Double-channel stuffing synchronous conveying device for moon cake encrusting machine
By designing a dual-channel filling synchronous conveying device for the mooncake filling machine, the separation conveyor belt and separation components are used to achieve efficient synchronous filling of filling, which solves the problem of time-consuming switching caused by single-channel conveying of traditional filling conveyors, and significantly improves production efficiency.
Patent Information
- Application Number
- CN202520642181.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2035-04-08
AI Technical Summary
Traditional filling conveying devices only support single channel conveying, and switching fillings takes a long time, seriously reducing production efficiency.
A dual-channel filling synchronous conveying device for mooncake filling machine is designed. By setting up a separation conveyor belt and separation components, the intermittent drive motor and servo motor drive the rotating gear and sliding plate to separate and adjust the filling, achieving efficient synchronous filling of the two fillings.
The efficient synchronous filling of the two fillings is achieved, which avoids the inefficiency and out-of-synchronization problems of manual operation, greatly improves the filling speed and increases the product output per unit time.
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Figure CN223015608U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of filling conveying, in particular to a dual-channel filling synchronous conveying device for a mooncake stuffing machine. Background Technique
[0002] The filling conveying device is a device used to convey various fillings during the food processing process, mainly used to convey the filling from the storage container to the processing equipment. The filling conveying device is widely used in various food processing scenarios, such as the production processes of mooncakes, frozen foods, stuffed foods, etc.
[0003] Traditional filling conveying devices generally only support single-channel conveying modes. Once the filling needs to be switched, the time consumed is quite long, which seriously reduces the production efficiency and greatly hinders the improvement of production efficiency. Summary of the Utility Model
[0004] The utility model discloses a dual-channel filling synchronous conveying device for a mooncake stuffing machine, aiming to solve the technical problems that the traditional filling conveying device only has a single-channel conveying, the time-consuming for switching the filling is long, and the production efficiency is seriously reduced.
[0005] To achieve the above object, the utility model adopts the following technical scheme: A dual-channel filling synchronous conveying device for a mooncake stuffing machine includes a separation conveyor belt. A separation component is arranged on one side of the separated separation conveyor belt. The separation component includes an intermittent drive motor. The power output shaft of the intermittent drive motor is connected to a rotating rod through a coupling. A triangular gear plate is fixedly connected to the outer side of the rotating rod. A rotating gear is movably connected to the outer side of the triangular gear plate. The rotating gear and the outer side of the triangular gear plate are meshed with each other through a tooth groove. A rotating rod is fixedly connected to the inner side of the rotating gear. A rotating disc is fixedly connected to the outer side of the rotating rod. The outer side of the rotating disc is movably connected to the outer side of the separation conveyor belt separated therefrom. A rotating shaft rod is fixedly connected to the top of the rotating disc. A connecting rod is fixedly connected to the outer side of the rotating shaft rod. A separation plate is fixedly connected to the outer side of the connecting rod. The top of the separation plate is in contact with the top of the separation conveyor belt.
[0006] By providing a separation conveyor belt and a separation component, when the two fillings are efficiently and synchronously wrapped, the intermittent drive motor is started to drive the rotating rod to rotate, and the triangular gear plate fixedly connected on the outside rotates accordingly. Since the outer side of the triangular gear plate is meshed with the rotating gear through the tooth groove, the rotation of the triangular gear plate will drive the rotating gear to rotate left and right. When the rotating gear rotates, it drives the rotating rod fixedly connected on the inner side to rotate, and the rotating rod drives the rotating disc fixedly connected on the outer side to rotate. The rotating shaft rod on the top of the rotating disc rotates with the rotating disc, and the rotating shaft rod drives the connecting rod fixedly connected on the outside to move. When the connecting rod moves, it drives the separation plate fixedly connected on the outside to move left and right. Since the top of the separation plate contacts the top of the separation conveyor belt, the separation plate will separate the mooncake fillings on the separation conveyor belt left and right during the left and right swing, so that the mooncake fillings enter the left and right sides of the separation conveyor belt, and complete the efficient and synchronous wrapping of the two fillings. In the process, the separation action is accurate and orderly, and the two fillings can be wrapped synchronously, avoiding the low efficiency and asynchronous problems of manual operation, greatly improving the filling speed, and increasing the product output per unit time.
[0007] In a preferred embodiment, both sides of the separation conveyor belt are fixedly connected with symmetrical frames, the bottom ends of the symmetrical frames are fixedly connected with bottom frames, and multiple mooncake fillings are arranged on the top of the separation conveyor belt, and the separated side of the separation conveyor belt is fixedly connected with an auxiliary fixing plate, the top of the rotating rod is movably connected with a fixed frame, both ends of the fixed frame are fixedly connected with the side opposite to the symmetrical frame, and the bottom end of the fixed frame is fixedly connected with a motor frame, and the top of the motor frame is fixedly connected to the bottom end of the intermittent drive motor.
[0008] In a preferred scheme, a symmetrical adjustment symmetrical component is arranged at the rear of the separation component, and the adjustment symmetrical component includes a servo motor, and the power output shaft of the servo motor is connected to a rotating threaded rod through a coupling, and both sides of the rotating threaded rod are movably connected to a limit seat, and the bottom end of the limit seat is fixedly connected to the top of the auxiliary fixed plate, and the outer side of the rotating threaded rod is movably connected to a sliding plate, and the top of the sliding plate is fixedly connected to an L-shaped plate, and the front end of the L-shaped plate is fixedly connected to a telescopic electric rod, and auxiliary sliding rods are arranged on both sides of the telescopic electric rod, and two symmetrical circular holes are opened on the L-shaped plate, and the auxiliary sliding rods are movably connected between the inside of the circular holes, and a telescopic rod is arranged in front of the telescopic electric rod, and the bottom end of the telescopic rod is fixedly connected to one side of the symmetrical frame, and one side of the symmetrical frame is fixedly connected to a buffer spring, and the buffer spring is located on the outer side of the telescopic rod, and the front ends of the telescopic rod, the buffer spring, the auxiliary sliding rod and the telescopic electric rod are all fixedly connected to the adjusting plate, and the opposite side of the adjusting plate is in contact with the outer side of the moon cake filling.
[0009] By setting an adjustment symmetry component, when the mooncake filling shifts during the transmission process, the servo motor starts to drive the rotating threaded rod to rotate. Since both sides of the rotating threaded rod are movably connected with limit seats, when the rotating threaded rod rotates, the sliding plate will move axially along the rotating threaded rod due to the principle of screw drive. The moving direction of the sliding plate depends on the rotating direction of the rotating threaded rod. When the sliding plate moves, it drives the L-shaped plate fixedly connected to its top to move together, so that the telescopic electric rod installed at the front end of the L-shaped plate also moves to a suitable position. The telescopic electric rod starts to work and adjusts the position of its front end through telescoping. The auxiliary sliding rods on both sides of the telescopic electric rod move in the round holes on the L-shaped plate, playing a role in assisting guidance and stabilizing the telescopic electric rod, ensuring that the telescopic electric rod will not shift or shake during the telescoping process. The telescopic electric rod pushes the front telescopic rod, and the bottom end of the telescopic rod is fixedly connected to one side of the symmetry frame, so the symmetry frame will also move with the movement of the telescopic rod. The buffer spring fixedly connected to one side of the symmetry frame is located outside the telescopic rod. During the movement of the symmetry frame, the buffer spring can play a role in buffering and shock absorption, preventing excessive impact on the mooncake filling during the adjustment process. The adjustment plate moves to a suitable position. Finally, the opposite side of the adjustment plate comes into contact with the outside of the shifted mooncake filling. Through the blocking and adjustment effects of the adjustment plate, the mooncake filling is returned to the correct transmission position, thus ensuring the smooth progress of the synchronous stuffing of the two fillings. During the process, the offset of the mooncake filling during transmission can be detected and corrected in a timely manner, ensuring the accurate synchronous stuffing of the two fillings, preventing uneven distribution of the fillings, ensuring the same filling ratio and appearance of each mooncake, and improving the product quality.
[0010] As can be seen from the above, a dual-channel filling synchronous conveying device for a mooncake stuffing machine provided by the present utility model has the technical effects of making the separation action precise and orderly, enabling the synchronous stuffing of two fillings, avoiding the low efficiency and asynchrony problems of manual operation, greatly improving the stuffing speed, and increasing the product output per unit time. BRIEF DESCRIPTION OF THE DRAWINGS
[0011] Figure 1 is a schematic diagram of the overall structure of a dual-channel filling synchronous conveying device for a mooncake stuffing machine proposed by the present utility model;
[0012] Figure 2 is a schematic diagram of the separation conveyor belt structure of a dual-channel filling synchronous conveying device for a mooncake stuffing machine proposed by the present utility model;
[0013] Figure 3 is a schematic diagram of the bottom structure of the separation conveyor belt of a dual-channel filling synchronous conveying device for a mooncake stuffing machine proposed by the present utility model;
[0014] Figure 4Schematic structural diagram of the separation component of a dual-channel filling synchronous conveying device for a mooncake stuffing machine proposed by the present utility model;
[0015] Figure 5 Schematic structural diagram of the adjustment symmetry component of a dual-channel filling synchronous conveying device for a mooncake stuffing machine proposed by the present utility model.
[0016] In the drawings: 1, symmetry frame; 2, separation conveyor belt; 3, mooncake filling; 4, bottom frame; 5, separation component; 501, intermittent drive motor; 502, rotating rod; 503, triangular gear plate; 504, rotating gear; 505, rotating shaft; 506, rotating disc; 507, rotating shaft rod; 508, connecting rod; 509, separation plate; 6, fixing frame; 7, motor frame; 8, adjustment symmetry component; 801, servo motor; 802, rotating threaded rod; 803, limit seat; 804, sliding plate; 805, L-shaped plate; 806, telescopic electric rod; 807, auxiliary sliding rod; 808, telescopic rod; 809, buffer spring; 810, adjustment plate; 9, auxiliary fixing plate. Detailed implementation manners
[0017] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the 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 the embodiments.
[0018] A dual-channel filling synchronous conveying device for a mooncake stuffing machine disclosed by the present utility model is mainly applied to the scenario where the traditional filling conveying device only has a single-channel conveying, and the time-consuming for switching fillings is long, seriously reducing the production efficiency.
[0019] Referring to Figures 1 - 5 , a dual-channel filling synchronous conveying device for a mooncake stuffing machine includes a separation conveyor belt 2. A separation component 5 is arranged on one side separated by the separation conveyor belt 2. The separation component 5 includes an intermittent drive motor 501. The power output shaft of the intermittent drive motor 501 is connected to a rotating rod 502 through a coupling. A triangular gear plate 503 is connected to the outside of the rotating rod 502 through bolts. A rotating gear 504 is rotatably connected to the outside of the triangular gear plate 503. The rotating gear 504 and the outside of the triangular gear plate 503 are meshed with each other through tooth grooves. A rotating shaft 505 is connected to the inside of the rotating gear 504 through bolts. A rotating disc 506 is connected to the outside of the rotating shaft 505 through bolts. The outside of the rotating disc 506 is rotatably connected to the outside of the separation conveyor belt 2 separated therefrom. A rotating shaft rod 507 is connected to the top of the rotating disc 506 through bolts. A connecting rod 508 is connected to the outside of the rotating shaft rod 507 through bolts. A separation plate 509 is connected to the outside of the connecting rod 508 through bolts. The top of the separation plate 509 is in contact with the top of the separation conveyor belt 2.
[0020] Refer to Figure 1 、 Figure 2 and Figure 3 , in a preferred embodiment, both sides of the separation conveyor belt 2 are bolted with symmetric frames 1, the bottoms of the symmetric frames 1 are bolted with a bottom frame 4, and a plurality of mooncake fillings 3 are arranged at the top of the separation conveyor belt 2. One side of the separation conveyor belt 2 for separation is bolted with an auxiliary fixing plate 9. The top of the rotating rod 502 is rotationally connected with a fixing frame 6. Both ends of the fixing frame 6 are bolted to the opposite sides of the symmetric frame 1, and the bottom of the fixing frame 6 is bolted with a motor frame 7. The top of the motor frame 7 and the bottom of the intermittent drive motor 501 are bolted together.
[0021] Refer to Figure 1 、 Figure 2 and Figure 5 , in a preferred embodiment, symmetric adjustment components 8 are arranged behind the separation component 5. The adjustment symmetric components 8 include a servo motor 801. The power output shaft of the servo motor 801 is connected with a rotating threaded rod 802 through a coupling. Both sides of the rotating threaded rod 802 are rotationally connected with limit seats 803. The bottoms of the limit seats 803 are bolted to the top of the auxiliary fixing plate 9. The outside of the rotating threaded rod 802 is slidably connected with a sliding plate 804. The top of the sliding plate 804 is bolted with an L-shaped plate 805. The front end of the L-shaped plate 805 is bolted with a telescopic electric rod 806. Auxiliary sliding rods 807 are arranged on both sides of the telescopic electric rod 806. Two symmetric round holes are formed in the L-shaped plate 805. The auxiliary sliding rods 807 are slidably connected between the round holes. In front of the telescopic electric rod 806 is a telescopic rod 808. The bottom of the telescopic rod 808 is bolted to one side of the symmetric frame 1. One side of the symmetric frame 1 is bolted with a buffer spring 809. The buffer spring 809 is located outside the telescopic rod 808. The front ends of the telescopic rod 808, the buffer spring 809, the auxiliary sliding rods 807 and the telescopic electric rod 806 are all bolted with an adjustment plate 810. The opposite sides of the adjustment plates 810 are in contact with the outside of the mooncake fillings 3.
[0022] Working principle: When achieving efficient synchronous stuffing of two kinds of fillings, the intermittent drive motor 501 starts to drive the rotating rod 502 to rotate. The triangular gear plate 503 fixedly connected to the outside rotates accordingly. Since the outside of the triangular gear plate 503 meshes with the rotating gear 504 through the tooth grooves, the rotation of the triangular gear plate 503 will drive the rotating gear 504 to rotate left and right. When the rotating gear 504 rotates, it drives the rotating rod 505 fixedly connected to the inside to rotate, and the rotating rod 505 drives the rotating disc 506 fixedly connected to the outside to rotate. The rotating shaft rod 507 at the top of the rotating disc 506 rotates together with the rotating disc 506, and the rotating shaft rod 507 drives the connecting rod 508 fixedly connected to the outside to move. When the connecting rod 508 moves, it drives the separating plate 509 fixedly connected to the outside to move left and right. Since the top of the separating plate 509 is in contact with the top of the separating conveyor belt 2, the separating plate 509 will perform a left-right separation operation on the mooncake filling 3 on the separating conveyor belt 2 during the left-right swing process, so as to enable the mooncake filling 3 to enter the left and right sides of the separating conveyor belt 2, completing the efficient synchronous stuffing of the two kinds of fillings; when the mooncake filling 3 deviates during the transmission process, the servo motor 801 starts to drive the rotating threaded rod 802 to rotate. Since both sides of the rotating threaded rod 802 are movably connected with the limit seats 803, when the rotating threaded rod 802 rotates, the sliding plate 804 will move axially along the rotating threaded rod 802 due to the principle of screw drive. The moving direction of the sliding plate 804 depends on the rotating direction of the rotating threaded rod 802. When the sliding plate 804 moves, it drives the L-shaped plate 805 fixedly connected to the top to move together, so that the telescopic electric rod 806 installed at the front end of the L-shaped plate 805 also moves to a suitable position. The telescopic electric rod 806 starts to work and adjusts the position of its front end through telescoping. The auxiliary sliding rods 807 on both sides of the telescopic electric rod 806 move in the circular holes on the L-shaped plate 805, playing a role in assisting in guiding and stabilizing the telescopic electric rod 806 to ensure that the telescopic electric rod 806 will not deviate or shake during the telescoping process. The telescopic electric rod 806 pushes the front telescopic rod 808. The bottom end of the telescopic rod 808 is fixedly connected to one side of the symmetric frame 1, so the symmetric frame 1 will also move along with the movement of the telescopic rod 808. The buffer spring 809 fixedly connected to one side of the symmetric frame 1 is located outside the telescopic rod 808. During the movement of the symmetric frame 1, the buffer spring 809 can play a role in buffering and shock absorption to prevent excessive impact on the mooncake filling 3 during the adjustment process. The adjusting plate 810 moves to a suitable position. Finally, the opposite side of the adjusting plate 810 comes into contact with the outside of the deviated mooncake filling 3. Through the blocking and adjusting action of the adjusting plate 810, the mooncake filling 3 is returned to the correct transmission position, thus ensuring the smooth progress of the synchronous stuffing of the two kinds of fillings.
[0023] As mentioned above, it is only the preferred specific embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. The substitution may be the substitution of part of the structure, device, method step, or a complete technical solution. Any equivalent substitution or change made according to the technical solution of the present utility model and its inventive concept should be covered within the protection scope of the present utility model.
Claims
1. A dual-channel synchronous filling conveying device for a mooncake filling machine, comprising a separation conveyor belt (2), characterized in that: A separation assembly (5) is provided on the separation side of the separation conveyor belt (2), and the separation assembly (5) comprises an intermittent drive motor (501), the power output shaft of the intermittent drive motor (501) is connected to a rotating rod (502) via a coupling, the outer side of the rotating rod (502) is fixedly connected to a triangular gear plate (503), the outer side of the triangular gear plate (503) is movably connected to a rotating gear (504), the rotating gear (504) is meshed with the outer side of the triangular gear plate (503) via tooth grooves, and the rotating gear (504) is movably connected to the outer side of the triangular gear plate (503). A rotating rod (505) is fixedly connected to the inner side, a rotating disc (506) is fixedly connected to the outer side of the rotating rod (505), the outer side of the rotating disc (506) is movably connected to the outer side of the separation conveyor belt (2), a rotating shaft rod (507) is fixedly connected to the top of the rotating disc (506), a connecting rod (508) is fixedly connected to the outer side of the rotating shaft rod (507), a separating plate (509) is fixedly connected to the outer side of the connecting rod (508), and the top of the separating plate (509) is in contact with the top of the separation conveyor belt (2).
2. A dual-channel synchronous filling conveying device for a mooncake filling machine according to claim 1, characterized in that: Both sides of the separation conveyor belt (2) are fixedly connected to symmetrical frames (1), the bottom ends of the symmetrical frames (1) are fixedly connected to bottom frames (4), and a plurality of mooncake fillings (3) are arranged on the top of the separation conveyor belt (2), and the separation side of the separation conveyor belt (2) is fixedly connected to an auxiliary fixing plate (9).
3. A dual-channel synchronous filling conveying device for a mooncake filling machine according to claim 2, characterized in that: The top end of the rotating rod (502) is movably connected to a fixing frame (6), both ends of the fixing frame (6) are fixedly connected to a side opposite to the symmetrical frame (1), and the bottom end of the fixing frame (6) is fixedly connected to a motor frame (7), and the top end of the motor frame (7) is fixedly connected to the bottom end of the intermittent drive motor (501).
4. A dual-channel synchronous filling conveying device for a mooncake filling machine according to claim 2, characterized in that: A symmetrical adjustment symmetry component (8) is arranged at the rear of the separation component (5), and the adjustment symmetry component (8) comprises a servo motor (801), the power output shaft of the servo motor (801) is connected to a rotating threaded rod (802) via a coupling, both sides of the rotating threaded rod (802) are movably connected to a limit seat (803), and the bottom end of the limit seat (803) is fixedly connected to the top end of the auxiliary fixing plate (9).
5. A dual-channel synchronous filling conveying device for a mooncake filling machine according to claim 4, characterized in that: The outer side of the rotating threaded rod (802) is movably connected to a sliding plate (804), the top end of the sliding plate (804) is fixedly connected to an L-shaped plate (805), the front end of the L-shaped plate (805) is fixedly connected to a telescopic electric rod (806), and auxiliary sliding rods (807) are provided on both sides of the telescopic electric rod (806).
6. A dual-channel synchronous filling conveying device for a mooncake filling machine according to claim 5, characterized in that: The L-shaped plate (805) is provided with two symmetrical circular holes, the auxiliary sliding rods (807) are both located inside the circular holes and are movably connected thereto, a telescopic rod (808) is provided in front of the telescopic electric rod (806), and the bottom end of the telescopic rod (808) is fixedly connected to one side of the symmetrical frame (1).
7. A dual-channel synchronous filling conveying device for a mooncake filling machine according to claim 6, characterized in that: A buffer spring (809) is fixedly connected to one side of the symmetrical frame (1), and the buffer spring (809) is located on the outside of the telescopic rod (808). The front ends of the telescopic rod (808), the buffer spring (809), the auxiliary sliding rod (807) and the telescopic electric rod (806) are all fixedly connected to an adjustment plate (810), and the opposite side of the adjustment plate (810) is in contact with the outside of the mooncake filling (3).