Automatic production equipment for cutting fluid processing
By introducing an electric telescopic rod and a pusher plate into the cutting fluid processing equipment, the problem of slow filtration speed caused by the lack of pusher auxiliary components in the equipment was solved, thereby improving the cutting fluid filtration efficiency and enhancing the overall efficiency of the equipment.
Patent Information
- Application Number
- CN202422985934.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-04
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2034-12-04
AI Technical Summary
The existing automated production equipment for cutting fluid processing lacks auxiliary parts for pushing materials, resulting in slow cutting fluid filtration speed and affecting the working efficiency of the equipment.
By introducing an electric telescopic rod and a pusher plate into the equipment, the electric telescopic rod drives the pusher plate to move, increasing the contact force between the cutting fluid and the filter components, thereby improving the filtration efficiency.
The combination of the electric telescopic rod and the pusher plate significantly improves the filtration speed of the cutting fluid and the efficiency of the equipment.
Smart Images

Figure CN223439687U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to cutting fluid processing technical field especially relates to a kind of automation production equipment for cutting fluid processing. BACKGROUND
[0002] As a kind of modern commonly used lubricating raw material, the main function of cutting fluid is to cool and lubricate tool, cutting fluid is made of a variety of super strong functional additives by scientific compound configuration, in its production process, a variety of additives are often mixed, at this time, the automation production equipment for cutting fluid processing is needed, the automation production equipment for cutting fluid processing is mixed and filtered, and the existing automation production equipment for cutting fluid processing lacks pushing auxiliary components, so it cannot improve the filtering speed of cutting fluid during the use of the automation production equipment for cutting fluid processing, thereby affecting the working efficiency of the automation production equipment for cutting fluid processing. SUMMARY
[0003] To achieve the above object, the utility model adopts the following technical scheme:
[0004] An automation production equipment for cutting fluid processing, including mixing mechanism and mixing shell, the top of the mixing shell is threadedly connected with a shielding mechanism, the bottom of the mixing shell is connected with a conveying mechanism, the bottom of the conveying mechanism is threadedly connected with a filtering mechanism, the two sides of the filtering mechanism are both connected with a pushing mechanism, and the pushing mechanism is provided with six, the mixing mechanism includes a mixing shell, the front of the mixing shell is fixedly connected with a temperature controller, the inner wall of the mixing shell is fixedly connected with an electric heating pipe, the outer surface of the mixing shell is fixedly connected with a fixed ring, and the fixed ring is located below the temperature controller, the bottom of the fixed ring is fixedly connected with a support rod, and the support rod is provided with four, the bottom of the support rod is fixedly connected with a fixed flange.
[0005] The shielding mechanism includes a shielding cover, the shielding cover is threadedly connected to the top of the mixing shell, the top of the shielding cover is connected with a motor, the output end of the motor is fixedly connected with a rotating rod, and the tail end of the rotating rod is fixedly connected with a stirring head.
[0006] Preferably, the top of the shielding cover is connected with a liquid inlet pipe, the liquid inlet pipe is located on the outside of the motor, and the liquid inlet pipe is provided with two, the top of the shielding cover is connected with a feed hopper, the feed hopper is located on one side of the liquid inlet pipe, and the feed hopper is provided with two.
[0007] Preferably, the conveying mechanism includes a discharge pipe, the discharge pipe is connected to the bottom of the mixing shell, the tail end of the discharge pipe is fixedly connected with a first conveying pump, and the output end of the first conveying pump is connected with a connecting cover.
[0008] Preferably, the filtering mechanism comprises a filtering shell, the filtering shell is threadedly connected to the bottom of the connecting cover, a first filtering layer is fixedly connected to the inside of the filtering shell, a second filtering layer is fixedly connected to the inside of the filtering shell and is below the first filtering layer, and a third filtering layer is fixedly connected to the inside of the filtering shell and is below the second filtering layer.
[0009] Preferably, the front surface of the filtering shell is fixedly connected with a second conveying pump, the input end of the second conveying pump extends to the inside of the filtering shell, and the output end of the second conveying pump is fixedly connected with an output pipe.
[0010] Preferably, the pushing mechanism comprises an electric telescopic rod, the electric telescopic rod is connected to the two sides of the filtering shell, the tail end of the electric telescopic rod is fixedly connected with a fixed head, and the bottom of the fixed head is fixedly connected with a pushing plate.
[0011] Compared with the prior art, the automatic production equipment for machining cutting fluid has the following advantages:
[0012] The electric telescopic rod, the fixed head and the pushing plate are added, when it is necessary to improve the filtering speed of the cutting fluid, electric energy is transmitted to the inside of the electric telescopic rod through an external control component, at this time, the electric telescopic rod extends or shrinks to drive the fixed head connected to the tail end to move, at the same time, the fixed head drives the pushing plate to move, at this time, the pushing plate generates a pushing force on the cutting fluid to drive the cutting fluid to continuously contact the filtering component, thereby improving the filtering efficiency of the cutting fluid and the use efficiency of the cutting fluid production equipment. BRIEF DESCRIPTION OF DRAWINGS
[0013] Figure 1 A structural schematic view of the automatic production equipment for machining cutting fluid is provided for the utility model;
[0014] Figure 2 A structural schematic view of the mixed shell section view connecting part is provided for the utility model;
[0015] Figure 3 A structural schematic view of the filtering shell section view connecting part is provided for the utility model;
[0016] Figure 4 A structural schematic view of the pushing mechanism connecting part is provided for the utility model.
[0017] In the figure: 1, mixing mechanism; 101, mixing shell; 102, temperature controller; 103, electric heating tube; 104, fixing ring; 105, support rod; 106, fixing flange; 2, shielding mechanism; 201, shielding cover; 202, motor; 203, rotating rod; 204, stirring head; 205, liquid inlet pipe; 206, feeding hopper; 3, conveying mechanism; 301, discharging pipe; 302, first conveying pump; 303, connecting cover; 4, filtering mechanism; 401, filtering shell; 402, first filter layer; 403, second filter layer; 404, third filter layer; 405, second conveying pump; 406, output pipe; 5, pushing mechanism; 501, electric telescopic rod; 502, fixed head; 503, pushing plate. DETAILED DESCRIPTION
[0018] The technical solutions in the utility model will be further explained below in combination with the drawings and examples.
[0019] Reference Figure 1 , Figure 2 and Figure 3The application discloses an automatic production device for cutting fluid processing, which comprises a mixing mechanism 1 and a mixing shell 101, the top of the mixing shell 101 is screw-connected with a shielding mechanism 2, the bottom of the mixing shell 101 is through-connected with a conveying mechanism 3, the bottom of the conveying mechanism 3 is screw-connected with a filtering mechanism 4, the two sides of the filtering mechanism 4 are through-connected with six pushing mechanisms 5, the mixing mechanism 1 comprises the mixing shell 101, a temperature controller 102, an electric heating tube 103, a fixing ring 104, a supporting rod 105 and a fixing flange 106, the cutting fluid is mixed, the temperature controller 102, the electric heating tube 103, the fixing ring 104, a shielding cover 201 and a discharging pipe 301 are fixedly connected to the outer surface and the inside of the mixing shell 101, the temperature controller 102 is fixedly connected to the front surface of the mixing shell 101 and detects the temperature in the mixing shell 101, when the temperature in the mixing shell 101 is too low, the temperature controller 102 delivers electric energy to the inside of the electric heating tube 103, the electric heating tube 103 is fixedly connected to the inner wall of the mixing shell 101, when the electric energy is delivered to the inside of the electric heating tube 103 through the temperature controller 102, the resistance wire in the electric heating tube 103 enhances the temperature of the cutting fluid raw material through the electric heating effect, the mixing effect of the cutting fluid raw material is enhanced, the fixing ring 104 is fixedly connected to the outer surface of the mixing shell 101 and is located below the temperature controller 102, the fixing ring 104 is fixedly connected to the outer surface of the mixing shell 101 and provides a fixing point for the supporting rod 105 fixedly connected to the bottom of the fixing ring 104, the supporting rod 105 is fixedly connected to the bottom of the fixing ring 104 and is provided with four supporting rods 105, the supporting rod 105 conducts the supporting force in the ground to the inside of the supporting rod 105, provides support for the whole device and provides a fixing point for the fixing flange 106 fixedly connected to the bottom of the supporting rod 105, the supporting force in the ground is conducted to the inside of the supporting rod 105, provides support for the whole device, the fixing flange 106 is fixedly connected to the bottom of the supporting rod 105, when it is necessary to fix the whole device, external bolts can be inserted into the inside of the fixing flange 106 through external force and are inserted into the external fixing plane, and the fixing of the whole device is completed; the shielding mechanism 2 comprises the shielding cover 201, an electric motor 202, a rotating rod 203, a stirring head 204, a liquid inlet pipe 205 and a feeding hopper 206, the shielding cover 201 is screw-connected to the top of the mixing shell 101, the mixing shell 101 is screw-connected to the top of the shielding cover 201, the electric motor 202, the liquid inlet pipe 205 and the feeding hopper 206 fixedly connected to the outer surface of the shielding cover 201 provide fixing points for the top of the mixing shell 101 and provide shielding for the top of the mixing shell 101, the top of the shielding cover 201 is through-connected with the electric motor 202, when it is necessary to stir the raw material, electric energy can be delivered to the inside of the electric motor 202 through an external control part,The motor 202 transmits rotating force to the inside of the rotating rod 203 through electromagnetic effect at this time. The output end of the motor 202 is fixedly connected with the rotating rod 203. The rotating rod 203 is fixedly connected to the output end of the motor 202. The rotating rod 203 rotates under the driving of the motor 202 to drive the stirring head 204 fixedly connected to the tail end of the rotating rod 203 to rotate. The tail end of the rotating rod 203 is fixedly connected with the stirring head 204. The stirring head 204 rotates under the driving of the rotating rod 203 to stir the cutting fluid raw materials and complete the mixing of the cutting fluid raw materials. The top of the shielding cover 201 is throughly connected with the liquid inlet pipe 205. The liquid inlet pipe 205 is located outside the motor 202 and is provided with two liquid inlet pipes 205. The liquid inlet pipe 205 is throughly connected to the top of the shielding cover 201 and is connected with an external pipeline. At this time, the liquid inlet pipe 205 transmits liquid raw materials to the inside of the mixing shell 101. The top of the shielding cover 201 is throughly connected with the feed hopper 206. The feed hopper 206 is located on one side of the liquid inlet pipe 205 and is provided with two feed hoppers 206. The feed hopper 206 is throughly connected to the top of the shielding cover 201 to provide space for users to inject solid raw materials into the inside of the mixing shell 101. The solid raw materials are transmitted to the inside of the mixing shell 101 under the action of gravity. The conveying mechanism 3 comprises a discharge pipe 301, a first conveying pump 302 and a connecting cover 303. The conveying mechanism 3 comprises a discharge pipe 301, a first conveying pump 302 and a connecting cover 303. The liquid in the mixing shell 101 is sucked and the mixed raw materials are conveyed to the inside of the filtering shell 401. The discharge pipe 301 is throughly connected to the bottom of the mixing shell 101. The discharge pipe 301 is throughly connected to the bottom of the mixing shell 101. The first conveying pump 302 transmits the mixed raw materials to the inside of the first conveying pump 302 after being electrified. The tail end of the discharge pipe 301 is fixedly connected with the first conveying pump 302. When it is needed to output the raw materials in the mixing shell 101, electric energy is transmitted to the inside of the first conveying pump 302 through an external control component. At this time, the first conveying pump 302 generates suction force on the mixed raw materials through the discharge pipe 301 and conveys the raw materials to the inside of the filtering shell 401. The output end of the first conveying pump 302 is throughly connected with the connecting cover 303. The connecting cover 303 is throughly connected to the output end of the first conveying pump 302 to provide a fixed point for the filtering shell 401 screwedly connected to the bottom thereof and to provide shielding for the top of the filtering shell 401. The filtering mechanism 4 comprises a filtering shell 401, a first filtering layer 402, a second filtering layer 403, a third filtering layer 404, a second conveying pump 405 and an output pipe 406. The filtering mechanism 4 comprises a filtering shell 401, a first filtering layer 402, a second filtering layer 403, a third filtering layer 404, a second conveying pump 405 and an output pipe 406. The mixed cutting fluid raw materials are filtered. The filtering shell 401 is screwedly connected to the bottom of the connecting cover 303. The filtering shell 401 is connected to the bottom of the connecting cover 303 through bolts to provide fixed points for the first filtering layer 402, the second filtering layer 403, the third filtering layer 404 and the second conveying pump 405 fixedly connected to the inside and the outer surface thereof and to provide space for the mixed raw materials to be injected into the inside of the filtering shell 401. The first filtering layer 402 is fixedly connected in the inside of the filtering shell 401.The first filter layer 402 is made of metal mesh weaving. When the mixed liquid moves to the top of the first filter layer 402, the first filter layer 402 performs preliminary filtering on the cutting fluid raw material. The inside of the filter shell 401 is fixedly connected with the second filter layer 403, and the second filter layer 403 is located below the first filter layer 402. The second filter layer 403 is made of multiple layers of filter cloth stacked together and fixed to the inside of the filter shell 401 to perform secondary filtering on the preliminarily filtered cutting fluid. The inside of the filter shell 401 is fixedly connected with the third filter layer 404, and the third filter layer 404 is located below the second filter layer 403. The third filter layer 404 is made of filter sand filling and fixedly connected to the inside of the filter shell 401 to perform further filtering on the secondarily filtered cutting fluid and intercept the pollutants in the cutting fluid, thereby improving the quality of the mixed cutting fluid. The front surface of the filter shell 401 is fixedly connected with the second delivery pump 405, and the input end of the second delivery pump 405 extends to the inside of the filter shell 401. The second delivery pump 405 is fixedly connected to the front surface of the filter shell 401. When it is necessary to output the filtered cutting fluid, electric energy can be delivered to the inside of the second delivery pump 405 through an external control component. At this time, the second delivery pump 405 generates suction force on the cutting fluid in the filter shell 401 and delivers the cutting fluid to the inside of the output pipe 406. The output end of the second delivery pump 405 is fixedly connected with the output pipe 406. When the cutting fluid enters the inside of the output pipe 406, the output pipe 406 delivers the cutting fluid to the inside of an external receiving component to complete the subsequent receiving of the cutting fluid.
[0020] Referring to Figure 1 , Figure 3 and Figure 4 , the pushing mechanism 5 comprises an electric telescopic rod 501, a fixed head 502 and a pushing plate 503. During the cutting fluid filtering process, the pushing mechanism 5 generates pushing force on the cutting fluid to improve the contact efficiency of the cutting fluid and the filtering component, thereby improving the filtering efficiency of the cutting fluid. The electric telescopic rod 501 is connected through both sides of the filter shell 401. When it is necessary to improve the filtering efficiency of the cutting fluid, electric energy can be delivered to the inside of the electric telescopic rod 501 through an external control component. At this time, the electric telescopic rod 501 drives the fixed head 502 indirectly connected to the output end thereof to move. The tail end of the electric telescopic rod 501 is fixedly connected with the fixed head 502. The fixed head 502 moves under the drive of the electric telescopic rod 501 and drives the pushing plate 503 fixedly connected to the bottom thereof to move. The bottom of the fixed head 502 is fixedly connected with the pushing plate 503. The pushing plate 503 moves under the drive of the fixed head 502 and generates pushing force on the cutting fluid to drive the cutting fluid to fully contact with the filtering component, thereby improving the filtering efficiency of the cutting fluid.
[0021] The utility model discloses a function principle can be set forth through the following operation mode: first, the external bolt is inserted into the inside of fixed flange 106, and the external bolt is inserted into the inside of external fixed plane, after this, the external pipeline is connected with liquid inlet pipe 205, at this time, liquid inlet pipe 205 sends liquid raw material to the inside of mixing shell 101, after this, the external solid raw material is sent to the inside of feed hopper 206, at this time, feed hopper 206 sends solid raw material to the inside of mixing shell 101, at the same time, the electric energy is sent to the inside of electric heating tube 103 through temperature controller 102, at this time, electric heating tube 103 heats raw material, heats cutting fluid raw material, and the electric energy is sent to the inside of motor 202 through external control component, at this time, motor 202 sends rotating force to the inside of rotating rod 203 through electromagnetic effect, at this time, rotating rod 203 drives stirring head 204 to rotate and stirs cutting fluid, drives cutting fluid to mix with each other, after this, the electric energy is sent to the inside of first delivery pump 302 through external control component, at this time, first delivery pump 302 generates suction force to discharge pipe 301, at this time, discharge pipe 301 generates suction force to the inside cutting fluid of mixing shell 101, and sends cutting fluid to the inside of filter shell 401, at this time, cutting fluid is sent to the inside of first filter layer 402, at this time, first filter layer 402 carries out primary filtration to cutting fluid raw material, second filter layer 403 is made by adopting filter cloth multilayer superposition, is fixed to the inside of filter shell 401, carries out secondary filtration to the cutting fluid of primary filtration, third filter layer 404 is made by adopting filter sand filling, is fixedly connected to the inside of filter shell 401, carries out again filtration to the cutting fluid of secondary filtration, after this, the electric energy is sent to the inside of second delivery pump 405 through external control component, at this time, second delivery pump 405 generates suction force to cutting fluid, and sends cutting fluid to the inside of output pipe 406, at this time, output pipe 406 sends cutting fluid to the inside of external receiving component, and the output of cutting fluid is completed.
[0022] Finally, it is explained that the above embodiments are only used to illustrate the technical solutions of the utility model and not to limit, although the utility model is described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the utility model can be modified or replaced equivalently without departing from the purpose and scope of the technical solutions of the utility model, and they should be covered in the claim scope of the utility model.
Claims
1. An automated production equipment for cutting fluid processing, comprising a mixing mechanism (1) and a mixing shell (101), wherein the top of the mixing shell (101) is threadedly connected to a shielding mechanism (2), the bottom of the mixing shell (101) is penetrated and connected to a conveying mechanism (3), the bottom of the conveying mechanism (3) is threadedly connected to a filtering mechanism (4), and both sides of the filtering mechanism (4) are penetrated and connected to pusher mechanisms (5), and six pusher mechanisms (5) are provided, characterized in that: The mixing mechanism (1) comprises a mixing shell (101), the front surface of the mixing shell (101) is fixedly connected to a temperature controller (102), the inner wall of the mixing shell (101) is fixedly connected to an electric heating pipe (103), the outer surface of the mixing shell (101) is fixedly connected to a fixing ring (104), and the fixing ring (104) is located below the temperature controller (102), the bottom of the fixing ring (104) is fixedly connected to a support rod (105), and four support rods (105) are provided, and the bottom of the support rod (105) is fixedly connected to a fixing flange (106); The shielding mechanism (2) comprises a shielding cover (201), the shielding cover (201) being threadedly connected to the top of the mixing shell (101), a motor (202) being connected through the top of the shielding cover (201), a rotating rod (203) being fixedly connected to the output end of the motor (202), and a stirring head (204) being fixedly connected to the tail end of the rotating rod (203).
2. The automated production equipment for cutting fluid processing according to claim 1, characterized in that: A liquid inlet pipe (205) is connected through the top of the shielding cover (201), the liquid inlet pipe (205) is located outside the motor (202), and two liquid inlet pipes (205) are provided. A feed hopper (206) is connected through the top of the shielding cover (201), the feed hopper (206) is located on one side of the liquid inlet pipe (205), and two feed hoppers (206) are provided.
3. The automated production equipment for cutting fluid processing according to claim 1, characterized in that: The conveying mechanism (3) comprises a discharge pipe (301), the discharge pipe (301) is connected to the bottom of the mixing shell (101), the tail end of the discharge pipe (301) is fixedly connected to a first conveying pump (302), and the output end of the first conveying pump (302) is connected to a connection cover (303).
4. The automated production equipment for cutting fluid processing according to claim 1, characterized in that: The filter mechanism (4) comprises a filter housing (401), wherein the filter housing (401) is threadedly connected to the bottom of the connection cover (303), a first filter layer (402) is fixedly connected to the interior of the filter housing (401), a second filter layer (403) is fixedly connected to the interior of the filter housing (401), and the second filter layer (403) is located below the first filter layer (402), and a third filter layer (404) is fixedly connected to the interior of the filter housing (401), and the third filter layer (404) is located below the second filter layer (403).
5. The automated production equipment for cutting fluid processing according to claim 4, characterized in that: A second delivery pump (405) is fixedly connected to the front of the filter housing (401), and an input end of the second delivery pump (405) extends to the inner side of the filter housing (401), and an output end of the second delivery pump (405) is fixedly connected to an output pipe (406).
6. The automated production equipment for cutting fluid processing according to claim 1, characterized in that: The pushing mechanism (5) comprises an electric telescopic rod (501), the electric telescopic rod (501) is connected to both sides of the filter housing (401), the tail end of the electric telescopic rod (501) is fixedly connected to a fixed head (502), and the bottom of the fixed head (502) is fixedly connected to a pushing plate (503).