A nano-coating powder preparation machine
By designing the emulsified permeation part, powder dehydration part and other components of the nanocoating powder preparation machine, dust-free production and automatic permeation discharge of emulsified nano-preparation are achieved, and the problems of poor penetration discharge, large powder error and complex processing in the existing technology are solved, and the quality and safety of the coating powder are improved.
Patent Information
- Application Number
- CN202211420083.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-11-14
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2042-11-14
AI Technical Summary
The existing nanocoating powder preparation machines cannot achieve penetration and discharge, the nanopowder error is large, the quantity control preparation is inconvenient, the emulsification processing efficiency is low, the processing technology is complicated and complicated, and the dust hazard is great.
A nanocoating powder preparation machine is designed, including an emulsified permeation part, a powder dehydration part, a lifting and lowering pressure regulating part, a sliding friction part, a driving device and a flushing device. Through linkage, emulsified permeation and control the amount of powder application are realized to assist uniform emulsification to ensure the quality of the powder, and dust-free dehydration and permeation discharge methods are adopted to avoid the powder flying.
It realizes dust-free production of emulsified nano-preparation, automatically penetrates out of materials, ensures powder quality, improves emulsification and simplification of process, avoids powder flying, and improves the processing quality and safety of coating powder.
Smart Images

Figure CN115646233B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of coating preparation, in particular to a nano coating powder preparation machine. Background Art
[0002] In actual industrial production and processing, metal parts and other parts often need to be sprayed for corrosion protection and aesthetics. At the same time, the treatment of the coating also directly affects its protective effect. At present, the application of nano coatings is extremely extensive. At the same time, the actual preparation process of nano coatings needs to ensure that the coating powder specifications meet the standards. At this time, a good nano coating powder preparation machine is particularly important.
[0003] However, as far as the currently available nano-coating powder preparation machines are concerned, they cannot achieve penetration discharge, the nano-powder error is large, and it is not convenient to control the preparation quantity, which affects the preparation quality. The emulsification processing efficiency is low, which affects the uniformity of nano-powder fusion. At the same time, they cannot achieve linked emulsification work, which affects the preparation efficiency. At the same time, the production and processing technology is cumbersome and complicated, and the dust hazard is great. Summary of the Invention
[0004] In view of this, the present invention provides a nano-coating powder preparation machine, which has a door body that can cleverly link to achieve emulsification penetration through the emulsification penetration part, making it easier to control the amount of powder applied and ensure the powder processing quality. At the same time, the controlled amount addition makes it easier for the equipment to be uniformly emulsified in the subsequent process, thereby improving the quality of the nano-powder.
[0005] The present invention provides a purpose and function of a nano-coating powder preparation machine, which specifically includes a bearing mounting part; a powder dehydration part is fixedly connected to the bearing mounting part; a lifting and pressure regulating part is installed at the bottom of the bearing mounting part, and a vibration preparation part is fixedly connected to the lifting and pressure regulating part; a sliding friction part is fixedly connected to the bearing mounting part; a driving device is fixedly connected to the bearing mounting part; an emulsification and penetration part is installed on the bearing mounting part; a flushing device is fixedly connected to the bearing mounting part; the bearing mounting part includes: a bearing mounting box, a diversion hole, a return spring and an emulsification cylinder, the bearing mounting box is provided with a diversion hole; two return springs are fixedly connected to the bearing mounting box; the emulsification cylinder is fixedly connected to the side of the bearing mounting box; the lifting and pressure regulating part includes: a pressure regulating propulsion plate, a pressure regulating screw and a sliding propulsion shaft, the pressure regulating propulsion plate is slidably connected to the bearing mounting box; the pressure regulating screw is rotatably connected to the bottom of the pressure regulating propulsion plate; the pressure regulating screw is threadedly connected to the bearing mounting box; a row of sliding propulsion shafts are slidably connected to the pressure regulating propulsion plate.
[0006] Furthermore, the flushing device includes: a flushing water pump and a spraying ring, the flushing water pump is fixedly connected to the emulsification barrel; the flushing water pump upper pipe is connected to the spraying ring, and the spraying ring is fixedly connected to the inside of the emulsification barrel; the flushing water pump is connected to an external water source.
[0007] Furthermore, the bearing mounting portion includes: a feed box, the emulsifying cylinder is fixedly connected to the feed box, and the feed box is communicated with the emulsifying cylinder.
[0008] Furthermore, the emulsification penetration part includes: an penetration sliding shaft, a sliding shaft mounting plate and a penetration spring, the penetration sliding shaft is slidably connected to the sliding shaft mounting plate; the sliding shaft mounting plate is fixedly connected to the emulsification cylinder; the penetration sliding shaft is sleeved with a penetration spring.
[0009] Furthermore, the emulsification penetration part includes: a linkage arm, a penetration floating block and a penetration through-hole. There are two linkage arms, and the two linkage arms are respectively fixedly connected to the two sides of the penetration sliding shaft; the two linkage arms are respectively slidably connected to the emulsification cylinder; the two linkage arms are respectively provided with rollers; the rollers on the two linkage arms respectively roll and fit the two inclined panels; the penetration floating block is fixedly connected to the bottom of the penetration sliding shaft; four circles of conical blocks are fixedly connected to the bottom of the penetration floating block; and three circles of penetration through-holes are opened on the penetration floating block.
[0010] Furthermore, the powder dehydration section includes: a carrying liquid tank, an electric heating plate and a steam suction fan, the carrying liquid tank is fixedly connected to the side of the carrying mounting box; the electric heating plate is fixedly connected to the inside of the carrying liquid tank; the steam suction fan is fixedly connected to the carrying liquid tank, and the air inlet pipe of the steam suction fan is located inside the carrying liquid tank.
[0011] Furthermore, the sliding friction part includes: a friction slide, an extrusion arc block, a cam mounting block and an inclined panel, and the friction slide is slidably connected to the carrier mounting box; a row of extrusion arc blocks is fixedly connected to the bottom of the friction slide, and a row of extrusion arc blocks is cross-installed with a row of emulsified raised arc blocks; a cam mounting block is fixedly connected to the friction slide; two inclined panels are fixedly connected to the cam mounting block, and the bottoms of the two inclined panels are inclined structures respectively.
[0012] Furthermore, the lifting and pressure regulating component includes a return spring, and a row of the sliding propulsion shafts are respectively equipped with a return spring.
[0013] Furthermore, the driving device includes: a driving mounting frame, a driving motor and a driving cam, the driving mounting frame is fixedly connected to the carrying mounting box; the driving motor is fixedly connected to the driving mounting frame; the driving cam is fixedly connected to the output shaft of the driving motor, and the driving cam is attached to the cam mounting block.
[0014] Furthermore, the vibration preparation part includes: a floating plate and an emulsified raised arc block, the floating plate is fixedly connected to a row of sliding propulsion shafts; a row of emulsified raised arc blocks is fixedly connected to the floating plate; and a water outlet inclined plate is provided on the side of the floating plate.
[0015] Beneficial effects
[0016] The preparation machine of the present invention can realize emulsified nano preparation and dust-free powder production, and can assist in realizing automatic infiltration and discharging, effectively solving the problem that raw materials are difficult to mix and feed and are prone to clots, thereby ensuring the quality of particles.
[0017] In addition, by setting up a vibration preparation part, the lifting and pressure regulating parts can be used to achieve the lifting and adjustment of the emulsification extrusion pressure, so that the powder in the paint can be better integrated. The overall structure is simple and practical, and different fusion extrusion friction forces can be freely adjusted according to actual needs. By setting up a powder dehydration part, dust-free dehydration can be achieved, which can be more suitable for the preparation of paint and effectively avoid the problem of powder flying caused by traditional drying methods. The overall structure is simple and can optimize the paint powder production process effect. At the same time, the lifting and pressure regulating parts are more flexible to use. The pressure regulating screw can be rotated to drive the pressure regulating push plate to move, thereby realizing the elastic stroke of the compression reset spring, and adjusting the elastic force of the reset spring. It can be more suitable for different usage needs, more practical, and ensures the emulsification fusion effect.
[0018] In addition, by adopting the setting of a driving device, auxiliary drive extrusion can be achieved to quickly emulsify the coating powder. A row of extrusion arc blocks and a row of emulsification convex arc blocks can be cross-installed to achieve elastic crushing, which more effectively realizes the traditional crushing and fusion emulsification positioning requirements. The overall structure is simple. At the same time, the setting of sliding friction parts can achieve auxiliary drive for infiltration and discharging, which is more practical and effectively improves the linkage of the overall structure. At the same time, it also ensures that the rhythm between the emulsification penetration part and the sliding friction part is the same, avoiding blockage caused by continuous infiltration and discharging. A row of extrusion arc blocks and a row of emulsification convex arc blocks collide quickly to achieve slight jumping, and the coating solution will gradually flow and leak, and achieve deep fusion under continuous friction to achieve emulsification. At the same time, the cam mounting block can drive the inclined plate to slide back and forth, and drive the emulsification penetration part to move repeatedly to achieve infiltration feeding, thereby ensuring the fineness of the material that needs to be fused later.
[0019] In addition, by setting up a flushing device, it is possible to achieve an auxiliary increase in the penetration effect by adding water. At the same time, the single floating penetration amount is the same. The water absorption of the paint raw materials is utilized for mixing and dilution, and the up and down floating of the penetration part is utilized to achieve penetration work, which fully guarantees that the particle diameter of the penetrated powder meets the standard and improves the overall processing quality of the paint powder. By adopting the penetration part, the paint raw materials can be mixed more perfectly at the same time. The overall structure is simple and practical, and can realize automatic unloading of raw materials. The penetration floating block floats and hits the material in real time. The mixture of raw materials and water quickly penetrates out through the penetration through hole. At the same time, the floating of the penetration floating block can remove the obstruction of the feed port at the bottom of the feed box, and realize automatic feeding. The overall structure is simple, practical and flexible, which effectively improves the processing quality of the paint powder, and at the same time, the overall particle size is guaranteed by penetration. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments are briefly introduced below.
[0021] The drawings described below only relate to some embodiments of the present invention, but are not intended to limit the present invention.
[0022] In the attached figure:
[0023] Figure 1 It is a schematic diagram of the overall structure of a preparation machine according to an embodiment of the present invention.
[0024] Figure 2 It is a cross-sectional view of the internal structure of the preparation machine according to an embodiment of the present invention.
[0025] Figure 3 It is a structural schematic diagram of the bearing mounting portion of an embodiment of the present invention.
[0026] Figure 4 It is a schematic diagram of the overall connection structure of the emulsification and penetration part of an embodiment of the present invention.
[0027] Figure 5 It is a structural schematic diagram of the bearing mounting portion of an embodiment of the present invention.
[0028] Figure 6 Schematic diagram of the structure of the powder dehydration unit of an embodiment of the present invention.
[0029] Figure 7 It is a schematic structural diagram of a lifting and pressure regulating component according to an embodiment of the present invention.
[0030] Figure 8 Schematic diagram of the structure of the vibration preparation part of an embodiment of the present invention.
[0031] Figure 9 Schematic diagram of the structure of the sliding friction member according to an embodiment of the present invention.
[0032] Figure 10 2 is a schematic structural diagram of a driving device according to an embodiment of the present invention.
[0033] Figure 11 Schematic diagram of the structure of the emulsification and permeation part of an embodiment of the present invention.
[0034] Figure 12 It is a schematic structural diagram of a flushing device according to an embodiment of the present invention.
[0035] Reference Signs List
[0036] 1. Load-bearing mounting unit; 101. Load-bearing mounting box; 1011. Diversion hole; 102. Return spring; 103. Emulsifying cylinder; 1031. Feed box; 2. Powder dehydration unit; 201. Load-bearing liquid tank; 202. Electric heating plate; 203. Steam suction blower; 3. Lifting and pressure-regulating component; 301. Pressure-regulating propulsion plate; 302. Pressure-regulating screw; 303. Sliding propulsion shaft; 304. Return spring; 4. Vibration preparation component; 401. Floating plate; 402. Emulsifying raised arc block; 5. Sliding friction component; 501, friction slide; 5011, extrusion arc block; 502, cam mounting block; 503, inclined plate; 6, driving device; 601, driving mounting frame; 602, driving motor; 603, driving cam; 7, emulsification penetration part; 701, penetration sliding shaft; 7011, sliding shaft mounting plate; 702, penetration spring; 7, emulsification penetration part; 703, linkage arm; 704, penetration floating block; 7041, penetration through hole; 8, flushing device; 801, flushing water pump; 802, spraying circle. DETAILED DESCRIPTION
[0037] In order to make the purpose, scheme and advantages of the technical solution of the present invention more clear, the technical solution of the embodiment of the present invention will be clearly and completely described below in conjunction with the drawings of specific embodiments of the present invention. Unless otherwise specified, the terms used herein have the common meanings in the art. The same reference numerals in the drawings represent the same components.
[0038] Example: Please refer to Figures 1 to 12 As shown:
[0039] The present invention provides a nano coating powder preparation machine, comprising a bearing mounting portion 1; a powder dehydration portion 2 is fixedly connected to the bearing mounting portion 1; a lifting and pressure regulating member 3 is installed at the bottom of the bearing mounting portion 1, and a vibration preparation member 4 is fixedly connected to the lifting and pressure regulating member 3; a sliding friction member 5 is fixedly connected to the bearing mounting portion 1; a driving device 6 is fixedly connected to the bearing mounting portion 1; an emulsification and penetration portion 7 is installed on the bearing mounting portion 1; a flushing device 8 is fixedly connected to the bearing mounting portion 1; the bearing mounting portion 1 comprises: a bearing mounting box 101, a diversion hole 1011, a return spring 102 and an emulsification cylinder 103 A guide hole 1011 is provided on the carrying installation box 101; two return springs 102 are fixedly connected to the carrying installation box 101; the emulsifying cylinder 103 is fixedly connected to the side of the carrying installation box 101; the lifting and pressure regulating component 3 includes: a pressure regulating propulsion plate 301, a pressure regulating screw 302 and a sliding propulsion shaft 303, the pressure regulating propulsion plate 301 is slidably connected to the carrying installation box 101; the pressure regulating screw 302 is rotatably connected to the bottom of the pressure regulating propulsion plate 301; the pressure regulating screw 302 is threadedly connected to the carrying installation box 101; a row of sliding propulsion shafts 303 are slidably connected to the pressure regulating propulsion plate 301.
[0040] Among them, the carrying and mounting part 1 includes: a feed box 1031, the emulsifying cylinder 103 is fixedly connected to the feed box 1031, and the feed box 1031 is connected to the emulsifying cylinder 103; the powder dehydration part 2 includes: a carrying liquid box 201, an electric heating plate 202 and a steam suction fan 203, the carrying liquid box 201 is fixedly connected to the side of the carrying mounting box 101; the electric heating plate 202 is fixedly connected to the inside of the carrying liquid box 201; the steam suction fan 203 is fixedly connected to the carrying liquid box 201, and the air intake pipe of the steam suction fan 203 is located inside the carrying liquid box 201; the lifting and pressure regulating part 3 includes: a return spring 304, and a row of sliding propulsion shafts 303 are respectively provided with a return spring 304; the vibration preparation part 4 includes: a floating plate 401 and an emulsifying convex arc block 402, the floating plate 401 is fixedly connected to a row of sliding propulsion shafts 303; the floating plate 401 is fixedly connected to a row of emulsifying convex arc blocks Block 402; a water outlet inclined plate is provided on the side of the floating plate 401. By adopting the setting of a vibration preparation part 4, the lifting and pressure regulating part 3 provided can be cooperated with to realize the lifting and regulating of the emulsification extrusion force, so that the powder in the coating can be better fused. The overall structure is simple and practical, and different fusion extrusion friction forces can be freely adjusted according to actual needs. By adopting the setting of a powder dehydration part 2, dust-free dehydration can be achieved, which can be more suitable for the preparation of coatings, and effectively avoid the problem of powder flying caused by traditional drying methods. The overall structure is simple, which can optimize the coating powder production process effect. At the same time, the setting of the lifting and pressure regulating part 3 is more flexible to use, and the pressure regulating screw 302 can be rotated to drive the pressure regulating push plate 301 to move, thereby realizing the elastic stroke of the compression reset spring 304, and also adjusting the elastic force of the reset spring 304, which can be more suitable for different usage needs, more practical, and ensures the emulsification fusion effect.
[0041] 503, and the bottom of the two inclined panels 503 are inclined structures; the driving device 6 comprises: a driving mounting frame 601, a driving motor 602 and a driving cam 603; the driving mounting frame 601 is fixedly connected to the carrying mounting box 101; the driving mounting frame 601 is fixedly connected to the driving motor 602; the output shaft of the driving motor 602 is fixedly connected to the driving cam 603, and the driving cam 603 is attached to the cam mounting block 502; by adopting the setting driving The driving device 6 can realize auxiliary driving extrusion to quickly emulsify the coating powder. A row of extrusion arc blocks 5011 and a row of emulsification convex arc blocks 402 can be cross-installed to realize elastic crushing, more effectively realizing the traditional crushing and fusion emulsification positioning requirements. The overall structure is simple. At the same time, the sliding friction member 5 is set to realize auxiliary driving for penetration and discharging, which is more practical and effectively improves the linkage of the overall structure. At the same time, it also ensures that the rhythm between the emulsification penetration part 7 and the sliding friction member 5 is the same, avoiding continuous penetration and discharging causing blockage. A row of extrusion arc blocks 5011 and a row of emulsification convex arc blocks 402 collide quickly to achieve slight jumping, and the coating solution will gradually flow and leak, and deep fusion is achieved under continuous friction to achieve emulsification. At the same time, the cam mounting block 502 can drive the inclined plate 503 to slide back and forth, realizing driving the emulsification penetration part 7 to move repeatedly to realize penetration feeding, thereby ensuring the fineness of the material that needs to be fused later.
[0042] The emulsification and penetration section 7 includes: an infiltration sliding shaft 701, a sliding shaft mounting plate 7011, and an infiltration spring 702. The infiltration sliding shaft 701 is slidably connected to the sliding shaft mounting plate 7011; the sliding shaft mounting plate 7011 is fixedly connected to the emulsification cylinder 103; the infiltration sliding shaft 701 is sleeved with the infiltration spring 702; the emulsification and penetration section 7 includes: a linkage arm 703, an infiltration floating block 704, and an infiltration through hole 7041. There are two linkage arms 703, and the two linkage arms 703 are fixedly connected to both sides of the infiltration sliding shaft 701. Two linkage arms 703 are slidably connected to the emulsifying cylinder 103; each linkage arm 703 is provided with a roller; the rollers on the two linkage arms 703 roll in contact with the two inclined panels 503; an infiltration floating block 704 is fixedly connected to the bottom of the infiltration sliding shaft 701; four circles of conical blocks are fixedly connected to the bottom of the infiltration floating block 704; and three circles of infiltration through holes 7041 are formed on the infiltration floating block 704. The flushing device 8 includes a flushing pump 801 and a spraying ring 802. The flushing pump 801 is fixedly connected to the emulsifying cylinder 103. The flushing pump 801 is connected to a spraying ring 802 on its upper pipe, and the spraying ring 802 is fixedly connected to the inside of the emulsifying cylinder 103; the flushing pump 801 is connected to an external water source. By setting up a flushing device 8, it is possible to achieve an auxiliary penetration effect by adding water, utilizing the water absorption of the paint raw materials for mixing and dilution, and utilizing the up and down floating of the penetration part 7 to achieve penetration work, fully ensuring that the particle diameter of the penetrated powder meets the standard, thereby improving the overall processing quality of the paint powder; at the same time, the penetration amount of the penetration floating block 704 is the same in a single floating. By adopting the penetration part 7, the paint raw materials can be more perfectly mixed at the same time. The overall structure is simple and practical, and can realize automatic unloading of raw materials. The penetration floating block 704 floats and hits the material in real time, and the mixture of raw materials and water quickly penetrates out through the penetration through hole 7041. At the same time, the floating of the penetration floating block 704 can remove the blocking of the feed port at the bottom of the feed box 1031, thereby realizing automatic feeding. The overall structure is simple, practical and flexible, effectively improving the processing quality of the paint powder, and at the same time, the overall particle size is guaranteed by the penetration method.
[0043] The specific usage and function of this embodiment: In the present invention, after the raw materials are poured into the feed box 1031, the pressure-regulating screw rod 302 can be rotated to drive the pressure-regulating push plate 301 to move, so as to push the floating plate 401 to fit the friction slide plate 501. The continuous movement of the pressure-regulating push plate 301 will squeeze the return spring 304, so as to compress the elastic stroke of the return spring 304, thereby adjusting the elastic force of the return spring 304, so as to change the extrusion force between the floating plate 401 and the friction slide plate 501; under the drive of the driving motor 602, the driving cam 603 can be driven to squeeze the cam mounting block 502, so as to drive the friction slide plate 501 and the extrusion arc block 5011 to slide back and forth. At this time, a row of extrusion arc blocks 5011 and a row of emulsification convex arc blocks 402 collide quickly, so as to achieve a slight jump, and the coating solution will gradually flow and leak, and the depth can be achieved under continuous friction. Fusion, to achieve emulsification, at the same time, the cam mounting block 502 can drive the inclined plate 503 to slide back and forth; when the inclined plate 503 slides back and forth, the linkage arm 703 can be squeezed to drive the infiltration sliding shaft 701 to rise and fall, and the flushing water pump 801 is cooperated to pump water out from the spraying circle 802 for mixing, and at the same time, the infiltration floating block 704 floats and hits the material in real time, and the mixture of raw materials and water seeps out through the infiltration through hole 7041. As the infiltration floating block 704 floats, the seeping water will first flow to the infiltration floating block 704 to achieve the feeding work, and at the same time, the floating of the infiltration floating block 704 can remove the blocking of the feed port at the bottom of the feed box 1031 to achieve automatic feeding, and the emulsified powder flows to the carrying liquid tank 201, and is finally heated by the electric heating plate 202 to evaporate water, and the steam absorption and independent discharge are achieved through the steam suction fan 203 to complete the overall preparation process.
[0044] The above description is merely an exemplary embodiment of the present invention and is not intended to limit the scope of protection of the present invention. The scope of protection of the present invention is determined by the appended claims.
Claims
1. A nano coating powder preparation machine, characterized in that, The invention comprises a bearing mounting portion (1); a powder dehydration portion (2) is fixedly connected to the bearing mounting portion (1); a lifting and pressure regulating member (3) is installed at the bottom of the bearing mounting portion (1), and a vibration preparation member (4) is fixedly connected to the lifting and pressure regulating member (3); a sliding friction member (5) is fixedly connected to the bearing mounting portion (1); a driving device (6) is fixedly connected to the bearing mounting portion (1); an emulsification and permeation portion (7) is installed on the bearing mounting portion (1); a flushing device (8) is fixedly connected to the bearing mounting portion (1); the bearing mounting portion (1) comprises: a bearing mounting box (101), a diversion hole (1011), a return tension spring (102) and an emulsification cylinder (103), the bearing mounting A guide hole (1011) is provided on the box (101); two return tension springs (102) are fixedly connected to the carrying installation box (101); the emulsifying cylinder (103) is fixedly connected to the side of the carrying installation box (101); the lifting and pressure regulating member (3) comprises: a pressure regulating propulsion plate (301), a pressure regulating screw rod (302) and a sliding propulsion shaft (303); the pressure regulating propulsion plate (301) is slidably connected to the carrying installation box (101); the pressure regulating screw rod (302) is rotatably connected to the bottom of the pressure regulating propulsion plate (301); the pressure regulating screw rod (302) is threadedly connected to the carrying installation box (101); a row of sliding propulsion shafts (303) are slidably connected to the pressure regulating propulsion plate (301); The sliding friction member (5) comprises: a friction slide (501), an extrusion arc block (5011), a cam mounting block (502) and an inclined panel (503); the friction slide (501) is slidably connected to the carrier mounting box (101); a row of extrusion arc blocks (5011) are fixedly connected to the bottom of the friction slide (501); the cam mounting block (502) is fixedly connected to the friction slide (501); two inclined panels (503) are fixedly connected to the cam mounting block (502), and the bottoms of the two inclined panels (503) are inclined surface structures respectively; The driving device (6) comprises: a driving mounting frame (601), a driving motor (602) and a driving cam (603); the driving mounting frame (601) is fixedly connected to the carrying mounting box (101); the driving motor (602) is fixedly connected to the driving mounting frame (601); the driving cam (603) is fixedly connected to the output shaft of the driving motor (602), and the driving cam (603) is attached to the cam mounting block (502); The emulsification penetration part (7) comprises: an penetration sliding shaft (701), a sliding shaft mounting plate (7011) and a penetration spring (702); the penetration sliding shaft (701) is slidably connected to the sliding shaft mounting plate (7011); the sliding shaft mounting plate (7011) is fixedly connected to the emulsification cylinder (103); the penetration sliding shaft (701) is sleeved with the penetration spring (702); the emulsification penetration part (7) further comprises: a linkage arm (703), a penetration floating block (704) and a penetration through hole (7041); the linkage arm (703) is provided with two, the two linkage arms (703) are provided with two The linkage arms (703) are respectively fixedly connected to both sides of the permeation sliding shaft (701); the two linkage arms (703) are respectively slidably connected to the emulsifying cylinder (103); the two linkage arms (703) are respectively provided with rollers; the rollers on the two linkage arms (703) respectively roll and fit the two inclined panels (503); the permeation floating block (704) is fixedly connected to the bottom of the permeation sliding shaft (701); four circles of conical blocks are fixedly connected to the bottom of the permeation floating block (704); and three circles of permeation through holes (7041) are opened on the permeation floating block (704).
2. A nano coating powder preparation machine as claimed in claim 1, characterized in that: The bearing mounting portion (1) comprises a feed box (1031), the feed box (1031) is fixedly connected to the emulsifying cylinder (103), and the feed box (1031) is in communication with the emulsifying cylinder (103).
3. A nano coating powder preparation machine as claimed in claim 1, characterized in that: The powder dehydration section (2) comprises: a carrying liquid box (201), an electric heating plate (202) and a steam suction fan (203); the carrying liquid box (201) is fixedly connected to the side of the carrying installation box (101); the electric heating plate (202) is fixedly connected inside the carrying liquid box (201); the steam suction fan (203) is fixedly connected to the carrying liquid box (201), and an air inlet pipe of the steam suction fan (203) is located inside the carrying liquid box (201).
4. A nano coating powder preparation machine as claimed in claim 1, characterized in that: The lifting and pressure regulating member (3) comprises a return spring (304), and a row of the sliding propulsion shafts (303) are respectively provided with a return spring (304).
5. The nano coating powder preparation machine according to claim 1, characterized in that: The vibration preparation part (4) comprises: a floating plate (401) and an emulsified raised arc block (402); the floating plate (401) is fixedly connected to a row of sliding propulsion shafts (303); a row of emulsified raised arc blocks (402) is fixedly connected to the floating plate (401); and a water outlet inclined plate is provided on the side of the floating plate (401).
6. A nano coating powder preparation machine as claimed in claim 5, characterized in that: A row of the extrusion arc blocks (5011) and a row of the emulsification convex arc blocks (402) are cross-mounted.
7. A nano coating powder preparation machine as claimed in claim 1, characterized in that: The flushing device (8) comprises: a flushing water pump (801) and a spraying ring (802); the flushing water pump (801) is fixedly connected to the emulsifying cylinder (103); the upper pipe of the flushing water pump (801) is connected to the spraying ring (802), and the spraying ring (802) is fixedly connected to the inside of the emulsifying cylinder (103); the flushing water pump (801) is connected to an external water source.
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