Food nutritional ingredient detection and analysis device

By designing a food nutritional component detection and analysis device with a rotating ring and multiple placement channels, the problem of low detection efficiency in the prior art is solved, and efficient, accurate and continuous detection of multiple samples is achieved.

CN223295958UActive Publication Date: 2025-09-02PINEN BIOTECHNOLOGY (SHENZHEN) CO LTD
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Patent Information

Application Number
CN202422466669.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-12
Publication Date
2025-09-02
Estimated Expiration
2034-10-12

AI Technical Summary

Technical Problem

The existing food nutritional component detection and analysis devices have shortcomings in terms of detection efficiency and cannot meet the needs of efficient testing, especially when facing a large number of samples, the operation process is too long, which affects the work progress.

Method used

A device including a rotating ring and multiple placement channels is designed. Through the rotating ring, multiple placement boxes are driven to perform spectral analysis in the analysis channel, and combined with a lifting mechanism and a connection mechanism to realize simultaneous detection of multiple samples.

Benefits of technology

It improves detection efficiency, simplifies operational processes, ensures the accuracy and continuity of detection, and is suitable for rapid analysis of large numbers of samples.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a food nutritional ingredient detection and analysis device which comprises analysis equipment and a rotating ring, the analysis equipment is provided with an analysis channel matched with the rotating ring, the analysis equipment is connected with the rotating ring through a connecting mechanism, the rotating ring is provided with a plurality of placing channels, and the placing channels are communicated with the analyzing channel. A placement box is arranged in each placement channel through a supporting mechanism, a lifting groove and an equipment groove are formed in the outer wall of the analysis equipment, a lifting screw rod is arranged in the lifting groove, a lifting motor connected with the lifting screw rod is arranged in the equipment groove, and a top plate used for jacking up the placement boxes is arranged on the lifting screw rod in a threaded sleeving mode through a limiting mechanism. Through the design of the rotating ring and the plurality of placing channels, a plurality of food samples can be placed at the same time and are sequentially detected, so that the detection efficiency is greatly improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of food analysis, in particular to a food nutritional component detection and analysis device. Background Art

[0002] The Food Nutrition Component Detection and Analysis Device primarily performs spectral analysis on food samples to determine the specific content of various nutrients in the food. By testing food samples placed in a container, it can quickly and accurately obtain nutritional information on the food. This provides critical data support for food manufacturers in product quality control and formula optimization, provides a strong basis for food safety regulators to conduct market supervision and risk assessments, and provides a vital data source for scientific research institutions conducting research related to food nutrition and health.

[0003] The food nutrient component detection and analysis device in the prior art has some shortcomings and is not easy to use. Specifically, there is only one placement device for placing samples on the device. Each time a test is performed, the sample must first be sent into the analysis and detection device through the placement device, and then taken out after the test is completed. Then, a new sample to be tested must be replaced before the next round of testing can be carried out. Such an operating procedure results in a long waiting time during the overall analysis process, which reduces the detection efficiency. Especially when faced with a large number of sample testing needs, it may seriously affect the work progress and cannot meet the actual needs of efficient testing. In order to improve it, a food nutrient component detection and analysis device is proposed. Utility Model Content

[0004] The purpose of the utility model is to solve the shortcomings of the prior art and to propose a food nutritional component detection and analysis device.

[0005] In order to achieve the above purpose, the present invention adopts the following technical solutions:

[0006] A food nutrient component detection and analysis device includes an analysis device and a rotating ring. The analysis device is provided with an analysis channel that cooperates with the rotating ring. The analysis device is connected to the rotating ring through a connecting mechanism. The rotating ring is provided with multiple placement channels. A placement box is provided in each placement channel through a supporting mechanism. A lifting groove and an equipment groove are provided on the outer wall of the analysis device. A lifting screw is provided in the lifting groove. A lifting motor connected to the lifting screw is provided in the equipment groove. A top plate for lifting the placement box is provided on the lifting screw through a threaded sleeve of a limiting mechanism.

[0007] Preferably, the connection mechanism comprises a connection plate mounted on the outer wall of the analysis device, and an annular connection groove corresponding to the connection plate is provided on the arc-shaped inner wall of the rotating ring.

[0008] Preferably, the support mechanism comprises a support ring installed in the placement channel, and the placement box is supported and placed on the support ring.

[0009] Preferably, the limiting mechanism includes a limiting rod installed in the lifting slot, the limiting rod is parallel to the lifting screw, and the limiting rod slides through the top plate.

[0010] Preferably, a gear is provided on the connecting plate through a rotating motor, a gear ring is provided on the arc-shaped inner wall of the rotating ring, and the gear is meshed with the gear ring.

[0011] Preferably, the number of the placement channels is eight, and the eight placement channels are distributed at equal intervals relative to the circumference of the rotating ring.

[0012] Preferably, the analysis channel is designed to be arc-shaped in a top view, and the center of the arc of the analysis channel is consistent with the center of the rotating ring.

[0013] Preferably, the vertical cross-sectional view of the placement box is T-shaped, and the portion of the connecting plate located in the annular connecting groove and the vertical cross-sectional view of the annular connecting groove are also T-shaped.

[0014] Beneficial effects of the utility model:

[0015] 1. Improve detection efficiency: Through the design of rotating ring and multiple placement channels, multiple food samples can be placed at the same time and tested in sequence, which greatly improves the detection efficiency.

[0016] 2. Ensure detection accuracy: The arc design of the analysis channel is consistent with the center position of the rotating ring, ensuring that there will be no interference and influence when the rotating ring rotates in the analysis channel, thus ensuring the accuracy of spectral analysis.

[0017] 3. Easy to operate: The operation of the device is relatively simple. You only need to put the food sample into the placement box, start the rotating motor and the spectrum analysis device to perform the test without complicated operating steps. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a structural diagram of a food nutritional component detection and analysis device proposed by the present invention;

[0019] Figure 2 for Figure 1 A magnified schematic diagram of the structure at A;

[0020] Figure 3 for Figure 1 Schematic diagram of the structure viewed from above;

[0021] Figure 4 Schematic diagram of the vertical cross-section structure of the rotating ring;

[0022] Figure 5for Figure 4 A magnified schematic diagram of the structure at point B.

[0023] In the figure: 1 analysis device, 2 analysis channel, 3 rotating ring, 4 placement channel, 5 placement box, 6 connecting plate, 7 annular connecting groove, 8 gear, 9 gear ring, 10 top plate, 11 lifting groove, 12 equipment groove, 13 lifting motor, 14 lifting screw, 15 limit rod, 16 rotating motor, 17 support ring. DETAILED DESCRIPTION

[0024] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0025] Reference Figure 1-5 A food nutrient component detection and analysis device includes an analysis device 1 and a rotating ring 3. The analysis device 1 is provided with an analysis channel 2 that cooperates with the rotating ring 3. The analysis channel 2 is arc-shaped when viewed from above, with the center of the arc of the analysis channel 2 coinciding with the center of the rotating ring 3. This arrangement ensures that the rotating ring 3 can rotate within the analysis channel 2 without interference or influence between the two.

[0026] The analysis channel 2 is provided with a spectral analysis device, which can perform spectral analysis on the food sample in the placement box 5 passing through the analysis channel 2. Since it is a prior art product, this solution does not demonstrate its specific structure or analyze its specific working principle. For details, please refer to the prior art disclosure.

[0027] The analysis device 1 is connected to the rotating ring 3 through a connecting mechanism. The rotating ring 3 is provided with multiple placement channels 4. A placement box 5 is provided in each placement channel 4 through a supporting mechanism. A lifting groove 11 and an equipment groove 12 are provided on the outer wall of the analysis device 1. A lifting screw 14 is provided in the lifting groove 11. A lifting motor 13 connected to the lifting screw 14 is provided in the equipment groove 12. A top plate 10 for lifting the placement box 5 is provided on the lifting screw 14 through a threaded sleeve of a limiting mechanism.

[0028] The connection mechanism includes a connection plate 6 mounted on the outer wall of the analytical device 1. An annular connection groove 7 corresponding to the connection plate 6 is formed on the curved inner wall of the rotating ring 3. The portion of the connection plate 6 within the annular connection groove 7, as well as a vertical cross-section of the annular connection groove 7, are T-shaped. This design allows the rotating ring 3 to remain horizontally supported by the connection plate 6 and to rotate relative to the connection plate 6.

[0029] The support mechanism includes a support ring 17 mounted within the placement channel 4, on which the placement box 5 is supported. The placement box 5 has a T-shaped vertical cross-section. The support ring 17 prevents the placement box 5 from falling vertically from the placement channel 4, thereby providing support and limiting the position.

[0030] The limiting mechanism includes a limiting rod 15 installed in the lifting groove 11, the limiting rod 15 is parallel to the lifting screw 14, and the limiting rod 15 slides through the top plate 10. The limiting rod 15 is a common limiting component that can prevent the top plate 10 from rotating with the lifting screw 14.

[0031] A gear 8 is mounted on the connecting plate 6 and is meshed with a ring gear 9 mounted on the curved inner wall of the rotating ring 3. This gear 8 rotates under the action of the rotating motor 16, thereby cooperating with the ring gear 9 to drive the rotating ring 3, thereby bringing the storage box 5 and the food into the analysis channel 2 for spectral analysis and testing.

[0032] There are eight placement channels 4, which are evenly spaced around the rotating ring 3. The evenly spaced distribution allows the rotary motor 16 to rotate 45 degrees each time to deliver the next placement box 5 to the analysis channel 2 for spectral analysis.

[0033] During use, a food sample is placed in a storage box 5, which is then positioned within the storage channel 4 of the rotating ring 3 via a support mechanism. The rotating motor 16 rotates the rotating ring 3 through the meshing of the gear 8 and the ring gear 9, bringing the storage box 5 containing the food sample into the analysis channel 2. A spectral analysis device within the analysis channel 2 performs spectral analysis on the food sample in the storage box 5 to detect the content of various nutrients in the food. The test results are processed and output to the user, allowing them to understand the nutritional composition of the food. The rotating ring 3 continues to rotate, bringing the next storage box 5 into the analysis channel 2 for testing. This cycle continues, enabling continuous testing of multiple food samples.

[0034] The food in the external placement box 5 has been inspected. When it moves to the top of the top plate 10, the lifting motor 13 is started to drive the lifting screw 14 to rotate. When the lifting screw 14 rotates, the top plate 10 will rise, and the placement box 5 can be pushed out from the placement channel 4. After being pushed out, it is more convenient to take the placement box 5.

[0035] The above are only preferred specific implementation methods of the present invention, but the protection scope of the present invention is not limited to them. Any technician familiar with the technical field can make equivalent replacements or changes based on the technical solution and utility model concept of the present invention within the technical scope disclosed by the present invention, and they should be covered by the protection scope of the present invention.

Claims

1. A food nutritional component detection and analysis device, comprising an analysis device (1) and a rotating ring (3), characterized in that: The analysis device (1) is provided with an analysis channel (2) that cooperates with a rotating ring (3). The analysis device (1) is connected to the rotating ring (3) through a connecting mechanism. The rotating ring (3) is provided with a plurality of placement channels (4). A placement box (5) is provided in each placement channel (4) through a supporting mechanism. A lifting groove (11) and an equipment groove (12) are provided on the outer wall of the analysis device (1). A lifting screw (14) is provided in the lifting groove (11). A lifting motor (13) connected to the lifting screw (14) is provided in the equipment groove (12). A top plate (10) for lifting the placement box (5) is provided on the lifting screw (14) through a threaded sleeve of a limiting mechanism.

2. A food nutrient component detection and analysis device according to claim 1, characterized in that: The connection mechanism comprises a connection plate (6) mounted on the outer wall of the analysis device (1), and an annular connection groove (7) corresponding to the connection plate (6) is provided on the arc-shaped inner wall of the rotating ring (3).

3. A food nutrient component detection and analysis device according to claim 2, characterized in that: The supporting mechanism comprises a supporting ring (17) installed in the placement channel (4), and the placement box (5) is supported and placed on the supporting ring (17).

4. A food nutrient component detection and analysis device according to claim 3, characterized in that: The limiting mechanism comprises a limiting rod (15) installed in the lifting groove (11), the limiting rod (15) is parallel to the lifting screw (14), and the limiting rod (15) slides through the top plate (10).

5. A food nutrient component detection and analysis device according to claim 4, characterized in that: A gear (8) is provided on the connecting plate (6) via a rotating motor (16), a gear ring (9) is provided on the arc-shaped inner wall of the rotating ring (3), and the gear (8) is meshed with the gear ring (9).

6. A food nutrient component detection and analysis device according to claim 5, characterized in that: The number of the placement channels (4) is eight, and the eight placement channels (4) are distributed at equal intervals in the circumferential direction relative to the rotating ring (3).

7. A food nutrient component detection and analysis device according to claim 6, characterized in that: The analysis channel (2) is designed to be arc-shaped when viewed from above, and the center of the arc of the analysis channel (2) is consistent with the center of the rotating ring (3).

8. A food nutrient component detection and analysis device according to claim 7, characterized in that: The vertical cross-sectional view of the placement box (5) is T-shaped, and the portion of the connection plate (6) located in the annular connection groove (7) and the vertical cross-sectional view of the annular connection groove (7) are also T-shaped.