A forming device and method for rice product processing

By combining the extrusion and heating mechanisms, the problem of uneven rice paste spreading was solved, resulting in uniform shaping and anti-sticking of rice products, thus improving processing quality.

CN119655468BActive Publication Date: 2026-05-05江西金田麦食品股份有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
江西金田麦食品股份有限公司
Filing Date
2024-12-27
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

During the rice paste processing and molding process, the rice paste is not spread evenly on the conveyor belt, resulting in uneven thickness of the molded product and affecting the processing quality.

Method used

The extrusion mechanism and the heating mechanism work together. The extrusion rod squeezes the feeding trough to make the rice paste flow evenly in the feeding trough, and the steam box heats the rice paste to make it solidify and take shape.

Benefits of technology

It achieves uniform spreading of rice slurry in the feeding tank, ensuring uniform thickness of the molded products, improving the processing quality of rice products, and preventing sticking through the oiling mechanism, making operation more convenient.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application belongs to the technical field of rice product processing and relates to a forming device and method for rice product processing, which comprises a mounting frame, a support, a collecting frame, side plates, a heating mechanism, a conveying mechanism and an extruding mechanism. The support is connected with the mounting frame at the top. The mounting frame is connected with the side plates on both sides. The support is connected with the collecting frame for collecting finished products. The collecting frame is provided with the heating mechanism for heating and forming rice pulp. The support is provided with the conveying mechanism for conveying rice pulp. The mounting frame is provided with the extruding mechanism. After the rice pulp is added into the discharge groove, the discharge groove can be extruded by the extruding rod, so that the discharge groove is deformed, the rice pulp can flow better in the discharge groove, the rice pulp is flattened in the discharge groove, the thickness of the processed product is uniform, and the processing quality of the rice product is ensured.
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Description

Technical Field

[0001] This invention belongs to the technical field of rice product processing, and relates to a forming device and method for rice product processing. Background Technology

[0002] Rice noodles are a type of rice product, mainly made from rice flour. The process involves grinding rice into rice flour, then making rice flour paste, and finally steaming the rice flour paste to shape it into a complete rice noodle product.

[0003] Currently, the common practice in processing rice noodle products is to transport rice paste onto a conveyor belt and then control the rotation of the conveyor belt to transport the rice paste. The conveyor belt then sends the rice paste into a heating chamber for heating and shaping. However, when adding rice paste to the conveyor belt, relying solely on the flow of the rice paste itself to spread it out can easily lead to the rice paste accumulating in one place, resulting in uneven thickness of the shaped product and affecting the processing quality. Summary of the Invention

[0004] In view of this, the present invention provides a forming apparatus and method for processing rice products.

[0005] A forming device for rice product processing includes a mounting frame, a support, a collecting frame, side plates, a heating mechanism, a conveying mechanism, and an extrusion mechanism. The mounting frame is connected to the top of the support, and side plates are connected to both sides of the mounting frame. A collecting frame for collecting the processed finished products is connected to the support. A heating mechanism for heating and forming rice paste is provided inside the mounting frame. A conveying mechanism for conveying rice paste is provided on the support, and an extrusion mechanism is provided on the mounting frame.

[0006] In a preferred embodiment of the present invention, the heating mechanism includes a steam box and nozzles, wherein the steam box is installed in the mounting frame and nozzles are installed on both sides of the steam box.

[0007] In a preferred embodiment of the present invention, the conveying mechanism includes a rotating shaft, a belt conveyor assembly, a stepper motor, and a belt drive assembly. The rotating shaft is rotatably connected to both sides of the bracket, and the belt conveyor assembly is installed between the two rotating shafts. The belt conveyor assembly passes through the middle of the steam box, and the nozzles on both sides are aligned with the part of the belt conveyor assembly that passes through the steam box. The belt conveyor assembly is provided with a plurality of feeding troughs for adding rice paste at even intervals. The stepper motor is installed on the bracket, and the belt drive assembly is installed between the output shaft of the stepper motor and one of the rotating shafts.

[0008] In a preferred embodiment of the present invention, the extrusion mechanism includes a side frame, a connecting frame, a sliding frame, an extrusion rod, an elastic element, a reduction motor, and a triangular extrusion block. Two side frames are connected inside the mounting frame, and a connecting frame is connected between the two side frames. A sliding frame is slidably connected inside the connecting frame. Multiple extrusion rods are evenly spaced at the bottom of the sliding frame. An elastic element is connected between the extrusion rod and the connecting frame. A reduction motor is mounted on one of the side frames, and a triangular extrusion block is connected to the output shaft of the reduction motor. The triangular extrusion block is located above the sliding frame.

[0009] In a preferred embodiment of the present invention, a feeding mechanism is further included. The feeding mechanism includes a connecting frame, a container frame, a drive motor, a stirring rod, a pump body, a liquid extraction pipe, and a liquid spraying pipe. The connecting frame is connected to the top of the mounting frame, and the container frame is connected inside the connecting frame. The drive motor is installed on the top of the container frame, and a stirring rod is connected to the output shaft of the drive motor. The stirring rod extends into the container frame. The pump body is installed at the lower part of the connecting frame, and a liquid spraying pipe is installed at the liquid outlet end of the pump body. The liquid extraction pipe is connected to the liquid inlet end of the pump body and extends into the container frame.

[0010] In a preferred embodiment of the present invention, an oiling mechanism is further included, which includes a rotating rod, a lower oiling roller, a transmission gear, and an oil-collecting frame. The rotating rod is rotatably connected to the support, and the lower oiling roller is connected to the rotating rod. Transmission gears are connected to both the rotating rod and one of the rotating shafts, and the two transmission gears mesh with each other. An oil-collecting frame is connected to the support.

[0011] In a preferred embodiment of the present invention, a striking mechanism is further included. The striking mechanism includes a guide sleeve, a compression ring, a striking block, a convex shaft, and an elastic element II. Two guide sleeves are connected to the bracket. A compression ring is connected inside the guide sleeve. A discontinuity is provided on the compression ring. Multiple striking blocks are slidably connected to the pulley on the left side of the belt conveyor group at uniform intervals along the circumference. A convex shaft is connected to both ends of each striking block. The compression ring is located at the movement trajectory of the convex shaft. An elastic element II is connected between the striking block and the pulley of the belt conveyor group.

[0012] In a preferred embodiment of the present invention, a mounting bracket and a fan are also included. The mounting bracket is connected between the tops of the two side plates, and multiple fans are evenly spaced on the mounting bracket.

[0013] The present invention also provides a molding method for processing rice products, the specific steps of which are as follows:

[0014] S1: Add rice paste to the container and control the drive motor to rotate the stirring rod to stir the rice paste in the container;

[0015] S2: Control the operation of the pump body to extract rice slurry through the liquid extraction pipe and spray the rice slurry onto the discharge chute of the belt conveyor through the liquid spraying pipe;

[0016] S3: Control the geared motor to drive the triangular extrusion block to rotate. The triangular extrusion block rotates and extrudes the sliding frame to move down. The sliding frame moves down and drives the extrusion rod to move down. Once the elastic element is compressed, the extrusion rod moves down and extrudes the discharge trough on the belt conveyor group to deform, so that the edge of the discharge trough is lower than the middle position of the discharge trough, so that the rice paste flows evenly on the discharge trough and fills the discharge trough.

[0017] S4: After filling, control the stepper motor to drive the belt conveyor to rotate. The rotation of the belt conveyor drives the discharge trough to rotate into the steam box. Control the operation of the steam box and spray steam onto the rice paste through the nozzle, causing the rice paste to solidify and be processed into shape, thus completing the processing of the rice paste.

[0018] The beneficial effects of the present invention are as follows: 1. After the rice paste is added to the feeding trough, the feeding trough can be squeezed by the extrusion rod, thereby deforming the feeding trough and allowing the rice paste to flow better in the feeding trough, so that the rice paste is spread evenly in the feeding trough, making the thickness of the processed product uniform and ensuring the processing quality of rice products.

[0019] 2. Before adding rice slurry, the present invention can apply edible oil to the belt drive assembly and the feeding trough by rotating the lower oiling roller. After the rice slurry is processed, the edible oil lubrication can prevent the formed rice products from sticking to the feeding trough. Attached Figure Description

[0020] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0021] Figure 2 This is a cross-sectional view of the present invention.

[0022] Figure 3 This is a cross-sectional view of the extrusion mechanism of the present invention.

[0023] Figure 4 This is a schematic diagram of the first structure of the oiling mechanism of the present invention.

[0024] Figure 5 This is a schematic diagram of a second structure of the oiling mechanism of the present invention.

[0025] Figure 6 This is a schematic diagram of the first structure of the striking mechanism of the present invention.

[0026] Figure 7 This is a schematic diagram of a second structural embodiment of the striking mechanism of the present invention.

[0027] Figure 8 This is a front view of the striking mechanism of the present invention.

[0028] Figure 9 This is a schematic diagram of the mounting bracket, side plate, and fan of the present invention.

[0029] In the diagram: 1_Mounting frame, 2_Bracket, 21_Collection frame, 3_Side plate, 41_Steam box, 42_Nozzle, 51_Rotating shaft, 52_Belt conveyor assembly, 53_Stepper motor, 54_Belt drive assembly, 55_Discharge chute, 61_Side frame, 62_Connecting frame, 63_Sliding frame, 64_Extrusion rod, 65_Elastic component one, 66_Gear motor, 67_Triangular extrusion block, 71_Connecting frame, 72_Container frame, 73_Drive motor, 74_Agitator rod, 75_Pump body, 76_Liquid extraction pipe, 77_Liquid spraying pipe, 81_Rotating rod, 82_Lower oiling roller, 83_Transmission gear, 84_Oil container frame, 91_Guide sleeve, 92_Extrusion ring, 93_Impact block, 94_Protruding shaft, 95_Elastic component two, 111_Mounting frame, 112_Fan. Detailed Implementation

[0030] Although the invention may be described with respect to specific applications or industries, those skilled in the art will recognize its broader applicability. Those skilled in the art will understand that terms such as "above," "below," "upward," "downward," etc., are used to describe the drawings and not to indicate a limitation on the scope of the invention as defined by the appended claims. Any numerical designations such as "first" or "second" are merely illustrative and not intended to limit the scope of the invention in any way.

[0031] A forming apparatus and method for processing rice products, such as Figures 1-3 As shown, it includes an installation frame 1, a bracket 2, a collection frame 21, side plates 3, a heating mechanism, a conveying mechanism, and an extrusion mechanism. The bracket 2 is connected to the top of the installation frame 1. The installation frame 1 is connected to both the front and rear sides of the left side. The bracket 2 is connected to the left side of the collection frame 21 for collecting the finished products. The installation frame 1 is equipped with a heating mechanism for heating and shaping the rice paste. The bracket 2 is equipped with a conveying mechanism for conveying the rice paste. The installation frame 1 is equipped with an extrusion mechanism.

[0032] like Figure 2 As shown, the heating mechanism includes a steam box 41 and nozzles 42. The steam box 41 is installed in the mounting frame 1. Nozzles 42 are installed on both the upper and lower sides of the steam box 41. The operation of the steam box 41 can spray the steam inside out through the nozzles 42.

[0033] like Figure 2As shown, the conveying mechanism includes a rotating shaft 51, a belt conveyor group 52, a stepper motor 53, and a belt drive group 54. The left and right sides of the bracket 2 are rotatably connected to the rotating shaft 51, and the belt conveyor group 52 is installed between the two rotating shafts 51. The belt conveyor group 52 passes through the middle of the steam box 41, and the nozzles 42 on the upper and lower sides are aligned with the part of the belt conveyor group 52 that passes through the steam box 41. The belt conveyor group 52 is evenly spaced with multiple feeding troughs 55 for adding rice paste. The stepper motor 53 is installed on the right side of the bracket 2, and the belt drive group 54 is installed between the output shaft of the stepper motor 53 and the right rotating shaft 51 so that the stepper motor 53 can drive the belt conveyor group 52 to rotate through the rotating shaft 51 when it is operating.

[0034] like Figure 2 and Figure 3 As shown, the extrusion mechanism includes a side frame 61, a connecting frame 62, a sliding frame 63, extrusion rods 64, an elastic element 65, a reduction motor 66, and a triangular extrusion block 67. Two side frames 61 are connected to the right side of the mounting frame 1, and the side frames 61 are located to the right of the steam box 41. A connecting frame 62 connects the two side frames 61, and a sliding frame 63 is slidably connected within the connecting frame 62. Multiple extrusion rods 64 are evenly spaced at the bottom of the sliding frame 63. The extrusion rods 64 can move downwards to connect with the belt conveyor assembly 52. The contact and push of the belt conveyor group 52 deforms, so that the rice slurry can flow better on the discharge trough 55 of the belt conveyor group 52. An elastic element 65 is connected between the extrusion rod 64 and the connecting frame 62. The elastic element 65 is a return spring. A reduction motor 66 is installed on the side frame 61 on the right side. A triangular extrusion block 67 is connected to the output shaft of the reduction motor 66. The triangular extrusion block 67 is located above the sliding frame 63 so that the triangular extrusion block 67 can squeeze the sliding frame 63 to move when rotating.

[0035] like Figure 2 As shown, it also includes a feeding mechanism, which includes a connecting frame 71, a container frame 72, a drive motor 73, a stirring rod 74, a pump body 75, a liquid extraction pipe 76, and a liquid spraying pipe 77. The connecting frame 71 is connected to the top right side of the mounting frame 1. The container frame 72 is connected inside the connecting frame 71. The drive motor 73 is installed on the top of the container frame 72. The stirring rod 74 is connected to the output shaft of the drive motor 73 and extends into the container frame 72. The pump body 75 is installed at the lower part of the connecting frame 71. The liquid outlet end of the pump body 75 is equipped with a liquid spraying pipe 77. The liquid inlet end of the pump body 75 is connected to the liquid extraction pipe 76. The liquid extraction pipe 76 extends into the container frame 72. The liquid spraying pipe 77 is aligned with the middle of the connecting frame 62.

[0036] This device can be used when rice products need to be processed and shaped. In use, rice slurry is first added to the container 72. Then, the drive motor 73 can be controlled to rotate the stirring rod 74, stirring the rice slurry in the container 72. After stirring, the pump body 75 can be controlled to operate, drawing out the rice slurry through the extraction pipe 76 and spraying it through the spray pipe 77 onto the discharge trough 55 of the belt conveyor group 52. Before this, the reduction motor 66 can be controlled to operate, driving the triangular extrusion block 67 to rotate. The triangular extrusion block 67, when rotating, will slide... The frame 63 contacts and presses the sliding frame 63 downwards. As the sliding frame 63 moves downwards, it drives the pressing rod 64 downwards, compressing the elastic element 65. The downward movement of the pressing rod 64 allows it to contact and press the discharge trough 55 on the belt conveyor assembly 52, causing it to deform. This results in the edge of the discharge trough 55 being lower than its center, allowing the rice slurry to flow more evenly on the discharge trough 55. When the triangular pressing block 67 rotates to disengage from the sliding frame 63, the elastic element 65... Under the action of the sliding frame 63 and the extrusion rod 64, the stepper motor 53 can be controlled to continue operating, rotating through the belt drive assembly 54 and the rotating shaft 51, thereby driving the belt conveyor assembly 52 to rotate. When the belt conveyor assembly 52 rotates, it will drive the discharge chute 55 to rotate into the steam box 41. At this time, the stepper motor 53 stops operating, and then the steam box 41 can be controlled to operate, thereby spraying steam onto the rice paste through the nozzle 42, causing the rice paste to solidify, thus processing the rice paste into shape, and then continuing to drive the belt conveyor assembly 52 to rotate. The molded products are conveyed. When the molded products are conveyed to the arc position of the belt conveyor group 52, the molded products can be demolded from the belt conveyor group 52. The demolded molded products fall into the collection frame 21 and are collected by the collection frame 21. In this way, the device can be used to process rice products. When adding rice slurry, the rice slurry can be made to flow and spread by squeezing the discharge trough 55 on the belt conveyor group 52. There is no need for manual operation to spread the rice slurry, making the operation more convenient.

[0037] like Figure 4 and Figure 5 As shown, it also includes an oiling mechanism, which includes a rotating rod 81, a lower oiling roller 82, a transmission gear 83, and an oil-holding frame 84. The rotating rod 81 is rotatably connected to the upper right side of the support 2, and the lower oiling roller 82 is connected to the rotating rod 81. Both the rotating rod 81 and the right-side rotating shaft 51 are connected to transmission gears 83. The two transmission gears 83 mesh with each other so that when the rotating shaft 51 rotates, it can drive the lower oiling roller 82 to rotate through the transmission gears 83. The right side of the support 2 is connected to an oil-holding frame 84, which is located below the lower oiling roller 82. The oil-holding frame 84 is used to hold edible oil so that when the lower oiling roller 82 rotates, it can coat the edible oil in the oil-holding frame 84 and apply the edible oil to the belt conveyor assembly 52.

[0038] Initially, cooking oil can be added into the oil container 84. When the rotating shaft 51 on the right side rotates, the rotating rod 81 can be rotated through the transmission gear 83. When the rotating rod 81 rotates, it can drive the lower oiling roller 82 to rotate. When the lower oiling roller 82 rotates, it will pick up cooking oil and apply the cooking oil to the belt conveyor group 52 and the feeding trough 55, so as to prevent the formed rice products from sticking to the feeding trough 55.

[0039] like Figures 6-8 As shown, it also includes a striking mechanism, which includes a guide sleeve 91, a compression ring 92, a striking block 93, a convex shaft 94, and an elastic element 95. Two guide sleeves 91 are connected to the left side of the bracket 2. The compression ring 92 is connected inside the guide sleeve 91. A break is provided on the compression ring 92. Multiple striking blocks 93 are slidably connected to the pulley on the left side of the belt conveyor group 52 at uniform intervals along the circumference. The two ends of the striking block 93 are connected to the convex shaft 94. The compression ring 92 is located at the movement trajectory of the convex shaft 94 so that the convex shaft 94 will contact the compression ring 92 and be squeezed by the compression ring 92 when it moves. An elastic element 95, which is a return spring, is connected between the striking block 93 and the pulley of the belt conveyor group 52.

[0040] When the belt conveyor group 52 rotates, it will drive the striking block 93 and the cam shaft 94 to rotate. When the cam shaft 94 rotates, it will contact the extrusion ring 92 and be squeezed by the extrusion ring 92, causing the cam shaft 94 and the striking block 93 to move inward. The elastic element 2 95 is compressed. Then, when the cam shaft 94 continues to move, it will move to the break point of the extrusion ring 92. Under the action of the elastic element 2 95, the cam shaft 94 and the striking block 93 will reset. When the striking block 93 resets, it can strike the belt of the belt conveyor group 52, thereby helping to shake the formed rice products off and prevent the rice products from adhering to the discharge trough 55.

[0041] like Figure 9 As shown, it also includes a mounting bracket 111 and a fan 112. The mounting bracket 111 is connected between the tops of the two side plates 3, and multiple fans 112 are evenly spaced on the mounting bracket 111.

[0042] When the formed rice product is removed from the mounting frame 1, the fan 112 can be controlled to blow air onto the formed rice product to dissipate heat and cool it down.

[0043] This embodiment also provides a molding method for processing rice products, with the following specific steps: S1: Add rice slurry into the container frame 72, and control the drive motor 73 to drive the stirring rod 74 to rotate and stir the rice slurry in the container frame 72; S2: Control the pump body 75 to operate and extract the rice slurry through the liquid extraction pipe 76 and spray the rice slurry onto the discharge trough 55 of the belt conveyor group 52 through the liquid spraying pipe 77; S3: Control the reduction motor 66 to drive the triangular extrusion block 67 to rotate, the triangular extrusion block 67 rotates and extrudes the sliding frame 63 downward, the sliding frame 63 moves downward and drives the extrusion rod 64 downward, and the elastic element 65 moves downward. The rice slurry is compressed, and the extrusion rod 64 moves down to compress the discharge trough 55 on the belt conveyor group 52 until it deforms, so that the edge of the discharge trough 55 is lower than the middle position of the discharge trough 55, so that the rice slurry flows evenly on the discharge trough 55 and fills the discharge trough 55; S4: After filling, the stepper motor 53 is controlled to operate to drive the belt conveyor group 52 to rotate. The rotation of the belt conveyor group 52 drives the discharge trough 55 to rotate into the steam box 41. The steam box 41 is controlled to operate, and steam is sprayed onto the rice slurry through the nozzle 42, so that the rice slurry solidifies and is processed into shape, thereby completing the processing of the rice slurry.

[0044] The above description is merely an embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structural or procedural transformations made based on the content of the present invention specification, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of the present invention.

Claims

1. A forming device for processing rice products, characterized in that: It includes an installation frame (1), a bracket (2), a collection frame (21), a side plate (3), a heating mechanism, a conveying mechanism, and an extrusion mechanism. The bracket (2) is connected to the top of the installation frame (1), and the side plates (3) are connected to both sides of the installation frame (1). The bracket (2) is connected to a collection frame (21) for collecting the finished products. The installation frame (1) is equipped with a heating mechanism for heating and shaping the rice paste. The bracket (2) is equipped with a conveying mechanism for conveying the rice paste. The installation frame (1) is equipped with an extrusion mechanism. The heating mechanism includes a steam box (41) and nozzles (42). The steam box (41) is installed in the mounting frame (1), and nozzles (42) are installed on both sides of the steam box (41). The conveying mechanism includes a rotating shaft (51), a belt conveyor group (52), a stepper motor (53), and a belt drive group (54). The rotating shaft (51) is rotatably connected to both sides of the bracket (2). The belt conveyor group (52) is installed between the two rotating shafts (51). The belt conveyor group (52) passes through the middle of the steam box (41). The nozzles (42) on both sides are aligned with the part of the belt conveyor group (52) that passes through the steam box (41). The belt conveyor group (52) is evenly spaced with multiple feeding troughs (55) for adding rice paste. The stepper motor (53) is installed on the bracket (2). The belt drive group (54) is installed between the output shaft of the stepper motor (53) and one of the rotating shafts (51). The extrusion mechanism includes a side frame (61), a connecting frame (62), a sliding frame (63), an extrusion rod (64), an elastic element (65), a reduction motor (66), and a triangular extrusion block (67). The mounting frame (1) is connected to two side frames (61), and a connecting frame (62) is connected between the two side frames (61). A sliding frame (63) is slidably connected inside the connecting frame (62). Multiple extrusion rods (64) are evenly spaced at the bottom of the sliding frame (63). An elastic element (65) is connected between the extrusion rod (64) and the connecting frame (62). A reduction motor (66) is mounted on one of the side frames (61), and a triangular extrusion block (67) is connected to the output shaft of the reduction motor (66). The triangular extrusion block (67) is located above the sliding frame (63).

2. A forming device for processing rice products according to claim 1, characterized in that: It also includes a feeding mechanism, which includes a connecting frame (71), a container frame (72), a drive motor (73), a stirring rod (74), a pump body (75), a liquid extraction pipe (76), and a liquid spraying pipe (77). The top of the mounting frame (1) is connected to the connecting frame (71), and the container frame (72) is connected inside the connecting frame (71). The top of the container frame (72) is equipped with a drive motor (73), and the output shaft of the drive motor (73) is connected to a stirring rod (74). The stirring rod (74) extends into the container frame (72). The lower part of the connecting frame (71) is equipped with a pump body (75), and the liquid outlet end of the pump body (75) is equipped with a liquid spraying pipe (77). The liquid inlet end of the pump body (75) is connected to a liquid extraction pipe (76), and the liquid extraction pipe (76) extends into the container frame (72).

3. A forming apparatus for processing rice products according to claim 2, characterized in that: It also includes an oiling mechanism, which includes a rotating rod (81), a lower oiling roller (82), a transmission gear (83), and an oil holding frame (84). The rotating rod (81) is rotatably connected to the support (2), and the lower oiling roller (82) is connected to the rotating rod (81). The rotating rod (81) and one of the rotating shafts (51) are both connected to the transmission gear (83), and the two transmission gears (83) mesh with each other. The oil holding frame (84) is connected to the support (2).

4. A forming apparatus for processing rice products according to claim 3, characterized in that: It also includes a striking mechanism, which includes a guide sleeve (91), a compression ring (92), a striking block (93), a cam shaft (94), and an elastic element two (95). Two guide sleeves (91) are connected to the bracket (2). The compression ring (92) is connected inside the guide sleeve (91). A break is provided on the compression ring (92). Multiple striking blocks (93) are slidably connected to the pulley on the left side of the belt conveyor group (52) at uniform intervals along the circumference. Both ends of the striking block (93) are connected to the cam shaft (94). The compression ring (92) is located at the moving trajectory of the cam shaft (94). An elastic element two (95) is connected between the striking block (93) and the pulley of the belt conveyor group (52).

5. A forming apparatus for processing rice products according to claim 4, characterized in that: It also includes a mounting bracket (111) and a fan (112). The mounting bracket (111) is connected between the tops of the two side plates (3), and multiple fans (112) are evenly spaced on the mounting bracket (111).

6. A rice product forming method using the rice product forming apparatus of claim 5, characterized in that: The specific steps are as follows: S1: Add rice slurry into the container (72), and control the drive motor (73) to drive the stirring rod (74) to rotate and stir the rice slurry in the container (72); S2: Control the pump body (75) to operate and extract the rice slurry through the liquid extraction pipe (76) and spray the rice slurry through the spray pipe (77) onto the discharge trough (55) of the belt conveyor group (52); S3: Control the reduction motor (66) to drive the triangular extrusion block (67) to rotate, the triangular extrusion block (67) rotates and extrudes the sliding frame (63) downward, the sliding frame (63) moves downward and drives the extrusion rod (64) downward, the elastic element (65) is compressed, and the extrusion rod ( 64) Move down to squeeze the feeding trough (55) on the belt conveyor group (52) until it deforms, so that the edge of the feeding trough (55) is lower than the middle position of the feeding trough (55), so that the rice paste flows evenly on the feeding trough (55) and fills the feeding trough (55); S4: After filling, control the stepper motor (53) to drive the belt conveyor group (52) to rotate. The rotation of the belt conveyor group (52) drives the feeding trough (55) to rotate into the steam box (41). Control the steam box (41) to operate and spray steam onto the rice paste through the nozzle (42) so that the rice paste solidifies and is processed into shape, thereby completing the processing of the rice paste.

Citation Information

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