Biscuit dough production apparatus
Patent Information
- Application Number
- CN202522146527.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-10
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2035-10-10
AI Technical Summary
[0003]本实用新型所要解决的技术问题在于:提供一种饼干面料生产设备,它解决了现有技术中在出料过程中,极易出现面料附着在出料管内壁的情况,随着生产的持续进行,附着的面料会不断累积,可能造成出料管堵塞,工作人员需停机对出料管进行清理,降低整体生产效率的问题
[0011]本实用新型进一步设置为:调节板上固定设置有两块导向板,两块导向板之间存在导向间隙,推动杆与导向间隙滑动连接。
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Figure CN224805784U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a biscuit dough production equipment, belonging to the field of food processing technology. Background Technology
[0002] In the food processing industry, biscuit production involves multiple intricate processes, and the preparation and conveying of biscuit dough is a crucial step. Currently, most biscuit dough production equipment on the market, after mixing the dough, conveys it to the next production stage via a discharge pipe. However, due to the dough's strong adhesiveness, it easily adheres to the inner wall of the discharge pipe during the discharge process. As production continues, this adhered dough accumulates, reducing overall production efficiency. Utility Model Content
[0003] The technical problem to be solved by this utility model is to provide a biscuit fabric production equipment, which solves the problem in the prior art that fabric is very likely to adhere to the inner wall of the discharge pipe during the discharge process. As production continues, the adhered fabric will continue to accumulate, which may cause blockage of the discharge pipe. The operator needs to stop the machine to clean the discharge pipe, which reduces the overall production efficiency.
[0004] The technical problem to be solved by this utility model is achieved by the following technical solution: A biscuit fabric production equipment includes a mixing box, an inlet pipe and an outlet pipe connected to the mixing box, a sealing structure for sealing the outlet pipe, a rotating shaft on the mixing box, a driving structure for driving the rotating shaft on the mixing box, the rotating shaft extending to the other end of the mixing box, an adjusting plate on one side of the mixing box, a main gear rotatably mounted on the adjusting plate, a positioning block fixedly mounted at the end of the main gear away from the adjusting plate, a positioning groove opened at one end of the rotating shaft, the positioning block being able to be inserted into the positioning groove, an adjusting structure for moving the position of the adjusting plate on the mixing box, a vibrating ball on one side of the adjusting plate, a vibrating plate fixedly mounted on the outlet pipe, and a pushing structure for pushing the vibrating ball to abut against the vibrating plate on the adjusting plate.
[0005] By adopting the above technical solution, the fabric to be mixed is first conveyed into the mixing box through the feed pipe. The fabric is then mixed by the rotating shaft under the action of the drive structure. After mixing, the adjusting structure moves the adjusting plate, which, under the action of the main gear, pushes the positioning block towards the positioning groove, allowing the positioning block to insert into the groove and completing the connection between the main gear and the rotating shaft. Then, the sealing structure removes the seal on the discharge pipe, allowing the mixed fabric to be discharged through the discharge pipe to the outside of the mixing box. Subsequently, the drive structure again moves the rotating shaft, which, in conjunction with the positioning block and the positioning groove, synchronously drives the main gear. The main gear, under the action of the push structure, pushes the vibrating ball towards the vibrating plate, causing the vibrating ball to contact the vibrating plate and generate vibration. This vibration is transmitted to the discharge pipe through the vibrating plate, effectively preventing fabric from adhering to the inner wall of the discharge pipe, causing any adhering fabric to fall off, keeping the discharge pipe unobstructed, ensuring continuous production, avoiding downtime for cleaning due to blockages, and improving production efficiency.
[0006] The present invention is further configured such that: the driving structure includes a motor, stirring rods and a baffle; the motor is fixedly mounted on the mixing box; the rotating shaft is poweredly connected to the motor; a plurality of stirring rods are provided and fixedly mounted on the rotating shaft; the baffle is fixedly mounted on the rotating shaft and rotatably connected to the mixing box.
[0007] By adopting the above technical solution, the motor is started to drive the rotating shaft to move, so that the rotating shaft drives the stirring rod to stir and mix the fabric inside the mixing box. When the rotating shaft rotates, it will also drive the baffle to move synchronously.
[0008] The present invention is further configured such that: the sealing structure includes a mounting block, a mounting groove, a sealing plate, an extension plate and a handle; the mounting block is fixedly mounted on the discharge pipe; the mounting groove is opened on the mounting block and communicates with the discharge pipe; the sealing plate is slidably mounted inside the mounting groove; one side of the sealing plate can abut against the inner wall of the discharge pipe; the extension plate is fixedly mounted on the side of the sealing plate away from the discharge pipe; the side of the extension plate away from the sealing plate extends to the outside of the mounting block and is fixedly connected to the handle.
[0009] The present invention is further configured such that: the adjustment structure includes a connecting plate, an adjusting rod and a rotating block, the connecting plate is fixedly mounted on the adjusting plate, the adjusting rod is threaded onto the connecting plate, one end of the adjusting rod extends to the top of the mixing box and is rotatably connected to the mixing box, and the other end of the adjusting rod extends to the outside of the connecting plate away from the mixing box and is fixedly connected to the rotating block.
[0010] The present invention is further configured such that: the pushing structure includes a driven gear, a hinge sleeve, a hinge rod, a push rod, and a connecting block; the driven gear is rotatably mounted on the adjusting plate and meshes with the main gear; the hinge sleeve is fixedly mounted on the driven gear; the push rod is mounted on one side of the hinge sleeve; the hinge rod is mounted between the push rod and the hinge sleeve; both ends of the hinge rod are hinged to the push rod and the hinge sleeve, respectively; the connecting block is fixedly mounted on the push rod on the side away from the hinge rod; and the vibrating ball is fixedly mounted on the connecting block.
[0011] The present invention is further configured such that: two guide plates are fixedly installed on the adjustment plate, and there is a guide gap between the two guide plates, and the push rod is slidably connected to the guide gap.
[0012] The beneficial effects of this utility model are as follows: First, the fabric to be mixed is conveyed into the mixing box through the feed pipe. The fabric is mixed by the rotating shaft under the action of the drive structure. After the fabric is mixed, the adjusting structure drives the adjusting plate to move. Under the action of the main gear, the adjusting plate pushes the positioning block to move towards the positioning groove, so that the positioning block is inserted into the positioning groove, completing the connection between the main gear and the rotating shaft. Then, the sealing structure removes the seal on the discharge pipe. At this time, the mixed fabric will be discharged to the outside of the mixing box through the discharge pipe. Subsequently, the driving structure drives the rotating shaft to move again. Under the cooperation of the positioning block and the positioning groove, the rotating shaft drives the main gear to move synchronously. Under the action of the pushing structure, the main gear pushes the vibrating ball towards the vibrating plate, so that the vibrating ball comes into contact with the vibrating plate and generates vibration. The vibration is transmitted to the discharge pipe through the vibrating plate, which can effectively prevent the fabric from adhering to the inner wall of the discharge pipe, causing the adhered fabric to fall off, keeping the discharge pipe unobstructed, ensuring the continuity of production, avoiding downtime for cleaning due to blockage, and improving production efficiency. Attached Figure Description
[0013] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0014] Figure 2 This is a cross-sectional structural diagram of the present invention;
[0015] Figure 3 This is a schematic diagram of the explosive structure of the propulsion structure of this utility model;
[0016] Figure 4 This is a partial structural schematic diagram of the present invention.
[0017] In the diagram: 1. Mixing box; 2. Feed pipe; 3. Discharge pipe; 4. Rotating shaft; 5. Adjusting plate; 6. Main gear; 7. Positioning block; 8. Positioning groove; 9. Vibrating ball; 10. Vibrating plate; 1011. Motor; 1012. Stirring rod; 1013. Baffle; 1021. Mounting block; 1022. Mounting groove; 1023. Sealing plate; 1025. Extension plate; 1026. Handle; 1031. Connecting plate; 1032. Adjusting rod; 1033. Rotating block; 1041. Driven gear; 1042. Hinge sleeve; 1043. Hinge rod; 1044. Push rod; 1045. Connecting block; 1051. Guide plate; 1052. Guide clearance. Detailed Implementation
[0018] To facilitate a clear understanding of the technical means, creative features, objectives, and effects of this utility model, the following description, in conjunction with specific illustrations, further elaborates on this utility model.
[0019] like Figures 1 to 4 As shown, a biscuit dough production device includes a mixing chamber 1. The inner wall of the mixing chamber 1 is inclined to reduce the accumulation of dough in corners inside the mixing chamber 1. An inlet pipe 2 and an outlet pipe 3 are connected to the mixing chamber 1. The inner wall of the outlet pipe 3 is rectangular. The mixing chamber 1 is equipped with a sealing structure for sealing the outlet pipe 3. A rotating shaft 4 is provided on the mixing chamber 1, and a driving structure for driving the rotating shaft 4 is provided on the mixing chamber 1. The rotating shaft 4 extends to the other end of the mixing chamber 1. An adjusting plate 5 is provided on one side of the mixing chamber 1, and a main gear 6 is rotatably mounted on the adjusting plate 5. A positioning block 7 is fixedly mounted on the end of the main gear 6 away from the adjusting plate 5. The positioning block 7 is shaped like a cross. The mixing chamber 1 is equipped with an adjustment structure for moving the position of the adjustment plate 5. A vibrating ball 9 is provided on one side of the adjustment plate 5. The vibrating ball 9 is elastic. A vibrating plate 10 is fixedly provided on the discharge pipe 3. The vibration of the vibrating ball 9 is transmitted to the discharge pipe 3 through the vibrating plate 10. The adjustment plate 5 is equipped with a pushing structure for pushing the vibrating ball 9 to abut against the vibrating plate 10.
[0020] like Figure 2As shown in the figure, the drive structure includes a motor 1011, stirring rods 1012, and baffles 1013. The motor 1011 is fixedly mounted on the mixing chamber 1 and is connected to an external power source to provide power to the motor 1011. The rotating shaft 4 is connected to the motor 1011. Several stirring rods 1012 are provided and fixedly mounted on the rotating shaft 4. The stirring rods 1012 are arranged in a linear array along the axial direction of the rotating shaft 4. The stirring rods 1012 are used to mix the fabric. The baffles 1013 are fixedly mounted on the rotating shaft 4 and are rotatably connected to the mixing chamber 1. The baffles 1013 are used to seal the gap between the rotating shaft 4 and the mixing chamber 1 to prevent the fabric from leaking during mixing.
[0021] like Figure 4 As shown, the sealing structure includes a mounting block 1021, a mounting groove 1022, a sealing plate 1023, an extension plate 1025, and a handle 1026. The mounting block 1021 is fixedly mounted on the discharge pipe 3. The mounting groove 1022 is formed on the mounting block 1021 and communicates with the discharge pipe 3. The mounting groove 1022 is formed radially along the discharge pipe 3. The sealing plate 1023 is slidably disposed inside the mounting groove 1022. The sealing plate 1023 can slide along the forming direction of the mounting groove 1022. One side of the sealing plate 1023 can abut against the inner wall of the discharge pipe 3. The sealing plate 1023 is used to seal the discharge pipe 3. After the sealing plate 1023 abuts against the inner wall of the discharge pipe 3, the discharge pipe 3 is in a sealed state. After the sealing plate 1023 separates from the inner wall of the discharge pipe 3, the discharge pipe 3 is in an open state. At this time, the sealing plate 1023 and the side away from the discharge pipe 3 abut against the inner wall of the mounting groove 1022. When the discharge pipe 3 is in an open state, the sealing plate 1023 will not completely separate from the discharge pipe 3 to avoid fabric leakage. The extension plate 1025 is fixedly installed on the side of the sealing plate 1023 away from the discharge pipe 3. The side of the extension plate 1025 away from the sealing plate 1023 extends to the outside of the mounting block 1021 and is fixedly connected to the handle 1026.
[0022] like Figure 3 and Figure 4 As shown, the adjustment structure includes a connecting plate 1031, an adjusting rod 1032, and a rotating block 1033. The connecting plate 1031 is fixedly mounted on the adjustment plate 5. There are two connecting plates 1031, which are respectively fixedly mounted on opposite sides of the adjustment plate 5. The adjusting rod 1032 is threaded onto the connecting plate 1031. One end of the adjusting rod 1032 extends to the top of the mixing box 1 and is rotatably connected to the mixing box 1. The other end of the adjusting rod 1032 extends to the outside of the connecting plate 1031 away from the mixing box 1 and is fixedly connected to the rotating block 1033.
[0023] like Figure 3As shown, the pushing structure includes a driven gear 1041, a hinge sleeve 1042, a hinge rod 1043, a push rod 1044, and a connecting block 1045. The driven gear 1041 is rotatably mounted on the adjusting plate 5. There are two driven gears 1041, which are arranged opposite each other on the adjusting plate 5. Both driven gears 1041 mesh with the main gear 6. The hinge sleeve 1042 is eccentrically fixed on the driven gear 1041. The push rod 1044 is located on one side of the hinge sleeve 1042. The hinge rod 1043 is located between the push rod 1044 and the hinge sleeve 1042. The two ends of the hinge rod 1043 are hinged to the push rod 1044 and the hinge sleeve 1042, respectively. The connecting block 1045 is fixedly mounted on the push rod 1044 on the side away from the hinge rod 1043. The vibrating ball 9 is fixedly mounted on the connecting block 1045.
[0024] like Figure 3 and Figure 4 As shown, two guide plates 1051 are fixedly installed on the adjusting plate 5, and there is a guide gap 1052 between the two guide plates 1051. The push rod 1044 is slidably connected to the guide gap 1052.
[0025] First, the fabric to be mixed is fed into the mixing box 1 through the feed pipe 2. The motor 1011 is started to drive the rotating shaft 4 to move, so that the rotating shaft 4 drives the stirring rod 1012 to stir and mix the fabric inside the mixing box 1. When the rotating shaft 4 rotates, it will also drive the baffle 1013 to move synchronously.
[0026] After the fabric is mixed, the adjusting rod 1032 is rotated by the rotating block 1033. The adjusting rod 1032 moves the adjusting plate 5 under the action of the thread structure. During the movement, the adjusting plate 5 drives the main gear 6 and the positioning block 7 to move towards the positioning groove 8, so that the positioning block 7 is inserted into the interior of the positioning groove 8, and the connection between the main gear 6 and the rotating shaft 4 is completed.
[0027] Pulling the handle 1026 moves the extension plate 1025. During the movement, the extension plate 1025 moves the sealing plate 1023 away from the discharge pipe 3 in the mounting groove 1022, causing the sealing plate 1023 to separate from the inner wall of the discharge pipe 3. At this time, the mixed fabric will be discharged to the outside of the mixing box 1 through the discharge pipe 3.
[0028] The motor 1011 drives the rotating shaft 4 to move. The rotating shaft 4, in conjunction with the positioning block 7 and the positioning groove 8, synchronously drives the main gear 6 to move. The main gear 6, through meshing, drives the driven gear 1041 to rotate. During rotation, the driven gear 1041 drives the hinge sleeve 1042 to rotate. Since the two ends of the hinge rod 1043 are hinged to the hinge sleeve 1042 and the push rod 1044 respectively, the driven gear 1041, under the hinged action of the hinge sleeve 1042 and the hinge rod 1043, drives... The push rod 1044 slides in the guide gap 1052. During the sliding process, the push rod 1044 pushes the connecting block 1045 to move, causing the connecting block 1045 to push the vibrating ball 9 towards the vibrating plate 10. This causes the vibrating ball 9 to come into contact with the vibrating plate 10 and generate vibration. The vibration is transmitted to the discharge pipe 3 through the vibrating plate 10, which can effectively prevent the fabric from adhering to the inner wall of the discharge pipe 3, causing the adhered fabric to fall off, keeping the discharge pipe 3 unobstructed, ensuring the continuity of production, avoiding downtime for cleaning due to blockage, and improving production efficiency.
[0029] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments, and various changes and modifications can be made without departing from the spirit and scope of this utility model. All such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A biscuit dough production equipment, characterized in that: The system includes a mixing chamber (1), on which an inlet pipe (2) and an outlet pipe (3) are connected. The mixing chamber (1) has a sealing structure for sealing the outlet pipe (3). A rotating shaft (4) is mounted on the mixing chamber (1), and a driving structure for driving the rotating shaft (4) is also mounted on the mixing chamber (1). The rotating shaft (4) extends through to the other end of the mixing chamber (1). An adjusting plate (5) is mounted on one side of the mixing chamber (1), and a main gear (6) is rotatably mounted on the adjusting plate (5). A positioning block (7) is fixedly provided at the end of the gear (6) away from the adjusting plate (5). A positioning groove (8) is provided at one end of the rotating shaft (4). The positioning block (7) can be inserted into the positioning groove (8). An adjusting structure for moving the position of the adjusting plate (5) is provided on the mixing box (1). A vibrating ball (9) is provided on one side of the adjusting plate (5). A vibrating plate (10) is fixedly provided on the discharge pipe (3). A pushing structure for pushing the vibrating ball (9) to abut against the vibrating plate (10) is provided on the adjusting plate (5).
2. The biscuit dough production equipment according to claim 1, characterized in that: The drive structure includes a motor (1011), a stirring rod (1012), and a baffle (1013). The motor (1011) is fixedly mounted on the mixing tank (1), and the rotating shaft (4) is poweredly connected to the motor (1011). Several stirring rods (1012) are provided, and several stirring rods (1012) are fixedly mounted on the rotating shaft (4). The baffle (1013) is fixedly mounted on the rotating shaft (4) and is rotatably connected to the mixing tank (1).
3. The biscuit dough production equipment according to claim 1, characterized in that: The sealing structure includes a mounting block (1021), a mounting groove (1022), a sealing plate (1023), an extension plate (1025), and a handle (1026). The mounting block (1021) is fixedly mounted on the discharge pipe (3). The mounting groove (1022) is opened on the mounting block (1021) and communicates with the discharge pipe (3). The sealing plate (1023) is slidably mounted inside the mounting groove (1022). One side of the sealing plate (1023) can abut against the inner wall of the discharge pipe (3). The extension plate (1025) is fixedly mounted on the side of the sealing plate (1023) away from the discharge pipe (3). The side of the extension plate (1025) away from the sealing plate (1023) extends to the outside of the mounting block (1021) and is fixedly connected to the handle (1026).
4. The biscuit dough production equipment according to claim 1, characterized in that: The adjustment structure includes a connecting plate (1031), an adjusting rod (1032), and a rotating block (1033). The connecting plate (1031) is fixedly mounted on the adjusting plate (5). The adjusting rod (1032) is threaded onto the connecting plate (1031). One end of the adjusting rod (1032) extends to the top of the mixing box (1) and is rotatably connected to the mixing box (1). The other end of the adjusting rod (1032) extends to the outside of the connecting plate (1031) away from the mixing box (1) and is fixedly connected to the rotating block (1033).
5. The biscuit dough production equipment according to claim 1, characterized in that: The pushing structure includes a driven gear (1041), a hinge sleeve (1042), a hinge rod (1043), a push rod (1044), and a connecting block (1045). The driven gear (1041) is rotatably mounted on the adjusting plate (5) and meshes with the main gear (6). The hinge sleeve (1042) is fixedly mounted on the driven gear (1041), and the push rod (1044) is mounted on the hinge. On one side of the connecting sleeve (1042), the hinge rod (1043) is disposed between the push rod (1044) and the hinge sleeve (1042). The two ends of the hinge rod (1043) are respectively hinged to the push rod (1044) and the hinge sleeve (1042). The connecting block (1045) is fixedly disposed on the push rod (1044) on the side away from the hinge rod (1043). The vibrating ball (9) is fixedly disposed on the connecting block (1045).
6. The biscuit dough production equipment according to claim 5, characterized in that: Two guide plates (1051) are fixedly installed on the adjustment plate (5), and there is a guide gap (1052) between the two guide plates (1051). The push rod (1044) is slidably connected to the guide gap (1052).