Stirring machine capable of automatically and safely discharging
By setting a crushing component in front of the feed port, the problem of automatic safety unloading mixer being blocked by large particles is solved, and smooth feeding and improved production efficiency are achieved.
Patent Information
- Application Number
- CN202422784361.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-15
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2034-11-15
AI Technical Summary
When using existing automatic safety unloading mixers, if the material to be mixed contains large particles, it is easy to cause the feed port to be blocked, affecting the normal progress of the mixing work, extending the production cycle and increasing manual cleaning costs.
A crushing assembly is set in front of the feed port, and the motor drives the rotating blade to crush the large particles into smaller sizes, so that they can pass through the feed port smoothly, ensuring a smooth and unobstructed feeding process.
It effectively avoids feed interruptions caused by blockage, improves the efficiency of the mixing production process, and reduces the need for manual cleaning.
Smart Images

Figure CN223324446U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of mechanical design, in particular to a mixer with automatic and safe unloading. Background Art
[0002] The automatic safety unloading mixer is a device developed on the basis of the traditional mixer. It has an automatic unloading function and attaches great importance to safety. Through its reasonable structural design, advanced control technology and complete safety measures, it can complete the mixing and unloading of materials efficiently, accurately and safely, meet the production needs of different industries, and is widely used in construction, chemical industry, food, pharmaceuticals, environmental protection and other fields, in which it undertakes important tasks related to mixing and unloading.
[0003] When using existing automatic safety unloading mixers, many materials to be mixed may contain large particles. If they enter the feed port directly, these large particles are easily stuck at the feed port, causing blockage, which in turn affects the normal progress of the mixing work, prolongs the production cycle, and increases manual cleaning costs.
[0004] Therefore, when using a mixer with automatic safety unloading, many materials to be mixed may contain large particles. If they enter the feed port directly, these large particles are easily stuck at the feed port, causing blockage, which in turn affects the normal progress of the mixing work, prolongs the production cycle, and increases the cost of manual cleaning. By setting up a crushing structure, large particles can be crushed into smaller sizes before entering the feed port, so that they can pass through the feed port smoothly, ensuring a smooth and unobstructed feeding process, maintaining the material continuously and stably entering the mixer, effectively avoiding feeding interruptions caused by blockage, and helping to improve the efficiency of the entire mixing production process. Utility Model Content
[0005] In order to overcome the problem that when using a mixer with automatic safety unloading, many materials to be mixed may contain large particles. If they enter the feed port directly, these large particles are easily stuck at the feed port, causing blockage, which in turn affects the normal progress of the mixing work, prolongs the production cycle, and increases the cost of manual cleaning.
[0006] The technical solution of the utility model is: a mixer with automatic and safe unloading, comprising a mixing box, a feed port and a discharge port; further comprising a support frame, a crushing assembly, a stirring assembly, a rotating assembly and a discharge assembly; a feed port is provided above the mixing box, a discharge port is provided below the mixing box, a support frame is provided on the outside of the mixing box, a crushing assembly is provided on the inside of the discharge port, a stirring assembly is provided on the inside of the mixing box, a rotating assembly is provided on the inside of the discharge port, and a discharge assembly is provided below the discharge port; the crushing assembly comprises a first motor, a first rotating shaft and a rotating blade, a first motor is provided on the outside of the discharge port, a first rotating shaft is provided at the output end of the first motor, a rotating blade is provided above the first rotating shaft, and two groups of rotating blades are provided.
[0007] Preferably, the entire equipment is fixed by a support frame, thereby ensuring that the equipment can be stably prevented from being placed on the ground or on an installation platform, and maintaining the stability of the equipment during operation. By starting the first motor, the first motor drives the rotation of the first rotating shaft, and the rotation of the first rotating shaft drives the rotation of the rotating blade, so that large particle materials can be crushed into smaller sizes before entering the feed port, so that they can pass through the feed port smoothly, ensuring a smooth and unobstructed feeding process, maintaining the material continuously and stably entering the mixer, effectively avoiding feeding interruptions caused by blockage, and helping to improve the efficiency of the entire mixing production process.
[0008] Preferably, the stirring assembly includes a second motor, a second rotating shaft, a first fixed block and a first stirring blade. The second motor is arranged on the outside of the stirring box, the second rotating shaft is arranged at the output end of the second motor, the first fixed block is arranged on one side of the second rotating shaft, the first stirring blade is arranged above the second rotating shaft, and multiple groups of first stirring blades are arranged.
[0009] Preferably, the stirring assembly also includes a third motor, a third rotating shaft, a second fixed block and a second stirring blade. A third motor is provided on the other side of the stirring box, a third rotating shaft is provided at the output end of the third motor, a second fixed block is provided on one side of the third rotating shaft, and a second stirring blade is provided above the third rotating shaft. The second stirring blade is provided in multiple groups.
[0010] Preferably, the rotating assembly includes a fourth motor, a fourth rotating shaft and a third stirring blade. The fourth motor is arranged on the outside of the discharge port, the fourth rotating shaft is arranged at the output end of the fourth motor, and the third stirring blade is arranged above the fourth rotating shaft.
[0011] Preferably, the unloading assembly includes a bottom plate and a fixed plate, a bottom plate is provided below the discharge port, and two groups of bottom plates are provided, and a fixed plate is provided above the bottom plate, and two groups of fixed plates are provided.
[0012] Preferably, the unloading assembly also includes a fifth motor, a first gear, a second gear, a first connecting plate and a second connecting plate. The fifth motor is provided on one side of the discharge port, and the first gear is provided at both ends of the discharge port. The first gear and the fifth motor are connected by a rotating shaft. A first connecting plate is provided above the bottom plate, and the first connecting plate is provided in two groups. The first connecting plate and the first gear are connected by a rotating shaft. A second gear is provided at both ends of the discharge port. A second connecting plate is provided above the bottom plate, and the second connecting plate is provided in two groups. The second gear and the second connecting plate are connected by a rotating shaft.
[0013] Preferably, the first gear and the second gear are meshed and linked.
[0014] Beneficial effects of the utility model:
[0015] 1. Compared with traditional automatic safety unloading mixers, many materials to be mixed may contain large particles during use. If they enter the feed port directly, these large particles are easily stuck at the feed port, causing blockage, which in turn affects the normal development of the mixing work, prolongs the production cycle, and increases the cost of manual cleaning. By setting up a crushing structure, large particles of material can be crushed into smaller sizes before entering the feed port, so that they can pass through the feed port smoothly, ensuring a smooth and unobstructed feeding process, maintaining the material continuously and stably entering the mixer, effectively avoiding feeding interruptions caused by blockage, and helping to improve the efficiency of the entire mixing production process. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 Shown is a schematic diagram of the first three-dimensional structure of the mixer with automatic and safe discharge of the utility model;
[0017] Figure 2 Shown is a schematic diagram of the first cross-sectional perspective structure of the mixer with automatic and safe unloading according to the present invention;
[0018] Figure 3 Shown is a schematic diagram of the second cross-sectional perspective structure of the mixer with automatic safety unloading of the present invention;
[0019] Figure 4 Shown is a schematic diagram of the third cross-section of the three-dimensional structure of the mixer with automatic safety discharge of the present invention;
[0020] Explanation of the accompanying drawings: 1. mixing box; 2. feed port; 3. discharge port; 4. support frame; 101. first motor; 102. first rotating shaft; 103. rotating blade; 201. second motor; 202. second rotating shaft; 203. first fixed block; 204. first stirring blade; 205. third motor; 206. third rotating shaft; 207. second fixed block; 208. second stirring blade; 301. fourth motor; 302. fourth rotating shaft; 303. third stirring blade; 401. bottom plate; 402. fixed plate; 403. fifth motor; 404. first gear; 405. second gear; 406. first connecting plate; 407. second connecting plate. DETAILED DESCRIPTION
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] See also Figure 1-4 The utility model provides an embodiment: a mixer with automatic and safe unloading, comprising a mixing box 1, a feed port 2, a discharge port 3, a support frame 4, a crushing assembly, a mixing assembly, a rotating assembly and a discharging assembly; a feed port 2 is provided above the mixing box 1, a discharge port 3 is provided below the mixing box 1, a support frame 4 is provided outside the mixing box 1, a crushing assembly is provided inside the discharge port 3, a mixing assembly is provided inside the mixing box 1, a rotating assembly is provided inside the discharge port 3, and a discharging assembly is provided below the discharge port 3; the crushing assembly comprises a first motor 101, a first rotating shaft 102 and a rotating blade 103, a first motor 101 is provided outside the discharge port 3, a first rotating shaft 102 is provided at the output end of the first motor 101, A rotating blade 103 is provided above 102, and two groups of rotating blades 103 are provided. When in use, the entire equipment is fixed by the support frame 4, so as to ensure that the equipment can be stably prevented from being placed on the ground or on the installation platform, and the stability of the equipment is maintained during operation. By starting the first motor 101, the first motor 101 drives the rotation of the first rotating shaft 102, and the rotation of the first rotating shaft 102 drives the rotation of the rotating blade 103, so that large particles can be crushed into smaller sizes before entering the feed port 2, so that they can pass through the feed port 2 smoothly, ensuring smooth and unobstructed feeding process, maintaining the material continuously and stably entering the mixer, effectively avoiding feeding interruptions caused by blockage, and helping to improve the efficiency of the entire mixing production process.
[0023] See also Figure 1-4, in this embodiment, the stirring assembly includes a second motor 201, a second rotating shaft 202, a first fixed block 203 and a first stirring blade 204. The second motor 201 is provided on the outside of the stirring box 1, and the output end of the second motor 201 is provided with a second rotating shaft 202. A first fixed block 203 is provided on one side of the second rotating shaft 202. A first stirring blade 204 is provided above the second rotating shaft 202. There are multiple groups of first stirring blades 204. When in use, by starting the second motor 201, the second rotating shaft 202 is driven by the second motor 201 to rotate clockwise, and the first stirring blade 204 is driven by the rotation of the second rotating shaft 202 to rotate clockwise, so that the material in the stirring box 1 can be tumbled and stirred. The stirring assembly also includes a third motor 205, a third rotating shaft 206, a second fixed Block 207 and second stirring blade 208, a third motor 205 is provided on the other side of the mixing box 1, and a third rotating shaft 206 is provided at the output end of the third motor 205. A second fixed block 207 is provided on one side of the third rotating shaft 206, and a second stirring blade 208 is provided above the third rotating shaft 206. There are multiple groups of second stirring blades 208. When in use, by starting the third motor 205, the third rotating shaft 206 is driven by the third motor 205 to rotate counterclockwise, and the second stirring blade 208 is driven by the third rotating shaft 206 to rotate counterclockwise, so that the material in the mixing drum can be turned and mixed from multiple angles, and various areas in the mixing drum can be covered more comprehensively, reducing the situation of insufficient local stirring of the material in the mixing drum, so that the material can be stirred more evenly in the entire space.
[0024] See also Figure 1-4In this embodiment, the rotating assembly includes a fourth motor 301, a fourth rotating shaft 302 and a third stirring blade 303. The fourth motor 301 is provided on the outside of the discharge port 3, and the output end of the fourth motor 301 is provided with a fourth rotating shaft 302. The third stirring blade 303 is provided above the fourth rotating shaft 302. When in use, by starting the fourth motor 301, the fourth motor 301 drives the fourth rotating shaft 302 to rotate, and the rotation of the fourth rotating shaft 302 drives the third stirring blade 303 to rotate, thereby ensuring that each part of the liquid flowing out of the discharge port 3 is kept in a stable state. The materials are evenly mixed to ensure the uniformity of the discharge. The discharge assembly includes a bottom plate 401 and a fixed plate 402. The bottom plate 401 is provided below the discharge port 3. The bottom plate 401 is provided with two groups. The fixed plate 402 is provided above the bottom plate 401. The fixed plate 402 is provided with two groups. The discharge assembly also includes a fifth motor 403, a first gear 404, a second gear 405, a first connecting plate 406 and a second connecting plate 407. A fifth motor 403 is provided on one side of the discharge port 3. The first gear 404 is provided at both ends of the discharge port 3. The first gear 404 and the fifth motor 403 are provided. The motor 403 is connected by a rotating shaft, a first connecting plate 406 is provided above the bottom plate 401, the first connecting plate 406 is provided with two groups, the first connecting plate 406 and the first gear 404 are connected by a rotating shaft, and second gears 405 are provided at both ends of the discharge port 3, a second connecting plate 407 is provided above the bottom plate 401, the second connecting plate 407 is provided with two groups, the second gear 405 and the second connecting plate 407 are connected by a rotating shaft. When in use, by starting the fifth motor 403, the fifth motor 403 drives the rotation of the first gear 404, and the first gear 404 is driven by the rotation of the first gear The rotation drives the second gear 405 to rotate, and the rotation of the first gear 404 and the second gear 405 drives the rotation of the first connecting plate 406 and the second connecting plate 407, and the rotation of the first connecting plate 406 and the second connecting plate 407 drives the rotation of the bottom plate 401, so that there is no need for manual operation of the opening and closing of the unloading door and the handling of materials. The unloading program can be quickly started after the processing links such as mixing are completed, and the unloading can be completed quickly at the preset speed and method, which can effectively avoid the risk of accidents caused by these human factors and ensure the safety and stability of the unloading process.
[0025] During operation, the support frame 4 fixes the entire device, thereby ensuring that the device can be stably prevented from being placed on the ground or on the installation platform, and maintaining the stability of the device during operation. By starting the first motor 101, the first motor 101 drives the first rotating shaft 102 to rotate, and the rotation of the first rotating shaft 102 drives the rotation of the rotating blade 103, so that large particles of material can be crushed into smaller sizes before entering the feed port 2, so that it can pass through the feed port 2 smoothly, ensuring a smooth and unobstructed feeding process, maintaining the material continuously and stably entering the mixer, effectively avoiding feeding interruptions caused by blockage, and helping to improve the efficiency of the entire mixing production process;
[0026] At the same time, by starting the second motor 201, the second motor 201 drives the second rotating shaft 202 to rotate clockwise, and the rotation of the second rotating shaft 202 drives the first stirring blade 204 to rotate clockwise, so that the material in the mixing box 1 can be tumbled and stirred, and by starting the third motor 205, the third motor 205 drives the third rotating shaft 206 to rotate counterclockwise, and the third rotating shaft 206 drives the second stirring blade 208 to rotate counterclockwise, so that the material in the mixing drum can be tumbled and mixed from multiple angles, and various areas in the mixing drum can be more comprehensively covered, thereby reducing the situation of insufficient local stirring of the material in the mixing drum, and allowing the material to be stirred more evenly in the entire space;
[0027] At the same time, by starting the fourth motor 301, the fourth motor 301 drives the fourth rotating shaft 302 to rotate, and the rotation of the fourth rotating shaft 302 drives the third stirring blade 303 to rotate, thereby ensuring that each portion of the material flowing out of the discharge port 3 is evenly mixed, thereby ensuring the uniformity of the discharge;
[0028] At the same time, by starting the fifth motor 403, the fifth motor 403 drives the first gear 404 to rotate, the rotation of the first gear 404 drives the second gear 405 to rotate, the rotation of the first gear 404 and the second gear 405 drives the first connecting plate 406 and the second connecting plate 407 to rotate, and the rotation of the first connecting plate 406 and the second connecting plate 407 drives the bottom plate 401 to rotate, so that there is no need for manual operation of the unloading door opening, closing and material handling processes, and the unloading program can be quickly started after the mixing and other processing links are completed, and the unloading can be quickly completed at the preset speed and method, which can effectively avoid the risk of accidents caused by these human factors and ensure the safety and stability of the unloading process.
[0029] Through the above steps, the support frame 4 is used to fix the entire equipment, thereby ensuring that the equipment can be stably prevented from being placed on the ground or on the installation platform, and the stability of the equipment is maintained during operation. The first motor 101 is started, and the first motor 101 drives the rotation of the first rotating shaft 102. The rotation of the first rotating shaft 102 drives the rotation of the rotating blade 103, so that large particles can be crushed into smaller sizes before entering the feed port 2, so that they can be smoothly used in the feed port 2, ensuring a smooth and unobstructed feeding process, maintaining the material continuously and stably entering the mixer, effectively avoiding feeding interruptions caused by blockage, and helping to improve the efficiency of the entire mixing production process.
[0030] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.
Claims
1. A mixer with automatic and safe unloading, comprising a mixing box (1), a feed port (2) and a discharge port (3); characterized in that: The invention also comprises a support frame (4), a crushing component, a stirring component, a rotating component and a discharge component; a feeding port (2) is provided above the stirring box (1), a discharge port (3) is provided below the stirring box (1), a support frame (4) is provided outside the stirring box (1), a crushing component is provided inside the discharge port (3), a stirring component is provided inside the stirring box (1), a rotating component is provided inside the discharge port (3), and a discharge component is provided below the discharge port (3); the crushing component comprises a first motor (101), a first rotating shaft (102) and a rotating blade (103); the first motor (101) is provided outside the discharge port (3), the first rotating shaft (102) is provided at the output end of the first motor (101), a rotating blade (103) is provided above the first rotating shaft (102), and two groups of rotating blades (103) are provided.
2. The mixer with automatic safety discharge according to claim 1, characterized in that: The stirring assembly comprises a second motor (201), a second rotating shaft (202), a first fixed block (203) and a first stirring blade (204); the second motor (201) is arranged outside the stirring box (1); the second rotating shaft (202) is arranged at the output end of the second motor (201); the first fixed block (203) is arranged on one side of the second rotating shaft (202); the first stirring blade (204) is arranged above the second rotating shaft (202); and the first stirring blade (204) is provided in multiple groups.
3. The mixer with automatic safety discharge according to claim 2, characterized in that: The stirring assembly further comprises a third motor (205), a third rotating shaft (206), a second fixed block (207) and a second stirring blade (208); the third motor (205) is arranged on the other side of the stirring box (1); the output end of the third motor (205) is arranged with a third rotating shaft (206); a second fixed block (207) is arranged on one side of the third rotating shaft (206); a second stirring blade (208) is arranged above the third rotating shaft (206); and a plurality of second stirring blades (208) are arranged.
4. The mixer with automatic safety discharge according to claim 3, characterized in that: The rotating assembly comprises a fourth motor (301), a fourth rotating shaft (302) and a third stirring blade (303); the fourth motor (301) is arranged outside the discharge port (3); the fourth rotating shaft (302) is arranged at the output end of the fourth motor (301); and the third stirring blade (303) is arranged above the fourth rotating shaft (302).
5. The mixer with automatic safety discharge according to claim 4, characterized in that: The unloading assembly comprises a bottom plate (401) and a fixed plate (402). The bottom plate (401) is arranged below the discharge port (3), and two groups of bottom plates (401) are provided. The fixed plate (402) is arranged above the bottom plate (401), and two groups of fixed plates (402) are provided.
6. The mixer with automatic safety discharge according to claim 5, characterized in that: The unloading assembly further comprises a fifth motor (403), a first gear (404), a second gear (405), a first connecting plate (406) and a second connecting plate (407); the fifth motor (403) is provided on one side of the discharge port (3); the first gear (404) is provided at both ends of the discharge port (3); the first gear (404) and the fifth motor (403) are connected via a rotating shaft; a first connecting plate (406) is provided above the bottom plate (401); the first connecting plate (406) is provided in two groups; the first connecting plate (406) and the first gear (404) are connected via a rotating shaft; a second gear (405) is provided at both ends of the discharge port (3); a second connecting plate (407) is provided above the bottom plate (401); the second connecting plate (407) is provided in two groups; the second gear (405) and the second connecting plate (407) are connected via a rotating shaft.
7. The mixer with automatic safety discharge according to claim 6, characterized in that: The first gear (404) and the second gear (405) are meshed and linked.