Degreasing agent homogenizing and mixing device

By employing screening, crushing, stirring, temperature control, and gas decomposition treatment, the problems of insufficient reaction of particulate materials and generation of harmful gases in the degreasing agent mixing device are solved. This achieves uniform mixing of degreasing agent raw materials and effective decomposition of harmful gases, thereby improving the practicality of the equipment.

CN224252676UActive Publication Date: 2026-05-19DALIAN AIDUOWEI STEEL SURFACE TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DALIAN AIDUOWEI STEEL SURFACE TECH CO LTD
Filing Date
2025-06-06
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Existing degreasing agent homogenization and mixing devices are difficult to fully react when processing larger particulate materials, and harmful gases are generated during the mixing process, leading to environmental pollution and health risks.

Method used

A device comprising a feeding mechanism, a stirring mechanism, a temperature control mechanism, an exhaust mechanism, and a decomposition mechanism was designed. Through screening, crushing, stirring, temperature control, gas discharge, and decomposition, the device ensures the uniform mixing of degreasing agent raw materials and the effective decomposition of harmful gases.

Benefits of technology

It achieves uniform mixing of degreasing agent raw materials and effective decomposition of harmful gases, improving the practicality of the equipment and reducing environmental pollution and health risks.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of degreasing agent homogenizing and mixing devices, in particular to a degreasing agent homogenizing and mixing device, which discharges degreasing agent raw material powder into a feeding mechanism, sieves the degreasing agent raw material powder through the feeding mechanism, mixes the degreasing agent raw materials in a mixing barrel by starting a stirring mechanism, and uniformly mixes the degreasing agent raw materials in the mixing barrel. The gas is discharged into the decomposition mechanism through the exhaust mechanism, and is decomposed through the decomposition mechanism, so that the practicability of the equipment is improved; comprising a feeding mechanism; the device further comprises a mixing mechanism, a stirring mechanism, a temperature control mechanism, an exhaust mechanism and a decomposition mechanism, the feeding mechanism is installed on the mixing mechanism, the stirring mechanism is located in the mixing mechanism, the temperature control mechanism is installed on the mixing mechanism, the exhaust mechanism is located on the right side of the mixing mechanism, and the exhaust mechanism is connected with the mixing mechanism. The decomposing mechanism is located on the right side of the exhaust mechanism, and the exhaust mechanism is connected with the decomposing mechanism.
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Description

Technical Field

[0001] This utility model relates to the technical field of degreasing agent homogenization and mixing device, and in particular to a degreasing agent homogenization and mixing device. Background Technology

[0002] Degreasers are chemical agents used to remove grease, dirt, and other organic contaminants from the surface of objects. The main components of degreasers typically include surfactants, organic solvents, and alkalis. Surfactants reduce the surface tension between grease and water, causing the grease to emulsify and form small droplets dispersed in the water; organic solvents dissolve the grease; and alkalis react with the grease through a saponification reaction, turning it into water-soluble soap.

[0003] For example, the prior art represented by the degreasing agent homogenization and mixing device disclosed in the utility model patent application number CN202221773565.X mainly consists of a base, column, shell, rotating shaft, stirring blade, gear and spring, etc. The degreasing agent Junhua is mixed through the cooperation of the base, column, shell, rotating shaft, stirring blade, gear and spring.

[0004] Larger particles in the process of homogenizing and mixing degreasing agents are difficult to react fully with other materials, and harmful gases are generated during the process, causing environmental pollution and affecting the health of workers. Utility Model Content

[0005] To solve the above-mentioned technical problems, this utility model provides a degreasing agent homogenization and mixing device that discharges degreasing agent raw material powder into a feeding mechanism, screens the degreasing agent raw material powder through the feeding mechanism, mixes the degreasing agent raw material in the mixing tank by activating a stirring mechanism to make it uniformly mixed, and discharges the gas into a decomposition mechanism through an exhaust mechanism to decompose the gas, thereby improving the practicality of the equipment.

[0006] This utility model discloses a degreasing agent homogenization and mixing device, including a feeding mechanism; it also includes a mixing mechanism, a stirring mechanism, a temperature control mechanism, an exhaust mechanism, and a decomposition mechanism. The feeding mechanism is installed above the mixing mechanism, the stirring mechanism is located inside the mixing mechanism, the temperature control mechanism is installed on the mixing mechanism, the exhaust mechanism is located on the right side of the mixing mechanism and is connected to the mixing mechanism, and the decomposition mechanism is located on the right side of the exhaust mechanism and is connected to the decomposition mechanism. The degreasing agent raw material powder is discharged into the feeding mechanism, and the feeding mechanism sieves the degreasing agent raw material powder. Furthermore, the feeding mechanism crushes the unscreened powder until screening is complete. The screened powder material is discharged into the mixing mechanism, which then discharges the degreasing agent raw material solution into the mixing tank. The stirring mechanism is activated to mix the degreasing agent raw material in the mixing tank to ensure uniform mixing. The temperature control mechanism is activated to control the temperature within the mixing mechanism. The exhaust mechanism is activated to discharge the gas generated during the degreasing agent mixing process. The gas is then discharged into the decomposition mechanism for decomposition treatment, thereby improving the practicality of the equipment.

[0007] Preferably, the feeding mechanism includes a feeding hopper, a screening barrel, a screening plate, a discharge hopper, a first motor, a crushing shaft, and multiple sets of crushing blades. The output end of the feeding hopper is connected to the top of the screening barrel, the screening plate is installed on the lower part of the inner wall of the screening barrel, the input end of the discharge hopper is connected to the bottom of the screening barrel, the first motor is installed on the top of the screening barrel, the top of the crushing shaft is installed on the output end of the first motor, and multiple sets of crushing blades are provided on the crushing shaft, with each set of crushing blades located inside the screening barrel and above the screening plate. The degreasing agent powder material is discharged into the screening barrel through the feeding hopper, and the degreasing agent powder material in the screening barrel is screened by the screening plate. The screened material is discharged into the mixing mechanism through the discharge hopper. The crushing shaft is rotated by starting the first motor, and the unscreened degreasing agent powder material is crushed by the multiple sets of crushing blades until the screening is completed, improving the practicality of the equipment.

[0008] Preferably, the mixing mechanism includes a base, a metering barrel, a piston, a multi-stage electric cylinder, a first support, a first pipe, and a mixing barrel. A feed valve is provided on the outer wall of the metering barrel, and the bottom of the metering barrel is mounted on the top of the base. The piston is located inside the metering barrel, the bottom of the multi-stage electric cylinder is mounted on the top of the piston, and the top of the multi-stage electric cylinder is mounted on the first support. The input end of the first pipe is connected to the outer wall of the metering barrel, and a valve is provided on the input end of the first pipe. The output end of the first pipe is connected to the upper part of the outer wall of the mixing barrel. The base supports the metering barrel. When the multi-stage electric cylinder contracts, the piston rises, creating a negative pressure inside the metering barrel, allowing the deoxidizer solution to be discharged into the metering barrel. When the multi-stage electric cylinder extends, the piston descends, allowing the deoxidizer solution in the metering barrel to be discharged into the mixing barrel through the first pipe. This allows the deoxidizer solution to be homogenized and mixed in the mixing barrel, improving the practicality of the equipment.

[0009] Preferably, the stirring mechanism includes a second motor, a first gear, a second gear, a stirring shaft, multiple sets of mounting seats, two sets of scrapers, and multiple sets of stirring blades. The inner ring of the first gear is mounted on the output end of the second motor, and the outer rings of the first gear and the second gear mesh. The inner ring of the second gear is mounted on the upper part of the stirring shaft. The side ends of the multiple sets of mounting seats are respectively mounted on the stirring shaft, and each set of mounting seats is equipped with a spring. The two sets of scrapers are respectively mounted on the multiple sets of mounting seats, and the multiple sets of stirring blades are respectively mounted on the stirring shaft. The two sets of scrapers and the multiple sets of stirring blades are located inside the mixing tank. By starting the second motor, the first gear rotates, and the meshing of the first and second gears causes the stirring shaft to rotate. The multiple sets of stirring blades stir the deoxidizer material in the mixing tank, making it homogenized and mixed. The multiple sets of mounting seats support the two sets of scrapers, and the two sets of scrapers homogenize and mix the deoxidizer material on the inner wall of the mixing tank, improving the practicality of the equipment.

[0010] Preferably, the temperature control mechanism includes a heat exchanger, a first circulating pump, a first three-way pipe, a heater, a first refrigeration box, and a second three-way pipe. The output end of the heat exchanger is connected to the input end of the first circulating pump, and the output end of the first circulating pump is connected to the input end of the first three-way pipe. The first three-way pipe has two sets of output ends, each equipped with a valve. The two sets of output ends of the first three-way pipe are connected to the input ends of the heater and the first refrigeration box, respectively. The output ends of the heater and the first refrigeration box are connected to the two sets of input ends of the second three-way pipe, each equipped with a valve. The output end of the second three-way pipe is connected to the output end of the heat exchanger. By starting the first circulating pump, the liquid in the heat exchanger is discharged through the first three-way pipe to the heater and the first refrigeration box, respectively. The liquid is heated by the heater and cooled by the first refrigeration box. The heated and cooled liquid is then discharged through the second three-way pipe back into the heat exchanger, which heats and cools the mixing tank, improving the practicality of the equipment.

[0011] Preferably, the exhaust mechanism includes an exhaust pipe, a condenser pipe, an air pump, a second circulation pump, a second refrigeration chamber, a second support, a drain pipe, and a collection tank. The inlet end of the exhaust pipe is connected to the outer wall of the mixing tank, and a baffle plate is provided on the inner wall of the exhaust pipe. The outlet end of the exhaust pipe is connected to the inlet end of the condenser pipe. The air pump is installed on the outer wall of the exhaust pipe. The inlet end of the second circulation pump is connected to the outlet end of the air pump, and the outlet end of the second circulation pump is connected to the inlet end of the second refrigeration chamber. The outlet end of the second refrigeration chamber is connected to the inlet end of the air pump. The bottom ends of the condenser pipe, the second circulation pump, and the second refrigeration chamber are all installed on the top of the second support. The inlet end of the drain pipe is connected to the exhaust pipe. The outer wall is connected, and the inlet end of the drain pipe is located below the baffle plate inside the exhaust pipe. The outlet end of the drain pipe is connected to the inlet end of the collection tank. By starting the condenser pipe, the gas in the mixing tank is discharged through the exhaust pipe. By starting the second circulation pump, the coolant in the air pump is discharged into the second refrigeration box. The coolant is cooled by the second refrigeration box. The cooled liquid is discharged into the air pump through the second refrigeration box. The air pump cools the gas in the exhaust pipe, causing the water vapor in the gas to condense. The condensed water vapor is discharged into the collection tank through the drain pipe. The collection tank collects the condensate. The dried gas is discharged into the exhaust mechanism, improving the practicality of the equipment.

[0012] Preferably, the decomposition mechanism includes a decomposition tank, a support frame, multiple sets of catalysts, and multiple sets of ultraviolet lamps. An exhaust pipe is installed at the top of the decomposition tank. The support frame is installed on the inner wall of the decomposition tank. The bottom ends of the multiple sets of catalysts are respectively installed at the top of the support frame. The multiple sets of ultraviolet lamps are respectively installed on the inner wall of the decomposition tank, and are located at the top of the support frame. Dry gas is discharged into the decomposition tank, where it is decomposed by the combined action of the multiple sets of catalysts and ultraviolet lamps. The support frame supports the multiple sets of catalysts, improving the practicality of the equipment.

[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: the degreasing agent raw material powder is discharged into the feeding mechanism, the degreasing agent raw material powder is screened by the feeding mechanism, and the unscreened powder is crushed until the screening is completed. The screened powder material is discharged into the mixing mechanism, the degreasing agent raw material solution is discharged into the mixing tank by the mixing mechanism, the degreasing agent raw material in the mixing tank is mixed by activating the stirring mechanism to make it uniformly mixed, the temperature in the mixing mechanism is controlled by activating the temperature control mechanism, and the gas generated during the degreasing agent mixing process is discharged by activating the exhaust mechanism, and the gas is discharged into the decomposition mechanism by the exhaust mechanism to decompose the gas, thereby improving the practicality of the equipment. Attached Figure Description

[0014] Figure 1 This is an isometric sectional view of the present invention;

[0015] Figure 2 This is a front sectional view of the feeding mechanism of this utility model;

[0016] Figure 3 This is a front cross-sectional view of the mixing mechanism of this utility model;

[0017] Figure 4 This is an isometric sectional view of the stirring mechanism of this utility model;

[0018] Figure 5 This is an isometric schematic diagram of the temperature control mechanism of this utility model;

[0019] Figure 6 This is an isometric schematic diagram of the exhaust mechanism of this utility model;

[0020] Figure 7 This is a front cross-sectional view of the disassembly mechanism of this utility model.

[0021] In the attached diagram, the following components are marked: 01, feeding mechanism; 11, feeding hopper; 12, screening barrel; 13, screening plate; 14, discharge hopper; 15, first motor; 16, crushing shaft; 17, crushing blade; 02, mixing mechanism; 21, base; 22, metering barrel; 23, piston; 24, multi-stage electric cylinder; 25, first support; 26, first pipe; 27, mixing barrel; 03, stirring mechanism; 31, second motor; 32, first gear; 33, second gear; 34, stirring shaft; 35, mounting base; 36, scraper. Plate; 37. Stirring blades; 04. Temperature control mechanism; 41. Heat exchanger; 42. First circulation pump; 43. First tee pipe; 44. Heater; 45. First refrigeration box; 46. Second tee pipe; 05. Exhaust mechanism; 51. Exhaust pipe; 52. Condenser pipe; 53. Air pump; 54. Second circulation pump; 55. Second refrigeration box; 56. Second support; 57. Drain pipe; 58. Collection tank; 06. Decomposition mechanism; 61. Decomposition tank; 62. Support frame; 63. Catalyst; 64. Ultraviolet lamp. Detailed Implementation

[0022] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. This utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete.

[0023] Example 1

[0024] like Figure 1As shown, a degreasing agent homogenization and mixing device includes a feeding mechanism 01; it also includes a mixing mechanism 02, a stirring mechanism 03, a temperature control mechanism 04, an exhaust mechanism 05, and a decomposition mechanism 06. The feeding mechanism 01 is installed on top of the mixing mechanism 02, the stirring mechanism 03 is located inside the mixing mechanism 02, the temperature control mechanism 04 is installed on the mixing mechanism 02, the exhaust mechanism 05 is located on the right side of the mixing mechanism 02 and is connected to the mixing mechanism 02, and the decomposition mechanism 06 is located on the right side of the exhaust mechanism 05 and is connected to the exhaust mechanism 05.

[0025] The degreasing agent raw material powder is fed into the feeding mechanism 01, which screens the powder and crushes any unscreened powder until screening is complete. The screened powder is then fed into the mixing mechanism 02, which discharges the degreasing agent raw material solution into the mixing tank. The stirring mechanism 03 is activated to mix the degreasing agent raw material in the mixing tank until it is uniformly mixed. The temperature control mechanism 04 is activated to control the temperature in the mixing mechanism 02. The exhaust mechanism 05 is activated to discharge the gas generated during the degreasing agent mixing process. The gas is then discharged into the decomposition mechanism 06 for decomposition treatment, improving the practicality of the equipment.

[0026] like Figure 2 As shown, the feeding mechanism 01 includes a feeding hopper 11, a screening barrel 12, a screening plate 13, a discharge hopper 14, a first motor 15, a crushing shaft 16, and multiple sets of crushing blades 17. The output end of the feeding hopper 11 is connected to the top of the screening barrel 12. The screening plate 13 is installed on the lower part of the inner wall of the screening barrel 12. The input end of the discharge hopper 14 is connected to the bottom of the screening barrel 12. The first motor 15 is installed on the top of the screening barrel 12. The top of the crushing shaft 16 is installed on the output end of the first motor 15. Multiple sets of crushing blades 17 are provided on the crushing shaft 16, and the multiple sets of crushing blades 17 are respectively located inside the screening barrel 12 and above the screening plate 13.

[0027] like Figure 3 As shown, the mixing mechanism 02 includes a base 21, a metering barrel 22, a piston 23, a multi-stage electric cylinder 24, a first support 25, a first pipe 26, and a mixing barrel 27. A feeding port is provided on the outer wall of the metering barrel 22. The bottom end of the metering barrel 22 is installed on the top end of the base 21. The piston 23 is located inside the metering barrel 22. The bottom end of the multi-stage electric cylinder 24 is installed on the top end of the piston 23. The top end of the multi-stage electric cylinder 24 is installed on the first support 25. The input end of the first pipe 26 is connected to the outer wall of the metering barrel 22. A valve is provided on the input end of the first pipe 26. The output end of the first pipe 26 is connected to the upper part of the outer wall of the mixing barrel 27.

[0028] The degreasing agent powder is fed into the screening tank 12 via the feed hopper 11. The degreasing agent powder in the screening tank 12 is screened by the screening plate 13. The screened material is discharged into the mixing mechanism 02 via the discharge hopper 14. The crushing shaft 16 is rotated by starting the first motor 15. The unscreened degreasing agent powder is crushed by multiple sets of crushing blades 17 until the screening is completed. The base 21 supports the metering tank 22. When the multi-stage electric cylinder 24 is contracted, the piston 23 rises, creating a negative pressure state in the metering tank 22, allowing the deoxidizer solution to be discharged into the metering tank 22. When the multi-stage electric cylinder 24 is extended, the piston 23 falls, allowing the deoxidizer solution in the metering tank 22 to be discharged into the mixing tank 27 via the first pipe 26. The deoxidizer solution is homogenized and mixed in the mixing tank 27, improving the practicality of the equipment.

[0029] Example 2

[0030] like Figure 4 As shown, based on Embodiment 1, it also includes a stirring mechanism 03. The stirring mechanism 03 includes a second motor 31, a first gear 32, a second gear 33, a stirring shaft 34, multiple sets of mounting seats 35, two sets of scrapers 36, and multiple sets of stirring blades 37. The inner ring of the first gear 32 is mounted on the output end of the second motor 31, and the outer ring of the first gear 32 meshes with the outer ring of the second gear 33. The inner ring of the second gear 33 is mounted on the upper part of the stirring shaft 34. The side ends of the multiple sets of mounting seats 35 are respectively mounted on the stirring shaft 34, and springs are respectively provided inside the multiple sets of mounting seats 35. The two sets of scrapers 36 are respectively mounted on the multiple sets of mounting seats 35, and the multiple sets of stirring blades 37 are respectively mounted on the stirring shaft 34. The two sets of scrapers 36 and the multiple sets of stirring blades 37 are respectively located in the mixing tank 27.

[0031] The first gear 32 is rotated by starting the second motor 31. The first gear 32 and the second gear 33 mesh to rotate the stirring shaft 34. The deoxidizer material in the mixing tank 27 is stirred by multiple sets of stirring blades 37 to achieve homogenization. Multiple sets of mounting bases 35 support two sets of scrapers 36. The deoxidizer material on the inner wall of the mixing tank 27 is homogenized and mixed by the two sets of scrapers 36, thereby improving the practicality of the equipment.

[0032] Example 3

[0033] like Figures 5 to 7As shown, based on Embodiment 1, it also includes a temperature control mechanism 04, an exhaust mechanism 05, and a decomposition mechanism 06. The temperature control mechanism 04 includes a heat exchanger 41, a first circulating pump 42, a first three-way pipe 43, a heater 44, a first refrigeration box 45, and a second three-way pipe 46. The output end of the heat exchanger 41 is connected to the input end of the first circulating pump 42, and the output end of the first circulating pump 42 is connected to the input end of the first three-way pipe 43. The first three-way pipe 43 is provided with two sets of output ends, and valves are respectively provided on the two sets of output ends of the first three-way pipe 43. The two sets of output terminals are respectively connected to the input terminals of heater 44 and first refrigeration box 45. The output terminals of heater 44 and first refrigeration box 45 are connected to the two sets of input terminals of second three-way pipe 46. Valves are respectively installed at the two sets of input terminals of second three-way pipe 46. The output terminal of second three-way pipe 46 is connected to the output terminal of heat exchanger 41. The exhaust mechanism 05 includes exhaust pipe 51, condenser pipe 52, air pump 53, second circulation pump 54, second refrigeration box 55, second bracket 56, drain pipe 57 and collection tank 58. The input terminal of exhaust pipe 51 is connected to the outer wall of mixing tank 27. A baffle is provided on the inner wall of the exhaust pipe 51. The output end of the exhaust pipe 51 is connected to the input end of the condenser pipe 52. The air pump 53 is installed on the outer wall of the exhaust pipe 51. The input end of the second circulation pump 54 is connected to the output end of the air pump 53. The output end of the second circulation pump 54 is connected to the input end of the second refrigeration box 55. The output end of the second refrigeration box 55 is connected to the input end of the air pump 53. The bottom ends of the condenser pipe 52, the second circulation pump 54, and the second refrigeration box 55 are all installed on the top of the second bracket 56. The input end of the drain pipe 57 is connected to the outer wall of the exhaust pipe 51. The inlet of the drain pipe 57 is located below the baffle inside the exhaust pipe 51, and the outlet of the drain pipe 57 is connected to the inlet of the collection tank 58. The decomposition mechanism 06 includes a decomposition tank 61, a support frame 62, multiple sets of catalysts 63 and multiple sets of ultraviolet lamps 64. An exhaust pipe is provided at the top of the decomposition tank 61. The support frame 62 is installed on the inner wall of the decomposition tank 61. The bottom ends of the multiple sets of catalysts 63 are respectively installed at the top of the support frame 62. The multiple sets of ultraviolet lamps 64 are respectively installed on the inner wall of the decomposition tank 61, and the multiple sets of ultraviolet lamps 64 are respectively located on the upper part of the support frame 62.

[0034] By activating the first circulation pump 42, the liquid in the heat exchanger 41 is discharged through the first three-way pipe 43 to the heater 44 and the first refrigeration box 45, respectively. The liquid is heated by the heater 44 and cooled by the first refrigeration box 45. The heated and cooled liquid is then discharged through the second three-way pipe 46 back to the heat exchanger 41, where it heats and cools the mixing tank 27. By activating the condenser pipe 52, the gas in the mixing tank 27 is discharged through the exhaust pipe 51. By activating the second circulation pump 54, the coolant in the gas pump 53 is discharged into the second refrigeration box 55. The cold box 55 cools the coolant, and the cooled liquid is discharged into the air pump 53 through the second cold box 55. The air pump 53 cools the gas in the exhaust pipe 51, causing the water vapor in the gas to condense. The condensed water vapor is discharged into the collection tank 58 through the drain pipe 57. The collection tank 58 collects the condensate. The dried gas is discharged into the decomposition mechanism 06 and then into the decomposition tank 61. Multiple sets of catalysts 63 and multiple sets of ultraviolet lamps 64 work together to decompose the harmful substances in the gas. The support frame 62 supports the multiple sets of catalysts 63, improving the practicality of the equipment.

[0035] like Figures 1 to 7As shown, this utility model discloses a degreasing agent homogenization and mixing device. During operation, the degreasing agent powder is first discharged from the feed hopper 11 into the screening barrel 12. The powder is then screened by the screening plate 13. The screened material is discharged through the discharge hopper 14 into the mixing mechanism 02. The first motor 15 is started to rotate the crushing shaft 16, which crushes the unscreened degreasing agent powder through multiple sets of crushing blades 17 until screening is complete. Then, the degreasing agent powder is discharged from the feed hopper 11 into the screening barrel 12, where it is further crushed by the screening plate 13. The material is screened, and the screened material is discharged into the mixing mechanism 02 through the discharge hopper 14. The first motor 15 is started to rotate the crushing shaft 16, which crushes the unscreened degreasing agent powder material through multiple sets of crushing blades 17 until screening is complete. Then, the base 21 supports the metering tank 22. When the multi-stage electric cylinder 24 is contracted, the piston 23 rises, creating a negative pressure inside the metering tank 22, allowing the deoxidizer solution to be discharged into the metering tank 22. When the multi-stage electric cylinder 24 is extended, the piston 23 descends, allowing the deoxidizer solution in the metering tank 22 to be discharged into the mixing tank 27 through the first pipe 26. The deoxidizer solution in the mixing tank 27... The mixture is homogenized and mixed. Then, by starting the first circulation pump 42, the liquid in the heat exchanger 41 is discharged through the first three-way pipe 43 to the heater 44 and the first refrigeration box 45, respectively. The liquid is heated by the heater 44 and cooled by the first refrigeration box 45. The heated and cooled liquid is discharged through the second three-way pipe 46 back to the heat exchanger 41, where it heats and cools the mixing tank 27. Then, by starting the condenser pipe 52, the gas in the mixing tank 27 is discharged through the exhaust pipe 51. By starting the second circulation pump 54, the coolant in the gas pump 53 is discharged into the second refrigeration box 55. The coolant is cooled by the second refrigeration box 55, and the cooled liquid is discharged into the air pump 53. The air pump 53 cools the gas in the exhaust pipe 51, causing the water vapor in the gas to condense. The condensed water vapor is discharged into the collection tank 58 through the drain pipe 57. The collection tank 58 collects the condensate. The dried gas is discharged into the decomposition mechanism 06. Finally, the dried gas is discharged into the decomposition tank 61. Multiple sets of catalysts 63 and multiple sets of ultraviolet lamps 64 work together to decompose the harmful substances in the gas. The support frame 62 supports the multiple sets of catalysts 63, improving the practicality of the equipment.

[0036] The first motor 15, the second motor 31, the first circulating pump 42, the heater 44, the first refrigeration box 45, the air pump 53, the second circulating pump 54, the second refrigeration box 55, and the ultraviolet lamp 64 of this utility model are commercially available. Technical personnel in this industry only need to install and operate them according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.

[0037] The main functions achieved by this utility model are as follows: the degreasing agent raw material powder is discharged into the feeding mechanism 01, the degreasing agent raw material powder is screened by the feeding mechanism 01, the degreasing agent raw material in the mixing tank is mixed by starting the stirring mechanism 03 to make it uniformly mixed, and the gas is discharged into the decomposition mechanism 06 by the exhaust mechanism 05, and the gas is decomposed by the decomposition mechanism 06 to improve the practicality of the equipment.

[0038] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.

Claims

1. A degreasing agent homogenization and mixing device, comprising a feeding mechanism (01); characterized in that, It also includes a mixing mechanism (02), a stirring mechanism (03), a temperature control mechanism (04), an exhaust mechanism (05), and a decomposition mechanism (06). The feeding mechanism (01) is installed on top of the mixing mechanism (02), the stirring mechanism (03) is located inside the mixing mechanism (02), the temperature control mechanism (04) is installed on the mixing mechanism (02), the exhaust mechanism (05) is located on the right side of the mixing mechanism (02), and the exhaust mechanism (05) is connected to the mixing mechanism (02). The decomposition mechanism (06) is located on the right side of the exhaust mechanism (05), and the decomposition mechanism (06) is connected to the exhaust mechanism (05).

2. The degreasing agent homogenization and mixing device as described in claim 1, characterized in that, The feeding mechanism (01) includes a feeding hopper (11), a screening barrel (12), a screening plate (13), a discharge hopper (14), a first motor (15), a crushing shaft (16), and multiple sets of crushing blades (17). The output end of the feeding hopper (11) is connected to the top of the screening barrel (12). The screening plate (13) is installed on the lower part of the inner wall of the screening barrel (12). The input end of the discharge hopper (14) is connected to the bottom of the screening barrel (12). The first motor (15) is installed on the top of the screening barrel (12). The top of the crushing shaft (16) is installed on the output end of the first motor (15). Multiple sets of crushing blades (17) are provided on the crushing shaft (16), and the multiple sets of crushing blades (17) are located inside the screening barrel (12) and above the screening plate (13).

3. The degreasing agent homogenization and mixing device as described in claim 1, characterized in that, The mixing mechanism (02) includes a base (21), a metering barrel (22), a piston (23), a multi-stage electric cylinder (24), a first support (25), a first pipe (26), and a mixing barrel (27). A feed valve is provided on the outer wall of the metering barrel (22). The bottom end of the metering barrel (22) is installed on the top end of the base (21). The piston (23) is located inside the metering barrel (22). The bottom end of the multi-stage electric cylinder (24) is installed on the top end of the piston (23). The top end of the multi-stage electric cylinder (24) is installed on the first support (25). The input end of the first pipe (26) is connected to the outer wall of the metering barrel (22). A valve is provided on the input end of the first pipe (26). The output end of the first pipe (26) is connected to the upper part of the outer wall of the mixing barrel (27).

4. The degreasing agent homogenization and mixing device as described in claim 3, characterized in that, The stirring mechanism (03) includes a second motor (31), a first gear (32), a second gear (33), a stirring shaft (34), multiple sets of mounting seats (35), two sets of scrapers (36) and multiple sets of stirring blades (37). The inner ring of the first gear (32) is mounted on the output end of the second motor (31), and the outer ring of the first gear (32) meshes with the outer ring of the second gear (33). The inner ring of the second gear (33) is mounted on the upper part of the stirring shaft (34). The side ends of the multiple sets of mounting seats (35) are respectively mounted on the stirring shaft (34), and springs are respectively provided inside the multiple sets of mounting seats (35). The two sets of scrapers (36) are respectively mounted on the multiple sets of mounting seats (35), and the multiple sets of stirring blades (37) are respectively mounted on the stirring shaft (34). The two sets of scrapers (36) and the multiple sets of stirring blades (37) are respectively located in the mixing tank (27).

5. The degreasing agent homogenization and mixing device as described in claim 1, characterized in that, The temperature control mechanism (04) includes a heat exchanger (41), a first circulating pump (42), a first three-way pipe (43), a heater (44), a first refrigeration box (45), and a second three-way pipe (46). The output end of the heat exchanger (41) is connected to the input end of the first circulating pump (42), and the output end of the first circulating pump (42) is connected to the input end of the first three-way pipe (43). The first three-way pipe (43) is provided with two sets of output ends, and valves are respectively provided on the two sets of output ends of the first three-way pipe (43). The two sets of output ends of the first three-way pipe (43) are respectively connected to the input ends of the heater (44) and the first refrigeration box (45). The output ends of the heater (44) and the first refrigeration box (45) are connected to the two sets of input ends of the second three-way pipe (46), and valves are respectively provided on the two sets of input ends of the second three-way pipe (46). The output end of the second three-way pipe (46) is connected to the output end of the heat exchanger (41).

6. The degreasing agent homogenization and mixing device as described in claim 3, characterized in that, The exhaust mechanism (05) includes an exhaust pipe (51), a condenser pipe (52), an air pump (53), a second circulation pump (54), a second refrigeration box (55), a second bracket (56), a drain pipe (57), and a collection tank (58). The inlet end of the exhaust pipe (51) is connected to the outer wall of the mixing tank (27). A baffle is provided on the inner wall of the exhaust pipe (51). The outlet end of the exhaust pipe (51) is connected to the inlet end of the condenser pipe (52). The air pump (53) is installed on the outer wall of the exhaust pipe (51). The inlet end of the second circulation pump (54) is connected to the air pump (53). The output end of the second circulation pump (54) is connected to the input end of the second refrigeration box (55), the output end of the second refrigeration box (55) is connected to the input end of the air pump (53), the bottom ends of the condenser (52), the second circulation pump (54) and the second refrigeration box (55) are all installed on the top end of the second bracket (56), the input end of the drain pipe (57) is connected to the outer wall of the exhaust pipe (51), the input end of the drain pipe (57) is located below the baffle plate inside the exhaust pipe (51), and the output end of the drain pipe (57) is connected to the input end of the collection bucket (58).

7. The degreasing agent homogenization and mixing device as described in claim 6, characterized in that, The decomposition mechanism (06) includes a decomposition tank (61), a support frame (62), multiple catalysts (63), and multiple ultraviolet lamps (64). The top of the decomposition tank (61) is provided with an exhaust pipe. The support frame (62) is installed on the inner wall of the decomposition tank (61). The bottom ends of the multiple catalysts (63) are respectively installed on the top of the support frame (62). The multiple ultraviolet lamps (64) are respectively installed on the inner wall of the decomposition tank (61), and the multiple ultraviolet lamps (64) are respectively located on the upper part of the support frame (62).