Environment-friendly coating and environment-friendly coating processing technology
Through the design of multiple barrels and spiral blades, the external circulation and full dispersion of environmentally friendly coatings are achieved, which solves the problem of uneven material mixing and improves processing speed and product quality.
Patent Information
- Application Number
- CN202510689034.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-27
- Publication Date
- 2025-09-09
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the processing of environmentally friendly coatings, multiple raw materials accumulate in the container, resulting in uneven mixing and affecting the processing speed.
It adopts a multi-barrel structure, and a processing structure for grinding materials is set in each sub-barrel. The external circulation and the rotation of the spiral blades are used to achieve full dispersion and mixing of the materials. Combined with the design of the pushing and grinding frames, it ensures that the materials circulate between each sub-barrel and the main barrel, achieving sufficient material contact and reaction.
It speeds up the preparation of environmentally friendly coatings, improves the mixing uniformity and reaction efficiency of materials, reduces the generation rate of defective products, and ensures uniform control of material temperature.
Smart Images

Figure CN120605636A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of environmentally friendly coatings, and more particularly to an environmentally friendly coating and an environmentally friendly coating processing technology. Background Art
[0002] Environmentally friendly coatings are a type of coating product designed to reduce environmental pollution and harm to human health. In recent years, with rising environmental awareness and the promotion of relevant regulations, the market for these products has rapidly developed and attracted widespread attention, with demand also increasing daily. The processing of environmentally friendly coatings requires preparation, mixing, stirring, grinding, refinement, paint matching, color matching, filtering, and packaging. The speed of preparation, mixing, stirring, and grinding significantly affects the processing speed of environmentally friendly coatings. When processing environmentally friendly coatings, multiple raw materials are typically processed and added to a single container. Rotating stirring elements then promote mixing. Accumulated materials hinder dispersion, mixing, and reaction, resulting in slower processing speeds. Summary of the Invention
[0003] In order to optimize the deficiencies of the prior art, the present invention provides an environmentally friendly coating and an environmentally friendly coating processing technology, which can accelerate the preparation speed of the environmentally friendly coating by externally circulating dispersed materials and mixing the fully dispersed materials.
[0004] The technical solution adopted by the present invention to solve its technical problem is:
[0005] An environmentally friendly paint processing device includes multiple sub-barrels, each of which is provided with a processing structure for grinding materials. The multiple sub-barrels are distributed circumferentially, and a main barrel is provided in the middle of the multiple sub-barrels. The main barrel and the multiple sub-barrels are fixedly connected to a connecting frame. The lower part of each sub-barrel is provided with a discharge pipe connected to and communicated with the main barrel, and the upper part of each sub-barrel is provided with a return pipe connected to and communicated with the main barrel. The lower part of each return pipe is rotatably connected to a rotary pipe, the lower part of the main barrel is fixedly connected to a bottom plate, the upper part of the main barrel is fixedly connected to a limit frame, the limit frame is rotatably connected to a cover plate, the cover plate is slidably connected to a plurality of partition plates, the plurality of partition plates are fixed to the middle pipe, and the plurality of partition plates are fitted with the inner wall of the main barrel.
[0006] Furthermore, the number of the partition plates is the same as the number of the barrels.
[0007] Furthermore, each of the rotating tubes is provided with a plurality of spiral blades, and each rotating tube can drive the corresponding spiral blade to rotate around its own axis.
[0008] Furthermore, the cover plate is provided with an adjusting mechanism for driving the middle tube and the plurality of partition plates to rise and fall.
[0009] Furthermore, a transmission hole is provided at the lower portion of the middle tube, and a transmission shaft is rotatably connected to the transmission hole on the bottom plate for transmitting power.
[0010] Furthermore, the bottom plate is provided with a receiving groove for receiving the middle tube and a plurality of partition plates, and a rubber strip is fixed to the vertical edge of each partition plate.
[0011] Furthermore, the processing structure includes a revolving cover rotatably connected to the upper part of the sub-barrel, a plurality of push frames are fixedly connected to the lower part of each revolving cover, a sliding frame is slidably connected to the revolving cover, and a grinding frame is fixedly arranged in an alternating manner with the plurality of push frames at the lower part of the sliding frame, and the sliding frame can slide in the axial direction of the sub-barrel.
[0012] Furthermore, each of the pushing frames is fan-shaped, a plurality of buffer grooves are provided at the outer arc position of the pushing frame, a slope is provided at the lower part of the pushing frame, a plurality of discharge holes are provided on the edge where each grinding frame contacts the corresponding two pushing frames, and each sub-barrel is an annular barrel, and the bottom edge of the lower part of each sub-barrel is higher than the middle part.
[0013] Furthermore, according to the process of processing the environmentally friendly coating using the above-mentioned environmentally friendly coating processing device, the process includes the following steps:
[0014] Step 1: Add multiple materials into multiple buckets;
[0015] Step 2: Push, hammer and grind the materials in multiple buckets;
[0016] Step 3: Drive the materials in the multiple sub-barrels to flow from the bottom into the main barrel and then circulate back to the upper part of the sub-barrels to achieve circulation and dispersion;
[0017] Step 4: Drive multiple partition plates to rise to circulate multiple sub-barrels into the main barrel for material contact, and drive multiple spiral blades to rotate to achieve material mixing and complete the processing of environmentally friendly coatings.
[0018] Furthermore, the environmentally friendly coating processed according to the above-mentioned environmentally friendly coating processing technology includes the following components in the following weight ratios: 80-120 parts of natural resin; 500-600 parts of pigment; 80-120 parts of ethylene glycol; 30-50 parts of dispersant; 4-8 parts of defoaming agent; 2-8 parts of mildewproof agent; 4-6 parts of UV inhibitor; 10-20 parts of clay; and 15-25 parts of nano-alumina.
[0019] The beneficial effects of the environmentally friendly coating and the environmentally friendly coating processing technology of the present invention are: the preparation speed of the environmentally friendly coating can be accelerated by externally circulating dispersed materials and mixing the fully dispersed materials; the material processing speed can be accelerated by circulating multiple materials separately for separate processing; and the processing speed of the environmentally friendly coating can be accelerated by promoting material movement, hammering and grinding. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The present invention will be further described in detail below with reference to the accompanying drawings and specific implementation methods.
[0021] Figure 1 This is a structural diagram of an environmentally friendly coating processing device;
[0022] Figure 2 This is a structural diagram of materials processed in barrels;
[0023] Figure 3 Schematic diagram of the parts for the barrel;
[0024] Figure 4 It is a schematic diagram of the position structure of the push frame;
[0025] Figure 5 It is a schematic diagram of the position structure of the push frame and the grinding frame;
[0026] Figure 6 for Figure 5 A schematic structural diagram of the structure shown in another direction;
[0027] Figure 7 This is a structural diagram of the lifting of the grinding frame;
[0028] Figure 8 It is a structural diagram of material circulation in the barrel;
[0029] Figure 9 Schematic diagram of the structure of the partition plate;
[0030] Figure 10 It is a schematic diagram of the power transmission of the rotation of multiple spiral blades;
[0031] Figure 11 It is a structural diagram of the lifting of the partition plate;
[0032] Figure 12 It is a structural diagram of the materials in the mixing main barrel.
[0033] In the figure: a sub-barrel 11; an extension frame 12; a rotary cover 13; a gear ring 14; a side wheel 15; a sliding frame 16; a cross frame 17; a first cylinder 18; a push frame 21; a slope 22; a buffer tank 23; a grinding frame 24; a discharge hole 25; a main barrel 31; a discharge pipe 32; a return pipe 33; a rotary pipe 34; a spiral blade 35; a bottom plate 36; a receiving groove 37; a limit frame 38; a cover plate 39; a middle pipe 41; a partition plate 42; a vertical frame 51; a first pulley 52; a second pulley 53; a synchronous belt 54; a lifting frame 61; a second cylinder 62; a lifting frame 63; and a connecting frame 71. DETAILED DESCRIPTION
[0034] refer to Figure 1 、 8 , 9, 10, 11 and 12, detailing embodiments of fully dispersed material mixing:
[0035] An environmentally friendly paint processing device includes multiple sub-barrels 11, each sub-barrel 11 is provided with a processing structure for grinding materials, the multiple sub-barrels 11 are distributed circumferentially, a main barrel 31 is provided in the middle of the multiple sub-barrels 11, the main barrel 31 and the multiple sub-barrels 11 are fixedly connected to the connecting frame 71, the lower part of each sub-barrel 11 is provided with a discharge pipe 32 connected and communicated with the main barrel 31, the upper part of each sub-barrel 11 is provided with a return pipe 33 connected and communicated with the main barrel 31, the lower part of each return pipe 33 is rotatably connected to a rotary pipe 34, the lower part of the main barrel 31 is fixedly connected to a bottom plate 36, the upper part of the main barrel 31 is fixedly connected to a limit frame 38, the limit frame 38 is rotatably connected to a cover plate 39, the cover plate 39 is slidably connected to a plurality of partition plates 42, the plurality of partition plates 42 are fixedly connected to the middle pipe 41, and the plurality of partition plates 42 are fitted with the inner wall of the main barrel 31. The rotary cover 13 is provided with a feeding hole, which is provided with threads and connected to a threaded plate. By removing and installing the threaded plate, the feeding hole can be opened to add materials and the sub-barrel 11 can be closed. The bottom plate 36 is provided with a discharge hole, which is provided with threads and connected to a threaded plate. By removing and installing the threaded plate, the environmentally friendly paint can be discharged and the main barrel 31 can be closed.
[0036] The multiple sub-barrels 11 are used to disperse the raw materials for preparing environmentally friendly coatings and process them separately to prevent the materials from accumulating in one container. When the raw materials for preparing environmentally friendly coatings are mixed, the materials cannot be fully dispersed due to excessive materials, resulting in uneven distribution of the components of the prepared environmentally friendly coatings, and the performance cannot be balanced, resulting in defective products in the prepared environmentally friendly coatings. The materials processed in the multiple sub-barrels 11 can flow out from the multiple discharge pipes 32 and flow into the main barrel 31. The lower end surface of the main barrel 31 is lower than the lower part of the multiple sub-barrels 11, so that the materials flowing out of the multiple sub-barrels 11 can be gathered into the main barrel 31 for the convergence of the materials in the multiple sub-barrels 11. When the materials are processed separately, the multiple partition plates 42 divide the space in the main barrel 31 into multiple independent spaces, and the separated spaces in the main barrel 31 corresponding to each sub-barrel 11 are connected, and flow back to the upper part of the sub-barrel 11 through the revolving pipe 34 and the reflux pipe 33, so that the materials in a single sub-barrel 11 can be achieved. In order to fully circulate the material and achieve full dispersion of the material, a circulation pump is provided on the upper part of each reflux pipe 33, so that the material in the lower part of the main barrel 31 can be transported to the upper end through the circulation pump, so as to achieve the circulation of the material from low to high. After the material in each sub-barrel 11 is processed, when it is necessary to mix the materials in multiple sub-barrels 11, the multiple partition plates 42 are driven to rise, so that the originally multiple separated spaces in the main barrel 31 are connected from the bottom, so that the materials in the multiple sub-barrels 11 can flow into the main barrel 31 for contact, thereby circulating the material, achieving full mixing and reaction of the material, and fully processing the environmentally friendly coating. At the same time, the multiple sub-barrels 11 can still be connected to the space in the main barrel 31 and the material circulation, so as to fully disperse the material in the process of material circulation, facilitate full mixing and reaction of the material, achieve full dispersion and reaction of the material, thereby improving the quality of the prepared environmentally friendly coating and reducing the defective rate of the processed environmentally friendly coating. In addition, in the process of preparing environmentally friendly coatings, when it is necessary to adjust the temperature of the material, the material in the container is usually heated or cooled as a whole. The concentration of the material causes the material to be unable to be evenly heated or cooled synchronously during temperature control, resulting in some materials avoiding short-term heating or cooling and requiring long-term heating or cooling to allow heat to be transferred between the materials, thereby achieving temperature control of the material. In this application, when it is necessary to adjust the temperature of the material, a temperature regulating device can be placed outside the multiple discharge pipes 32, so that the temperature of the material can be controlled by heating or cooling the circulating material, so that sufficient heat exchange can be carried out for the material circulating through the multiple discharge pipes 32. Compared with the traditional centralized temperature adjustment of the material, the temperature control of the dispersed material can ensure that the material is completely and evenly heated, and can prevent the uneven heat exchange of the accumulated material, resulting in the inability to fully mix and react the material.
[0037] refer to Figure 1 and 8, detailed description of the embodiment of the dispersed processing material for circulation:
[0038] The number of the partition plates 42 is the same as the number of the sub-barrels 11. This ensures that the partition plates 42 divide the main barrel 31 into multiple independent spaces, and the number of spaces divided in the multiple main barrels 31 is the same as the number of the sub-barrels 11, thereby ensuring that the materials in the multiple sub-barrels 11 flow through the multiple independent spaces in the main barrel 31 for circulation processing.
[0039] refer to Figure 1 、 10 12, detailed description of the embodiment of promoting the movement of the material in the main barrel 31:
[0040] Each rotary tube 34 is provided with a plurality of spiral blades 35, each capable of driving its corresponding spiral blade 35 to rotate about its own axis. A first pulley 52 is fixedly connected to the top of each rotary tube 34. A plurality of uprights 51 corresponding to the rotary tubes 34 are fixedly connected to the cover plate 39. Each upright 51 is rotatably connected to a second pulley 53. Each first pulley 52 and its corresponding second pulley 53 are driven by a synchronous belt 54. Each second pulley 53 is fixedly connected to the output shaft of the first motor, and each first motor is fixedly connected to its corresponding stand 51. The first pulley 52 and the second pulley 53 are preferably spur gears, and the synchronous belt 54 is preferably a toothed belt, so that the first pulley 52 and the second pulley 53 are stably transmitted by the synchronous belt 54 of the toothed belt. A conventional tensioning mechanism is provided on each stand 51 to ensure that the first pulley 52 and the second pulley 53 are transmitted by the synchronous belt 54. The tensioning mechanism can be a cam with a threaded rod. The outer wall of the cam is squeezed to squeeze the outer wall of the synchronous belt 54. The situation of squeezing the synchronous belt 54 is adjusted by rotating the cam to ensure that the first pulley 52 and the second pulley 53 are stably transmitted by the synchronous belt 54.
[0041] Start multiple first motors, and the multiple first motors drive the multiple second pulleys 53 to rotate. The multiple second pulleys 53 drive the first pulley 52 to rotate through the synchronous belt 54. The multiple first pulleys 52 drive the multiple rotary tubes 34 to rotate. The rotary tubes 34 drive the multiple spiral blades 35 to rotate. Each of the multiple spiral blades 35 can push the material in the space of the corresponding main barrel 31 to be subjected to force in the resin direction and the horizontal direction, thereby promoting the full movement of the material under the rotation of the spiral blades 35, and dispersing and mixing the material, thereby avoiding the accumulation of material in the main barrel 31, affecting the mixing speed of the material, and reducing the preparation speed of the environmentally friendly coating, affecting the preparation of the environmentally friendly coating. When the partition plate 42 divides the main barrel 31 into multiple independent spaces, the rotation direction of the multiple spiral blades 35 can be clockwise or counterclockwise. The rotation of the multiple spiral blades 35 pushes the materials in the independent spaces separated in the main barrel 31 to move in the independent spaces. When the partition plate 42 rises, the spaces in the main barrel 31 are connected, the rotation directions of the multiple spiral blades 35 are different, and the rotation directions of adjacent spiral blades 35 are opposite. Therefore, when the multiple spiral blades 35 rotate, they can push the materials to move in the opposite direction in the vertical direction, thereby promoting the rapid flow of materials in the space corresponding to each rotary tube 34 and materials in other spaces, and preventing the multiple spiral blades 35 from rotating in the same direction, pushing the materials in the main barrel 31 synchronously upward or downward, causing the materials to collide with each other, resulting in the materials unable to be fully mixed, thereby reducing the mixing speed of the materials, and then reducing the preparation speed of the environmentally friendly coating.
[0042] refer to Figure 1 and 11 , details of an embodiment of adjusting the height of multiple partition plates 42 to connect and separate the spaces in the main tub 31:
[0043] The cover plate 39 is equipped with an adjustment mechanism that drives the central tube 41 and multiple partitions 42 upward and downward. This adjustment mechanism includes a lifting frame 63 rotatably connected to the central tube 41 and multiple lifting frames 61 fixedly connected to the cover plate 39. Each lifting frame 61 is fixedly connected to a second cylinder 62 that drives the lifting frame 63 upward and downward. When the second cylinder 62 is activated, the cylinder rod of the second cylinder 62 drives the lifting frame 63 upward and downward, which in turn drives the central tube 41 upward and downward, which in turn drives the multiple partitions 42 upward and downward. When the multiple partitions 42 rise away from the base plate 36, the space within the main barrel 31 is connected. When the multiple partitions 42 descend to abut against the base plate 36, the space within the main barrel 31 is divided into multiple independent chambers. This allows materials within the multiple independent chambers to circulate and connect with the sub-barrels 11 for processing, and also allows the space within the main barrel 31 to connect with the multiple sub-barrels 11 for dispersion and mixing.
[0044] refer to Figure 9, details an embodiment in which the multiple partition plates 42 rotate so that the multiple spaces formed by the multiple partition plates 42 and the multiple sub-barrels 11 are staggered to mix the materials:
[0045] A transmission hole is provided at the bottom of the middle tube 41, and a transmission shaft is rotatably connected to the bottom plate 36 to transmit power to the transmission hole. The transmission hole can be a non-rotating shape such as a rectangular hole or a spline hole, while the transmission shaft is shaped so as to not rotate relative to the transmission hole. The middle tube 41 and the transmission shaft can slide relative to each other, ensuring power transmission through the cooperation between the transmission hole and the transmission shaft. The transmission shaft is fixedly connected to the output shaft of the second motor, and the second motor is fixedly connected to the bottom plate 36. The lower part of the transmission shaft is cylindrical and is rotatably connected to the bottom plate 36 through the cylindrical part. When it is necessary to drive multiple partition plates 42 to rotate so that the discharge pipe 32 is misaligned with the corresponding space, the second motor is started, and the output shaft of the second motor drives the middle pipe 41 to rotate, and the middle pipe 41 drives multiple partition plates 42 to rotate. The multiple partition plates 42 push the material to move. The space formed by the multiple partition plates 42 is staggered with the original corresponding discharge pipe 32, so that the materials circulating in different sub-barrels 11 are mixed with the materials circulating in other sub-barrels 11, thereby accelerating the mixing speed of the materials. At this time, the return pipe 33 uses a middle part that can be stretched and rotated. The deformed metal tube can also be a combined tube body with metal tubes on both sides and a hose in the middle, which can prevent the return pipe 33 from being unable to bend and affecting the rotation of the cover plate 39, thereby affecting the rotation of the middle tube 41 and multiple partition plates 42, preventing interference in the movement of the middle tube 41 and multiple partition plates 42, affecting the mixing speed and mixing effect of the materials; when the output shaft of the second motor drives the middle tube 41 to rotate, it can only rotate 180 degrees on one side, so that rotation in two directions can be achieved, and any space in the main barrel 31 can be connected with any discharge pipe 32, thereby realizing the mixing of materials in multiple sub-barrels 11 and materials in other sub-barrels 11 circulated to the main barrel 31, so that the materials are fully mixed and the preparation speed of the materials is accelerated.
[0046] refer to Figure 9 、 10 and 12, detailing an embodiment of ensuring that the plurality of partition plates 42 can separate the space within the main tub 31 into a plurality of independent spaces:
[0047] The bottom plate 36 is provided with a receiving slot 37 for accommodating the central tube 41 and the plurality of partitions 42. A rubber strip is fixedly attached to the vertical edge of each partition 42. Thus, after the central tube 41 and the plurality of partitions 42 are raised, the rotation of the drive shaft drives the central tube 41 to rotate. After the central tube 41 and the plurality of partitions 42 are reset, the central tube 41 and the plurality of partitions 42 are aligned with the receiving slot 37, and then the central tube 41 and the plurality of partitions 42 are lowered, ensuring that the central tube 41 and the plurality of partitions 42 can fall back into the receiving slot 37, thereby partitioning the space within the main barrel 31 into multiple independent compartments. The rubber strip fixedly attached to the vertical edge of each partition 42 also prevents material from leaking from the contact surface between the partition 42 and the inner wall of the main barrel 31, which could cause the spaces separated by adjacent partitions 42 to become connected, thereby ensuring the partitioning of the space within the main barrel 31 and the connection of the lower portions of the partitions 42 after they are raised.
[0048] refer to Figure 1 、 2 , 3, 4, 5, 6 and 7, detailed description of the embodiment of grinding and dispersing materials:
[0049] The processing structure includes a rotary cover 13 rotatably connected to the upper part of the sub-barrel 11, and a plurality of push frames 21 are fixedly connected to the lower part of each rotary cover 13. A sliding frame 16 is slidably connected to the rotary cover 13, and a grinding frame 24 arranged alternately with the plurality of push frames 21 is fixedly connected to the lower part of the sliding frame 16. The sliding frame 16 can slide in the axial direction of the sub-barrel 11.
[0050] A cross frame 17 is fixedly connected to the middle of the sub-barrel 11. Each cross frame 17 is fixedly connected to a first cylinder 18. The sliding frame 16 is rotatably connected to the cylinder rod of the corresponding first cylinder 18. A ring gear 14 is fixedly connected to the rotary cover 13. An extension frame 12 is fixedly connected to the sub-barrel 11. Each extension frame 12 is rotatably connected to a side wheel 15 that drives the corresponding ring gear 14. Each side wheel 15 is fixedly connected to the output shaft of the third motor, and the third motor is fixedly connected to its corresponding extension frame 12. When the third motor is started, the third motor drives the side wheel 15 to rotate, and the side wheel 15 engages to drive the ring gear 14 to rotate, and the ring gear 14 drives the rotary cover 13 to rotate, and the rotary cover 13 drives multiple push frames 21 to rotate. The rotation of the multiple push frames 21 pushes the material in the sub-barrel 11 to move, so that the material can be dispersed during the movement of the material. The lower part of each push frame 21 fits with the inner wall of the sub-barrel 11, so that the material in the sub-barrel 11 can be pushed to move completely during the forward and reverse rotation. The rotation of the rotary cover 13 drives the sliding frame 16 to rotate synchronously, and the sliding frame 16 drives multiple grinding The grinding frame 24 rotates to achieve full mixing of the materials. At this time, the first cylinder 18 can be started, and the cylinder rod of the first cylinder 18 drives the sliding frame 16 to rise and fall. The sliding frame 16 drives the multiple grinding frames 24 to rise and fall. When the multiple grinding frames 24 rise and fall, they cooperate with the push frame 21 to complete the grinding. At the same time, the lifting of the multiple grinding frames 24 can hammer the materials to achieve material crushing, thereby achieving material mixing, dispersion, crushing and grinding, thereby coordinating the material to circulate from the discharge pipe 32, the main barrel 31, the return pipe 33 and the rotary pipe 34, thereby achieving full dispersion and mixing of the materials, and then processing different materials separately, and then fully dispersing and mixing them after convergence, thereby accelerating the preparation speed of environmentally friendly coatings. A feeding hole is provided on the rotary cover 13, and the feeding hole is provided with a thread. A threaded plate is connected to the thread. The feeding hole can be opened and closed by removing and installing the threaded plate.
[0051] refer to Figure 4 、 5 , 6 and 7, detailed description of the embodiment of fully processing the material in the sub-barrel 11:
[0052] Each of the pushing frames 21 is fan-shaped, and a plurality of buffer grooves 23 are provided at the outer arc position of the pushing frame 21. A slope 22 is provided at the lower part of the pushing frame 21. A plurality of discharge holes 25 are provided on the edge where each grinding frame 24 contacts the corresponding two pushing frames 21. Each sub-barrel 11 is an annular barrel, and the bottom edge of the lower part of each sub-barrel 11 is higher than the middle part.
[0053] The outer arc diameter of the push frame 21 provided with the buffer groove 23 gradually decreases, so that the setting of the buffer groove 23 can perform differential speed on the material pushed by the push frame 21 when it rotates. In the process of reciprocating motion, the pushed material can have different angular velocities, thereby promoting the mixing of the material. The setting of the slope 22 can play an extrusion role in the process of pushing the material movement, so that the material is squeezed and crushed in the process of the reciprocating rotation of the push frame 21 to push the material movement. When there is a height difference between the grinding frame 24 and the push frame 21, the grinding frame 24 and the push frame 21 can synchronously push the material to disperse. and mixing, and when the grinding frame 24 reciprocates and moves relative to the push frame 21, it can hammer the material at the bottom and cooperate with the push frame 21 to grind the material, and the provision of multiple discharge holes 25 can prevent the material from accumulating at the bottom because there is no space to move to the upper end, resulting in blocking the descent of the grinding frame 24. The multiple discharge holes 25 can allow the extruded material to be squeezed out from the multiple discharge holes 25 during the descent of the grinding frame 24, thereby giving the grinding frame 24 a larger travel space, allowing the material at the bottom to move to the upper part, thereby more fully achieving the full crushing, extrusion and mixing of the material. The annular sub-barrel 11 can make the material more dispersed, facilitating the movement and mixing of the material.
[0054] refer to Figure 1 、 6 , 7, 8, 10 and 11, detailed description of the embodiment of processing environmentally friendly coatings:
[0055] According to the above-mentioned process of processing environmentally friendly coatings by an environmentally friendly coating processing device, the process includes the following steps:
[0056] Step 1: Add various materials into multiple buckets 11 respectively;
[0057] Step 2: Push, hammer and grind the materials in the multiple sub-barrels 11 to process the materials separately;
[0058] Step 3: Drive the materials in the multiple sub-barrels 11 to flow from the bottom into the main barrel 31 and then circulate back to the upper part of the sub-barrel 11 to achieve circulation and dispersion, so as to achieve separate dispersion of the materials and facilitate separate processing of the materials;
[0059] Step 4: Drive the multiple partition plates 42 upward to allow the multiple sub-barrels 11 to circulate into the materials in the main barrel 31 and contact each other, and drive the multiple spiral blades 35 to rotate to achieve material mixing and complete the processing of the environmentally friendly coating.
[0060] The environmentally friendly coating processed according to the above-mentioned environmentally friendly coating processing technology includes the following components in the following weight ratios: 80 parts of natural resin; 500 parts of pigment; 80 parts of ethylene glycol; 30 parts of dispersant; 4 parts of defoaming agent; 2 parts of mildewproof agent; 4 parts of anti-ultraviolet agent; 10 parts of clay; and 15 parts of nano-alumina.
[0061] The environmentally friendly coating comprises the following components in the following weight ratios: 100 parts of natural resin; 550 parts of pigment; 100 parts of ethylene glycol; 40 parts of dispersant; 6 parts of defoamer; 5 parts of mildew inhibitor; 5 parts of anti-ultraviolet agent; 15 parts of clay; and 20 parts of nano-alumina.
[0062] The environmentally friendly paint comprises the following components in the following weight ratios: 120 parts of natural resin; 600 parts of pigment; 120 parts of ethylene glycol; 50 parts of dispersant; 8 parts of defoamer; 8 parts of mildewproof agent; 6 parts of anti-ultraviolet agent; 20 parts of clay; and 25 parts of nano-alumina.
Claims
1. An environmentally friendly coating processing device, characterized by: The invention comprises a plurality of sub-barrels (11), each of which is provided with a processing structure for grinding materials. The plurality of sub-barrels (11) are distributed circumferentially. A main barrel (31) is provided in the middle of the plurality of sub-barrels (11). The main barrel (31) and the plurality of sub-barrels (11) are fixedly connected to a connecting frame (71). The lower part of each sub-barrel (11) is provided with a discharge pipe (32) connected and communicated with the main barrel (31). The upper part of each sub-barrel (11) is provided with a discharge pipe (32) connected and communicated with the main barrel (31). The return pipe (33) is rotatably connected to the return pipe (34) at the lower part of each return pipe (33). The lower part of the main barrel (31) is fixedly connected to the bottom plate (36). The upper part of the main barrel (31) is fixedly connected to the limit frame (38). The limit frame (38) is rotatably connected to the cover plate (39). The cover plate (39) is slidably connected to a plurality of partition plates (42). The plurality of partition plates (42) are fixedly connected to the middle pipe (41). The plurality of partition plates (42) are in contact with the inner wall of the main barrel (31).
2. The environmentally friendly coating processing device according to claim 1, characterized in that: The number of the partition plates (42) is the same as the number of the sub-barrels (11).
3. The environmentally friendly coating processing device according to claim 1, characterized in that: Each of the rotating tubes (34) is provided with a plurality of spiral blades (35), and each rotating tube (34) can drive the corresponding spiral blade (35) to rotate around its own axis.
4. The environmentally friendly coating processing device according to claim 1, characterized in that: The cover plate (39) is provided with an adjusting mechanism for driving the middle tube (41) and the plurality of partition plates (42) to rise and fall.
5. The environmentally friendly coating processing device according to claim 1, characterized in that: A transmission hole is provided at the lower portion of the middle tube (41), and a transmission shaft is rotatably connected to the bottom plate (36) for transmitting power to the transmission hole.
6. The environmentally friendly coating processing device according to claim 1, characterized in that: The bottom plate (36) is provided with a receiving groove (37) for receiving the middle tube (41) and a plurality of partition plates (42), and a rubber strip is fixed to the vertical edge of each partition plate (42).
7. The environmentally friendly coating processing device according to claim 1, characterized in that: The processing structure comprises a rotary cover (13) rotatably connected to the upper part of the sub-barrel (11), a plurality of push frames (21) being fixedly connected to the lower part of each rotary cover (13), a sliding frame (16) being slidably connected to the rotary cover (13), a grinding frame (24) staggered with the plurality of push frames (21) being fixedly connected to the lower part of the sliding frame (16), and the sliding frame (16) being capable of sliding in the axial direction of the sub-barrel (11).
8. The environmentally friendly coating processing device according to claim 7, characterized in that: Each of the pushing frames (21) is fan-shaped, a plurality of buffer grooves (23) are provided at the outer arc position of the pushing frame (21), a slope (22) is provided at the lower portion of the pushing frame (21), a plurality of discharge holes (25) are provided on the edge where each grinding frame (24) contacts the corresponding two pushing frames (21), and each sub-barrel (11) is an annular barrel, and the bottom edge of the lower portion of each sub-barrel (11) is higher than the middle portion.
9. A process for processing environmentally friendly coatings using an environmentally friendly coating processing device according to any one of claims 1 to 8, characterized in that: The process includes the following steps: Step 1: Add multiple materials into multiple buckets (11); Step 2: pushing, hammering and grinding the materials in the multiple sub-barrels (11); Step 3: driving the materials in the plurality of sub-barrels (11) to flow from the lower part into the main barrel (31) and then circulate back to the upper part of the sub-barrels (11) to achieve circulation and dispersion; Step 4: driving the plurality of partition plates (42) to rise to allow the plurality of sub-barrels (11) to circulate into the materials in the main barrel (31) for contact, and driving the plurality of spiral blades (35) to rotate to achieve mixing of the materials and complete the processing of the environmentally friendly coating.
10. The environmentally friendly coating processed by the environmentally friendly coating processing process according to claim 9 is characterized in that: The environmentally friendly coating comprises the following components in the following weight ratios: 80-120 parts of natural resin; 500-600 parts of pigment; 80-120 parts of ethylene glycol; 30-50 parts of dispersant; 4-8 parts of defoamer; 2-8 parts of mildewcide; 4-6 parts of anti-ultraviolet agent; and 10-20 parts of clay. 15-25 parts of nano-alumina.