Centrifugal equipment for cleaning agent

By combining multi-stage filters, dynamic stirring devices, and intelligent monitoring systems, the problem of incomplete separation of high-viscosity or fine-particle detergents in existing centrifugation equipment has been solved, achieving efficient, flexible detergent separation and automated operation.

CN224024503UActive Publication Date: 2026-03-24深圳市耀星实业有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-11
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Existing centrifugal equipment is not effective in separating impurities when separating high-viscosity or cleaning agents containing fine particles. It lacks dynamic control capabilities and intelligent operation, resulting in a high degree of manual intervention required for equipment operation.

Method used

The design incorporates multi-stage filters, a dynamic stirring device, a ring-shaped heating plate, filter elements, and an intelligent monitoring system. Combined with a transparent observation window and camera, it enables automatic adjustment, real-time monitoring, and parameter optimization.

Benefits of technology

It significantly improves the thoroughness of impurity separation, allows for flexible adjustment of stirring intensity and temperature, ensures the quality of cleaning agents, and enhances the automation and stability of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses centrifugal equipment for cleaning agents, which relates to the technical field of chemical mechanical equipment and comprises a shell, a driving device and a separating component, a first cavity and a second cavity which are vertically through are arranged in the shell, and the first cavity is connected with the second cavity through a communicating pipe; a feeding hole is formed in the top of the first chamber, a slag discharge hole is formed in the bottom of the first chamber, and a liquid outlet is formed in the bottom of the second chamber. According to the centrifugal equipment for the cleaning agent, provided by the utility model, the efficient separation and purification of the cleaning agent are realized through the synergistic effect of the multi-stage filter screen, the dynamic stirring device, the annular heating plate, the filter element and the intelligent monitoring system. And the design and arrangement of each part are carried out by improving the separation efficiency, optimizing the activity regulation and control capability of the cleaning agent and enhancing the intelligent operation of the equipment, so that the equipment can meet the requirements of various complex working conditions in practical application.
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Description

Technical Field

[0001] This utility model relates to the field of chemical machinery and equipment technology, specifically to a centrifuge for cleaning agents. Background Technology

[0002] Centrifuges are commonly used for the separation and purification of cleaning agents. They achieve stratification of impurities and active ingredients through high-speed rotation, and further remove residues using filtration structures. In existing technologies, centrifuges like CN211937426U employ a dual-chamber design, which improves the activity and separation efficiency of cleaning agents to some extent. However, traditional centrifuges have limitations in terms of thoroughness, especially for high-viscosity cleaning agents or those containing fine particles, where impurity separation is difficult to achieve ideal results. Furthermore, existing equipment often lacks the ability to dynamically control the activity of cleaning agents, making it impossible to flexibly adjust separation parameters according to actual needs. In addition, regarding intelligent operation, existing technologies generally lack automatic monitoring and feedback functions, resulting in significant manual intervention during equipment operation, affecting overall efficiency and stability. Utility Model Content

[0003] The purpose of this invention is to provide a centrifuge device for cleaning agents to overcome the aforementioned shortcomings in the prior art.

[0004] To achieve the above objectives, this utility model provides the following technical solution: a centrifuge for cleaning agents, comprising a shell, a drive device, and a separation component. The shell contains a first chamber and a second chamber that are vertically connected, and the first chamber and the second chamber are connected by a connecting pipe. The first chamber has a feed inlet at the top and a slag outlet at the bottom, and the second chamber has a liquid outlet at the bottom. The separation component includes a multi-stage filter screen disposed in the first chamber and a dynamic stirring device disposed in the second chamber. The multi-stage filter screen is fixed to the inner wall of the first chamber by a support frame, and the multi-stage filter screen is arranged sequentially along the height direction of the first chamber. The dynamic stirring device includes a rotating shaft and several stirring blades mounted on the rotating shaft. One end of the rotating shaft is connected to the bottom wall of the second chamber through a bearing, and the other end extends to the outside of the shell and is connected to the output shaft of the drive device. The drive device is fixed to the outer wall of the shell.

[0005] As one of the preferred solutions, the inner wall of the first chamber has multiple grooves along the circumferential direction, and each groove is fitted with a slider. The slider is fixedly connected to the edge of the multi-stage filter screen by bolts. A spring is provided at the bottom of the slider, one end of which is fixedly connected to the slider and the other end is fixedly connected to the bottom of the groove. The depth of the groove is greater than the height of the slider, so that the slider can move up and down in the groove.

[0006] As another preferred embodiment, an annular heating plate is installed on the inner wall of the second chamber, and the annular heating plate is connected to a temperature controller via a wire; the temperature controller is located on the outer wall of the housing and is electrically connected to the drive device; a number of temperature sensors are provided on the inner side of the annular heating plate, and the probes of the temperature sensors extend into the second chamber and are close to the stirring blade.

[0007] Furthermore, the dynamic stirring device also includes an adjusting sleeve fitted on the rotating shaft. The outer wall of the adjusting sleeve has several protrusions, which are threadedly connected to the root of the stirring blade. The inner wall of the adjusting sleeve has a threaded structure, and the adjusting sleeve is installed in conjunction with the rotating shaft through the threaded structure. The top of the adjusting sleeve has a knob located outside the housing, which is used to manually rotate the adjusting sleeve to change the angle of the stirring blade.

[0008] Further improvements include a filter element inside the connecting tube, comprising an outer filter cloth and an inner activated carbon granule layer, with the outer filter cloth wrapping around the inner activated carbon granule layer; both ends of the connecting tube are welded and fixed to the side walls of the first and second chambers, respectively; a pressure sensor is located in the middle of the connecting tube, and the signal output end of the pressure sensor is connected to the input end of the control module; the control module is located on the outer wall of the housing and is electrically connected to the drive device.

[0009] In addition, a transparent observation window is installed on the top of the housing, and the edge of the transparent observation window is sealed to the top opening of the housing by a sealing ring; a camera is located at the center of the transparent observation window, and the lens of the camera faces the inside of the first chamber; the camera is connected to the input terminal of the control module via a data cable; a display screen is also provided on the outer wall of the housing, and the display screen is connected to the output terminal of the control module for displaying image information inside the first chamber in real time.

[0010] In addition, the inside of the slag discharge port is provided with a detachable baffle, the outer edge of which is connected to the inner wall of the slag discharge port by threads; the center of the baffle is provided with a through hole, and a one-way valve is installed in the through hole, the inlet of which faces the inside of the first chamber and the outlet faces the outside of the slag discharge port; the valve body of the one-way valve is fixedly connected to the baffle by a snap fastener.

[0011] As another preferred embodiment, the drive device includes a motor and a reducer. The output shaft of the motor is connected to the input shaft of the reducer via a coupling, and the output shaft of the reducer is connected to one end of the rotating shaft via a keyway. The bottom of the motor is provided with a shock-absorbing pad, and the bottom of the shock-absorbing pad is fixedly connected to the outer wall of the housing via bolts. The outer shell of the reducer is fixedly connected to the outer wall of the housing via a bracket.

[0012] Further optimization involves each stage of the multi-stage filter being made of metal wire mesh with different pore sizes, with the pore size gradually decreasing from top to bottom; the uppermost filter of the multi-stage filter has a pore size of 100 mesh, and the lowermost filter has a pore size of 400 mesh; the edges of the multi-stage filter are provided with sealing strips, which are tightly fitted to the inner wall of the first chamber.

[0013] Finally, the bottom of the housing is provided with four support legs, and each support leg is equipped with a roller at its bottom. The outer edge of the roller is provided with an anti-slip rubber layer. The top of the support leg is fixedly connected to the bottom of the housing by bolts. The central shaft of the roller is connected to the bottom of the support leg by a bearing.

[0014] In the above technical solution, this utility model provides a centrifuge device for cleaning agents, which has the following beneficial effects:

[0015] 1. This equipment, through its multi-stage filter design, can separate impurities in cleaning agents step by step, especially for high-viscosity cleaning agents or those containing fine particles, significantly improving the thoroughness of impurity separation. At the same time, the multi-stage filter, installed with the cooperation of slides and springs, can automatically adjust its position during operation, avoiding a decrease in separation efficiency due to easy clogging of the filter.

[0016] 2. This equipment features a dynamic stirring device that uses stirring blades to thoroughly stir the cleaning agent. Combined with the heating function of the annular heating plate, it can effectively regulate the activity of the cleaning agent. The use of a temperature sensor and a temperature controller enables precise control of the cleaning agent temperature, thereby meeting the needs of different application scenarios.

[0017] 3. Through the coordinated design of the adjusting sleeve and stirring blades, this equipment can flexibly adjust the angle of the stirring blades according to actual needs, thereby changing the stirring intensity and range to adapt to the separation requirements of cleaning agents with different viscosities and compositions.

[0018] 4. The device uses a filter element design inside the connecting pipe to further remove tiny particles and odor substances from the cleaning agent, ensuring the stable quality of the separated cleaning agent; the pressure sensor can monitor the pressure changes inside the connecting pipe in real time, and when the pressure is abnormal, the control module will automatically adjust the operating parameters of the drive device to avoid overload or damage to the equipment.

[0019] 5. The device, through the combined design of a transparent observation window and a camera, can monitor the separation process in the first chamber in real time, making it easy for operators to detect problems and take corresponding measures in a timely manner; the display screen can intuitively show the situation inside the chamber, improving the ease of operation of the device.

[0020] 6. The equipment features a one-way valve design inside the slag discharge port, which effectively prevents impurities from flowing back into the first chamber and facilitates the cleaning of discharged impurities. The detachable design of the baffle simplifies maintenance and replacement processes and extends the service life of the equipment.

[0021] 7. Through the coordinated design of the motor, reducer and shock-absorbing pads, this equipment can effectively reduce vibration and noise during operation, and improve the stability and reliability of the equipment; the rollers facilitate the movement and positioning of the equipment, enhancing its applicability. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.

[0023] Figure 1 A schematic diagram of the overall structure provided for an embodiment of this utility model;

[0024] Figure 2 A cross-sectional structural schematic diagram provided for an embodiment of this utility model;

[0025] Figure 3 Provided for the embodiments of this utility model Figure 2 Schematic diagram of the structure at point A in the middle;

[0026] Figure 4 Provided for the embodiments of this utility model Figure 2 Schematic diagram of the structure at point B;

[0027] Figure 5 A schematic diagram of the internal structure of the first chamber provided in an embodiment of this utility model;

[0028] Figure 6 Provided for the embodiments of this utility model Figure 5 Schematic diagram of the structure at point C;

[0029] Figure 7 A schematic diagram of the second chamber structure provided for an embodiment of this utility model.

[0030] Explanation of reference numerals in the attached figures:

[0031] 1. Shell; 2. First chamber; 3. Second chamber; 4. Connecting pipe; 5. Feed inlet; 6. Slag outlet; 7. Liquid outlet; 8. Multi-stage filter screen; 9. Dynamic stirring device; 10. Rotating shaft; 11. Stirring blades; 12. Slide groove; 13. Sliding block; 14. Spring; 15. Annular heating plate; 16. Temperature sensor; 17. Adjusting sleeve; 18. Protrusion; 19. Filter element; 20. Pressure sensor; 21. Transparent observation window; 22. Camera; 23. Display screen; 24. Baffle; 25. One-way valve; 26. Motor; 27. Reducer; 28. Support leg. Detailed Implementation

[0032] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.

[0033] Please see Figure 1-7 The housing 1 is the main body of the entire device, and it contains a first chamber 2 and a second chamber 3, which are connected by a connecting pipe 4. The first chamber 2 is located in the upper part of the housing 1, with a feed inlet 5 at the top and a slag discharge outlet 6 at the bottom; the second chamber 3 is located in the lower part of the housing 1, with a liquid outlet 7 at the bottom. A multi-stage filter screen 8 is installed in the first chamber 2, and the multi-stage filter screen 8 is fixed to the inner wall of the first chamber 2 by a support frame and arranged sequentially along the height direction of the first chamber 2. A dynamic stirring device 9 is installed in the second chamber 3. The dynamic stirring device 9 includes a rotating shaft 10 and several stirring blades 11 mounted on the rotating shaft 10. One end of the rotating shaft 10 is connected to the bottom wall of the second chamber 3 through a bearing, and the other end extends to the outside of the housing 1 and is connected to the output shaft of the drive device. The drive unit includes a motor 26 and a reducer 27. The output shaft of the motor 26 is connected to the input shaft of the reducer 27 via a coupling. The output shaft of the reducer 27 is connected to one end of the rotating shaft 10 via a keyway. Both the motor 26 and the reducer 27 are fixed on the outer wall of the housing 1.

[0034] The inner wall of the first chamber 2 has multiple circumferential grooves 12, each groove 12 containing a slider 13. The slider 13 is bolted to the edge of the multi-stage filter 8. A spring 14 is located at the bottom of the slider 13, with one end fixedly connected to the slider 13 and the other end fixedly connected to the bottom of the groove 12. The depth of the groove 12 is greater than the height of the slider 13, allowing the slider 13 to move up and down within the groove 12. Each stage of the multi-stage filter 8 is made of metal wire mesh with different pore sizes, gradually decreasing from top to bottom, with the uppermost filter having a pore size of 100 mesh and the lowermost filter having a pore size of 400 mesh. A sealing strip is provided at the edge of the multi-stage filter 8, which fits tightly against the inner wall of the first chamber 2 to prevent detergent leakage from the filter edge.

[0035] An annular heating plate 15 is installed on the inner wall of the second chamber 3, and the annular heating plate 15 is connected to a temperature controller via wires. The temperature controller is located on the outer wall of the housing 1 and is electrically connected to the drive device. Several temperature sensors 16 are provided on the inner side of the annular heating plate 15, and the probes of the temperature sensors 16 extend into the second chamber 3 and are close to the stirring blade 11. The dynamic stirring device 9 also includes an adjusting sleeve 17 sleeved on the rotating shaft 10. The outer wall of the adjusting sleeve 17 is provided with several protrusions 18, and the protrusions 18 are threadedly connected to the root of the stirring blade 11. The inner wall of the adjusting sleeve 17 is provided with a threaded structure, and the adjusting sleeve 17 is installed in conjunction with the rotating shaft 10 through the threaded structure. A knob is provided at the top of the adjusting sleeve 17, which is located outside the housing 1, for manually rotating the adjusting sleeve 17 to change the angle of the stirring blade 11.

[0036] The connecting pipe 4 contains a filter element 19, which includes an outer filter cloth and an inner activated carbon granule layer, with the outer filter cloth wrapping around the inner activated carbon granule layer. The two ends of the connecting pipe 4 are welded and fixed to the side walls of the first chamber 2 and the second chamber 3, respectively. A pressure sensor 20 is located in the middle of the connecting pipe 4, and the signal output terminal of the pressure sensor 20 is connected to the input terminal of the control module. The control module is located on the outer wall of the housing 1 and is electrically connected to the drive device.

[0037] A transparent observation window 21 is installed on the top of the housing 1, and the edge of the transparent observation window 21 is sealed to the top opening of the housing 1 by a sealing ring. A camera 22 is located at the center of the transparent observation window 21, and the lens of the camera 22 faces the interior of the first chamber 2. The camera 22 is connected to the input terminal of the control module via a data cable. A display screen 23 is also provided on the outer wall of the housing 1, and the display screen 23 is connected to the output terminal of the control module for displaying image information inside the first chamber 2 in real time.

[0038] The slag discharge port 6 has a removable baffle 24 inside, and the outer edge of the baffle 24 is threadedly connected to the inner wall of the slag discharge port 6. A through hole is provided at the center of the baffle 24, and a one-way valve 25 is installed inside the through hole. The inlet of the one-way valve 25 faces the inside of the first chamber 2, and the outlet faces the outside of the slag discharge port 6. The valve body of the one-way valve 25 is fixedly connected to the baffle 24 by a snap-fit.

[0039] The drive unit includes a motor 26 and a reducer 27. The output shaft of the motor 26 is connected to the input shaft of the reducer 27 via a coupling, and the output shaft of the reducer 27 is connected to one end of the rotating shaft 10 via a keyway. A shock-absorbing pad is provided at the bottom of the motor 26, and the bottom of the shock-absorbing pad is fixedly connected to the outer wall of the housing 1 by bolts. The housing of the reducer 27 is fixedly connected to the outer wall of the housing 1 via a bracket.

[0040] The bottom of the housing 1 is provided with four support legs 28, and each support leg 28 is equipped with a roller at its bottom. The outer edge of the roller is provided with an anti-slip rubber layer. The top of the support leg 28 is fixedly connected to the bottom of the housing 1 by bolts. The central shaft of the roller is connected to the bottom of the support leg 28 by a bearing.

[0041] In actual operation, the cleaning agent enters the first chamber 2 through the inlet 5 and flows through the multi-stage filter 8 under gravity. As the pore size of the multi-stage filter 8 decreases progressively, impurities in the cleaning agent are intercepted sequentially; larger particles are intercepted by the upper filter, and smaller particles by the lower filter. When the multi-stage filter 8 becomes clogged, the slider 13 moves up and down under the action of the spring 14, adjusting the position of the multi-stage filter 8 to alleviate clogging and maintain separation efficiency. The cleaning agent, after being processed by the multi-stage filter 8, flows into the second chamber 3 through the connecting pipe 4. During this process, the filter element 19 further removes fine particles and odor substances through the synergistic effect of the outer filter cloth and the inner activated carbon particles. The pressure sensor 20 monitors the pressure changes in the connecting pipe 4 in real time. When the pressure rises abnormally, the control module automatically adjusts the operating parameters of the drive device to prevent equipment overload or damage.

[0042] The detergent entering the second chamber 3 is thoroughly stirred by the dynamic stirring device 9. The stirring blades 11 are adjusted by regulating the angle of the adjusting sleeve 17 to change the stirring intensity and range, thus adapting to the separation requirements of detergents with different viscosities and compositions. The annular heating plate 15 heats the detergent, and the temperature sensor 16 detects the temperature of the detergent in real time and transmits the signal to the temperature controller. The temperature controller adjusts the power of the annular heating plate 15 according to the set value to ensure that the temperature of the detergent is maintained within a suitable range. The stirring blades 11 rotate under the drive of the rotating shaft 10, and in conjunction with the heating function of the annular heating plate 15, the activity of the detergent is effectively controlled.

[0043] The combined use of the transparent observation window 21 and the camera 22 allows operators to monitor the separation process in the first chamber 2 in real time. The display screen 23 visually displays the image information captured by the camera 22, facilitating timely detection and troubleshooting. Impurities generated during the separation process settle at the bottom of the first chamber 2 and are discharged through the slag discharge port 6. The one-way valve 25 inside the slag discharge port 6 prevents impurities from flowing back into the first chamber 2, and the detachable design of the baffle 24 simplifies maintenance and replacement. During equipment operation, the motor 26 drives the rotating shaft 10 to rotate via the reducer 27. The shock-absorbing pads effectively reduce vibration and noise, improving the stability and reliability of the equipment. The rollers 29 facilitate the movement and positioning of the equipment, enhancing its applicability.

[0044] To enable those skilled in the art to fully understand and implement this utility model, the specific implementation principle of this utility model is further explained below in conjunction with a specific application scenario.

[0045] First, the operator injects the cleaning agent to be separated into the first chamber 2 through the feed inlet 5. Under gravity, the cleaning agent flows along the height of the first chamber 2 and passes through multiple filter screens 8 sequentially. Since the pore size of the multi-stage filter screens 8 gradually decreases from top to bottom (100 mesh for the top layer and 400 mesh for the bottom layer), larger particles are intercepted by the upper filter screens, while smaller particles are gradually filtered by the lower filter screens. During this process, if a filter screen becomes clogged due to impurities, the slider 13 will move up and down under the action of the spring 14, thereby adjusting the overall position of the multi-stage filter screens 8. This dynamic adjustment mechanism alleviates clogging, ensures unobstructed flow of the cleaning agent, and maintains the separation efficiency of the equipment.

[0046] Subsequently, the pre-filtered cleaning agent flows into the second chamber 3 through the connecting pipe 4. In the connecting pipe 4, the filter element 19 further removes fine particles and odor substances from the cleaning agent through the synergistic effect of the outer filter cloth and the inner activated carbon particles. The outer filter cloth primarily intercepts fine solid particles, while the inner activated carbon particles adsorb odor molecules in the cleaning agent, thereby improving the purity of the cleaning agent. Simultaneously, the pressure sensor 20 monitors pressure changes within the connecting pipe 4 in real time. When an abnormal pressure increase is detected, the control module automatically adjusts the operating parameters of the drive unit according to a preset program, such as reducing the speed of the motor 26 or pausing feeding to prevent equipment overload or damage.

[0047] After entering the second chamber 3, the detergent is thoroughly stirred by the dynamic stirring device 9. The stirring blades 11 are adjusted by changing the angle of the adjusting sleeve 17 to vary the stirring intensity and range. Specifically, the operator can manually rotate the knob of the adjusting sleeve 17 to change the angle between the stirring blades 11 and the rotating shaft 10 according to the viscosity and composition requirements of the detergent. This design allows the stirring blades 11 to operate at different angles, thereby adapting to the stirring requirements of high-viscosity detergents or enhancing the mixing uniformity of low-viscosity detergents. Simultaneously, the annular heating plate 15 heats the detergent, and the temperature sensor 16 detects the temperature of the detergent in real time and transmits the signal to the temperature controller. The temperature controller adjusts the power of the annular heating plate 15 according to the set value to ensure that the temperature of the detergent is maintained within a suitable range. The combination of the rotation of the stirring blades 11 and the heating function of the annular heating plate 15 can effectively regulate the activity of the detergent and meet the needs of different application scenarios.

[0048] During equipment operation, the transparent observation window 21 and camera 22 work together to monitor the separation process in the first chamber 2 in real time. The image information captured by the camera 22 is transmitted to the control module via a data cable and displayed intuitively on the display screen 23. Operators can observe the separation status in the first chamber 2 through the display screen 23, promptly detect filter blockage or other abnormalities, and take corresponding measures. In addition, impurities generated during the separation process are deposited at the bottom of the first chamber 2 and discharged through the slag discharge port 6. The one-way valve 25 in the slag discharge port 6 is designed to effectively prevent impurities from flowing back into the first chamber 2, while the detachable structure of the baffle 24 facilitates cleaning and maintenance.

[0049] During equipment operation, motor 26 drives shaft 10 to rotate via reducer 27, which in turn drives stirring blades 11. The shock-absorbing pads at the bottom of motor 26 effectively reduce vibration and noise generated during equipment operation, improving the stability and reliability of the equipment. The rollers 29 at the bottom of the housing 1 are designed for easy movement and positioning of the equipment, and their anti-slip rubber layer enhances the stability of the equipment during operation.

[0050] In summary, this invention achieves efficient separation and purification of detergents through the synergistic effect of multi-stage filters 8, dynamic stirring device 9, annular heating plate 15, filter element 19, and intelligent monitoring system. The design and arrangement of each component are all focused on improving separation efficiency, optimizing detergent activity regulation, and enhancing intelligent operation of the equipment, ensuring that the equipment can meet the needs of various complex working conditions in practical applications.

[0051] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A centrifuge for cleaning agents, comprising a housing (1), a drive unit, and a separation assembly, characterized in that: The housing (1) is provided with a first chamber (2) and a second chamber (3) that are connected vertically. The first chamber (2) and the second chamber (3) are connected by a connecting pipe (4). The top of the first chamber (2) is provided with a feed inlet (5) and the bottom is provided with a slag outlet (6). The bottom of the second chamber (3) is provided with a liquid outlet (7). The separation component includes a multi-stage filter screen (8) set in the first chamber (2) and a dynamic stirring device (9) set in the second chamber (3). The multi-stage filter screen (8) is fixed to the inner wall of the first chamber (2) by a support frame, and the multi-stage filter screen (8) is arranged sequentially along the height direction of the first chamber (2). The dynamic stirring device (9) includes a rotating shaft (10) and a number of stirring blades (11) installed on the rotating shaft (10). One end of the rotating shaft (10) is connected to the bottom wall of the second chamber (3) through a bearing, and the other end extends to the outside of the housing (1) and is connected to the output shaft of the drive device. The drive device is fixed on the outer wall of the housing (1).

2. The centrifuge for cleaning agents according to claim 1, characterized in that, The inner wall of the first chamber (2) has multiple grooves (12) along the circumferential direction. Each groove (12) is fitted with a slider (13). The slider (13) is fixedly connected to the edge of the multi-stage filter screen (8) by bolts. A spring (14) is provided at the bottom of the slider (13). One end of the spring (14) is fixedly connected to the slider (13), and the other end is fixedly connected to the bottom of the groove (12). The depth of the groove (12) is greater than the height of the slider (13), so that the slider (13) can move up and down in the groove (12).

3. A centrifuge for cleaning agents according to claim 1, characterized in that, The inner wall of the second chamber (3) is equipped with an annular heating plate (15), which is connected to a temperature controller via a wire. The temperature controller is located on the outer wall of the housing (1) and is electrically connected to the drive device. The inner side of the annular heating plate (15) is provided with several temperature sensors (16), and the probes of the temperature sensors (16) extend into the second chamber (3) and are close to the stirring blade (11).

4. A centrifuge for cleaning agents according to claim 1, characterized in that, The dynamic stirring device (9) also includes an adjusting sleeve (17) sleeved on the rotating shaft (10). The outer wall of the adjusting sleeve (17) is provided with several protrusions (18), and the protrusions (18) are connected to the root of the stirring blade (11) by threads. The inner wall of the adjusting sleeve (17) is provided with a threaded structure, and the adjusting sleeve (17) is installed in conjunction with the rotating shaft (10) through the threaded structure. The top of the adjusting sleeve (17) is provided with a knob, which is located outside the housing (1) and is used to manually rotate the adjusting sleeve (17) to change the angle of the stirring blade (11).

5. A centrifuge for cleaning agents according to claim 1, characterized in that, The connecting pipe (4) is equipped with a filter element (19), which includes an outer filter cloth and an inner activated carbon particle. The outer filter cloth is wrapped around the outer part of the inner activated carbon particle. A pressure sensor (20) is provided in the middle of the connecting pipe (4). The signal output end of the pressure sensor (20) is connected to the input end of the control module. The control module is set on the outer wall of the housing (1) and is electrically connected to the drive device.

6. A centrifuge for cleaning agents according to claim 1, characterized in that, A transparent observation window (21) is installed on the top of the housing (1), and the edge of the transparent observation window (21) is sealed to the top opening of the housing (1) by a sealing ring; a camera (22) is provided at the center of the transparent observation window (21), and the lens of the camera (22) faces the inside of the first chamber (2); the camera (22) is connected to the input end of the control module through a data cable; a display screen (23) is also provided on the outer wall of the housing (1), and the display screen (23) is connected to the output end of the control module.

7. A centrifuge for cleaning agents according to claim 1, characterized in that, The slag discharge port (6) is provided with a detachable baffle (24) inside. The outer edge of the baffle (24) is connected to the inner wall of the slag discharge port (6) by a thread. The baffle (24) has a through hole at its center. A one-way valve (25) is installed in the through hole. The inlet of the one-way valve (25) faces the inside of the first chamber (2) and the outlet faces the outside of the slag discharge port (6). The valve body of the one-way valve (25) is fixedly connected to the baffle (24) by a snap fastener.

8. A centrifuge for cleaning agents according to claim 1, characterized in that, The drive device includes a motor (26) and a reducer (27). The output shaft of the motor (26) is connected to the input shaft of the reducer (27) via a coupling. The output shaft of the reducer (27) is connected to one end of the rotating shaft (10) via a keyway. The bottom of the motor (26) is provided with a shock-absorbing pad. The bottom of the shock-absorbing pad is fixedly connected to the outer wall of the housing (1) via bolts. The outer shell of the reducer (27) is fixedly connected to the outer wall of the housing (1) via a bracket.

Citation Information

Patent Citations

  • Industrial cleaning agent centrifugal equipment

    CN211937426U