An industrial electromechanical energy-saving and environment-friendly device

By designing components such as filter plates, air blowing structures, and stirring blades into electromechanical energy-saving and environmental protection equipment, the separation and cleaning of waste debris and waste oil are realized, solving the problem of waste oil not being able to be separated and improving resource utilization and cleaning efficiency.

CN116983748BActive Publication Date: 2026-03-31YANTAI DONGFANG WISDOM ELECTRIC +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-08-24
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

In existing technologies, the waste oil remaining on the waste residue cannot be separated from the waste residue, resulting in the waste oil not being treated in a timely manner and causing resource waste.

Method used

An electromechanical energy-saving and environmentally friendly device was designed, which includes a cabinet, a feed inlet, a drain outlet, a chip outlet, a filter plate, an air blowing structure, an oil removal structure, and a stirring structure. It separates waste liquid and waste chips through a liquid permeation hole, and uses the air blowing structure and stirring blades to separate and clean waste chips and waste oil, thereby achieving solid-liquid separation.

Benefits of technology

It effectively separates waste chips and waste oil, improves the cleaning efficiency of waste chips, avoids the waste of waste oil, realizes the recycling of waste oil, and improves chip removal efficiency and cleaning effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of electromechanical equipment technology, specifically to an industrial electromechanical energy-saving and environmentally friendly device, comprising a cabinet; a feed inlet located at the top of the cabinet; a drain outlet located on one side of the cabinet; and a separation structure, which includes a filter plate installed inside the cabinet. An oil removal structure is also provided between the chip removal channel and the chip removal outlet. When waste material enters from the feed inlet, the filter plate filters out the waste liquid in the waste material, and the waste chips are guided to the oil removal structure for oil removal and discharge through the chip removal channel. This invention achieves solid-liquid separation between waste liquid and waste chips through a liquid permeation hole, and sprays water into the filter cartridge through a nozzle to clean the waste chips inside the filter cartridge. With the agitation of the stirring blades, the waste chips are separated from the adsorbed waste oil, effectively solving the problem of residual waste oil on the waste chips, which cannot be separated from the waste chips and leads to waste due to untimely treatment of residual waste oil.
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Description

Technical Field

[0001] This invention relates to the field of electromechanical equipment technology, specifically to an industrial electromechanical energy-saving and environmentally friendly equipment. Background Technology

[0002] In the prior art, industrial production generates a large amount of waste. In order to reduce the waste of resources, the iron filings or wastewater generated during the grinding or cutting of workpieces are usually recycled. For example, an industrial electromechanical energy-saving and environmental protection device disclosed in CN217756974U includes a box and a collection component. The box is fixedly connected to the processing table, and a collection component that matches the box is fixedly connected to the lower part of the processing table. A collection box is set below the collection component. The collection component includes a collection plate fixedly embedded in the outer cover, and a uniformly distributed strip electromagnet is provided on the collection plate. A guide plate is fixedly connected to the outer cover above the collection plate. A uniformly distributed leakage hole is opened at the lower part of the outer cover corresponding to the collection box. The strip electromagnet adsorbs and collects the debris in the coolant to realize the reuse of the debris.

[0003] In addition, CN208729522U discloses an industrial electromechanical energy-saving and environmental protection equipment, including a box body. Two water injection pipes are inserted into the upper part of the box body. A support frame is fixedly installed on one side of the upper part of the box body. A sleeve is connected to the upper part of the support frame. A grinding wheel is provided inside the sleeve. A support rod is welded to one side of the box body. A support plate is horizontally installed on the upper part of the support rod. A rotating motor is placed on the upper part of the support plate. A filtration mechanism is also provided inside the box body. The filtration mechanism includes square blocks installed on both sides of the inside of the box body. A filter box is placed on the upper part of the two square blocks. A top cover is clamped on the top of the filter box. Multiple circular holes are evenly opened on the top cover. Two sets of connecting mechanisms are provided between the top cover and the two sides of the inside of the box body. The mechanism filters and collects the generated metal powder to achieve resource utilization.

[0004] While the above-mentioned technical solutions can all recycle waste chips to realize resource utilization, during the cutting process, the waste lubricating oil generated during cutting mixes with the waste chips, causing the mixture of waste chips and waste oil to be discharged along with the cutting fluid. Although the above-mentioned technical solutions can recycle waste chips by using bar electromagnets or filtering and collecting metal powder, the waste oil remaining on the waste chips cannot be separated from the waste chips, resulting in the waste oil remaining on the waste chips not being treated in time and causing waste. Therefore, there is an urgent need for an industrial electromechanical energy-saving and environmentally friendly equipment to solve the above problems. Summary of the Invention

[0005] In order to overcome the above-mentioned technical problems, the purpose of this invention is to provide an industrial electromechanical energy-saving and environmentally friendly device to solve the problem mentioned in the background art that the waste oil remaining on the waste chips cannot be separated from the waste chips, resulting in the waste oil remaining on the waste chips not being treated in time and causing waste.

[0006] The objective of this invention can be achieved through the following technical solutions:

[0007] An industrial electromechanical energy-saving and environmentally friendly device, comprising:

[0008] Cabinet;

[0009] The material inlet is located at the top of the cabinet.

[0010] Drainage outlet, installed on one side of the cabinet;

[0011] The chip discharge port is installed at the bottom inside the cabinet, and one end of the chip discharge port extends through the cabinet to the lower surface of the cabinet.

[0012] And, the controller connected to the cabinet;

[0013] The separation structure includes a filter plate installed inside the cabinet, and the filter plate has several permeable holes for waste liquid to pass through. The filter plate is inclined, and a chip removal channel is installed at the downward inclined end. An oil removal structure is also provided between the chip removal channel and the chip removal port. When waste enters from the inlet, the filter plate filters out the waste liquid in the waste and guides the waste chips into the oil removal structure for oil removal and discharge through the chip removal channel.

[0014] Furthermore, a guide plate is installed on the side of the chip removal channel near the filter plate to guide the waste liquid passing through the liquid permeation holes.

[0015] Furthermore, the filter plate is provided with an air blowing structure at one of its upwardly inclined ends, so as to pneumatically guide the waste debris accumulated on the filter plate through the air blowing structure, so that the waste debris enters the debris discharge channel.

[0016] Furthermore, the air blowing structure includes an air pipe installed outside the cabinet, and multiple branch pipes are installed on the air pipe. One end of the branch pipe extends into the interior of the cabinet, and a connection port is also installed at one end of the air pipe.

[0017] Furthermore, a flow guide hood is installed at the upwardly inclined end of the filter plate, and multiple air ports are opened inside the flow guide hood. The end of the diversion pipe away from the air pipe is connected to the air ports so that an external air pump can be connected through the connection port to supply air to the air pipe, so that the gas sprayed in the air ports can pneumatically guide the waste chips and discharge the accumulated waste chips into the chip discharge channel.

[0018] Furthermore, the oil removal structure includes a connecting frame installed inside the cabinet, and a drive shaft is installed at the center of the connecting frame. One end of the drive shaft passes through the cabinet and is connected to the cabinet bearing. Filter cartridges are installed on both the upper and lower sides of the connecting frame, and openings are opened on the opposite sides of the filter cartridges. The openings are located on the same center line as the chip removal channel. Several holes are opened on the outside of the filter cartridges for secondary discharge of waste liquid inside the filter cartridges. A first motor is also installed on the cabinet, and transmission gears are installed on the output shaft of the first motor and the outside of the drive shaft. The transmission gears are meshed together. A flow divider is provided between the filter cartridges, and the flow divider is fixedly connected to the connecting frame. Both sides of the flow divider are inclined.

[0019] Furthermore, spray structures are provided on both sides of the chip removal channel for spraying water into the filter cartridge to clean the waste chips. A stirring structure is also provided inside the filter cartridge for mixing and stirring the waste chips with water to remove residual grease from the waste chips.

[0020] Furthermore, the stirring structure includes a rotating shaft connected to the inside of the filter cylinder by a bearing, and stirring blades are installed on the outside of the rotating shaft. A drive gear is connected to the connecting frame by a bearing, and driven gears are meshed on both sides of the outside of the drive gear. The driven gears are fixedly connected to the rotating shaft. A second motor is installed on the outer wall of the cabinet, and the output shaft of the second motor is connected to the drive gear by a belt pulley transmission structure.

[0021] Furthermore, the spraying structure includes water spray pipes disposed on both sides of the chip removal channel, and multiple nozzles are installed on the water spray pipes. Both ends of the water spray pipes are fixedly connected to the cabinet. One end of each of the two water spray pipes passes through the cabinet and is connected to a T-pipe, so that a water pump connected to the T-pipe can supply water to the water spray pipes, so that water is ejected from the nozzles to clean the waste chips in the filter cartridge.

[0022] Furthermore, a sealing plate is slidably connected within the chip removal channel, and sliding rods are installed on both sides of the sealing plate. Sliding grooves are opened on both sides of the chip removal channel, and the sliding grooves are slidably connected to the sliding rods. A guide post is installed at the far end of each sliding rod, and an annular slit is opened inside the guide post. A baffle is installed at both ends of the filter cartridge corresponding to the guide post, and the baffle is engaged with the annular slit. A connecting post is also installed outside the chip removal channel, and a spring is installed between the connecting post and the guide post.

[0023] The beneficial effects of this invention are:

[0024] 1. Solid-liquid separation between waste liquid and waste debris is achieved through the liquid permeation hole. Water is sprayed into the filter cartridge through the nozzle to clean the waste debris inside the filter cartridge. With the help of the stirring blades, the cleaning efficiency of waste debris is accelerated, so that the waste debris is separated from the adsorbed waste oil and discharged from the drain port along with the waste liquid for recycling. This effectively solves the problem of waste oil remaining on the waste debris that cannot be separated from the waste debris, resulting in waste due to the waste oil not being treated in time.

[0025] 2. The internal waste is stirred by the rotating agitator blades, which mixes the waste with water, thereby removing residual waste oil from the waste and recovering the waste oil. In addition, the rotating agitator blades also clean and discharge residual waste from the filter cartridges near the discharge port during the rotation of the agitator blades, preventing the waste from being adsorbed.

[0026] 3. By injecting gas into the air inlet, the waste chips are pneumatically guided and discharged into the chip removal channel, which avoids the accumulation of waste chips on the filter plate and improves the chip removal efficiency.

[0027] 4. The rotation of the filter cartridge causes the baffle to engage with the annular cut, pushing the sealing plate and allowing the waste chips in the chip discharge channel to enter the filter cartridge. When the first motor stops rotating, the opening is aligned with the chip discharge channel, preventing leakage of waste chips. Attached Figure Description

[0028] The invention will now be further described with reference to the accompanying drawings.

[0029] Figure 1 This is a three-dimensional structural view of the present invention;

[0030] Figure 2 This is a three-dimensional view of the structure of the present invention from another perspective;

[0031] Figure 3 This is a top view of the structure of the present invention;

[0032] Figure 4 In this invention Figure 3 A cross-sectional view of the structure at point AA;

[0033] Figure 5 This is a perspective view of the internal structure of the present invention;

[0034] Figure 6 This is the invention Figure 5 Enlarged view of the structure at point A in the middle;

[0035] Figure 7 This is a perspective view of the degreasing structure of the present invention;

[0036] Figure 8 This is a three-dimensional view of the stirring structure of the present invention.

[0037] In the diagram: 1. Cabinet; 2. Inlet; 3. Drain; 4. Chip outlet; 5. Controller; 6. Filter plate; 7. Chip outlet channel; 8. Guide plate; 9. Guide hood; 10. Air pipe; 11. Diverter pipe; 12. Connection port; 13. Connecting frame; 14. Drive shaft; 15. Filter cartridge; 16. Opening; 17. Hole; 18. Diverter plate; 19. First motor; 20. Transmission gear; 21. Rotating shaft; 22. Stirring blade; 23. Drive gear; 24. Driven gear; 25. Second motor; 26. Belt pulley transmission structure; 27. Water spray pipe; 28. Nozzle; 29. ​​T-connector; 30. Sealing plate; 31. Slide groove; 32. Guide column; 33. Baffle; 34. Connecting column; 35. Spring. Detailed Implementation

[0038] The technical solutions of the present invention will be clearly and completely described below with reference to the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.

[0039] Please see the appendix Figure 1 To be continued Figure 5 An industrial electromechanical energy-saving and environmentally friendly device includes a cabinet 1; a material inlet 2 opened at the top of the cabinet 1; a liquid outlet 3 installed on one side of the cabinet 1; a chip outlet 4 installed at the bottom of the cabinet 1, with one end of the chip outlet 4 extending through the cabinet 1 to the lower surface of the cabinet 1; and a controller 5 connected to the cabinet 1.

[0040] The separation structure includes a filter plate 6 installed inside the cabinet 1. The filter plate 6 has several permeable holes for waste liquid to pass through. The filter plate 6 is inclined, and a chip removal channel 7 is installed at the downward inclined end. An oil removal structure is also provided between the chip removal channel 7 and the chip removal port 4. When the waste material enters from the feed port 2, the filter plate 6 filters out the waste liquid in the waste material and guides the waste chips into the oil removal structure for oil removal and discharge through the chip removal channel 7. A guide plate 8 is installed on the side of the chip removal channel 7 near the filter plate 6 to guide the waste liquid passing through the permeable holes. The guide plate 8 is used to separate the waste chips and waste liquid to avoid contamination of the treated waste chips.

[0041] Please see the appendix Figure 5The filter plate 6 has an upwardly inclined end equipped with an air-blowing structure to pneumatically guide the accumulated waste on the filter plate 6 into the waste discharge channel 7. The air-blowing structure includes an air pipe 10 installed outside the cabinet 1, and multiple diversion pipes 11 are installed on the air pipe 10. One end of the diversion pipe 11 extends into the cabinet 1, and a connection port 12 is also installed at one end of the air pipe 10. The multiple diversion pipes 11 extend into the cabinet 1 to pneumatically guide the accumulated waste on the filter plate 6. The filter plate 6 is pneumatically cleaned. A guide hood 9 is installed at the upward-sloping end of the filter plate 6. Multiple air ports are opened inside the guide hood 9. The end of the diversion pipe 11 away from the air pipe 10 is connected to the air ports. An external air pump is connected through the connection port 12 to supply air to the air pipe 10. The air is then sprayed into the air ports to pneumatically guide the waste chips and discharge the accumulated waste chips into the chip discharge channel 7. The guide hood 9 guides the air, which facilitates the discharge of waste chips into the chip discharge channel 7 and improves the chip discharge efficiency.

[0042] Please see the appendix Figure 4 To be continued Figure 7 The degreasing structure includes a connecting frame 13 installed inside the cabinet 1, with a drive shaft 14 installed at the center of the connecting frame 13. One end of the drive shaft 14 passes through the cabinet 1 and is connected to a bearing in the cabinet 1. Filter cartridges 15 are installed on both the upper and lower sides of the connecting frame 13, and openings 16 are provided on the opposite sides of the filter cartridges 15. The openings 16 are located on the same center line as the chip discharge channel 7, facilitating the feeding of material into the filter cartridges 15 and cleaning of waste chips. Several holes 17 are provided on the outside of the filter cartridges 15 for secondary discharge of waste liquid inside the filter cartridges 15. A first motor 19 is also installed on the cabinet 1. Both the output shaft of motor 19 and the drive shaft 14 are equipped with transmission gears 20, and the transmission gears 20 are meshed together. A flow divider 18 is provided between the filter cartridges 15, and the flow divider 18 is fixedly connected to the connecting frame 13. Both sides of the flow divider 18 are inclined. The flow divider 18 guides the waste liquid and prevents the waste liquid from entering the chip discharge port 4 and mixing with the degreased waste liquid. When the first motor 19 rotates, the drive shaft 14 is controlled to rotate under the action of the meshing connection of the transmission gears 20, so that the connecting frame 13 rotates and the filter cartridges 15 are switched, thereby pouring the degreased waste chips into the chip discharge port 4 and discharging them to the outside.

[0043] Among them, the chip discharge port 4 is equipped with a guide port at one end near the filter cartridge 15. The guide port is wider at the top and narrower at the bottom, which is used to guide the cleaned waste chips into the chip discharge port 4. In addition, during the implementation process, a collection box for collecting waste chips can be placed at the bottom of the cabinet 1, which facilitates the subsequent processing of waste chips.

[0044] Please see the appendix Figure 8The filter cartridge 15 is also equipped with a stirring structure for mixing waste chips with water and removing residual grease from the waste chips. The stirring structure includes a rotating shaft 21 connected to the inside of the filter cartridge 15 by bearings, and stirring blades 22 are installed on the outside of the rotating shaft 21. A drive gear 23 is connected to the connecting frame 13 by bearings, and driven gears 24 are meshed on both sides of the drive gear 23. The driven gears 24 are fixedly connected to the rotating shaft 21. A second motor 25 is installed on the outer wall of the cabinet 1, and the output shaft of the second motor 25 is connected to the drive gear 23 by a belt pulley transmission structure 26. Connected to the drive, the second motor 25 is driven to rotate, and under the transmission connection of the belt pulley transmission structure 26, the drive gear 23 is controlled to rotate. The drive gear 23 meshes with the driven gear 24, causing the rotating shaft 21 to drive the stirring blade 22 to rotate, stirring the internal waste chips, mixing the waste chips with water, thereby removing the residual waste oil on the waste chips and recovering the waste oil. In addition, the rotation of the stirring blade 22 can also clean and discharge the residual waste chips inside the filter cartridge 15 near the chip discharge port 4 during the rotation of the stirring blade 22, avoiding the adsorption of waste chips.

[0045] The belt drive structure 26 includes a driving wheel, a driven wheel, and a belt. The driving wheel is connected to the output shaft of the second motor 25, the driven wheel is fixedly connected to the driving gear 23, and the belt is located outside the driving wheel and the driven wheel. When the driving wheel rotates, the driven wheel is controlled to rotate by the friction between the belt pulley and the driving wheel, which in turn drives the driving gear 23 to rotate.

[0046] Please see the appendix Figure 2 Appendix Figure 3 and attached Figure 6 Spraying structures are also provided on both sides of the chip removal channel 7 for spraying water into the filter cartridge 15 to clean the waste chips. The spraying structures include water spray pipes 27 set on both sides of the chip removal channel 7, and multiple nozzles 28 are installed on the water spray pipes 27. The two ends of the water spray pipes 27 are fixedly connected to the cabinet 1. One end of the two water spray pipes 27 passes through the cabinet 1 and is equipped with a three-way pipe 29, so that the water pump connected to the three-way pipe 29 supplies water into the water spray pipes 27, so that the water flow is ejected from the nozzles 28 to clean the waste chips in the filter cartridge 15. The water spraying operation in the filter cartridge 15 by the external water pump and water source cleans the waste chips in the filter cartridge 15. Under the stirring action of the stirring blades 22, the residual oil stains on the waste chips are removed, which facilitates the recycling of the residual waste oil on the waste chips.

[0047] Please see the appendix Figure 6A sealing plate 30 is slidably connected inside the chip removal channel 7, and sliding rods are installed on both sides of the sealing plate 30. Sliding grooves 31 are opened on both sides of the chip removal channel 7, and the sliding grooves 31 are slidably connected to the sliding rods. This slidable connection between the sliding grooves 31 and the sliding rods facilitates the movement of the sealing plate 30 within the chip removal channel 7, thereby facilitating the control of chip discharge or stopping the discharge. The operation is simple and convenient, allowing the sealing plate 30 to be opened and closed during the rotation of the filter cartridge 15, coordinating with the discharge operation of the filter cartridge 15. Guide posts 32 are installed at the far end of the filter cartridge 15, and an annular slit is opened inside the guide post 32. The filter cartridge 15 is equipped with baffles 33 at the two ends corresponding to the guide posts 32, and the baffles 33 are engaged with the annular slit. A connecting post 34 is also installed on the outside of the chip discharge channel 7, and a spring 35 is installed between the connecting post 34 and the guide post 32. By utilizing the elastic element of the spring 35, the spring 35 is in a deformed state when the sealing plate 30 is opened, so that when the baffles 33 release the engagement with the annular slit, the sealing plate 30 performs a reset operation.

[0048] In practice, the filter cartridge 15 rotates, causing the baffle 33 to engage with the annular cut, which pushes the sealing plate 30, allowing the waste chips in the chip discharge channel 7 to enter the filter cartridge 15. When the first motor 19 stops rotating, the opening 16 aligns with the chip discharge channel 7, preventing leakage of waste chips. When the filter cartridge 15 rotates again, since the filter cartridge 15 rotates around the drive shaft 14 with an arc-shaped motion trajectory, the baffle 33 will disengage from the annular cut when the filter cartridge 15 rotates again, allowing the sealing plate 30 to reset.

[0049] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0050] The above description is merely an example and illustration of the present invention. Those skilled in the art can make various modifications or additions to the specific embodiments described, or use similar methods to replace them, as long as they do not deviate from the invention or exceed the scope defined in the claims, all of which should fall within the protection scope of the present invention.

Claims

1. An industrial electromechanical energy-saving and environmentally friendly equipment, characterized in that, include: Cabinet (1); The inlet (2) is located at the top of the cabinet (1); Drainage port (3) is installed on one side of cabinet (1); The chip discharge port (4) is installed at the bottom of the inside of the cabinet (1), and one end of the chip discharge port (4) extends through the cabinet (1) to the lower surface of the cabinet (1); And, a controller (5) connected to the cabinet (1); The separation structure includes a filter plate (6) installed in the cabinet (1), and the filter plate (6) has several liquid permeation holes for waste liquid to pass through. The filter plate (6) is inclined, and a chip removal channel (7) is installed at the downward inclined end. An oil removal structure is also provided between the chip removal channel (7) and the chip removal port (4). When the waste material enters from the feed port (2), the filter plate (6) filters out the waste liquid in the waste material, and guides the waste chips into the oil removal structure for oil removal and discharge through the chip removal channel (7). The degreasing structure includes a connecting frame (13) installed inside the cabinet (1), and a drive shaft (14) is installed at the center of the connecting frame (13). One end of the drive shaft (14) passes through the cabinet (1) and is connected to the bearing of the cabinet (1). Filter cartridges (15) are installed on both the upper and lower sides of the connecting frame (13), and an opening (16) is opened on the side of the filter cartridges (15) that is far apart from each other. The position of the opening (16) is on the same center line as the chip discharge channel (7). Several openings are opened on the outside of the filter cartridges (15). Dry hole (17), and hole (17) is used to discharge the waste liquid in the filter cartridge (15) for a second time. The cabinet (1) is also equipped with a first motor (19), and the output shaft of the first motor (19) and the drive shaft (14) are both equipped with transmission gears (20), and the transmission gears (20) are meshed together. A diversion plate (18) is provided between the filter cartridges (15), and the diversion plate (18) is fixedly connected to the connecting frame (13). Both sides of the diversion plate (18) are inclined. A sealing plate (30) is slidably connected inside the chip removal channel (7), and sliding rods are installed on both sides of the sealing plate (30). Sliding grooves (31) are opened on both sides of the chip removal channel (7), and the sliding grooves (31) and the sliding rods are slidably connected. A guide post (32) is installed at the far end of the sliding rod, and an annular slit is opened inside the guide post (32). A baffle (33) is installed at both ends of the filter cartridge (15) corresponding to the guide post (32), and the baffle (33) is engaged with the annular slit. A connecting post (34) is also installed outside the chip removal channel (7), and a spring (35) is installed between the connecting post (34) and the guide post (32).

2. The industrial electromechanical energy-saving and environmental protection equipment according to claim 1, characterized in that, A guide plate (8) is installed on the side of the chip removal channel (7) near the filter plate (6) to guide the waste liquid that has passed through the liquid permeation hole.

3. The industrial electromechanical energy-saving and environmental protection equipment according to claim 1, characterized in that, The filter plate (6) is provided with an air blowing structure at one of its upward inclined ends, so as to pneumatically guide the waste debris accumulated on the filter plate (6) through the air blowing structure, so that the waste debris enters the chip discharge channel (7).

4. The industrial electromechanical energy-saving and environmental protection equipment according to claim 3, characterized in that, The air blowing structure includes an air pipe (10) installed outside the cabinet (1), and multiple diversion pipes (11) are installed on the air pipe (10). One end of the diversion pipe (11) extends into the cabinet (1), and a connection port (12) is also installed at one end of the air pipe (10).

5. The industrial electromechanical energy-saving and environmental protection equipment according to claim 4, characterized in that, The filter plate (6) is also equipped with a flow guide hood (9) at one end that is inclined upwards, and multiple air ports are opened inside the flow guide hood (9). The end of the diversion pipe (11) away from the air pipe (10) is connected to the air port so that an external air pump can be connected through the connection port (12) to supply air to the air pipe (10), so that the gas sprayed in the air port can pneumatically guide the waste chips and discharge the accumulated waste chips into the chip discharge channel (7).

6. The industrial electromechanical energy-saving and environmental protection equipment according to claim 1, characterized in that, The chip removal channel (7) is also equipped with spraying structures on both sides for spraying water into the filter cartridge (15) to clean the waste chips. The filter cartridge (15) is also equipped with a stirring structure for mixing the waste chips with water to remove the residual grease on the waste chips.

7. The industrial electromechanical energy-saving and environmental protection equipment according to claim 6, characterized in that, The stirring structure includes a rotating shaft (21) connected to the inside of the filter cylinder (15) by a bearing, and a stirring blade (22) is installed on the outside of the rotating shaft (21). A drive gear (23) is connected to the connecting frame (13) by a bearing, and driven gears (24) are meshed on both sides of the outside of the drive gear (23). The driven gears (24) are fixedly connected to the rotating shaft (21). A second motor (25) is installed on the outer wall of the cabinet (1), and the output shaft of the second motor (25) is connected to the drive gear (23) by a belt pulley transmission structure (26).

8. The industrial electromechanical energy-saving and environmental protection equipment according to claim 6, characterized in that, The spraying structure includes water spray pipes (27) set on both sides of the chip removal channel (7), and multiple nozzles (28) are installed on the water spray pipes (27). The two ends of the water spray pipes (27) are fixedly connected to the cabinet (1). One end of the two water spray pipes (27) passes through the cabinet (1) and is installed with a three-way pipe (29) so that a water pump connected to the three-way pipe (29) can supply water to the water spray pipes (27) so that the water flow is ejected from the nozzles (28) to clean the waste chips in the filter cartridge (15).

Citation Information

Patent Citations

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    CN208729522U

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