Double-bin self-service fresh rice machine

By designing a dual-compartment structure and control components, the storage and separation of different varieties of rice within the same equipment were achieved, solving the problem that existing equipment could only store the same variety of rice and meeting the diverse needs of customers.

CN224293318UActive Publication Date: 2026-05-29SHENNONG (TIANJIN) AGRICULTURAL DEVELOPMENT CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENNONG (TIANJIN) AGRICULTURAL DEVELOPMENT CO LTD
Filing Date
2025-04-26
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing self-service intelligent rice milling machines can only store and sell the same variety of rice, which cannot meet diverse needs.

Method used

A dual-compartment self-service fresh rice machine was designed, comprising two lower storage compartments and two upper storage compartments. Different varieties of rice are stored and separated through fans and control components, and rice is conveyed and milled using multiple connecting pipes and valve structures.

Benefits of technology

This allows for the sale of different varieties of rice within the same equipment, meeting the diverse needs of customers.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a rice milling technical field especially, relate to a double -bin self -service fresh rice machine, each support frame is equipped with an upper storage bin, each storage bin is connected with fan four export through connecting pipe six, the import of fan four is connected with connecting pipe five, connecting pipe five is connected with the interface of four -way connector, the other interface of four -way connector is connected with control assembly no.
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Description

Technical Field

[0001] This utility model relates to the field of rice milling technology, and in particular to a dual-compartment self-service fresh rice machine. Background Technology

[0002] Rice, also known as paddy rice or rice paddy, is an edible grain, an annual herbaceous plant that thrives in warm and humid conditions. In southern China, it is commonly called "rice" or "grain". The hulled grain is rice, and when cooked, it is called rice or white rice. Rice is one of my country's main grain crops, with a long history of cultivation and a large planting area. Rice is not only a staple food, but also a raw material for brewing wine and making maltose. Currently, most rice is stored in supermarkets and then purchased for home consumption. This method of consumption often results in consuming stale rice, which significantly reduces its taste and nutritional value. However, some unattended self-service intelligent rice milling machines have emerged in communities. These machines store hulled rice in a grain chamber inside a cabinet. Customers interact with the machine via a touchscreen on the outer wall of the cabinet, complete payment, and then the machine adds the specified amount of rice to the milling machine inside the cabinet according to the user's input. The rice is then milled to the user's desired polishing level to obtain freshly milled rice. However, existing rice milling machines can only store and sell the same variety of rice, which cannot meet diverse needs. Utility Model Content

[0003] To address the problem of only being able to store and sell the same variety of rice, which cannot meet diverse needs, this utility model proposes a dual-compartment self-service fresh rice machine.

[0004] To achieve the above objectives, the present invention adopts the following technical solution:

[0005] A dual-compartment self-service fresh rice machine includes two lower storage compartments. A support plate is fixed above each lower storage compartment, and two support frames are fixed to the support plates. Each support frame holds an upper storage compartment. Each storage compartment is connected to the outlet of a blower (4) via a connecting pipe (6). The inlet of the blower (4) is connected to a connecting pipe (5). The connecting pipe (5) is connected to one interface of a four-way connector. The other interface of the four-way connector is connected to a control component (2). The other end of the control component (2) is connected to one interface of a three-way connector. The other interface of the three-way connector is connected to the inside of the rice storage compartment via a connecting pipe (2). An insertion pipe is provided in each storage compartment, and the insertion pipe is connected to one end of an upper feeding pipe (1). The other end of the feeding pipe is connected to the connecting pipe of the control component one. The upper part of the storage silo is connected to the lower feeding pipe one and the lower feeding pipe two. The end of the lower feeding pipe one is connected to the connecting pipe of the control component one, and the end of the lower feeding pipe two is connected to the connecting pipe of the control component one. The other end of the connecting pipe of the control component one is connected to the connecting pipe one. The connecting pipe one is connected to the interior of the upper storage silo. The connecting pipe of the control component one is connected to the blower one through the connecting pipe two. The connecting pipe of the control component two is connected to the blower one through the connecting pipe two. Both blowers one are connected to the other two interfaces of the four-way connector through the connecting pipe three.

[0006] Furthermore, the last interface of the three-way connector is connected to one end of the control component four, the other end of the control component four is connected to one end of the connecting pipe four, the other end of the connecting pipe four is connected to the air outlet of the blower two, the lower discharge port of the upper storage silo is connected to one end of the control component three, the other end of the control component three is connected to the feed end of the rice milling component, the rice discharge end of the rice milling component is connected to the screening component, the large particle discharge end of the screening component is connected to the weighing component, the discharge end of the weighing component is connected to the rice discharge silo, and the rice discharge silo is located on the rice receiving silo.

[0007] Furthermore, the lower storage bin includes lower storage bin one and lower storage bin two.

[0008] Furthermore, the structure of control component four is consistent with that of control component two.

[0009] Furthermore, the control component one includes a connector one, on the side of which are fixedly mounted a mounting plate one and a mounting plate two arranged in parallel. Each mounting plate one and mounting plate two contains a bearing one. The inner rings of the two bearings one are fixedly connected to a lead screw one. The end of the lead screw one is fixedly connected to a large gear one, which meshes with a small gear one. The small gear one is driven by a motor one. A moving block one is mounted on the lead screw one, and the moving block one can move axially when the lead screw one rotates. A pressure plate one is fixed to the upper end face of the connector one. A sliding groove one is provided between the pressure plate one and the connector one, and a control plate one is installed in the sliding groove one. The control board includes a plate body with three connecting holes: a first connecting hole, a second connecting hole, and a third connecting hole. A connecting plate is fixedly connected to a moving block. Mounting plates one and two are fixedly connected to a mounting component at their lower parts. A proximity switch one and a proximity switch two are mounted on the mounting component one. A connecting pipe one, a connecting pipe two, and a connecting pipe three are provided on the upper surface of the pressure plate. A connecting pipe four, a connecting pipe five, and a connecting pipe six are provided on the lower surface of the connecting component. Connecting pipe one and connecting pipe four are concentrically arranged; connecting pipe two and connecting pipe five are concentrically arranged; and connecting pipe three and connecting pipe six are concentrically arranged.

[0010] Furthermore, the distance between the first connecting hole and the second connecting hole is greater than the distance between the first connecting pipe and the second connecting pipe.

[0011] Furthermore, the distance between the second connecting hole and the third connecting hole is greater than the distance between the second connecting pipe and the third connecting pipe.

[0012] Beneficial effects: By setting up two different rice milling systems, this utility model enables the fresh rice machine to sell different varieties of rice, meeting the diverse needs of customers. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the three-dimensional structure of this utility model. Figure 1 ;

[0014] Figure 2 This is a utility model Figure 1 Enlarged view at point A1;

[0015] Figure 3 This is a utility model Figure 1 Enlarged view at point A2;

[0016] Figure 4 This is a schematic diagram of the three-dimensional structure of this utility model. Figure 2 ;

[0017] Figure 5 This is a utility model Figure 4 Enlarged view at point A3;

[0018] Figure 6 This is a three-dimensional representation of the control component one in this utility model. Figure 1 ;

[0019] Figure 7 This is a three-dimensional representation of the control component one in this utility model. Figure 2 ;

[0020] Figure 8 This is a utility model Figure 6 A 3D view of the central control panel;

[0021] Figure 9 This is the three-dimensional control component two in this utility model. Figure 1 ;

[0022] Figure 10 This is the three-dimensional control component two in this utility model. Figure 2 ;

[0023] Figure 11 This is a utility model Figure 9 A 3D view of the second control board;

[0024] Figure 12 This is the three-dimensional control component three in this utility model. Figure 1 ;

[0025] Figure 13 This is the three-dimensional control component three in this utility model. Figure 2 ;

[0026] Attached reference numerals: 1 Lower storage bin one, 2 Lower storage bin two, 3 Support plate, 4 Feeding pipe one, 5 Lower feed pipe one, 6 Lower feed pipe two, 7 Control component one, 8 Fan one, 9 Four-way connector, 10 Control component two, 11 Three-way connector, 12 Connecting pipe two, 13 Rice storage bin, 14 Upper storage bin, 15 Control component three, 16 Rice milling component, 17 Screening component, 18 Connecting component, 19 Weighing component, 20 Rice discharge bin, 21 Rice receiving bin, 22 Connecting pipe three, 23 Fan two, 24 Connecting pipe four, 25 Control component four, 26 Connecting pipe five, 27 Connecting pipe six, 28 Fan three, 29 Support frame;

[0027] 701 Connector 1, 702 Mounting Plate 1, 703 Mounting Plate 2, 704 Lead Screw 1, 705 Large Gear 1, 706 Small Gear 1, 707 Motor 1, 708 Moving Block 1, 709 Proximity Switch 1, 710 Proximity Switch 2, 711 Pressure Plate 1, 712 Control Board 1, 713 Fixing Component 1, 714 Connecting Pipe 1, 715 Connecting Pipe 2, 716 Connecting Pipe 3, 717 Connecting Pipe 4, 718 Connecting Pipe 5, 719 Connecting Pipe 6, 720 Mounting Component 1;

[0028] 71201 Plate body one, 71202 Connecting hole one, 71203 Connecting hole two, 71204 Connecting hole three, 71205 Connecting plate one;

[0029] 1001 Connector II, 1002 Mounting Plate III, 1003 Mounting Plate IV, 1004 Lead Screw II, 1005 Large Gear II, 1006 Small Gear II, 1007 Motor II, 1008 Moving Block II, 1009 Proximity Switch III, 1010 Proximity Switch IV, 1011 Pressure Plate II, 1012 Control Board II, 1013 Fixing Component II, 1014 Connecting Pipe VII, 1015 Connecting Pipe VIII, 1016 Mounting Component II;

[0030] 101201 Plate body two, 101202 Connecting hole four, 101203 Connecting plate two;

[0031] 1501 Connector 3, 1502 Mounting Plate 5, 1503 Control Plate 3, 1504 Fixing Bolt, 1505 Proximity Switch 5, 1506 Proximity Switch 6, 1507 Lead Screw 3, 1508 Motor 3, 1509 Mounting Plate 6, 150301 Connecting Hole 5. Detailed Implementation

[0032] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0033] In the description of this utility model, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0034] Reference Figure 1-13A dual-compartment self-service fresh rice machine includes two lower storage compartments, namely, Lower Storage Compartment 1 and Lower Storage Compartment 2. Support plates 3 are fixed to the upper parts of the two lower storage compartments. Two support frames 29 are fixed to the support plates 3, and each support frame 29 is equipped with an upper storage compartment 14. Each storage compartment is connected to the outlet of a blower 4 via a connecting pipe 6 27. The inlet of the blower 4 is connected to a connecting pipe 5 26. The connecting pipe 5 26 is connected to one interface of a four-way connector 9. The other interface of the four-way connector 9 is connected to a control component 2 10. The other end of the control component 2 10 is connected to one interface of a three-way connector 11. The other interface of the three-way connector 11 is connected to the inside of a rice storage compartment 13 via a connecting pipe 2 12. An insertion pipe is provided in each storage compartment, and the insertion pipe is connected to one end of an upper feeding pipe 4. The other end of the feed pipe is connected to the connection pipe of the control component 7. The upper part of the storage silo is connected to the lower feed pipe 5 and the lower feed pipe 6. The end of the lower feed pipe 5 is connected to the connection pipe of the control component 7. The end of the lower feed pipe 6 is connected to the connection pipe of the control component 7. The other end of the connection pipe of the control component 7 is connected to the connecting pipe. The connecting pipe is connected to the interior of the upper storage silo 14. The connection pipe of the control component 7 is connected to the blower 8 through the connecting pipe. The connection pipe of the control component 10 is connected to the blower 8 through the connecting pipe. Both blowers 8 are connected to the other two interfaces of the four-way connector 9 through the connecting pipe. Connecting pipe one includes connecting pipe one 714 and connecting pipe four 717, connecting pipe two includes connecting pipe two 715 and connecting pipe five 718, and connecting pipe three includes connecting pipe three 716 and connecting pipe six 719.

[0035] Reference Figure 1-5 The last interface of the three-way connector 11 is connected to one end of the control component 4 25. The other end of the control component 4 25 is connected to one end of the connecting pipe 4 24. The other end of the connecting pipe 4 24 is connected to the air outlet of the blower 2 23. The lower discharge port of the upper storage silo 14 is connected to one end of the control component 3 15. The other end of the control component 3 15 is connected to the feed end of the rice milling component 16. The rice discharge end of the rice milling component 16 is connected to the screening component 17. The large particle discharge end of the screening component 17 is connected to the weighing component 19. The large particle discharge end of the screening component 17 is provided with a connecting component 18. The connecting component 18 is located on the upper part of the weighing component 19. The discharge end of the weighing component 19 is connected to the rice discharge silo 20. The rice discharge silo 20 is located on the rice receiving silo 21. The bottom of the rice milling component 16 is connected to the air inlet of the blower 2 23 through the connecting pipe 3 22.

[0036] Reference Figure 6-7The control component 7 includes a connector 701, the side of which is fixedly connected to a fixing component 713. A parallel mounting plate 702 and a mounting plate 703 are fixedly mounted on the side of the connector 701. Each mounting plate 702 and mounting plate 703 houses a bearing. The inner rings of the two bearings are fixedly connected to a lead screw 704. The end of the lead screw 704 is fixedly connected to a large gear 705, which meshes with a small gear 706 driven by a motor 707. A moving block 708 is mounted on the lead screw 704, capable of axial movement when the lead screw 704 rotates. A pressure plate 711 is fixed to the upper surface of the connector 701. A sliding groove is provided between the pressure plate 711 and the connector 701, and a control plate 712 is installed in the sliding groove. (Refer to...) Figure 8 The control board 712 includes a plate body 71201, which has a connecting hole 71202, a connecting hole 71203, and a connecting hole 71204. A connecting plate 71205 is provided on the side of the plate body 71201, and the connecting plate 71205 is fixedly connected to a moving block 708. The lower parts of the mounting plates 702 and 703 are fixedly connected to a mounting component 720. A proximity switch 709 and a proximity switch 710 are mounted on the mounting component 720. The pressure plate 71... The upper end face of the connector 701 is provided with connecting pipe 1 714, connecting pipe 2 715, and connecting pipe 3 716. The lower end face of the connector 701 is provided with connecting pipe 4 717, connecting pipe 5 718, and connecting pipe 6 719. Connecting pipe 1 714 and connecting pipe 4 717 are concentrically arranged, connecting pipe 2 715 and connecting pipe 5 718 are concentrically arranged, and connecting pipe 3 716 and connecting pipe 6 719 are concentrically arranged. The distance between connecting hole 1 71202 and connecting hole 2 71203 is greater than the distance between connecting pipe 1 714 and connecting pipe 2 715. The distance between connecting hole 2 71203 and connecting hole 3 71204 is greater than the distance between connecting pipe 2 715 and connecting pipe 3 716.

[0037] In operation, motor 707 drives pinion 706 to rotate, which in turn drives gear 705 to rotate. Gear 705 then drives lead screw 704 to rotate. The rotation of lead screw 704 causes movable block 708 to move axially, which in turn moves control plate 712 within sliding groove 1. This allows control plate 71201 to close the connecting pipe 714 and connecting pipe 717. The connecting hole 71201 on plate 71201... 1203 connects connecting pipe two 715 and connecting pipe five 718. Connecting hole three 71204 on plate one 71201 connects connecting pipe three 716 and connecting pipe six 719. It can also connect connecting pipe one 71202 on control plate one 712 to connecting connecting pipe one 714 and connecting pipe four 717. Plate one 71201 on plate one 71201 closes connecting pipe two 715 and connecting pipe five 718. Plate one 71201 on plate one 71201 connects connecting pipe three 716 and connecting pipe six 719. The sealing is achieved by moving block 708 close to proximity switch 709 and proximity switch 710, causing proximity switches 709 and 710 to generate signals. When moving block 708 approaches proximity switch 709, proximity switch 709 generates a signal. At this time, the control board 7121 closes the connection pipe 714 and connection pipe 717. The connecting hole 71203 on the control board 7121 connects connection pipe 715 and connection pipe 718. The connecting hole 3 71204 connects the connecting pipe 3 716 and the connecting pipe 6 719; when the moving block 1 708 approaches the proximity switch 2 710, the proximity switch 2 710 generates a signal. At this time, the connecting hole 1 71202 of the control board 1 712 connects the connecting pipe 1 714 and the connecting pipe 4 717. The board 1 71201 on the board 1 71201 closes the connecting pipe 2 715 and the connecting pipe 5 718. The board 1 71201 on the board 1 71201 closes the connecting pipe 3 716 and the connecting pipe 6 719.

[0038] Reference Figure 9-10The control component 2 10 includes a connector 2 1001, the side of which is fixedly connected to a fixing component 2 1013. Parallel mounting plates 3 1002 and 4 1003 are fixedly mounted on the side of the connector 2 1001. Each mounting plate 3 1002 and mounting plate 4 1003 is provided with a bearing 2. The inner rings of the two bearings 2 are fixedly connected to a lead screw 2 1004. The end of the lead screw 2 1004 is fixedly connected to a large gear 2 1005. 005 meshes with pinion 1006, which is driven by motor 1007. A movable block 1008 is provided on the lead screw 1004. When the lead screw 1004 rotates, the movable block 1008 can move axially on the lead screw 1004. A pressure plate 1011 is fixed to the upper end of the connecting member 1001. A sliding groove is provided between the connecting member 1001 and the pressure plate 1011. A control plate 1012 is provided in the sliding groove. (Refer to...) Figure 11 The control board 2 1012 includes a plate body 2 101201, on which a connecting hole 4 101202 is provided. A connecting plate 2 101203 is provided on the side of the plate body 2 101201, and the connecting plate 2 101203 is fixedly connected to the moving block 2 1008. A connecting pipe 7 1014 is provided on the upper end surface of the pressure plate 2 1011, and a connecting pipe 8 1015 is provided on the lower end surface of the connecting member 2 1001. The connecting pipe 7 1014 and the connecting pipe 8 1015 are concentrically arranged. A mounting member 2 1016 is fixed to the lower end of the mounting plate 3 1002 and the mounting plate 4 1003. A proximity switch 3 1009 and a proximity switch 4 1010 are mounted on the mounting member 2 1016. The structure of the control component 4 25 is the same as that of the control component 2 10.

[0039] In operation, motor 21007 drives pinion 21006 to rotate, which in turn drives gear 21005 to rotate. Gear 21005 then drives lead screw 21004 to rotate. The rotation of lead screw 21004 causes movable block 21008 to move axially. Movable block 21008 moves control plate 21012 within sliding groove 2, thus closing control plate 21012 onto connecting pipes 714 and 815. It also allows connecting hole 4101202 on control plate 21012 to overlap with connecting pipes 714 and 815, connecting them together. When the moving block 2 1008 approaches the proximity switch 3 1009 and proximity switch 4 1010, the proximity switches 3 1009 and 4 1010 generate signals. When the moving block 2 1008 approaches the proximity switch 3 1009, the proximity switch 3 1009 generates a signal. At this time, the connecting pipe 7 1014 and the connecting pipe 8 1015 are closed by the plate body 2 101201 of the control board 2 1012. When the moving block 2 1008 approaches the proximity switch 4 1010, the proximity switch 4 1010 generates a signal. At this time, the connecting pipe 7 1014, the connecting hole 4 101202, and the connecting pipe 8 1015 overlap, so that the connecting pipe 7 1014 and the connecting pipe 8 1015 are connected together.

[0040] Reference Figure 12-13 The control component 3 15 includes a connector 3 1501. A mounting plate 5 1502 is provided at the end of the connector 3 1501. A connecting hole 6 is provided at the center of the mounting plate 5 1502. A sliding groove 3 is provided on the upper surface of the mounting plate 5 1502. A control plate 3 1503 is provided in the sliding groove 3. A connecting hole 5 150301 is provided on the control plate 3 1503. A mounting plate 6 1509 is provided at the end of the control plate 3 1503. A threaded hole is provided on the mounting plate 6 1509, which is threadedly connected to a lead screw 3 1507. The end of the lead screw 3 1507 is fixedly connected to the output shaft of a motor 3 1508. Proximity switches 5 1505 and 6 1506 are mounted on the side of the connector. Several fixing bolts 1504 are provided on the mounting plate 5 1502.

[0041] In operation, the motor 31508 drives the lead screw 31507 to rotate. When the lead screw 31507 rotates, the mounting plate 6 1509 on it moves axially along the lead screw 31507 via threads. The mounting plate 6 1509 drives the control plate 3 1503 to move, thereby causing the connecting hole 5 150301 on the control plate 3 1503 to move back and forth. The connecting hole 5 150301 and the connecting hole 6 can coincide, and the control plate 3 1503 can also close the connecting hole 6, thus realizing the opening or closing of the discharge port at the lower end of the upper storage hopper 14. This is achieved through the side of the mounting plate 6 1509. When proximity switches 1505 and 1506 are brought close, they generate signals. When the side of mounting plate 1509 is close to proximity switch 1505, proximity switch 1505 generates a signal, and the connecting hole 6 is closed, and the discharge port of the upper storage bin 14 is also closed. When the side of mounting plate 1509 is close to proximity switch 1506, proximity switch 1506 generates a signal, and the connecting hole 150301 coincides with the connecting hole 6, and the connecting hole 6 is open, and the discharge port of the upper storage bin 14 is also open.

[0042] Two rice storage bins 13 store different varieties of fresh rice. When the two upper storage bins 14 need to be filled, the corresponding fan 28 is turned on. At this time, the proximity switch 1010 of control component 2 10 generates a signal, control component 2 10 turns on, control component 4 25 turns off, and fan 28 draws the fresh rice from the rice storage bins 13 into the upper storage bins 14 through connecting pipe 2 12, four-way connector 9, connecting pipe 5 26, and connecting pipe 6 27, thus completing the filling of the upper storage bins 14. At this time, the proximity switch 71 of control component 1 7 turns on. A signal is generated, and the connecting hole 71202 of the control board 712 connects the connecting pipe 714 and the connecting pipe 717. The board 71201 on the board 71201 closes the connecting pipe 715 and the connecting pipe 5. The board 71201 on the board 71201 closes the connecting pipe 716 and the connecting pipe 719. When the upper storage bin 14 is full of fresh rice, the fresh rice in the upper storage bin 14 can enter the lower storage bin through the connecting pipe 1, the connecting pipe 714 of the control component 7, the connecting pipe 717, and the discharge pipe 2.

[0043] When the lower storage silo needs replenishment, the fan 8 corresponding to the upper storage silo 14 is turned on. At this time, the proximity switch 1010 of the control component 10 generates a signal, the control component 10 turns on, and the control component 25 turns off. The fan 8 draws fresh rice from the rice storage silo 13 into the lower storage silo through the connecting pipe 12, the four-way connector 9, the connecting pipe 3, the connecting pipe 2, and the control component 7. At this time, the proximity switch 709 of the control component 7 generates a signal. The plate body 71201 of the control board 712 closes the connecting pipe 714 and the connecting pipe 4 717. The connecting hole 71203 on the plate body 71201 connects the connecting pipe 2 715 and the connecting pipe 5 718. The connecting hole 71204 on the plate body 71201 connects the connecting pipe 3 716 and the connecting pipe 6 719.

[0044] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A dual-compartment self-service fresh rice machine, characterized in that: It includes two lower storage hoppers, each with a support plate fixed to its upper part. Two support frames are fixed to the support plates, each supporting frame housing an upper storage hopper. Each storage hopper is connected to the outlet of a blower (4) via a connecting pipe (6). The inlet of the blower (4) is connected to a connecting pipe (5), which is connected to one interface of a four-way connector. The other interface of the four-way connector is connected to a control component (2). The other end of the control component (2) is connected to one interface of a three-way connector. The other interface of the three-way connector is connected to the inside of a rice storage hopper via a connecting pipe (2). An insertion pipe is installed in each storage hopper, connected to one end of an upper feeding pipe (1). The other end of the feed pipe is connected to the connection pipe of the control component 1. The upper part of the storage silo is connected to the lower feed pipe 1 and the lower feed pipe 2. The end of the lower feed pipe 1 is connected to the connection pipe 2 of the control component 1. The end of the lower feed pipe 2 is connected to the connection pipe 3 of the control component 1. The other end of the connection pipe 1 of the control component 1 is connected to the connecting pipe 1. The connecting pipe 1 is connected to the interior of the upper storage silo. The connection pipe 2 of the control component 1 is connected to the blower 1 through the connecting pipe 2. The connection pipe 3 of the control component 2 is connected to the blower 1 through the connecting pipe 2. Both blowers 1 are connected to the other two interfaces of the four-way connector through the connecting pipe 3.

2. The dual-compartment self-service fresh rice machine according to claim 1, characterized in that: The last interface of the three-way connector is connected to one end of the control component four, the other end of the control component four is connected to one end of the connecting pipe four, the other end of the connecting pipe four is connected to the air outlet of the blower two, the lower discharge port of the upper storage silo is connected to one end of the control component three, the other end of the control component three is connected to the feed end of the rice milling component, the rice discharge end of the rice milling component is connected to the screening component, the large particle discharge end of the screening component is connected to the weighing component, the discharge end of the weighing component is connected to the rice discharge silo, and the rice discharge silo is located on the rice receiving silo.

3. The dual-compartment self-service fresh rice machine according to claim 1, characterized in that: The lower storage silos include lower storage silo one and lower storage silo two.

4. A dual-compartment self-service fresh rice machine according to claim 1, characterized in that: The control component includes a connector, on the side of which are fixed parallel mounting plates 1 and 2. Each mounting plate 1 and mounting plate 2 houses a bearing 1. The inner rings of the two bearings 1 are fixedly connected to a lead screw 1. The end of the lead screw 1 is fixedly connected to a large gear 1, which meshes with a small gear 1. The small gear is driven by a motor 1. A moving block 1 is mounted on the lead screw 1, capable of axial movement when the lead screw 1 rotates. A pressure plate 1 is fixed to the upper surface of the connector 1. A sliding groove 1 is provided between the pressure plate 1 and the connector 1, and a control plate 1 is installed in the sliding groove 1. The control board includes a plate body, on which are provided a connecting hole 1, a connecting hole 2, and a connecting hole 3. A connecting plate 1 is provided on the side of the plate body 1, and the connecting plate 1 is fixedly connected to the moving block 1. The lower parts of the mounting plate 1 and the mounting plate 2 are fixedly connected to the mounting component 1. The mounting component 1 is equipped with a proximity switch 1 and a proximity switch 2. The upper end face of the pressure plate 1 is provided with a connecting pipe 1, a connecting pipe 2, and a connecting pipe 3. The lower end face of the connecting component is provided with a connecting pipe 4, a connecting pipe 5, and a connecting pipe 6. The connecting pipe 1 and the connecting pipe 4 are concentrically arranged, the connecting pipe 2 and the connecting pipe 5 are concentrically arranged, and the connecting pipe 3 and the connecting pipe 6 are concentrically arranged.

5. A dual-compartment self-service fresh rice machine according to claim 4, characterized in that: The distance between the first connecting hole and the second connecting hole is greater than the distance between the first connecting pipe and the second connecting pipe.

6. A dual-compartment self-service fresh rice machine according to claim 4, characterized in that: The distance between the second connecting hole and the third connecting hole is greater than the distance between the second connecting pipe and the third connecting pipe.