Novel self-pressing dough rolling machine

By designing a new self-pressing rolling machine, and using the dough pressing bracket and active roller to automatically press the dough, the problems of high labor intensity and low efficiency caused by manual pressure application by traditional rolling machines are solved, and automatic rolling is achieved, reducing labor intensity and improving efficiency.

CN222941598UActive Publication Date: 2025-06-06LINYI AILIGUAN BAKING APPLIANCE CO LTD
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Patent Information

Application Number
CN202421522638.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-28
Publication Date
2025-06-06
Estimated Expiration
2034-06-28

AI Technical Summary

Technical Problem

Traditional rolling machines require manual pressure application, resulting in high labor intensity, easy fatigue in the hands of workers, and low rolling efficiency.

Method used

A new self-pressing rolling machine is designed, using a pressing support and an active roller to automatically press the dough, cancel the manual pressing process, and realize automatic conveying through the cylinder and belt conveyor.

Benefits of technology

The rolling noodles is achieved without manual pressure applied, which reduces the labor intensity of workers' hands, avoids fatigue, and improves the rolling efficiency.

✦ Generated by Eureka AI based on patent content.

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    Figure CN222941598U_ABST
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Abstract

The utility model discloses a novel self-pressing dough rolling machine which comprises an equipment frame, a bottom plate arranged at the bottom of the equipment frame, an upper plate arranged at the upper part of the equipment frame, two symmetrically distributed triangular mounting frames arranged on the side surface of the upper plate, and a belt conveyor connected with the upper end of the equipment frame through bolts, the tail end of a transmission roller at one end of the belt conveyor is connected with a first driven belt wheel, a driving motor is arranged on the edge of the bottom plate, the output end of the driving motor is connected with a first driving belt wheel and a second driving belt wheel, and a transition support is arranged on the side face of the driving motor and rotationally provided with a first transition belt wheel and a second transition belt wheel through pin shafts. The dough rolling device realizes the functions of rolling dough without manually applying pressure, improving the dough rolling efficiency and reducing the labor intensity.
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Description

Technical Field

[0001] The utility model relates to the technical field of noodle rolling devices, in particular to a novel self-pressing noodle rolling machine. Background Art

[0002] The production of bread requires many processes before it can be baked, including rolling the dough. After the dough is kneaded, the dough must be divided into dough pieces, which are rolled into pancakes for transportation, so as to facilitate subsequent processes such as wrapping with oil and folding. The traditional way of rolling the dough is to roll it manually, which is inefficient and labor-intensive. In the prior art, technicians have invented a rolling machine, but ordinary rolling machines still require manual pressure on the dough, so that the dough is pressed and transported by rollers at the beginning. Long-term work puts a lot of pressure on the workers' hands and they are prone to fatigue.

[0003] Therefore, designing a noodle rolling machine that does not require manual pressure to roll noodles, improves noodle rolling efficiency and reduces labor intensity, is exactly the problem that the inventor wants to solve. Utility Model Content

[0004] In view of the deficiencies in the prior art, the purpose of the utility model is to provide a novel self-pressing noodle rolling machine that can achieve the function of rolling noodles without manual pressure application, thereby improving the efficiency of rolling noodles and reducing labor intensity.

[0005] The technical solution adopted by the utility model device is: a new type of self-pressing noodle rolling machine, which includes an equipment frame, a bottom plate is arranged at the bottom of the equipment frame, an upper plate is arranged at the upper part of the equipment frame, and two symmetrically distributed triangular mounting frames are arranged on the side of the upper plate, and a belt conveyor is connected to the upper end of the equipment frame by bolts, and the end of the transmission roller at one end of the belt conveyor is connected to the first driven pulley, and an active motor is arranged at the edge of the bottom plate, and the output end of the active motor is connected to the first active pulley and the second active pulley, and a transition bracket is arranged on the side of the active motor, and the transition bracket is rotatably provided with the first transition pulley and the second transition pulley through a pin shaft, and two symmetrically arranged first bracket vertical plates are connected at both ends of the frame of the belt conveyor by bolts, and an active roller is rotatably provided between the two first bracket vertical plates through a bearing, and the outer side of one end of the active roller is connected to the second driven gear, and the frame of the belt conveyor The two ends of the two second vertical plate brackets are connected by bolts, and the second vertical plate bracket is provided with a strip hole, and a second pressure roller is rotatably arranged between the two second vertical plate brackets through an adjusting shaft, and the outer side of the end of the adjusting shaft is threadedly connected to the first nut and the second nut, and the edge of the upper plate is provided with two symmetrically distributed second cylinders, the output end of the second cylinder is connected to a connecting piece, and the first pressure roller is rotatably arranged on the inner side of the two connecting pieces, and the edge of the triangular mounting frame is connected to the first cylinder through a hinge seat and a pin hinge, and the output end of the first cylinder is hinged to the pressing surface bracket through a pin hinge, and the tail of the pressing surface bracket is hingedly connected to the frame side wall of the belt conveyor through the pin, the first driving pulley is connected to the first driven pulley through the first transmission belt, the second driving pulley is connected to the first transition pulley through the transition transmission belt, and the second transition pulley is connected to the second driven pulley through the second transmission belt.

[0006] Furthermore, the pressing surface bracket includes an upper end plate, both ends of the upper end plate are connected to downwardly folded side plates, the tails of the side plates and the upper end plate are connected to a flip plate, and an axial hole for passing a pin shaft is opened on the flip plate.

[0007] Furthermore, the first cylinder is connected to an external air source via a first two-position five-way reversing valve, and the first two-position five-way reversing valve is electrically connected to a foot control switch.

[0008] Furthermore, the second cylinder is connected to an external air source via a second two-position five-way reversing valve, the second two-position five-way reversing valve is electrically connected to a controller via a wire, and the controller is electrically connected to the active motor via a wire.

[0009] Furthermore, both ends of the adjustment shaft are locked with the second vertical plate bracket through a first nut, the first nut is locked by a second nut, and the adjustment shaft and the second pressure roller are rotatably arranged.

[0010] Furthermore, the end of the dough pressing support does not contact the active roller.

[0011] Furthermore, the first driving pulley, the second driving pulley, the first transition pulley and the second transition pulley have the same outer diameter, the first driven pulley and the second driven pulley have outer diameters greater than the first driving pulley, and the second driven pulley has an outer diameter greater than the first driven pulley.

[0012] Furthermore, the first nut and the second nut are both connected with a handle.

[0013] The beneficial effects of the utility model device are:

[0014] 1. The utility model adopts the cooperation of the dough pressing bracket and the active roller to automatically press the dough and roll it into a pancake, eliminating the manual pressing process, reducing the labor intensity of the workers' hands and avoiding fatigue, and realizing the function of rolling the dough without manual pressure application, thereby improving the rolling efficiency and reducing the labor intensity. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a structural view of the utility model.

[0016] Explanation of the reference numerals: 1-equipment frame; 2-bottom plate; 3-upper plate; 4-belt conveyor; 5-second pressure roller; 6-first nut; 7-second vertical plate bracket; 8-second nut; 9-adjusting shaft; 10-first pressure roller; 11-second cylinder; 12-driving roller; 13-second driven pulley; 14-first bracket vertical plate; 15-second transmission belt; 16-pressing surface bracket; 17-first cylinder; 18-first driven pulley; 19-first transmission belt; 20-driving motor; 21-first driving pulley; 22-first transition pulley; 23-second transition pulley; 24-transition bracket; 25-triangular mounting frame. DETAILED DESCRIPTION

[0017] The following is a further description of the present invention in conjunction with specific embodiments. These embodiments are only used to illustrate the present invention and are not used to limit the scope of the present invention. In addition, it should be understood that after reading the content of the present invention, those skilled in the art can make various changes or modifications to the present invention, and these equivalent forms also fall within the scope defined by the claims attached to the application.

[0018] See also Figure 1 This is a structural view of the utility model, a novel self-pressing noodle rolling machine, which includes an equipment frame 1, a bottom plate 2 is arranged at the bottom of the equipment frame 1, an upper plate 3 is arranged on the upper part of the equipment frame 1, and two symmetrically distributed triangular mounting frames 25 are arranged on the side of the upper plate 3, and the bottom plate 2, the upper plate 3 and the triangular mounting frames 25 all extend from the side of the frame column range.

[0019] The upper end of the equipment frame 1 is connected to a belt conveyor 4 by bolts. The output end of the belt conveyor 4 is higher than the input end. The end of the drive roller at one end of the belt conveyor 4 is connected to a first driven pulley 18. The belt conveyor 4 is used to provide power to the dough and transport the dough and the dough. An active motor 20 is arranged at the edge of the bottom plate 2. The output end of the active motor 20 is connected to a first active pulley 21 and a second active pulley. The active motor 20 is used to provide power to the device. A transition bracket 24 is arranged on the side of the active motor 20. The transition bracket 24 is provided with a first transition pulley 22 and a second transition pulley 23 through a pin shaft. The first transition pulley 22 and the second transition pulley 23 are used for intermediate transmission.

[0020] Two symmetrically arranged first bracket uprights 14 are connected by bolts at both ends of the frame of the belt conveyor 4. An active roller 12 is rotatably arranged between the two first bracket uprights 14 through a bearing. A second driven gear is connected to the outer side of one end of the active roller 12. The active roller 12 is used to cooperate with the belt conveyor 4 to press and pull dough and pancakes under the drive of the active motor 20. Two symmetrically arranged second upright brackets 7 are connected by bolts at both ends of the frame of the belt conveyor 4. Strip holes are opened on the second upright brackets 7. A second pressing roller 5 is rotatably arranged between the two second upright brackets 7 through an adjusting shaft 9. The outer side of the end of the adjusting shaft 9 is threadedly connected with a first nut 6 and a second nut 8. Both ends of the adjusting shaft 9 are locked with the second upright bracket 7 by the first nut 6. The first nut 6 is locked by the second nut 8. The adjusting shaft 9 and the second pressing roller 5 are rotatably arranged. By locking and loosening the first nut 6 and the second nut 8, the position of the adjusting shaft 9 relative to the second upright bracket 7 can be adjusted along the strip hole, thereby adjusting the distance of the second pressing roller 5 relative to the conveying belt on the belt conveyor 4.

[0021] Two symmetrically distributed second cylinders 11 are arranged at the edge of the upper plate 3, and the output end of the second cylinder 11 is connected to a connecting piece, and the first pressure roller 10 is rotatably arranged inside the two connecting pieces. By supplying air to the second cylinder 11, the stored air in the second cylinder 11 can be controlled to apply a downward force to the first pressure roller 10. At the same time, due to the characteristics of the cylinder, the downward force can have an elastic adjustment space.

[0022] The edge of the triangular mounting frame 25 is hingedly connected to the first cylinder 17 through a hinge seat and a pin shaft, and the output end of the first cylinder 17 is hingedly connected to the dough pressing bracket 16 through a pin shaft, and the tail end of the dough pressing bracket 16 is hingedly connected to the frame side wall of the belt conveyor 4 through a pin shaft, and the tail end of the dough pressing bracket 16 does not contact the conveyor belt. Driven by the first cylinder 17, the dough pressing bracket 16 will turn over and press down for a certain period of time, so that the dough can be smoothly pressed by the active roller 12 at the beginning and rolled in and pulled smoothly below, thereby eliminating the step of manually pressing the dough and pulling it.

[0023] The first driving pulley 21 is connected to the first driven pulley 18 through the first transmission belt 19, the second driving pulley is connected to the first transition pulley 22 through the transition transmission belt, and the second transition pulley 23 is connected to the second driven pulley 13 through the second transmission belt 15. When the driving motor 20 rotates, it transmits power to the first driven pulley 18 and the first transition pulley 22 at the same time. The first transition pulley 22 and the second transition pulley 23 are coaxially connected, and power is transmitted to the second driven pulley 13 through the second transition pulley 23.

[0024] The dough pressing support 16 includes an upper end plate, both ends of which are connected to downwardly folded side plates, the tails of the side plates and the upper end plate are connected to a flip plate, and an axial hole for passing the pin shaft is opened on the flip plate. The side plate can effectively prevent the dough from excessively expanding to both sides when it is pressed. When the belt conveyor 4 transports the dough forward, it is turned down clockwise under the drive of the first cylinder 17 to prevent the dough from sliding backward, and the end of the dough pressing support 16 does not contact the active roller 12.

[0025] The first cylinder 17 is connected to an external air source via a first two-position five-way reversing valve, and the first two-position five-way reversing valve is electrically connected to a foot control switch, and the movement of the first cylinder 17 can be controlled by the foot control switch.

[0026] The second cylinder 11 is connected to an external air source via a second two-position five-way reversing valve, the second two-position five-way reversing valve is electrically connected to a controller via a wire, and the controller is electrically connected to the active motor 20 via a wire.

[0027] The first two-position five-way directional control valve may also be electrically connected to the controller and controlled uniformly by the controller.

[0028] The first driving pulley 21 , the second driving pulley, the first transition pulley 22 , and the second transition pulley 23 have the same outer diameters, the first driven pulley 18 and the second driven pulley 13 have outer diameters greater than the first driving pulley 21 , and the outer diameter of the second driven pulley 13 is greater than the outer diameter of the first driven pulley 18 .

[0029] In order to facilitate manual operation of the nuts, the first nut 6 and the second nut 8 are both connected with handles. By holding the handles, tools are eliminated and the tightness of the nuts can be directly adjusted.

[0030] After the dough is placed on the belt conveyor 4, the first cylinder 17 contracts and flips the dough pressing bracket 16 downward to press the dough, so that the dough smoothly enters the bottom of the active roller 12 to be flattened and pulled for transportation. The dough pressed by the active roller 12 continues to be conveyed, and is pressed by the first pressing roller 10 and the second pressing roller 5 in turn to form a qualified dough cake and continue to be conveyed. During this process, the first pressing roller 10 will adaptively adjust its position according to the resistance it encounters, while the second pressing roller 5 needs to be manually adjusted and locked.

[0031] The utility model adopts the cooperation of the dough pressing bracket 16 and the active roller 12 to automatically press the dough into a pancake, eliminating the manual pressing process, reducing the labor intensity of the workers' hands and avoiding fatigue, and realizing the function of rolling the dough without manually applying pressure, thereby improving the rolling efficiency and reducing the labor intensity.

Claims

1. A new type of self-pressing noodle rolling machine, characterized by: The invention comprises an equipment frame (1), wherein a bottom plate (2) is arranged at the bottom of the equipment frame (1), an upper plate (3) is arranged at the top of the equipment frame (1), two symmetrically distributed triangular mounting frames (25) are arranged on the side of the upper plate (3), the upper end of the equipment frame (1) is connected to a belt conveyor (4) by bolts, the end of the transmission roller at one end of the belt conveyor (4) is connected to a first driven pulley (18), an active motor (20) is arranged at the edge of the bottom plate (2), and the output end of the active motor (20) is connected to a first active pulley (21), a first driven pulley (22), a second driven pulley (23), a first driven pulley (24), a first driven pulley (25), a first driven pulley (26), a first driven pulley (27), a first driven pulley (28), a first driven pulley (29), a first driven pulley (21), a first driven pulley (29), a first driven pulley (21), a first driven pulley (22), a first driven pulley (28), a first driven pulley (29), a first driven pulley (21 ... Two driving pulleys, a transition bracket (24) is arranged on the side of the driving motor (20), and the transition bracket (24) is provided with a first transition pulley (22) and a second transition pulley (23) through a pin shaft rotation, and two symmetrically arranged first bracket vertical plates (14) are connected by bolts at both ends of the frame of the belt conveyor (4), and a driving roller (12) is rotatably arranged between the two first bracket vertical plates (14) through a bearing, and one end of the driving roller (12) is connected to the outer side of a second driven gear, and two symmetrically arranged first bracket vertical plates (14) are connected by bolts at both ends of the frame of the belt conveyor (4). A second vertical plate bracket (7) is provided, and a strip hole is opened on the second vertical plate bracket (7). A second pressure roller (5) is rotatably provided between the two second vertical plate brackets (7) via an adjusting shaft (9). The outer side of the end of the adjusting shaft (9) is threadedly connected with a first nut (6) and a second nut (8). Two second cylinders (11) distributed symmetrically are provided at the edge of the upper plate (3). The output end of the second cylinder (11) is connected with a connecting piece. The first pressure roller (10) is rotatably provided inside the two connecting pieces. The edge of the triangular mounting frame (25) is hinged A first cylinder (17) is hingedly connected to a receiving seat and a pin shaft, an output end of the first cylinder (17) is hingedly connected to a dough pressing bracket (16) via a pin shaft, a tail end of the dough pressing bracket (16) is hingedly connected to a frame side wall of a belt conveyor (4) via a pin shaft, the first driving pulley (21) is connected to a first driven pulley (18) via a first transmission belt (19), the second driving pulley is connected to a first transition pulley (22) via a transition transmission belt, and the second transition pulley (23) is connected to a second driven pulley (13) via a second transmission belt (15).

2. A novel self-pressing noodle rolling machine according to claim 1, characterized in that: The pressing surface support (16) comprises an upper end plate, both ends of which are connected to side plates folded downward, the tails of the side plates and the upper end plate are connected to a flip plate, and the flip plate is provided with an axial hole through which a pin shaft passes.

3. The novel self-pressing noodle rolling machine according to claim 1 is characterized in that: The first cylinder (17) is connected to an external air source via a first two-position five-way reversing valve, and the first two-position five-way reversing valve is electrically connected to a foot control switch.

4. The novel self-pressing noodle rolling machine according to claim 1 is characterized in that: The second cylinder (11) is connected to an external air source via a second two-position five-way reversing valve, the second two-position five-way reversing valve is electrically connected to a controller via a wire, and the controller is electrically connected to an active motor (20) via a wire.

5. The novel self-pressing noodle rolling machine according to claim 1 is characterized in that: Both ends of the adjustment shaft (9) are locked with the second vertical plate bracket (7) through a first nut (6), the first nut (6) is locked with a second nut (8), and the adjustment shaft (9) and the second pressure roller (5) are rotatably arranged.

6. The novel self-pressing noodle rolling machine according to claim 1 is characterized in that: The end of the pressing surface support (16) does not contact the active roller (12).

7. The novel self-pressing noodle rolling machine according to claim 1 is characterized in that: The first driving pulley (21), the second driving pulley, the first transition pulley (22), and the second transition pulley (23) have the same outer diameters; the first driven pulley (18) and the second driven pulley (13) have outer diameters greater than the first driving pulley (21); and the outer diameter of the second driven pulley (13) is greater than the outer diameter of the first driven pulley (18).

8. The novel self-pressing noodle rolling machine according to claim 1 is characterized in that: The first nut (6) and the second nut (8) are both connected to a handle.