Cleaning device for machining machine tool cutter
By designing a machine tool tool cleaning device that includes ultrasonic and spray cleaning methods, the problems of uneven cleaning force and different cleaning requirements of different tool types in the prior art are solved, and a more uniform cleaning effect and a longer tool service life are achieved.
Patent Information
- Application Number
- CN202510378869.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-28
- Publication Date
- 2025-05-23
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing machine tool tool cleaning devices have shortcomings in terms of uneven cleaning force and the differences in cleaning requirements of different tool types, which may lead to inconsistent cleaning effects or damage to the tool, thereby reducing service life.
A cleaning device including a cleaning box, a driving assembly, a clamping cylinder and a spray assembly is designed. Through two cleaning methods, ultrasonic and spraying, the appropriate cleaning method is selected according to different tool types to ensure uniform cleaning force.
Through two different cleaning methods, the cleaning needs of different tool types can be effectively considered, avoid improper cleaning methods to damage the tool, extend the service life of the tool, and complete comprehensive cleaning in a shorter time, reducing energy consumption.
Smart Images

Figure CN120023145A_ABST
Abstract
Description
Technical Field
[0001] The invention mainly relates to the technical field of machine tool tool cleaning, and in particular to a cleaning device for machine tool tools. Background Art
[0002] In the field of mechanical manufacturing, machine tool cutting tools, also known as cutting tools, are key equipment for performing cutting processing. Their performance parameters have a decisive influence on processing quality and efficiency. With the continuous advancement of industrial technology, the requirements for cutting tool cleaning have become increasingly prominent. The use of special cleaning devices can significantly remove metal chips and oil residues on the surface of the tool, thereby effectively extending the service life of the tool.
[0003] A machine tool tool cleaning device for mechanical manufacturing described in the prior art is mainly composed of a box body, a cleaning box is installed on the upper end of the box body, a lifting mechanism is provided on the right side of the top outer side of the cleaning box, the lifting end of the mechanism is connected to a cross plate, a plurality of equidistantly distributed rotating shafts are provided on the top outer side of the cross plate, and mutually meshing transmission gears are installed on the top of the rotating shaft, wherein a transmission gear is connected to the driving mechanism, a sleeve is fixed to the bottom end of the rotating shaft, and symmetrically distributed rotating grooves are provided on the outer peripheral wall of the sleeve, a fixed shaft is fixed to the top of the rotating groove, a rotating bar is sleeved on the fixed shaft, and bristles are installed on the inner side of the rotating bar and the inner wall of the sleeve.
[0004] Although the technical means mentioned can easily and quickly clean the sides of the tool and significantly improve the efficiency of the cleaning operation, the limitations of the elasticity and hardness of the bristles may cause uneven cleaning force on different parts of the tool surface, affecting the consistency of the cleaning effect. At the same time, considering the differences in cleaning requirements for different types of tools, improper cleaning methods may cause damage to the tool, thereby reducing its service life. Summary of the invention
[0005] Based on this, the purpose of the present invention is to provide a cleaning device for machine tool tools to solve the technical problems raised in the above background technology.
[0006] To achieve the above object, the present invention provides the following technical solutions: A cleaning device for machining machine tool tools, comprising a cleaning box, the cleaning box consisting of a base and a barrel box, a chamber for storing cleaning liquid is arranged on one side of the base below the barrel box, an ultrasonic generator is embedded in the other side of the base, a vertical rod is arranged inside the barrel box, a fixed gear is sleeved on the top of the vertical rod, and the character is that the upper surface of the base and the lower surface of the barrel box are both provided with through grooves communicating with the chamber, and the periphery of the vertical rod is provided with a cleaning mechanism for cleaning different types of tools; The cleaning mechanism consists of a driving assembly, four groups of clamping cylinders and a spray assembly. The four groups of clamping cylinders are arranged on the driving assembly. The driving assembly is used to control the clamped tool to move into the chamber to cooperate with the ultrasonic generator for cleaning. The spray assembly is arranged on one side of the driving assembly. The spray assembly is used to spray and clean the tool. The driving assembly can be used for the rotation of the four groups of clamping cylinders.
[0007] The two different cleaning methods can take into account the differences in cleaning requirements of different tool types, avoid damage to the tool caused by improper cleaning methods, and extend the service life of the tool.
[0008] In a preferred embodiment, the driving assembly includes a driving motor installed on the top wall of the barrel box by screws, the output end of the driving motor passes through the top wall of the barrel box and is connected to a first circular plate, a second circular plate is provided below the first circular plate, auxiliary electric push cylinders are symmetrically installed on the lower surface of the first circular plate, the telescopic ends of the two auxiliary electric push cylinders are fixedly connected to the upper surface of the second circular plate, the four groups of clamping cylinders are arranged in a square shape below the second circular plate, the diameter of the first circular plate is larger than the diameter of the second circular plate, the outer ring wall of the first circular plate is provided with inner teeth, a sleeve is passed through the center of the second circular plate, the sleeve is slidably mounted on the vertical rod, and the bottom end of the sleeve is located in the through groove.
[0009] While controlling the rotation of the first circular plate and the second circular plate, the driving component can start the auxiliary electric push cylinder according to different cleaning requirements. When ultrasonic cleaning is required, the auxiliary electric push cylinder works to push the second circular plate downward, and controls the fixture to enter the chamber of the base from the through groove. When spray cleaning is required, the auxiliary electric push cylinder does not work, thereby achieving different cleaning methods.
[0010] In a preferred solution, the execution ends of the four groups of clamping cylinders are all snap-connected with modular clamps, and the contact surface of the clamps with the tool is provided with protective cotton. The four groups of clamping cylinders are each provided with a mounting plate above and fixedly connected by screws. A connecting rod is fixedly provided on the upper surface of each mounting plate, and each connecting rod passes through a second circular plate provided in the driving assembly. A first meshing gear is fixedly sleeved on the top outer wall of each connecting rod, and the tooth surface of each of the first meshing gears is meshedly connected with the tooth surface of the fixed gear.
[0011] The modular fixture can be adjusted according to the shape and size of different tools, and can stably clamp various types of tools. At the same time, the protective cotton can effectively avoid wear on the contact part of the tool, and the protective cotton can also clean the contact part to a certain extent after absorbing the cleaning liquid; Furthermore, during spray cleaning, the first meshing gear and the fixed gear are meshed to control the self-rotation of the fixture and the tool, thereby ensuring that the sprayed cleaning liquid can cover the surface of the tool more comprehensively.
[0012] In a preferred embodiment, the spray assembly includes a vertical plate, the bottom end of the vertical plate is connected to a spray pipe, the spray pipe is provided with a plurality of nozzles on one side of the vertical rod, a protective shell is provided inside the chamber, a water pump is installed in the protective shell, the bottom end of the spray pipe is connected to the water outlet of the water pump through a water supply pipe, a slider is fixed with screws on a side of the vertical plate away from the vertical rod, an annular track is screwed on the inner wall of the barrel box, the slider is slidably installed on the annular track, a square through groove is provided on the top of the vertical plate, a vertical rotating shaft is rotatably installed in the square through groove, a second meshing gear is fixedly sleeved on the rotating shaft, and the tooth surface of the second meshing gear is meshingly connected with the inner track gear provided in the driving assembly.
[0013] The spray assembly can move along with the first circular plate of the driving assembly, which can ensure that all parts of the tool surface are evenly cleaned and avoid uneven cleaning due to the limitations of the elasticity and hardness of the bristles.
[0014] In a preferred solution, a controller is installed on the outer wall of the base, the controller is electrically connected to the ultrasonic generator and the cleaning mechanism, and a sealing door is rotatably installed on the bottom of the outer wall of the barrel box.
[0015] In summary, the present invention mainly has the following beneficial effects: First, when cleaning the carbide tool, the driving assembly controls the rotation of the first and second circular plates, while the auxiliary electric push cylinder pushes the second circular plate downward, and controls the fixture to enter the chamber of the base from the through slot. At this time, the ultrasonic generator works, and the ultrasonic wave can penetrate the cleaning liquid to perform micro-oscillation cleaning on the tool surface; When cleaning the high-speed steel tool, when the driving component controls the second circular plate to rotate, the second circular plate drives the connecting rod to move, so that the first meshing gear rotates around the fixed gear, thereby controlling the fixture to rotate. At the same time, the first circular plate has internal teeth to drive the vertical plate to move along the circular track, ensuring that the sprayed cleaning liquid can cover the tool surface more comprehensively. Thus, the differences in cleaning requirements of different tool types can be taken into account through two different cleaning methods, avoiding damage to the tool caused by improper cleaning methods, and extending the service life of the tool. Secondly, the driving component drives the clamping cylinder and the spraying component. This coordinated work can complete the comprehensive cleaning of the tool in a shorter time and reduce energy consumption; Third, the execution end of the clamping cylinder is connected with a modular clamp, and the contact surface of the clamp with the tool is provided with protective cotton. This design can be adjusted according to the shape and size of different tools to ensure that the clamp can stably clamp various types of tools. At the same time, the protective cotton can effectively avoid wear on the contact part of the tool, and the protective cotton can also clean the contact part to a certain extent after absorbing the cleaning liquid. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic diagram of the axonometric structure of the present invention; Figure 2 It is a schematic diagram of the axonometric cross-section structure of the present invention; Figure 3 For the present invention Figure 2 Main view structure diagram; Figure 4 It is a schematic diagram of the axonometric structure of the cleaning mechanism of the present invention; Figure 5 It is a schematic diagram of the axonometric structure of the drive assembly of the present invention; Figure 6 It is a schematic diagram of the axonometric structure of the clamping cylinder of the present invention; Figure 7 It is a schematic diagram of the axonometric structure of the spray assembly of the present invention; Figure 8 It is an enlarged view of point A of the present invention.
[0017] Description of the drawings: 1. Cleaning box; 2. Base; 201. Chamber; 202. Ultrasonic generator; 203. Controller; 3. Cylinder box; 301. Sealing door; 4. Vertical rod; 401. Fixed gear; 5. Cleaning mechanism; 6. Driving assembly; 601. Driving motor; 602. First circular plate; 6021. Inner track gear; 603. Auxiliary electric push cylinder; 604. Second circular plate; 605. Sleeve; 7. Clamping cylinder; 701. Clamp; 702. Mounting plate; 703. Connecting rod; 704. First meshing gear; 8. Spraying assembly; 801. Annular track; 802. Slider; 803. Vertical plate; 8031. Square through groove; 8032. Rotating shaft; 8033. Second meshing gear; 804. Spray pipe; 8041. Spray head; 805. Water supply pipe; 806. Protective shell; 9. Through groove. DETAILED DESCRIPTION
[0018] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and cannot be understood as limiting the present invention.
[0019] The following describes an embodiment of the present invention based on its overall structure. Example
[0020] See also Figure 1-4 As shown, a cleaning device for machining machine tool tools comprises a cleaning box 1, which is composed of a base 2 and a barrel box 3. A chamber 201 for storing cleaning liquid is arranged on one side of the base 2 located below the barrel box 3, and an ultrasonic generator 202 is embedded in the other side of the base 2. A vertical rod 4 is arranged inside the barrel box 3, and a fixed gear 401 is sleeved on the top of the vertical rod 4. A through groove 9 is provided on the upper surface of the base 2 and the lower surface of the barrel box 3 to communicate with the chamber 201. A controller 203 is installed on the outer wall of the base 2, and the controller 203 is electrically connected to the ultrasonic generator 202 and the cleaning mechanism 5. A sealing door 301 is rotatably installed on the bottom of the outer wall of the barrel box 3, and a cleaning mechanism 5 for cleaning different types of tools is arranged on the periphery of the vertical rod 4; The cleaning mechanism 5 is composed of a driving assembly 6, four groups of clamping cylinders 7 and a spray assembly 8. The four groups of clamping cylinders 7 are arranged on the driving assembly 6. The driving assembly 6 is used to control the clamped tool to move into the chamber 201 to cooperate with the ultrasonic generator 202 for cleaning. The spray assembly 8 is arranged on one side of the driving assembly 6. The spray assembly 8 is used to spray and clean the tool. The driving assembly 6 can be used for the rotation of the four groups of clamping cylinders 7.
[0021] When cleaning the tool of the processing machine tool, the tool is placed between the clamps 701 under the clamping cylinder 7, and the clamping cylinder 7 is controlled by the controller 203 so that the clamp 701 clamps the tool, and then the sealing door 301 is closed. The corresponding cleaning method is selected according to the type of the tool. For example, if it is a carbide tool, the driving component 6 controls the clamped tool to move downward while revolving, and moves into the chamber 201 through the through groove 9, so that the tool is immersed in the cleaning liquid. At this time, the ultrasonic generator 202 works, and the ultrasonic wave can penetrate the cleaning liquid to perform micro-oscillation cleaning on the surface of the tool; If the tool is a high-speed steel tool, the drive assembly 6 controls the clamped tool to only revolve, and the four clamping cylinders 7 will also rotate around the fixed gear 401 under the action of the gear, so that the tool can revolve and rotate at the same time, and then the drive assembly 6 will also drive the spray assembly 8 to move, ensuring that the sprayed cleaning liquid can cover the surface of the tool more comprehensively; Therefore, the two different cleaning methods can take into account the differences in cleaning requirements of different tool types, avoid damage to the tool due to improper cleaning methods, and extend the service life of the tool.
[0022] See also Figure 4-6As shown, the driving assembly 6 includes a driving motor 601 installed on the top wall of the barrel box 3 by screws, the output end of the driving motor 601 passes through the top wall of the barrel box 3 and is connected to a first circular plate 602, a second circular plate 604 is provided below the first circular plate 602, auxiliary electric push cylinders 603 are symmetrically installed on the lower surface of the first circular plate 602, the telescopic ends of the two auxiliary electric push cylinders 603 are fixedly connected to the upper surface of the second circular plate 604, four groups of clamping cylinders 7 are arranged in a square shape below the second circular plate 604, the diameter of the first circular plate 602 is larger than the diameter of the second circular plate 604, the outer ring wall of the first circular plate 602 is provided with an inner track tooth 6021, a sleeve 605 is passed through the center of the second circular plate 604, the sleeve 605 is slidably sleeved on the vertical rod 4, and the bottom end of the sleeve 605 is located in the through groove 9; The execution ends of the four groups of clamping cylinders 7 are all snap-connected with modular clamps 701, and protective cotton is provided on the contact surface of the clamps 701 with the tool. A mounting plate 702 is provided above the four groups of clamping cylinders 7 and is fixedly connected by screws. A connecting rod 703 is fixed on the upper surface of each mounting plate 702, and each connecting rod 703 penetrates the second circular plate 604 provided in the driving assembly 6. The top outer wall of each connecting rod 703 is fixedly sleeved with a first meshing gear 704, and the tooth surface of each first meshing gear 704 is meshed with the tooth surface of the fixed gear 401. The snap-connected modular clamps 701 can be adjusted according to the shapes and sizes of different tools to ensure that the clamps 701 can stably clamp various types of tools. At the same time, the protective cotton can effectively avoid wear on the contact part of the tool, and the protective cotton can also clean the contact part to a certain extent after absorbing the cleaning liquid.
[0023] The driving motor 601 works, and its output end drives the first circular plate 602 to rotate. The first circular plate 602 drives the second circular plate 604 to rotate through the auxiliary electric push cylinder 603. The second circular plate 604 drives the clamping cylinder 7 to revolve around the vertical rod 4 through the connecting rod 703 and the mounting plate 702. When ultrasonic cleaning is performed, the telescopic end of the auxiliary electric push cylinder 603 pushes the second circular plate 604 downward, and the second circular plate 604 drives the clamping cylinder 7 and the sleeve 605 downward. The clamping cylinder 7 drives the clamped tool to move into the chamber 201 through the through slot 9, and separates the first meshing gear 704 from the fixed gear 401 through the connecting rod 703, and the sleeve 605 moves along the vertical rod 4 until the bottom end of the sleeve 605 contacts the inner bottom wall of the chamber 201, completing the immersion of the tool. When spray cleaning is performed, the auxiliary electric push cylinder 603 does not work. When the second circular plate 604 rotates, since the first meshing gear 704 is in meshing state with the fixed gear 401, the first meshing gear 704 will move along the fixed gear 401, and drive the clamping cylinder 7 to rotate through the connecting rod 703, and then the spray assembly 8 moves to fully clean the tool; This collaborative work can complete the comprehensive cleaning of the tool in a shorter time and reduce energy consumption.
[0024] See also Figure 4 , Figure 7 and Figure 8 As shown, the spray assembly 8 includes a vertical plate 803, the bottom end of the vertical plate 803 is connected to a spray pipe 804, the spray pipe 804 is located on one side of the vertical rod 4 and is provided with a plurality of spray heads 8041, a protective shell 806 is provided inside the chamber 201, a water pump is installed in the protective shell 806, the bottom end of the spray pipe 804 is connected to the water outlet of the water pump through a water supply pipe 805, a slider 802 is fixed by screws on a side of the vertical plate 803 away from the vertical rod 4, an annular track 801 is screwed on the inner wall of the barrel box 3, the slider 802 is slidably installed on the annular track 801, a square through groove 8031 is opened on the top of the vertical plate 803, a vertical rotating shaft 8032 is rotatably installed in the square through groove 8031, a second meshing gear 8033 is fixedly sleeved on the rotating shaft 8032, and the tooth surface of the second meshing gear 8033 is meshed and connected with the inner track tooth 6021 provided in the driving assembly 6.
[0025] When the first circular plate 602 rotates, it drives the second meshing gear 8033 to move through the inner track teeth 6021. The second meshing gear 8033 moves around the inner track teeth 6021 with the vertical plate 803. The vertical plate 803 moves along the circular track 801 with the slider 802, and also moves with the spray pipe 804, the water supply pipe 805 and the protective shell 806. The water pump in the protective shell 806 is wirelessly controlled by the controller 203. The water pump works to send the cleaning liquid in the chamber 201 into the spray pipe 804 through the water supply pipe 805, and spray it from a plurality of nozzles 8041 onto the revolving and rotating tools, thereby spraying and cleaning the tools in multiple directions to ensure that all parts of the tool surface are evenly cleaned and avoid uneven cleaning due to the limitations of the elasticity and hardness of the bristles.
[0026] The working principle of the present invention is: When cleaning the tool of the processing machine tool, the tool is placed between the clamps 701 under the clamping cylinder 7, and the clamping cylinder 7 is controlled by the controller 203 so that the clamp 701 clamps the tool, and then the sealing door 301 is closed. The corresponding cleaning method is selected according to the type of the tool. For example, if it is a carbide tool, the drive motor 601 works, and its output end drives the first circular plate 602 to rotate. The first circular plate 602 drives the second circular plate 604 to rotate through the auxiliary electric push cylinder 603, and the second circular plate 604 drives the clamping cylinder 7 to rotate around the vertical rod 4 through the connecting rod 703 and the mounting plate 702. The second circular plate 604 moves downwards, and the second circular plate 604 drives the clamping cylinder 7 and the sleeve 605 to move downwards. The clamping cylinder 7 drives the clamped tool to move into the chamber 201 through the through slot 9, and the first meshing gear 704 is separated from the fixed gear 401 through the connecting rod 703, and the sleeve 605 moves along the vertical rod 4 until the bottom end of the sleeve 605 contacts the inner bottom wall of the chamber 201, so that the tool is immersed in the cleaning liquid. At this time, the ultrasonic generator 202 works, and the ultrasonic wave can penetrate the cleaning liquid to perform micro-oscillation cleaning on the surface of the tool. At the same time, when the first circular plate 602 rotates, it also drives the second meshing gear 8033 to move through the inner track gear 6021. The second meshing gear 8033 moves around the inner track gear 6021 with the vertical plate 803. The vertical plate 803 moves along the circular track 801 with the slider 802, and also moves with the spray pipe 804, the water supply pipe 805 and the protective shell 806. If it is a high-speed steel tool, the driving motor 601 works, and its output end drives the first circular plate 602 to rotate. The first circular plate 602 drives the second circular plate 604 to rotate through the auxiliary electric push cylinder 603, and the second circular plate 604 drives the clamping cylinder 7 to revolve around the vertical rod 4 through the connecting rod 703 and the mounting plate 702. At this time, the auxiliary electric push cylinder 603 does not work. Since the first meshing gear 704 is in a meshing state with the fixed gear 401, the first meshing gear 704 will move along the fixed gear 401 at this time, and drive the clamping cylinder 7 to rotate through the connecting rod 703. At the same time, the vertical plate 803, the spray pipe 804, the water supply pipe 805 and the protective shell 806 still rotate. At this time, the water pump in the protective shell 806 is wirelessly controlled by the controller 203. The water pump works to send the cleaning liquid in the chamber 201 into the spray pipe 804 through the water supply pipe 805, and spray it from a plurality of nozzles 8041 onto the revolving and rotating tools.
[0027] Although an embodiment of the present invention has been shown and described, this specific embodiment is merely an explanation of the present invention and is not a limitation of the invention. The specific features, structures, materials or characteristics described may be combined in a suitable manner in any one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions and variations to the embodiments without creative contributions as needed without departing from the principles and purpose of the present invention. However, as long as they are within the scope of the claims of the present invention, they are protected by patent law.
Claims
1. A cleaning device for a machining tool, comprising a cleaning box (1), the cleaning box (1) comprising a base (2) and a barrel box (3), a chamber (201) for storing a cleaning liquid being arranged on one side of the base (2) located below the barrel box (3), an ultrasonic generator (202) being embedded in the other side of the base (2), a vertical rod (4) being arranged inside the barrel box (3), a fixed gear (401) being sleeved on the top end of the vertical rod (4), characterized in that The upper surface of the base (2) and the lower surface of the barrel box (3) are both provided with a through groove (9) communicating with the chamber (201), and a cleaning mechanism (5) for cleaning different types of knives is arranged on the periphery of the vertical rod (4); The cleaning mechanism (5) is composed of a driving assembly (6), four groups of clamping cylinders (7) and a spray assembly (8). The four groups of clamping cylinders (7) are arranged on the driving assembly (6). The driving assembly (6) is used to control the clamped tool to move into the chamber (201) to cooperate with the ultrasonic generator (202) for cleaning. The spray assembly (8) is arranged on one side of the driving assembly (6). The spray assembly (8) is used to spray and clean the tool. The driving assembly (6) can be used to rotate the four groups of clamping cylinders (7).
2. A cleaning device for a machining tool according to claim 1, characterized in that: The driving assembly (6) comprises a driving motor (601) mounted on the top wall of the barrel box (3) by means of screws, the output end of the driving motor (601) passes through the top wall of the barrel box (3) and is connected to a first circular plate (602), a second circular plate (604) is provided below the first circular plate (602), auxiliary electric push cylinders (603) are symmetrically mounted on the lower surface of the first circular plate (602), the telescopic ends of the two auxiliary electric push cylinders (603) are fixedly connected to the upper surface of the second circular plate (604), and the four groups of the clamping cylinders (7) are arranged in a square shape below the second circular plate (604).
3. A cleaning device for a machining tool according to claim 2, characterized in that: The diameter of the first circular plate (602) is greater than the diameter of the second circular plate (604), and the outer wall of the first circular plate (602) is provided with inner teeth (6021).
4. A cleaning device for a machining tool according to claim 2, characterized in that: A sleeve (605) is provided at the center of the second circular plate (604), the sleeve (605) is slidably sleeved on the vertical rod (4), and the bottom end of the sleeve (605) is located in the through groove (9).
5. The cleaning device for a machining tool according to claim 1, characterized in that: The execution ends of the four groups of clamping cylinders (7) are all snap-connected to modular clamps (701), and the clamps (701) are provided with protective cotton on the surfaces in contact with the tool.
6. A cleaning device for a machining tool according to claim 5, characterized in that: A mounting plate (702) is provided above each of the four groups of clamping cylinders (7) and is fixedly connected by screws; a connecting rod (703) is fixed to the upper surface of each mounting plate (702); each connecting rod (703) passes through a second circular plate (604) provided in the driving assembly (6); a first meshing gear (704) is fixedly sleeved on the outer wall of the top end of each connecting rod (703); and the tooth surface of each first meshing gear (704) is meshedly connected with the tooth surface of the fixed gear (401).
7. The cleaning device for a machining tool according to claim 1, characterized in that: The spray assembly (8) comprises a vertical plate (803), the bottom end of the vertical plate (803) is connected to a spray pipe (804), the spray pipe (804) is provided with a plurality of spray heads (8041) on one side of the vertical rod (4), a protective shell (806) is provided inside the chamber (201), a water pump is installed in the protective shell (806), and the bottom end of the spray pipe (804) is connected to a water outlet of the water pump via a water supply pipe (805).
8. A cleaning device for a machining tool according to claim 7, characterized in that: A sliding block (802) is screwed to a side of the vertical plate (803) away from the vertical rod (4), a circular track (801) is screwed to the inner wall of the barrel box (3), and the sliding block (802) is slidably mounted on the circular track (801).
9. The cleaning device for a machining tool according to claim 7, characterized in that: A square through slot (8031) is provided at the top of the vertical plate (803), a vertical rotating shaft (8032) is rotatably mounted in the square through slot (8031), a second meshing gear (8033) is fixedly sleeved on the rotating shaft (8032), and the tooth surface of the second meshing gear (8033) is meshingly connected with an inner track gear (6021) provided in the driving assembly (6).
10. The cleaning device for a machining tool according to claim 1, characterized in that: A controller (203) is installed on the outer wall of the base (2), and the controller (203) is electrically connected to the ultrasonic generator (202) and the cleaning mechanism (5). A sealing door (301) is rotatably installed on the bottom of the outer wall of the barrel box (3).
Citation Information
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