Mould for making coarse food grain moon cakes

By using a motor-driven rotating shaft and cylinder to move the movable frame, the problems of low efficiency and adhesion in batch production of molds were solved, enabling continuous production and efficient feeding of coarse grain mooncakes.

CN224069589UActive Publication Date: 2026-04-03HANGZHOU SIWEIWANG FOOD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-12
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The existing molds used for making whole grain mooncakes result in low production efficiency due to batch production on the molds, and the stickiness of the flour causes it to adhere to the mold cavity, affecting continuous production.

Method used

It employs a rotating shaft driven by a motor and a movable frame driven by a cylinder, along with multiple molding cavities and a material unloading block, to achieve continuous rotation of the mold base and material unloading, avoiding adhesion and improving production efficiency.

Benefits of technology

This technology enables continuous production of whole grain mooncakes, reducing the risk of adhesion, improving production efficiency and material feeding continuity, and minimizing the risk of damage to the formed mooncakes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of mooncake making molds, in particular to a mold for making a coarse grain mooncake. The mold mainly aims at solving the problems that production efficiency is reduced due to the fact that a common mold for making the coarse grain moon cakes is made on the mold in batches, and meanwhile continuous making of the coarse grain moon cakes is hindered due to the risk that flour in small pieces of the moon cakes is sticky and adheres to a mold cavity in the extrusion molding process. According to the technical scheme, the device comprises a first supporting table and a controller, supporting legs and a second supporting table are arranged on the wall body of the top of the first supporting table, and a switching assembly is arranged on a top plate of the second supporting table. According to the coarse grain mooncake forming machine, coarse grain mooncake preparation, manufacturing and discharging are carried out at the same time, so that the manufacturing efficiency of the coarse grain mooncakes is improved, the purpose that the mooncakes stably fall during discharging is achieved, damage and influence to the shapes of the mooncakes are reduced, meanwhile, auxiliary discharging can be carried out in the molding process, and the risk of mold clamping is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of mooncake making mold technology, and in particular to a mold for making coarse grain mooncakes. Background Technology

[0002] Whole grain mooncakes are a food that combines health concepts with festival traditions. In recent years, they have become popular among consumers due to their low sugar, low fat, and high fiber content. The traditional mooncake-making process typically involves filling the dough and kneading it into balls for later shaping. Nowadays, these dough balls are placed into a molding cavity in a mold. A pressing mechanism lowers the extrusion module, pressing the dough into shape and completing the mooncake production process.

[0003] However, common molds for making whole grain mooncakes reduce production efficiency because they are made in batches. At the same time, during the extrusion molding process, the flour in the mooncake dough is sticky and may stick to the mold cavity, hindering the continuous production of whole grain mooncakes. Therefore, we propose a mold for making whole grain mooncakes. Utility Model Content

[0004] The purpose of this invention is to address the problems existing in the background technology by proposing a mold for making coarse grain mooncakes.

[0005] The technical solution of this utility model is as follows: A mold for making coarse grain mooncakes includes a first support platform and a controller. The top wall of the first support platform is equipped with legs and a second support platform. The top plate of the second support platform is equipped with a switching component. The switching component includes a motor. The output end of the motor is connected to a rotating shaft. The top end of the rotating shaft is connected to a mold base. The top ends of the multiple legs are connected to support plates. The support plates are equipped with a production component. The production component includes a cylinder. The output end of the cylinder is connected to a movable frame. The bottom wall of the horizontal structure of the movable frame is connected to a vertical shaft. The two vertical shafts have different lengths. The bottom end of the vertical structure of the movable frame is connected to an auxiliary plate. The ends of the movable frame and the auxiliary plate are respectively connected to an extrusion component and a material unloading block. The top of the first support platform is equipped with a material unloading component.

[0006] Preferably, the cylinder is mounted on the top wall of the support plate, and a first through hole is provided on the top wall of the support plate. The output end of the cylinder passes through the first through hole and is connected to the outer wall of the transverse structure of the movable frame.

[0007] Preferably, the rotating shaft has a molding cavity, and the two extrusion parts are arranged in high and low states, and the two extrusion parts are respectively adapted to the molding cavity.

[0008] Preferably, the top plate of the first support platform and the top plate of the second support platform are respectively provided with a second through hole and a third through hole, and the material feeding movable block passes through the second through hole and the third through hole and is inserted into the corresponding molding cavity.

[0009] Preferably, the top plate of the second support platform is provided with a discharge port, the diameter of which is adapted to the diameter of the molding cavity.

[0010] Preferably, a rotating hole is provided on the top plate of the second support platform, and a bearing is provided in the rotating hole. The bearing is sleeved on the outer surface wall of the rotating shaft.

[0011] Preferably, the unloading assembly includes vertical plates, with a rotating roller, a collar and a transmission belt disposed between the two vertical plates, a drive motor installed on the outer wall of one of the vertical plates, and a reinforcing bracket connected to the bottom wall of the two vertical plates.

[0012] Compared with the prior art, the present invention has the following beneficial technical effects:

[0013] This invention uses a motor to drive a rotating shaft, which in turn rotates the mold base. This allows for easy adjustment of the position of the molding cavities on the mold base. The three molding cavities facilitate simultaneous material preparation, molding, and unloading, enabling continuous production of whole grain mooncakes and improving the descent speed. With the assistance of the unloading movable block, the unloading process remains stable, reducing the impact of descent on the formed mooncakes. The symmetrical arrangement of the transmission belt prevents interference with the descent of the unloading movable block and, through the rotation of the transmission belt, achieves rapid transport of the formed mooncakes, facilitating subsequent unloading. Furthermore, the unloading process assists in the molding process, reducing the risk of mold jamming and ensuring the continuity of subsequent mooncake unloading. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the three-dimensional structure of a mold used for making whole grain mooncakes;

[0015] Figure 2 yes Figure 1 A 3D structural diagram of the components being manufactured;

[0016] Figure 3 yes Figure 1 A schematic diagram of the bottom expanded structure of the switching component;

[0017] Figure 4 yes Figure 1 A three-dimensional structural diagram of the unloading assembly.

[0018] Reference numerals: 1. First support platform; 2. Support leg; 3. Support plate; 4. Manufacturing component; 41. Cylinder; 42. Movable frame; 43. Vertical shaft; 44. Extrusion part; 45. Auxiliary plate; 46. Unloading movable block; 5. Second support platform; 6. Switching component; 61. Motor; 62. Rotating shaft; 63. Mold base; 64. Bearing; 7. Unloading component; 71. Vertical plate; 72. Rotating roller; 73. Collar; 74. Transmission belt; 75. Drive motor; 76. Reinforcing bracket; 8. Controller. Detailed Implementation

[0019] The technical solution of this utility model will be further described below with reference to the accompanying drawings and specific embodiments.

[0020] Example

[0021] like Figures 1 to 4 As shown, the present invention proposes a mold for making coarse grain mooncakes, comprising a first support platform 1 and a controller 8. The controller 8 is fixedly installed on the legs of the first support platform 1 for convenient operation. The bottom ends of multiple legs 2 are fixedly connected to the top wall of the top plate of the first support platform 1, and the top ends are fixedly connected to the bottom wall of the support plate 3, providing support for the support plate 3. A second support platform 5 is located below the support plate 3, and the legs of the second support platform 5 are fixedly connected to the top wall of the top plate of the first support platform 1. A switching component 6 is installed on the top plate of the second support platform 5, using the second support platform 5 to support the switching component 6. The switching component 6 includes a motor 61 and a rotating shaft 62. The mold base 63 and bearing 64 are connected. The motor 61 is mounted on the top wall of the first support platform 1. The bottom end of the rotating shaft 62 is connected to the output end of the motor 61, which facilitates rotation under the drive of the motor 61. The bearing 64 is arranged in the rotating hole opened on the top plate of the second support platform 5 and is sleeved on the outer surface wall of the rotating shaft 62 to assist the rotation of the rotating shaft 62. The bearing 64 is located above the top plate of the second support platform 5. The bottom wall of the bearing 64 is connected to the top end of the rotating shaft 62, which facilitates rotation under the drive of the motor 61. This is beneficial for adjusting the molding cavities opened in the annular array on the mold base 63, facilitating mooncake feeding, making and unloading, and improving the production efficiency of coarse grain mooncakes.

[0022] Furthermore, component 4 is mounted on support plate 3. Component 4 includes cylinder 41, movable frame 42, vertical shafts 43, extruders 44, auxiliary plate 45, and material feeding block 46. Cylinder 41 is fixedly installed on the top wall of support plate 3. The output end of cylinder 41 passes through the first through hole in support plate 3 and is fixedly connected to the top wall of movable frame 42 located below support plate 3. This facilitates the lifting and lowering of movable frame 42 under the action of cylinder 41, which is convenient for subsequent extrusion and feeding of mooncake materials. The top ends of the two vertical shafts 43 are fixedly connected to the inner wall of the transverse structure of movable frame 42. The two vertical shafts 43 have different lengths to avoid hindering subsequent demolding and feeding during the extrusion process, reducing the risk of mold jamming. The two extruders 44 are in a height position. The system is set and fixedly installed at the bottom of the two vertical shafts 43, and its size is adapted to the size of the molding cavity, which facilitates the extrusion molding of the semi-finished mooncakes that enter the molding cavity. The movable frame 42 is set in an inverted L-shape, and the auxiliary plate 45 is located between the material feeding movable block 46 and the vertical structure of the movable frame 42. The two ends of the auxiliary plate 45 are fixedly connected to the opposite wall of the material feeding movable block 46 and the vertical structure of the movable frame 42, which facilitates the height adjustment of the material feeding movable block 46 under the drive of the movable frame 42. The top of the material feeding movable block 46 passes through the second and third through holes opened on the top plates of the first support platform 1 and the second support platform 5, respectively, and is inserted into the corresponding molding cavity, which facilitates the smooth descent of the mooncake to complete the unloading and reduces the risk of damage to the shape caused by falling during the feeding process.

[0023] Furthermore, the unloading assembly 7 is installed on the top wall of the top plate of the first support platform 1. The unloading assembly 7 includes vertical plates 71, rotating rollers 72, collars 73, transmission belts 74, drive motors 75, and reinforcing brackets 76. Two vertical plates 71 are symmetrically installed on the top wall of the top plate of the first support platform 1. The top end of the reinforcing bracket 76 is fixedly connected to the bottom wall of the two vertical plates 71, and the other end of the reinforcing bracket 76 is fixedly connected to the support leg structure of the first support platform 1, which enhances the stability of the vertical plates 71. Two rotating rollers 72 are symmetrically arranged between the opposite walls of the two vertical plates 71. Rotating grooves are opened on the opposite walls of the two vertical plates 71. Parts of the ends of the two rotating rollers 72 are inserted into the corresponding rotating grooves to assist the rotating rollers 72 in rotating. The drive motor... 75 is fixedly installed on the outer wall of a vertical plate 71. An auxiliary hole is provided on the outer wall of the vertical plate 71. The end of a rotating roller 72 is inserted into the auxiliary hole and connected to the output end of a drive motor 75, which is also provided in the auxiliary hole. This facilitates rotation under the drive of the drive motor 75. Two transmission belts 74 are symmetrically sleeved on the outer surface wall of the two rotating rollers 72 to assist the rotation of the rotating rollers 72 and facilitate subsequent material feeding. Multiple collars 73 are located on the opposite side wall of the two transmission belts 74 and are fixedly sleeved on the outer surface wall of the rotating rollers 72 to block the movement of the transmission belts 74, so that there is a gap between the two transmission belts 74, which facilitates the lifting and lowering movement of the material feeding block 46 and avoids affecting the feeding of the shaped mooncakes.

[0024] In this embodiment, when it is necessary to make whole grain mooncakes, the semi-finished whole grain mooncakes are placed into the corresponding molding cavity. The motor 61 is started to drive the rotating shaft 62 to rotate the mold base 63, and the semi-finished whole grain mooncakes are transported to the extruder 44 below the corresponding position. At this time, the empty molding cavity allows the staff to add materials. After the whole grain mooncakes are shaped, they move to the top of the feeding block 46 under the continuous rotation of the mold base 63, and the newly added semi-finished whole grain mooncakes are transported to the extruder 44 below the corresponding position. At this time, they can be extruded and shaped again. Since the feeding block 46 can be lowered under the drive of the movable frame 42 and the auxiliary plate 45, the shaped whole grain mooncakes are transported to the transmission belt 74. The automatic feeding is achieved by the drive motor 75, which avoids affecting the continuity of subsequent mooncake production, improves production efficiency, and the descent of the long vertical shaft 43 can help the whole grain mooncakes in the molding box to descend smoothly, reduce the risk of mold jamming, and prevent affecting the subsequent mooncake production and processing.

[0025] The above specific embodiments are merely several preferred embodiments of this utility model. Based on the technical solution of this utility model and the relevant teachings of the above embodiments, those skilled in the art can make various alternative improvements and combinations to the above specific embodiments.

Claims

1. A mold for making coarse grain moon cake, comprising a first support table (1) and a controller (8), characterized in that: The top wall of the first support table (1) is provided with supporting legs (2) and a second support table (5), the top plate of the second support table (5) is provided with a switching assembly (6), the switching assembly (6) comprises a motor (61), the output end of the motor (61) is connected with a rotating shaft (62), the top end of the rotating shaft (62) is connected with a mold base (63), the top end of a plurality of supporting legs (2) is connected with a supporting plate (3), the supporting plate (3) is provided with a manufacturing assembly (4), the manufacturing assembly (4) comprises a cylinder (41), the output end of the cylinder (41) is connected with a movable frame (42), the bottom wall of the movable frame (42) is connected with a vertical shaft (43), the lengths of the two vertical shafts (43) are different, the bottom end of the movable frame (42) is connected with an auxiliary plate (45), the ends of the movable frame (42) and the auxiliary plate (45) are respectively connected with an extrusion piece (44) and a blanking movable block (46), and the top of the first support table (1) is provided with a discharging assembly (7).

2. The mold for making coarse-grain moon cakes according to claim 1, wherein, The cylinder (41) is mounted on the top wall of the supporting plate (3), the top wall of the supporting plate (3) is provided with a first through hole, and the output end of the cylinder (41) is connected with the outer wall of the lateral structure of the movable frame (42) through the first through hole.

3. The mold for making coarse-grain moon cakes according to claim 1, wherein, The rotating shaft (62) is provided with a molding cavity, and the two extrusion pieces (44) are arranged in a high-low state, and the two extrusion pieces (44) are respectively matched with the molding cavity.

4. The mold for making coarse-grain moon cakes according to claim 1, wherein, The top plate of the first support table (1) and the top plate of the second support table (5) are respectively provided with a second through hole and a third through hole, and the blanking movable block (46) penetrates through the second through hole and the third through hole and is inserted into the corresponding molding cavity.

5. The mold for making coarse-grain moon cakes according to claim 1, wherein, The top plate of the second support table (5) is provided with a blanking port, and the diameter of the blanking port is matched with the diameter of the molding cavity.

6. The mold for making coarse-grain moon cakes according to claim 1, wherein, The top plate of the second support table (5) is provided with a rotating hole, the rotating hole is provided with a bearing (64), and the bearing (64) is sleeved on the outer surface wall of the rotating shaft (62).

7. The mold for making coarse-grain moon cakes according to claim 1, wherein, The discharging assembly (7) comprises vertical plates (71), a rotating roller (72), a sleeve ring (73) and a transmission belt (74) are arranged between the two vertical plates (71), a driving motor (75) is mounted on the outer wall of one of the vertical plates (71), and a reinforcing support (76) is connected to the bottom wall of the two vertical plates (71).