Cutting fluid continuous recovery processing device

Through a multi-stage treatment scheme, including adsorption, precipitation, disinfection and purification, the problem of poor treatment effect of existing cutting fluid recovery devices is solved, the recovery rate and quality of cutting fluid are improved, and secondary pollution is prevented.

CN120643969APending Publication Date: 2025-09-16GUANGDONG KEWEI ENVIRONMENTAL PROTECTION TECH CO LTD
View PDF 0 Cites 1 Cited by

Patent Information

Application Number
CN202510928085.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-07
Publication Date
2025-09-16

AI Technical Summary

Technical Problem

The existing continuous recovery and treatment device for cutting fluid only filters through a filter screen, which has a poor treatment effect, resulting in a low recovery rate and low quality of the treated liquid.

Method used

A multi-stage treatment scheme is adopted, including adsorption mechanism, precipitation mechanism, disinfection mechanism, anti-blocking mechanism and purification mechanism, which respectively adsorb, precipitate, disinfect and purify the cutting fluid to ensure the quality of the cutting fluid.

Benefits of technology

The multi-stage treatment of cutting fluid is realized, the recovery rate and the quality of the treated fluid are improved, the quality of the cutting fluid is ensured, and secondary pollution is prevented.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120643969A_ABST
    Figure CN120643969A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of cutting fluid recovery treatment, in particular to a continuous cutting fluid recovery treatment device. The invention provides a cutting fluid continuous recovery treatment device which can perform multi-stage treatment on cutting fluid and ensure the quality of the recovered cutting fluid. A continuous recovery treatment device for cutting fluid comprises a collection funnel, an adsorption mechanism, a precipitation mechanism, a disinfection mechanism and the like, the adsorption mechanism capable of adsorbing scrap iron is arranged on the collection funnel, the precipitation mechanism capable of precipitating impurities in the cutting fluid is arranged on the adsorption mechanism, and the disinfection mechanism capable of disinfecting the cutting fluid is arranged on the precipitation mechanism. Scrap iron in cutting fluid is adsorbed through the adsorption mechanism, the cutting fluid is precipitated through the precipitation mechanism, the cutting fluid is disinfected through the disinfection mechanism, the cutting fluid is filtered through the anti-blocking mechanism, and the cutting fluid is purified through the purification mechanism, so that the cutting fluid can be subjected to multi-stage treatment; and the quality of the recovered cutting fluid is ensured.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of cutting fluid recovery and treatment, in particular to a cutting fluid continuous recovery and treatment device. Background Art

[0002] In the machining industry, cutting fluid is used to lubricate and cool tools and workpieces to improve machining efficiency and product quality. However, used cutting fluid is often mixed with large amounts of iron chips, oil, and other pollutants. Direct discharge can cause serious environmental pollution, while frequent replacement of fresh cutting fluid increases the company's operating costs. In actual production, the cutting fluid used in the metal cutting process is usually recycled for the purposes of cost reduction and environmental protection. However, existing continuous cutting fluid recovery and treatment devices usually only filter the cutting fluid through a filter screen, which has poor treatment effects, resulting in low recovery rates and low quality of the treated fluid.

[0003] Therefore, a cutting fluid continuous recovery and treatment device has been developed that can perform multi-stage treatment on the cutting fluid to ensure the quality of the recovered cutting fluid. Summary of the Invention

[0004] In order to overcome the shortcomings of existing cutting fluid continuous recovery and treatment devices, which usually only filter the cutting fluid through a filter screen, resulting in poor treatment effect, low recovery rate and low quality of the treated liquid, the present invention provides a cutting fluid continuous recovery and treatment device that can perform multi-stage treatment on the cutting fluid to ensure the quality of the recovered cutting fluid.

[0005] The technical implementation scheme of the present invention is: a cutting fluid continuous recovery and processing device, including a collecting funnel, an adsorption mechanism, a precipitation mechanism, a disinfection mechanism, an anti-blocking mechanism and a purification mechanism. The collecting funnel is provided with an adsorption mechanism capable of adsorbing iron chips, the adsorption mechanism is provided with a precipitation mechanism capable of precipitating impurities in the cutting fluid, the precipitation mechanism is provided with a disinfection mechanism capable of disinfecting the cutting fluid, the collecting funnel is also provided with an anti-blocking mechanism capable of filtering the cutting fluid, and the precipitation mechanism is also provided with a purification mechanism capable of purifying the cutting fluid.

[0006] Optionally, the adsorption mechanism includes an adsorption bin, a driving assembly, a first guide frame, an adsorption rod, a sliding frame, a connecting piece and a collection frame. The lower side of the collecting funnel is connected to the adsorption bin, and a driving assembly is provided on the adsorption bin. The right side of the adsorption bin is connected to the first guide frame. A plurality of adsorption rods are slidably connected inside the adsorption bin, and the sliding frame is slidably connected to the first guide frame. A connecting piece is connected between the front sides of the adsorption rods, and a connecting piece is also connected between the rear sides of the adsorption rods. The front connecting piece is connected to the sliding frame, and the front connecting piece is engaged with the adsorption bin. The collection frame is engaged with the rear side of the adsorption bin, and the collection frame is located below the adsorption rod. The driving assembly is started to move the sliding frame forward along the first guide frame, so that the front connecting piece drives the adsorption rod to move forward. When the adsorption rod moves forward, the iron filings adsorbed on the surface are scraped by the adsorption bin into the collection frame.

[0007] Optionally, the drive assembly includes a drive motor and a drive screw. The drive motor is connected to the left front side of the adsorption bin, the drive screw is connected to the output shaft of the drive motor, the drive screw is rotatably connected to the adsorption bin, and the sliding frame is threadedly connected to the drive screw.

[0008] Optionally, the sedimentation mechanism includes a sedimentation bin, a fixed ring, a support rod, a reinforcement rod, a collection tank and a first liquid outlet pipe. The lower side of the adsorption bin is connected to the sedimentation bin, the middle part of the sedimentation bin is connected to the fixed ring, a plurality of support rods are rotatably connected to the fixed ring, the lower parts of the support rods are movably connected to the reinforcement rods, the reinforcement rods are provided with a plurality of bolts, the reinforcement rods are rotatably connected to the sedimentation bin, the lower side of the sedimentation bin is threadedly connected to the collection tank, the lower front side of the sedimentation bin is connected to the first liquid outlet pipe, the cutting fluid flows into the sedimentation bin after passing through the adsorption bin for sedimentation, and the impurities are precipitated in the collection tank.

[0009] Optionally, a plurality of anti-slip strips are provided on the collection tank.

[0010] Optionally, a valve is rotatably provided on the first liquid outlet pipe.

[0011] Optionally, the disinfection mechanism includes a servo motor, a reciprocating screw, a third guide frame and a disinfection lamp frame. The servo motor is connected to the inner side of the upper part of the sedimentation bin, the reciprocating screw is connected to the output shaft of the servo motor, the reciprocating screw is rotatably connected to the sedimentation bin, the third guide frame is connected to the inner side of the front part of the sedimentation bin, the disinfection lamp frame is slidably connected to the third guide frame, and the disinfection lamp frame is threadedly connected to the reciprocating screw to light up the disinfection lamp frame. After the cutting fluid flows into the sedimentation bin, the servo motor is started to drive the reciprocating screw to rotate, so that the disinfection lamp frame moves back and forth up and down along the third guide frame.

[0012] Optionally, the anti-blocking mechanism includes a fixed plate, a cylinder, a telescopic sleeve, a scraper and a filter. The upper rear side of the collecting funnel is connected to two left and right fixed plates, the right fixed plate is connected to the cylinder, the left fixed plate is connected to the telescopic sleeve, a scraper is connected between the telescopic end of the cylinder and the telescopic end of the telescopic sleeve, the upper side of the collecting funnel is connected to the filter, the scraper is located above the filter, when the cutting fluid is poured into the collecting funnel, the filter intercepts larger impurities in the cutting fluid. When there are many impurities, the cylinder can be started to drive the scraper to move backward to scrape the impurities to the rear of the filter to avoid clogging the filter.

[0013] Optionally, the purification mechanism includes a shunt pipe, a purifier and a second liquid outlet pipe. The front side of the first liquid outlet pipe is connected to the shunt pipe, the left and right parts of the shunt pipe are connected to the purifier, and the second liquid outlet pipe is connected between the lower sides of the purifier. A valve is also rotatably provided on the second liquid outlet pipe. After the cutting fluid is discharged from the first liquid outlet pipe, it enters the shunt pipe and is adsorbed by the activated carbon in the purifier to absorb organic matter, pigments, odorous substances and certain heavy metal ions in the cutting fluid. Then the valve is opened to discharge the cutting fluid from the second liquid outlet pipe.

[0014] The left and right sides of the two-wheeled gear are connected to the gear of the second gear by the two-wheeled gear, and the two-wheeled gear is engaged with the gear of the second gear by the two-wheeled gear.

[0015] Compared with the prior art, the present invention has the following advantages: 1. The present invention uses an adsorption mechanism to adsorb iron chips in the cutting fluid, a precipitation mechanism to precipitate the cutting fluid, a disinfection mechanism to disinfect the cutting fluid, an anti-blocking mechanism to filter the cutting fluid, and a purification mechanism to purify the cutting fluid, thereby achieving the effect of multi-stage treatment of the cutting fluid and ensuring the quality of the recovered cutting fluid.

[0016] 2. The present invention pours the cutting fluid into a collecting funnel, which allows the cutting fluid to enter the adsorption chamber from the collecting funnel, and absorbs the iron chips in the cutting fluid through the adsorption rod, thereby achieving the effect of separating the iron chips in the cutting fluid and ensuring the quality of the recovered cutting fluid.

[0017] 3. The present invention starts the driving motor in the driving assembly to drive the driving screw to rotate, so that the sliding frame moves forward along the first guide frame, so that the front connecting piece drives the adsorption rod to move forward. When the adsorption rod moves forward, the iron filings adsorbed on the surface are scraped into the collection frame by the adsorption bin, so that the adsorption rod can be automatically cleaned to ensure the adsorption rod's effect of removing impurities from the cutting fluid.

[0018] 4. The present invention allows the cutting fluid to flow into the precipitation chamber after passing through the adsorption chamber for precipitation, and the impurities are precipitated in the collection tank, thereby achieving the effect of being able to precipitate the cutting fluid for further separation of impurities.

[0019] 5. The present invention lights up the disinfection lamp holder, and after the cutting fluid flows into the sedimentation bin, the servo motor is started to drive the reciprocating screw to rotate, so that the disinfection lamp holder moves up and down along the third guide frame, thereby achieving the effect of disinfecting and sterilizing the cutting fluid and preventing secondary contamination.

[0020] 6. The present invention achieves the effect of initially intercepting larger impurities in the cutting fluid when the cutting fluid is poured into the collecting funnel, and when there are many impurities, the cylinder is started to drive the scraper to move backward to scrape the impurities to the rear of the filter to avoid clogging the filter, thereby achieving the effect of being able to initially intercept larger impurities in the cutting fluid to speed up the subsequent processing efficiency.

[0021] 7. The present invention allows the cutting fluid to be discharged from the first outlet pipe and then enter the diversion pipe. The activated carbon in the purifier adsorbs organic matter, pigments, odorous substances and certain heavy metal ions in the cutting fluid, thereby purifying the cutting fluid and ensuring the quality of the recovered cutting fluid.

[0022] 8. The present invention moves the front connecting piece forward while driving the rack forward, causing the rack to mesh with the flat gear, driving the rotating shaft to rotate, causing the bevel gear to mesh, driving the bidirectional screw to rotate, and causing the sliding plates to move along the second guide frame and close to each other, thereby achieving the effect of automatically closing the adsorption bin to facilitate cleaning of the adsorption rod. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.

[0024] Figure 2 It is a partial three-dimensional structural schematic diagram of the present invention.

[0025] Figure 3 It is a schematic diagram of the three-dimensional structure of the adsorption mechanism of the present invention.

[0026] Figure 4 It is a schematic diagram of the three-dimensional structure of the precipitation mechanism of the present invention.

[0027] Figure 5This is a schematic diagram of the first three-dimensional structure of the closing mechanism of the present invention.

[0028] Figure 6 This is a schematic diagram of a second three-dimensional structure of the closing mechanism of the present invention.

[0029] Figure 7 It is a schematic diagram of the three-dimensional structure of the disinfection mechanism of the present invention.

[0030] Figure 8 It is a schematic diagram of the three-dimensional structure of the anti-blocking mechanism of the present invention.

[0031] Figure 9 It is a schematic diagram of the three-dimensional structure of the purification mechanism of the present invention.

[0032] The markings of the various components in the accompanying drawings are as follows: 1: collecting funnel, 2: adsorption mechanism, 21: adsorption bin, 22: drive assembly, 23: first guide frame, 24: adsorption rod, 25: sliding frame, 26: connecting piece, 27: collecting frame, 3: sedimentation mechanism, 31: sedimentation bin, 32: fixing ring, 33: support rod, 34: reinforcing rod, 35: collecting tank, 36: first liquid outlet pipe, 4: closing mechanism, 41: second guide frame, 42: bidirectional screw rod, 43: sliding plate, 44: rack, 45: flat gear, 46: bevel gear, 5: disinfection mechanism, 51: servo motor, 52: reciprocating screw rod, 53: third guide frame, 54: disinfection lamp frame, 6: anti-blocking mechanism, 61: fixing plate, 62: cylinder, 63: telescopic sleeve, 64: scraper, 65: filter, 7: purification mechanism, 71: diverter pipe, 72: purifier, 73: second liquid outlet pipe. DETAILED DESCRIPTION

[0033] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0034] A cutting fluid continuous recovery and processing device, such as Figures 1-9 As shown, it includes a collecting funnel 1, an adsorption mechanism 2, a sedimentation mechanism 3, a disinfection mechanism 5, an anti-blocking mechanism 6 and a purification mechanism 7. The collecting funnel 1 is provided with an adsorption mechanism 2, the adsorption mechanism 2 is provided with a sedimentation mechanism 3, the sedimentation mechanism 3 is provided with a disinfection mechanism 5, the collecting funnel 1 is also provided with an anti-blocking mechanism 6, and the sedimentation mechanism 3 is also provided with a purification mechanism 7.

[0035] like Figure 1-Figure 3As shown, the adsorption mechanism 2 includes an adsorption bin 21, a driving assembly 22, a first guide frame 23, an adsorption rod 24, a sliding frame 25, a connecting piece 26 and a collecting frame 27. The lower side of the collecting funnel 1 is connected to the adsorption bin 21, the adsorption bin 21 is provided with a driving assembly 22, the right side of the adsorption bin 21 is connected to the first guide frame 23, the interior of the adsorption bin 21 is slidably connected to seven adsorption rods 24, the first guide frame 23 is slidably connected to the sliding frame 25, the driving assembly 22 includes a driving motor and a driving screw, and the adsorption A driving motor is connected to the left side of the front of the bin 21, and a driving screw is connected to the output shaft of the driving motor. The driving screw is rotatably connected to the adsorption bin 21, and the sliding frame 25 is threadedly connected to the driving screw. A connecting piece 26 is connected between the front sides of the adsorption rod 24, and a connecting piece 26 is also connected between the rear sides of the adsorption rod 24. The front connecting piece 26 is connected to the sliding frame 25, and the front connecting piece 26 is snap-fitted with the adsorption bin 21. A collection frame 27 is snap-fitted to the rear of the adsorption bin 21, and the collection frame 27 is located below the adsorption rod 24.

[0036] like Figure 1 、 Figure 2 and Figure 4 As shown, the sedimentation mechanism 3 includes a sedimentation bin 31, a fixing ring 32, a support rod 33, a reinforcing rod 34, a collecting tank 35 and a first liquid outlet pipe 36. The lower side of the adsorption bin 21 is connected to the sedimentation bin 31, and the middle part of the sedimentation bin 31 is connected to the fixing ring 32. Four support rods 33 are rotatably connected to the fixing ring 32. The lower parts of the support rods 33 are movably connected to the reinforcing rods 34. The reinforcing rods 34 are each provided with two bolts. The reinforcing rods 34 are rotatably connected to the sedimentation bin 31. The lower side of the sedimentation bin 31 is threadedly connected to the collecting tank 35. The collecting tank 35 is provided with multiple anti-slip strips for easy grasping and removal. The front side of the lower part of the sedimentation bin 31 is connected to the first liquid outlet pipe 36. The first liquid outlet pipe 36 is rotatably provided with a valve for easy control of opening and closing.

[0037] like Figure 2 and Figure 7 As shown, the disinfection mechanism 5 includes a servo motor 51, a reciprocating screw 52, ​​a third guide frame 53 and a disinfection lamp holder 54. The servo motor 51 is connected to the inner side of the upper part of the sedimentation bin 31, and the reciprocating screw 52 is connected to the output shaft of the servo motor 51. The reciprocating screw 52 is rotatably connected to the sedimentation bin 31. The third guide frame 53 is connected to the inner side of the front part of the sedimentation bin 31. The disinfection lamp holder 54 is slidably connected to the third guide frame 53, and the disinfection lamp holder 54 is threadedly connected to the reciprocating screw 52.

[0038] like Figure 1 、 Figure 2 and Figure 8As shown, the anti-blocking mechanism 6 includes a fixed plate 61, a cylinder 62, a telescopic sleeve 63, a scraper 64 and a filter 65. The left and right fixed plates 61 are connected to the upper rear side of the collecting funnel 1. The right fixed plate 61 is connected to the cylinder 62, and the left fixed plate 61 is connected to the telescopic sleeve 63. A scraper 64 is connected between the telescopic end of the cylinder 62 and the telescopic end of the telescopic sleeve 63. The filter 65 is connected to the upper side of the collecting funnel 1, and the scraper 64 is located above the filter 65.

[0039] like Figure 1 、 Figure 2 and Figure 9 As shown, the purification mechanism 7 includes a diverter pipe 71, a purifier 72 and a second liquid outlet pipe 73. The front side of the first liquid outlet pipe 36 is connected to the diverter pipe 71, and the left and right parts of the diverter pipe 71 are connected to the purifier 72. The second liquid outlet pipe 73 is connected between the lower sides of the purifier 72, and a valve is also rotatably provided on the second liquid outlet pipe 73.

[0040] The present invention uses an adsorption mechanism 2 to adsorb iron chips in the cutting fluid, a sedimentation mechanism 3 to precipitate the cutting fluid, a disinfection mechanism 5 to disinfect the cutting fluid, an anti-blocking mechanism 6 to filter the cutting fluid, and a purification mechanism 7 to purify the cutting fluid, thereby achieving a multi-stage treatment of the cutting fluid and ensuring the quality of the recovered cutting fluid. When using the present invention, first rotate and adjust the support rod 33 so that the support rod 33 is supported on the ground. After the support rod 33 is adjusted, tighten the bolts on the reinforcing rod 34 and fix the reinforcing rod 34 to the support rod 33 so that the reinforcing rod 34 strengthens the stability of the support rod 33, allowing the support rod 33 to stably support the sedimentation bin 31. Then, pour the cutting fluid into the collecting funnel 1, so that the cutting fluid enters the adsorption bin 21 from the collecting funnel 1, and the iron chips in the cutting fluid are adsorbed by the adsorption rod 24, thereby achieving the effect of separating the iron chips in the cutting fluid and ensuring the quality of the recovered cutting fluid. After the adsorption rod 24 has been used for a period of time, the cutting fluid can be stopped from entering, and the driving motor in the driving assembly 22 can be started again to drive the driving screw to rotate, so that the sliding frame 25 moves forward along the first guide frame 23, so that the front connecting piece 26 drives the adsorption rod 24 to move forward. When the adsorption rod 24 moves forward, the iron filings adsorbed on the surface are scraped off by the adsorption bin 21 to the collection frame 27. After the collection frame 27 is full, the collection frame 27 can be removed for cleaning, thereby playing the role of automatically cleaning the adsorption rod 24 and ensuring the effect of removing impurities from the cutting fluid. After passing through the adsorption bin 21, the cutting fluid flows into the sedimentation bin 31 for sedimentation, and the impurities are precipitated in the collection tank 35. The collection tank 35 can be removed regularly for cleaning, thereby playing the role of sedimentation treatment of the cutting fluid to further separate the impurities. After a certain period of sedimentation, the valve is turned to open to discharge the cutting fluid from the first liquid outlet pipe 36. The disinfection mechanism 5 of the present device can be used to disinfect the cutting fluid, so that the disinfection lamp holder 54 lights up. After the cutting fluid flows into the sedimentation bin 31, the servo motor 51 is started to drive the reciprocating screw 52 to rotate, so that the disinfection lamp holder 54 moves back and forth along the third guide frame 53, thereby playing a role in disinfecting and sterilizing the cutting fluid and preventing secondary contamination. The anti-blocking mechanism 6 of the present device can be used to prevent the collecting funnel 1 from being blocked. When the cutting fluid is poured into the collecting funnel 1, the filter 65 intercepts the larger impurities in the cutting fluid. When there are many impurities, the cylinder 62 can be started to drive the scraper 64 to move backward, scraping the impurities to the rear of the filter 65 to avoid clogging the filter 65, thereby playing a role in initially intercepting the larger impurities in the cutting fluid to speed up the subsequent processing efficiency. The purification mechanism 7 of the present device can be used to purify the cutting fluid. After being discharged from the first liquid outlet pipe 36, the cutting fluid enters the diversion pipe 71. The activated carbon in the purifier 72 adsorbs organic matter, pigments, odorous substances and certain heavy metal ions in the cutting fluid. Then, the valve is opened to discharge the cutting fluid from the second liquid outlet pipe 73, thereby purifying the cutting fluid and ensuring the quality of the recovered cutting fluid.

[0041] like Figure 2 、 Figure 5 and Figure 6 As shown, it also includes a closing mechanism 4, which includes a second guide frame 41, a two-way screw rod 42, a sliding plate 43, a rack 44, a flat gear 45 and a bevel gear 46. The second guide frame 41 is connected to the inner side of the upper rear part of the adsorption bin 21, and the two-way screw rod 42 is rotatably connected to the inner side of the upper front part of the adsorption bin 21. The left and right parts of the two-way screw rod 42 are threadedly connected to the sliding plate 43, and the rear of the sliding plate 43 is slidably connected to the second guide frame 41. The rear side of the left part of the front connecting piece 26 is connected to the rack 44. A rotating shaft is provided on the inner side of the upper part of the adsorption bin 21. The rotating shaft is located on the left part of the two-way screw rod 42, and a flat gear 45 is connected to the lower side of the rotating shaft. The flat gear 45 is meshed with the rack 44, and the upper part of the rotating shaft is connected to a bevel gear 46. The left side of the two-way screw rod 42 is also connected to a bevel gear 46, and the bevel gears 46 are meshed with each other.

[0042] By using the closing mechanism 4 of the present device, the adsorption bin 21 can be automatically closed. When the front connecting piece 26 moves forward, the rack 44 is driven to move forward, so that the rack 44 engages with the flat gear 45, drives the rotating shaft to rotate, and the bevel gear 46 engages, drives the bidirectional screw rod 42 to rotate, and causes the sliding plate 43 to move along the second guide frame 41 and close to each other, thereby automatically closing the adsorption bin 21 to facilitate cleaning of the adsorption rod 24.

[0043] Although the present disclosure has been shown and described with reference to certain exemplary embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made to the present disclosure without departing from the spirit and scope of the present disclosure as defined by the appended claims and their equivalents. Therefore, the scope of the present disclosure should not be limited to the above-described embodiments, but should be determined not only by the appended claims but also by the equivalents of the appended claims.

Claims

1. A cutting fluid continuous recovery and treatment device, characterized by: The invention comprises a collecting funnel (1), an adsorption mechanism (2), a precipitation mechanism (3), a disinfection mechanism (5), an anti-blocking mechanism (6) and a purification mechanism (7). The collecting funnel (1) is provided with an adsorption mechanism (2) capable of adsorbing iron chips, the adsorption mechanism (2) is provided with a precipitation mechanism (3) capable of precipitating impurities in the cutting fluid, the precipitation mechanism (3) is provided with a disinfection mechanism (5) capable of disinfecting the cutting fluid, the collecting funnel (1) is further provided with an anti-blocking mechanism (6) capable of filtering the cutting fluid, and the precipitation mechanism (3) is further provided with a purification mechanism (7) capable of purifying the cutting fluid.

2. A cutting fluid continuous recovery and treatment device according to claim 1, characterized in that: The adsorption mechanism (2) comprises an adsorption bin (21), a driving assembly (22), a first guide frame (23), an adsorption rod (24), a sliding frame (25), a connecting piece (26) and a collecting frame (27). The lower side of the collecting funnel (1) is connected to the adsorption bin (21), the adsorption bin (21) is provided with a driving assembly (22), the right side of the adsorption bin (21) is connected to the first guide frame (23), a plurality of adsorption rods (24) are slidably connected inside the adsorption bin (21), the sliding frame (25) is slidably connected to the first guide frame (23), the front sides of the adsorption rods (24) are connected with connecting pieces (26), and the adsorption bin (21) is provided with a connecting piece (26). A connecting piece (26) is also connected between the rear sides of the rods (24), the connecting piece (26) on the front side is connected to the sliding frame (25), the connecting piece (26) on the front side is engaged with the adsorption bin (21), and a collecting frame (27) is engaged with the rear part of the adsorption bin (21), and the collecting frame (27) is located below the adsorption rod (24). When the driving assembly (22) is started, the sliding frame (25) moves forward along the first guide frame (23), so that the connecting piece (26) on the front side drives the adsorption rod (24) to move forward. When the adsorption rod (24) moves forward, the iron filings adsorbed on the surface are scraped by the adsorption bin (21) into the collecting frame (27).

3. A cutting fluid continuous recovery and treatment device according to claim 2, characterized in that: The driving assembly (22) includes a driving motor and a driving screw. The driving motor is connected to the left side of the front of the adsorption bin (21). The driving screw is connected to the output shaft of the driving motor. The driving screw is rotatably connected to the adsorption bin (21). The sliding frame (25) is threadedly connected to the driving screw.

4. A cutting fluid continuous recovery and treatment device according to claim 2, characterized in that: The sedimentation mechanism (3) comprises a sedimentation bin (31), a fixing ring (32), a support rod (33), a reinforcing rod (34), a collection tank (35) and a first liquid outlet pipe (36). The lower side of the adsorption bin (21) is connected to the sedimentation bin (31), the middle part of the sedimentation bin (31) is connected to the fixing ring (32), a plurality of support rods (33) are rotatably connected to the fixing ring (32), the lower parts of the support rods (33) are movably connected to the reinforcing rods (34), a plurality of bolts are provided on the reinforcing rods (34), and the reinforcing rods (34) are rotatably connected to the sedimentation bin (31). The lower side of the sedimentation bin (31) is threadedly connected to the collection tank (35), and the front side of the lower part of the sedimentation bin (31) is connected to the first liquid outlet pipe (36). The cutting fluid flows into the sedimentation bin (31) after passing through the adsorption bin (21) to be precipitated, and impurities are precipitated in the collection tank (35).

5. A cutting fluid continuous recovery and treatment device according to claim 4, characterized in that: The collecting tank (35) is provided with a plurality of anti-slip strips.

6. The cutting fluid continuous recovery and treatment device according to claim 4, characterized in that: A valve is rotatably provided on the first liquid outlet pipe (36).

7. A cutting fluid continuous recovery and treatment device according to claim 4, characterized in that: The mechanism (5) comprises a servo motor (51), a reciprocating screw rod (52), a third guide frame (53) and a disinfection lamp frame (54). The servo motor (51) is connected to the inner side of the upper part of the sedimentation bin (31). The reciprocating screw rod (52) is connected to the output shaft of the servo motor (51). The reciprocating screw rod (52) is rotatably connected to the sedimentation bin (31). The inner side of the front part of the sedimentation bin (31) is connected to the third guide frame (53). The disinfection lamp frame (54) is slidably connected to the third guide frame (53). The disinfection lamp frame (54) is threadedly connected to the reciprocating screw rod (52). When the disinfection lamp frame (54) is turned on, the cutting fluid flows into the sedimentation bin (31), and the servo motor (51) is started to drive the reciprocating screw rod (52) to rotate, so that the disinfection lamp frame (54) moves back and forth up and down along the third guide frame (53).

8. The cutting fluid continuous recovery and treatment device according to claim 7, characterized in that: The anti-blocking mechanism (6) comprises a fixed plate (61), a cylinder (62), a telescopic sleeve (63), a scraper (64) and a filter (65). The upper side of the rear portion of the collecting funnel (1) is connected to two fixed plates (61) on the left and right sides. The fixed plate (61) on the right side is connected to the cylinder (62), and the fixed plate (61) on the left side is connected to the telescopic sleeve (63). A scraper (64) is connected between the telescopic end of the cylinder (62) and the telescopic end of the telescopic sleeve (63). The upper side of the collecting funnel (1) is connected to the filter (65). The scraper (64) is located above the filter (65). When the cutting fluid is poured into the collecting funnel (1), the filter (65) intercepts larger impurities in the cutting fluid. When there are more impurities, the cylinder (62) can be started to drive the scraper (64) to move backward to scrape the impurities to the rear of the filter (65) to avoid clogging the filter (65).

9. A cutting fluid continuous recovery and treatment device according to claim 8, characterized in that: The purification mechanism (7) includes a shunt pipe (71), a purifier (72) and a second liquid outlet pipe (73). The front side of the first liquid outlet pipe (36) is connected to the shunt pipe (71). The left and right parts of the shunt pipe (71) are both connected to the purifier (72). The lower side of the purifier (72) is connected to the second liquid outlet pipe (73). A valve is also rotatably provided on the second liquid outlet pipe (73). After the cutting fluid is discharged from the first liquid outlet pipe (36), it enters the shunt pipe (71). The activated carbon in the purifier (72) adsorbs organic matter, pigments, odor substances and certain heavy metal ions in the cutting fluid. After that, the valve is opened to discharge the cutting fluid from the second liquid outlet pipe (73).

10. The cutting fluid continuous recovery and treatment device according to claim 9, characterized in that: The invention also includes a closing mechanism (4), which includes a second guide frame (41), a bidirectional screw rod (42), a sliding plate (43), a rack (44), a flat gear (45) and a bevel gear (46). The inner side of the upper rear portion of the adsorption chamber (21) is connected to the second guide frame (41), the inner side of the upper front portion of the adsorption chamber (21) is rotatably connected to the bidirectional screw rod (42), the left and right parts of the bidirectional screw rod (42) are both threadedly connected to the sliding plate (43), the rear part of the sliding plate (43) is slidably connected to the second guide frame (41), the rear side of the left part of the front connecting piece (26) is connected to the rack (44), the upper inner side of the adsorption chamber (21) is rotatably connected to the second guide frame (41), the left and right parts of the front connecting piece (26) are ... A rotating shaft is provided, the rotating shaft is located at the left part of the bidirectional screw rod (42), the lower side of the rotating shaft is connected with a flat gear (45), the flat gear (45) is meshed with the rack (44), the upper part of the rotating shaft is connected with a bevel gear (46), the left side of the bidirectional screw rod (42) is also connected with a bevel gear (46), the bevel gears (46) are meshed with each other, and when the connecting member (26) on the front side moves forward, the rack (44) is driven to move forward, so that the rack (44) and the flat gear (45) are meshed and moved, the rotating shaft is driven to rotate, so that the bevel gear (46) is meshed and moved, and the bidirectional screw rod (42) is driven to rotate, so that the sliding plate (43) moves along the second guide frame (41) to move close to each other.

Citation Information

Cited By

  • Cutting fluid recycling treatment system and purification recovery method

    CN121342287B