A rapid mixing device for nano-electronic ceramic material generation
By driving the pulverizing blades and mixing rods with a drive motor, combined with the material circulation component, uniform mixing of nano-electronic ceramic materials is achieved, solving the problem of uneven pulverization and mixing in traditional devices and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANDONG JINYU NANO TECHNOLOGY CO LTD
- Filing Date
- 2025-08-04
- Publication Date
- 2026-07-21
AI Technical Summary
Traditional mixing devices cannot effectively pulverize nano-electronic ceramic materials, resulting in inconsistent particle sizes, uneven mixing, and a lack of material circulation mechanism, which reduces mixing efficiency and uniformity.
The device uses a drive motor to power the crushing blades and mixing rods, along with a material circulation assembly, to achieve uniform mixing of particles through crushing, stirring, and circulation.
It improves the mixing uniformity and production efficiency of nano-electronic ceramic materials, ensures product performance, and solves the problems of uneven mixing and low efficiency in traditional equipment.
Smart Images

Figure CN224524605U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of mixing devices, and in particular relates to a rapid mixing device for the generation of nano-electronic ceramic materials. Background Technology
[0002] Nano-electronic ceramic materials have been widely used in many high-tech fields such as electronics, aerospace, and new energy due to their excellent electrical, mechanical, and thermal properties. In the preparation process of nano-electronic ceramic materials, mixing is a crucial step, as the uniformity of the mixture directly affects the performance and quality of the final product.
[0003] Currently, traditional mixing devices generally suffer from several problems when mixing nano-electronic ceramic materials. Most devices only have a simple stirring function and cannot effectively pulverize the materials, resulting in inconsistent particle sizes and difficulty in achieving uniform mixing. Furthermore, the simple stirring methods of traditional devices easily lead to localized uneven mixing, especially for materials with significant density differences, resulting in even worse mixing effects. In addition, traditional mixing devices lack effective material circulation mechanisms, making it difficult for materials at the bottom to fully mix with those at the top, significantly reducing mixing efficiency and uniformity. These problems severely restrict the production quality and efficiency of nano-electronic ceramic materials.
[0004] To address these issues, we provide a rapid mixing device for generating nano-electronic ceramic materials. Utility Model Content
[0005] The purpose of this invention is to provide a rapid mixing device for the generation of nano-electronic ceramic materials. By combining the mixing component and the material circulation component, the problem of low efficiency in existing mixing devices is solved.
[0006] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution.
[0007] This utility model relates to a rapid mixing device for generating nano-electronic ceramic materials, comprising a mixing chamber. A mixing component and a material circulation component are fixedly connected to the inner cavity of the mixing chamber. The mixing component includes a drive motor fixedly connected to the bottom of the mixing chamber. The output shaft of the drive motor extends through the inner cavity of the mixing chamber and is fixedly connected to a crushing blade. A gear ring is fixedly connected to the top of the inner cavity of the mixing chamber via a bearing. A drive gear and a driven gear mesh on the inner wall of the gear ring. A second drive motor is fixedly connected to the top of the drive gear, and a mixing rod is fixedly connected to the bottom of the driven gear. The material circulation component includes a conveying pipe fixedly connected to the inner wall of the mixing chamber. A spiral conveying roller is provided inside the conveying pipe. A third drive motor is fixedly connected to the top of the spiral conveying roller. A discharge port is opened on one side of the top of the conveying pipe.
[0008] The present invention is further configured such that a support leg is fixedly connected to the bottom of the mixing box, and a mounting base is fixedly connected to the bottom of the support leg. The support leg and the mounting base can provide stable support for the entire mixing device, so that the mixing device remains stable during operation and avoids the mixing effect being affected by shaking. At the same time, it facilitates the installation and fixing of the device.
[0009] The present invention is further configured such that a discharge pipe is connected to the bottom of one side of the mixing box, and a valve is fixedly connected to the inner cavity of the discharge pipe. The discharge pipe and the valve facilitate the smooth discharge of the evenly mixed material from the mixing box. The discharge speed and discharge volume of the material can be controlled by the valve, which facilitates the subsequent collection and processing of the material.
[0010] The present invention is further configured such that a guide cone block is fixedly connected to the bottom of the inner cavity of the mixing box, and a circular hole for installing a crushing blade is opened at the axis of the guide cone block. The guide cone block can guide the material to gather towards the center of the bottom of the mixing box, so that the material can be better crushed by the crushing blade, and at the same time, it is convenient for the material at the bottom to be conveyed by the spiral conveyor roller, thereby improving the material circulation efficiency.
[0011] The present invention is further provided that a protective cover is fixedly connected to the top of the inner cavity of the mixing box. The bottom and top of the protective cover are respectively provided with circular holes for passing through the mixing rod, the spiral conveying roller and the output shaft of the second drive motor. The protective cover can protect the second drive motor, the spiral conveying roller and other components located at the top of the mixing box, prevent materials from entering the interior of these components, affecting their normal operation and extending the service life of the components.
[0012] The present invention is further configured such that the crushing blade includes a drive shaft and crushing blades fixedly installed on the surface of the drive shaft. The crushing blades are staggered vertically, which increases the contact area with the material, allowing the material to be crushed from different angles during the crushing process, thereby improving the crushing effect and crushing efficiency.
[0013] The present invention is further configured such that the top of the conveying pipe is fixedly connected to the bottom of the protective cover. The fixed connection between the conveying pipe and the protective cover enhances the stability of the conveying pipe installation and makes the material circulation process smoother, avoiding the problem of poor material conveying caused by unstable connection.
[0014] The present invention has the following beneficial effects.
[0015] 1. This utility model uses a drive motor to rotate the crushing blade, which can quickly crush the material entering the mixing box, solving the problem that traditional devices cannot effectively handle material particles. After crushing, the material is then driven by a second drive motor to rotate the drive gear. The drive gear meshes with the gear ring, which in turn drives the driven gear and mixing rods to stir and mix the material in multiple directions. Multiple mixing rods stir the material from different angles. Combined with the crushing action of the crushing blade, the material particles are made uniform in size and fully mixed. This effectively improves the problem of uneven mixing caused by uneven material particles and a single mixing method, greatly improves the mixing uniformity of nano-electronic ceramic materials, and ensures product performance.
[0016] 2. The present invention uses a drive motor to rotate a spiral conveying roller inside a conveying pipe. Utilizing the spiral structure of the spiral conveying roller, the material at the bottom of the mixing tank can be lifted to the top along the conveying pipe and returned to the mixing tank through the discharge port, forming a circulating flow of materials. This circulation mechanism breaks the limitation of traditional mixing devices where the material at the bottom is difficult to fully mix with the material at the top. It allows the material to continuously circulate and participate in the mixing process within the mixing tank. Whether the material has a large density difference or is located in a different position, it can fully contact and mix, effectively improving mixing efficiency and shortening mixing time. This is of great significance for improving the production efficiency of nano-electronic ceramic materials. Attached Figure Description
[0017] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below.
[0018] Figure 1 This is a three-dimensional view of a rapid mixing device for generating nano-electronic ceramic materials.
[0019] Figure 2 This is a bottom view schematic diagram of a rapid mixing device for generating nano-electronic ceramic materials.
[0020] Figure 3 This is a cross-sectional schematic diagram of a rapid mixing device for generating nano-electronic ceramic materials.
[0021] Figure 4 This is a top cross-sectional schematic diagram of a rapid mixing device for generating nano-electronic ceramic materials.
[0022] Figure 5 This is a schematic diagram of the connection structure between the gear ring and the drive gear in a rapid mixing device for generating nano-electronic ceramic materials.
[0023] In the attached diagram: 1. Mixing box; 2. Mixing assembly; 21. Drive motor one; 22. Crusher; 23. Gear ring; 24. Drive gear; 25. Driven gear; 26. Drive motor two; 27. Mixing rod; 28. Guide cone; 29. Protective cover; 3. Material circulation assembly; 31. Conveying pipe; 32. Spiral conveying roller; 33. Drive motor three; 34. Discharge port; 4. Support leg; 5. Discharge pipe. Detailed Implementation
[0024] The technical solutions of the present utility model will be described below with reference to the accompanying drawings. The described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0025] Example 1
[0026] Please see Figure 1-5 This utility model is a rapid mixing device for generating nano-electronic ceramic materials, including a mixing tank 1. The inner cavity of the mixing tank 1 is fixedly connected to a mixing component 2 and a material circulation component 3. The mixing component 2 includes a drive motor 21 fixedly connected to the bottom of the mixing tank 1. The output shaft of the drive motor 21 passes through the inner cavity of the mixing tank 1 and is fixedly connected to a crushing blade 22. The top of the inner cavity of the mixing tank 1 is fixedly connected to a gear ring 23 through a bearing. The inner wall of the gear ring 23 is meshed with a drive gear 24 and a driven gear 25. The top of the drive gear 24 is fixedly connected to a drive motor 26, and the bottom of the driven gear 25 is fixedly connected to a mixing rod 27. The material circulation component 3 includes a conveying pipe 31 fixedly connected to the inner wall of the mixing tank 1. The inner cavity of the conveying pipe 31 is provided with a spiral conveying roller 32. The top of the spiral conveying roller 32 is fixedly connected to a drive motor 33. A discharge port 34 is opened on the top of one side of the conveying pipe 31.
[0027] Specifically: When the drive motor 21 is working, it provides stable and strong power to the crusher 22, which can initially crush the material entering the mixing box 1, breaking larger particles into smaller particles for easier subsequent mixing. The gear ring 23 can rotate stably around its own axis. The inner wall of the gear ring 23 meshes with the drive gear 24 and the driven gear 25 respectively. The drive motor 26 connected to the top of the drive gear 24 can drive the drive gear 24 to rotate, thereby driving the gear ring 23 to rotate, and at the same time causing the driven gear 25 to rotate. The mixing rod 27, which is fixedly connected to the bottom, rotates with the driven gear 25 to fully mix the crushed material in the mixing box 1. The conveying pipe 31 is horizontally fixed to the inner wall of the mixing box 1. The spiral conveying roller 32 installed inside it rotates under the drive of the drive motor 33. The unique spiral blade structure of the spiral conveying roller 32 can convey the material located at the bottom of the mixing box 1 upward along the conveying pipe 31, and send the material back into the mixing box 1 through the discharge port 34 at the top of one side of the conveying pipe 31, so as to realize the circulation of the material.
[0028] Example 2
[0029] Please see Figure 1-5 Based on Embodiment 1, a support leg 4 is fixedly connected to the bottom of the mixing box 1, and a mounting base is fixedly connected to the bottom of the support leg 4. A discharge pipe 5 is connected to the bottom of one side of the mixing box 1. A valve is fixedly connected to the inner cavity of the discharge pipe 5. A guide cone 28 is fixedly connected to the bottom of the inner cavity of the mixing box 1. A circular hole for installing a crushing blade 22 is opened at the axis of the guide cone 28. A protective cover 29 is fixedly connected to the top of the inner cavity of the mixing box 1. A circular hole for passing through the mixing rod 27, the spiral conveying roller 32, and the output shaft of the second drive motor 26 is opened at the bottom and top of the protective cover 29, respectively. The crushing blade 22 includes a drive shaft and a crushing blade fixedly installed on the surface of the drive shaft. The crushing blades are staggered vertically. The top of the conveying pipe 31 is fixedly connected to the bottom of the protective cover 29.
[0030] Specifically: the support legs 4 and the mounting base provide stable support for the entire mixing device, ensuring smooth operation and preventing shaking that could affect the mixing effect. They also facilitate installation and securing of the device. The discharge pipe 5 and valves allow for the smooth discharge of the uniformly mixed material from the mixing tank 1. The valves control the discharge speed and volume, facilitating subsequent collection and processing. The guide cone 28 guides the material towards the center of the bottom of the mixing tank 1, allowing for better crushing by the crushing blades 22 and facilitating the conveying of the bottom material by the screw conveyor rollers 32, thus improving material circulation. For efficiency, the protective cover 29 can protect the drive motor 26, spiral conveyor roller 32 and other components located at the top of the mixing box 1, preventing materials from entering the interior of these components and affecting their normal operation, thus extending the service life of the components. The staggered arrangement of the crushing blades increases the contact area with the materials, allowing the materials to be crushed from different angles during the crushing process, improving the crushing effect and efficiency. The fixed connection between the conveying pipe 31 and the protective cover 29 enhances the stability of the installation of the conveying pipe 31, while making the material circulation process smoother and avoiding material conveying problems caused by unstable connection.
[0031] The working principle of this utility model is as follows: The nano-electronic ceramic material to be mixed is placed into the mixing box 1. The drive motor 21 is started, driving the crushing blade 22 to rotate at high speed to crush the material. Then, the drive motor 26 is turned, driving the gear 24 to rotate. Through meshing with the gear ring 23, the driven gear 25 and the mixing rod 27 are driven to rotate, stirring and mixing the crushed material. At the same time, the drive motor 33 drives the spiral conveying roller 32 to rotate in the conveying pipe 31, lifting the material at the bottom of the mixing box 1 to the top along the conveying pipe 31, and sending it back into the mixing box 1 through the discharge port 34. In this process, the material is continuously crushed, stirred and circulated to achieve full mixing. When the material is evenly mixed, the valve on the discharge pipe 5 is opened to discharge the mixed material from the mixing box 1.
[0032] The preferred embodiments of the present utility model disclosed above are only used to help illustrate the present utility model. The preferred embodiments do not describe all the details in detail, nor do they limit the present utility model to the specific implementation methods described. The present specification selects and specifically describes these embodiments in order to better explain the principle and practical application of the present utility model, so that those skilled in the art can better understand and utilize the present utility model.
Claims
1. A rapid mixing device for generating nano-electronic ceramic materials, comprising a mixing tank (1), characterized in that: The mixing box (1) has a mixing assembly (2) and a material circulation assembly (3) fixedly connected to its inner cavity; The mixing assembly (2) includes a drive motor (21) fixedly connected to the bottom of the mixing box (1). The output shaft of the drive motor (21) passes through the inner cavity of the mixing box (1) and is fixedly connected to a crushing blade (22). A gear ring (23) is fixedly connected to the top of the inner cavity of the mixing box (1) through a bearing. A drive gear (24) and a driven gear (25) mesh on the inner wall of the gear ring (23). A drive motor (26) is fixedly connected to the top of the drive gear (24), and a mixing rod (27) is fixedly connected to the bottom of the driven gear (25). The material circulation assembly (3) includes a conveying pipe (31) fixedly connected to the inner wall of the mixing box (1). The inner cavity of the conveying pipe (31) is provided with a spiral conveying roller (32). The top of the spiral conveying roller (32) is fixedly connected with a drive motor (33). A discharge port (34) is opened on the top of one side of the conveying pipe (31).
2. The rapid mixing device for generating nano-electronic ceramic materials according to claim 1, characterized in that: The bottom of the mixing box (1) is fixedly connected to a support leg (4), and the bottom of the support leg (4) is fixedly connected to a mounting base.
3. The rapid mixing device for generating nano-electronic ceramic materials according to claim 1, characterized in that: The bottom of one side of the mixing box (1) is connected to a discharge pipe (5), and a valve is fixedly connected to the inner cavity of the discharge pipe (5).
4. The rapid mixing device for generating nano-electronic ceramic materials according to claim 1, characterized in that: The bottom of the inner cavity of the mixing box (1) is fixedly connected to a flow guide cone (28), and a circular hole for installing a crushing blade (22) is opened at the axis of the flow guide cone (28).
5. The rapid mixing device for generating nano-electronic ceramic materials according to claim 1, characterized in that: The top of the inner cavity of the mixing box (1) is fixedly connected to a protective cover (29). The bottom and top of the protective cover (29) are respectively provided with round holes for passing through the mixing rod (27), the spiral conveying roller (32) and the output shaft of the second drive motor (26).
6. The rapid mixing device for generating nano-electronic ceramic materials according to claim 1, characterized in that: The crushing blade (22) includes a drive shaft and a crushing blade fixedly installed on the surface of the drive shaft, with the crushing blades arranged in a staggered pattern.
7. The rapid mixing device for generating nano-electronic ceramic materials according to claim 5, characterized in that: The top of the delivery pipe (31) is fixedly connected to the bottom of the protective cover (29).