A finished product inspection device for magnesia-carbon brick production
By designing finished product inspection equipment for magnesia-carbon brick production, the problem of low automation caused by the separate operation of traditional magnesia-carbon brick inspection steps has been solved. This has enabled automated continuous production of magnesia-carbon bricks, improved production efficiency and product quality, and met the design requirements of industrial kilns.
Patent Information
- Application Number
- CN202510619592.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-14
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2045-05-14
AI Technical Summary
In the traditional inspection and selection process for magnesia-carbon bricks, operations such as size measurement, weighing, and hardness testing are separate and performed manually, resulting in low automation, low efficiency, and unsuitability for large-scale production.
Design a finished product inspection device for magnesia-carbon brick production, comprising a composite mechanism, a straightening mechanism, a buffer mechanism, a limiting mechanism, a processing mechanism, and a cleaning mechanism. Through the coordinated work of these mechanisms, automated conveying, straightening, dimensional measurement, surface cleaning, and protection of magnesia-carbon bricks can be achieved, thereby improving production efficiency and product quality.
It enables automated continuous production of magnesia-carbon bricks, improves production efficiency, ensures product quality and safety, reduces the probability of equipment failure, meets the design requirements of industrial kilns, and facilitates transportation and storage.
Smart Images

Figure CN120479763B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of magnesia-carbon brick technology, specifically to a finished product inspection device for magnesia-carbon brick production. Background Technology
[0002] Magnesia-carbon bricks are non-burning composite refractory materials made from high-melting-point alkaline oxide magnesia and high-melting-point carbon materials that are difficult to wet by slag, with the addition of various non-oxide additives and bonded together with carbonaceous binders. The production steps of magnesia-carbon bricks include raw material preparation, crushing, weighing, mixing, molding, drying, sorting, and transportation after stacking. Magnesia-carbon bricks are mainly used as linings in converters, AC electric arc furnaces, and DC electric arc furnaces, as well as in slag lines of ladles. As a composite refractory material, magnesia-carbon bricks effectively utilize the strong slag erosion resistance of magnesia and the high thermal conductivity and low expansion of carbon, compensating for the biggest drawback of magnesia's poor resistance to spalling.
[0003] In the inspection and selection process, the traditional equipment and processing methods are as follows: the size of the magnesia-carbon bricks is measured manually, and the density is measured manually with calipers before the next step of weighing. The hardness test is then performed after each brick is manually moved and weighed. In the above steps, the transfer and transshipment are all done manually, the size measurement and weighing are all done manually, and the hardness test is carried out by mechanical pressure. The traditional inspection and selection equipment and processing methods have certain defects.
[0004] Traditional magnesia-carbon bricks require separate operations for dimensional measurement, weighing, and hardness testing after molding and discharge. This lack of automation results in low overall efficiency and increased testing time, making them unsuitable for large-scale production. Therefore, a new design was developed to address this issue. Summary of the Invention
[0005] To achieve the above objectives, the present invention is implemented through the following technical solution: a finished product inspection device for the production of magnesia-carbon bricks, comprising a composite mechanism, a processing mechanism fixedly connected to the middle of the top of the composite mechanism, a motor fixedly connected to one side of the outside of the processing mechanism, and a cleaning mechanism fixedly connected to one side of the bottom of the composite mechanism.
[0006] The composite mechanism includes a composite frame, with conveying devices fixedly connected between opposite faces of the frame. A straightening mechanism is fixedly connected to one side of the top of the frame. Magnesia-carbon bricks are conveyed from the straightening mechanism via the conveying device. The straightening mechanism clamps the bricks to adjust their angle, ensuring subsequent operations are completed. A limiting mechanism is fixedly connected to the outside of the straightening mechanism. When the straightening mechanism corrects the material, it squeezes the limiting mechanism, thus braking the clamping force and preventing excessive clamping that could cause surface wear and affect material properties, ensuring normal equipment operation. A screening plate is fixedly connected to the top of the composite frame away from the straightening mechanism. After the straightening mechanism corrects the angle of the magnesia-carbon bricks, the conveying device moves the bricks... The carbon bricks move towards the screening plate, which measures the material size to prevent excessive material errors that could affect subsequent use. This ensures the quality and stability of the masonry, meets the design requirements of industrial kilns, improves production efficiency, and facilitates transportation and storage. A guide plate is fixedly connected to the side of the screening plate near the correction mechanism. The guide plate guides the material, improves material concentration, and avoids affecting operational efficiency. A telescopic rod is fixedly connected to the side of the guide plate near the screening plate. A spring strip is fitted on the outer side of the telescopic rod. When the magnesia-carbon bricks impact the guide plate, the telescopic rod compresses the spring strip, thus providing shock absorption and buffering, reducing the impact force of the material, decreasing the probability of material breakage, and improving equipment operating efficiency. The side of the telescopic rod away from the guide plate is fixedly connected to the outer side of the screening plate.
[0007] Preferably, the correction mechanism includes a correction platform, the top of which is fixedly connected to an electric push rod. The electric push rod pushes the square plates to clamp them face to face, thereby correcting the material conveying angle and preventing the material angle from being too different from the screening plate, which would prevent the screening plate from blocking the material and affecting the work efficiency. A square plate is fixedly connected to one side of the electric push rod, and a buffer mechanism is fixedly connected to the opposite side of the square plate. When clamping magnesia-carbon bricks, the buffer mechanism plays a role in shock absorption and buffering, reducing the clamping force and preventing excessive wear of the material, which would affect product quality. An outer block is fixedly connected to the narrower side of the square plate, and the outer side of the outer block is fixedly connected to the outer side of the limiting mechanism.
[0008] Preferably, the buffer mechanism includes a cylindrical shell, the outer side of which is fixedly connected to the outer side of a square plate. A metal ring is fixedly connected to the inner wall of the cylindrical shell. When the rhomboid plate is clamped against the surface of the magnesia-carbon brick, the sliding rod compresses and contracts the metal ring, thereby playing a role in shock absorption and buffering. This buffers the clamping force of the electric push rod, preventing excessive clamping force and excessive wear on the material surface, thus ensuring the integrity and quality of the product. A sliding rod is fixedly connected to one side of the outer edge of the metal ring, and the outer side of the sliding rod is slidably connected to the inner wall of the cylindrical shell. A rhomboid plate is fixedly connected to the outer edge of the sliding rod away from the metal ring. The rhomboid side of the plate is made of silicone material. The silicone material increases the wear resistance of the component, preventing severe wear after prolonged operation and affecting subsequent equipment operation. It also provides a certain degree of anti-slip, thereby improving the material correction effect.
[0009] Preferably, the limiting mechanism includes a cylindrical block, one side of which is fixedly connected to the outer side of an outer block. A spring ring is sleeved on the outer side of the cylindrical block. When the straightening mechanism clamps the magnesia-carbon brick, it squeezes the limiting mechanism, causing the sliding block to slide on the surface of the cylindrical block and squeeze the spring ring, thereby achieving a shock absorption and buffering effect. Secondly, through the reaction of the spring structure, a sliding block is slidably connected to the outer side of the cylindrical block, and the reaction supports the sliding block, thereby braking the clamping force, preventing excessive compression, avoiding damage to materials and components, and ensuring the normal operation of the equipment.
[0010] Preferably, the processing mechanism includes a processing frame, a square shell fixedly connected to one side of the outer side of the processing frame, a connecting shaft rotatably connected between opposite faces of the processing frame, a circular block fixedly connected to the outer side of the connecting shaft near the square shell, a side of the outer side of the square shell fixedly connected to the outer side of a motor, the output end of the motor fixedly connected to the outer side of the circular block, a connecting belt rotatably connected to the outer side of the two circular blocks, and a friction column fixedly connected to the outer side of the connecting shaft. When the magnesia-carbon bricks are conveyed on the conveying device, the magnesia-carbon bricks have the same height dimension. The circular blocks are set outside the connecting shaft, and the connecting belts are set outside the two circular blocks. The motor drives the circular blocks to rotate, which in turn drives the connecting shaft to rotate, causing the friction column to grind the burrs on the material surface, clean the excess material from the material surface, improve the material dimensional accuracy, improve the surface smoothness of the material, and avoid the burrs on the material surface from affecting the screening effect, thereby improving the screening throughput of the material.
[0011] Preferably, a baffle plate is fixedly connected to the top of the processing frame. The baffle plate reduces the splashing of material dust, prevents dust from spreading and affecting the surrounding environment, and prevents dust from entering the human body through breathing, thereby reducing safety hazards and optimizing the working environment. The outer side of the friction column is provided with a cylindrical groove. By providing the cylindrical groove, the contact area is increased, the friction performance is improved, and the cleaning effect is further improved. A wiping mechanism is fixedly connected to the middle of the top of the processing frame.
[0012] Preferably, the wiping mechanism includes a connecting block, and a rotating shaft is rotatably connected between the opposite surfaces of the connecting block. A wiping column is fixedly connected to the outer side of the rotating shaft. During the rotation of the friction column, friction is performed between the friction column and the surface of the wiping column to clean impurities on the component surface. The friction reduces impurities on the component surface, reduces debris accumulation, prevents it from affecting the subsequent friction effect, and at the same time provides a certain self-cleaning effect on the component.
[0013] Preferably, the cleaning mechanism includes a cleaning housing, with two outer sides of the cleaning housing fixedly connected to the bottom of the composite frame. An inlet is fixedly connected to the outer side of the cleaning housing, and an outer connecting ring is fixedly connected to one side of the outer side of the cleaning housing. A blower is inserted into the inner wall of the outer connecting ring. After the burrs on the surface of the magnesia-carbon brick are polished by the processing mechanism, the debris is adsorbed onto the surface of the conveying device. The blower generates airflow, drawing the debris from the inlet into the cleaning housing, and finally discharging it outwards. This achieves the goal of cleaning debris from the surface of the components, reducing friction between the debris and the component surface, reducing wear, maintaining the equipment, reducing the probability of equipment failure, and lowering safety hazards.
[0014] Preferably, the inner wall of the cleaning housing is fixedly connected to a circular interface. A fan generates airflow, and a paddle increases the contact area with the airflow, thus facilitating the rotation of the paddle by the airflow. A central shaft is rotatably connected between the opposite surfaces of the circular interface, and a paddle is fixedly connected to the outer side of the central shaft. The rotation of the paddle drives the friction strip to rotate, causing the friction strip to rub against the inner wall of the equipment, thereby cleaning debris from the inner wall, reducing dust accumulation on the inner wall of the equipment, reducing dust agglomeration, reducing cleaning difficulty, ensuring that dust flows out from the fan side, reducing debris retention on the inner wall of the equipment, and thus extending the service life of the components. A friction strip is fixedly connected to the outer side of the paddle away from the central shaft.
[0015] This invention provides a finished product inspection device for the production of magnesia-carbon bricks. It has the following beneficial effects:
[0016] I. This finished product inspection equipment for magnesia-carbon brick production utilizes a composite mechanism design. Magnesia-carbon bricks are conveyed from one side of the straightening mechanism via a conveying device. The straightening mechanism clamps the magnesia-carbon bricks to adjust their angle, ensuring the completion of subsequent operations. Simultaneously, while the straightening mechanism is straightening the material, it compresses the limiting mechanism, which brakes the clamping force of the straightening mechanism to prevent excessive clamping that could cause surface wear and affect material properties, thus ensuring the normal operation of the equipment. After the angle of the magnesia-carbon bricks is corrected by the straightening mechanism, the conveying device moves the magnesia-carbon bricks towards the screening plate. The screening plate measures the material size, preventing excessive material errors that could affect subsequent use, ensuring the quality and stability of the masonry, meeting the design requirements of industrial kilns, improving production efficiency, and facilitating transportation and storage. The guide plate guides the material, improving material concentration and preventing impact on operational efficiency. Furthermore, when the magnesia-carbon bricks impact the guide plate, the telescopic rod compresses the spring strip, providing shock absorption and buffering, reducing the impact force, decreasing the probability of material breakage, and improving equipment operating efficiency.
[0017] II. The finished product inspection equipment used in the production of magnesia-carbon bricks features a buffer mechanism. When the rhomboid plate is clamped against the surface of the magnesia-carbon brick, the sliding rod compresses and contracts the metal ring, thus providing shock absorption and buffering. This buffers the clamping force of the electric push rod, preventing excessive clamping force and excessive wear on the material surface, thereby ensuring product integrity and quality. One side of the rhomboid plate is made of silicone material, which increases the wear resistance of the components and prevents severe wear after prolonged operation, thus affecting subsequent equipment operation. Additionally, the silicone material provides a certain degree of anti-slip, thereby improving the material correction effect.
[0018] Third, the finished product inspection equipment used in the production of magnesia-carbon bricks, through the design of the limiting mechanism, when the straightening mechanism clamps the magnesia-carbon bricks, it squeezes the limiting mechanism, causing the sliding block to slide on the surface of the cylindrical block and squeeze the spring ring, thereby achieving the effect of shock absorption and buffering. Secondly, through the reaction of the spring structure, the sliding block is supported by the reaction, thereby braking the clamping force, preventing excessive squeezing, avoiding damage to materials and components, and thus ensuring the normal operation of the equipment.
[0019] IV. The finished product inspection equipment used in the production of magnesia-carbon bricks, through its processing mechanism design, ensures that the magnesia-carbon bricks have the same height dimension when conveyed on the conveyor device. Circular blocks are positioned on the outside of the connecting shaft, and connecting belts are installed on the outside of the two circular blocks. A motor drives the circular blocks to rotate, which in turn drives the connecting shaft to rotate, causing the friction columns to grind the burrs on the material surface, cleaning excess material, improving material dimensional accuracy, improving surface smoothness, and preventing burrs from affecting the screening effect, thereby increasing the material screening throughput. The baffle plate reduces material dust splashing, preventing dust from spreading and affecting the surrounding environment, and preventing it from entering the human body through respiration, thus reducing safety hazards and optimizing the working environment. The grooves on the column surface increase the contact area, improving friction performance and further enhancing the cleaning effect.
[0020] V. The finished product inspection equipment used in the production of magnesia-carbon bricks, through its cleaning mechanism design, uses a processing mechanism to grind burrs on the surface of the magnesia-carbon bricks. The debris is then adsorbed onto the surface of the conveying device. A fan generates airflow, drawing the debris into the cleaning housing from the inlet and finally discharging it outwards. This achieves the goal of cleaning debris from the surface of components, reducing friction and wear, maintaining the equipment, reducing the probability of equipment failure, and lowering safety hazards. The fan generates airflow, and the paddles increase the contact area with the airflow, facilitating the rotation of the paddles. The rotation of the paddles drives the friction strips to rotate, causing them to rub against the inner wall of the equipment, thus cleaning debris from the inner wall. This reduces dust accumulation on the inner wall, decreasing dust agglomeration and making cleaning easier. Dust flows out from one side of the fan, minimizing debris retention on the inner wall and extending the service life of the components. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the external structure of the finished product inspection equipment used in the production of magnesium-carbon bricks according to the present invention.
[0022] Figure 2 This is a schematic diagram of the finished product inspection equipment of the present invention;
[0023] Figure 3 This is a schematic diagram of the composite mechanism structure of the present invention;
[0024] Figure 4 This is a schematic diagram of the correction mechanism structure of the present invention;
[0025] Figure 5 This is a schematic diagram of the buffer mechanism structure of the present invention;
[0026] Figure 6 This is a schematic diagram of the limiting mechanism structure of the present invention;
[0027] Figure 7 This is a schematic diagram of the processing mechanism structure of the present invention;
[0028] Figure 8 This is a schematic diagram of the wiping mechanism of the present invention;
[0029] Figure 9 This is a schematic diagram of the cleaning mechanism structure of the present invention;
[0030] Figure 10 This is a cross-sectional structural diagram of the cleaning mechanism of the present invention.
[0031] In the diagram: 1. Composite mechanism; 2. Processing mechanism; 3. Cleaning mechanism; 4. Motor; 11. Composite frame; 12. Conveying device; 13. Screening plate; 14. Guide plate; 15. Telescopic rod; 16. Spring bar; 17. Correction mechanism; 18. Restriction mechanism; 171. Correction platform; 172. Electric push rod; 173. Square plate; 174. External block; 175. Buffer mechanism; 1751. Cylindrical shell; 1752. Metal ring; 1753. Sliding rod; 1754. Rhomboid plate; 1 81. Cylindrical block; 182. Spring ring; 183. Sliding block; 21. Processing frame; 22. Square shell; 23. Circular block; 24. Connecting belt; 25. Baffle plate; 26. Connecting shaft; 27. Friction column; 28. Cylindrical groove; 29. Wiping mechanism; 291. Connecting block; 292. Rotating shaft; 293. Wiping column; 31. Cleaning shell; 32. Inlet; 33. Outer ring; 34. Fan; 35. Circular interface; 36. Central shaft; 37. Paddle plate; 38. Friction strip. Detailed Implementation
[0032] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0033] First embodiment, such as Figures 1 to 6 As shown, the present invention provides a technical solution: a finished product inspection device for the production of magnesia-carbon bricks, including a composite mechanism 1, a processing mechanism 2 fixedly connected to the middle of the top of the composite mechanism 1, a motor 4 fixedly connected to one side of the outside of the processing mechanism 2, and a cleaning mechanism 3 fixedly connected to one side of the bottom of the composite mechanism 1.
[0034] The composite mechanism 1 includes a composite frame 11. A conveying device 12 is fixedly connected between opposite surfaces of the composite frame 11. A straightening mechanism 17 is fixedly connected to one side of the top of the composite frame 11. A limiting mechanism 18 is fixedly connected to one side outside the straightening mechanism 17. A screening plate 13 is fixedly connected to the top of the composite frame 11 away from the straightening mechanism 17. A guide plate 14 is fixedly connected to the outside of the screening plate 13 near the straightening mechanism 17. A telescopic rod 15 is fixedly connected to the outside of the guide plate 14 near the screening plate 13. A spring strip 16 is sleeved on the outside of the telescopic rod 15. The outside of the telescopic rod 15 away from the guide plate 14 is fixedly connected to the outside of the screening plate 13. Magnesia-carbon bricks are conveyed from one side of the straightening mechanism 17 via the conveying device 12. The straightening mechanism 17 clamps the magnesia-carbon bricks to adjust the material angle, ensuring the completion of subsequent operations. Simultaneously, while the straightening mechanism 17 is straightening the material, it compresses the limiting mechanism 18, which brakes the clamping force of the straightening mechanism 17 to prevent excessive clamping that could cause surface wear and affect material properties, thus ensuring the normal operation of the equipment. After the angle of the magnesia-carbon bricks is corrected by the straightening mechanism 17, the conveying device 12 moves the magnesia-carbon bricks towards the screening plate 13. The screening plate 13 measures the material size to prevent excessive material errors that could affect subsequent use, ensuring the quality and stability of the masonry, meeting the design requirements of industrial kilns, improving production efficiency, and facilitating transportation and storage. The guide plate 14 guides the material, improving material concentration and preventing impact on operational efficiency. Furthermore, when the magnesia-carbon bricks impact the guide plate 14, the telescopic rod 15 compresses the spring strip 16, providing shock absorption and buffering, reducing the impact force, decreasing the probability of material breakage, and improving equipment operating efficiency.
[0035] The straightening mechanism 17 includes a straightening platform 171. An electric push rod 172 is fixedly connected to the top of the straightening platform 171. A square plate 173 is fixedly connected to one side of the electric push rod 172. A buffer mechanism 175 is fixedly connected to the opposite side of the square plate 173. An outer block 174 is fixedly connected to the narrower side of the square plate 173. The outer side of the outer block 174 is fixedly connected to the outer side of the limiting mechanism 18. The electric push rod 172 pushes the square plate 173 to clamp it face-to-face, thereby correcting the material conveying angle and preventing the material angle from differing too much from the screening plate 13, which would otherwise obstruct the material and affect operating efficiency. Furthermore, the buffer mechanism 175 acts as a shock absorber when clamping magnesia-carbon bricks, reducing clamping force and preventing excessive material wear, which could affect product quality.
[0036] The buffer mechanism 175 includes a cylindrical housing 1751. The outer side of the cylindrical housing 1751 is fixedly connected to the outer side of the square plate 173. A metal ring 1752 is fixedly connected to the inner wall of the cylindrical housing 1751. A sliding rod 1753 is fixedly connected to one side of the outer side of the metal ring 1752. The outer side of the sliding rod 1753 is slidably connected to the inner wall of the cylindrical housing 1751. A rhomboid plate 1754 is fixedly connected to the outer side of the sliding rod 1753 away from the metal ring 1752. When the rhombus plate 1754 is clamped against the surface of the magnesia-carbon brick, the sliding rod 1753 compresses and contracts the metal ring 1752, thereby playing a role in shock absorption and buffering. This buffers the clamping force of the electric push rod 172, preventing excessive clamping force and excessive wear on the material surface, thus ensuring the integrity and quality of the product. One side of the rhombus plate 1754 is made of silicone material, which increases the wear resistance of the component and prevents severe wear after long-term operation, thus affecting subsequent operation of the equipment. In addition, the silicone material also provides a certain degree of anti-slip effect, thereby improving the material correction effect.
[0037] The limiting mechanism 18 includes a cylindrical block 181, one side of which is fixedly connected to the outer side of the outer block 174. A spring ring 182 is sleeved on the outer side of the cylindrical block 181, and a sliding block 183 is slidably connected to the outer side of the cylindrical block 181. When the straightening mechanism 17 clamps the magnesia-carbon brick, it compresses the limiting mechanism 18, causing the sliding block 183 to slide on the surface of the cylindrical block 181 and compress the spring ring 182, thereby achieving a shock absorption and buffering effect. Secondly, through the reaction action of the spring structure, the sliding block 183 is supported, thereby braking the clamping force, preventing excessive compression, avoiding damage to materials and components, and ensuring the normal operation of the equipment.
[0038] The second embodiment is based on the first embodiment; please refer to [link / reference]. Figures 7 to 8As shown, the processing mechanism 2 includes a processing frame 21. A square shell 22 is fixedly connected to one side of the processing frame 21. A connecting shaft 26 is rotatably connected between opposite faces of the processing frame 21. A circular block 23 is fixedly connected to the outside of the connecting shaft 26 near the square shell 22. The outside of the square shell 22 is fixedly connected to the outside of the motor 4. The output end of the motor 4 is fixedly connected to the outside of the circular block 23. A connecting belt 24 is rotatably connected to the outside of the two circular blocks 23. A friction column 27 is fixedly connected to the outside of the connecting shaft 26. When the magnesia-carbon bricks are conveyed on the conveying device 12, the magnesia-carbon bricks have the same height dimension. The circular blocks 23 are set outside the connecting shaft 26, and the connecting belt 24 is set outside the two circular blocks 23. The motor 4 drives the circular blocks 23 to rotate, which drives the connecting shaft 26 to rotate, so that the friction column 27 grinds the burrs on the surface of the material, cleans the excess material on the surface of the material, improves the dimensional accuracy of the material, improves the surface smoothness of the material, and avoids the burrs on the surface of the material from affecting the screening effect, thereby improving the screening throughput of the material.
[0039] A baffle plate 25 is fixedly connected to the top of the processing frame 21, and a cylindrical groove 28 is provided on the outer side of the friction column 27. A wiping mechanism 29 is fixedly connected to the middle of the top of the processing frame 21. The baffle plate 25 reduces the splashing of material dust, prevents dust from spreading and affecting the surrounding environment, and prevents dust from entering the human body through breathing, thereby reducing safety hazards and optimizing the working environment. The cylindrical groove 28 increases the contact area and improves friction performance, further enhancing the cleaning effect.
[0040] The wiping mechanism 29 includes a connecting block 291, with a rotating shaft 292 rotatably connected between the opposing surfaces of the connecting block 291. A wiping column 293 is fixedly connected to the outer side of the rotating shaft 292. During the rotation of the friction column 27, it rubs against the surface of the wiping column 293 to clean impurities from the component surface. This friction reduces impurities on the component surface, minimizes debris accumulation, prevents it from affecting the subsequent wiping effect, and also provides a certain degree of self-cleaning effect on the component.
[0041] The third embodiment is based on embodiments one and two; please refer to [link / reference]. Figures 9 to 10As shown, the cleaning mechanism 3 includes a cleaning housing 31. The two outer sides of the cleaning housing 31 are fixedly connected to the bottom of the composite frame 11. An inlet 32 is fixedly connected to the outer side of the cleaning housing 31, and an outer connecting ring 33 is fixedly connected to one side of the outer side of the cleaning housing 31. A blower 34 is inserted into the inner wall of the outer connecting ring 33. After the burrs on the surface of the magnesia-carbon brick are polished by the processing mechanism 2, the debris is adsorbed onto the surface of the conveying device 12. The blower 34 generates airflow, drawing the debris from the inlet 32 into the cleaning housing 31, and finally discharging it outwards from the blower 34. This achieves the goal of cleaning debris from the surface of the components, reducing friction between the debris and the component surface, reducing wear, maintaining the equipment, reducing the probability of equipment failure, and lowering safety hazards.
[0042] A circular interface 35 is fixedly connected to the inner wall of the cleaning housing 31. A central shaft 36 is rotatably connected between the opposite surfaces of the circular interface 35. A paddle 37 is fixedly connected to the outer side of the central shaft 36. A friction strip 38 is fixedly connected to the outer side of the paddle 37 away from the central shaft 36. A fan 34 generates airflow, and the paddle 37 increases the contact area with the airflow, facilitating the rotation of the paddle 37 by the airflow. The rotation of the paddle 37 drives the friction strip 38 to rotate, causing the friction strip 38 to rub against the inner wall of the equipment. This effectively cleans debris from the inner wall, reducing dust accumulation and thus reducing dust agglomeration, making cleaning easier. It also ensures that dust flows out from the fan 34 side, minimizing debris residue on the inner wall and extending the service life of components.
[0043] In use, the magnesia-carbon bricks enter from one side of the straightening mechanism 17, and are moved by the conveying device 12. The straightening mechanism 17 then adjusts the angle of the material to facilitate its movement towards the screening plate 13 via the conveying device 12. During the clamping process of the magnesia-carbon bricks by the straightening mechanism 17, the buffer mechanism 175 first contacts the material surface, providing a buffering effect, reducing clamping pressure, and preventing wear on the material surface, thus avoiding impact on product quality. Simultaneously, during the clamping process, the straightening mechanism 17 compresses the limiting mechanism 18, which acts as a brake, preventing excessive clamping and damage to the material, thus avoiding impact on work efficiency. After the material is adjusted by the straightening mechanism 17, the conveying device 12 moves the material towards the processing mechanism 2, where the processing mechanism 2 rubs against the magnesia-carbon bricks, thereby cleaning burrs from the material surface and improving its quality. High material surface smoothness improves dimensional accuracy, facilitating material screening by the screening plate 13 to meet the dimensional requirements of the work. The guide plate 14 guides the material to move smoothly to one side of the screening plate 13, improving docking accuracy and avoiding affecting work efficiency. Magnesia-carbon bricks are then screened by the screening plate 13 to ensure that the screened material maintains a uniform size. At the same time, the screening plate 13 blocks materials with large size differences. The blocked materials are handled by a robotic arm for subsequent processing, avoiding affecting work efficiency. After the processing mechanism 2 grinds the burrs of the material, the debris falls onto the surface of the conveying device 12. The cleaning mechanism 3 cleans the surface of the conveying device 12, and the fan 34 shrinks the debris to reduce the accumulation of debris on the surface of the parts, reduce the wear of the parts by the debris, prevent damage to the parts, thereby reducing the probability of part failure and maintaining the normal operation of the equipment.
[0044] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.
Claims
1. A finished product inspection device for magnesia-carbon brick production, characterized in that, The composite mechanism (1) includes a processing mechanism (2) fixedly connected to the middle of the top of the composite mechanism (1), a motor (4) fixedly connected to one side of the outside of the processing mechanism (2), and a cleaning mechanism (3) fixedly connected to one side of the bottom of the composite mechanism (1). The composite mechanism (1) includes a composite frame (11), a conveying device (12) is fixedly connected between opposite surfaces of the composite frame (11), a correction mechanism (17) is fixedly connected to one side of the top of the composite frame (11), a limiting mechanism (18) is fixedly connected to one side outside the correction mechanism (17), a screening plate (13) is fixedly connected to the side of the top of the composite frame (11) away from the correction mechanism (17), a guide plate (14) is fixedly connected to the side of the outside of the screening plate (13) near the correction mechanism (17), a telescopic rod (15) is fixedly connected to the side of the outside of the guide plate (14) near the screening plate (13), a spring strip (16) is sleeved on the outside of the telescopic rod (15), and the side of the outside of the telescopic rod (15) away from the guide plate (14) is fixedly connected to the outside of the screening plate (13). The correction mechanism (17) includes a correction platform (171), an electric push rod (172) is fixedly connected to the top of the correction platform (171), a square plate (173) is fixedly connected to one side of the electric push rod (172), a buffer mechanism (175) is fixedly connected to one side of the opposite side of the square plate (173), an outer block (174) is fixedly connected to the narrower side of the square plate (173), and the outer side of the outer block (174) is fixedly connected to the outer side of the limiting mechanism (18). The limiting mechanism (18) includes a cylindrical block (181), one side of the cylindrical block (181) is fixedly connected to the outside of the outer block (174), a spring ring (182) is sleeved on the outside of the cylindrical block (181), and a sliding block (183) is slidably connected to the outside of the cylindrical block (181). The processing mechanism (2) includes a processing frame (21), a square shell (22) is fixedly connected to one side of the processing frame (21), a connecting shaft (26) is rotatably connected between opposite surfaces of the processing frame (21), a circular block (23) is fixedly connected to the side of the connecting shaft (26) near the square shell (22), a side of the square shell (22) is fixedly connected to the outside of a motor (4), the output end of the motor (4) is fixedly connected to the outside of the circular block (23), a connecting belt (24) is rotatably connected to the outside of the two circular blocks (23), and a friction column (27) is fixedly connected to the outside of the connecting shaft (26). The cleaning mechanism (3) includes a cleaning housing (31), the two sides of the outside of the cleaning housing (31) are fixedly connected to the bottom of the composite frame (11), the outside of the cleaning housing (31) is fixedly connected to an inlet (32), the outside of the cleaning housing (31) is fixedly connected to an outer ring (33), and the inner wall of the outer ring (33) is connected to a fan (34). The inner wall of the cleaning housing (31) is fixedly connected to a circular interface (35), and a central shaft (36) is rotatably connected between the opposite surfaces of the circular interface (35). A paddle (37) is fixedly connected to the outer side of the central shaft (36), and a friction strip (38) is fixedly connected to the outer side of the paddle (37) away from the central shaft (36).
2. The finished product inspection equipment for magnesia-carbon brick production according to claim 1, characterized in that: The buffer mechanism (175) includes a cylindrical shell (1751), the outer side of which is fixedly connected to the outer side of a square plate (173), a metal ring (1752) is fixedly connected to the inner wall of the cylindrical shell (1751), a sliding rod (1753) is fixedly connected to one side of the outer side of the metal ring (1752), the outer side of the sliding rod (1753) is slidably connected to the inner wall of the cylindrical shell (1751), and a rhomboid plate (1754) is fixedly connected to the outer side of the sliding rod (1753) away from the metal ring (1752).
3. The finished product inspection equipment for magnesia-carbon brick production according to claim 1, characterized in that: A baffle plate (25) is fixedly connected to the top of the processing frame (21), a cylindrical groove (28) is provided on the outer side of the friction column (27), and a wiping mechanism (29) is fixedly connected to the middle of the top of the processing frame (21).
4. The finished product inspection equipment for magnesia-carbon brick production according to claim 3, characterized in that: The wiping mechanism (29) includes a connecting block (291), a rotating shaft (292) is rotatably connected between the opposite surfaces of the connecting block (291), and a wiping column (293) is fixedly connected to the outside of the rotating shaft (292).
Citation Information
Patent Citations
Finished product inspection device for magnesia carbon brick production
CN116379863A
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