Inorganic reinforcing material preparation and mixing integrated equipment

By designing multi-stage mixing mechanism and inorganic reinforcement material mixing equipment with removable scraper plates, the shortcomings of existing equipment in terms of mixing uniformity, cleaning difficulty and equipment fixity are solved, efficient and uniform mixing and convenient movement are achieved, and production efficiency and product quality are improved.

CN120079276APending Publication Date: 2025-06-03YIHE TECH CO LTD
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Patent Information

Application Number
CN202510255695.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-05
Publication Date
2025-06-03

AI Technical Summary

Technical Problem

The existing inorganic reinforcement material mixing equipment has shortcomings in mixing uniformity, cleaning difficulty, material waste and equipment fixation, which affects product quality and production efficiency.

Method used

An integrated equipment for preparation and mixing of inorganic reinforcement materials is designed, using a multi-stage mixing mechanism and a removable scraper plate, combining a universal wheel and an electric push rod to achieve convenient movement and fixation of the equipment, and precisely control the discharge flow through a control valve.

Benefits of technology

It realizes efficient and uniform mixing of inorganic reinforcement materials, reduces material waste and cleaning difficulties, improves equipment mobility and use efficiency, and ensures consistency of product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses inorganic reinforcing material preparation and mixing integrated equipment, and relates to the technical field of material processing equipment, the inorganic reinforcing material preparation and mixing integrated equipment comprises a material mixing barrel, a motor, a three-legged support arranged above the material mixing barrel, a rotating shaft connected with the motor and driven by the motor to rotate, a rotating rod arranged in the vertical direction of the material mixing barrel, a bevel gear I arranged in the vertical direction of the material mixing barrel, a bevel gear II arranged in the vertical direction of the material mixing barrel and a bevel gear II arranged in the vertical direction of the material mixing barrel, the first bevel gear is arranged on the rotating shaft, the second bevel gear is connected with the rotating rod and used for driving the rotating rod to rotate, the rotating rod is driven by the second bevel gear to rotate, and the first bevel gear and the second bevel gear are in meshing transmission; according to the inorganic reinforcing material preparation and mixing integrated equipment, the running reliability of the equipment is improved, the defects of existing inorganic reinforcing material mixing equipment in the aspects of mixing uniformity, cleaning difficulty, material waste and equipment fixity are overcome, the mixing efficiency is improved, the operation convenience is improved, the service life is prolonged, and the practical value is high.
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Description

Technical Field

[0001] The present invention relates to the technical field of material processing equipment, and particularly relates to an integrated equipment for the preparation and mixing of inorganic reinforcing materials. Background Art

[0002] In the process of preparing inorganic reinforcing materials, the quality and efficiency of the mixing equipment directly affect the uniformity and final performance of the materials. Currently, common mixing equipment for inorganic reinforcing materials mainly uses traditional mixers or drum mixers to mix materials. These equipment usually include a mixing barrel, mixing paddles, a motor drive system, and a discharging mechanism, etc., and the materials are fully mixed by mechanical stirring. However, there are still many deficiencies in the existing mixing equipment.

[0003] Firstly, traditional mixing equipment often has difficulty in ensuring the uniformity of materials during the mixing process. Especially in the mixing process of high-viscosity materials or powder materials, the phenomenon of uneven mixing is likely to occur, affecting the product quality. Secondly, the existing equipment is prone to residue during discharging, resulting in material waste and increasing the cleaning difficulty. In addition, the cleaning process of the equipment is usually relatively complex. Manual cleaning is time-consuming and laborious, and it is difficult to completely remove the residues on the barrel wall, which is likely to cause cross-contamination of different batches of materials and affect the consistency of the products. Moreover, the mobility of the existing mixing equipment is poor. Most equipment adopts a fixed installation method, which is not convenient for adjusting the production line layout or carrying out equipment maintenance. When the equipment needs to be relocated, it usually needs to be disassembled and reinstalled, increasing the use cost and time cost. Summary of the Invention

[0004] The purpose of the present invention is to provide an integrated equipment for the preparation and mixing of inorganic reinforcing materials to solve the problems existing in the prior art.

[0005] To achieve the above purpose, the present invention provides the following technical solution: An integrated equipment for the preparation and mixing of inorganic reinforcing materials, comprising:

[0006] A mixing barrel;

[0007] A motor, installed above the mixing barrel;

[0008] A three-legged bracket, arranged inside the mixing barrel;

[0009] A rotating shaft, connected to the motor and driven by the motor to rotate;

[0010] A rotating rod, arranged along the vertical direction of the mixing barrel;

[0011] A first bevel gear, arranged on the rotating shaft;

[0012] Bevel gear two is connected to the rotating rod and is used to drive the rotating rod to rotate. The rotating rod is driven to rotate by bevel gear two, and bevel gear one meshes with bevel gear two for transmission;

[0013] A plurality of stirring rods are fixedly connected to the rotating rod and rotate with the rotating rod to stir the inorganic reinforcing material in the mixing barrel;

[0014] The discharge pipe is arranged at the bottom of the mixing barrel;

[0015] The control valve is installed on the discharge pipe.

[0016] Preferably, a fixing frame is arranged at the bottom of the mixing barrel, a base is installed below the fixing frame, and universal wheels are installed at the bottom of the base.

[0017] Preferably, an electric push rod is installed on the base, and the electric push rod is used to control the lifting of the universal wheels.

[0018] Preferably, a storage barrel is arranged inside the base, and an anti-slip plate is installed on the base.

[0019] Preferably, a connecting ring is installed on the rotating rod, the connecting ring is connected with a plurality of connecting rods, and scraping plates are installed on the connecting rods for cleaning the inner wall of the mixing barrel. A fixing plate is arranged on the scraping plates.

[0020] Preferably, a feed pipe is arranged at the top of the mixing barrel, a cover plate is hinged at the top of the mixing barrel, and a positioning rod is also installed at the top of the mixing barrel.

[0021] Preferably, a positioning plate is arranged at the end of the scraping plate, and a jack is opened on the positioning plate.

[0022] Preferably, a sliding rod is passed through between the fixing plate and the positioning plate, and a spring is sleeved on the sliding rod.

[0023] Preferably, the lengths of the stirring rods increase or decrease sequentially along the axial direction of the rotating rod to enhance the stirring uniformity.

[0024] Preferably, a plurality of stirring blades are arranged on the stirring rods to improve the stirring effect on the inorganic reinforcing material.

[0025] From the above technical solutions, it can be seen that the present invention has the following beneficial effects:

[0026] This integrated equipment for the preparation and mixing of inorganic reinforcing materials adopts a multi-stage stirring mechanism, including a motor, a rotating shaft, rotating rods and multiple stirring rods. Through bevel gear transmission, efficient stirring is achieved, enabling the inorganic reinforcing materials to be fully mixed, avoiding the uneven phenomenon that occurs in the mixing process of traditional equipment for high-viscosity or powder materials, improving product quality. A scraping plate is provided on the inner wall of the mixing barrel. The scraping plate rotates with the rotating rod, effectively scraping the residual materials on the barrel wall, reducing material waste, while reducing the cleaning workload and improving the use efficiency of the equipment. The scraping plate is detachable. Through the cooperation of the sliding rod and the jack, cleaning and replacement are more convenient. In addition, the inner wall of the mixing barrel can be designed with an anti-sticking coating to reduce material adhesion, improve the cleaning effect, and avoid cross-contamination between materials of different batches. It is equipped with universal wheels, and the lifting of the universal wheels is controlled by an electric push rod to achieve convenient movement and fixation of the equipment. Compared with traditional fixed equipment, it can quickly adjust the production line layout, improve the use flexibility, and reduce the time and cost of installation and disassembly. The control valve is matched with the discharge pipe. The control valve can be a pneumatic valve or an electromagnetic valve to achieve precise control of the discharge flow rate, avoid material waste. At the same time, a filter screen can be set in the storage barrel to prevent the entry of inadequately mixed materials and improve the consistency of product quality. It is equipped with an anti-slip plate and a fixing frame. When the equipment is working, the universal wheels can be retracted by the electric push rod to keep the equipment stable, avoid vibration or displacement from affecting the mixing effect, and improve the reliability of equipment operation. It overcomes the deficiencies of existing inorganic reinforcing material mixing equipment in terms of mixing uniformity, cleaning difficulty, material waste and equipment fixity, improves the mixing efficiency, operation convenience and service life, and has strong practical value. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 is a schematic diagram of the overall structure of the present invention;

[0028] Figure 2 is a cross-sectional view of the overall structure of the present invention;

[0029] Figure 3 is a schematic diagram of a partial structure of the present invention;

[0030] Figure 4 is a schematic diagram of another partial structure of the present invention.

[0031] In the figure: 1, mixing barrel; 2, motor; 3, tripod; 4, rotating shaft; 5, bevel gear 1; 6, rotating rod; 7, bevel gear 2; 8, top plate; 9, connecting rod; 10, stirring rod; 11, discharge pipe; 12, control valve; 13, fixing frame; 14, base; 15, universal wheel; 16, electric push rod; 18, storage barrel; 19, anti-slip plate; 20, connecting ring; 21, positioning rod; 22, cover plate; 23, feed pipe; 24, scraping plate; 25, fixing plate; 26, sliding rod; 27, spring; 28, positioning plate; 29, jack. Detailed implementation manners

[0032] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0033] As Figures 1 - 4 shown, the present invention provides a technical solution: an integrated device for preparing and mixing inorganic reinforcing materials, including a mixing barrel 1, a motor 2 installed above the mixing barrel 1, a tripod 3 arranged inside the mixing barrel 1, a rotating shaft 4 connected to the motor 2 and driven by the motor 2 to rotate, a rotating rod 6 arranged along the vertical direction of the mixing barrel 1, a first bevel gear 5 provided on the rotating shaft 4, a second bevel gear 7 connected to the rotating rod 6 and used to drive the rotating rod 6 to rotate. The rotating rod 6 is driven by the second bevel gear 7 to rotate. The first bevel gear 5 and the second bevel gear 7 are meshed and driven. A plurality of stirring rods 10 are fixedly connected to the rotating rod 6 and rotate with the rotating rod 6 to stir the inorganic reinforcing materials in the mixing barrel 1. A discharge pipe 11 is arranged at the bottom of the mixing barrel 1, and a control valve 12 is installed on the discharge pipe 11. The working principle of this device is based on the motor 2 driving the rotating shaft 4 to rotate. The first bevel gear 5 on the rotating shaft 4 meshes with the second bevel gear 7, so that the vertically arranged rotating rod 6 rotates synchronously. A plurality of stirring rods 10 are fixedly installed on the rotating rod 6. During the rotation process, the inorganic reinforcing materials in the mixing barrel 1 are fully mixed to improve the mixing uniformity. The setting of the tripod 3 ensures the stability of the internal structure of the device and avoids shaking or deformation during operation. After mixing, through the discharge pipe 11 at the bottom of the mixing barrel 1, the control valve 12 can accurately control the discharge amount of the inorganic reinforcing materials to ensure the continuity and controllability of the production process. This device adopts a motor drive system, which has high mixing efficiency, uniform stirring, and can effectively improve the uniformity of the inorganic reinforcing materials. Through the meshing transmission of the first bevel gear 5 and the second bevel gear 7, efficient power transmission is achieved, so that the rotating rod 6 and the stirring rods 10 can operate stably, reducing energy loss. At the same time, the device has a compact structure and a small floor area, and is suitable for production environments of different scales. Due to the application of the control valve 12, accurate discharging can be realized, avoiding material waste and improving production efficiency.

[0034] In the above solution, the motor 2 can be a servo motor or a variable-frequency motor to meet the adjustment requirements of different speeds; the number and length of the stirring rods 10 can be adjusted according to actual needs to adapt to different batches or different viscosities of inorganic reinforcing materials; the bevel gear transmission mechanism can be replaced by other transmission methods, such as chain drive or synchronous belt drive, to meet different production requirements. In addition, the material of the mixing barrel 1 can be selected as corrosion-resistant stainless steel or high-strength alloy to improve the durability and application range of the equipment. At the same time, the diameter of the discharge pipe 11 can be adjusted according to the flow requirements, and a filter screen or an automatic weighing system can be added to optimize the production process.

[0035] A fixing frame 13 is provided at the bottom of the mixing barrel 1, a base 14 is installed below the fixing frame 13, and a universal wheel 15 is installed at the bottom of the base 14. This embodiment adds the fixing frame 13, the base 14, and the universal wheel 15 on the basis of claim 1, making the overall equipment more stable and having a moving function. The fixing frame 13 is used to strengthen the support of the mixing barrel 1 and prevent the equipment structure from loosening due to vibration. The base 14 is connected below the fixing frame 13 to provide additional load-bearing support. The universal wheel 15 is installed at the bottom of the base 14, enabling the equipment to move flexibly, facilitating the adjustment of the position or the change of the production line layout. At the same time, the universal wheel 15 can be equipped with a locking device to ensure that the equipment remains stable during operation and will not be displaced due to external forces. Compared with the fixedly installed equipment, this embodiment improves the structural stability of the equipment by adding the fixing frame 13 and the base 14, making it suitable for different working environments. The setting of the universal wheel 15 makes the equipment highly maneuverable and can be adjusted at any time according to needs, facilitating the adjustment of the production layout or the cleaning and maintenance of the equipment. In addition, the locking device can ensure that the equipment remains stable during operation, avoiding affecting the production process due to vibration or external forces, and improving safety and operation convenience.

[0036] In this embodiment, the fixing frame 13 can adopt different structural designs, such as a frame type or a strut type, to adapt to different load requirements. The base 14 can use different materials, such as high-strength alloy or composite materials, to enhance durability and load-bearing capacity. The specifications and materials of the universal wheel 15 can be adjusted according to the ground conditions and the weight of the equipment. For example, wear-resistant rubber wheels can be used to reduce vibration during movement, or self-locking universal wheels can be selected to enhance the fixing of the equipment. For equipment that needs to be fixed for a long time, the universal wheel 15 can also be omitted and replaced with adjustable feet to improve the stability of the equipment.

[0037] An electric push rod 16 is installed on the base 14, and the electric push rod 16 is used to control the lifting of the universal wheels 15. In this embodiment, an electric push rod 16 is added on the basis of claim 2, enabling the device to freely switch between the moving and fixed states. The electric push rod 16 is installed on the base 14 and connected to the universal wheels 15. When the device needs to move, the electric push rod 16 drives the universal wheels 15 to descend, making them contact the ground, thus achieving smooth movement; when the device needs to be fixed, the electric push rod 16 retracts the universal wheels 15, making the base 14 directly contact the ground to ensure the stability of the device and prevent shaking or position deviation during operation. In this embodiment, by adding the electric push rod 16, automatic lifting control of the universal wheels 15 is achieved, improving the mobility and stability of the device. Compared with the traditional manual adjustment method, the electric push rod 16 can quickly and accurately adjust the device state, reduce manual operation, and improve work efficiency. During the operation of the device, stable fixation can be ensured, avoiding position deviation caused by vibration or external force, and improving the safety and reliability of production. At the same time, this design is applicable to different production environments, facilitating the movement, adjustment, and maintenance of the device.

[0038] In this embodiment, the driving mode of the electric push rod 16 can be a hydraulic or pneumatic push rod to adapt to different load requirements. The universal wheels 15 can adopt different lifting mechanisms, such as a spring buffer structure or a manual adjustment mechanism, to provide more suitable choices for specific application scenarios. In addition, multiple electric push rods 16 can be added to the base 14 to improve the lifting stability, or a sensor system can be added to achieve automatic sensing adjustment, enabling the device to intelligently switch between the moving and fixed states and improving the automation level.

[0039] A storage bucket 18 is arranged inside the base 14, and an anti-slip plate 19 is installed on the base 14. In this embodiment, a storage bucket 18 and an anti-slip plate 19 are added on the basis of claim 2 to optimize the storage function and operation safety of the device. The storage bucket 18 is arranged inside the base 14 and can be used to store unused inorganic reinforcing materials or other auxiliary materials, reducing the need for frequent raw material addition during production and improving work efficiency. The anti-slip plate 19 is installed on the upper surface of the base 14 to provide additional anti-slip protection, preventing the device from shifting due to wet or vibrating ground and improving the overall stability. In this embodiment, by arranging the storage bucket 18 inside the base 14, the device space is reasonably utilized, making raw material storage more convenient, improving the continuity of production and the efficiency of material management. At the same time, the application of the anti-slip plate 19 effectively enhances the stability of the device, reduces safety hazards caused by sliding, and improves the adaptability of the device in different working environments. In addition, this design is compact and occupies little space, being suitable for production equipment that needs to be moved frequently or operated for a long time.

[0040] In this embodiment, the volume and shape of the storage bucket 18 can be adjusted according to actual requirements. For example, a detachable design can be adopted to facilitate cleaning and replacement of different types of raw materials. The material of the storage bucket 18 can be selected from stainless steel, corrosion-resistant plastic or composite materials to meet different environmental requirements. The anti-slip plate 19 can be made of a rubber anti-slip layer, textured aluminum plate or other high-friction materials to improve the anti-slip effect. In addition, an adjustable support structure can be added to enable the base 14 to adapt to the inclination of different floors, further improving the adaptability and service life of the equipment.

[0041] A connecting ring 20 is installed on the rotating rod 6. The connecting ring 20 is connected with a plurality of connecting rods 9. A scraping plate 24 is installed on the connecting rod 9 for cleaning the inner wall of the mixing barrel 1. A fixing plate 25 is arranged on the scraping plate 24. The connecting ring 20, the connecting rods 9, the scraping plate 24 and the fixing plate 25 are added to realize the automatic cleaning function of the inner wall of the mixing barrel 1. When the rotating rod 6 rotates driven by the motor 2, it drives the connecting ring 20 to rotate synchronously, and then the scraping plate 24 on the connecting rod 9 scrapes along the inner wall of the mixing barrel 1, effectively preventing the raw materials from adhering to the barrel wall and ensuring the uniformity of the mixing effect. The fixing plate 25 is used to enhance the rigidity of the scraping plate 24, making the scraping action more stable and reliable, and preventing the scraping plate from deforming or being damaged due to high-viscosity materials. In this embodiment, by adding the scraping plate 24, the automatic cleaning of the inner wall of the mixing barrel 1 is realized, effectively reducing the raw material residue, improving the mixing efficiency, and avoiding cross-contamination between different batches of materials. At the same time, the scraping plate 24 continuously acts during the mixing process to prevent the material from adhering to the barrel wall and improve the uniformity of the mixing. The application of the fixing plate 25 improves the stability of the scraping plate 24 and extends the service life of the equipment. In addition, this structure does not require additional manual cleaning, reducing the maintenance cost and improving the production automation level.

[0042] In this embodiment, the connecting ring 20 can adopt an adjustable structure to adapt to mixing barrels 1 of different specifications. The length and number of the connecting rods 9 can be adjusted according to the size of the mixing barrel 1 to optimize the scraping effect. The scraping plate 24 can be made of wear-resistant rubber, stainless steel or polyurethane materials to adapt to different types of inorganic reinforcing materials. The fixing plate 25 can adopt a reinforcing rib or double-layer structure to enhance the durability of the scraping plate 24. In addition, an elastic support mechanism can be added to enable the scraping plate 24 to adapt to the irregular changes of the barrel wall and improve the cleaning effect.

[0043] At the top of the mixing barrel 1, a feed pipe 23 is provided. A cover plate 22 is also hinged at the top of the mixing barrel 1, and a positioning rod 21 is also installed at the top of the mixing barrel 1. The feed pipe 23, the cover plate 22 and the positioning rod 21 are added to optimize the feeding, sealing and stability functions of the equipment. The feed pipe 23 is used for the feeding of materials, ensuring that the inorganic reinforcing material smoothly enters the mixing barrel 1 and improving the feeding efficiency. The cover plate 22 is installed at the top of the mixing barrel 1 by a hinged manner. The cover plate 22 can be closed during the mixing process to prevent the overflow of materials or external contamination and reduce the dust diffusion. The positioning rod 21 is used to fix the position of the cover plate 22, ensuring that the cover plate 22 is stable and does not shake in the closed state, avoiding loosening or displacement caused by vibration, so as to ensure the sealing and safety of the equipment during operation. In this embodiment, by adding the feed pipe 23, the convenience of feeding is improved, and the dust pollution and material waste that may be brought by directly opening the cover for manual feeding are avoided. The application of the cover plate 22 enhances the sealing performance of the mixing barrel 1, effectively preventing external impurities from entering, while reducing the dust overflow and improving the cleanliness of the working environment. The design of the positioning rod 21 ensures the stability of the cover plate 22, making the equipment operation more reliable and avoiding the influence on the mixing effect due to the loosening of the cover plate. In addition, the overall structure is compact, which is convenient for operation and maintenance and is suitable for the mixing requirements of inorganic reinforcing materials of different specifications.

[0044] In this embodiment, the diameter of the feed pipe 23 can be adjusted according to the material flow demand, and a flow control valve or a filter screen can be added to adapt to inorganic reinforcing materials of different particle sizes. The cover plate 22 can adopt an automatic opening and closing structure, such as pneumatic or electric drive, to reduce manual operation and improve the automation level. The positioning rod 21 can be changed to a lock-type fixing mechanism to improve the sealing effect, or a spring return device can be adopted to enable the cover plate 22 to automatically close when needed. In addition, an observation window or a feeding port can be added to the cover plate 22 to facilitate the real-time monitoring of the material state in the barrel, improving the operation convenience and safety of the equipment.

[0045] A positioning plate 28 is provided at the end of the scraping plate 24, and a jack 29 is provided on the positioning plate 28. The positioning plate 28 and the jack 29 are added to optimize the fixing and adjusting functions of the scraping plate 24. The positioning plate 28 is installed at the end of the scraping plate 24 to provide additional support, making the scraping plate 24 more stable and less prone to deformation when scraping the residues on the inner wall of the mixing barrel 1. The jack 29 is provided on the positioning plate 28 and can be used to install an adjusting mechanism or replace different types of scraping components, enabling the equipment to adapt to mixing barrels 1 of different materials or specifications, improving the scraping effect and adaptability. In this embodiment, by adding the positioning plate 28, the stability of the scraping plate 24 is improved, ensuring that it can work effectively when cleaning the inner wall of the mixing barrel 1 and reducing the deformation or wear of the scraping plate caused by uneven stress. The design of the jack 29 enhances the flexibility of the equipment, enabling the scraping plate 24 to be adjusted or replaced according to specific requirements, improving the adaptability and service life of the equipment. In addition, this design can reduce the need for manual maintenance, improve production efficiency, and ensure the continuity and uniformity of the mixing process.

[0046] In this embodiment, the material of the positioning plate 28 can be selected from high-strength alloy, stainless steel or wear-resistant engineering plastics to enhance durability and corrosion resistance. The size and shape of the jack 29 can be adjusted according to different connection methods, such as bolt fixation, quick-release buckle or adjustable chute, to achieve a more convenient way of replacing the scraping plate. In addition, a buffer layer or elastic support structure can be added to the positioning plate 28 to reduce the vibration during equipment operation, improving the scraping effect and the overall stability of the equipment.

[0047] A slide bar 26 is passed through between a fixed plate 25 and a positioning plate 28, and a spring 27 is sleeved on the slide bar 26. The slide bar 26 and the spring 27 are used to optimize the automatic adjustment function of the scraping plate 24. The slide bar 26 is passed through between the fixed plate 25 and the positioning plate 28 and forms a sliding connection with both of them, enabling the scraping plate 24 to be finely adjusted along the direction of the slide bar 26. The spring 27 is sleeved on the slide bar 26 and is located between the fixed plate 25 and the positioning plate 28, playing a role in buffering and resetting. When the scraping plate 24 contacts the inner wall of the mixing barrel 1, if it encounters a large resistance, the spring 27 can provide a buffering effect, preventing the scraping plate 24 from being damaged due to excessive force, and at the same time ensuring that the scraping plate 24 always fits the barrel wall, improving the cleaning effect. When the external force disappears, the spring 27 can return to its original state, making the scraping plate 24 return to the initial position, realizing the automatic adjustment function. In this embodiment, by introducing the slide bar 26 and the spring 27, the scraping plate 24 can be adaptively adjusted according to the actual situation of the mixing barrel 1, improving the scraping effect and reducing the residue on the barrel wall. The buffering effect of the spring 27 can reduce the damage of the scraping plate 24 caused by high friction or external impact, increasing the service life of the equipment. At the same time, this design reduces the need for manual adjustment, improves the automation level of the equipment, enabling it to adapt to different material characteristics and working conditions. In addition, this structure optimizes the running stability of the equipment, reduces the maintenance cost, and ensures the continuity and efficiency of production.

[0048] In this embodiment, the material of the slide bar 26 can be selected as high-strength stainless steel or wear-resistant alloy to improve the durability and corrosion resistance. The stiffness and length of the spring 27 can be adjusted according to different usage requirements, for example, using a spring with adjustable tension to adapt to inorganic reinforcing materials with different viscosities. The slide bar 26 can be designed as a guide groove structure to increase the sliding stability of the scraping plate 24. In addition, a damping device can be added to enable the scraping plate 24 to be slowly adjusted when it contacts the barrel wall, further reducing wear and improving the stability of the equipment.

[0049] The lengths of the stirring rods 10 increase or decrease successively along the axial direction of the rotating rod 6 to enhance the stirring uniformity. The arrangement of the stirring rods 10 is optimized so that their lengths increase or decrease successively along the axial direction of the rotating rod 6, thereby improving the stirring effect. When the rotating rod 6 rotates, the stirring rods 10 with different lengths can cover different areas inside the mixing barrel 1, avoiding local dead corners or uneven mixing of the materials during the stirring process. The shorter stirring rods 10 are suitable for stirring the materials near the barrel wall, while the longer stirring rods 10 are used for deep stirring in the central area of the barrel to ensure overall uniform mixing. In this embodiment, by optimizing the length distribution of the stirring rods 10, the materials are more fully turned and uniformly mixed in the mixing barrel 1, improving the stirring efficiency, reducing the stirring dead corners, and ensuring the quality stability of the materials. In addition, this design helps to reduce energy consumption because the gradient change in the lengths of the stirring rods 10 can optimize the hydrodynamic characteristics, reduce the stirring resistance, and improve the energy efficiency of the stirring system. At the same time, this solution is applicable to the mixing requirements of different types of inorganic reinforcing materials and can be widely used in various industrial production environments.

[0050] In this embodiment, the length change pattern of the stirring rods 10 can be adjusted according to specific application requirements, such as linear increase, stepped change, or wavy arrangement, to optimize the stirring effect. The shape of the stirring rods 10 can be designed as spiral blades, folding blades, or curved rods to adapt to inorganic reinforcing materials with different viscosities. The rotating rod 6 can adopt an adjustable structure so that the length or angle of the stirring rods 10 can be adjusted according to actual needs. In addition, a scraper or a vortex generator can be added to the end of the stirring rods 10 to further improve the stirring efficiency and mixing uniformity.

[0051] Multiple stirring blades are provided on the stirring rods 10 to improve the stirring effect on the inorganic reinforcing materials. The stirring rods 10 can provide stronger shear force and flow disturbance during rotation to improve the mixing uniformity of the inorganic reinforcing materials. The stirring blades can form different fluid motion patterns according to the blade angle, number, and arrangement, such as axial flow, radial flow, or vortex mixing, thereby ensuring that the materials are fully turned inside the mixing barrel 1 and reducing deposition and agglomeration phenomena. When the motor 2 drives the rotating shaft 4 to rotate, the rotating rod 6 drives the stirring rods 10 to rotate, and the stirring blades further break the aggregation state of the materials, increase the contact area between the materials, and accelerate uniform mixing. At the same time, the stirring blades can be designed at different angles to adapt to inorganic reinforcing materials with different viscosities and particle sizes, making the entire mixing process more efficient and stable.

[0052] In this embodiment, by providing a plurality of stirring blades on the stirring rod 10, the mixing effect is significantly enhanced, the uniformity of the inorganic reinforcing material is improved, and the stirring time is reduced. At the same time, this design helps to reduce energy consumption, making the stirring process more efficient and applicable to the mixing of materials with different ratios. In addition, the optimized arrangement of the stirring blades can reduce material deposition, improve the production efficiency of the equipment, and reduce the maintenance frequency.

[0053] In this embodiment, the shape of the stirring blades can be adjusted according to specific application requirements, such as using straight blades, curved blades or spiral blades to adapt to different material characteristics. The material of the blades can be selected from wear-resistant stainless steel, polyurethane or ceramic coating to improve durability and corrosion resistance. The number and angle of the stirring blades can be adjusted to meet different stirring intensity requirements. In addition, detachable stirring blades can be used to facilitate the replacement of different types of blades to adapt to the mixing requirements of different batches or different process requirements.

[0054] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An integrated device for preparing and mixing inorganic reinforcing materials, characterized in that: include: Mixing barrel (1); A motor (2) is installed above the mixing barrel (1); A tripod support (3) is arranged inside the mixing barrel (1); A rotating shaft (4) is connected to the motor (2) and driven to rotate by the motor (2); A rotating rod (6) is arranged along the vertical direction of the mixing barrel (1); A bevel gear (5) is disposed on the rotating shaft (4); The second bevel gear (7) is connected to the rotating rod (6) and is used to drive the rotating rod (6) to rotate. The rotating rod (6) is driven to rotate by the second bevel gear (7). The first bevel gear (5) is meshed with the second bevel gear (7) for transmission. A plurality of stirring rods (10) are fixedly connected to the rotating rod (6) and rotate along with the rotating rod (6) to stir the inorganic reinforcing material in the mixing barrel (1); A discharge pipe (11) is arranged at the bottom of the mixing barrel (1); The control valve (12) is installed on the discharge pipe (11).

2. The inorganic reinforcing material preparation and mixing integrated equipment according to claim 1, characterized in that: A fixing frame (13) is arranged at the bottom of the mixing barrel (1), a base (14) is installed below the fixing frame (13), and a universal wheel (15) is installed at the bottom of the base (14).

3. The inorganic reinforcing material preparation and mixing integrated equipment according to claim 2, characterized in that: An electric push rod (16) is installed on the base (14), and the electric push rod (16) is used to control the lifting and lowering of the universal wheel (15).

4. The inorganic reinforcing material preparation and mixing integrated equipment according to claim 2, characterized in that: A material storage barrel (18) is arranged inside the base (14), and an anti-skid plate (19) is installed on the base (14).

5. The inorganic reinforcing material preparation and mixing integrated equipment according to claim 1, characterized in that: The rotating rod (6) is provided with a connecting ring (20), the connecting ring (20) is connected with a plurality of connecting rods (9), the connecting rods (9) are provided with a scraper plate (24) for cleaning the inner wall of the mixing barrel (1), and the scraper plate (24) is provided with a fixing plate (25).

6. The inorganic reinforcing material preparation and mixing integrated equipment according to claim 1, characterized in that: A feeding pipe (23) is arranged on the top of the mixing barrel (1), a cover plate (22) is hingedly connected to the top of the mixing barrel (1), and a positioning rod (21) is installed on the top of the mixing barrel (1).

7. The inorganic reinforcing material preparation and mixing integrated equipment according to claim 5, characterized in that: A positioning plate (28) is provided at the end of the scraper plate (24), and an insertion hole (29) is provided on the positioning plate (28).

8. The inorganic reinforcing material preparation and mixing integrated equipment according to claim 7, characterized in that: A slide bar (26) is provided between the fixing plate (25) and the positioning plate (28), and a spring (27) is sleeved on the slide bar (26).

9. The inorganic reinforcing material preparation and mixing integrated equipment according to claim 1, characterized in that: The length of the stirring rod (10) increases or decreases in sequence along the axial direction of the rotating rod (6) to enhance stirring uniformity.

10. The inorganic reinforcing material preparation and mixing integrated equipment according to claim 1, characterized in that: The stirring rod (10) is provided with a plurality of stirring blades to improve the stirring effect on the inorganic reinforcing material.