Individual nutrition detection analyzer for medical care
By introducing automatic cleaning components into individual nutrition detection analyzers, thorough cleaning and disinfection of electrode surfaces is achieved, the problem of inefficient manual cleaning is solved, the risk of cross-infection is reduced, and the work efficiency and cleaning effect is improved.
Patent Information
- Application Number
- CN202510446972.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-10
- Publication Date
- 2025-07-29
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The electrode cleaning of existing individual nutrition detection analyzers mainly relies on manual operation, which is inefficient, labor-intensive and incomplete, and has unstable disinfection effect, which can easily lead to cross-infection.
An automatic cleaning component is designed, including ultraviolet lamps, mobile strips, spray plates, scrapers and electric guides, etc., to completely remove stains and residues on the electrode surface through mechanization, and to use ultraviolet rays to kill bacteria and viruses, combined with automated operating procedures to reduce manual intervention.
It significantly improves the cleanliness and disinfection effect of the electrode, reduces the risk of cross-infection, improves work efficiency, and extends the use time of cleaning the structure.
Smart Images

Figure CN120381256A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of healthcare, and particularly relates to an individual nutrition detection analyzer for healthcare. Background Art
[0002] In the field of modern healthcare, reasonable nutrition management is crucial for promoting health. In recent years, with the progress of biosensor technology and the improvement of data analysis capabilities, individual nutrition detection analyzers have gradually become the focus of attention. These instruments monitor and analyze the nutrients ingested by individuals in a non-invasive manner, and can accurately and real-time provide detailed information on food intake. Compared with traditional assessment methods, individual nutrition detection analyzers can more comprehensively track the nutritional status of individuals, thereby providing more personalized and accurate nutritional guidance for individuals. This not only helps prevent malnutrition and overnutrition, but also contributes to improving the management of some chronic diseases, such as cardiovascular diseases, diabetes, etc.
[0003] However, the individual nutrition detection analyzers on the current market still need to be further optimized in terms of structural design, data processing speed, and user-friendliness. Especially in the aspect of automatic cleaning after use, in the existing technology, the electrode cleaning of individual nutrition detection analyzers mainly relies on manual operations, such as manual wiping or immersion disinfection, etc. This method is not only inefficient and labor-consuming, but also may have problems such as incomplete cleaning and unstable disinfection effect, and is prone to cross-infection. Summary of the Invention
[0004] In view of the problem that the electrode cleaning of individual nutrition detection analyzers in the existing technology mainly relies on manual operations, such as manual wiping or immersion disinfection, etc., this method is not only inefficient and labor-consuming, but also may have problems such as incomplete cleaning and unstable disinfection effect, and is prone to cross-infection, the present invention proposes the following technical solutions:
[0005] An individual nutrition detection analyzer for healthcare, comprising: a base, a body is fixedly installed at the edge of the top of the base, universal wheels are fixedly installed at the four corner positions of the bottom of the base, a foot electrode is movably connected up and down inside a groove at the top of the base, a connection structure one is installed at the bottom of one side of the body, a connection structure two is fixedly installed in the middle of one side of the body, an operation structure is arranged at one side of the top of the body, a display screen is arranged at a position on one side of the operation structure at the top of the body, a handle is fixedly installed at the top of one end of the body, a hand electrode is fixedly installed inside the handle, and an automatic cleaning component is fixedly installed at the top of the handle. The automatic cleaning component includes a UV lamp tube rotatably connected to the top of the hand electrode, moving strips are vertically movably connected to both sides of the UV lamp tube, a cleaning cloth is adhered to the bottom of the moving strip, a spray plate is embedded and installed at the top of one of the moving strips, and a scraper is horizontally movably connected to one end face of the UV lamp tube.
[0006] Preferably, as the above technical solution, the first connection structure is composed of a first USB interface, an RS interface, and a heating switch. The first USB interface, the RS interface, and the heating switch of the first connection structure are arranged in sequence from top to bottom. The second connection structure is composed of a second USB interface and a start switch. The connection structure of the second connection structure close to the display screen is the start switch. The operation structure is composed of a mouse and a keyboard.
[0007] Preferably, as the above technical solution, a driving motor is fixedly installed at one end of the handle through a mounting seat. The output shaft of the driving motor is clamped and installed with a rotating plate through a flat key. A metal frame is fixedly installed at the bottom end of the rotating plate. The ultraviolet lamp tube is located in the middle of the metal frame. The moving strips are located on both sides of the metal frame. Two spring rods are installed between the top end of the moving strip and the bottom end of the rotating plate.
[0008] Preferably, as the above technical solution, a connecting pipe is fixedly installed at the top end of the spraying plate. The water inlet end of the connecting pipe is fixedly connected to the water outlet end of the water pump. A water tank is fixedly installed outside the water pump. The water tank is fixedly installed on one side of the metal frame. A liquid inlet is fixedly installed at one end of the water tank. A one-way valve is installed inside the liquid inlet at one end of the water tank. The water inlet end of the water pump is located at the bottom end of the inner wall of the water tank.
[0009] Preferably, as the above technical solution, support bars are symmetrically and fixedly installed at the top end of the handle. The same protective plate is fixedly installed between the two support bars. Fixed sleeves are symmetrically embedded and installed at the bottom end of the protective plate. An activity rod is vertically movably connected inside the fixed sleeve. The same bottom plate is fixedly installed between the bottom ends of the two activity rods. Electric guide rails are symmetrically installed inside the bottom plate. Sliders are slidably connected inside the two electric guide rails. The top end of the slider is fixedly connected to the bottom end of the scraping plate.
[0010] Preferably, as the above technical solution, the electric guide rail is composed of a micro motor and a lead screw. The micro motor is fixedly installed on one end face of the bottom plate. The lead screw is rotatably connected inside the bottom plate. The slider is threadedly connected to the lead screw. The driving shaft of the micro motor is welded to the lead screw.
[0011] Preferably, as the above technical solution, a collection box is fixedly installed at a position on one side of the scraping plate at the top end of the slider. The highest point of the collection box is lower than the lowest point of the scraping plate. The shape of the scraping plate is a right triangle. The end face of the scraping plate close to the collection box is an inclined surface.
[0012] As a preference of the above technical solution, electromagnets are symmetrically embedded and installed at the top end of the bottom plate. A rack is installed at the middle position at the bottom end of the slider inside the bottom plate. A gear is meshed and connected to the outside of the rack. Cylinders are symmetrically embedded and installed on both sides of the gear. The cylinders are rotatably connected to the inside of the slider. Hexagonal wheels are symmetrically clamped and installed on the outside of the cylinders. Connecting ropes are equidistantly embedded and installed on the outside of the hexagonal wheels. A knocking ball is fixedly installed at the bottom end of the connecting rope.
[0013] As a preference of the above technical solution, the number ratio of the hexagonal wheels to the sliders is two to one, and the angular difference between the two hexagonal wheels is thirty degrees.
[0014] The beneficial effects of the present invention are as follows:
[0015] (1) This device can significantly improve the cleaning and disinfection effects. The mechanical cleaning part can thoroughly remove the stains and residues on the electrode surface, ensuring the cleanliness of the electrode. The disinfection part can effectively kill bacteria, viruses and other microorganisms on the electrode surface, reducing the risk of cross-infection. At the same time, the automated operation process also reduces manual intervention and improves work efficiency;
[0016] (2) It can facilitate the automatic cleaning of the cleaning structure, ensuring the cleanliness at the bottom end of the cleaning structure, preventing the accumulation of dirt from affecting the cleaning effect of the electrode, and preventing the accumulation of dirt on the surface of the scraper through the resonance effect, thereby prolonging the service life of the scraper and indirectly improving the cleaning effect of the cleaning structure. Description of the Drawings
[0017] Figure 1 Shows the structural schematic diagram of an individual nutrition detection analyzer for healthcare in Embodiment 1;
[0018] Figure 2 Shows the installation structural schematic diagram of the handle in Embodiment 1;
[0019] Figure 3 Shows the structural schematic diagram of the automatic cleaning component in Embodiment 1;
[0020] Figure 4 Shows Figure 3 the structural schematic diagram of Area A in
[0021] Figure 5 Shows the installation structural schematic diagram of the movable rod in Embodiment 1;
[0022] Figure 6 Shows the installation structural schematic diagram of the scraper in Embodiment 1;
[0023] Figure 7 Shows the installation structural schematic diagram of the gear in Embodiment 1;
[0024] Figure 8 Shown is a schematic diagram of the installation structure of the tapping ball in Embodiment 1.
[0025] In the figure: 1, base; 2, fuselage; 3, universal wheel; 4, foot electrode; 5, connection structure one; 6, connection structure two; 7, operation structure; 8, display screen; 9, handle; 10, hand electrode; 11, automatic cleaning component; 1101, protection plate; 1102, support bar; 1103, drive motor; 1104, rotating plate; 1105, metal frame; 1106, ultraviolet lamp tube; 1107, spring rod; 1108, moving strip; 1109, cleaning cloth; 1110, spraying plate; 1111, connecting pipe; 1112, water pump; 1113, water tank; 1114, fixing sleeve; 1115, movable rod; 1116, bottom plate; 1117, electric guide rail; 1118, electromagnet; 1119, slider; 1120, scraping plate; 1121, collection box; 1122, rack; 1123, gear; 1124, cylinder; 1125, hexagonal wheel; 1126, connecting rope; 1127, tapping ball. Detailed implementation manners
[0026] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below in conjunction with the embodiments.
[0027] Embodiment 1
[0028] The present invention provides an individual nutrition detection analyzer for healthcare, as Figures 1 to 8 shown, comprising: a base 1, with a fuselage 2 fixedly installed at the top edge of the base 1, universal wheels 3 fixedly installed at the four corners of the bottom of the base 1, a foot electrode 4 movably connected up and down inside a groove at the top of the base 1, a connection structure one 5 installed at the bottom of one side of the fuselage 2, a connection structure two 6 fixedly installed in the middle of one side of the fuselage 2, an operation structure 7 provided at one side of the top of the fuselage 2, a display screen 8 provided at a position on one side of the operation structure 7 at the top of the fuselage 2, a handle 9 fixedly installed at the top of one end of the fuselage 2, a hand electrode 10 fixedly installed inside the handle 9, and an automatic cleaning component 11 fixedly installed at the top of the handle 9. The automatic cleaning component 11 includes an ultraviolet lamp tube 1106 rotatably connected to the top of the hand electrode 10, moving strips 1108 vertically movably connected on both sides of the ultraviolet lamp tube 1106, a cleaning cloth 1109 adhered to the bottom end of the moving strip 1108, a spraying plate 1110 embedded and installed at the top end of one of the moving strips 1108, and a scraping plate 1120 horizontally movably connected to one end face of the ultraviolet lamp tube 1106.
[0029] As Figure 1 and Figure 2As shown in the figure, the first connection structure 5 is composed of a first USB interface, an RS232 interface, and a heating switch. The first connection structure 5 is arranged from top to bottom as the first USB interface, the RS232 interface, and the heating switch. This design enables the device to connect to an external storage device or a computer through the first USB interface for data transmission or software upgrade, communicate serially with external devices through the RS232 interface to expand the communication capabilities of the device, and the heating switch may be used to control the heating element inside the device to keep the device working within an appropriate temperature range to ensure the accuracy of the detection results. The second connection structure 6 is composed of a second USB interface and a start switch. The connection structure close to the display screen 8 of the second connection structure 6 is the start switch. The second USB interface can be used to connect other USB devices, such as printers, external hard drives, etc., to further expand the functions of the device; the start switch facilitates the user to quickly turn on the device, and the design close to the display screen 8 enables the user to immediately view the information on the display screen 8 after starting the device, improving the convenience of operation. The operation structure 7 is composed of a mouse and a keyboard. The user can perform various operations on the device, such as inputting detection parameters and controlling the detection process, through the mouse and the keyboard, improving the usability and operation efficiency of the device.
[0030] As Figure 3 and Figure 5 shown in the figure, one end of the handle 9 is fixedly installed with a driving motor 1103 through a mounting seat. The output shaft of the driving motor 1103 is fixedly installed with a rotating plate 1104 through a flat key connection. The bottom end of the rotating plate 1104 is fixedly installed with a metal frame 1105. The ultraviolet lamp tube 1106 is located in the middle of the metal frame 1105. The moving strips 1108 are located on both sides of the metal frame 1105. Two spring rods 1107 are installed between the top ends of the moving strips 1108 and the bottom end of the rotating plate 1104.
[0031] After the driving motor 1103 is connected to the power supply, it drives the rotating plate 1104 to rotate. When the rotating plate 1104 rotates, it drives the metal frame 1105 to rotate. When the metal frame 1105 rotates, it drives the ultraviolet lamp tube 1106 to rotate, changing the position of the ultraviolet lamp tube 1106. At the same time, under the action of the spring rods 1107, the moving strips 1108 are driven to move, changing the moving difficulty of the moving strips 1108.
[0032] As Figure 3 and Figure 5As shown, a connecting pipe 1111 is fixedly installed at the top of the spray plate 1110. The water inlet end of the connecting pipe 1111 is fixedly connected to the water outlet end of the water pump 1112. A water tank 1113 is fixedly installed outside the water pump 1112. The water tank 1113 is fixedly installed on one side of the metal frame 1105. A liquid inlet is fixedly installed at one end of the water tank 1113. A one-way valve is installed inside the liquid inlet at one end of the water tank 1113. The water inlet end of the water pump 1112 is located at the bottom end of the inner wall of the water tank 1113, which can supplement the cleaning liquid into the water tank 1113 and prevent the cleaning liquid inside the water tank 1113 from being discharged along the liquid inlet.
[0033] Since the water pump 1112 starts to operate after being connected to the power supply, at this time, the water pump 1112 extracts the liquid inside the water tank 1113 into the spray plate 1110, and finally enters one of the moving bars 1108 along the spray plate 1110, changing the difficulty of the cleaning liquid entering the moving bar 1108.
[0034] As Figure 3 、 Figure 4 and Figure 5 shown, support bars 1102 are symmetrically and fixedly installed at the top of the handle 9. The same protective plate 1101 is fixedly installed between the two support bars 1102. The protective plate 1101 and the support bars 1102 are used to fix the fixed sleeve 1114, changing the fixing difficulty of the fixed sleeve 1114. The fixed sleeve 1114 is symmetrically embedded at the bottom end of the protective plate 1101. An activity rod 1115 is vertically movably connected inside the fixed sleeve 1114. The same bottom plate 1116 is fixedly installed between the bottom ends of the two activity rods 1115. Electric guide rails 1117 are symmetrically installed inside the bottom plate 1116. Sliders 1119 are slidably connected inside both electric guide rails 1117. A fixed connection is made between the top end of the slider 1119 and the bottom end of the scraper 1120. The electric guide rail 1117 is composed of a micro motor and a lead screw. The micro motor is fixedly installed on one end face of the bottom plate 1116. The lead screw is rotatably connected inside the bottom plate 1116. The slider 1119 is threadedly connected to the lead screw. The drive shaft of the micro motor and the lead screw are welded together.
[0035] Driven by the micro motor, the lead screw rotates. When the lead screw rotates, it drives the slider 1119 to move, changing the moving difficulty of the slider 1119. When the slider 1119 moves, it drives the scraper 1120 to move. At the same time, under the action of gravity, the bottom plate 1116 descends. When the bottom plate 1116 descends, it drives the movement inside the fixed sleeve 1114 through the activity rod 1115, thereby adjusting the distance between the top end of the bottom plate 1116 and the bottom end of the protective plate 1101.
[0036] As Figure 6 and Figure 7As shown, a collection box 1121 is fixedly installed at the top of the slider 1119 on one side of the scraper 1120. The highest point of the collection box 1121 is lower than the lowest point of the scraper 1120. The shape of the scraper 1120 is a right triangle, and the end face of the scraper 1120 close to the collection box 1121 is an inclined surface;
[0037] Since the scraper 1120 cleans the dirt at the bottom of the cleaning cloth 1109 during movement, the dirt generated during the cleaning process enters the interior of the collection box 1121 along the inclined surface, thereby achieving the purpose of collecting the dirt.
[0038] As Figures 4 to 8 shown, electromagnets 1118 are symmetrically embedded and installed at the top of the bottom plate 1116. A rack 1122 is installed at the middle position at the bottom end of the slider 1119 inside the bottom plate 1116. A gear 1123 is meshed and connected to the outside of the rack 1122. Cylinders 1124 are symmetrically embedded and installed on both sides of the gear 1123. The cylinders 1124 are rotatably connected to the inside of the slider 1119. Hexagonal wheels 1125 are symmetrically clamped and installed on the outside of the cylinders 1124. Connecting ropes 1126 are equidistantly embedded and installed on the outside of the hexagonal wheels 1125. A knocking ball 1127 is fixedly installed at the bottom end of the connecting rope 1126. The number ratio of the hexagonal wheels 1125 to the slider 1119 is two to one, and the angular difference between the two hexagonal wheels 1125 is thirty degrees. When the two hexagonal wheels 1125 rotate synchronously, different knocking balls 1127 strike alternately, increasing the knocking frequency;
[0039] After the electromagnet 1118 is energized, it generates magnetism and adsorbs to the metal frame 1105 at this time, thereby driving the bottom plate 1116 to rise. And at the same time, since the slider 1119 drives the gear 1123 to move outside the rack 1122 during movement, the gear 1123 rotates self - sufficiently. When the gear 1123 rotates self - sufficiently, it drives the cylinder 1124 to rotate self - sufficiently. When the cylinder 1124 rotates self - sufficiently, it drives the hexagonal wheel 1125 to rotate. When the hexagonal wheel 1125 rotates, the knocking ball 1127 swings under the action of the rotational force. The swinging knocking ball 1127 knocks on the inside of the slider 1119, causing resonance on the outside of the slider 1119. Through the principle of resonance, the residual materials on the surface of the scraper 1120 fall off quickly, preventing the problem of materials accumulating on the surface of the scraper 1120.
[0040] Working principle: During the actual use of the device, adjust the universal wheels 3 to ensure the stability of the instrument and ensure that all connection joints are not loose. Then, use a dry cloth or cotton ball dipped in a small amount of medical alcohol to clean the foot electrode 4. At the same time, ask the tester to take off their shoes and socks. And at this time, the automatic cleaning component 11 starts to operate. Since the drive motor 1103 of the automatic cleaning component 11 starts to operate, when the drive motor 1103 operates, it drives the rotating plate 1104 to rotate. When the rotating plate 1104 rotates, it drives the metal frame 1105 to rotate. At this time, the ultraviolet lamp tube 1106 inside the metal frame 1105 is connected to the power supply and starts to operate. When the ultraviolet lamp tube 1106 operates, the lamp tube disinfects the hand electrode 10. At the same time, under the tension of the spring rod 1107, it drives the moving strip 1108 to wipe the hand electrode 10. And under the action of the water pump 1112, it extracts the disinfectant liquid and enters the surface of the cleaning cloth 1109 along the connecting pipe 1111 and the spraying plate 1110, so that one cleaning cloth 1109 remains in a wet state, while the bottom end of the other cleaning cloth 1109 is in a dry state. Thus, the surface of the hand electrode 10 undergoes the working states of wiping, disinfecting, and wiping with the disinfectant liquid. Then, the drive motor 1103 runs in the reverse direction to reset the rotating plate 1104. When the rotating plate 1104 is perpendicular to the bottom plate 1116, at this time, the electromagnet 1118 is connected to the power supply and starts to operate. When the electromagnet 1118 operates, it generates magnetism. At this time, it adsorbs the metal frame 1105 through magnetism. At this time, the bottom plate 1116 rises. When the bottom plate 1116 rises, it drives the movable rod 1115 to rise inside the fixed sleeve 1114. At this time, the bottom plate 1116 rises. When the bottom plate 1116 rises, it drives the scraper 1120 to enter the bottom end of the cleaning cloth 1109. At this time, the electric guide rail 1117 operates. When the electric guide rail 1117 operates, it drives the slider 1119 to move. When the slider 1119 moves, it drives the scraper 1120 to move along the bottom end of the cleaning cloth 1109, so as to clean the dirt adhered to the bottom end of the cleaning cloth 1109. The cleaned dirt enters the collection box 1121. At the same time, since the slider 1119 drives the gear 1123 to move when it moves, because the gear 1123 meshes outside the rack 1122, the gear 1123 rotates automatically. When the gear 1123 rotates automatically, it drives the cylinder 1124 to rotate automatically. When the cylinder 1124 rotates automatically, it drives the hexagonal wheel 1125 to rotate. When the hexagonal wheel 1125 rotates, under the action of the rotational force, the knocking ball 1127 swings. The swinging knocking ball 1127 knocks on the inside of the slider 1119, causing resonance on the outside of the slider 1119. Through the principle of resonance, the materials remaining on the surface of the scraper 1120 quickly fall off, thus preventing the phenomenon of dirt accumulation on the surface of the scraper 1120;
[0041] Finally, after the instrument is started, the software will run automatically. At this time, the system will automatically zero the weight. Do not place heavy objects on the instrument. Then connect the power supply to the power socket and connect the printer data cable to USB interface 2 on the lower left side of the instrument. Then turn on the main start switch of the instrument in sequence. The boot information will be displayed on the screen and enter the software identity authentication interface. The first step is to enter the "Basic Information" page to create a new user file; the second step is to enter the "Body Composition Analysis" page to detect weight and body composition; the third step is to enter the "Exercise Survey" page to fill in personal exercise conditions; the fourth step is to enter the "Diet Survey" page to conduct a one-day, three-day or seven-day diet survey of the individual; the fifth step is to enter "Analysis and Evaluation" to view the test results and guidance plans; the sixth step is to click the "Print Report" button in the upper right corner of the analysis and evaluation interface to preview the report, and then click the "Print Report" button in the upper left corner of the report preview window to print the test report. For subjects who are not being examined for the first time, they can enter "Query File" in the "Basic Information" page, click "New Test", and conduct operations such as weight and body composition analysis for this time. The reliable and safe operation of the system is not only related to the operation of the data center itself, but also related to the operation of relevant systems in other business departments. Therefore, identity verification must be carried out. At this time, enter the account and password, click the "Login" button to enter the new file interface, then create a new file. After the file is created, query it to prevent file overlap. Then modify the file, then select the file to conduct a new test, and then analyze the weight. When detecting the weight, it is required that the tester step on the four foot electrodes 4 with both feet, let the hands hang down, and relax naturally. Click the "Detect Weight" button to start the weight detection. After the weight detection is completed, the tested person holds the hand electrode 10 with both hands, steps on the four foot electrodes 4 with both feet, and relaxes naturally. Click the "Detect Body Composition" button to start the body composition detection. After the detection is completed, the body composition detection results will be displayed.
[0042] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it.
Claims
1. An individual nutrition detection analyzer for healthcare, characterized in that, include: The base (1) is fixedly mounted with a body (2) at the top edge of the base (1), universal wheels (3) are fixedly mounted at the four corners of the bottom of the base (1), foot electrodes (4) are movably connected up and down inside the groove at the top of the base (1), a connection structure (5) is mounted at the bottom of one side of the body (2), a connection structure (6) is fixedly mounted at the middle of one side of the body (2), an operating structure (7) is arranged at one side of the top of the body (2), a display screen (8) is arranged at the top of the body (2) at a position on one side of the operating structure (7), a handle (9) is fixedly mounted at the top of one end of the body (2), and the A hand electrode (10) is fixedly installed inside the handle (9), and an automatic cleaning component (11) is fixedly installed on the top of the handle (9). The automatic cleaning component (11) includes an ultraviolet lamp (1106) rotatably connected to the top of the hand electrode (10), and movable bars (1108) are vertically movably connected on both sides of the ultraviolet lamp (1106). A cleaning cloth (1109) is adhered to the bottom end of the movable bar (1108), and a spray plate (1110) is embedded in the top end of one of the movable bars (1108). A scraper (1120) is horizontally movably connected to one end face of the ultraviolet lamp (1106).
2. The individual nutrition detection analyzer for healthcare according to claim 1, characterized in that The connection structure 1 (5) is composed of a USB interface 1, an RS232 interface and a heating switch. The connection structure 1 (5) is arranged from top to bottom as the USB interface 1, the RS232 interface and the heating switch. The connection structure 2 (6) is composed of a USB interface 2 and a start switch. The connection structure of the connection structure 2 (6) close to the display screen (8) is the start switch. The operation structure (7) is composed of a mouse and a keyboard.
3. The individual nutrition detection analyzer for healthcare according to claim 2, wherein, A driving motor (1103) is fixedly mounted on one end of the handle (9) via a mounting seat, and an output shaft of the driving motor (1103) is mounted on a rotating plate (1104) via a flat key. A metal frame (1105) is fixedly mounted on the bottom end of the rotating plate (1104), and the ultraviolet lamp (1106) is located in the middle of the metal frame (1105). The moving bar (1108) is located on both sides of the metal frame (1105), and two spring rods (1107) are installed between the top end of the moving bar (1108) and the bottom end of the rotating plate (1104).
4. The individual nutrition detection and analysis instrument for healthcare according to claim 2, characterized in that, A connecting pipe (1111) is fixedly installed on the top of the spray plate (1110), and the water inlet end of the connecting pipe (1111) is fixedly connected to the water outlet end of the water pump (1112). A water tank (1113) is fixedly installed on the outside of the water pump (1112), and the water tank (1113) is fixedly installed on one side of the metal frame (1105). A liquid inlet is fixedly installed on one end of the water tank (1113), and a one-way valve is installed inside the liquid inlet at one end of the water tank (1113). The water inlet end of the water pump (1112) is located at the bottom end of the inner wall of the water tank (1113).
5. An individual nutrition detection analyzer for healthcare according to claim 1, characterized in that, At the top of the handle (9), support bars (1102) are symmetrically and fixedly installed. A same protective plate (1101) is fixedly installed between the two support bars (1102). At the bottom end of the protective plate (1101), fixing sleeves (1114) are symmetrically embedded. An activity rod (1115) is vertically movably connected inside the fixing sleeve (1114). A same bottom plate (1116) is fixedly installed between the bottom ends of the two activity rods (1115). Electric guide rails (1117) are symmetrically installed inside the bottom plate (1116). Sliders (1119) are slidably connected inside the two electric guide rails (1117). A fixed connection is made between the top end of the slider (1119) and the bottom end of the scraping plate (1120).
6. An individual nutrition detection analyzer for healthcare according to claim 5, characterized in that, The electric guide rail (1117) is composed of a micro motor and a lead screw. The micro motor is fixedly installed on one end face of the bottom plate (1116). The lead screw is rotatably connected inside the bottom plate (1116). The slider (1119) is threadedly connected to the lead screw. A welded connection is made between the drive shaft of the micro motor and the lead screw.
7. An individual nutrition detection analyzer for healthcare according to claim 6, characterized in that, At a position on one side of the scraping plate (1120) at the top end of the slider (1119), a collection box (1121) is fixedly installed. The highest point of the collection box (1121) is lower than the lowest point of the scraping plate (1120). The shape of the scraping plate (1120) is a right triangle. One end face of the scraping plate (near the collection box 1121) is an inclined surface.
8. An individual nutrition detection analyzer for healthcare according to claim 5, characterized in that, Electromagnets (1118) are symmetrically embedded at the top end of the bottom plate (1116). A rack (1122) is installed at the middle position at the bottom end of the slider (1119) inside the bottom plate (1116). A gear (1123) is meshed on the outside of the rack (1122). Cylinders (1124) are symmetrically embedded on both sides of the gear (1123). The cylinders (1124) are rotatably connected inside the slider (1119). Hexagonal wheels (1125) are symmetrically clamped and installed on the outside of the cylinders (1124). Connecting ropes (1126) are equidistantly embedded on the outside of the hexagonal wheels (1125). A knocking ball (1127) is fixedly installed at the bottom end of the connecting rope (1126).
9. An individual nutrition detection analyzer for healthcare according to claim 8, characterized in that, The ratio of the number of the hexagonal wheels (1125) to the number of the sliders (1119) is two to one. The angular difference between the two hexagonal wheels (1125) is thirty degrees.