Sectional type dough mixer
By designing the mixing and rolling structure of the segmented dough machine, the problem of blockage in the segmented dough is solved, efficient conveying and segmenting of the dough is achieved, and operation convenience is improved.
Patent Information
- Application Number
- CN202421741264.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-23
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-07-23
AI Technical Summary
Traditional segmented dough kneading machines are prone to clogging during the dough segmentation process, resulting in poor conveying and reducing the segmentation rate.
A segmented dough machine is designed, including a dough mixing drum, a front segmented rack, a rear segmented rack and a surface pedestal. The mixing flour is uniformly mixed with water through a mixing shaft, an anti-spill mixing rod, agitating paddle and a scraper to form a floc structure. The flocated flour roll is pressed into a long section by using the front and rear surface pressing rollers, and conveyed to the surface pedestal table through a conveyor belt to avoid clogging.
It improves the conveying fluency and segmentation rate of the dough, reduces the phenomenon of blockage and breakage, and makes operation more convenient.
Smart Images

Figure CN223080934U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of dough mixers, in particular to a segmented dough mixer. Background Technique
[0002] A dough mixer belongs to a kind of pasta machinery, and its main function is to evenly mix flour and water. There are vacuum dough mixers and non-vacuum dough mixers, which are divided into horizontal, vertical, single-axis, double-axis, semi-axis, etc. A dough mixer is a machine used for kneading dough. There are vacuum dough mixers and non-vacuum dough mixers. Function introduction of the dough mixer: It has various functions and wide applications. It can be used in restaurants, enterprises and institutions, and food processing factories, in hotels, bakeries, cake shops, , bars, tea houses, families and other occasions have a wide range of uses.
[0003] In the prior art, there are still certain deficiencies in the use of segmented dough mixers. The traditional dough kneading method usually kneads the dough into a large dough, and the large dough is prone to interruption during the segmentation process, generally getting stuck in the segmentation components, resulting in unsmooth dough transportation and reducing the segmentation rate. Content of the Utility Model
[0004] The purpose of the utility model is to provide a segmented dough mixer to solve the problem that in the traditional dough kneading method, the dough is usually kneaded into a large dough, which is prone to interruption during the segmentation process, generally getting stuck in the segmentation components, resulting in unsmooth dough transportation and reducing the segmentation rate as mentioned in the above background technique.
[0005] To achieve the above purpose, the utility model provides the following technical solution: A segmented dough mixer includes a segmented dough mixer base body. The interior of the segmented dough mixer base body is composed of a dough kneading and stirring barrel, a front segmentation rack, a rear segmentation rack, and a dough placing table. A stirring shaft is arranged inside the dough kneading and stirring barrel, and the top of the stirring shaft is connected to a first driving motor. An anti-overflow stirring rod, a stirring paddle, and a dough scraping rod are successively arranged on the stirring shaft. A barrel cover is arranged at the upper end of the dough kneading and stirring barrel. A water injection port and a feeding port are respectively arranged on both sides above the barrel cover. An outlet is arranged on one side of the lower end of the dough kneading and stirring barrel. A front pressing roller is arranged above the interior of the front segmentation rack. An aggregate trough is arranged at the top of the front segmentation rack. An upper conveyor belt is arranged between the front segmentation rack and the rear segmentation rack. A rear pressing roller is arranged above the interior of the rear segmentation rack. A lower conveyor belt is arranged below the rear pressing roller. A fixed conveyor belt is arranged at the lower end of the lower conveyor belt. The fixed conveyor belt is arranged above the distribution box. A second driving motor and a third driving motor are respectively arranged at both ends inside the distribution box. The front pressing roller is connected to the third driving motor through a belt drive, and the rear pressing roller is connected to the second driving motor through a belt drive. The dough placing table is arranged at one end of the surface of the segmented dough mixer base body.
[0006] In a further embodiment, the first drive motor is connected to the bucket cover through a motor base, and the motor base is configured as a conical structure.
[0007] In a further embodiment, the stirring paddle is connected to the middle of the stirring shaft through an assembly sleeve, and the assembly sleeve and the stirring shaft are fixedly connected by an internal hexagonal fixing bolt. The bottom end of the stirring paddle is connected to the dough mixing bucket through a positioning bayonet and a positioning block, and the positioning block and the positioning bayonet are rotationally connected.
[0008] In a further embodiment, a sealing cover is provided inside the discharge port, a splash-proof plate is provided at the top of the aggregate chute, the discharge port and the splash-proof plate are connected by inlay, and the inside of the splash-proof plate is configured as a lattice structure.
[0009] In a further embodiment, a fixing plate is provided above the rear end of the front segmented frame, triangular reinforcing plates are provided on both sides of the bottom surface of the fixing plate, and the dough mixing bucket and the fixing plate are fixedly connected by a bracket.
[0010] In a further embodiment, a first guide plate is provided at a position where the lower end of the upper conveyor belt can be connected to the front segmented frame, a second guide plate is provided at a position where the upper end of the upper conveyor belt is connected to the rear segmented frame, and both the first guide plate and the second guide plate are configured as inclined structures.
[0011] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0012] 1. In this utility model, the front segmented frame is arranged below the dough mixing bucket. The flour can be stirred into a flocculent structure by the dough mixing bucket, and then evenly conveyed downward. The flocculent flour can be rolled into a cake by the front rolling roller in the front segmented frame and processed into a long section, saving processing procedures. Compared with the previous method of kneading dough into a dough, this method is more convenient for conveying and segmented processing. The flocculent structure is easier to convey, and there will be no phenomenon of material blockage or material breakage, making the conveying smoother, thereby improving the dough mixing rate and being easier to operate. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 is a schematic structural diagram of a segmented dough mixer of the present utility model;
[0014] Figure 2 is a schematic internal structure diagram of the dough mixing bucket of the present utility model;
[0015] Figure 3 is a side view of a segmented dough mixer of the present utility model;
[0016] Figure 4 is a top view of the splash-proof plate of the present utility model;
[0017] Figure 5 This is the rear view of a segmented dough mixer of the present utility model.
[0018] In the figure: 1. First driving motor; 2. Motor base; 3. Water injection port; 4. Feed inlet; 5. Bucket cover; 6. Dough mixing bucket; 7. Bracket; 8. Fixed plate; 9. Triangular reinforcement plate; 10. Aggregate trough; 11. Front segmented frame; 12. Front dough pressing roller; 13. First guide plate; 14. Upper conveyor belt; 15. Rear segmented frame; 16. Second guide plate; 17. Rear dough pressing roller; 18. Lower conveyor belt; 19. Fixed conveyor belt; 20. Distribution box; 21. Second driving motor; 22. Third driving motor; 23. Segmented dough mixer base body; 24. Dough placing table; 25. Stirring shaft; 26. Anti-overflow stirring rod; 27. Assembly sleeve; 28. Hexagon socket head cap screw; 29. Stirring paddle; 30. Dough scraping rod; 31. Positioning block; 32. Positioning bayonet; 33. Discharge port; 34. Sealing cover; 35. Splash guard. Specific embodiments
[0019] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments.
[0020] Please refer to Figures 1-5, An embodiment provided by the present utility model: A segmented dough mixer, including a segmented dough mixer base 23. The interior of the segmented dough mixer base 23 consists of a dough mixing bucket 6, a front segmented frame 11, a rear segmented frame 15, and a dough placing table 24. A stirring shaft 25 is provided inside the dough mixing bucket 6. The top end of the stirring shaft 25 is connected to a first driving motor 1. An anti-overflow stirring rod 26, a stirring paddle 29, and a scraping rod 30 are sequentially arranged on the stirring shaft 25. A bucket cover 5 is provided at the upper end of the dough mixing bucket 6. The first driving motor 1 and the bucket cover 5 are connected through a motor base 2, and the motor base 2 is provided in a conical structure. The first driving motor 1 is installed and fixed through the motor base 2. Water injection ports 3 and feed ports 4 are respectively provided on both sides above the bucket cover 5. A discharge port 33 is provided on one side at the lower end of the dough mixing bucket 6. A front rolling roller 12 is provided above the interior of the front segmented frame 11. An aggregate trough 10 is provided at the top of the front segmented frame 11. An upper conveyor belt 14 is provided between the front segmented frame 11 and the rear segmented frame 15. A rear rolling roller 17 is provided above the interior of the rear segmented frame 15. A lower conveyor belt 18 is provided below the rear rolling roller 17. A fixed conveyor belt 19 is provided at the lower end of the lower conveyor belt 18. The fixed conveyor belt 19 is provided above a distribution box 20. A second driving motor 21 and a third driving motor 22 are respectively provided at both ends inside the distribution box 20. The front rolling roller 12 and the third driving motor 22 are connected through belt drive, and the rear rolling roller 17 and the second driving motor 21 are connected through belt drive. The dough placing table 24 is provided at one end of the surface of the segmented dough mixer base 23; The dough mixing bucket 6 is used to stir and mix flour and water. The stirring shaft 25 is used to install and fix the anti-overflow stirring rod 26, the stirring paddle 29, and the scraping rod 30. The anti-overflow stirring rod 26 is used to block the flour and prevent the flour from splashing outwards. The stirring paddle 29 is used to stir the flour and water. The scraping rod 30 is used to scrape and clean the flour adhered to the bottom. The front rolling roller 12 is used to roll the mixed flocculent flour into a cake. The upper conveyor belt 14 is used to convey the rolled dough into the interior of the rear segmented frame 15. The rear rolling roller 17 is used to roll the dough for the second time. The lower conveyor belt 18 conveys the dough onto the fixed conveyor belt 19. The fixed conveyor belt 19 conveys the segmented dough to the dough placing table 24. The dough placing table 24 is used to stack and place the segmented dough.
[0021] The stirring paddle 29 is connected to the middle part of the stirring shaft 25 through an assembly sleeve 27, and the assembly sleeve 27 and the stirring shaft 25 are fixedly connected through an internal hexagon fixing bolt 28. The bottom end of the stirring paddle 29 and the dough mixing bucket 6 are connected through a positioning bayonet 32 and a positioning block 31, and the positioning block 31 and the positioning bayonet 32 are rotationally connected. The assembly sleeve 27 is used to install and fix the stirring paddle 29 and the stirring shaft 25.
[0022] Further, a sealing cover 34 is provided inside the discharge port 33, a splash-proof plate 35 is provided at the top of the aggregate chute 10, and the discharge port 33 is connected to the splash-proof plate 35 by inlay. The inside of the splash-proof plate 35 is of a grid structure. The discharge port 33 is sealed by the sealing cover 34, and the aggregate chute 10 is sealed by the splash-proof plate 35 to prevent the flour from splashing outwards.
[0023] Above the rear end of the front segmented frame 11, a fixing plate 8 is provided. On both sides of the bottom surface of the fixing plate 8, triangular reinforcing plates 9 are provided. The dough mixing barrel 6 is fixedly connected to the fixing plate 8 through a bracket 7. The bracket 7 is installed and fixed by the fixing plate 8, and the dough mixing barrel 6 is supported and fixed by the bracket 7. At the position where the lower end of the upper conveyor belt 14 can be connected to the front segmented frame 11, a first guiding plate 13 is provided. At the position where the upper end of the upper conveyor belt 14 is connected to the rear segmented frame 15, a second guiding plate 16 is provided. Both the first guiding plate 13 and the second guiding plate 16 are of an inclined structure, and the first guiding plate 13 and the second guiding plate 16 are both used to guide and position the conveying direction of the flour.
[0024] Working principle: During use, flour is poured into the dough mixing barrel 6 through the feed port 4, the required amount of water is injected through the water injection port 3, the first driving motor 1 converts electrical energy into mechanical energy to drive the stirring shaft 25 to rotate, and the flour and water are evenly mixed by the stirring paddle 29 and the anti-overflow stirring rod 26 to form a flocculent structure. The sealing cover 34 is opened, and the flocculent flour is conveyed into the aggregate chute 10 through the discharge port 33. The third driving motor 22 drives the front pressing roller 12 to rotate inwards, and the flocculent flour is rolled into a cake by the front pressing roller 12 to form a long section. The long section is conveyed upwards by the upper conveyor belt 14. The second driving motor 21 drives the rear pressing roller 17 to rotate inwards, and the rear pressing roller 17 performs secondary rolling. It is conveyed downwards by the lower conveyor belt 18 onto the fixed conveyor belt 19, and the dough rolled into a long section by the fixed conveyor belt 19 is stacked on the dough placing table 24.
[0025] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or basic characteristics of the present invention. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present invention. Any reference signs in the claims should not be regarded as limiting the claimed rights.
Claims
1. A segmented dough mixer, comprising a segmented dough mixer base body (23), characterized in that: The interior of the segmented dough kneading machine base body (23) is composed of a dough kneading and stirring barrel (6), a front segmented frame (11), a rear segmented frame (15), and a dough placing table (24). Inside the dough kneading and stirring barrel (6), there is a stirring shaft (25). The top end of the stirring shaft (25) is connected to a first driving motor (1). On the stirring shaft (25), there are successively an anti-overflow stirring rod (26), a stirring paddle (29), and a dough scraping rod (30). At the upper end of the dough kneading and stirring barrel (6), there is a barrel cover (5). On both sides above the barrel cover (5), there are respectively a water injection port (3) and a feeding port (4). On one side at the lower end of the dough kneading and stirring barrel (6), there is a discharge port (33). Above the interior of the front segmented frame (11), there is a front dough pressing roller (12). At the top of the front segmented frame (11), there is an aggregate trough (10). Between the front segmented frame (11) and the rear segmented frame (15), there is an upper conveyor belt (14). Above the interior of the rear segmented frame (15), there is a rear dough pressing roller (17). Below the rear dough pressing roller (17), there is a lower conveyor belt (18). At the lower end of the lower conveyor belt (18), there is a fixed conveyor belt (19). The fixed conveyor belt (19) is arranged above a distribution box (20). At both ends inside the distribution box (20), there are respectively a second driving motor (21) and a third driving motor (22). The front dough pressing roller (12) is connected to the third driving motor (22) through belt transmission, and the rear dough pressing roller (17) is connected to the second driving motor (21) through belt transmission. The dough placing table (24) is arranged at one end of the surface of the segmented dough kneading machine base body (23).
2. The sectional dough mixer according to claim 1, characterized in that: Between the first driving motor (1) and the barrel cover (5), there is a connection through a motor base (2), and the motor base (2) is set as a conical structure.
3. A segmented dough mixer according to claim 1, characterized in that: The stirring paddle (29) is connected to the middle part of the stirring shaft (25) through an assembly sleeve (27), and the assembly sleeve (27) is fixedly connected to the stirring shaft (25) through an internal hexagonal fixing bolt (28). The bottom end of the stirring paddle (29) is connected to the dough kneading and stirring barrel (6) through a positioning bayonet (32) and a positioning block (31), and the positioning block (31) is rotationally connected to the positioning bayonet (32).
4. A segmented dough mixer according to claim 1, characterized in that: Inside the discharge port (33), there is a sealing cover (34). At the top of the aggregate trough (10), there is a splash-proof plate (35). The discharge port (33) is connected to the splash-proof plate (35) through inlay connection, and the interior of the splash-proof plate (35) is set as a lattice structure.
5. A segmented dough mixer according to claim 1, characterized in that: Above the rear end of the front segmented frame (11), there is a fixing plate (8). On both sides of the bottom surface of the fixing plate (8), there are triangular reinforcement plates (9). The dough kneading and stirring barrel (6) is fixedly connected to the fixing plate (8) through a bracket (7).
6. A segmented dough mixer according to claim 1, characterized in that: At the position where the lower end of the upper conveyor belt (14) can be connected to the front segmented frame (11), there is a first guiding plate (13). At the position where the upper end of the upper conveyor belt (14) is connected to the rear segmented frame (15), there is a second guiding plate (16). Both the first guiding plate (13) and the second guiding plate (16) are set as inclined structures.