Stirring equipment for conductive silica gel production
The conductive silicone production mixing equipment, designed with a three-dimensional composite flow field and an independent mixing tank, solves the problems of single mixing function and insufficient shear force, achieving uniform dispersion and efficient mixing of conductive fillers, thus improving production efficiency and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- CHANGZHOU WEILINSWANG NEW MATERIALS CO LTD
- Filing Date
- 2025-12-31
- Publication Date
- 2026-04-10
AI Technical Summary
Existing stirring equipment for conductive silicone production suffers from problems such as limited stirring function, simple flow field distribution, and insufficient shear force and circulation capacity, resulting in uneven dispersion of conductive fillers, low mixing efficiency, and potential safety hazards.
It adopts a three-dimensional composite flow field design, and achieves complex interlaced flow and shearing within the mixing tank through the combination of main and auxiliary stirring rods, combined with lifting and rotation functions, eliminating dead zones. The independent mixing tank design enables parallel operation and automatic unloading.
It improves the dispersion uniformity of conductive fillers in the silicone matrix, enhances the consistency of product conductivity, reduces labor intensity and safety risks, and improves equipment utilization and production efficiency.
Smart Images

Figure CN121819628A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of silica gel production, and particularly relates to a stirring equipment for conductive silica gel production. BACKGROUND
[0002] Conductive silica gel is a kind of composite material with both the elasticity of silicone rubber and the function of electrical conductivity, which is widely used in the fields of electromagnetic shielding, conductive connection, key contact and sensor packaging of electronic devices. The performance of conductive silica gel is highly dependent on the dispersion uniformity of conductive fillers (such as silver powder, carbon black and nickel powder) in the silica gel matrix. Therefore, the stirring and mixing process in the production process is crucial, which directly affects the electrical conductivity stability, mechanical properties and consistency of the final product.
[0003] At present, the stirring equipment used in the production of conductive silica gel is mostly conventional vertical or horizontal stirrers, the structure of which usually includes a stirring container and a set of stirring paddles driven by a central shaft. However, such equipment gradually exposes the following limitations in actual use.
[0004] 1) Single stirring function and simple flow field distribution: Most of the equipment only relies on a set of paddles on the central shaft for one-way rotation stirring, and the formed fluid flow pattern is relatively simple, mainly in the form of radial or tangential flow. For conductive silica gel systems with high viscosity and high solid content, such a simple flow field is difficult to achieve sufficient exchange of materials in three-dimensional space, and it is easy to form "dead zones" at the edge and bottom of the container or near the stirring shaft, leading to uneven dispersion of fillers and difficulty in breaking up of agglomerates. 2) Insufficient shear force and circulation capacity: The shear strength provided by a single stirring paddle and the overall circulation capacity of the material are limited. For conductive silica gel, sufficient shear force is needed to break up the filler agglomerates, and strong overall convection is needed to achieve macroscopic uniformity. Traditional equipment often compromises between the two, making it difficult to balance between the two, resulting in low mixing efficiency and long mixing cycle. SUMMARY
[0005] In view of the problems of single stirring function, simple flow field distribution and insufficient shear force and circulation capacity of the existing stirring equipment for conductive silica gel production, the present application is proposed.
[0006] Therefore, the purpose of the present application is to provide a stirring equipment for conductive silica gel production, which aims to: use a three-dimensional composite flow field to completely break the flow pattern formed by a traditional single stirring shaft, effectively eliminate the dead zones in the stirring barrel wall, bottom and other areas, ensure the macroscopic and microscopic dispersion uniformity of conductive fillers in the silica gel matrix, and greatly improve the consistency of the electrical conductivity of the product.
[0007] To solve the above technical problems, the present application provides the following technical solutions: a stirring device for conductive silica gel production, comprising a device mounting frame, two groups of stirring barrels arranged in the inner cavity of the device mounting frame, lifting components arranged on both sides of the device mounting frame, stirring components arranged above the stirring barrels, and moving components arranged in the inner part of the device mounting frame. The lifting components comprise mounting side warehouses arranged on both sides of the device mounting frame, and the end of the mounting side warehouses close to the device mounting frame is in an open shape, hydraulic push rods arranged at the bottom of the inner cavity of the mounting side warehouses, connecting crossbars arranged at the output end of the hydraulic push rods, fixed top covers arranged at the end of the two groups of connecting crossbars close to each other, and fixed bottom covers arranged below the fixed top covers.
[0008] As a preferred scheme of the stirring device for conductive silica gel production, a circular clamping groove is formed at the edge of the bottom of the fixed bottom cover, and the circular clamping groove and the edge of the top of the stirring barrel correspond to each other.
[0009] As a preferred scheme of the stirring device for conductive silica gel production, the stirring components comprise annular slide rails arranged at the edge of the bottom of the fixed top cover, multiple groups of sliding blocks arranged on the inner side of the annular slide rails, and connecting columns arranged at the bottom of the sliding blocks, and the bottom end of the connecting column and the top of the fixed bottom cover are connected to each other.
[0010] As a preferred scheme of the stirring device for conductive silica gel production, a motor mounting bracket is fixedly installed at the top of the fixed bottom cover, a first motor is arranged at the top of the fixed top cover, and the output end of the first motor penetrates the fixed top cover and is connected to the top of the motor mounting bracket.
[0011] As a preferred scheme of the stirring device for conductive silica gel production, a second motor is fixedly installed at the top of the inner cavity of the motor mounting bracket, a main stirring rod is arranged at the output end of the second motor, the main stirring rod penetrates the fixed bottom cover, three groups of auxiliary stirring rods are arranged at the edge of the top of the fixed bottom cover, the bottom end of the auxiliary stirring rod penetrates the fixed bottom cover, multiple groups of first stirring blades are arranged on the surface of the main stirring rod, multiple groups of second stirring blades are arranged on the surface of the auxiliary stirring rod, and the second stirring blades and the first stirring blades are arranged alternately.
[0012] As a preferred scheme of the stirring device for conductive silica gel production, a transmission gear is fixedly sleeved on the surface of the main stirring rod above the fixed bottom cover, a synchronous gear is fixedly sleeved on the surface of the auxiliary stirring rod above the fixed bottom cover, and the three groups of synchronous gears and the transmission gear are meshed with each other.
[0013] As a preferred scheme of the electrically conductive silicone production stirring device, the moving part comprises a fixed horizontal plate arranged at the top of the inner cavity of the equipment mounting frame, a limiting vertical plate arranged at one end of the bottom of the fixed horizontal plate, a communication notch arranged at one side of the limiting vertical plate, the communication notch penetrating through the limiting vertical plate, a rotating shaft symmetrically arranged on the surface of the stirring barrel, two groups of T-shaped sliding blocks slidingly sleeved on the inner side of the communication notch, and one end of the rotating shaft penetrating through the T-shaped sliding block and being rotationally connected with the T-shaped sliding block.
[0014] As a preferred scheme of the electrically conductive silicone production stirring device, the top of the two sides of the inner cavity of the equipment mounting frame is provided with a third motor, a motor backstop arranged at the output end of the third motor, a second gear arranged at the output end of the third motor, and a first gear arranged at the surface of the rotating shaft away from the stirring barrel.
[0015] As a preferred scheme of the electrically conductive silicone production stirring device, the bottom of the two sides of the limiting vertical plate is fixedly mounted with a mounting seat, a threaded rod is arranged on the side of the mounting seat on the same side of the limiting vertical plate, a fourth motor is arranged on the other side of the mounting seat on the same side of the limiting vertical plate, the output end of the fourth motor is connected with one end of the threaded rod, two groups of internal threaded sleeve blocks are arranged on the surface of the threaded rod, the two groups of internal threaded sleeve blocks are arranged below the two groups of T-shaped sliding blocks, respectively, a connecting block is arranged on the top of the internal threaded sleeve block, and the top of the connecting block is fixedly connected with the bottom of the T-shaped sliding block.
[0016] As a preferred scheme of the electrically conductive silicone production stirring device, the bottom of the two sides of the equipment mounting frame is provided with a discharge notch, and the discharge notch and the inner cavity of the equipment mounting frame are connected.
[0017] Compared with the prior art, the present application has at least the following beneficial effects: 1、The present application can produce strong radial, tangential and axial fluid motion in the stirring barrel through the stirring operation of the main stirring rod in the middle of the stirring barrel inner cavity and the three groups of auxiliary stirring rods at the edge of the stirring barrel inner cavity, and at the same time, the first motor is started to make the main stirring rod and the three groups of auxiliary stirring rods rotate while the three groups of main stirring rods revolve around the auxiliary stirring rods, further promoting the complex interlaced convection and shear between the center and the edge, the upper part and the lower part of the stirring barrel, and breaking the flow pattern formed by the traditional single stirring shaft through the three-dimensional composite flow field, effectively eliminating the dead zone of the stirring barrel wall, bottom and other areas, ensuring the macroscopic and microscopic uniformity of the conductive filler in the silicone matrix, and greatly improving the consistency of the product conductivity.
[0018] 2. This invention sets up two independent mixing tanks and uses liftable mixing components. When the material in one mixing tank is being mixed, the other mixing tank can be pre-mixed and prepared simultaneously. Once the first mixing tank has finished mixing, the mixing components can quickly start working on the second mixing tank, while the first mixing tank then enters the stage of unloading, cleaning, and re-preparing materials. This cycle repeats, making the mixing mechanism operate almost continuously. This transforms the "downtime" required in the traditional mode into parallel "production preparation time," significantly improving the equipment's time utilization and output per unit time.
[0019] 3. This invention utilizes a third motor to rotate and tilt the mixing tank, quickly and thoroughly discharging the material. This not only minimizes unloading time but also effectively reduces residual material inside the tank through the rotational movement and angle control of the tank. Furthermore, the automatic rotation and tilting completely replaces the tedious and potentially dangerous steps of manual handling, tilting, knocking, or auxiliary cleaning that may be required in traditional methods. Operators do not need to directly contact the heavy-duty mixing tank or use tools, significantly reducing labor intensity and fundamentally avoiding safety hazards such as pinching, crushing, or material splashing, meeting the high standards of ergonomics and industrial safety required in modern production. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of the stirring equipment for producing conductive silicone according to the present invention; Figure 2 This is a schematic diagram of the overall structure of the stirring device for producing conductive silicone according to the present invention from another perspective. Figure 3 This is a cross-sectional perspective view of the mixing tank of the mixing equipment for producing conductive silicone according to the present invention. Figure 4 This is a three-dimensional structural diagram of the stirring component of the stirring equipment for producing conductive silicone according to the present invention; Figure 5 This is a three-dimensional structural diagram of the stirring component of the stirring device for producing conductive silicone according to the present invention. Figure 6 This is a top-view perspective view of the fixed bottom cover of the stirring device for producing conductive silicone according to the present invention. Figure 7 This is a cross-sectional perspective view of the equipment mounting frame of the stirring device for producing conductive silicone according to the present invention. Figure 8 This is a three-dimensional structural diagram of the moving component of the stirring device for producing conductive silicone according to the present invention.
[0021] Explanation of reference numerals in the attached figures: 1. Equipment mounting frame; 11. Mixing tank; 2. Lifting components; 21. Side compartment mounting; 22. Hydraulic push rod; 23. Connecting crossbar; 24. Fixed top cover; 25. Fixed bottom cover; 26. Circular slot; 3. Stirring components; 31. Annular slide rail; 32. Slider; 33. Connecting column; 34. Motor mounting bracket; 35. First motor; 36. Second motor; 37. Main stirring rod; 38. Auxiliary stirring rod; 39. First stirring blade; 310. Second stirring blade; 311. Transmission gear; 312. Synchronizing gear; 4. Moving parts; 41. Fixed horizontal plate; 42. Restricting vertical plate; 43. Connecting slot; 44. T-shaped sliding block; 45. Rotating shaft; 46. First gear; 47. Third motor; 48. Motor backstop; 49. Second gear; 410. Mounting base; 411. Threaded rod; 412. Internal threaded sleeve block; 413. Connecting block; 414. Fourth motor; 415. Unloading slot. Detailed Implementation
[0022] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings. Example 1
[0023] Reference Figures 1-6 The first embodiment of the present invention provides a stirring device for producing conductive silicone. This stirring device for producing conductive silicone includes a device mounting frame 1, two sets of stirring tanks 11 disposed in the inner cavity of the device mounting frame 1, lifting components 2 disposed on both sides of the device mounting frame 1, stirring components 3 disposed above the stirring tanks 11, and moving components 4 disposed inside the device mounting frame 1. The lifting component 2 includes mounting side compartments 21 fixedly installed on both sides of the equipment mounting frame 1, with the end of the mounting side compartment 21 near the equipment mounting frame 1 being open. A hydraulic push rod 22 is installed at the bottom of the inner cavity of the mounting side compartment 21. The hydraulic push rod 22 drives the fixed top cover 24 and the fixed bottom cover 25 to rise and fall. A connecting crossbar 23 is connected to the output end of the hydraulic push rod 22. A fixed top cover 24 is fixedly installed at one end of the two sets of connecting crossbars 23 that are close to each other. A fixed bottom cover 25 is located below the fixed top cover 24.
[0024] A circular groove 26 is provided at the bottom edge of the fixed bottom cover 25, and the circular groove 26 corresponds to the edge of the top of the mixing tank 11.
[0025] The stirring component 3 includes an annular slide rail 31 opened at the bottom edge of the fixed top cover 24, multiple sets of sliders 32 slidably connected to the inner side of the annular slide rail 31, and a connecting post 33 fixedly installed at the bottom of the sliders 32. The bottom end of the connecting post 33 is connected to the top of the fixed bottom cover 25. The connection post 33 facilitates the connection between the fixed bottom cover 25 and the fixed top cover 24.
[0026] A motor mounting bracket 34 is fixedly installed on the top of the fixed bottom cover 25. A first motor 35 is installed on the top of the fixed top cover 24, and the output end of the first motor 35 passes through the fixed top cover 24 and is connected to the top of the motor mounting bracket 34.
[0027] A second motor 36 is fixedly installed on the top of the inner cavity of the motor mounting bracket 34. A main stirring rod 37 is connected to the output end of the second motor 36 and passes through the fixed bottom cover 25. Three sets of auxiliary stirring rods 38 are rotatably connected to the top edge of the fixed bottom cover 25 and the bottom ends of the auxiliary stirring rods 38 pass through the fixed bottom cover 25. Multiple sets of first stirring blades 39 are fixedly sleeved on the surface of the main stirring rod 37 and multiple sets of second stirring blades 310 are fixedly sleeved on the surface of the auxiliary stirring rods 38. The second stirring blades 310 and the first stirring blades 39 are staggered to improve the mixing effect.
[0028] A transmission gear 311 is fixedly sleeved on the surface of the main stirring rod 37 and above the fixed bottom cover 25, and a synchronization gear 312 is fixedly sleeved on the surface of the auxiliary stirring rod 38 and above the fixed bottom cover 25, and the three sets of synchronization gears 312 and transmission gears 311 mesh with each other.
[0029] During use, after adding raw materials into a set of mixing tanks 11 at the bottom of the fixed bottom cover 25, the hydraulic push rods 22 in the two sets of installation side chambers 21 are activated, which can drive the fixed top cover 24 on the connecting crossbar 23 to move down, and then the main stirring rod 37 and the auxiliary stirring rod 38 below the fixed bottom cover 25 move into the mixing tank 11 until the circular slot 26 at the bottom of the fixed bottom cover 25 contacts the top of the mixing tank 11, at which point the hydraulic push rods 22 are closed. Next, the circular slot 26 is activated to drive the multiple sets of auxiliary stirring rods 38 on the main stirring rod 37 to rotate and stir in the middle of the inner cavity of the mixing tank 11. Through the meshing of the transmission gear 311 on the main stirring rod 37 and the synchronous gear 312 on the three sets of auxiliary stirring rods 38, the second stirring blades 310 on the three sets of auxiliary stirring rods 38 can be driven to rotate and stir. At the same time, the first motor 35 is also started to drive the motor mounting bracket 34 to rotate, which in turn drives the fixed bottom cover 25 to rotate. Then, the slider 32 on the top connecting column 33 of the fixed bottom cover 25 rotates and moves in the inner cavity of the annular slide rail 31 at the bottom of the fixed top cover 24. When the fixed bottom cover 25 rotates, it can drive the main stirring rod 37 and the three sets of auxiliary stirring rods 38 to rotate and stir around the main stirring rod 37 while rotating on their own axis. Then, the first motor 35 and the second motor 36 are stopped after the raw materials in the mixing tank 11 have been mixed. Then, the hydraulic push rod 22 is activated again to drive the connecting crossbar 23 to rise, which in turn causes the motor mounting bracket 34 and the fixed bottom cover 25 to move upward, moving the main stirring rod 37 and the auxiliary stirring rod 38 out of the inner cavity of the mixing tank 11. Then, another set of mixing tanks 11 can be replaced and moved to the bottom cover 25 for raw material mixing. Example 2
[0030] Reference Figures 1-8 This is the second embodiment of the present invention. The difference between this embodiment and the first embodiment is that the moving component 4 includes a fixed horizontal plate 41 fixedly installed at the top of both ends of the inner cavity of the equipment mounting frame 1, a limiting vertical plate 42 fixedly installed at the bottom end of the fixed horizontal plate 41, a connecting slot 43 opened on one side of the limiting vertical plate 42 and passing through the limiting vertical plate 42, a rotating shaft 45 symmetrically arranged on the surface of the mixing tank 11, and two sets of T-shaped sliding blocks 44 slidably sleeved inside the connecting slot 43. One end of the rotating shaft 45 passes through the T-shaped sliding block 44 and is rotatably connected to the T-shaped sliding block 44. The T-shaped sliding block 44 can be used to assist in the load-bearing operation of the mixing tank 11.
[0031] The top of both sides of the inner cavity of the equipment mounting frame 1 is equipped with a third motor 47, a motor backstop 48 located at the output end of the third motor 47, a second gear 49 located at the output end of the third motor 47, and a first gear 46 located on the surface of the rotating shaft 45 at the end away from the mixing tank 11.
[0032] Mounting seats 410 are fixedly installed on the bottom of both sides of the limiting vertical plate 42. Threaded rods 411 are rotatably connected to two sets of mounting seats 410 on the same side of the limiting vertical plate 42, which are close to each other. A fourth motor 414 is set on the other side of a set of mounting seats 410 on the same side of the limiting vertical plate 42, and the output end of the fourth motor 414 is connected to one end of a set of threaded rods 411. Two sets of internal threaded sleeves 412 are threaded onto the surface of the threaded rods 411, and the two sets of internal threaded sleeves 412 are respectively located below two sets of T-shaped sliding blocks 44. A connecting block 413 is set on the top of the internal threaded sleeve 412, and the top of the connecting block 413 is fixedly connected to the bottom of the T-shaped sliding block 44.
[0033] The bottom of the equipment mounting frame 1 has two unloading slots 415 on both sides, and the unloading slots 415 are connected to the inner cavity of the equipment mounting frame 1. The unloading slots 415 are designed to avoid obstructing the mixing tank 11 when pouring raw materials.
[0034] During use, after a set of mixing drums 11 is stirred by the stirring component 3, the stirring component 3 is lifted from the mixing drum 11 by the lifting component 2. Then, by synchronizing the start of two sets of fourth motors 414, the threaded rods 411 below the two sets of limiting vertical plates 42 are rotated, causing the inner threaded sleeve block 412 to move on the surface of the threaded rod 411, which in turn moves the T-shaped sliding block 44 in the inner cavity of the connecting slot 43. Then, the mixing drum 11 containing the mixed material in the middle is moved to one side of the equipment mounting frame 1, while the mixing drum 11 originally located on one side of the equipment mounting frame 1 is moved to the middle position of the equipment mounting frame 1. Then, the lifting component 2 is operated to drive the stirring component 3 to descend into the mixing drum 11 for stirring and mixing. Next, when the mixing drum 11, which originally contained the mixed materials in the middle, is moved to one side of the equipment mounting frame 1, the first gear 46 on the rotating shaft 45 on both sides of the mixing drum 11 will mesh with the two sets of second gears 49 on one side of the inner cavity of the equipment mounting frame 1. At this time, by starting the third motor 47, the rotating shaft 45 can be rotated synchronously through the meshing of the second gear 49 and the first gear 46, which will cause the mixing drum 11 to rotate and the top of the mixing drum 11 to pour out the raw materials. After the raw materials in the mixing drum 11 have been poured out and rotated once, the unmixed raw materials can be added to the mixing drum 11 again. Then, wait for the mixing drum 11 in the middle to finish mixing before repeating the above steps.
[0035] The remaining structure is the same as that in Example 1.
[0036] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.
Claims
1. A stirring device for producing conductive silicone, comprising a device mounting frame (1), characterized in that: It also includes two sets of mixing tanks (11) disposed in the inner cavity of the equipment mounting frame (1), lifting components (2) disposed on both sides of the equipment mounting frame (1), mixing components (3) disposed above the mixing tanks (11), and moving components (4) disposed inside the equipment mounting frame (1). The lifting component (2) includes mounting side compartments (21) on both sides of the equipment mounting frame (1), with the end of the mounting side compartment (21) near the equipment mounting frame (1) being open, a hydraulic push rod (22) at the bottom of the inner cavity of the mounting side compartment (21), a connecting crossbar (23) at the output end of the hydraulic push rod (22), a fixed top cover (24) at one end of the two sets of connecting crossbars (23) close to each other, and a fixed bottom cover (25) below the fixed top cover (24).
2. The stirring equipment for producing conductive silicone according to claim 1, characterized in that: A circular slot (26) is provided at the bottom edge of the fixed bottom cover (25), and the circular slot (26) corresponds to the edge of the top of the mixing tank (11).
3. The stirring equipment for producing conductive silicone according to claim 1, characterized in that: The stirring component (3) includes an annular slide rail (31) disposed at the bottom edge of the fixed top cover (24), multiple sets of sliders (32) disposed inside the annular slide rail (31), and a connecting column (33) disposed at the bottom of the slider (32), and the bottom end of the connecting column (33) is connected to the top of the fixed top cover (25).
4. The stirring equipment for producing conductive silicone according to claim 3, characterized in that: A motor mounting bracket (34) is fixedly installed on the top of the fixed bottom cover (25). A first motor (35) is set on the top of the fixed top cover (24), and the output end of the first motor (35) passes through the fixed top cover (24) and is connected to the top of the motor mounting bracket (34).
5. The stirring equipment for producing conductive silicone according to claim 4, characterized in that: A second motor (36) is fixedly installed at the top of the inner cavity of the motor mounting bracket (34). A main stirring rod (37) is set at the output end of the second motor (36) and the main stirring rod (37) passes through the fixed bottom cover (25). Three sets of auxiliary stirring rods (38) are set at the top edge of the fixed bottom cover (25) and the bottom end of the auxiliary stirring rods (38) passes through the fixed bottom cover (25). Multiple sets of first stirring blades (39) are set on the surface of the main stirring rod (37) and multiple sets of second stirring blades (310) are set on the surface of the auxiliary stirring rods (38). The second stirring blades (310) and the first stirring blades (39) are arranged alternately.
6. The stirring equipment for producing conductive silicone according to claim 5, characterized in that: The main stirring rod (37) is fixedly fitted with a transmission gear (311) on its surface and above the fixed bottom cover (25), and the auxiliary stirring rod (38) is fixedly fitted with a synchronization gear (312) on its surface and above the fixed bottom cover (25), and the three sets of synchronization gears (312) and transmission gears (311) mesh with each other.
7. The stirring equipment for producing conductive silicone according to claim 1, characterized in that: The moving component (4) includes a fixed horizontal plate (41) at the top of both ends of the inner cavity of the equipment mounting frame (1), a limiting vertical plate (42) at the bottom of the fixed horizontal plate (41), a connecting slot (43) on one side of the limiting vertical plate (42), the connecting slot (43) penetrating the limiting vertical plate (42), a rotating shaft (45) symmetrically arranged on the surface of the mixing tank (11), two sets of T-shaped sliding blocks (44) slidably sleeved inside the connecting slot (43), and one end of the rotating shaft (45) penetrating the T-shaped sliding block (44) and rotatably connected to the T-shaped sliding block (44).
8. The stirring equipment for producing conductive silicone according to claim 7, characterized in that: The top of both sides of the inner cavity of the equipment mounting frame (1) is provided with a third motor (47), a motor backstop (48) provided at the output end of the third motor (47), a second gear (49) provided at the output end of the third motor (47), and a first gear (46) provided at the end of the rotating shaft (45) away from the mixing tank (11).
9. The stirring equipment for producing conductive silicone according to claim 8, characterized in that: Mounting seats (410) are fixedly installed on the bottom of both sides of the limiting vertical plate (42). Threaded rods (411) of two sets of mounting seats (410) are set on the same side of the limiting vertical plate (42) and are close to each other. A fourth motor (414) is set on the other side of a set of mounting seats (410) on the same side of the limiting vertical plate (42). The output end of the fourth motor (414) is connected to one end of a set of threaded rods (411). Two sets of internal threaded sleeves (412) are set on the surface of the threaded rods (411) and are respectively located below two sets of T-shaped sliding blocks (44). A connecting block (413) is set on the top of the internal threaded sleeves (412) and the top of the connecting block (413) is fixedly connected to the bottom of the T-shaped sliding block (44).
10. The stirring equipment for producing conductive silicone according to claim 1, characterized in that: The bottom of the equipment mounting frame (1) is provided with unloading slots (415) on both sides, and the unloading slots (415) and the inner cavity of the equipment mounting frame (1) are interconnected.