block 97 to fit together, thereby starting the electromagnet 814 to pull out the third rotating rod 711 from the fixing hole 84, so that the switching assembly 8 cannot start the stirring assembly 7. Then, insert the first electric block 96 into the groove 62, thereby driving the first circular plate 61 to rotate one-sixth of a circle regularly, and further driving the first partition plate 53 and the rotating cylinder 51 to rotate one-sixth of a circle regularly. And when the chamber with the glass bottle rotates to the discharge port 56, the glass bottle and the water or other reagents are separated through the filtering holes 54, and finally the glass bottle in the chamber is discharged through the discharge port 56.

[0042] The above is only the preferred specific implementation manner of the present invention; however, the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its improved concept, makes equivalent replacements or changes, and should be covered by the protection scope of the present invention.

Claims

1. A waste material recovery device for chemical production, comprising a mounting frame (1), a separation cylinder (2) being fixedly connected to one side of the upper surface of the mounting frame (1), a liquid storage tank (11) being fixedly connected to the side of the upper surface of the mounting frame (1) away from the separation cylinder (2), and a bottom plate (3) being fixedly connected to the side of the outer surface of the liquid storage tank (11) close to the separation cylinder (2), characterized in that: A separation assembly (5) is provided on a side of the outer circumferential surface of the separation cylinder (2) close to the liquid storage tank (11), the separation assembly (5) comprising a rotating cylinder (51) rotatably connected to the side of the outer circumferential surface of the separation cylinder (2) close to the liquid storage tank (11), and one end of the rotating cylinder (51) extends to the bottom plate (3) and is rotatably connected to the outer circumferential surface of the bottom plate (3); A No. 1 rotating rod (52) is rotatably connected to the center position of the separation cylinder (2), and one end of the No. 1 rotating rod (52) extends into the bottom plate (3). A plurality of evenly distributed No. 1 partition plates (53) are fixedly connected between the outer circumferential surface of the No. 1 rotating rod (52) and the inner circumferential surface of the rotating cylinder (51). One end of the No. 1 partition plate (53) is in contact with the outer surface of the bottom plate (3), and the other end of the No. 1 partition plate (53) is in contact with the outer surface of the separation cylinder (2). A plurality of evenly distributed filtering holes (54) are provided on the outer surface of the No. 1 partition plate (53). A communication port (55) is provided at the lower end of the inner wall of the separation cylinder (2) close to the rotating cylinder (51), and a discharge port (56) is provided at the upper end of the outer surface of the bottom plate (3).

2. A chemical production waste recovery device according to claim 1, characterized in that: A feeding hopper (13) is fixedly connected to the upper side of the outer circumferential surface of the separation cylinder (2), and a liquid adding port (14) is fixedly connected to one side of the outer surface of the feeding hopper (13). A liquid discharge port (59) is provided at the lower end of the outer surface of the bottom plate (3) away from the liquid storage tank (11), and the liquid discharge port (59) extends into the interior of the liquid storage tank (11). A solenoid valve (510) is provided inside the liquid discharge port (59). A discharge trough (10) is fixedly connected to the upper surface of the liquid storage tank (11), and the discharge trough (10) is located below the discharge port (56). A filter screen (12) is fixedly connected to the lower end of the inner wall of the discharge trough (10) at a position above the liquid storage tank (11).

3. A chemical production waste recovery device according to claim 2, characterized in that: Connecting frames (4) are fixedly connected to both sides of the outer circumferential surface of the separation cylinder (2), one end of the connecting frame (4) is fixedly connected to the discharge trough (10) and the liquid storage tank (11), two annular grooves (57) are provided on both sides of the inner circumferential surface of the rotating cylinder (51), and two limiting rings (58) are fixedly connected to the outer circumferential surface of the bottom plate (3) and one side of the outer circumferential surface of the separation cylinder (2), and the limiting rings (58) are rotatably connected to the inside of the annular grooves (57).

4. The chemical production waste recovery device according to claim 1, characterized in that: Six No. 1 partition plates (53) are provided, and the outer circumferential surface of the No. 1 rotating rod (52) is located inside the separation cylinder (2) and is fixedly connected to six evenly distributed No. 2 partition plates (511), and one side of the outer surface of the six No. 2 partition plates (511) is provided with through holes (512).

5. The chemical production waste recovery device according to claim 1, characterized in that: The end of the No. 1 rotating rod (52) close to the separation cylinder (2) penetrates the separation cylinder (2); the end of the No. 1 rotating rod (52) penetrating the separation cylinder (2) is provided with a transmission assembly (6); the transmission assembly (6) comprises a No. 1 circular plate (61) fixedly connected to the end of the No. 1 rotating rod (52) penetrating the separation cylinder (2); the outer circumferential surface of the No. 1 circular plate (61) is provided with six evenly distributed grooves (62); the outer circumferential surface of the No. 1 circular plate (61) is provided with a No. 1 arc groove (63) at positions between the six grooves (62); and one side of the outer surface of the separation cylinder (2) is fixedly connected to a U-shaped plate (61) located below the No. 1 circular plate (61). 64), a reduction motor (65) is fixedly connected to one side of the outer surface of the U-shaped plate (64), the output end of the reduction motor (65) passes through the U-shaped plate (64) and is fixedly connected to a second circular plate (66), and the outer circumferential surface of the second circular plate (66) fits the inside of the first arc-shaped groove (63), a third circular plate (68) is fixedly connected to the side of the outer surface of the second circular plate (66) away from the reduction motor (65), a cylinder (69) is fixedly connected to the outer side of the third circular plate (68) close to the second circular plate (66), and a second arc-shaped groove (67) is provided at a position of the outer circumferential surface of the second circular plate (66) close to the cylinder (69).

6. A chemical production waste recovery device according to claim 5, characterized in that: A stirring assembly (7) is provided at a position between the six No. 1 partition plates (53) on the inner circular surface of the rotating drum (51). The stirring assembly (7) comprises an O-shaped groove (71) provided between the six No. 1 partition plates (53) inside the rotating drum (51). The inside of the six O-shaped grooves (71) is rotatably connected to a moving belt (72). The upper surfaces of the six moving belts (72) are fixedly connected to eight evenly distributed stirring plates (73). The lower end of the inner wall of the O-shaped groove (71) is provided with a No. 1 mounting groove (74). The lower surface of the O-shaped groove (71) extends to the inside of the No. 1 mounting groove (74) and is fixedly connected to a synchronous belt (76). Both sides of the inside of the No. 1 mounting groove (74) are rotatably connected to belt gears (75), and the two belt gears (75) are meshed with the synchronous belt (76).

7. A chemical production waste recovery device according to claim 6, characterized in that: A second mounting groove (77) is provided on one side of the lower end of the inner wall of the first mounting groove (74); the lower end of the belt gear (75) extends into the second mounting groove (77) and is fixedly connected to a worm wheel (78); a worm (79) is rotatably connected to a side of the second mounting groove (77) close to the worm wheel (78); the worm (79) is meshingly connected to the worm wheel (78); one end of the worm (79) is fixedly connected to a second rotating rod (710); and one end of the second rotating rod (710) passes through the outer surface of the rotating drum (51) and is fixedly connected to a third rotating rod (711) on a side close to the separation drum (2).

8. A chemical production waste recovery device according to claim 7, characterized in that: A switching assembly (8) is provided on one side of the outer cylindrical surface of the separation cylinder (2), the switching assembly (8) comprising a No. 1 mounting box (81) fixedly connected to a position of the outer cylindrical surface of the separation cylinder (2) close to the No. 3 circular plate (68), and the position of the No. 1 mounting box (81) corresponds to one of the six No. 3 rotating rods (711), a circular sliding rod (82) is slidably connected inside the No. 1 mounting box (81), and one end of the circular sliding rod (82) close to the No. 3 rotating rod (711) passes through the outer surface of the No. 1 mounting box (81), four evenly distributed limiting grooves (83) are provided on one side of the outer cylindrical surface of the No. 3 rotating rod (711), and a circular sliding rod (82) is provided on the outer surface of the No. 3 rotating rod (711) A fixing hole (84), wherein the inner circular surface of the fixing hole (84) is fixedly connected to a position away from the limiting groove (83) with four evenly distributed limiting blocks (85), a square sliding groove (86) is provided on a side of the outer surface of the circular sliding rod (82) away from the fixing hole (84), a square sliding rod (88) is slidably connected inside the square sliding groove (86), an end of the square sliding rod (88) away from the circular sliding rod (82) is fixedly connected to a rotating block (810), an end of the rotating block (810) away from the square sliding rod (88) passes through the outer surface of the No. 1 installation box (81) and is fixedly connected to a No. 1 gear (811), and a No. 2 gear (812) is fixedly connected to one side of the outer surface of the No. 3 circular plate (68), and the No. 2 gear (812) is meshingly connected with the No. 1 gear (811).

9. A chemical production waste recovery device according to claim 8, characterized in that: A square slider (87) is slidably connected inside the square slide groove (86), a No. 1 spring (89) is provided on a side of the outer surface of the square slider (87) away from the square slide rod (88), an electromagnet (814) is fixedly connected to a side of the inner circular surface of the No. 1 installation box (81) close to the rotating block (810), and a fixed magnet (813) is fixedly connected to a side of the outer surface of the circular slide rod (82) close to the electromagnet (814).

10. A chemical production waste recovery device according to claim 9, characterized in that: A control assembly (9) is provided on one side of the outer cylindrical surface of the third circular plate (68), and the control assembly (9) comprises an arc block (91) fixedly connected to one side of the outer cylindrical surface of the third circular plate (68); a second installation box (92) is fixedly connected to the outer cylindrical surface of the separation cylinder (2) near the first installation box (81); a slider (93) is slidably connected inside the second installation box (92); two straight rods (94) are fixedly connected to the upper surface of the slider (93); one end of the two straight rods (94) penetrates through the outer surface of the second installation box (92) and is fixedly connected to a fixed block (95); and the fixed block (95) is close to the third circular plate (68) and corresponds to the arc block (91). A No. 2 spring (98) is provided on both sides of the lower surface of the slider (93); a No. 1 electrical block (96) is fixedly connected to the middle position of the lower surface of the slider (93); a No. 2 electrical block (97) is fixedly connected to the middle position of the lower end of the inner wall of the No. 2 installation box (92); a single-chip computer (99) is fixedly connected to the side of the outer surface of the separation cylinder (2) close to the No. 2 installation box (92); and the single-chip computer (99) is electrically connected to both the No. 1 electrical block (96) and the No. 2 electrical block (97); and a controller (910) is fixedly connected to the side of the outer circumferential surface of the separation cylinder (2) close to the single-chip computer (99); and the controller (910) is electrically connected to the single-chip computer (99) and the electromagnet (814).