Non-metallic mineral manufacturing agitator
Patent Information
- Application Number
- CN202521665123.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-06
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-08-06
AI Technical Summary
[0004]本实用新型的目的是提供一种非金属矿物制造用成化车间用搅拌机,解决了现有技术中的搅拌机功能单一,不能够对矿物进行粉碎,同时矿物颗粒再被搅拌时容易黏附在搅拌机内壁上,会造成生产率下降的问题
[0020]本实用新型的有益效果为:通过在搅拌机内部集成粉碎装置,实现了非金属矿物的粉碎与搅拌一体化操作,显著减少了生产工序和设备投入,降低了成本并提高了工作效率,同时通过设置刮除的机构便于将搅拌机内壁上的物料进行刮除干净的作用,从而可以提高搅拌的效率,使搅拌机可以对其中的物料搅拌的更加均匀。
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Figure CN224724022U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of non-metallic mineral manufacturing, and in particular to a mixer for use in a chemical processing workshop for non-metallic mineral manufacturing. Background Technology
[0002] Non-metallic mineral manufacturing refers to the process of transforming mineral resources that do not possess metallic properties in nature into industrial products or materials with specific functions and uses through a series of physical and chemical processing techniques. These mineral resources include quartz, feldspar, mica, graphite, fluorite, gypsum, barite, phosphate rock, etc. Non-metallic mineral manufacturing is widely used in many fields such as building materials, refractory materials, ceramics, glass, papermaking, plastics, rubber, electronics, chemicals, and environmental protection. Its production process usually includes steps such as ore mining, crushing, grinding, sorting, purification, molding, and sintering, aiming to develop high-value-added products that meet the needs of various industries based on the characteristics of different minerals.
[0003] Currently, mixers are commonly used in the manufacturing of non-metallic minerals. However, existing mixers generally have limited functionality and lack the ability to crush minerals. Therefore, the minerals need to be pre-treated by specialized crushing equipment before being put into the mixer for mixing. This not only increases the production process and equipment costs but also reduces overall work efficiency. In addition, during the mixing process, due to the stickiness or electrostatic adsorption of mineral particles, the material easily adheres to the inner wall of the mixer, which not only causes material waste and imbalance in proportion but also affects the uniformity of mixing and production efficiency. Utility Model Content
[0004] The purpose of this invention is to provide a mixer for a chemical processing workshop in the manufacture of non-metallic minerals, which solves the problems of existing mixers having limited functions, being unable to crush minerals, and having mineral particles easily adhering to the inner wall of the mixer when being stirred, resulting in a decrease in productivity.
[0005] To achieve the aforementioned objectives, the technical solution adopted by this utility model is as follows:
[0006] The mixing chamber is equipped with a discharge port on each of its two sides;
[0007] A grinding mechanism is installed on the mixing chamber. The grinding mechanism includes a grinding disc, several grinding blocks are fixedly installed under the grinding disc, a mesh frame is fixedly installed inside the mixing chamber, the grinding disc is installed on the mesh frame, a bearing is installed between the grinding disc and the mesh frame, and a first rotating shaft is fixedly installed on the grinding disc.
[0008] The installation of the grinding disc facilitates the grinding of minerals leaking from the feed port. The installation of the grinding blocks increases the friction between the grinding disc and the minerals, thus making it easier to grind the minerals. The installation of the mesh frame allows the ground material to fall into the mixing chamber, facilitating the agitation of the scraping mechanism. The installation of the first rotating shaft facilitates the rotational motion, thereby making it easier to drive the grinding disc to rotate.
[0009] The mixing chamber is equipped with a scraping mechanism, which includes a pair of scrapers that are matched with the mixing chamber. A second rotating shaft is rotatably installed inside the mixing chamber. The second rotating shaft passes through the mesh frame and is connected to the grinding disc. Multiple connecting frames are installed on the second rotating shaft. Fixed plates are installed at both ends of the multiple connecting frames. The scrapers are slidably installed in the fixed plates.
[0010] The installation of the scraper facilitates scraping the inner wall of the mixing chamber, thus preventing material from adhering to the mixing chamber. The installation of the second rotating shaft facilitates rotation based on the rotation of the grinding disc, thereby driving the rotation of the fixed plate. The installation of the connecting frame provides support, thus facilitating the stability of the fixed plate installation. The installation of the fixed plate allows the scraper to slide within the fixed plate, enabling the scraper to fit snugly against the mixing chamber.
[0011] As an improvement, a connecting cylinder is fixedly installed on the grinding disc, and a stabilizing frame is fixedly installed inside the mixing chamber.
[0012] The installation of the connecting cylinder facilitates the rotation of the grinding disc, thus cooperating with the rotating ball to ensure the stability of the grinding disc's rotation.
[0013] As an improvement, a number of ball bearings are rotatably installed between the connecting cylinder and the stabilizer.
[0014] The installation of the ball bearings facilitates smoother rotation of the connecting cylinder and the stabilizer frame.
[0015] As an improvement, the connecting cylinder and the stabilizing frame are respectively chiseled with annular grooves that match the rotating balls, and an electric motor is fixedly installed on the mixing chamber.
[0016] The installation of the electric motor facilitates the conversion of electrical energy into load-bearing energy, thus making it easier to drive the first rotating shaft to achieve the effect of rotation.
[0017] As an improvement, the motor passes through the mixing chamber and is connected to the first rotating shaft, and the size of the grinding block is larger than the size of the holes on the mesh frame.
[0018] As an improvement, multiple telescopic rods are installed between the scraper and the fixed plate, and springs are fitted around the telescopic rods. Several stirring blades are installed on the connecting frame.
[0019] The telescopic rod facilitates the retraction function by pushing the scraper, while the spring provides a buffer against rebound. The combination of the telescopic rod and the spring allows the scraper to fit snugly against the mixing chamber, making it easier for the scraper to clean the inner wall of the mixing chamber. The installation of the mixing blades provides an auxiliary function, making it easier for the mixing blades to evenly mix the minerals inside the mixing chamber.
[0020] The beneficial effects of this utility model are as follows: by integrating a crushing device inside the mixer, the crushing and mixing of non-metallic minerals are integrated, which significantly reduces production processes and equipment investment, lowers costs and improves work efficiency. At the same time, by setting a scraping mechanism, the material on the inner wall of the mixer can be easily scraped clean, thereby improving the mixing efficiency and enabling the mixer to mix the material more evenly. Attached Figure Description
[0021] Figure 1 This is a front cross-sectional view of a mixer for a chemical processing workshop in the manufacture of non-metallic minerals according to this utility model.
[0022] Figure 2 for Figure 1 Schematic diagram of the structure at point A in the middle.
[0023] In the diagram: 1. Mixing chamber; 101. Feed inlet; 2. Grinding mechanism; 201. Grinding disc; 202. Grinding block; 203. Frame; 204. First rotating shaft; 205. Connecting cylinder; 206. Stabilizing frame; 207. Rotating ball; 208. Motor; 3. Scraping mechanism; 301. Scraper; 302. Second rotating shaft; 303. Connecting frame; 304. Fixing plate; 305. Telescopic rod; 306. Spring; 307. Mixing blade. Detailed Implementation
[0024] To make the content of this utility model easier to understand, the technical solutions of this utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of this utility model. Identical components are represented by the same reference numerals. It should be noted that the terms "front," "rear," "left," "right," "up," and "down" used in the following description refer to directions in the accompanying drawings, while the terms "inner" and "outer" refer to directions toward or away from the geometric center of a specific component, respectively.
[0025] like Figure 1 and Figure 2 As shown, discharge ports 101 are installed on both sides of the mixing chamber 1.
[0026] like Figure 1 and Figure 2 As shown, a grinding mechanism 2 is installed on the mixing chamber 1. The grinding mechanism 2 includes a grinding disc 201, with several grinding blocks 202 fixedly installed below the grinding disc 201. A mesh frame 203 is fixedly installed inside the mixing chamber 1, and the grinding disc 201 is mounted on the mesh frame 203. A bearing is installed between the grinding disc 201 and the mesh frame 203, and a first rotating shaft 204 is fixedly installed on the grinding disc 201. The installation of the grinding disc 201 facilitates the grinding of minerals leaking from the feed port 101. The installation of the grinding blocks 202 increases the friction between the grinding disc and the minerals, thus facilitating the grinding of the minerals. The installation of the mesh frame 203 allows the ground material to fall into the mixing chamber 1 through the mesh frame 203, facilitating the stirring action of the scraping mechanism 3. The installation of the first rotating shaft 204 facilitates the rotational motion, thereby driving the grinding disc 201 to rotate.
[0027] like Figure 1 and Figure 2 As shown, a scraping mechanism 3 is installed on the mixing chamber 1. The scraping mechanism 3 includes a pair of scrapers 301, which are matched with the mixing chamber 1. A second rotating shaft 302 is rotatably installed inside the mixing chamber 1. The second rotating shaft 302 passes through the mesh frame 203 and is connected to the grinding disc 201. Multiple connecting frames 303 are installed on the second rotating shaft 302. Fixed plates 304 are installed at both ends of the multiple connecting frames 303 respectively. The scrapers 301 are slidably installed in the fixed plates 304. The installation of the scraper 301 facilitates scraping the inner wall of the mixing chamber 1, thereby preventing material from adhering to the mixing chamber 1. The installation of the second rotating shaft 302 facilitates rotation based on the rotation of the grinding disc 201, thereby facilitating the rotation of the fixed plate 304. The installation of the connecting frame 303 provides support, thereby facilitating the stability of the fixed plate 304. The installation of the fixed plate 304 allows the scraper 301 to slide within the fixed plate 304, thus ensuring that the scraper 301 fits snugly against the mixing chamber 1.
[0028] like Figure 1 and Figure 2 As shown, a connecting cylinder 205 is fixedly installed on the grinding disc 201, and a stabilizing frame 206 is fixedly installed inside the mixing chamber 1. The installation of the connecting cylinder 205 facilitates the rotation of the grinding disc 201, thereby cooperating with the rotating ball 207 to ensure the stability of the rotation of the grinding disc 201.
[0029] like Figure 1 and Figure 2As shown, several rotating balls 207 are rotatably installed between the connecting cylinder 205 and the stabilizer 206. The installation of the rotating balls 207 facilitates smoother rotation of the connecting cylinder 205 between the connecting cylinder 205 and the stabilizer 206.
[0030] like Figure 1 and Figure 2 As shown, the connecting cylinder 205 and the stabilizing frame 206 are respectively cut with annular grooves that match the rotating ball 207, and the stirring chamber 1 is fixedly installed with a motor 208. The installation of the motor 208 facilitates the conversion of electrical energy into load-discharge energy, thus facilitating the rotation of the first rotating shaft 204.
[0031] like Figure 1 and Figure 2 As shown, the motor 208 passes through the mixing chamber 1 and is connected to the first rotating shaft 204. The size of the grinding block 202 is larger than the size of the holes on the mesh frame 203.
[0032] like Figure 1 and Figure 2 As shown, multiple telescopic rods 305 are installed between the scraper 301 and the fixed plate 304. Springs 306 are fitted over the telescopic rods 305, and several stirring blades 307 are installed on the connecting frame 303. The installation of the telescopic rods 305 facilitates the retraction action of the scraper 301, while the installation of the springs 306 provides a buffering and rebounding effect. Thus, the cooperation of the telescopic rods 305 and the springs 306 allows the scraper 301 to adhere to the mixing chamber 1, facilitating the scraper 301 to clean the inner wall of the mixing chamber 1. The installation of the stirring blades 307 provides an auxiliary function, facilitating the uniform mixing of the minerals inside the mixing chamber 1.
[0033] During use, mineral materials are poured into the mesh frame 203 through the feed port 101. Then, the motor 208 is started, driving the first rotating shaft 204 to rotate. The rotation of the first rotating shaft 204 drives the grinding disc 201 to rotate, thus the grinding disc 201 and the grinding blocks 202 work together to crush the minerals. The crushed material then falls into the mixing chamber 1 through the gaps in the mesh frame 203. Since the second rotating shaft 302 is connected to the first rotating shaft 204, the first rotating shaft... When shaft 204 rotates, it drives the second rotating shaft 302 to rotate, which in turn drives the connecting frame 303 to drive the fixed plate 304. The scraper 301 is installed in the fixed plate 304. When the fixed plate 304 rotates, it drives the scraper 301. Through the cooperation of the telescopic rod 305 and the spring 306, the scraper 301 will come into contact with the mixing chamber 1, thereby scraping off the adhering material on the inner wall of the mixing chamber 1. The stirring blade 307 can then stir the material in the mixing chamber 1 evenly.
[0034] The above description is only a preferred embodiment of this utility model patent and is not intended to limit this utility model patent. Any modifications, equivalent substitutions and improvements made within the spirit and principles of this utility model patent should be included within the protection scope of this utility model patent.
Claims
1. A non-metallic mineral manufacturing agitator for a conversion plant, characterized by, include: A mixing chamber (1) is provided with a discharge port (101) on each side. A grinding mechanism (2) is installed on the mixing chamber (1). The grinding mechanism (2) includes a grinding disc (201). Several grinding blocks (202) are fixedly installed under the grinding disc (201). A mesh frame (203) is fixedly installed inside the mixing chamber (1). The grinding disc (201) is installed on the mesh frame (203). A bearing is installed between the grinding disc (201) and the mesh frame (203). A first rotating shaft (204) is fixedly installed on the grinding disc (201). The scraping mechanism (3) is installed on the mixing chamber (1). The scraping mechanism (3) includes a pair of scrapers (301). The pair of scrapers (301) are matched with the mixing chamber (1). A second rotating shaft (302) is rotatably installed in the mixing chamber (1). The second rotating shaft (302) passes through the mesh frame (203) and is connected to the grinding disc (201). Multiple connecting frames (303) are installed on the second rotating shaft (302). Fixed plates (304) are installed at both ends of the multiple connecting frames (303). The scrapers (301) are slidably installed in the fixed plates (304).
2. A non-metallic mineral manufacturing agitator for a finishing plant according to claim 1, characterized in that, A connecting cylinder (205) is fixedly installed on the grinding disc (201), and a stabilizing frame (206) is fixedly installed inside the mixing chamber (1).
3. A non-metallic mineral manufacturing agitator for a finishing plant according to claim 2, characterized in that, A number of ball bearings (207) are rotatably installed between the connecting cylinder (205) and the stabilizer (206).
4. A non-metallic mineral manufacturing agitator for a finishing plant according to claim 3, characterized in that, The connecting cylinder (205) and the stabilizing frame (206) are respectively chiseled with annular grooves that match the rotating ball (207), and the stirring chamber (1) is fixedly installed with an electric motor (208).
5. A non-metallic mineral manufacturing agitator for a finishing plant according to claim 4, characterized in that, The motor (208) passes through the mixing chamber (1) and is connected to the first rotating shaft (204). The size of the grinding block (202) is larger than the size of the holes on the mesh frame (203).
6. A non-metallic mineral manufacturing agitator for a finishing plant according to claim 1, characterized in that, Multiple telescopic rods (305) are installed between the scraper (301) and the fixed plate (304). The telescopic rods (305) are fitted with springs (306). Several stirring blades (307) are installed on the connecting frame (303).