Liquid-assisted production system for stress coating of grain-oriented silicon steel
By employing bidirectional convection stirring and multi-zone heat dissipation design, the problems of mechanical wear and uneven mixing in existing technologies have been solved, improving the uniformity and production efficiency of silicon steel stress coating liquid, and optimizing the corrosion resistance and surface finish of the coating.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- AOKE CHENXUAN MATERIALS TECHNOLOGY (HENGYANG) CO LTD
- Filing Date
- 2025-06-17
- Publication Date
- 2026-05-29
AI Technical Summary
In existing technologies, frequent switching of stirring direction causes impact loads on the motor, reducer, coupling and transmission components, which intensifies mechanical wear and affects the mixing uniformity and production efficiency of silicon steel stress coating liquid.
It adopts a two-way convection stirring design, and the stirring blades rotate vertically through a differential transmission system to form a vertical circulation flow. Combined with a multi-zone heat dissipation system, it optimizes the mixing uniformity and mechanical life of the coating liquid.
It effectively eliminates mixing dead zones, improves the uniformity and dispersion of the coating liquid, reduces mechanical wear, and increases production efficiency, corrosion resistance, and surface smoothness of the coating.
Smart Images

Figure CN224299356U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of grain-oriented silicon steel production technology, and in particular to a grain-oriented silicon steel stress coating liquid-assisted production system. Background Technology
[0002] Oriented silicon steel, also known as cold-rolled oriented silicon steel, is a high-value-added silicon steel material prepared through special rolling and annealing processes. It belongs to an important category of electrical steel. The stress coating liquid auxiliary production system for oriented silicon steel is an automated or semi-automated auxiliary equipment system that serves the production process of oriented silicon steel. Its core function is to accurately coat the stress coating liquid and optimize the magnetic properties of silicon steel through supporting process control. It is a key component of the oriented silicon steel production line.
[0003] In existing silicon steel stress coating liquids, the required raw materials are placed in a mixing tank and then mixed by internal stirring blades. However, when stirring in one direction, although the liquid moves in a circular motion along the stirring axis, there is a lack of vertical convection between the upper and lower layers, i.e., axial flow, resulting in mixing dead zones in the mixing tank. Existing technology controls the motor to switch the stirring direction at regular intervals, such as 5 to 10 minutes. This reversal of the flow direction breaks the inertial circulation of the liquid, causing the liquid to flow in both the axial and radial directions, enhancing axial convection, and allowing the liquid that was originally in the mixing dead zone to participate in the overall mixing process, thus improving the mixing uniformity. However, frequent switching of direction will generate impact loads on the motor, reducer, coupling, and transmission components, resulting in accelerated mechanical wear and causing inconvenience to subsequent stirring and mixing operations. Utility Model Content
[0004] To overcome the above shortcomings, this utility model provides an auxiliary production system for stress coating liquid of oriented silicon steel, which aims to improve the problem that frequent switching of steering direction in the prior art will generate impact loads on the motor, reducer, coupling and transmission components, thereby leading to increased mechanical wear and causing inconvenience to the subsequent stirring and mixing work.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: an assisted production system for stress-coated silicon steel, comprising a processing machine body, a mixing tank installed on the right side of the outer wall of the processing machine body, multiple stirring mechanisms installed equidistantly inside the mixing tank for stirring and mixing, a heat dissipation mechanism installed on the top of the inner wall of the processing machine body for heat dissipation and cooling; each stirring mechanism includes a support rod, which is equidistantly installed inside the processing machine body, and stirring blades are fixedly connected to the bottom of each support rod; a drive assembly is installed on the top of the mixing tank.
[0006] As a further description of the above technical solution:
[0007] The drive assembly includes a motor, which is mounted on the top of the processing machine body. A fixed short rod is fixedly connected to the output end of the motor, and a rotating gear is fixedly connected to the bottom end of the fixed short rod. A support plate is fixedly connected to the upper part of the inner wall of the mixing tank, and a fixed long rod is fixedly connected to the top of the support plate. Multiple bevel gears are rotatably connected at equal intervals on the upper and lower sides of the outer wall of the fixed long rod. A circular ring is fixedly connected to the outer wall of each bevel gear. A fixed rod passes through the middle of the outer wall of the fixed long rod. Bevel gears are fixedly connected to the left and right ends of the outer wall of the fixed rod. A rotating gear is fixedly connected to the upper part of the outer wall of the upper bevel gear, and the rotating gear meshes with the rotating gear.
[0008] As a further description of the above technical solution:
[0009] The heat dissipation mechanism includes a sliding block, which is installed on the top of the inner wall of the processing machine body. A battery is fixedly connected to the left side of the outer wall of the sliding block, and a fan is fixedly connected to the bottom of the sliding block. A transmission assembly is installed on the top right side of the processing machine body.
[0010] As a further description of the above technical solution:
[0011] The transmission assembly includes a second motor, which is mounted on the top right side of the processing machine body. A connecting column is fixedly connected to the output end of the second motor, and a connecting plate is fixedly connected to the bottom end of the connecting column. A second support plate is fixedly connected to the rear end of the top of the inner wall of the processing machine body. A first support plate is fixedly connected to the front side of the outer wall of the second support plate, and a fixed long column is fixedly connected to the front side of the outer wall of the second support plate. An inner sliding groove plate is installed on the right side of the outer wall of the fixed long column, and a sliding short rod is fixedly connected to the bottom of the other end of the outer wall of the connecting plate.
[0012] As a further description of the above technical solution:
[0013] The outer wall of the sliding short rod is slidably connected to the interior of the inner sliding groove plate, the left side of the outer wall of the inner sliding groove plate is fixedly connected to the right side of the outer wall of the sliding block, and the interior of the sliding block is slidably connected to the outer wall of the fixed long column.
[0014] As a further description of the above technical solution:
[0015] The first rotating gear meshes with the second rotating gear, the first bevel gear meshes with the second bevel gear, and the outer wall of the circular ring is fixedly connected to the outer wall of the multiple support rods on one side.
[0016] As a further description of the above technical solution:
[0017] The mixing tank is fitted with a lid, and multiple handles are fixedly connected to the top of the lid at equal intervals.
[0018] As a further description of the above technical solution:
[0019] An alarm light is installed on the top front side of the machining body, and the alarm light is electrically connected to the machining body.
[0020] This utility model has the following beneficial effects:
[0021] 1. In this utility model, after the motor is started, it drives the fixed short rod and the rotating gear to rotate synchronously. The rotating gear meshes with the upper bevel gear. The bevel gear is fixed at both ends of the rod that passes through the long rod and serves as a transmission component. The upper and lower bevel gears rotate in opposite directions to form a differential transmission, which drives the circular ring and the support rod, so that the stirring blades generate bidirectional convection stirring. The upper stirring blades push the liquid upward and the lower stirring blades push the liquid downward, forming a vertical circulating flow and eliminating the mixing dead angle of traditional unidirectional stirring.
[0022] 2. In this utility model, the motor starts, driving the connecting column and connecting plate to rotate. The sliding short rod rotates around the connecting column, pushing the inner sliding plate sliding block to move left and right. The fan is fixed at the bottom of the sliding block and moves with it to cover the left and right sides of the mixing tank, realizing multi-area heat dissipation. Attached Figure Description
[0023] Figure 1 This is a front view of the oriented silicon steel stress coating liquid auxiliary production system proposed in this utility model;
[0024] Figure 2 This is a perspective view of the oriented silicon steel stress coating liquid auxiliary production system proposed in this utility model;
[0025] Figure 3 This is a partial structural exploded view of the oriented silicon steel stress coating liquid auxiliary production system proposed in this utility model;
[0026] Figure 4 This is a partial structural diagram of the oriented silicon steel stress coating liquid auxiliary production system proposed in this utility model;
[0027] Figure 5 This is a schematic diagram of the heat dissipation mechanism of the oriented silicon steel stress coating liquid auxiliary production system proposed in this utility model.
[0028] Legend:
[0029] 1. Machine body; 2. Stirring mechanism; 201. Support rod; 202. Stirring blade; 203. Drive assembly; 2031. Motor 1; 2032. Bevel gear 1; 2033. Support plate 3; 2034. Fixed long rod; 2035. Fixed short rod; 2036. Rotating gear 1; 2037. Rotating gear 2; 2038. Fixed rod; 2039. Circular ring; 20310. Bevel gear 2; 3. Heat dissipation mechanism; 301. Sliding block; 302. Battery; 303. Fan; 304. Transmission assembly; 3041. Motor 2; 3042. Connecting plate; 3043. Inner sliding groove plate; 3044. Sliding short rod; 3045. Connecting column; 3046. Support plate 1; 3047. Support plate 2; 3048. Fixed long column; 4. Handle; 5. Bucket lid; 6. Mixing bucket; 7. Alarm light. Detailed Implementation
[0030] 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.
[0031] Reference Figure 2 , Figure 3 and Figure 4This utility model provides an embodiment of an auxiliary production system for stress coating liquid of oriented silicon steel, including a processing body 1. A mixing tank 6 is installed on the right side of the outer wall of the processing body 1. Multiple stirring mechanisms 2 are equidistantly installed inside the mixing tank 6 for stirring and mixing. A heat dissipation mechanism 3 is installed on the top of the inner wall of the processing body 1 for heat dissipation and cooling. The stirring mechanism 2 includes a support rod 201, which is equidistantly installed inside the processing body 1. Stirring blades 202 are fixedly connected to the bottom of each support rod 201. A drive assembly 203 is installed on the top of the mixing tank 6. The drive assembly 203 includes a motor 2031, which is installed on the top of the processing body 1. A fixed short rod 2035 is fixedly connected to the output end of the motor 2031. A rotating gear 2036 is fixedly connected to the bottom end of the fixed short rod 2035. A support plate 2033 is fixedly connected to the upper middle part of the inner wall of the mixing tank 6. The top of the three 2033 is fixedly connected to a fixed long rod 2034. Multiple bevel gears 2032 are equidistantly rotatably connected to the upper and lower sides of the outer wall of the fixed long rod 2034. Circular rings 2039 are fixedly connected to the outer walls of each bevel gear 2032. A fixed rod 2038 passes through the middle of the outer wall of the fixed long rod 2034. Bevel gears 20310 are fixedly connected to the left and right ends of the outer wall of the fixed rod 2038. Rotating gears 2037 are fixedly connected to the upper middle part of the outer wall of the upper bevel gear 2032. Rotating gears 2037 mesh with rotating gears 2036. The outer wall of the sliding short rod 3044 is slidably connected to the interior of the inner sliding groove plate 3043. The left side of the outer wall of the inner sliding groove plate 3043 is fixedly connected to the right side of the outer wall of the sliding block 301. The interior of the sliding block 301 is slidably connected to the outer wall of the fixed long column 3048. The movement of the inner sliding groove plate 3043 can drive the sliding block 301 to slide on the outer wall of the fixed long column 3048.
[0032] Specifically, by turning on the motor 2031, the output shaft drives the fixed short rod 2035 to rotate, which in turn drives the rotating gear 2036 to rotate synchronously. The rotating gear 2036 meshes with the rotating gear 2037 on the outer wall of the upper bevel gear 2032, transmitting power to the upper bevel gear 2032, causing the bevel gear 2032 to rotate around the fixed long rod 2034. The bevel gear 20310 is fixed to both ends of the fixed rod 2038 that passes through the fixed long rod 2034, serving as an intermediate transmission component. Due to the meshing characteristics of bevel gears, the lower bevel gear 2032 will rotate in the opposite direction to the upper one, forming a differential transmission. Circular rings 2039 are fixed to the outer walls of both the upper and lower bevel gears 2032, and their outer circumferences are fixedly connected to multiple support rods 201. Therefore, when the bevel gear 2032 rotates in the opposite direction, the circular ring 2039 drives the support rod 201 and the bottom stirring blade 202 to rotate synchronously, forming a bidirectional convection mixing field. The upper stirring blade 202 rotates clockwise to push the liquid upward, and the lower stirring blade 202 rotates counterclockwise to push the liquid downward, forming a vertical circulating flow. This effectively eliminates the axial mixing dead angle of traditional unidirectional stirring. This design is suitable for mixing high-viscosity coating liquids such as those with a solid content >40%, promoting the uniform dispersion of high-density components such as phosphate 18%–22% and colloidal silica 25%–30%. The relative motion generated by the bidirectional rotation makes the internal shear force distribution of the liquid more uniform, improving the agglomeration effect of broken particles. For example, it can break up the nanoparticles in 10%–18% silica sol. The particle size of the colloidal particles (1-100nm) is more effectively dispersed, avoiding aggregation caused by excessive local shear force. The process sequence is well-suited; during the step-by-step addition of the coating solution, such as adding demineralized water first, followed by phosphate and colloidal silica, bidirectional stirring can quickly integrate the newly added components with the main liquid. After adding phosphate, 35 minutes of bidirectional stirring ensures its complete hydrolysis and formation of a network structure on the silicon steel surface. Finally, when adding 0.5%–2% defoamer, 60 minutes of bidirectional stirring ensures defoaming effect while avoiding the introduction of new bubbles due to over-stirring. Bidirectional stirring allows 10%–15% of additives such as borates and nitrates to be more evenly distributed in the coating solution, improving the coating's corrosion resistance and surface smoothness. Rare earth elements such as cerium, under bidirectional shear force... The use of a finer film structure makes the coating surface smooth and dense, reducing eddy current losses between silicon steel sheets. 25% to 30% of colloidal silica is fully dispersed in bidirectional convection, and its fibrous or porous structure can better absorb and release internal stress in silicon steel, optimizing the matching of the coating's thermal expansion coefficient. Finally, the configuration is completed according to this step, and then it can be filled and used in ton drums or other containers. The outer wall of the sliding short rod 3044 is slidably connected to the inside of the inner sliding groove plate 3043. The left side of the outer wall of the inner sliding groove plate 3043 is fixedly connected to the right side of the outer wall of the sliding block 301. The inside of the sliding block 301 is slidably connected to the outer wall of the fixed long column 3048. The movement of the inner sliding groove plate 3043 can drive the sliding block 301 to slide on the outer wall of the fixed long column 3048.
[0033] Reference Figure 1 , Figure 2 and Figure 5 The heat dissipation mechanism 3 includes a sliding block 301, which is installed on the top of the inner wall of the processing machine body 1. A battery 302 is fixedly connected to the left side of the outer wall of the sliding block 301, and a fan 303 is fixedly connected to the bottom of the sliding block 301. A transmission assembly 304 is installed on the top right side of the processing machine body 1. The transmission assembly 304 includes a second motor 3041, which is installed on the top right side of the processing machine body 1. A connecting post 3045 is fixedly connected to the output end of the second motor 3041, and a connecting plate 3042 is fixedly connected to the bottom end of the connecting post 3045. A second support plate 3047 is fixedly connected to the rear end of the top of the inner wall of the processing machine body 1. A support plate 3046 is fixedly connected to the front side of the outer wall. A fixed long column 3048 is fixedly connected to the front side of the outer wall of the support plate 3047. An inner sliding groove plate 3043 is installed on the right side of the outer wall of the fixed long column 3048. A sliding short rod 3044 is fixedly connected to the bottom of the other end of the outer wall of the connecting plate 3042. Rotating gear 2036 meshes with rotating gear 2037. Bevel gear 2032 meshes with bevel gear 20310. The outer wall of the circular ring 2039 is fixedly connected to the adjacent side of the outer wall of multiple support rods 201. The rotation of the circular ring 2039 can drive the support rods 201 and the bottom stirring blade 202 to rotate and stir.
[0034] Specifically, the motor 3041 starts and drives the connecting column 3045 and the connecting plate 3042 to rotate. The sliding rod 3044 rotates around the connecting column 3045. When the sliding rod 3044 moves to the right side of the inner sliding plate 3043, it pushes the sliding block 301 of the inner sliding plate 3043 to move to the left along the fixed column 3048. When the sliding rod 3044 moves to the left side, it pulls the sliding block 301 of the inner sliding plate 3043 to move to the right. The fan 303 is fixed at the bottom of the sliding block 301 and moves with the sliding block. When 301 moves synchronously to the left, fan 303 covers the left side of mixing tank 6 and blows air. When it moves to the right, it covers the right side, achieving multi-area heat dissipation. Rotating gear 1 2036 meshes with rotating gear 2037, and bevel gear 1 2032 meshes with bevel gear 20310. The outer wall of circular ring 2039 is fixedly connected to the adjacent side of the outer wall of multiple support rods 201. The rotation of circular ring 2039 can drive the support rods 201 and the bottom stirring blades 202 to rotate and stir.
[0035] Reference Figure 1 and Figure 2The top of the mixing tank 6 is equipped with a lid 5, and multiple handles 4 are fixedly connected at equal intervals on the top of the lid 5. The handles 4 make it easy for the staff to open or close the lid 5 for use. An alarm light 7 is installed on the front of the top of the processing machine body 1. The alarm light 7 is electrically connected to the processing machine body 1. The alarm light 7 can emit light to inform the user to pay attention to safety when the processing machine body 1 malfunctions.
[0036] Specifically, a lid 5 is installed on the top of the mixing tank 6, and multiple handles 4 are fixedly connected at equal intervals on the top of the lid 5. The handles 4 make it easy for the staff to open or close the lid 5 for use. An alarm light 7 is installed on the front top of the processing machine body 1. The alarm light 7 is electrically connected to the processing machine body 1. The alarm light 7 can emit light to inform the user to pay attention to safety when the processing machine body 1 malfunctions.
[0037] Working principle: By turning on the motor 2031, the output shaft drives the fixed short rod 2035 to rotate, which in turn drives the rotating gear 2036 to rotate synchronously. The rotating gear 2036 meshes with the rotating gear 2037 on the outer wall of the upper bevel gear 2032, transmitting power to the upper bevel gear 2032, causing the bevel gear 2032 to rotate around the fixed long rod 2034. The bevel gear 20310 is fixed to both ends of the fixed rod 2038 that passes through the fixed long rod 2034, serving as an intermediate transmission component. Due to the meshing characteristics of bevel gears, the lower bevel gear 2032 will rotate in the opposite direction to the upper one, forming a differential transmission. The upper and lower bevel gears 2031 and 2032 rotate in opposite directions. The outer wall of component 2 is fixed with a circular ring 2039, and the outer circumference is fixedly connected to multiple support rods 201. Therefore, when the bevel gear 2032 rotates in the opposite direction, the circular ring 2039 drives the support rods 201 and the bottom stirring blades 202 to rotate synchronously, forming a bidirectional convection mixing field. The upper stirring blades 202 rotate clockwise to push the liquid upward, and the lower stirring blades 202 rotate counterclockwise to push the liquid downward, forming a vertical circulating flow. This effectively eliminates the axial mixing dead angle of traditional unidirectional stirring. This design is suitable for mixing high-viscosity coating liquids such as those with a solid content >40%, and promotes the mixing of high-density components such as phosphates (18%–22%) and colloidal silica (25%–30%). The uniform dispersion and relative motion generated by bidirectional rotation make the shear force distribution inside the liquid more uniform, improving the agglomeration effect of broken particles. For example, it can more effectively disperse nano-sized colloidal particles with diameters of 1-100nm in 10%-18% silica sol, avoiding agglomeration caused by excessive local shear force. The process sequence is adapted. In the step-by-step addition of coating liquid, such as adding demineralized water first, followed by phosphate and colloidal silica in sequence, bidirectional stirring can quickly integrate the newly added components with the main liquid. After adding phosphate, 35 minutes of bidirectional stirring can ensure that it is fully hydrolyzed and forms a network structure with the silicon steel surface. Finally, when 0.5%-2% of defoamer is added, 60 minutes of stirring can further enhance the effect. Two-way stirring ensures defoaming while avoiding the introduction of new bubbles due to over-stirring. Two-way stirring allows 10%–15% of additives such as borate and nitrate to be more evenly distributed in the coating liquid, improving the coating's corrosion resistance and surface smoothness. Rare earth elements such as cerium are more likely to refine the film structure under two-way shear force, making the coating surface smooth and dense, reducing eddy current losses between silicon steel sheets. 25%–30% of colloidal silica is fully dispersed in two-way convection, and its fibrous or porous structure can better absorb and release internal stress in silicon steel, optimizing the matching of the coating's thermal expansion coefficient. Finally, after completing the preparation according to this step, it can be filled into ton drums or other containers for use.
[0038] The motor 3041 starts and drives the connecting column 3045 and the connecting plate 3042 to rotate. The sliding rod 3044 rotates around the connecting column 3045. When the sliding rod 3044 moves to the right side of the inner sliding plate 3043, it pushes the sliding block 301 of the inner sliding plate 3043 to move to the left along the fixed column 3048. When the sliding rod 3044 moves to the left side, it pulls the sliding block 301 of the inner sliding plate 3043 to move to the right. The fan 303 is fixed at the bottom of the sliding block 301 and moves synchronously with the sliding block 301. When moving to the left, the fan 303 covers the left side of the mixing tank 6 and blows air. When moving to the right, it covers the right side, thus achieving multi-area heat dissipation.
[0039] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. An auxiliary production system for stress coating liquid on oriented silicon steel, comprising a processing machine (1), characterized in that: A mixing tank (6) is installed on the right side of the outer wall of the processing machine body (1). Multiple stirring mechanisms (2) are installed equidistantly inside the mixing tank (6). The stirring mechanisms (2) are used for stirring and mixing. A heat dissipation mechanism (3) is installed on the top of the inner wall of the processing machine body (1). The heat dissipation mechanism (3) is used for heat dissipation and cooling. The stirring mechanism (2) includes a support rod (201), which is equidistantly installed inside the processing machine body (1). The bottom of each support rod (201) is fixedly connected to a stirring blade (202), and a drive assembly (203) is installed on the top of the mixing tank (6).
2. The oriented silicon steel stress coating liquid-assisted production system according to claim 1, characterized in that: The drive assembly (203) includes a motor (2031), which is mounted on the top of the processing machine body (1). A fixed short rod (2035) is fixedly connected to the output end of the motor (2031), and a rotating gear (2036) is fixedly connected to the bottom end of the fixed short rod (2035). A support plate (2033) is fixedly connected to the upper part of the inner wall of the mixing barrel (6), and a fixed long rod (2034) is fixedly connected to the top of the support plate (2033). The outer side of the fixed long rod (2034) is... Multiple bevel gears (2032) are equidistantly rotatably connected to the upper and lower sides of the wall. A circular ring (2039) is fixedly connected to the outer wall of each bevel gear (2032). A fixed rod (2038) passes through the middle of the outer wall of the fixed long rod (2034). Bevel gears (20310) are fixedly connected to the left and right ends of the outer wall of the fixed rod (2038). A rotating gear (2037) is fixedly connected to the upper middle part of the outer wall of the upper bevel gear (2032). The rotating gear (2037) meshes with the rotating gear (2036).
3. The oriented silicon steel stress coating liquid-assisted production system according to claim 1, characterized in that: The heat dissipation mechanism (3) includes a sliding block (301), which is installed on the top of the inner wall of the processing machine body (1). A battery (302) is fixedly connected to the left side of the outer wall of the sliding block (301), and a fan (303) is fixedly connected to the bottom of the sliding block (301). A transmission assembly (304) is installed on the top right side of the processing machine body (1).
4. The oriented silicon steel stress coating liquid-assisted production system according to claim 3, characterized in that: The transmission assembly (304) includes a second motor (3041), which is installed on the top right side of the processing machine body (1). The output end of the second motor (3041) is fixedly connected to a connecting column (3045), and the bottom end of the connecting column (3045) is fixedly connected to a connecting plate (3042). The rear end of the top of the inner wall of the processing machine body (1) is fixedly connected to a second support plate (3047). The front side of the outer wall of the second support plate (3047) is fixedly connected to a first support plate (3046), and the front side of the outer wall of the second support plate (3047) is fixedly connected to a fixed long column (3048). An inner sliding groove plate (3043) is installed on the right side of the outer wall of the fixed long column (3048), and a sliding short rod (3044) is fixedly connected to the bottom of the other end of the outer wall of the connecting plate (3042).
5. The oriented silicon steel stress coating liquid-assisted production system according to claim 4, characterized in that: The outer wall of the sliding short rod (3044) is slidably connected to the interior of the inner sliding groove plate (3043), the left side of the outer wall of the inner sliding groove plate (3043) is fixedly connected to the right side of the outer wall of the sliding block (301), and the interior of the sliding block (301) is slidably connected to the outer wall of the fixed long column (3048).
6. The oriented silicon steel stress coating liquid-assisted production system according to claim 2, characterized in that: The rotating gear one (2036) is meshed with the rotating gear two (2037), the bevel gear one (2032) is meshed with the bevel gear two (20310), and the outer wall of the circular ring (2039) is fixedly connected to the adjacent side of the outer wall of the multiple support rods (201).
7. The assisted production system for stress-coating liquid of grain-oriented silicon steel according to claim 1, characterized in that: The mixing tank (6) is fitted with a lid (5) on top, and a plurality of handles (4) are fixedly connected at equal intervals on the top of the lid (5).
8. The oriented silicon steel stress coating liquid-assisted production system according to claim 1, characterized in that: An alarm light (7) is installed on the top front side of the machining body (1), and the alarm light (7) is electrically connected to the machining body (1).