An end face gear machining tool cooling and lubricating device
Through the collaborative design of the control components of the cooling lubricating device of the end-face gear processing tool and the nozzle components, the problem of poor splashing and cooling effects of lubricating liquid is solved, efficient utilization of lubricating liquid and clean environment is achieved, maintenance costs are reduced, and processing efficiency is improved.
Patent Information
- Application Number
- CN202510669784.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2045-05-23
AI Technical Summary
In the prior art, cooling lubricant is prone to splash during tool processing, resulting in poor cooling effect and unclean environment, and complex adjustment, which increases the cost of equipment and manual maintenance.
A cooling and lubrication device for end-face gear processing tool is designed. Through the coordinated cooperation between the control assembly and the nozzle assembly, the movement and spray angle of the nozzle assembly are controlled by hydraulic pressure, to limit the splash of lubricant liquid, and to adjust the spray angle during the processing to improve the utilization and adaptability of the lubricant liquid.
It effectively reduces the splash of lubricant, improves the utilization rate of lubricant, maintains the cleanliness of the processing environment, simplifies the maintenance process, reduces equipment and labor costs, and improves work efficiency.
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Figure CN120170540B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of lubrication devices, in particular to a cooling and lubrication device for an end face gear machining tool. Background Art
[0002] In the patent application with application announcement number CN222327536U, it includes a structural bin and an adjusting tube, the bottom of the structural bin is rotatably connected with a milling cutter disc, the top of the structural bin is fixedly assembled with a motor, one end of the motor and the internal transmission assembly located in the structural bin is equipped with an output shaft, the outer wall of the output shaft is fixedly connected with a gear four, the motor is transmission-connected with the milling cutter disc through the output shaft located inside the structural bin, the inner wall of the structural bin and one side of the gear four is rotatably connected with a gear three, the gear three is meshingly connected with the gear four, and the structural bin The outer wall of the tool is fixedly connected with a fixing bolt, the center of the fixing bolt is rotatably connected with a rotating rod, one end of the rotating rod is fixedly connected with gear two, the gear two is meshingly connected with the gear three, and the end of the rotating rod opposite to the gear two is fixedly connected with gear one; the advantages are: when the tool processes the workpiece, the lubricating liquid can be rotatably sprayed on the tool head and the cutting surface from multiple angles for lubrication and cooling, avoiding the generation of lubrication dead angles, and the flow rate of each nozzle can be uniformly adjusted and controlled to keep the flow rate of each nozzle uniform with each other, avoiding excessive flow rate causing liquid splashing and excessive slow flow rate causing insufficient lubrication.
[0003] In the prior art including the above-mentioned patents, the cooling lubricant is sprayed directly onto the end of the tool or the processing area. The tool and the workpiece are cooled by this spraying method. Most of the low-temperature lubricant will be directly thrown out by the tool and stay on the tool and the workpiece for a short time. The lubricant available for cooling will also be reduced. In this way, the cooling effect is not good at the same flow rate, and the flow rate and flow velocity need to be increased to achieve the purpose. Increasing the flow velocity will increase the range of splashing, which makes it difficult to ensure the cleanliness of the environment in the workstation. Summary of the invention
[0004] The problem to be solved by the present invention is to improve the cooling and lubricating effect of the lubricating liquid on the tool body and the workpiece, and to reduce the amount of splashing of the lubricating liquid to a certain extent.
[0005] To solve the above technical problems, the technical solution of the present invention is: an end face gear machining tool cooling and lubricating device, including a bed body and a spindle component installed on the transmission component of the bed body. A rotating component for installing a tool is provided at the lower end of the spindle component. A control component is provided at the lower end of the spindle component. The center of the control component coincides with the center of the rotating component. A nozzle component is provided at the lower end of the control component. The control component is used to control the up and down movement of the nozzle component. The control component mainly includes a mounting ring, a mounting pipe, a threaded rod, a first spring, a fixing ring and a movable pin. The nozzle component mainly includes a movable sleeve. The movable sleeve is used to limit the scattering direction of the coolant. The lubricating fluid in the mounting ring enters the inside of the movable sleeve through the mounting pipe. When the hydraulic pressure increases to be sufficient to offset the pulling force of the first spring, it will push the nozzle component downward; The control component includes a first clamp. The first clamp is located at the lower end of the outer surface of the spindle component. The first clamps are fixed by screws. A soft pad is fixedly provided at the lower end of the first clamp. The mounting ring is fixedly provided at the lower end of the soft pad; The mounting ring is hollow. Two water pipe interfaces are opened on one side of the mounting ring close to the transmission component of the bed body. The mounting pipe is fixedly provided inside the mounting ring. The lower end of the mounting pipe passes through the mounting ring. Four mounting pipes are evenly arranged around the center of the mounting ring; A threaded rod is arranged in the middle of the mounting pipe. A first spring is arranged around the threaded rod. The first spring is located in the lower half of the threaded rod. The upper end of the first spring is fixedly provided with a fixing ring. The fixing ring is fixedly connected to the mounting pipe. The threaded rod passes through the middle of the fixing ring. The threaded rod does not contact the fixing ring.
[0006] Preferably, a movable pin is provided at the upper end of the fixing ring. The movable pin is set in a cross shape. A threaded hole is opened in the middle of the movable pin. The movable pin is threadedly engaged with the threaded rod. A chute is opened around the movable pin through the mounting pipe. The number and position distribution of the chutes correspond to the movable pin. The outer end of the movable pin is located inside the chute. The movable pin is slidably connected to the chute.
[0007] Preferably, the nozzle component includes a movable sleeve. The movable sleeve is located below the mounting ring. The mounting pipe is located inside the movable sleeve. The mounting pipe is slidably connected to the movable sleeve. Sealing gaskets are fixedly provided at the upper end of the movable sleeve around the mounting pipe. A through hole is opened at the lower end of the mounting pipe inside the movable sleeve. The lower end of the threaded rod is located inside the through hole. The threaded rod is rotatably connected to the through hole.
[0008] Preferably, a second clamp is provided on the outer surface of the movable sleeve. A liquid storage tank is provided in the middle of the inner side of the second clamp. A sealing ring is fixedly provided on the outer surface of the movable sleeve. There are two sealing rings in total. The sealing rings are located at the upper and lower ends of the liquid storage tank of the second clamp. A cavity is provided in the middle of the movable sleeve.
[0009] Preferably, the cavity is located between the two sealing rings. There are eight cavities in total. The cavities are located between the installation pipes. An installation block is fixedly provided on the inner surface of the movable sleeve on the inner side of the cavity. The installation block is arc-shaped. There are four installation blocks in total. The middle of the installation block is at the same position as the center of the installation pipe.
[0010] Preferably, the installation block is also hollow. An installation cylinder is fixedly provided on one side of the installation block. A rotating cylinder is rotatably provided inside the installation cylinder. A slide rail is provided on the side of the rotating cylinder away from the cavity. A nozzle is fixedly provided on the side of the rotating cylinder away from the installation cylinder. The nozzle is located in the same plane as the starting point of the slide rail on the surface of the rotating cylinder.
[0011] Preferably, the other end of the nozzle is rotatably connected to the installation block on the other side. The nozzle communicates with the installation block. A piston is slidably provided on the inner side of the rotating cylinder near the nozzle. A convex block is provided on one side of the piston. The convex block of the piston is located in the slide rail of the rotating cylinder. A limiting shaft is slidably provided in the middle of the piston. The limiting shaft is cross-shaped. One end of the limiting shaft is fixedly connected to the bottom end of the installation cylinder. A second spring is provided around the limiting shaft. The two ends of the second spring are respectively fixedly connected to the bottom end of the installation cylinder and the piston.
[0012] Compared with the prior art, the technical solution of the present invention has the following advantages:
[0013] (1) Through the coordinated cooperation of the control component and the nozzle component, when spraying lubricating liquid, it can effectively block a part of the splashing lubricating liquid and prevent it from directly splashing around; in this way, the cleanliness inside the milling machine can be ensured, and most of the lubricating liquid can be kept within the range of the workpiece and the processing table; in this way, while ensuring normal processing, with the help of the blocked lubricating liquid, the whole workpiece can be cooled and pre-lubricated, thereby improving the utilization rate of the lubricating liquid; in addition, the control component is fixed on the main shaft component through the first clamp, and this design brings convenience to the workers during maintenance; the workers can quickly disassemble the control component and perform maintenance on it in a relatively spacious position, which reduces the labor intensity during maintenance to a certain extent;
[0014] (2) Through the coordinated cooperation of the control component and the nozzle component, it is also possible to change the spraying angle of the lubricating fluid by adjusting the hydraulic pressure; by utilizing this characteristic, the adaptability of this lubrication device is improved, enabling it to meet a variety of different processing requirements and working conditions; moreover, this adjustment process can be carried out during the processing, without the need for manual adjustment after stopping the machine, which improves the working efficiency to a certain extent; in addition, the structures of the control component and the nozzle component are relatively simple, and only two independent hydraulic pumps are required to achieve control, without the need to set up additional electronic components and programs; in this way, the time cost and economic cost during the use and installation of the equipment can be effectively reduced. Description of the Drawings
[0015] Figure 1 It is a schematic diagram of the overall three-dimensional structure of the present invention;
[0016] Figure 2 It is a schematic diagram of the overall structure of the control component and the nozzle component of the present invention;
[0017] Figure 3 It is a schematic diagram of the overall structure (without the clamp) of the control component and the nozzle component of the present invention;
[0018] Figure 4 It is a schematic diagram of the partial sectional structure of the control component of the present invention;
[0019] Figure 5 It is a schematic diagram of the sectional structure of the installation pipe of the present invention;
[0020] Figure 6 It is a schematic diagram of the bottom view structure of the movable sleeve of the present invention;
[0021] Figure 7 It is a schematic diagram of the sectional structure of the movable sleeve of the present invention;
[0022] Figure 8 It is a schematic diagram of the partial sectional structure of the nozzle body and its mounting member of the present invention;
[0023] Figure 9 It is a schematic diagram of the rear view structure of the nozzle body and its mounting member of the present invention.
[0024] In the figure: 1, bed body; 2, spindle component; 3, control component; 301, first clamp; 302, soft pad; 303, mounting ring; 304, mounting pipe; 305, threaded rod; 306, first spring; 307, fixed ring; 308, movable pin; 309, chute; 4, nozzle component; 401, movable sleeve; 402, second clamp; 403, sealing ring; 404, cavity; 405, mounting block; 406, mounting cylinder; 407, rotating cylinder; 408, nozzle; 409, piston; 410, limiting shaft; 411, second spring. Detailed Embodiments
[0025] To make the objectives, technical solutions, and advantages of the embodiments of the present disclosure clearer, the technical solutions of the embodiments of the present disclosure will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present disclosure. Apparently, the described embodiments are some, but not all, of the embodiments of the present disclosure. All other embodiments obtained by those of ordinary skill in the art based on the described embodiments of the present disclosure without creative efforts shall fall within the scope of protection of the present disclosure.
[0026] Unless otherwise defined, the technical terms or scientific terms used in the present disclosure shall have the ordinary meanings understood by those of ordinary skill in the art to which the present disclosure pertains. The terms such as "including" or "comprising" used in the present disclosure mean that the elements or items appearing before the word cover the elements or items listed after the word and their equivalents, without excluding other elements or items. The terms such as "connected" or "coupled" do not limit to physical or mechanical connections, and may also include electrical connections, whether direct or indirect. The terms such as "upper", "lower", "left", and "right" are only used to indicate relative positional relationships. When the absolute position of the object being described changes, the relative positional relationship may also change accordingly.
[0027] As Figures 1 to 9As shown in the figure, a cooling and lubricating device for an end face gear machining tool provided by the present invention includes a bed body 1, a spindle component 2 installed on the transmission component of the bed body 1. A rotating component for installing a tool is provided at the lower end of the spindle component 2. A control component 3 is provided at the lower end of the spindle component 2. The center of the control component 3 coincides with the center of the rotating component. A nozzle component 4 is provided at the lower end of the control component 3. The control component 3 is used to control the up and down movement of the nozzle component 4. The control component 3 mainly includes a mounting ring 303, a mounting pipe 304, a threaded rod 305, a first spring 306, a fixing ring 307 and a movable pin 308. The nozzle component 4 mainly includes a movable sleeve 401. The movable sleeve 401 is used to limit the scattering direction of the coolant. The lubricating fluid in the mounting ring 303 enters the inside of the movable sleeve 401 through the mounting pipe 304. When the hydraulic pressure increases enough to offset the pulling force of the first spring 306, it will push the nozzle component 4 downward; The control component 3 includes a first clamp 301. The first clamp 301 is located at the lower end of the outer surface of the spindle component 2. The first clamps 301 are fixed by screws. A soft pad 302 is fixedly provided at the lower end of the first clamp 301. A mounting ring 303 is fixedly provided at the lower end of the soft pad 302; The mounting ring 303 is hollow. Two water pipe interfaces are provided on one side of the mounting ring 303 close to the transmission component of the bed body 1. A mounting pipe 304 is fixedly provided inside the mounting ring 303. The lower end of the mounting pipe 304 passes through the mounting ring 303. Four mounting pipes 304 are evenly arranged around the center of the mounting ring 303; A threaded rod 305 is arranged in the middle of the inside of the mounting pipe 304. A first spring 306 is arranged around the threaded rod 305. The first spring 306 is located in the lower half of the threaded rod 305. The upper end of the first spring 306 is fixedly provided with a fixing ring 307. The fixing ring 307 is fixedly connected with the mounting pipe 304. The threaded rod 305 passes through the middle of the fixing ring 307. The threaded rod 305 does not contact the fixing ring 307; A movable pin 308 is provided at the upper end of the fixing ring 307. The movable pin 308 is set in a cross shape. A threaded hole is provided in the middle of the movable pin 308. The movable pin 308 is threadedly engaged with the threaded rod 305. A chute 309 is provided around the movable pin 308 through the mounting pipe 304. The number and position distribution of the chutes 309 correspond to the movable pin 308. The outer end of the movable pin 308 is located inside the chute 309. The movable pin 308 is slidably connected with the chute 309.
[0028] The nozzle component 4 includes a movable sleeve 401. The movable sleeve 401 is located below the mounting ring 303. The mounting pipe 304 is located inside the movable sleeve 401. The mounting pipe 304 is slidably connected with the movable sleeve 401. Sealing washers are fixedly provided at the upper end of the movable sleeve 401 around the mounting pipe 304. A through hole is provided at the lower end of the inside of the movable sleeve 401 for the mounting pipe 304. The lower end of the threaded rod 305 is located inside the through hole. The threaded rod 305 is rotatably connected with the through hole.
[0029] The outer surface of the movable sleeve 401 is provided with a second clamp 402. A liquid storage groove is formed in the middle of the inner side of the second clamp 402. A sealing ring 403 is fixedly arranged on the outer surface of the movable sleeve 401. There are two sealing rings 403 in total, and the sealing rings 403 are located at the upper and lower ends of the liquid storage groove of the second clamp 402. A cavity 404 is formed in the middle of the movable sleeve 401.
[0030] The cavity 404 is located between the two sealing rings 403. There are eight cavities 404 in total. The cavities 404 are located between the installation pipes 304. An installation block 405 is fixedly arranged on the inner surface of the movable sleeve 401 on the inner side of the cavity 404. The installation block 405 is arranged in an arc shape. There are four installation blocks 405 in total. The middle of the installation block 405 is at the same position as the center of the installation pipe 304.
[0031] The installation block 405 is also hollow. An installation cylinder 406 is fixedly arranged on one side of the installation block 405. A rotating cylinder 407 is rotatably arranged inside the installation cylinder 406. A slide rail is formed on the side of the rotating cylinder 407 away from the cavity 404. A nozzle 408 is fixedly arranged on the side of the rotating cylinder 407 away from the installation cylinder 406. The nozzle 408 is located in the same plane as the starting point of the slide rail on the surface of the rotating cylinder 407.
[0032] The other end of the nozzle 408 is rotatably connected to the installation block 405 on the other side. The nozzle 408 communicates with the installation block 405. A piston 409 is slidably arranged on the side of the rotating cylinder 407 close to the nozzle 408. A convex block is arranged on one side of the piston 409. The convex block of the piston 409 is located in the slide rail of the rotating cylinder 407. A limiting shaft 410 is slidably arranged in the middle of the piston 409. The limiting shaft 410 is arranged in a cross shape. One end of the limiting shaft 410 is fixedly connected to the bottom end of the installation cylinder 406. A second spring 411 is arranged around the limiting shaft 410. The two ends of the second spring 411 are respectively fixedly connected to the bottom end of the installation cylinder 406 and the piston 409.
[0033] The working principle and usage process of the present invention: When machining gears, it is necessary to first adjust the position of the nozzle assembly 4 according to the tool used and the machining depth; when adjusting the position, only the pressure of the lubricating liquid entering the installation ring 303 needs to be controlled to change the height of the nozzle assembly 4; specifically, the nozzle assembly 4 will move downward as the pressure of the lubricating liquid increases; when the pressure increases, the lubricating liquid enters the inside of the movable sleeve 401 through the installation pipe 304; when the hydraulic pressure increases to be sufficient to offset the pulling force of the first spring 306, it will push the nozzle assembly 4 downward; in addition, by rotating the four threaded rods 305, the height of the movable pin 308 can be changed, so as to limit the moving range of the nozzle assembly 4, thereby preventing the nozzle assembly 4 from moving downward excessively;
[0034] During the cooling lubrication process, the lubricating fluid can be poured into the interface on one side of the second clamp 402 and will be directly ejected after reaching the nozzle 408. By default, the nozzle 408 is perpendicular to the tool, and this state is applicable when the temperatures of the tool and the workpiece are not high. At this time, the lubricating fluid will flow down from the upper part of the tool, and part of the lubricating fluid thrown off by the tool will be blocked by the movable sleeve 401 and finally drip onto the workpiece and the processing table.
[0035] If the temperatures of the tool and the workpiece increase, the pressure of the lubricating fluid entering the nozzle 408 can be increased. As the pressure gradually increases, the piston 409 will be slowly pushed, and the nozzle 408 will rotate driven by the rotating cylinder 407, thereby changing the spraying angle so that the lubricating fluid can be directly sprayed onto the bottom of the tool and the surface of the workpiece.
[0036] At the same time, the position of the movable sleeve 401 can also be adjusted according to the cutting depth. If the cutting depth is relatively shallow, the rotation angle of the nozzle 408 can be reduced and the position of the movable sleeve 401 can be lowered. In this way, the same lubrication effect can be achieved and the splashing range of the lubricating fluid can be limited. If the cutting depth is relatively deep, the rotation angle of the nozzle 408 can be directly changed.
[0037] The above embodiments are only exemplary embodiments of the present invention and are not used to limit the present invention. The protection scope of the present invention is defined by the claims. Those skilled in the art can make various modifications or equivalent substitutions within the essence and protection scope of the present invention, and such modifications or equivalent substitutions should also be regarded as falling within the protection scope of the present invention.
Claims
1. An end face gear machining tool cooling and lubricating device, comprising a machine tool bed (1) and a spindle component (2) mounted on the transmission component of the machine tool bed (1), characterized in that: A rotating component for mounting a tool is provided at the lower end of the spindle component (2). A control component (3) is provided at the lower end of the spindle component (2). The center of the control component (3) coincides with the center of the rotating component. A nozzle component (4) is provided at the lower end of the control component (3). The control component (3) is used to control the up and down movement of the nozzle component (4). The control component (3) mainly includes a mounting ring (303), a mounting pipe (304), a threaded rod (305), a first spring (306), a fixing ring (307) and a movable pin (308). The nozzle component (4) mainly includes a movable sleeve (401). The movable sleeve (401) is used to restrict the scattering direction of the coolant. The lubricating fluid in the mounting ring (303) enters the inside of the movable sleeve (401) through the mounting pipe (304). When the hydraulic pressure increases enough to offset the pulling force of the first spring (306), it will push the nozzle component (4) downward; The control component (3) includes a first clamp (301). The first clamp (301) is located at the lower end of the outer surface of the spindle component (2). The first clamps (301) are fixed by screws. A soft pad (302) is fixedly provided at the lower end of the first clamp (301). The mounting ring (303) is fixedly provided at the lower end of the soft pad (302); The mounting ring (303) is hollow. Two water pipe interfaces are provided on one side of the mounting ring (303) close to the transmission component of the bed (1). The mounting pipe (304) is fixedly provided inside the mounting ring (303). The lower end of the mounting pipe (304) passes through the mounting ring (303). Four mounting pipes (304) are evenly arranged around the center of the mounting ring (303); A threaded rod (305) is provided in the middle of the mounting pipe (304). A first spring (306) is provided around the threaded rod (305). The first spring (306) is located in the lower half of the threaded rod (305). The upper end of the first spring (306) is fixedly provided with a fixing ring (307). The fixing ring (307) is fixedly connected to the mounting pipe (304). The threaded rod (305) passes through the middle of the fixing ring (307). The threaded rod (305) does not contact the fixing ring (307).
2. The cooling and lubricating device for an end face gear machining tool according to claim 1, wherein: A movable pin (308) is provided at the upper end of the fixing ring (307). The movable pin (308) is cross-shaped. A threaded hole is provided in the middle of the movable pin (308). The movable pin (308) is threadedly engaged with the threaded rod (305). A sliding groove (309) is provided around the movable pin (308) through the mounting pipe (304). The number and position distribution of the sliding grooves (309) correspond to the movable pin (308). The outer end of the movable pin (308) is located inside the sliding groove (309). The movable pin (308) is slidably connected to the sliding groove (309).
3. The cooling and lubricating device for an end face gear machining tool according to claim 1, characterized in that: The nozzle assembly (4) includes a movable sleeve (401). The movable sleeve (401) is located below the mounting ring (303). The mounting pipe (304) is located inside the movable sleeve (401). The mounting pipe (304) is slidably connected to the movable sleeve (401). A sealing washer is fixedly arranged at the upper end of the movable sleeve (401) around the mounting pipe (304). A through hole is opened at the lower end of the mounting pipe (304) inside the movable sleeve (401). The lower end of the threaded rod (305) is located inside the through hole. The threaded rod (305) is rotatably connected to the through hole.
4. A cooling and lubricating device for an end face gear machining tool according to claim 3, characterized in that: A second clamp (402) is arranged on the outer surface of the movable sleeve (401). A liquid storage groove is opened in the middle of the inner side of the second clamp (402). A sealing ring (403) is fixedly arranged on the outer surface of the movable sleeve (401). There are two sealing rings (403) in total. The sealing rings (403) are located at the upper and lower ends of the liquid storage groove of the second clamp (402). A cavity (404) is opened in the middle of the movable sleeve (401).
5. A cooling and lubricating device for an end face gear machining tool according to claim 4, characterized in that: The cavity (404) is located between the two sealing rings (403). There are eight cavities (404) in total. The cavities (404) are located between the mounting pipes (304). Mounting blocks (405) are fixedly arranged on the inner surface of the movable sleeve (401) on the inner side of the cavity (404). The mounting blocks (405) are arc-shaped. There are four mounting blocks (405) in total. The middle of the mounting blocks (405) is at the same position as the center of the mounting pipe (304).
6. The cooling and lubricating device for an end face gear machining tool according to claim 5, characterized in that: The mounting block (405) is also hollow. An installation cylinder (406) is fixedly arranged on one side of the mounting block (405). A rotating cylinder (407) is rotatably arranged inside the installation cylinder (406). A slide rail is opened on the side of the rotating cylinder (407) away from the cavity (404). A nozzle (408) is fixedly arranged on the side of the rotating cylinder (407) away from the installation cylinder (406). The nozzle (408) is located in the same plane as the starting point of the slide rail on the surface of the rotating cylinder (407).
7. A cooling and lubricating device for an end face gear machining tool according to claim 6, characterized in that: The other end of the nozzle (408) is rotatably connected to the mounting block (405) on the other side. The nozzle (408) communicates with the mounting block (405). A piston (409) is slidably arranged on the side of the rotating cylinder (407) close to the nozzle (408). A convex block is arranged on one side of the piston (409). The convex block of the piston (409) is located in the slide rail of the rotating cylinder (407). A limiting shaft (410) is slidably arranged in the middle of the piston (409). The limiting shaft (410) is cross-shaped. One end of the limiting shaft (410) is fixedly connected to the bottom end of the installation cylinder (406). A second spring (411) is arranged around the limiting shaft (410). The two ends of the second spring (411) are respectively fixedly connected to the bottom end of the installation cylinder (406) and the piston (409).
Citation Information
Patent Citations
Automatic lubricating device for milling machine cutter
CN222327536U
Tool protection device capable of avoiding rusting of tool and achieving automatic lubrication
CN113829125A
Milling machine processing system with intelligently follow-up cutting fluid nozzle and working method
US20200114483A1