Driving module multi-station synchronous CNC machining tool and using method thereof

By designing a multi-station synchronous CNC machining tool and utilizing a flow guiding and settling structure and an automated drive mechanism, the problem of difficult separation between coolant waste and debris was solved, enabling rapid recycling and reuse of coolant and improving processing efficiency.

CN120901756AInactive Publication Date: 2025-11-07WUXI HEBANG METAL PROD
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Patent Information

Application Number
CN202511358226.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-23
Publication Date
2025-11-07
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing machine tools cannot clean up coolant waste and machining debris in real time during processing, resulting in downtime for cleaning and affecting efficiency. Furthermore, the coolant waste and debris are mixed and difficult to separate, requiring a large number of storage containers. The coolant cannot be quickly recycled and reused, and subsequent cleaning is cumbersome.

Method used

A multi-station synchronous CNC machining center for driving modules was designed, including components such as machine tool support, load-bearing support, recovery frame, flow guide support, enclosed support cylinder and load-bearing side cylinder. The waste liquid and debris are initially separated through the flow guide and sedimentation structure, and the drive mechanism is used for automated recycling and reuse.

Benefits of technology

It enables real-time separation and recycling of cooling waste liquid and processing debris, reducing downtime, simplifying the cleaning process, and lowering the cost of using and storing coolant.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a driving module multi-station synchronous CNC machining tool and a using method thereof, and relates to the technical field of machining tool structures, the driving module multi-station synchronous CNC machining tool comprises a machine tool support, a bearing support, a recovery carrying frame, a flow guide carrying seat, a closed supporting cylinder and a bearing side cylinder; an assembling open groove is formed in the side face of the machine tool support. The bearing support is arranged on the inner side of the machine tool support; the recycling carrying frame is arranged on the inner side of the assembling clamping groove. The flow guide carrying seat is arranged on the inner side of the machine tool support; the closed supporting cylinder is arranged on the inner side of the rotating carrying groove. The bearing side cylinder is installed at one end of the recovery bearing cylinder, and a rotating rocker is arranged on the side face of the bearing side cylinder. A small amount of waste liquid borne by the inner side of a flow guide carrying seat is discharged through a discharging open groove, and a recycling screw continuously rotates to push and recycle chippings borne by the inner side of the flow guide carrying seat; the problems that most machining tools cannot clean and recover generated cooling waste liquid and machining chippings in real time, and the overall machining speed can be affected by shutdown cleaning and recovery are solved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of machining tool structure, and particularly relates to a driving module multi-station synchronous CNC machining tool and a use method thereof. BACKGROUND

[0002] As a core component for improving driving safety and driving comfort, an automobile auxiliary driving system has strict requirements on machining precision, consistency and production efficiency for its core module (such as a sensor mounting seat, a control unit shell, a high-precision transmission component and the like). Such a module usually has a multi-feature and complex cavity structure, and is made of light and high-strength materials such as aluminum alloy and magnesium alloy. The module needs to be machined through CNC machining to realize a composite process of milling, drilling and boring with micron-level precision. A certain amount of cooling waste liquid and machining chips are generated during machining, and the cooling liquid and machining chips need to be separated and recycled for reuse.

[0003] Based on the above, most machining tools cannot clean and recycle the generated cooling waste liquid and machining chips in real time during the machining process. Stopping for cleaning and recycling will affect the overall rate of machining. Meanwhile, the cooling waste liquid and machining chips are difficult to separate to a certain extent during recycling. A large amount of recycling storage containers are needed for the mixed waste liquid. The cooling waste liquid cannot be quickly recycled and reused. The cooling waste liquid and machining chips need to be cleaned in a complicated and large amount subsequently. SUMMARY

[0004] Therefore, the present application provides a driving module multi-station synchronous CNC machining tool and a use method thereof, which has a tool support, a bearing support, a recycling carrier frame, a flow guide carrier, a closed support cylinder and a bearing side cylinder, so as to solve the problems that most machining tools cannot clean and recycle the generated cooling waste liquid and machining chips in real time during the machining process. Stopping for cleaning and recycling will affect the overall rate of machining. Meanwhile, the cooling waste liquid and machining chips are difficult to separate to a certain extent during recycling. A large amount of recycling storage containers are needed for the mixed waste liquid. The cooling waste liquid cannot be quickly recycled and reused. The cooling waste liquid and machining chips need to be cleaned in a complicated and large amount subsequently.

[0005] The present application provides a driving module multi-station synchronous CNC machining tool and a use method thereof, which has a tool support, a bearing support, a recycling carrier frame, a flow guide carrier, a closed support cylinder and a bearing side cylinder, so as to solve the problems that most machining tools cannot clean and recycle the generated cooling waste liquid and machining chips in real time during the machining process. Stopping for cleaning and recycling will affect the overall rate of machining. Meanwhile, the cooling waste liquid and machining chips are difficult to separate to a certain extent during recycling. A large amount of recycling storage containers are needed for the mixed waste liquid. The cooling waste liquid cannot be quickly recycled and reused. The cooling waste liquid and machining chips need to be cleaned in a complicated and large amount subsequently. The machine tool support is provided with an assembly slot on the side, assembly clamping grooves on both sides, and an installation support frame on the side; the load-bearing support is arranged on the inner side of the machine tool support, and is provided with a guide support on the top, a shielding support frame on the side, and a processing load carrier on the top; the recycling load frame is arranged on the inner side of the assembly clamping groove, and is provided with a recycling slot on the side, an assembly support column on the side, and a flow guide partition plate on the inner side; the flow guide carrier is arranged on the inner side of the machine tool support, and is provided with flow guide side grooves on both sides, an assembly load slot on the top, a recycling load cylinder on the inner side, a sedimentation slot on the top, and a rotating load slot on the inner side; the closed support cylinder is rotatably arranged on the inner side of the rotating load slot, and is provided with an assembly side cylinder on the side and an outer ratchet block outside; the load-bearing side cylinder is arranged at one end of the recycling load cylinder, and is provided with a rotating rocker on the side, a driving gear outside, a discharge slot on the side, and a closed support rotatably arranged on the inner side.

[0006] Further, the machine tool support is further provided with a positioning support, a shielding side frame and a processing machine head on the side; the positioning support is fixedly arranged on the inner side of the installation support frame, the shielding side frame is arranged on the side of the positioning support, and the processing machine head is arranged on the side of the machine tool support.

[0007] Further, the load-bearing support is further provided with an assembly sliding groove, an adjusting motor, an adjusting screw rod and a threaded support on the side; the assembly sliding groove is arranged on the side of the load-bearing support, the adjusting motor is fixedly arranged on the inner side of the assembly sliding groove, the adjusting screw rod is rotatably arranged on the inner side of the assembly sliding groove, and the threaded support is sleeved on the outer side of the adjusting screw rod.

[0008] Further, the recycling load frame is further provided with a filter partition plate and an extraction side pipe on the side; the filter partition plate is fixedly arranged on the side of the flow guide partition plate, and the extraction side pipe is fixedly arranged on the side of the recycling load frame.

[0009] Further, the recycling load cylinder is further provided with a positioning load slot and a shielding side plate on the side; the positioning load slot is arranged on the side of the recycling load cylinder, and the shielding side plate is fixedly arranged on the side of the recycling load cylinder.

[0010] Further, the closed support cylinder is further provided with a butt joint slot, a recycling screw rod and an inner ratchet block on the side; the butt joint slot is arranged on the top of the closed support cylinder, the recycling screw rod is rotatably arranged on the inner side of the closed support cylinder, and the inner ratchet block is fixedly sleeved on one end of the recycling screw rod.

[0011] Further, the bearing side cylinder side is further provided with: dress support, drive motor, drive gear block and drive gear chain; Dress support is fixedly arranged at the top of the bearing side cylinder, the drive motor is fixedly installed on the top of the dress support, the drive gear block is fixedly sleeved on the outside of the drive motor rotating shaft, and the drive gear chain is sleeved on the outside of the drive gear block.

[0012] Further, the closed support side is further provided with: bearing support cylinder, transmission gear ring, drive support shaft and transmission gear block; The bearing support cylinder is fixedly arranged in the inside of the closed support, the transmission gear ring is fixedly sleeved on the outside of the bearing support cylinder, the drive support shaft is rotatably arranged in the inside of the bearing support cylinder, and the transmission gear block is fixedly sleeved on the outside of the drive support shaft.

[0013] The driving module multi-station synchronous CNC machining machine tool and the using method thereof have the following beneficial effects The driving module multi-station synchronous CNC machining machine tool and the using method thereof have the following beneficial effects The workpiece to be machined is stably fixed on the machining carrier, and the screw support moves as a whole with the machining carrier by cooperating with the adjusting motor and the adjusting screw rod, so that the worker can easily take and place the workpiece above the screw support, and the workpiece is adjusted to be directly below the machining head, so that the machining head can accurately machine the workpiece, and the machining error caused by position deviation is reduced. The waste liquid and debris generated during machining are guided to the flow guide carrier by the guide support and the shielding frame, and then the mixture is collected by the flow guide carrier cooperating with the recovery cylinder, so that the waste liquid flows to other parts of the machine tool and the debris scatters everywhere. The settlement slot in the inside of the recovery cylinder can concentrate the debris and separate the debris and the waste liquid, and the flow guide side groove of the flow guide carrier cooperates with the recovery slot to guide the preliminarily treated waste liquid into the recovery carrier by overflow operation, so that the separation process is smoother without waiting for all the mixture to accumulate before processing. The flow guide partition plate in the recovery carrier can further deposit the preliminarily treated waste liquid, the filter partition plate filters out the clean cooling liquid, and finally the cooling liquid is extracted through the extraction side pipe for continuous use, so that the use cost of the cooling liquid is greatly saved without frequent replacement of new cooling liquid. The drive motor is started to drive the transmission gear block to rotate through the drive gear block and the drive gear chain, so that the transmission gear block cooperates with the drive support shaft to rotate the recovery screw rod, the recovery screw rod drives the closed support cylinder to rotate through the inner ratchet block and the outer ratchet block, and the settlement slot is closed, thereby reducing the workload of subsequent cleaning. Rotating the rocker, through the drive gear, transmission gear ring to drive the closed support rotation, can let the remaining small amount of waste liquid in the flow guide carrier through the discharge slot, without manual labor to clean the residual waste liquid, then the recovery screw reverse rotation can smoothly push the debris in the flow guide carrier away, avoid the waste liquid flow out when recycling debris. BRIEF DESCRIPTION OF DRAWINGS

[0014] In order to make the technical solutions of the embodiments of the present application more clear, the drawings of the embodiments will be briefly introduced as follows.

[0015] The drawings described below only relate to some embodiments of the present application, but not limit the present application.

[0016] In the drawings: Figure 1 The structure schematic diagram of the overall component assembly of the machining tool device according to the embodiment of the present application is shown in the front view; Figure 2 The structure schematic diagram of the overall component assembly of the machining tool device according to the embodiment of the present application is shown in the side view; Figure 3 The structure schematic diagram of the overall component assembly of the tool support according to the embodiment of the present application is shown in the split setting; Figure 4 The structure schematic diagram of the overall component assembly of the bearing support according to the embodiment of the present application is shown in the split setting; Figure 5 The structure schematic diagram of the overall component assembly of the recovery carrier frame according to the embodiment of the present application is shown in the split setting; Figure 6 The structure schematic diagram of the overall component assembly of the flow guide carrier according to the embodiment of the present application is shown in the split setting; Figure 7 The structure schematic diagram of the overall component assembly of the closed support cylinder according to the embodiment of the present application is shown in the split setting; Figure 8 The structure schematic diagram of the overall component assembly of the bearing side cylinder according to the embodiment of the present application is shown in the split setting.

[0017] List of reference signs 1, tool support; 101, assembly slot; 102, assembly slot; 103, installation support frame; 104, positioning support; 105, shielding side frame; 106, machining tool head; 2, bearing support; 201, assembly sliding groove; 202, adjusting motor; 203, adjusting screw; 204, threaded support; 205, guide support; 206, shielding support frame; 207, adjusting support frame; 208, machining carrier; 3, recovery carrier frame; 301, recovery slot; 302, assembly support; 303, diversion baffle; 304, filter baffle; 305, extraction side tube; 4, diversion carrier; 401, diversion side groove; 402, assembly carrier groove; 403, recovery carrier cylinder; 404, settling slot; 405, rotating carrier groove; 406, positioning carrier groove; 407, shielding side plate; 5, closed support cylinder; 501, butt joint slot; 502, recovery screw; 503, inner ratchet block; 504, assembly side cylinder; 505, outer ratchet block; 6, bearing side cylinder; 601, mounting support; 602, drive motor; 603, drive tooth block; 604, drive tooth chain; 605, rotating rocker; 606, drive gear; 607, discharge slot; 608, closed support; 6081, bearing support cylinder; 6082, transmission gear ring; 6083, drive support shaft; 6084, transmission tooth block. DETAILED DESCRIPTION

[0018] Embodiment: please refer to Figures 1 to 8 : The application provides a driving module multi-station synchronous CNC machining tool and a use method thereof, which comprises a tool support 1, a bearing support 2, a recovery carrier frame 3, a diversion carrier 4, a closed support cylinder 5 and a bearing side cylinder 6. The machine tool support 1 has an assembly slot 101 on its side and assembly slots 102 on both sides. A mounting frame 103 is provided on the side of the machine tool support 1. A load-bearing support 2 is located inside the machine tool support 1. A guide support 205 is located on the top of the load-bearing support 2. A shielding frame 206 is provided on the side of the guide support 205. A machining carrier 208 is located on the top of the guide support 205. Adjustment frames 207 are provided on both sides of the machining carrier 208. A recovery frame 3 is located inside the assembly slots 102. A recovery slot 301 is located on the side of the recovery frame 3. An assembly support column 302 is provided on the side of the recovery frame 3. A flow guide baffle 303 is provided inside the recovery frame 3. A flow guide carrier 4 is located inside the machine tool support 1. The flow guide carrier 4 has openings on both sides... A flow guide side channel 401 is provided, and an assembly channel 402 is provided on the top of the flow guide carrier 4. A recovery carrier 403 is provided inside the assembly channel 402. A settling channel 404 is provided on the top of the recovery carrier 403. A rotating channel 405 is provided inside the recovery carrier 403. A closed support 5 is rotatably provided inside the rotating channel 405. An assembly side cylinder 504 is provided on the side of the closed support 5. An outer ratchet block 505 is sleeved on the outside of the assembly side cylinder 504. A bearing side cylinder 6 is installed at one end of the recovery carrier 403. A rotating rocker arm 605 is rotatably provided on the side of the bearing side cylinder 6. A drive gear 606 is sleeved on the outside of the rotating rocker arm 605. A discharge channel 607 is provided on the side of the bearing side cylinder 6. A closed support 608 is rotatably provided inside the discharge channel 607.

[0019] Example 1: As Figures 3 to 8 As shown, the closed support cylinder 5 also has the following on its side: a docking slot 501, a recovery screw 502, and an inner ratchet block 503; the docking slot 501 is opened at the top of the closed support cylinder 5, the recovery screw 502 is rotatably disposed inside the closed support cylinder 5, and the inner ratchet block 503 is fixedly sleeved on one end of the recovery screw 502; the bearing side cylinder 6 also has the following on its side: a mounting bracket 601, a drive motor 602, a drive gear block 603, and a drive gear chain 604; the mounting bracket 601 is fixedly disposed at the top of the bearing side cylinder 6, the drive motor 602 is fixedly installed at the top of the mounting bracket 601, the drive gear block 603 is fixedly sleeved on the outside of the rotating shaft of the drive motor 602, and the drive gear chain 604 is sleeved on the drive gear block 603. On the outer side, the closed support 608 is also provided with: a bearing support cylinder 6081, a transmission gear ring 6082, a drive shaft 6083, and a transmission gear block 6084; the bearing support cylinder 6081 is fixedly installed on the inner side of the closed support 608, the transmission gear ring 6082 is fixedly sleeved on the outer side of the bearing support cylinder 6081, the drive shaft 6083 is rotatably installed on the inner side of the bearing support cylinder 6081, and the transmission gear block 6084 is fixedly sleeved on the outer side of the drive shaft 6083; the drive motor 602, in cooperation with the drive gear block 603, causes the drive gear chain 604 to drive the transmission gear block 6084 to rotate, so that the transmission gear block 6084, in cooperation with the drive shaft 6083, can drive the recovery screw 502 to rotate.

[0020] Example 2: Based on Example 1, as follows Figures 2 to 8 As shown, the side of the machine tool support 1 is also provided with: a positioning support 104, a shielding side frame 105, and a machining head 106; the positioning support 104 is fixedly installed inside the mounting frame 103, the shielding side frame 105 is installed on the side of the positioning support 104, and the machining head 106 is installed on the side of the machine tool support 1; the side of the load-bearing support 2 is also provided with: an assembly slide 201, an adjusting motor 202, an adjusting screw 203, and a threaded support 204; the assembly slide 201 is opened on the side of the load-bearing support 2, the adjusting motor 202 is fixedly installed inside the assembly slide 201, the adjusting screw 203 is rotatably installed inside the assembly slide 201, and the threaded support 204. The thread support 204 is sleeved on the outside of the adjusting screw 203; the side of the recovery frame 3 is also provided with a filter baffle 304 and an extraction side pipe 305; the filter baffle 304 is fixedly installed on the side of the guide baffle 303, and the extraction side pipe 305 is fixedly installed on the side of the recovery frame 3; the side of the recovery cylinder 403 is also provided with a positioning groove 406 and a shielding side plate 407; the positioning groove 406 is opened on the side of the recovery cylinder 403, and the shielding side plate 407 is fixedly installed on the side of the recovery cylinder 403; by adjusting the motor 202 in conjunction with the adjusting screw 203, the thread support 204 can drive the processing carrier 208 to move and adjust as a whole.

[0021] Specific use and role of the embodiment: in the application, when in use, the workpiece to be processed is fixed and carried by the processing carrier 208, the motor 202 is adjusted to cooperate with the adjusting screw rod 203 to drive the threaded support 204 to move and adjust the whole processing carrier 208, the workpiece carried by the processing carrier 208 is arranged at the bottom of the processing head 106, the processing head 106 processes the carried workpiece, the guide support 205 cooperates with the shielding frame 206 to guide the waste liquid and processing debris generated by the processing to the upper side of the flow guide carrier 4, the flow guide carrier 4 cooperates with the recovery carrier cylinder 403 to carry the mixture of waste liquid and processing debris, the debris is concentrated and deposited in the inside of the recovery carrier cylinder 403 through the sedimentation slot 404, the flow guide carrier 4 cooperates with the recovery slot 301 to make the overflowed waste liquid after the preliminary treatment arranged in the inside of the recovery carrier frame 3 through the flow guide side slot 401, the recovery carrier frame 3 cooperates with the flow guide partition plate 303 to further deposit and process the waste liquid after the preliminary treatment, the clean cooling liquid is extracted through the filter partition plate 304 and the extraction side pipe 304, at the same time, the driving motor 602 cooperates with the driving gear block 603 to drive the driving gear chain 604 to drive the transmission gear block 6084 to rotate, the transmission gear block 6084 cooperates with the driving shaft 6083 to drive the recovery screw rod 502 to rotate, the recovery screw rod 502 drives the closed support cylinder 5 to rotate through the inner ratchet block 503 and the outer ratchet block 505, the closed support cylinder 5 closes the sedimentation slot 404, the rotary rocker 605 drives the closed support 608 to rotate through the driving gear 606 and the transmission gear ring 6082, a small amount of waste liquid carried in the inside of the flow guide carrier 4 is discharged through the discharge slot 607, at the same time, the driving motor 602 cooperates with the driving gear block 603 to drive the driving gear chain 604 to drive the transmission gear block 6084 to rotate, the transmission gear block 6084 cooperates with the driving shaft 6083 to drive the recovery screw rod 502 to rotate in the opposite direction, the recovery screw rod 502 continuously rotates to push and recover the debris carried in the inside of the flow guide carrier 4.

Claims

1. A driving module multi-station synchronous CNC machining tool, which comprises the following main components: a tool base (1), a bearing base (2), a recycling carrier frame (3), a flow guide carrier (4), a closed support cylinder (5) and a bearing side cylinder (6). The machine tool support (1) is provided with an assembly slot (101) on the side, assembly clamping grooves (102) are provided on both sides of the machine tool support (1), and a mounting frame (103) is arranged on the side of the machine tool support (1); characterized in that, The bearing base (2) is arranged inside the tool base (1), and the top of the bearing base (2) is provided with a guide support (205), the side of the guide support (205) is provided with a shielding support frame (206), the top of the guide support (205) is provided with a machining carrier (208), and the two sides of the machining carrier (208) are provided with adjusting support frames (207); the recycling carrier frame (3) is arranged inside the assembly clamping groove (102), the side of the recycling carrier frame (3) is provided with a recycling slot (301), the side of the recycling carrier frame (3) is provided with an assembly support column (302), and the inside of the recycling carrier frame (3) is provided with a flow guide partition plate (303); the flow guide carrier (4) is arranged inside the tool base (1), the two sides of the flow guide carrier (4) are provided with flow guide side grooves (401), the top of the flow guide carrier (4) is provided with an assembly carrier groove (402), the inside of the assembly carrier groove (402) is provided with a recycling carrier cylinder (403), the top of the recycling carrier cylinder (403) is provided with a sedimentation slot (404), and the inside of the recycling carrier cylinder (403) is provided with a rotating carrier groove (405); the closed support cylinder (5) is arranged inside the rotating carrier groove (405), the side of the closed support cylinder (5) is provided with an assembly side cylinder (504), and the outside of the assembly side cylinder (504) is sleeved with an external ratchet block (505); the bearing side cylinder (6) is installed at one end of the recycling carrier cylinder (403), the side of the bearing side cylinder (6) is provided with a rotating rocker (605), the outside of the rotating rocker (605) is sleeved with a driving gear (606), the side of the bearing side cylinder (6) is provided with a discharge slot (607), and the inside of the discharge slot (607) is provided with a closed support (608).

2. A multi-station synchronized CNC machine tool with driving module according to claim 1, characterized in that: The side of the tool base (1) is also provided with a positioning support (104), a shielding side frame (105) and a machining head (106); the positioning support (104) is fixedly arranged inside the mounting support frame (103), the shielding side frame (105) is arranged on the side of the positioning support (104), and the machining head (106) is arranged on the side of the tool base (1).

3. The multi-station synchronized CNC machine tool with driving module according to claim 1, characterized in that: The side of the bearing base (2) is also provided with an assembly sliding groove (201), an adjusting motor (202), an adjusting screw rod (203) and a threaded support (204); the assembly sliding groove (201) is arranged on the side of the bearing base (2), the adjusting motor (202) is fixedly arranged inside the assembly sliding groove (201), the adjusting screw rod (203) is rotatably arranged inside the assembly sliding groove (201), and the threaded support (204) is sleeved outside the adjusting screw rod (203).

4. The multi-station synchronized CNC machine tool with driving module according to claim 1, characterized in that: The side of the recycling carrier frame (3) is also provided with a filter partition plate (304) and a suction side pipe (305); the filter partition plate (304) is fixedly arranged on the side of the flow guide partition plate (303), and the suction side pipe (305) is fixedly arranged on the side of the recycling carrier frame (3).

5. The multi-station synchronized CNC machine tool with driving module according to claim 1, characterized in that: The recycling cylinder (403) side is further provided with: positioning load tank (406) and shielding side plate (407); positioning load tank (406) is opened in recycling cylinder (403) side, shielding side plate (407) is fixedly arranged on the side of recycling cylinder (403).

6. The multi-station synchronized CNC machine tool with driving module according to claim 1, characterized in that: The closed support cylinder (5) side is further provided with: butt joint slot (501), recycling screw (502) and inner ratchet block (503); butt joint slot (501) is opened at the top of closed support cylinder (5), recycling screw (502) is rotatably arranged in the inner side of closed support cylinder (5), and inner ratchet block (503) is fixedly sleeved on one end of recycling screw (502).

7. The multi-station synchronized CNC machine tool with driving module according to claim 1, characterized in that: The bearing side cylinder (6) side is further provided with: mounting support (601), driving motor (602), driving tooth block (603) and driving tooth chain (604); mounting support (601) is fixedly arranged on the top of bearing side cylinder (6), driving motor (602) is fixedly installed on the top of mounting support (601), driving tooth block (603) is fixedly sleeved on the outer side of the rotating shaft of driving motor (602), and driving tooth chain (604) is sleeved on the outer side of driving tooth block (603).

8. The multi-station synchronized CNC machine tool with driving module according to claim 1, characterized in that: The closed support (608) side is further provided with: bearing support cylinder (6081), transmission gear ring (6082), driving support shaft (6083) and transmission gear block (6084); bearing support cylinder (6081) is fixedly arranged on the inner side of closed support (608), transmission gear ring (6082) is fixedly sleeved on the outer side of bearing support cylinder (6081), driving support shaft (6083) is rotatably arranged on the inner side of bearing support cylinder (6081), and transmission gear block (6084) is fixedly sleeved on the outer side of driving support shaft (6083).

9. The method of using a multi-station synchronized CNC machine tool having a driving module according to any one of claims 1-8, wherein: The use steps are as follows: First, the automobile auxiliary driving module workpiece to be processed is placed on the processing carrier (208), and is fixed to prevent displacement during processing, then the adjusting motor (202) is started, the motor drives the adjusting lead screw (203) to rotate, the threaded support (204) sleeved on the lead screw moves the processing carrier (208) as a whole, until the workpiece on the carrier is just below the processing head (106), then the processing head (106) can be started to process the workpiece; After that, waste liquid and debris will be generated during processing, the guide support (205) and the shielding support frame (206) of the machine tool will block these waste liquid and debris, so that they are not splashed, and guide them to flow onto the flow guide carrier (4) below, the flow guide carrier (4) will collect the mixture of waste liquid and debris through deposition into the recycling cylinder (403) for temporary storage; When the mixture of waste liquid and debris is in the recycling cylinder (403), the debris will slowly sink because of the greater specific gravity, and will be concentrated in the settling slot (404) on the inner side of the cylinder, and the remaining waste liquid after preliminary separation will slowly overflow, flow along the flow guide side groove (401) of the flow guide carrier (4) to the recycling slot (301), and finally flow into the recycling carrier (3); The waste liquid flowing into the recycling carrier frame (3) will further precipitate through the flow guide partition plate (303) in the frame, so that the residual small debris inside also sinks to the bottom. After that, the clean cooling liquid will be filtered through the filter partition plate (304), and then the clean cooling liquid will be extracted through the extraction side pipe (304) to continue to be used in processing. Before recycling the debris, the driving motor (602) is started. The motor drives the driving tooth block (603) to rotate, which in turn drives the driving tooth chain (604) to rotate. The tooth chain drives the transmission tooth block (6084) to rotate, which drives the recycling screw rod (502) to rotate through the driving shaft (6083). The recycling screw rod (502) drives the closed support cylinder (5) to rotate through the inner ratchet block (503) and the outer ratchet block (505), blocking the sedimentation slot (404). Then rotate the rocker (605) to drive the closed support (608) to rotate through the driving gear (606) and the transmission tooth ring (6082), allowing the remaining small amount of waste liquid in the flow guide carrier (4) to flow out from the discharge slot (607). Finally, after discharging the residual waste liquid, the driving motor (602) is started again to drive the driving tooth block (603) and the driving tooth chain (604) to rotate the transmission tooth block (6084), which drives the recycling screw rod (502) to rotate in the opposite direction through the driving shaft (6083). The continuous rotation of the recycling screw rod (502) can push the debris in the flow guide carrier (4) out, completing the recycling of the debris.