Emulsifying machine for sealant test

By setting adjustable blades on the bottom of the shaft of the emulsifier, the existing emulsifiers have solved the problems of insufficient stirring and high energy consumption in the early stage of mixing, and the effect of efficient mixing and energy saving is achieved.

CN120227771AActive Publication Date: 2025-07-01FUJIAN CHANGDE PLASTIC IND
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Patent Information

Application Number
CN202510706123.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-29
Publication Date
2025-07-01
Estimated Expiration
2045-05-29

AI Technical Summary

Technical Problem

The existing small emulsifiers can only realize the movement of the blades up and down and rotation during the mixing process, resulting in insufficient stirring, especially when the material is first entered, it is easy to agglomerate due to material problems. Adding the blades and stirring objects to solve this problem will increase resistance and energy consumption.

Method used

A sealant test emulsifier is designed, by providing adjustable blades at the bottom of the rotary shaft, initially opening to fully stir the material, and after mixing, the blades are closed to reduce stirring resistance and energy consumption.

Benefits of technology

It realizes sufficient dispersion and mixing materials in the early stage of mixing, and then reduces stirring resistance and energy consumption, improves mixing efficiency and practicality, and adapts to the needs of different usage conditions.

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Abstract

The invention belongs to the technical field of mixing and stirring, and particularly relates to a sealant test emulsifying machine which comprises a machine body, a material barrel and a rotating shaft, a plurality of blades are clamped to the bottom of the rotating shaft, the bottom of the rotating shaft is connected with the blades through shaft sleeves, the shaft sleeves are clamped to the rotating shaft, and fixing shafts embedded into the shaft sleeves are arranged on the blades. A first sleeve piece and a second sleeve piece are connected to the rotating shaft in a sliding mode, a plurality of grooves are formed in the first sleeve piece and the second sleeve piece, stirring pieces rotationally connected with the first sleeve piece and the second sleeve piece are arranged in the grooves, and a first air cylinder and a second air cylinder which are used for pushing the first sleeve piece to move downwards and pushing the shaft sleeve to move upwards are arranged at the upper end and the bottom of the material barrel respectively. The motor on the machine body is started to synchronously drive the unfolded stirring piece to rotate, materials on the upper layer are smashed and scattered, and when the blades at the lower end rotate to form vortex mixing, the smashed materials are mixed, so that the mixing degree is increased, the mixing efficiency is improved, and the caked and floating materials on the upper layer are scattered and mixed more sufficiently.
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Description

Technical Field

[0001] The present invention relates to the technical field of mixing and stirring, and in particular to a sealant test emulsifying machine. Background Art

[0002] An emulsifying machine shears, disperses, and impacts materials through the high-speed rotation of a homogenizing head connected to an engine. In this way, the materials will become finer, promoting the mixing of oil and water. In the prior art, it is generally widely used in the production process of cosmetics or food, and is also often used in glue mixing.

[0003] Regardless of the application field, it is driven by components such as motors to control the high-speed rotation of the blades to drive various materials to rotate and mix. At the same time, after long-term rotation and stirring, the input materials are fully mixed and reacted to form the required materials, and then the materials are evacuated through compressed air to form a vacuum state and then discharged. However, in the prior art, in the mixing process of small emulsifying machines, only the blades can move up and down and rotate self, making the stirring more sufficient and improving the efficiency. However, because the qualities of different materials are different, the degree and time of stirring required are also different. Especially when the materials first enter, some will be on the upper layer and agglomerate due to the material problems, so it is not easy to stir and mix. Therefore, in the prior art, more blades and stirring objects are added to ensure that the materials can be fully stirred when they are first mixed, and then slowly stirred to make the materials fully mixed and fused. As a result, the increase in the contact area between the stirring objects and the blades increases the resistance, so more power is required, and the required energy and power also need to be increased. And for some existing material mixing, generally after sufficient stirring in the early stage, only simple continuous flow mixing of the materials is required in the later stage. In this state, stirring does not require too many blades or large blades. However, the blades in the prior art cannot be adjusted. Because the upper blades still exist, more energy consumption is required. If the power is reduced, the stirring speed will slow down. Therefore, this application proposes a new solution. By adjusting and retracting the blades, they are opened at the beginning of mixing and can be closed during subsequent slow mixing, so as to ensure that after the materials are fully dispersed and mixed, the unnecessary stirring rods are retracted to reduce the power and energy consumption. Summary of the Invention

[0004] The purpose of the present invention is to provide a sealant test emulsifying machine to solve the above problems.

[0005] To achieve the above object, the present invention provides the following technical solution: A sealant test emulsifying machine, including a machine body, a material bucket and a rotating shaft. At the bottom of the rotating shaft, several blades are clamped. The bottom of the rotating shaft is connected to the blades through a bushing, and the bushing is clamped to the rotating shaft. The blades are provided with fixed shafts embedded in the bushing. A first kit and a second kit are slidably connected to the rotating shaft. The first kit and the second kit are provided with several grooves, and stirring members rotatably connected to the first kit and the second kit are arranged in the grooves. The joints of the two stirring members are rotatably connected. At the upper and lower ends of the material bucket, a first cylinder and a second cylinder for pushing the first kit downward and the bushing upward are respectively provided. A first pushing member for pushing the second kit upward is arranged on the bushing. An adjusting assembly one for increasing the contact surface with the material is arranged on the rotating shaft; The adjusting assembly one includes two stirring blades slidably connected to the rotating shaft. Support rods are arranged on the stirring blades. A first guiding groove for restricting and guiding the movement of the support rods is arranged in the rotating shaft. Hinge rods are rotatably connected to the closer sides of the two stirring blades. The ends of the hinge rods away from the stirring blades are rotatably connected to the stirring members. An adjusting assembly two for pushing the stirring blades to rotate and incline is arranged on the rotating shaft and the stirring members; The adjusting assembly two includes a first connecting rod and a second connecting rod arranged between the stirring blade and the support rod. The first connecting rod is fixedly connected to the stirring blade, and the support rod penetrates through the second connecting rod. The first connecting rod and the second connecting rod are rotatably connected. A second guiding groove for accommodating the movement of the first connecting rod and the second connecting rod is arranged in the rotating shaft. Ball head members are arranged at the joints of the upper and lower stirring members, and the two ball head members are respectively rotatably connected to the upper and lower stirring members. The end of the hinge rod away from the stirring blade is rotatably connected to the ball head member. A first convex block is arranged on the first connecting rod. A second convex block for abutting against the first convex block and pushing the first connecting rod to rotate is arranged at the bottom of the second guiding groove. A driving assembly for driving the blades and the fixed shafts to rotate self is arranged on the rotating shaft.

[0006] Preferably, a third convex block for displacing from the second convex block and pushing the first convex block to reset is arranged in the second guiding groove. The first guiding groove is inclined, and the stirring blade is in a triangular state.

[0007] Preferably, the first connecting rod and the second connecting rod are in an interference fit state, and the friction force between the first connecting rod and the second connecting rod is greater than the abutting force between the stirring blade and the material, and the friction force between the first connecting rod and the second connecting rod is less than the thrust force between the second convex block and the third convex block.

[0008] Preferably, the driving assembly includes a limiting block arranged on a fixed shaft. The limiting block is slidably connected to the fixed shaft, and the fixed shaft is rotatably connected to a shaft sleeve. An annular groove one for accommodating the embedding and rotation of the limiting block is provided in the shaft sleeve. A transmission wheel is rotatably connected to the rotating shaft, a gear is clamped on the fixed shaft, the first pushing member is slidably connected to the transmission wheel, and a first spring for supporting the first pushing member is provided in the transmission wheel. A blocking block for blocking the upward movement of the second kit is provided on the rotating shaft. A second pushing member for supporting the transmission wheel is slidably connected to the shaft sleeve, and a second spring is provided between the second pushing member and the shaft sleeve. An abutting block for pushing the limiting block backward and blocking the limiting block is provided on the transmission wheel.

[0009] Preferably, a third spring for pushing the limiting block out of the annular groove one is provided on the fixed shaft. The elastic force of the first spring is greater than the gravity of the second kit, the elastic force of the second spring is greater than the self-weight of the transmission wheel, and the elastic forces of the first spring and the second spring are both less than the thrust between the second cylinder and the blocking block.

[0010] Preferably, a cover for covering the blade and rotatably connected is provided at the bottom of the rotating shaft. The cover is located below the gear and has a driving wheel meshing with the gear.

[0011] Preferably, a plurality of through holes for discharging materials are provided on the cover, and an annular groove two for accommodating the movement of the piston rod of the second cylinder is provided on the cover.

[0012] Compared with the prior art, the beneficial effects of the present invention are as follows: First, after using this device, after pouring the materials to be mixed into the material bucket, the switches for controlling the first cylinder and the second cylinder on the machine body can be turned on, so that the first cylinder drives the upper first kit to drive the stirring member to move downward, and the shaft sleeve at the bottom drives the blade and the second pushing member to move upward synchronously. The second pushing member pushes the transmission wheel upward synchronously, driving the first pushing member to push the second kit upward, so that the upper and lower stirring members rotate and expand along the rotation point of connection, forming an angular state. Thus, when the motor on the machine body drives the rotating shaft to rotate, the expanded stirring members are synchronously driven to rotate, crushing and dispersing the materials in the upper layer. And when the blade at the lower end rotates, a vortex is formed to drive the materials to rotate, mixing the crushed materials to accelerate the mixing degree and improve the mixing efficiency, making the caked and floating materials in the upper layer more thoroughly dispersed and mixed. Second, when the two stirring members approach each other, they will synchronously pull the connected hinge rods outward, thereby driving the position where the two stirring blades are joined to move away from the center of the rotating shaft. At the same time, it pulls the stirring blades to move obliquely and the upper and lower stirring blades also approach each other. Thus, the expanded stirring blades can increase the contact area with the material. When the stirring members at the upper and lower ends break up and crush the contacted material, the stirring blades push the material to mix. And as the contact area increases, it can make the glue material flow more evenly and reduce the difference in local concentration, improving the mixing efficiency; Third, when the position where the two stirring blades are joined is pulled and moved outward, the stirring blades move obliquely and at the same time rotate along the support rod. Thus, when tilted, the connecting rod 1 and the connecting rod 2 also tilt. When the support rod moves to the position close to the upper and lower guiding grooves 1, the connecting rod 1 and the connecting rod 2 change from the tilted state to the horizontal state. And when continuing to be pulled and moved outward, the convex block 1 on the connecting rod 1 will pass by the convex block 3 and abut against the convex block 2. Due to the blocking of the convex block 2 and the pulling of the stirring member, the convex block 2 pushes the convex block 1 to drive the connecting rod 1 to rotate, and drives the stirring blade to rotate at the same time, and presents a tilted state. Thus, it is convenient to drive the material to rotate and mix when rotating. And through the tilt of the stirring blade, the flow track of the material can be made more complex and diverse. It can not only flow axially but also radially, and also reduce the direct impact between the stirring blade and the material. Thereby, it can improve the mixing uniformity and the mixing efficiency; Fourth, when the shaft sleeve and the fixed shaft move upward, they drive the pusher 1 and the pusher 2 to move upward, and the pusher 1 pushes the kit 2 to move upward. When the kit 2 abuts against the blocking block and cannot move upward any further, the cylinder 2 continues to push. Thus, under the thrust of the cylinder 2 and the restriction of the blocking block, the pusher 1 and the pusher 2 will compress the spring 1 and the spring 2. And when the transmission wheel cannot move upward any further, the gear will move upward. And the teeth on the bottom surface of the transmission wheel mesh with the gear. At the same time, the abutting block on the transmission wheel will directly abut against the limiting block and push the limiting block to move and embed into the annular groove. Thereby, it breaks away from the restriction of the shaft sleeve and can rotate relative to the shaft sleeve. Thus, when the rotating shaft rotates, while the shaft sleeve drives the blades to rotate, because the transmission wheel does not rotate synchronously, it will drive the gear to rotate, so that the driven rotating blades can also rotate by themselves. Through the two rotation directions, the flow direction of the stirred material is diverse, and it is mixed more evenly and fully. At the same time, it fully improves the stirring efficiency. At the same time, stirring at the upper and lower positions makes the vortex stirring of the upper and lower parts mix fully. Secondly, after mixing for a period of time, the cylinder 1 and the cylinder 2 reset, and the expanded stirring members and the stirring blades can be directly driven to reset, which is convenient for adjustment. When the material is just put in, it improves the stirring efficiency and better breaks up and crushes the materials of different substances. And after the stirring is completed and such a large stirring effect is no longer needed, it can be directly adjusted and closed, and only the bottom blades need to rotate and stir, which is convenient for adjustment and better adapts to different usage situations, improving the practicability and adaptability, thereby saving energy and energy consumption and achieving cost savings. Brief Description of the Drawings

[0013] Figure 1 It is a schematic structural diagram of an emulsion machine for sealant testing; Figure 2 It is a schematic internal structure diagram of an emulsion machine for sealant testing; Figure 3 It is a schematic partial structure diagram of an emulsion machine for sealant testing Figure 1 ; Figure 4 It is Figure 3 a schematic enlarged partial view at A; Figure 5 It is Figure 3 a schematic enlarged partial view at B; Figure 6 It is a schematic internal structure diagram of an emulsion machine for sealant testing at the shaft sleeve; Figure 7 It is a schematic partial structure diagram of an emulsion machine for sealant testing Figure 2 ; Figure 8 It is a schematic structural diagram of an emulsion machine for sealant testing at one place of the connecting rod.

[0014] Reference Numerals: 1, body; 2, material barrel; 3, rotating shaft; 4, blade; 5, shaft sleeve; 6, fixed shaft; 7, kit one; 8, kit two; 9, groove; 10, stirring member; 11, cylinder one; 12, cylinder two; 13, pushing member one; 14, stirring blade; 15, support rod; 16, guiding groove one; 17, hinged rod; 18, connecting rod one; 19, connecting rod two; 20, guiding groove two; 21, ball head member; 22, convex block one; 23, convex block two; 24, convex block three; 25, limiting block; 26, annular groove one; 27, gear; 28, spring one; 29, blocking block; 30, pushing member two; 31, spring two; 32, abutting block; 33, spring three; 34, cover; 35, driving wheel; 36, perforation; 37, annular groove two; 38, transmission wheel. Detailed Description of the Invention

[0015] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. In the description of the present invention, it should be understood that the orientation or positional relationships indicated by the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. are based on the orientation or positional relationships shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention.

[0016] A sealant test emulsifying machine, as Figures 1 - 8 shown, includes a machine body 1, a material barrel 2, and a rotating shaft 3. A plurality of blades 4 are clamped at the bottom of the rotating shaft 3, and the bottom of the rotating shaft 3 is connected to the blades 4 through a shaft sleeve 5. After this device is normally used, the materials or glue that need to be mixed and stirred are poured into the material barrel 2, and the motor switch outside the machine body 1 is turned on. The rotating shaft 3 drives the blades 4 to rotate and stir the materials, forming a vortex flow to continuously stir and rotate to mix the materials. Thus, the stirring is relatively slow. Some will control the up and down movement of the rotating shaft 3 through a cylinder, driving the blades 4 to move up and down, so as to change the position of the flow convergence and improve the stirring efficiency. In the prior art, the stirring efficiency is also improved by directly increasing the number of blades 4. However, at the same power, when the number of stirring members 10 increases and the contact surface increases, the stirring speed slows down and the effect decreases. If the power is increased, more power is consumed. Moreover, the emulsifying machine is only prone to floating and caking due to different material qualities when the materials enter, resulting in a greater need for stirring. When the materials are broken up, they need to precipitate and react, and generally do not require too much stirring force. As long as the materials are continuously rotated to make the flow fully mixed. Therefore, if there are multiple stirring rods, under the same reaction time, the stirring members 10 with more blades 4 consume more energy.

[0017] The bushing 5 is snap-connected to the rotating shaft 3. A fixed shaft 6 inserted into the bushing 5 is provided on the blade 4. A first kit 7 and a second kit 8 are slidably connected to the rotating shaft 3. A number of grooves 9 are provided on the first kit 7 and the second kit 8. A stirring member 10 rotatably connected to the first kit 7 and the second kit 8 is provided in the groove 9. The connection between the two stirring members 10 is rotatably connected. An air cylinder 11 for pushing the first kit 7 downward and an air cylinder 12 for pushing the bushing 5 upward are respectively provided at the upper end and the bottom of the material bucket 2. A first pushing member 13 for pushing the second kit 8 upward is provided on the bushing 5. An adjusting assembly 1 for increasing the contact surface with the material is provided on the rotating shaft 3. After using this device, by turning on the switches of the air cylinder 11 and the air cylinder 12 driven externally by the machine body 1, the air cylinders 11 and 12 are inflated, and the piston rods are pushed to move to push the first kit 7 downward. At the same time, the air cylinder 12 pushes the bushing 5 upward and drives the first pushing member 13 to move upward to drive the second kit 8 to move upward. The first kit 7 and the second kit 8 move towards each other, so as to squeeze the two rotatably connected stirring members 10 to approach simultaneously. The connection between the upper and lower stirring members 10 is rotatably connected. When moving closer synchronously, the rotation point will move outward and rotate the two stirring members 10 to be inclined and approach each other and unfold. Since the first kit 7 and the second kit 8 are slidably connected to the rotating shaft 3, when the rotating shaft 3 rotates, it will drive the two kits and the unfolded stirring members 10 to rotate synchronously. Since the unfolded stirring members 10 are smaller and the sides are inclined, it is easier to contact the material and break up and disperse the material. Since it is provided at the upper end, the caked material at the upper end is easier to disperse. Then, the bottom blade 4 rotates to make different materials mix better and more evenly and fully. Therefore, when the normal bottom blade 4 needs to be lifted, the stirring members 10 will be automatically unfolded, so as to improve the mixing effect. At the same time, after the stirring is uniform, by moving the blade 4 downward to reset, the stirring members 10 can be retracted, which is convenient for adjustment, reduces the resistance and reduces the power output, so as to save energy consumption. When a larger stirring force is required, it can be directly adjusted to increase. When it is not necessary to increase, it can be directly turned off, which is convenient and fast. Compared with the fixed type in the prior art, it is more convenient and practical, and better adapts to the use of different situations. Secondly, after it can be directly retracted and attached to the rotating shaft 3, whether it is retracted or unfolded, the weight of these structures does not change, only the contact area with the material changes and the resistance changes.

[0018] The first adjusting component includes two stirring blades 14 that are slidably connected to the rotating shaft 3. A support rod 15 is provided on the stirring blade 14. A first guiding groove 16 for restricting the support rod 15 and guiding the movement of the support rod 15 is provided inside the rotating shaft 3. Hinge rods 17 are rotatably connected to the two stirring blades 14 at the positions where they are close to each other. One end of the hinge rod 17 away from the stirring blade 14 is rotatably connected to the stirring member 10. An adjusting component two for pushing the stirring blade 14 to rotate and tilt is provided on the rotating shaft 3 and the stirring member 10. The first guiding groove 16 is inclined. Secondly, when the upper and lower stirring members 10 are unfolded, the connection part of the two stirring members 10 will pull the connected hinge rod 17 to move outwards, and drive the upper and lower stirring blades 14 connected by the two hinge rods 17. When the two stirring blades 14 move and approach each other, the support rod 15 moves downward along the first guiding groove 16. Because the positions and lengths of the stirring blade 14 and the stirring member 10 are different and they are pulled by the hinge rod 17, the stirring blade 14 will tilt and move downward. Therefore, under the guidance of the inclined first guiding groove 16, the dislocation of the support rod 15 and the stirring blade 14 is avoided. After the two stirring blades 14 are pulled to the close position, they will be pulled forward for a certain distance due to the length problem, and the hinge rod 17 will also rotate along the connection part of the stirring blade 14 and the stirring member 10. In this state, the two stirring blades 14 are unfolded, and the quantity can be freely increased or decreased according to the situation. Therefore, when rotating, the contact surface with the material is increased, and the stirring effect is improved. After the material is dispersed by the stirring member 10, the dispersed material can flow more evenly, and the difference in local concentration is reduced, improving the mixing efficiency.

[0019] The second adjusting component includes a connecting rod 18 and a connecting rod 2 19 arranged between the stirring blade 14 and the support rod 15. The connecting rod 18 is fixedly connected to the stirring blade 14, and the support rod 15 runs through the connecting rod 2 19. A guide groove 20 accommodating the movement of the connecting rod 18 and the connecting rod 2 19 is provided in the rotating shaft 3. A convex block 22 is provided on the connecting rod 18. A convex block 23 abutting against the convex block 22 and pushing the connecting rod 18 to rotate is provided at the bottom of the guide groove 20. A convex block 3 24 is provided in the guide groove 20, which is misaligned with the convex block 23 and pushes the convex block 1 22 to reset. Secondly, when the stirring blade 14 is driven to unfold by the stirring member 10, the support rod 15 moves along the guide groove When the first connecting rod 16 moves down and rotates, it will drive the first connecting rod 18 and the second connecting rod 19 to move down synchronously, and the first connecting rod 18 and the second connecting rod 19 move down along the guide groove 20. At the same time, after the two stirring pieces 14 are close to each other and change from an inclined state to a horizontal state, they will continue to be pulled forward and move. The protrusion on the first connecting rod 18 will first pass through the protrusion three 24. Because the protrusion three 24 is misaligned with the first protrusion 1 22, it will directly pass through without contacting the protrusion three 24 when moving outward, and will directly face and abut the protrusion one 22 after passing the protrusion two 23. The first connecting rod 18 is rotatably connected with the second connecting rod 19. The first connecting rod 18 and the second connecting rod 19 are in a state of interference fit, and the connecting rods 18 and 19 are connected. The friction force between the connecting rod 18 and the connecting rod 2 19 is greater than the contact force between the stirring piece 14 and the material, and the friction force between the connecting rod 18 and the connecting rod 2 19 is less than the thrust of the protrusion 23 and the protrusion 3 24. In a normal state, the connecting rod 18 and the connecting rod 2 19 are tightly connected and not easy to rotate. However, under the interaction of the pulling force of the stirring rod and the blocking force of the protrusion 23, and the connecting rod 2 19 cannot rotate, pulling the protrusion 23 will push the protrusion 1 22 to rotate, and drive the connecting rod 18 and the stirring piece 14 to rotate synchronously by some angles, and stagger the movement of the protrusion 23, thereby presenting an inclined setting, and through the tight connection between the connecting rod 18 and the connecting rod 2 19 Under the tight connection, it is ensured that the force of contact with the material during rotation will not cause rotation. A ball head 21 is provided at the connection of the upper and lower stirring members 10, and the two ball head members 21 are respectively connected to the upper and lower stirring members 10 for rotation. The end of the hinged rod 17 away from the stirring blade 14 is connected to the ball head 21 for rotation, which will drive the hinged rod 17 to rotate along the ball head 21, so that the entire stirring blade 14 is tilted and fits with the material during the entire rotation, making the material flow trajectory more complex and diverse, not only axial flow but also radial flow, and also reducing the direct impact between the stirring blade 14 and the material, while improving the mixing efficiency, it can also save energy due to the reduced resistance due to the tilt. The stirring blade 14 is set in a triangular state, which will not cause the two stirring members 10 to restrict and block the stirring blade 14.

[0020] Thus, when expanded through the above settings, under the direct drive of cylinder one 11 and cylinder two 12, the first kit 7 and the second kit 8 can be directly driven to move, and the two stirring members 10 and the stirring blades 14 are driven to expand, accelerating the mixing and crushing of the materials. In the prior art, there are also adjustable ones. However, in this application, when the blade 4 is already in the upward movement state, it is more convenient and faster to drive the two stirring members 10 and the stirring blades 14 to expand. At the same time, the expansion and retraction are also fast, making it more practical and convenient compared with the adjustment in the prior art.

[0021] A driving assembly for driving the rotation of the driving blade 4 and the fixed shaft 6 is provided on the rotating shaft 3. The driving assembly includes a limiting block 25 provided on the fixed shaft 6. The limiting block 25 is slidably connected to the fixed shaft 6, and the fixed shaft 6 is rotatably connected to the bushing 5. An annular groove 26 for accommodating and rotating the limiting block 25 is provided in the bushing 5. A transmission wheel 38 is rotatably connected to the rotating shaft 3. A gear 27 is clamped on the fixed shaft 6. A first pusher 13 is slidably connected to the transmission wheel 38. A first spring 28 for supporting the first pusher 13 is provided in the transmission wheel 38. A blocking block 29 for blocking the upward movement of the second blocking kit 8 is provided on the rotating shaft 3. A second pusher 30 for supporting the transmission wheel 38 is slidably connected to the bushing 5. A second spring 31 is provided between the second pusher 30 and the bushing 5. An abutting block 32 for pushing the limiting block 25 backward and blocking the limiting block 25 is provided on the transmission wheel 38. Under the push of the second cylinder 12, the bushing 5 drives the blade 4 and the fixed shaft 6 to move upward simultaneously. When the bushing 5 moves upward, it will drive the second pusher 30 to move upward synchronously and push the abutted transmission wheel 38 upward. The first pusher 13 on the transmission wheel 38 abuts against the bottom of the second kit 8 and pushes the second kit 8 upward. When the second kit 8 abuts against the blocking block 29 and is blocked from moving upward, the second cylinder 12 continues to push, and under the interaction force with the blocking block 29, the first pusher 13 compresses the first spring 28 in the transmission wheel 38 and embeds into the transmission wheel 38. When the first pusher 13 is embedded and the transmission wheel 38 cannot move upward continuously, the second pusher 30 will compress the second spring 31 on the bushing 5 and embed into the bushing 5. The bushing 5 moves upward to disengage from the blocking of the second pusher 30, and the transmission wheel 38 will approach the bushing 5. At the same time, the abutting block 32 on the transmission wheel 38 will abut against the limiting block 25 and push the limiting block 25 backward to embed into the annular groove 26 of the bushing 5. In this way, the fixed shaft 6 can rotate freely by disengaging from the limitation of the limiting block 25 and the groove of the bushing 5. Secondly, the teeth at the bottom of the transmission wheel 38 are directly meshed with the gear 27. In this way, when the rotating shaft 3 rotates, when driving the bushing 5, the fixed shaft 6 and the blade 4 to rotate, the transmission wheel 38 will not rotate synchronously. However, the gear 27 is meshed with the transmission wheel 38. Therefore, the teeth of the gear 27 will move along the teeth of the transmission wheel 38 and drive itself to rotate, so that the rotation of the gear 27 drives the fixed shaft 6 to rotate. Thus, after the bushing 5 moves upward, as long as the rotating shaft 3 is driven to rotate, the blade 4 rotates along the center of the rotating shaft 3 and also rotates around the center of the fixed shaft 6. With the different rotations in these two directions, the flow direction of the material can be stirred in various ways. And when the blade 4 rotates to different positions to stir the material, the flow pattern generated by the single rotation of the material can be broken. Secondly, the mixing dead angle is reduced. At the same time, the various flow directions make the flow field complex and the materials interact and exchange better with each other. In this way, the mixing efficiency and the mixing effect are improved.

[0022] A third spring 33 for pushing the limit block 25 out of the first annular groove 26 is provided on the fixed shaft 6. The elastic force of the first spring 28 is greater than the gravity of the second kit 8, and the elastic forces of the first spring 28 and the second spring 31 are both less than the thrust between the second cylinder 12 and the blocking block 29. Finally, when reset is required, the first cylinder 11 and the second cylinder 12 deflate and the internal piston rods are pulled back into place, thereby driving the first kit 7 to move upward and the bushing 5 to move downward. When the bushing 5 moves downward, it drives the first pusher 13 and the second pusher 30 to move downward. At the same time, after disengaging from the blocking of the blocking block 29, the first pusher 13 and the second pusher 30 are pushed out by the first spring 28 and the second spring 31. The first pusher 13 abuts against the bottom of the second kit 8, and the second pusher 30 abuts against the bottom of the transmission wheel 38. And when the second kit 8 moves downward and the first kit 7 moves upward, it will pull the two stirring members 10 back into place and fit back into the grooves 9 of the first kit 7 and the second kit 8. When the stirring member 10 is reset, the ball head member 21 and the hinge rod 17 first move horizontally, thereby driving the stirring blade 14 and the first connecting rod 18 to reset. And the first convex block 22 is displaced from the second convex block 23 after being pushed by the second convex block 23, but the pushed first convex block 22 is opposite to the third convex block 24, and moves to abut against the third convex block 24 and rotates and resets along the arc surface of the third convex block 24, thereby driving the first connecting rod 18, the stirring blade 14 and the hinge rod 17 to reset. Under the push of the stirring member 10, it resets along the first guiding groove 16 and the second guiding groove 20 and re-embeds into the rotating shaft 3. Since the elastic force of the second spring 31 of the second pusher 30 at the bottom is greater than the self-weight of the transmission wheel 38, it will push the transmission wheel 38 upward and drive the abutting block 32 to cancel the blocking of the limit block 25. And when the gear 27 moves down to the bottom of the cover 34, it will directly abut against and mesh with the teeth on the driving wheel 35 on the cover 34, and the teeth of the driving wheel 35 can directly mesh with the gear 27 on the upper surface. Thus, after the bushing 5 rotates, the gear 27 will mesh with the driving wheel 35. Because the cover 34 and the driving wheel 35 are rotationally connected to the rotating shaft 3 and will not rotate synchronously, when the bushing 5 is driven to rotate, it will push the gear 27 to move along the teeth of the driving wheel 35, thereby causing the gear 27 to rotate on its own. When the limit block 25 rotates from the first annular groove 26 to the position opposite to the limit groove in the bushing 5 that accommodates the movement of the limit block 25, the limit block 25 that is released from the blocking of the abutting block 32 will be pushed back into place by the third spring 33 and embedded into the limit groove in the bushing 5 that restricts the movement of the limit block 25. Therefore, the fixed shaft 6 cannot rotate on its own under the restriction of the limit block 25 and the limit groove. At this time, when rotating, it will push the engaged driving wheel 35 to rotate synchronously and drive the cover 34.A cover 34 is provided at the bottom of the rotating shaft 3 and is rotatably connected to the shroud blade 4. The cover 34 is located below the gear 27 and has a driving wheel 35 that meshes with the gear 27. The cover 34 is provided with a number of perforations 36 for discharging materials. An annular groove two: 37 for accommodating the movement of the piston rod of the second cylinder 12 is provided on the cover 34. Finally, with the above settings, when the blade 4 needs to move upward, the stirring member 10 and the stirring blade 14 can be automatically driven to unfold, improving the stirring effect and efficiency. At the same time, it is convenient and fast to open. It is pushed from the bottom by the second cylinder 12, avoiding direct contact with the stirred materials inside, which may cause erosion, and is not easy to replace and drive. In this application, it is set at the bottom and driven by the first cylinder 11 and the second cylinder 12, so that the stirring effect can be adjusted, and it can be quickly switched. When strong stirring is not required, it can be closed at any time, saving unnecessary energy consumption and improving practicality.

[0023] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be regarded as limiting the claims involved.

[0024] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A sealant test emulsifying machine, comprising a machine body (1), a material barrel (2) and a rotating shaft (3). A plurality of blades (4) are clamped at the bottom of the rotating shaft (3). It is characterized in that: The bottom of the rotating shaft (3) is connected to the blade (4) through a bushing (5), and the bushing (5) is snap-connected to the rotating shaft (3). A fixed shaft (6) embedded in the bushing (5) is provided on the blade (4). A first kit (7) and a second kit (8) are slidably connected to the rotating shaft (3). A number of grooves (9) are provided on the first kit (7) and the second kit (8). A stirring member (10) rotatably connected to the first kit (7) and the second kit (8) is provided in the groove (9). The connections of the two stirring members (10) are rotatably connected. A first cylinder (11) and a second cylinder (12) for pushing the first kit (7) downward and the bushing (5) upward are respectively provided at the upper end and the bottom of the material barrel (2). A first pushing member (13) for pushing the second kit (8) upward is provided on the bushing (5). An adjusting assembly one for increasing the contact surface with the material is provided on the rotating shaft (3); The adjusting assembly one includes two stirring blades (14) slidably connected to the rotating shaft (3). A support rod (15) is provided on the stirring blade (14). A first guiding groove (16) for restricting the support rod (15) and guiding the movement of the support rod (15) is provided in the rotating shaft (3). Hinge rods (17) are rotatably connected to the areas where the two stirring blades (14) are close to each other. One end of the hinge rod (17) away from the stirring blade (14) is rotatably connected to the stirring member (10). An adjusting assembly two for pushing the stirring blade (14) to rotate and incline is provided on the rotating shaft (3) and the stirring member (10); The adjusting assembly two includes a first connecting rod (18) and a second connecting rod (19) provided between the stirring blade (14) and the support rod (15). The first connecting rod (18) is fixedly connected to the stirring blade (14), and the support rod (15) passes through the second connecting rod (19). The first connecting rod (18) and the second connecting rod (19) are rotatably connected. A second guiding groove (20) for accommodating the movement of the first connecting rod (18) and the second connecting rod (19) is provided in the rotating shaft (3). Ball head members (21) are provided at the connection of the upper and lower two stirring members (10), and the two ball head members (21) are respectively rotatably connected to the upper and lower two stirring members (10). One end of the hinge rod (17) away from the stirring blade (14) is rotatably connected to the ball head member (21). A first convex block (22) is provided on the first connecting rod (18). A second convex block (23) abutting against the first convex block (22) and pushing the first connecting rod (18) to rotate is provided at the bottom of the second guiding groove (20). A driving assembly for driving the blade (4) and the fixed shaft (6) to rotate self is provided on the rotating shaft (3).

2. The emulsifying machine for sealant test according to claim 1, characterized in that: A third convex block (24) misaligned with the second convex block (23) and pushing the first convex block (22) to reset is provided in the second guiding groove (20). The first guiding groove (16) is inclined, and the stirring blade (14) is in a triangular state.

3. The emulsifying machine for sealant test according to claim 2, characterized in that: The connecting rod one (18) and the connecting rod two (19) are in an interference fit state, and the frictional force between the connecting rod one (18) and the connecting rod two (19) is greater than the abutting force between the stirring blade (14) and the material, and the frictional force between the connecting rod one (18) and the connecting rod two (19) is less than the thrust force between the second convex block (23) and the third convex block (24).

4. A sealant test emulsifying machine according to claim 1, characterized in that: The driving assembly includes a limiting block (25) arranged on the fixed shaft (6). The limiting block (25) is slidably connected to the fixed shaft (6), and the fixed shaft (6) is rotatably connected to the bushing (5). An annular groove one (26) for the limiting block (25) to be embedded and rotated is arranged in the bushing (5). A transmission wheel (38) is rotatably connected to the rotating shaft (3). A gear (27) is clamped on the fixed shaft (6). The first pushing member (13) is slidably connected to the transmission wheel (38). A first spring (28) for supporting the first pushing member (13) is arranged in the transmission wheel (38). A blocking block (29) for blocking the upward movement of the second blocking kit (8) is arranged on the rotating shaft (3). A second pushing member (30) for supporting the transmission wheel (38) is slidably connected to the bushing (5). A second spring (31) is arranged between the second pushing member (30) and the bushing (5). An abutting block (32) for pushing the limiting block (25) backward and blocking the limiting block (25) is arranged on the transmission wheel (38).

5. A sealant test emulsifying machine according to claim 4, characterized in that: A third spring (33) for pushing the limiting block (25) out of the annular groove one (26) is arranged on the fixed shaft (6). The elastic force of the first spring (28) is greater than the gravity of the second kit (8). The elastic force of the second spring (31) is greater than the self-weight of the transmission wheel (38), and the elastic forces of the first spring (28) and the second spring (31) are both less than the thrust force between the second cylinder (12) and the blocking block (29).

6. The emulsifying machine for sealant test according to claim 4, wherein: A cover (34) which is rotatably connected with shrouding blades (4) is arranged at the bottom of the rotating shaft (3). The cover (34) is located below the gear (27) and has a driving wheel (35) meshing with the gear (27).

7. A sealant test emulsifying machine according to claim 6, characterized in that: A plurality of through holes (36) for discharging materials are arranged on the cover (34). An annular groove two (37) for the piston rod of the second cylinder (12) to move is arranged on the cover (34).

Citation Information

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