Pre-emulsification device
By combining the movement of a cylinder-driven fixed frame and a motor-driven stirring blade inside the emulsion tank, the problems of uneven mixing and liquid splashing in traditional dispersers are solved, achieving efficient and uniform mixing of emulsions and reducing waste.
Patent Information
- Application Number
- CN202423269944.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2034-12-30
AI Technical Summary
In the pre-emulsification process of emulsions, the fixed position of the dispersion shaft in traditional dispersers leads to uneven mixing of raw materials, and the liquid is prone to splashing when the emulsion tank is moved, resulting in waste and environmental pollution.
The system employs a cylinder-driven fixed frame that fits tightly against the top wall of the emulsification tank, combined with an arc-shaped frame that shields the mixing mechanism. This, along with a motor-driven stirring blade that rotates and moves within the emulsification tank, ensures thorough mixing of the raw materials within the tank through the up-and-down movement of the stirring blade.
It improves the uniformity and efficiency of emulsion mixing, avoids liquid splashing, and reduces material waste and environmental pollution.
Smart Images

Figure CN223760845U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of dispersing technology, specifically a pre-emulsification device. Background Technology
[0002] In the field of architectural coatings production, pre-emulsification of emulsions is a key process. Traditional pre-emulsification operations are often carried out using a disperser, which typically uses a motor, drive belt, and drive wheel to drive the dispersion shaft to rotate at high speed in the raw materials, promoting the mixing of the aqueous phase, oil phase, emulsifier, and other ingredients to form a stable emulsion.
[0003] However, this conventional method has obvious drawbacks. The dispersion axis is relatively fixed, and the raw materials can only be stirred and dispersed within a limited area. It is difficult to ensure uniform action on the raw materials throughout the container, which greatly affects the comprehensiveness and efficiency of raw material dispersion and emulsification, resulting in inconsistent product quality.
[0004] To address this issue, some devices have attempted improvements. For example, a pre-emulsification and dispersion machine for architectural coatings proposes using a dispersion translation mechanism. A motor drives a translation disc and translation rod, which in turn move a translation frame and the emulsification tank fixed to it back and forth, allowing the dispersion shaft to contact raw materials at different locations within the emulsification tank. However, new problems arise. During the back-and-forth movement of the emulsification tank, the internal liquid is prone to overflow due to inertia and sloshing. This not only wastes raw materials but may also pollute the working environment, causing numerous inconveniences and additional costs to production. Utility Model Content
[0005] The purpose of this invention is to provide a pre-emulsification device to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution:
[0007] A pre-emulsification device, comprising:
[0008] Pre-emulsification mechanism, including workbench;
[0009] The mixing mechanism, fixed on the workbench, is capable of thoroughly mixing the raw materials in the emulsification tank;
[0010] The clamping mechanism is fixed on the worktable near the mixing mechanism.
[0011] Furthermore, the hybrid mechanism includes:
[0012] A cylinder is fixed to the outer wall of the workbench, and a fixed frame is fixedly connected to one end of the cylinder.
[0013] An arc-shaped groove is formed on the outer wall of one end of the fixing frame;
[0014] One arc-shaped hole is made at one end of the fixing frame near the arc-shaped groove;
[0015] A round shell is fixed to one end of a fixing frame. A round rod is fixedly connected to the inner wall of the round shell, and an arc-shaped frame is fixedly connected to the outer wall of one end of the round rod.
[0016] Preferably, the mixing mechanism includes:
[0017] Four square rods are provided and fixed at one end of the fixing frame at equal angles. A ring frame is fixedly connected between the outer walls of the four square rods.
[0018] Round rod four is fixed to the bottom wall of arc frame one, and arc frame two is fixedly connected to one end of round rod four.
[0019] Preferably, the mixing mechanism includes:
[0020] A circular tube is fixed between the ring frame and the outer wall of the fixing frame, and an arc-shaped hole is provided on the outer wall of the circular tube.
[0021] Preferably, the mixing mechanism includes:
[0022] The arc-shaped rack is fixed to the outer wall of the fixing frame near the arc-shaped groove.
[0023] A support frame slides inside an arc-shaped groove, and a second motor is fixedly connected to the support frame.
[0024] A spur gear is fixed on the shaft of motor No. 2, and the spur gear meshes with an arc-shaped rack for transmission.
[0025] Preferably, the mixing mechanism includes:
[0026] The telescopic rod rotates on the outer wall of the spur gear. A limit frame is fixedly connected to the outer wall of the telescopic rod, and one end of the limit frame is fixed to the outer wall of the support frame.
[0027] Ring frame two is fixed on the slide bar of the telescopic rod. A round rod two is fixedly connected to the outer wall of ring frame two. The outer wall of the round rod two is slidably inserted into the arc-shaped hole two. A round block is fixedly connected to the outer wall of the round rod two.
[0028] Motor No. 1 is fixed to a sliding rod at one end of the telescopic rod, and the rotating shaft of Motor No. 1 is fixedly connected to a round rod three.
[0029] The stirring blade is fixed to one end of the round rod.
[0030] Preferably, the clamping mechanism includes:
[0031] The slide rail is fixed to the outer wall of the worktable, and a bidirectional threaded rod is rotatably connected inside the slide rail.
[0032] Two square rods are provided, each screwed onto both sides of the bidirectional threaded rod, and a limit plate is fixedly connected to the outer wall of the square rods.
[0033] The crank is fixed to one end of the double-threaded rod.
[0034] Compared with the prior art, the beneficial effects of this utility model are:
[0035] 1. The cylinder drives the fixed frame to move down to the ring frame one and fit tightly against the top wall of the emulsion tank. In conjunction with the arc frame two, the top edge and middle of the emulsion tank can be blocked, leaving only the gap corresponding to the arc hole one. This can effectively prevent the emulsion from shaking out from the edge or splashing out from the middle when the mixing mechanism drives the mixing of the raw materials inside the emulsion tank, causing material waste and polluting the working environment.
[0036] 2. The stirring blades are driven by a first motor, and the spur gear is driven by a second motor to rotate and mesh with the arc-shaped rack. This causes the stirring blades to rotate while moving along the trajectory of the arc-shaped groove, mixing the raw materials in every part of the emulsion tank. The stirring blades move and stir inside the emulsion tank at the same time. Under the action of centrifugal force and the shear force of the blades, the materials are fully mixed in the horizontal direction. Compared with simply moving the emulsion tank back and forth, this avoids uneven mixing and effectively improves the overall uniformity of the emulsion mixing. At the same time, it avoids the back-and-forth horizontal movement of the emulsion tank, which can cause large fluctuations in the emulsion and easily overflow.
[0037] 3. During the movement of the stirring blade around the arc-shaped hole, the second round rod moves along the trajectory of the second arc-shaped hole, causing it to undulate up and down with one end of the telescopic rod fixed to the second round rod. This drives the stirring blade to move up and down in the emulsion, which can cause the material to churn violently in the vertical direction, promote the full mixing of the raw materials at the bottom of the tank with the upper layer, avoid material sedimentation and stratification, and effectively improve the mixing effect and mixing efficiency. Attached Figure Description
[0038] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0039] Figure 2 This is a schematic diagram of the hybrid mechanism structure in this utility model;
[0040] Figure 3 This is a schematic diagram of the internal structure of the circular shell in this utility model;
[0041] Figure 4 This is a schematic diagram of the arc-shaped hole structure in this utility model;
[0042] Figure 5 This is a partial structural diagram of the mixing mechanism in this utility model;
[0043] Figure 6This is a schematic diagram of the clamping mechanism in this utility model.
[0044] In the diagram: 100, pre-emulsification mechanism; 110, worktable; 200, mixing mechanism; 210, cylinder; 211, fixed frame; 212, arc-shaped groove; 213, arc-shaped hole one; 214, round shell; 215, round rod one; 216, arc-shaped frame one; 217, square rod one; 218, ring frame one; 220, arc-shaped rack; 221, support frame; 222, spur gear; 223, telescopic rod; 224, limit switch. Frame; 225, Ring Frame II; 226, Round Rod II; 227, Round Block; 228, Motor No. 1; 229, Round Rod III; 230, Round Tube; 231, Arc Hole II; 232, Round Rod IV; 233, Arc Frame II; 240, Stirring Blade; 250, Motor No. 2; 300, Clamping Mechanism; 310, Slide Rail; 311, Square Rod II; 312, Bidirectional Threaded Rod; 313, Handle; 314, Limiting Plate. Detailed Implementation
[0045] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0046] Please see Figure 1-6In this embodiment of the present invention, a pre-emulsification device includes a pre-emulsification mechanism 100. The pre-emulsification mechanism 100 includes a workbench 110 and the following components: a mixing mechanism 200 fixed on the workbench 110, capable of fully mixing the raw materials in the emulsification tank; and a clamping mechanism 300 fixed on the workbench 110 near the mixing mechanism 200. The mixing mechanism 200 includes the following components: a cylinder 210 fixed to the outer wall of the workbench 110; a fixing frame 211 fixedly connected to one end of the cylinder 210; an arc-shaped groove 212 formed on the outer wall of one end of the fixing frame 211; and an arc-shaped hole 213 formed on one end of the fixing frame 211 near the arc-shaped groove 212. At this location, the circular shell 214 is fixed to one end of the fixing frame 211. A circular rod 215 is fixedly connected to the inner wall of the circular shell 214, and an arc-shaped frame 216 is fixedly connected to the outer wall of one end of the circular rod 215. Four square rods 217 are provided and fixed at one end of the fixing frame 211 at equal angles. A ring frame 218 is fixedly connected between the outer walls of the four square rods 217. A circular rod 232 is fixed to the bottom wall of the arc-shaped frame 216, and an arc-shaped frame 233 is fixedly connected to one end of the circular rod 232. The fixing frame 211 is driven by the cylinder 210 to move down to the ring frame 218 and fit tightly against the top wall of the emulsifying tank. With the help of the arc-shaped frame 233, the top edge and middle of the emulsifying tank can be shielded.
[0047] The mixing mechanism 200 includes the following parts: its arc-shaped rack 220 is fixed to the outer wall of the fixed frame 211 near the arc-shaped groove 212, and the support frame 221 slides inside the arc-shaped groove 212. A second motor 250 is fixedly connected to the support frame 221, and its spur gear 222 is fixed on the rotating shaft of the second motor 250. The spur gear 222 meshes with the arc-shaped rack 220 for transmission. The first motor 228 drives the stirring blade 240 to rotate, and the second motor 250 drives the spur gear 222 to rotate and mesh with the arc-shaped rack 220, so that the stirring blade 240 rotates on its own while moving along the trajectory of the arc-shaped groove 212, and mixes every part of the raw materials in the emulsion tank.
[0048] The mixing mechanism 200 includes the following parts: a circular tube 230 is fixed between the outer wall of the ring frame 218 and the outer wall of the fixed frame 211; an arc-shaped hole 231 is opened on the outer wall of the circular tube 230; a telescopic rod 223 rotates on the outer wall of one side of the spur gear 222; a limit frame 224 is fixedly connected to the outer wall of the telescopic rod 223, and one end of the limit frame 224 is fixed to the outer wall of the support frame 221; a ring frame 225 is fixed to the slide bar of the telescopic rod 223; a circular rod 226 is fixedly connected to the outer wall of the ring frame 225, and the outer wall of the circular rod 226 is connected to the arc-shaped hole 231. 1. A sliding connection is made. A round block 227 is fixedly connected to the outer wall of the round rod 226. The first motor 228 is fixed to the slide rod at one end of the telescopic rod 223. A round rod 229 is fixedly connected to the shaft of the first motor 228. The stirring blade 240 is fixed at one end of the round rod 229. During the movement of the stirring blade 240 around the arc hole 213, the round rod 226 will move along the arc hole 231, causing it to undulate up and down with the telescopic rod 223 fixed to the round rod 226, thus driving the stirring blade 240 to move up and down in the emulsion.
[0049] The clamping mechanism 300 includes the following parts: its slide rail 310 is fixed to the outer wall of the worktable 110, a bidirectional threaded rod 312 is rotatably connected inside the slide rail 310, two square rods 311 are provided, respectively screwed onto both sides of the bidirectional threaded rod 312, a limit plate 314 is fixedly connected to the outer wall of the square rod 311, and its handle 313 is fixed to one end of the bidirectional threaded rod 312.
[0050] Specifically, during operation, the emulsifying tank is pushed between the two square rods 311. The operator twists the crank 313, causing the bidirectional threaded rod 312 to rotate and engage with the square rod 311. This causes the two limiting plates 314 to converge towards the center, clamping and fixing the emulsifying tank. The cylinder 210 drives the fixing frame 211 to move down to the ring frame 218, which then presses against the top wall of the emulsifying tank. Motor 228 drives the stirring blade 240 to rotate, and motor 250 drives the spur gear... 222 rotates and meshes with the arc-shaped rack 220, causing the stirring blade 240 to rotate while moving along the trajectory of the arc-shaped groove 212, stirring and mixing every part of the raw material in the emulsion tank. During the movement of the stirring blade 240 around the trajectory of the arc-shaped hole 213, the round rod 226 will move along the trajectory of the arc-shaped hole 231, causing one end of the telescopic rod 223 fixed to the round rod 226 to rise and fall, driving the stirring blade 240 to move up and down in the emulsion.
[0051] Example 1
[0052] like Figure 1-4As shown, in this embodiment, the mixing mechanism 200 includes the following parts: its cylinder 210 is fixed to the outer wall of the worktable 110, a fixed frame 211 is fixedly connected to one end of the cylinder 210, an arc-shaped groove 212 is opened on the outer wall of one end of the fixed frame 211, and an arc-shaped hole 213 is opened at one end of the fixed frame 211 near the arc-shaped groove 212, a round shell 214 is fixed to one end of the fixed frame 211, a round rod 215 is fixedly connected to the inner wall of the round shell 214, and an arc-shaped frame 216 is fixedly connected to the outer wall of one end of the round rod 215, four square rods 217 are provided and fixed at equal angles to one end of the fixed frame 211, a ring frame 218 is fixedly connected between the outer walls of the four square rods 217, a round rod 232 is fixed to the bottom wall of the arc-shaped frame 216, and an arc-shaped frame 233 is fixedly connected to one end of the round rod 232.
[0053] In this embodiment, the cylinder 210 drives the fixed frame 211 to move down to the ring frame 218 and fit tightly against the top wall of the emulsion tank. In conjunction with the arc frame 233, the top edge and middle of the emulsion tank can be blocked, leaving only the gap corresponding to the arc hole 213. This can prevent the emulsion from shaking out from the edge or splashing out from the middle when the mixing mechanism 200 drives the mixing of the raw materials inside the emulsion tank, causing material waste and polluting the working environment.
[0054] like Figure 3 and Figure 5 As shown, in this embodiment, the mixing mechanism 200 includes the following parts: its arc-shaped rack 220 is fixed to the outer wall of the fixing frame 211 near the arc-shaped groove 212, and the support frame 221 slides inside the arc-shaped groove 212. A second motor 250 is fixedly connected to the support frame 221, and its spur gear 222 is fixed to the rotating shaft of the second motor 250. The spur gear 222 meshes with the arc-shaped rack 220 for transmission.
[0055] In practice, the first motor 228 drives the stirring blade 240 to rotate, and the second motor 250 drives the spur gear 222 to rotate and mesh with the arc-shaped rack 220. This causes the stirring blade 240 to rotate while moving along the trajectory of the arc-shaped groove 212, stirring and mixing every part of the raw material in the emulsion tank. The stirring blade 240 moves and stirs inside the emulsion tank at the same time. Under the action of centrifugal force and the shear force of the blade, the material is fully mixed in the horizontal direction. Compared with simply moving the emulsion tank back and forth, this avoids uneven stirring at the front and back, effectively improving the overall uniformity of the emulsion mixing. At the same time, it avoids the back-and-forth horizontal movement of the emulsion tank, which can cause large fluctuations in the internal emulsion and make it easy to overflow.
[0056] Example 2
[0057] like Figure 5As shown, in this embodiment, the mixing mechanism 200 includes the following parts: its circular tube 230 is fixed between the outer wall of the first ring frame 218 and the outer wall of the fixed frame 211; an arc-shaped hole 231 is opened on the outer wall of the circular tube 230; its telescopic rod 223 rotates at the outer wall of one side of the spur gear 222; a limiting frame 224 is fixedly connected to the outer wall of the telescopic rod 223; one end of the limiting frame 224 is fixed to the outer wall of the support frame 221; and its second ring frame 225... A round rod 226 is fixedly connected to the slide rod of the telescopic rod 223 on the outer wall of the ring frame 225, and the outer wall of the round rod 226 is slidably inserted into the arc hole 231. A round block 227 is fixedly connected to the outer wall of the round rod 226. The first motor 228 is fixedly connected to the slide rod at one end of the telescopic rod 223. A round rod 229 is fixedly connected to the shaft of the first motor 228. The stirring blade 240 is fixed at one end of the round rod 229.
[0058] In practice, as the stirring blade 240 moves around the arc-shaped hole 213, the round rod 226 moves along the arc-shaped hole 231, causing one end of the telescopic rod 223 fixed to the round rod 226 to undulate up and down, which drives the stirring blade 240 to move up and down in the emulsion. This causes the material to churn violently in the vertical direction, promoting full mixing between the raw materials at the bottom of the tank and the upper layer, avoiding material sedimentation and stratification, and effectively improving the mixing effect and mixing efficiency.
[0059] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0060] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider 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 pre-emulsification device characterized by, The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200).
2. A pre-emulsification device according to claim 1, wherein The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200).
3. A pre-emulsification device according to claim 1, wherein The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200).
4. A pre-emulsification device according to claim 3, wherein The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200).
5. A pre-emulsification device according to claim 4, wherein The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200).
6. A pre-emulsification device according to claim 5, wherein The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench (110) and capable of fully mixing raw materials in an emulsification tank, and a clamping mechanism (300) fixed on the workbench (110) near the mixing mechanism (200). The utility model relates to a pre-emulsification mechanism (100) including a workbench (110), a mixing mechanism (200) fixed on the workbench The second square rod (311) is provided with two, and is screwed on both sides of the two-way threaded rod (312), and the outer wall of the second square rod (311) is fixedly connected with the limiting plate (314); The handle (313) is fixed at one end of the two-way threaded rod (312).