Efficient detection device for rice noodle production

The detection device, which combines a motor-driven screw rod and a CNC computer, solves the problems of low efficiency and inconvenient data in humidity and color difference detection in rice noodle production, and achieves efficient and stable detection and analysis.

CN223485820UActive Publication Date: 2025-10-28SHANGHAI PUYUAN FOOD CO LTD
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Patent Information

Application Number
CN202422235647.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-12
Publication Date
2025-10-28
Estimated Expiration
2034-09-12

AI Technical Summary

Technical Problem

Existing rice noodle production detection equipment is difficult to efficiently detect the moisture and color difference of long rice noodles, and the detection data is not convenient for workers to analyze.

Method used

A motor-driven screw is used to drive the colorimeter and humidity detector on the movable table for displacement adjustment, combined with a CNC computer for data analysis and feedback, the frame components and guide rails are used to improve the detection stability, and the conveyor rack and rollers are used to assist in the transportation of rice noodles.

Benefits of technology

It achieves efficient detection of rice noodle moisture and color difference, ensuring that the product meets the standards, and facilitates workers to analyze the test results in real time through CNC computers, improving detection efficiency and stability.

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Abstract

The utility model relates to the field of rice noodle production detection, in particular to an efficient detection device for rice noodle production, and adopts the technical scheme that the efficient detection device for rice noodle production comprises a motor, a screw rod, a movable table, a colorimeter, a frame assembly and a bearing assembly, a motor is installed on the frame assembly, the left end of a motor output unit is fixedly connected with a lead screw, through holes which are symmetrical in the front-back direction are formed in the left end and the right end of the movable table in a penetrating mode, and spiral grooves are formed in the centers of the left end and the right end of the movable table in a penetrating mode. According to the rice noodle color difference detection device, the movable table is arranged on the bearing assembly to drive the colorimeter on the movable table to perform displacement adjustment in the left-right direction along the outer wall of the lead screw, so that the rice noodles falling on the bearing assembly are subjected to color difference detection, and a product is ensured to meet a standard color difference range; and color difference and humidity data of the rice noodles are analyzed and fed back.
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Description

Technical Field

[0001] This utility model belongs to the field of rice noodle production testing, specifically relating to a high-efficiency testing device for rice noodle production. Background Art

[0002] In rice noodle production, testing mainly focuses on the quality of raw materials, hygiene standards during the production process, and the taste and texture of the final product. Common testing methods include microbial testing, physical property testing, and sensory evaluation.

[0003] When existing testing devices are used to test the quality of rice noodles, the detection positions of general testing structures are relatively fixed. However, freshly produced rice noodles are quite long, and testing devices with fixed detection positions often cannot efficiently detect color difference or humidity on the surface of long rice noodles. In addition, the detection data of general testing structures often need to be connected to other machines to feed the detection data back to the workers for viewing, which makes it very difficult for workers to analyze the test results.

[0004] Therefore, in response to the problem that the fixed-structure testing equipment is not effective for testing longer rice noodles when used to test the quality of rice noodle production, and that the test data is not easy for workers to analyze, a high-efficiency testing device for rice noodle production has been developed. By adding a color difference detection structure, a humidity detection structure, and a displacement adjustment structure to the testing components, the effectiveness and efficiency of the device in detecting humidity and color difference of rice noodles can be improved, and its ease of use can be enhanced. Utility Model Content

[0005] To overcome the problem that the testing device is difficult to efficiently detect the humidity and color difference of rice noodles when used to test the quality of rice noodle production, and that it is also inconvenient for workers to know the data after the rice noodle test.

[0006] The technical solution of this utility model is as follows: a high-efficiency detection device for rice noodle production, including a motor and a lead screw, as well as a movable table, a colorimeter, a frame assembly, and a support assembly. The frame assembly for detecting the humidity of rice noodles is installed on the support assembly. The motor is installed on the frame assembly. The lead screw is fixed to the left end of the motor output unit. The movable table has symmetrical through holes at both ends. The center of the movable table has a threaded groove that matches the lead screw. A third groove is opened at the lower end of the movable table, and the colorimeter is installed in the third groove.

[0007] Preferably, the motor drives the lead screw to rotate, thereby causing the colorimeter on the movable platform to move left and right along the outer wall of the lead screw. This allows the colorimeter to fall onto the supporting component and detect the color difference on the surface of the rice noodles, ensuring that the product meets the standard color difference range. The frame component then detects the moisture content of the rice noodles and analyzes and provides feedback on the color difference and humidity data of the rice noodles.

[0008] Preferably, the frame assembly includes a support frame, guide rails, and a humidity detector. The humidity detector is installed at the four corners of the inner wall of the support frame. A second groove is opened through the upper end of the support frame. The second groove contains symmetrical guide rails. During use, the two guide rails can be used to limit the movement of the movable platform, thereby improving the stability of the movable platform during movement and adjustment.

[0009] Preferably, the left end of the lead screw is adapted to the left end of the support frame, and the right end of the support frame has a through-hole with a mounting groove in which a motor is installed. The front end of the support frame has a first groove in which a CNC computer is installed. The inner wall of the guide rail fits against the outer wall of the through hole. In use, the CNC computer can analyze the color difference data and humidity data detected by the colorimeter and humidity meter, and display the analyzed data on the screen of the CNC computer.

[0010] Preferably, the CNC computer is electrically connected to the motor, and the CNC computer is also electrically connected to the humidity detector and colorimeter. In use, the CNC computer can start the motor to rotate according to the program it has programmed, and control the left and right displacement of the movable table by controlling the speed of the lead screw.

[0011] Preferably, the load-bearing components include a conveyor frame, foot pads, and support legs. The inner wall of the conveyor frame is rotatably mounted with equally spaced roller bodies. The lower end of the conveyor frame is fixedly connected to three sets of support legs with progressively increasing heights. The lower ends of the support legs are fixedly connected to foot pads. In use, the three sets of support legs, together with the foot pads, can provide multi-point support for the conveyor frame, thereby improving the conveyor frame's conveying effect and stability of rice noodles.

[0012] Preferably, the conveyor frame is divided into two sections: a planar conveying inspection section and an angled conveying transport section. In use, the two conveyor platforms can efficiently transport the finished rice noodles and reduce the inspection time of the rice noodles.

[0013] Preferably, a symmetrical roller support is installed at the upper center of the conveyor frame, and an electric roller is installed on the roller support. In use, the electric roller can assist the roller body in conveying the rice noodles after production.

[0014] The beneficial effects of this utility model are:

[0015] 1. The motor drives the lead screw to rotate, which in turn moves the colorimeter on the movable table to move left and right along the outer wall of the lead screw. This allows the colorimeter to fall onto the support component and detect the color difference on the surface of the rice noodles, thus ensuring that the product meets the standard color difference range. The frame component also detects the moisture content of the rice noodles and analyzes and provides feedback on the color difference and humidity data of the rice noodles.

[0016] 2. The CNC computer can analyze the color difference and humidity data detected by the colorimeter and humidity meter, and display the analyzed data on the CNC computer screen. Compared with the existing external display structure, this makes it easier for users to analyze the color difference and humidity of the rice noodles.

[0017] 3. The conveyor frame can be supported at multiple points by three sets of support legs and foot pads. Compared with the existing support structure, this can improve the conveyor frame's conveying effect and stability of rice noodles. Attached Figure Description

[0018] Figure 1 The diagram shown is a three-dimensional structural schematic of a high-efficiency testing device for rice noodle production according to this utility model.

[0019] Figure 2 The diagram shown is a three-dimensional disassembled view of a high-efficiency testing device for rice noodle production according to this utility model.

[0020] Figure 3 The diagram shown is a three-dimensional disassembled view of the supporting component of a high-efficiency testing device for rice noodle production according to this utility model.

[0021] Figure 4 The diagram shown is a three-dimensional disassembly view of the frame component of a high-efficiency testing device for rice noodle production according to this utility model.

[0022] Figure 5 The diagram shows a three-dimensional structural schematic of the motor, lead screw, movable table, and colorimeter of a high-efficiency testing device for rice noodle production according to this utility model.

[0023] Explanation of reference numerals in the attached drawings: 1-Conveyor frame, 2-Bearing frame, 3-Motor, 4-Moving platform, 5-Foot pad, 6-Support leg, 7-Roller body, 8-Electric roller, 9-Roller bracket, 10-First trough, 11-Humidity detector, 12-Second trough, 13-CNC computer, 14-Guide rail, 15-Mounting groove, 16-Lead screw, 17-Through hole, 18-Screw groove, 19-Third trough, 20-Color difference meter. DETAILED DESCRIPTION

[0024] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0025] Please see Figures 1-5 This utility model provides an embodiment of a high-efficiency testing device for rice noodle production, including a motor 3 and a lead screw 16, as well as a movable platform 4, a colorimeter 20, a frame assembly, and a support assembly. The frame assembly for detecting the humidity of the rice noodles is mounted on the support assembly. The motor 3 is mounted on the frame assembly, and the lead screw 16 is fixedly connected to the left end of the output unit of the motor 3. The movable platform 4 has through holes 17 that are symmetrically arranged at both ends. The movable platform 4 has threaded grooves 18 that are adapted to the lead screw 16 at the center of both ends. The lower end of the movable platform 4 has a third groove 19, in which the colorimeter 20 is installed. The motor 3 drives the lead screw 16 to rotate, thereby causing the colorimeter 20 on the movable platform 4 to move left and right along the outer wall of the lead screw 16, so that it falls on the support assembly to detect the color difference on the surface of the rice noodles, thereby ensuring that the product meets the standard color difference range. The frame assembly detects the moisture content of the rice noodles and analyzes and provides feedback on the color difference and humidity data of the rice noodles.

[0026] Please see Figure 4 In this embodiment, the frame assembly includes a support frame 2, guide rails 14, and a humidity detector 11. The humidity detector 11 is installed at the four corners of the inner wall of the support frame 2. A second groove 12 is opened through the upper end of the support frame 2. The guide rails 14 are fixedly connected to the second groove 12. In use, the two guide rails 14 can limit the movement of the movable table 4 to improve the stability of the movable table 4 during movement and adjustment. The left end of the lead screw 16 is adapted to the left end of the support frame 2. A mounting groove 15 is opened through the right end of the support frame 2. A motor 3 is installed in the mounting groove 15. A first groove 10 is opened at the front end of the support frame 2. A CNC computer 13 is installed in the first groove 10. The inner wall of the guide rail 14 is in contact with the outer wall of the through hole 17. In use, the CNC computer 13 can analyze the color difference data and humidity data detected by the colorimeter 20 and the humidity detector 11, and display the analyzed data on the screen of the CNC computer 13.

[0027] Please see Figure 3In this embodiment, the supporting component includes a conveyor frame 1, foot pads 5, and support legs 6. Equally spaced roller bodies 7 are rotatably mounted on the inner wall of the conveyor frame 1. Three sets of support legs 6 with progressively increasing heights are fixed to the lower end of the conveyor frame 1. Foot pads 5 are fixed to the lower end of the support legs 6. In use, the three sets of support legs 6, in conjunction with the foot pads 5, can provide multi-point support for the conveyor frame 1, thereby improving the conveying effect and stability of the rice noodles. The conveyor frame 1 is divided into two sections: a planar conveying detection section and an angled conveying transport section. In use, the two conveying platforms can efficiently transport the finished rice noodles and reduce the detection time. A symmetrical roller support 9 is installed at the upper center of the conveyor frame 1. An electric roller 8 is installed on the roller support 9. In use, the electric roller 8 can assist the roller body 7 in conveying the finished rice noodles.

[0028] When working, first, the device is moved to the discharge port of the rice noodle production machine, and the rice noodles after production are put into the conveyor frame 1. The rice noodles are moved along the outer wall of the roller body 7 to the bottom of the support frame 2 by the weight of the rice noodles themselves and the electric roller 8.

[0029] Next, the CNC computer 13 starts the motor 3, which drives the lead screw 16 to rotate, so that the movable table 4 moves left and right along the outer wall of the guide rail 14. This drives the colorimeter 20 to perform multi-segment color difference detection on the rice noodles, and the humidity detector 11 detects the moisture in the rice noodles. The color difference data and humidity data of the rice noodles are fed back to the CNC computer 13 for analysis, and the analyzed color difference data and humidity data are displayed on the screen of the CNC computer 13.

[0030] Through the above steps, the motor 3 drives the lead screw 16 to rotate, thereby causing the colorimeter 20 on the movable table 4 to move left and right along the outer wall of the lead screw 16. This allows the colorimeter to fall onto the supporting component and detect the color difference on the surface of the rice noodles, ensuring that the product meets the standard color difference range. The frame component also detects the moisture content of the rice noodles and analyzes and provides feedback on the color difference and humidity data. This solves the problem that the detection device is difficult to efficiently detect the humidity and color difference of rice noodles when used to detect the quality of rice noodle production, and it is also inconvenient for workers to know the data after the rice noodles are tested.

[0031] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.

Claims

1. A high-efficiency detection device for rice noodle production, comprising a motor (3) and a lead screw (16), characterized in that: It also includes a movable platform (4), a colorimeter (20), a frame assembly, and a support assembly. The support assembly is equipped with a frame assembly for detecting the humidity of the rice noodles. A motor (3) is installed on the frame assembly. A lead screw (16) is fixed to the left end of the output unit of the motor (3). The movable platform (4) has symmetrical through holes (17) at both ends. A screw groove (18) is opened through the center of both ends of the movable platform (4). The screw groove (18) is adapted to the lead screw (16). A third groove (19) is opened at the lower end of the movable platform (4). A colorimeter (20) is installed in the third groove (19). The frame assembly includes a support frame (2), a guide rail (2), and a support frame (2). 14) Humidity detector (11) is installed at the four corners of the inner wall of the support frame (2). A second groove (12) is opened through the upper end of the support frame (2). A guide rail (14) with front and rear symmetry is fixed in the second groove (12). The left end of the screw (16) is adapted to the left end of the support frame (2). An installation groove (15) is opened through the right end of the support frame (2). A motor (3) is installed in the installation groove (15). A first groove (10) is opened at the front end of the support frame (2). A CNC computer (13) is installed in the first groove (10). The inner wall of the guide rail (14) is in contact with the outer wall of the through hole (17).

2. The high-efficiency detection device for rice noodle production according to claim 1, characterized in that: The CNC computer (13) is electrically connected to the motor (3), and the CNC computer (13) is electrically connected to the humidity detector (11) and the colorimeter (20).

3. The high-efficiency detection device for rice noodle production according to claim 1, characterized in that: The load-bearing components include a conveyor frame (1), foot pads (5) and support legs (6). The inner wall of the conveyor frame (1) is rotatably mounted with equally spaced roller bodies (7). The lower end of the conveyor frame (1) is fixedly connected to three sets of support legs (6) with progressively increasing heights. The lower end of the support legs (6) is fixedly connected to foot pads (5).

4. The high-efficiency detection device for rice noodle production according to claim 3, characterized in that: The conveyor frame (1) is divided into two sections: a detection section for planar conveying and a transport section for oblique conveying.

5. The high-efficiency detection device for rice noodle production according to claim 4, characterized in that: A symmetrical roller support (9) is installed at the upper center of the conveyor frame (1), and an electric roller (8) is installed on the roller support (9).