Device for detecting sugar content of food
By designing an automated food sugar content detection device, the problems of complex sample processing and large errors in traditional detection methods have been solved, enabling efficient and accurate detection of foods with different properties.
Patent Information
- Application Number
- CN202422827084.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-19
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-11-19
AI Technical Summary
Traditional methods for detecting sugar content in food involve complex sample processing, are time-consuming and labor-intensive, and are prone to errors, making them unsuitable for testing foods with different properties.
A device comprising a first treatment chamber, a second treatment chamber, a testing chamber, a display screen, a control panel, and a controller was designed. By incorporating a crushing and stirring component, a mixing and stirring component, a testing component, and a cleaning component, the device enables automated sample processing and testing, reducing manual operation.
It improves the efficiency and accuracy of sample processing, enables automatic detection of foods with different properties, reduces errors, and enhances the convenience and practicality of detection.
Smart Images

Figure CN223597650U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to food detection equipment technical field especially relates to a device for food sugar content detection. BACKGROUND
[0002] In the food production process, the detection of food sugar content is very important, which is directly related to the quality and taste of food. The traditional sugar content detection method usually involves complex sample processing steps and requires manual operation, which not only consumes time and effort, but also easily introduces errors and cannot simultaneously adapt to different properties of food sugar content detection. Therefore, it is particularly important to develop a device that can automatically process samples and simultaneously adapt to different properties of food sugar content. SUMMARY
[0003] The utility model aims at providing a device for food sugar content detection to solve the problems of complex sample processing steps, manual operation, time and effort consumption, error introduction and inability to simultaneously adapt to different properties of food sugar content detection in traditional sugar content detection methods.
[0004] To achieve the above-mentioned purpose, the utility model adopts the following technical scheme: a device for food sugar content detection, comprising a first disposal chamber, a second disposal chamber, a detection chamber, a display screen, a control panel and a controller, the first disposal chamber and the second disposal chamber are both arranged on the detection chamber, the display screen and the control panel are both arranged on the outer side wall of the detection chamber, the controller is arranged on the bottom surface of the detection chamber, the lower ends of the first disposal chamber and the second disposal chamber are both communicated with the detection chamber, the first disposal chamber, the second disposal chamber, the detection chamber and the display screen are all connected with the controller, and the controller controls the first disposal chamber, the second disposal chamber, the detection chamber and the display screen through the control panel.
[0005] Further, the first disposal chamber comprises a shell one, a partition one, a filter screen one and a crushing stirring assembly, the shell one is provided with a feeding port at the upper end and a liquid outlet one at the lower end, the crushing stirring assembly, the partition one and the filter screen one are sequentially arranged in the shell one from top to bottom, the partition one and the filter screen one are horizontally arranged, the partition one is provided with a liquid outlet one at the upper end, and the crushing stirring assembly is connected with the controller and controlled by the control panel.
[0006] Further, the crushing stirring assembly comprises a rotating motor one, a rotating shaft one and a spiral blade, the rotating motor one is arranged on the middle part of the upper end surface of the shell one, the output end of the rotating motor one is fixedly connected with one end of the rotating shaft one, the other end of the rotating shaft one is vertically downwardly rotated to pass through the upper end surface of the shell one and is rotationally connected with the middle part of the upper end surface of the partition one, the spiral blade is spirally arranged on the outer wall of the rotating shaft one, and the rotating motor one is connected with the controller and controlled by the control panel.
[0007] Further, the second treatment chamber shell two, the baffle two, the filter screen two and the mixing and stirring assembly, the shell two upper end is provided with a liquid inlet, the shell two lower end is provided with a liquid outlet two, the shell two is sequentially provided with the mixing and stirring assembly, the baffle two and the filter screen two from top to bottom, the baffle two and the filter screen two are horizontally arranged, the baffle two is provided with a liquid outlet two, the mixing and stirring assembly is connected with the controller and is controlled by the control panel.
[0008] Further, the mixing and stirring assembly comprises a rotating motor two, a rotating shaft two and a plurality of stirring blades, the rotating motor two is arranged on the middle part of the upper end face of the shell two, the output end of the rotating motor two is fixedly connected with one end of the rotating shaft two, the other end of the rotating shaft two is vertically downwardly rotated and penetrates through the upper end face of the shell two and is rotationally connected with the middle part of the upper end face of the baffle two, the outer wall of the rotating shaft two is uniformly provided with a plurality of stirring blades in the circumferential direction, the rotating motor two is connected with the controller and is controlled by the control panel.
[0009] Further, the detection chamber comprises a shell three, a baffle three, a detection assembly and a cleaning assembly, the shell three upper end is respectively provided with a communication port one and a communication port two, the shell three side wall lower end is provided with a liquid guide port, the baffle three is horizontally arranged in the shell three, the baffle three is provided with a liquid discharge port, the detection assembly is arranged in the top face of the shell three, the cleaning assembly is arranged on the baffle three, the detection assembly and the cleaning assembly are connected with the controller and are controlled by the control panel.
[0010] Further, the detection assembly comprises an electric telescopic rod and a sugar degree detection probe, one end of the electric telescopic rod is fixedly connected with the top face in the shell three, the other end of the electric telescopic rod is vertically downwardly arranged and is fixedly connected with the sugar degree detection probe, the electric telescopic rod and the sugar degree detection probe are connected with the controller and are controlled by the control panel.
[0011] Further, the cleaning assembly comprises a rotating motor three, a rotating shaft three and a plurality of cleaning scrapers, the rotating motor three is arranged in the middle part of the bottom face of the shell three, the output end of the rotating motor three is fixedly connected with one end of the rotating shaft three, the other end of the rotating shaft three penetrates through the baffle three, a plurality of cleaning scrapers are uniformly arranged on the other end of the rotating shaft three in the circumferential direction, each cleaning scraper is arranged in close contact with the inner wall of the shell three and the upper end face of the baffle three, a communication pipeline is arranged in communication between the liquid discharge port and the liquid guide port, the rotating motor three is connected with the controller and is controlled by the control panel.
[0012] Further, the feeding port, the liquid outlet one, the liquid outlet one, the liquid inlet, the liquid outlet two, the liquid outlet two and the liquid discharge port are all provided with electric gates.
[0013] Further, the shell one, the shell two and the shell three side wall are all provided with observation windows.
[0014] Compared with the prior art, the beneficial effects of the utility model are:
[0015] 1. The utility model discloses a first disposal room and second disposal room are set up, realize the automatic breaking of different nature sample, stirring and mixing, improve the efficiency and accuracy of sample processing.
[0016] 2. The utility model discloses the detection component in detection room can automatically carry out sugar content detection to sample, and the result is shown on the display screen, convenient for user to look.
[0017] 3. The utility model discloses the cleaning assembly that sets up can automatically clean the residual in detection room, avoided the tedious and error of manual cleaning.
[0018] 4. The utility model discloses electrically operated gate and observation window are set up, further improve the practicability and convenience of device. DRAWINGS
[0019] Figure 1 It is the structure schematic diagram of the utility model discloses;
[0020] Figure 2 It is the sectional view of first disposal room;
[0021] Figure 3 It is the sectional view of second disposal room;
[0022] Figure 4 It is the sectional view of detection room.
[0023] The component name and drawing mark involved in the above drawing are as follows:
[0024] 1, first disposal room;2, second disposal room;3, detection room;4, display screen;5, control panel;6, observation window;7, shell one;8, rotation motor one;9, feed inlet;10, rotation shaft one;11, spiral blade;12, baffle one;13, liquid outlet one;14, filter screen one;15, liquid outlet one;16, shell two;17, rotation motor two;18, liquid inlet;19, rotation shaft two;20, stirring vane;21, baffle two;22, liquid outlet two;23, filter screen two;24, liquid outlet two;25, shell three;26, communication port one;27, communication port two;28, electric telescopic rod;29, brix detection probe;30, baffle three;31, rotation shaft three;32, cleaning scraper;33, liquid discharge port;34, communication pipeline;35, liquid guide port;36, rotation motor three;37, controller. DETAILED DESCRIPTION
[0025] Clearly, the described embodiments are only a part of the embodiments of the utility model, rather than all the embodiments, based on the embodiments in the utility model, all other embodiments obtained by the ordinary skilled in the art without making creative labor belong to the range of the utility model protection.
[0026] Specific implementation method: as Figures 1-4 The utility model discloses a food sugar content detection device, including first disposal room 1, second disposal room 2, detection chamber 3, display screen 4, control panel 5 and controller 37, first disposal room 1 and second disposal room 2 all are arranged on detection chamber 3, display screen 4 and control panel 5 all are arranged on the lateral wall of detection chamber 3, the controller 37 sets up on the inner bottom of detection chamber 3, and first disposal room 1 and second disposal room 2 lower end all are linked with detection chamber 3, and first disposal room 1, second disposal room 2, detection chamber 3 and display screen 4 are connected with controller 37, and controller 37 controls first disposal room 1, second disposal room 2, detection chamber 3 and display screen 4 through control panel 5.
[0027] Further, the first disposal room 1 includes shell one 7, baffle one 12, filter screen one 14 and broken stirring assembly, the upper end of shell one 7 is opened and has feed inlet 9, and the lower end of shell one 7 is opened and has liquid outlet one 15, and the broken stirring assembly, baffle one 12 and filter screen one 14 are sequentially arranged in shell one 7 from top to bottom, baffle one 12 and filter screen one 14 are horizontally arranged, baffle one 12 is opened and has liquid outlet one 13, and the broken stirring assembly is connected with controller 37 and is controlled by control panel 5.
[0028] Further, the broken stirring assembly includes rotating motor one 8, rotating shaft one 10 and spiral blade 11, the rotating motor one 8 is arranged in the middle part of the upper end surface of shell one 7, one end of the output end of rotating motor one 8 is fixedly connected with rotating shaft one 10, the other end of rotating shaft one 10 is vertically downwardly rotated and penetrates the upper end surface of shell one 7 and is rotationally connected with the middle part of the upper end surface of baffle one 12, the outer wall of rotating shaft one 10 is spirally provided with spiral blade 11, and the rotating motor one 8 is connected with controller 37 and is controlled by control panel 5. Further, the second disposal room 2 includes shell two 16, baffle two 21, filter screen two 23 and mixing stirring assembly, the upper end of shell two 16 is opened and has liquid inlet 18, the lower end of shell two 16 is opened and has liquid outlet two 24, and the mixing stirring assembly, baffle two 21 and filter screen two 23 are sequentially arranged in shell two 16 from top to bottom, baffle two 21 and filter screen two 23 are horizontally arranged, baffle two 21 is opened and has liquid outlet two 22, and the mixing stirring assembly is connected with controller 37 and is controlled by control panel 5.
[0029] Further, the mixing and stirring assembly comprises a rotating motor 17, a rotating shaft 19 and a plurality of stirring blades 20. The rotating motor 17 is arranged at the middle of the upper end face of the shell 16. The output end of the rotating motor 17 is fixedly connected with one end of the rotating shaft 19. The other end of the rotating shaft 19 is vertically downwardly rotatably arranged through the upper end face of the shell 16 and is rotatably connected with the middle of the upper end face of the partition plate 21. The outer wall of the rotating shaft 19 is uniformly provided with a plurality of stirring blades 20 in the circumferential direction. The rotating motor 17 is connected with the controller 37 and is controlled by the control panel 5.
[0030] Further, the detection chamber 3 comprises a shell 25, a partition plate 30, a detection assembly and a cleaning assembly. The upper end of the shell 25 is respectively provided with a communication port 26 and a communication port 27. The lower end of the side wall of the shell 25 is provided with a liquid guide port 35. The partition plate 30 is horizontally arranged in the shell 25. The partition plate 30 is provided with a liquid discharge port 33. The detection assembly is arranged on the top face in the shell 25. The cleaning assembly is arranged on the partition plate 30. The detection assembly and the cleaning assembly are both connected with the controller 37 and are controlled by the control panel 5.
[0031] Further, the detection assembly comprises an electric telescopic rod 28 and a sugar degree detection probe 29. One end of the electric telescopic rod 28 is fixedly connected with the top face in the shell 25. The other end of the electric telescopic rod 28 is vertically downwardly arranged and is fixedly connected with the sugar degree detection probe 29. The electric telescopic rod 28 and the sugar degree detection probe 29 are both connected with the controller 37 and are controlled by the control panel 5.
[0032] Further, the cleaning assembly comprises a rotating motor 36, a rotating shaft 31 and a plurality of cleaning scrapers 32. The rotating motor 36 is arranged at the middle of the bottom face in the shell 25. The output end of the rotating motor 36 is fixedly connected with one end of the rotating shaft 31. The other end of the rotating shaft 31 is rotatably arranged through the partition plate 30. The other end of the rotating shaft 31 is uniformly provided with a plurality of cleaning scrapers 32 in the circumferential direction. Each cleaning scraper 32 is arranged in close contact with the inner wall of the shell 25 and the upper end face of the partition plate 30. The liquid communication pipeline 34 is arranged in communication between the liquid discharge port 33 and the liquid guide port 35. The rotating motor 36 is connected with the controller 37 and is controlled by the control panel 5.
[0033] Further, the feeding port 9, the liquid outlet port 13, the liquid falling port 15, the liquid inlet port 18, the liquid outlet port 22, the liquid falling port 24 and the liquid discharge port 33 are all provided with electric gates.
[0034] Further, the side walls of the shell 7, the shell 16 and the shell 25 are all provided with observation windows 6.
[0035] Device assembly and debugging:
[0036] Firstly, the first treatment chamber 1, the second treatment chamber 2 and the detection chamber 3 are assembled together according to the design drawings, ensuring that the connection between each component is tight and stable.
[0037] Then, the key components such as the rotating motor 8, the rotating motor 17, the rotating motor 36, the electric telescopic rod 28 and the sugar detection probe 29 are connected with the controller 37, and it is checked whether each connection point is firm and reliable.
[0038] Then, the device is debugged through the control panel 5 to ensure that each component can work according to the set program. During the debugging process, special attention should be paid to the working state of the electric gate, the observation window 6 and other components to ensure that they can be normally opened and closed.
[0039] Non-liquid food sample processing:
[0040] The electric gate of the feed inlet 9 of the first treatment chamber 1 is opened, and the non-liquid food sample to be detected and the dissolving liquid (such as water) are put into the shell 7.
[0041] The electric gate of the feed inlet 9 is closed, and the rotating motor 8 is started through the control panel 5. The rotating motor 8 drives the rotating shaft 10 and the spiral blade 11 to rotate, crushing and stirring the non-liquid food sample.
[0042] After the crushing and stirring are completed, the electric gates of the liquid outlet 13 and the liquid falling port 15 are opened, and the processed sample liquid is filtered through the filter screen 14 and discharged into the detection chamber 3.
[0043] Liquid food sample processing:
[0044] The electric gate of the liquid inlet 18 of the second treatment chamber 2 is opened, and the liquid food sample to be detected is put into the shell 16, and if necessary, the dilution solution (such as water) can be added at the same time.
[0045] The electric gate of the liquid inlet 18 is closed, and the rotating motor 17 is started through the control panel 5. The rotating motor 17 drives the rotating shaft 19 and the stirring blade 20 to rotate, fully stirring the liquid food sample.
[0046] After the stirring is completed, the electric gates of the liquid outlet 22 and the liquid falling port 24 are opened, and the processed sample liquid is filtered through the filter screen 23 and discharged into the detection chamber 3.
[0047] Sugar detection:
[0048] In the detection chamber 3, the electric telescopic rod 28 is started through the control panel 5, so that the sugar detection probe 29 (which is prior art) is lowered into the sample liquid.
[0049] The sugar content detection probe 29 detects the sugar content of the sample liquid and transmits the detection result to the display screen 4 through the controller 37 for display.
[0050] After the detection is completed, the rotating motor three 36 is started through the control panel 5 to drive the rotating shaft three 31 and the cleaning scraper 32 to rotate and clean the detection area.
[0051] After the cleaning is completed, the electric gates of the liquid discharge port 33 and the liquid guide port 35 are opened to discharge the waste liquid after detection from the device.
[0052] Device cleaning and maintenance:
[0053] After completing a detection task, the device should be cleaned and maintained. First, all the electric gates and motors are closed through the control panel 5.
[0054] Then, the electric gates of the feeding port 9, the liquid outlet one 13, the liquid inlet 18, and the liquid outlet two 22 are opened, the cleaning liquid supply device is connected, and cleaning liquid is injected into the device for cleaning. During the cleaning process, the rotating motor one 8, the rotating motor two 17, and the rotating motor three 36 can be started to assist in cleaning.
[0055] After the cleaning is completed, the electric gate of the liquid discharge port 33 is opened to discharge the cleaning liquid from the device.
[0056] Finally, the device is checked for appearance and internal cleaning to ensure that all parts are in good condition. If necessary, the easily damaged parts can be replaced or repaired.
[0057] When implementing this embodiment, the rotating speeds of the rotating motor one 8, the rotating motor two 17, and the rotating motor three 36 can be adjusted according to the characteristics of the food sample to be detected and the detection requirements. Generally, for food samples with hard texture, the rotating speed can be appropriately increased to increase the crushing and stirring effect; for food samples with soft texture, the rotating speed can be appropriately reduced to prevent excessive crushing of the sample.
[0058] The descending speed of the electric telescopic rod 28 and the detection time of the sugar content detection probe 29 can also be adjusted according to actual requirements. Too fast descending speed may result in insufficient contact between the sugar content detection probe 29 and the sample liquid, affecting the accuracy of the detection result; too long detection time may increase the detection time cost.
[0059] The type and concentration of the cleaning liquid should be selected according to the characteristics of the food sample to be detected and the cleaning requirements. For food samples that are easily dissolved in water, clean water or diluted detergent can be used for cleaning; for food samples that are difficult to dissolve in water, special cleaning agents can be used for cleaning.
[0060] In actual use, the device parameters can be optimized through multiple tests and data analysis. For example, different rotation speeds, descending speeds and detection times can be set respectively for testing, and the detection results and detection time costs under different parameters are compared.
[0061] According to the test results and analysis results, the optimal parameter combination is selected for actual application. Meanwhile, further optimization and adjustment can be performed according to the feedback and data in actual application.
[0062] The utility model discloses through the automatic processing sample, mixing and the step such as detection, has improved the efficiency and accuracy of sugar content detection. Meanwhile, through reasonable parameter setting and optimization method, the performance and applicability of the device can be further improved.
[0063] It is apparent for those skilled in the art that the utility model is not limited to the details of the above exemplary embodiments, and the utility model can be realized in other forms without departing from the spirit or essential characteristics of the utility model. Therefore, no matter from which point of view, the embodiments should be regarded as exemplary and non-restrictive, and the scope of the utility model is defined by the appended claims rather than the above description, and all changes falling within the meaning and scope of the equivalent conditions of the claims should be included in the utility model. Any reference signs in the claims should not be regarded as limiting the claims involved.
[0064] In addition, it should be understood that, although the present specification is described in terms of embodiments, not every embodiment contains only one independent technical solution, and the specification is described in this way only for the sake of clarity, and those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be properly combined to form other embodiments that those skilled in the art can understand.
Claims
1. A device for detecting sugar content in food, characterized in that: The system includes a first treatment chamber (1), a second treatment chamber (2), a testing chamber (3), a display screen (4), a control panel (5), and a controller (37). The first treatment chamber (1) and the second treatment chamber (2) are both located on the testing chamber (3). The display screen (4) and the control panel (5) are both located on the outer wall of the testing chamber (3). The controller (37) is located on the inner bottom surface of the testing chamber (3). The lower ends of the first treatment chamber (1) and the second treatment chamber (2) are both connected to the testing chamber (3). The first treatment chamber (1), the second treatment chamber (2), the testing chamber (3), and the display screen (4) are all connected to the controller (37). The controller (37) controls the first treatment chamber (1), the second treatment chamber (2), the testing chamber (3), and the display screen (4) through the control panel (5).
2. The device for detecting sugar content in food according to claim 1, characterized in that: The first treatment chamber (1) includes a shell (7), a partition (12), a filter screen (14) and a crushing and stirring assembly. The upper end of the shell (7) has a feed inlet (9) and the lower end of the shell (7) has a liquid outlet (15). The crushing and stirring assembly, the partition (12) and the filter screen (14) are arranged sequentially from top to bottom inside the shell (7). The partition (12) and the filter screen (14) are arranged horizontally. The partition (12) has a liquid outlet (13). The crushing and stirring assembly is connected to the controller (37) and controlled by the control panel (5).
3. The device for detecting sugar content in food according to claim 2, characterized in that: The crushing and mixing assembly includes a rotating motor (8), a rotating shaft (10), and a spiral blade (11). The rotating motor (8) is located in the middle of the upper end face of the housing (7). The output end of the rotating motor (8) is fixedly connected to one end of the rotating shaft (10). The other end of the rotating shaft (10) rotates vertically downwards through the upper end face of the housing (7) and is rotatably connected to the middle of the upper end face of the partition plate (12). The outer wall of the rotating shaft (10) is spirally provided with spiral blades (11). The rotating motor (8) is connected to the controller (37) and controlled by the control panel (5).
4. The device for detecting sugar content in food according to claim 3, characterized in that: The second treatment chamber (2) has a shell (16), a partition (21), a filter screen (23) and a mixing and stirring assembly. The upper end of the shell (16) has a liquid inlet (18) and the lower end of the shell (16) has a liquid outlet (24). The mixing and stirring assembly, the partition (21) and the filter screen (23) are arranged sequentially from top to bottom inside the shell (16). The partition (21) and the filter screen (23) are arranged horizontally. The partition (21) has a liquid outlet (22). The mixing and stirring assembly is connected to the controller (37) and controlled by the control panel (5).
5. The device for detecting sugar content in food according to claim 4, characterized in that: The mixing assembly includes a second rotating motor (17), a second rotating shaft (19), and multiple stirring blades (20). The second rotating motor (17) is located in the middle of the upper end face of the second housing (16). The output end of the second rotating motor (17) is fixedly connected to one end of the second rotating shaft (19). The other end of the second rotating shaft (19) rotates vertically downward through the upper end face of the second housing (16) and is rotatably connected to the middle of the upper end face of the second partition (21). Multiple stirring blades (20) are evenly distributed along the circumference of the outer wall of the second rotating shaft (19). The second rotating motor (17) is connected to the controller (37) and controlled by the control panel (5).
6. The device for detecting sugar content in food according to claim 5, characterized in that: The detection chamber (3) includes a housing (25), a partition (30), a detection component, and a cleaning component. The upper end of the housing (25) has a communication port (26) and a communication port (27) respectively. The lower end of the side wall of the housing (25) has a liquid guide port (35). The partition (30) is horizontally arranged inside the housing (25). The partition (30) has a drain port (33). The detection component is arranged on the top surface inside the housing (25). The cleaning component is arranged on the partition (30). Both the detection component and the cleaning component are connected to the controller (37) and controlled by the control panel (5).
7. The device for detecting sugar content in food according to claim 6, characterized in that: The detection assembly includes an electric telescopic rod (28) and a sugar content detection probe (29). One end of the electric telescopic rod (28) is fixedly connected to the inner top surface of the housing (25), and the other end of the electric telescopic rod (28) is set vertically downward and fixedly connected to the sugar content detection probe (29). Both the electric telescopic rod (28) and the sugar content detection probe (29) are connected to the controller (37) and controlled by the control panel (5).
8. The device for detecting sugar content in food according to claim 7, characterized in that: The cleaning assembly includes a rotating motor (36), a rotating shaft (31), and multiple cleaning scrapers (32). The rotating motor (36) is located in the middle of the bottom surface of the housing (25). The output end of the rotating motor (36) is fixedly connected to one end of the rotating shaft (31). The other end of the rotating shaft (31) rotates through the partition (30). Multiple cleaning scrapers (32) are evenly distributed along the circumference of the other end of the rotating shaft (31). Each cleaning scraper (32) is fitted against the inner wall of the housing (25) and the upper surface of the partition (30). A connecting pipe (34) is provided between the drain port (33) and the guide port (35). The rotating motor (36) is connected to the controller (37) and controlled by the control panel (5).
9. The device for detecting sugar content in food according to claim 8, characterized in that: The feed inlet (9), liquid outlet 1 (13), liquid outlet 1 (15), liquid inlet (18), liquid outlet 2 (22), liquid outlet 2 (24) and liquid drain (33) are all equipped with electric gates.
10. The device for detecting sugar content in food according to claim 9, characterized in that: The side walls of the first shell (7), the second shell (16) and the third shell (25) are all provided with observation windows (6).