Bearing platform based on biological monitoring
By designing a portable biological monitoring platform, the problems of cumbersome disinfection procedures and inconvenience of carrying existing platforms have been solved, achieving simplified disinfection and portability, and meeting the needs of real-time detection of marine organisms.
Patent Information
- Application Number
- CN202520164829.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-24
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2035-01-24
AI Technical Summary
Existing biological detection platforms have cumbersome and untimely disinfection processes after use, affecting their next use, and are difficult to carry for real-time detection of marine life.
A biomonitoring-based support platform was designed, including a bottom support plate and a top cover plate. The support plate has handles on both sides and uses a detachable plastic sample box, which is fixed by a snap-fit structure, simplifying the disinfection process and improving portability.
It simplifies the disinfection process, improves portability, prevents damage to testing tools, and meets the immediate testing needs of marine life.
Smart Images

Figure CN223747623U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to biological detection technical field, concretely is a kind of based on biological monitoring's bearing platform. BACKGROUND
[0002] Biological detection platform is often used for the observation and detection of animal and plant and microbial sample, especially important in microbial rapid detection and identification, but the existing biological detection platform still has some drawbacks in actual use: when using, staff needs to wipe with a cloth little by little disinfection, the process of disinfection is more cumbersome, and there is the case that cannot disinfect in time, which may affect the next use;After detection, there is the phenomenon that detection tool cannot be stored in time, which may cause collision or damage of detection tool.
[0003] The biological specimen detection platform disclosed in the patent with the patent announcement number CN221433126U includes a detection box, a box cover, a lifting platform, a workbench and an operation table, the box cover is provided with an ultraviolet lamp, the ultraviolet lamp can disinfect the used tools, the lifting platform can drive the workbench to rise or descend, solving the problem that the existing platform for biological detection cannot be disinfected in time after use, affecting the next use, and preventing the problem that the used tools cannot be stored in time, causing damage to the detection tools.
[0004] However, the device has disadvantages in use. During the detection of marine organisms, marine organisms are likely to die after being separated from seawater. In order to ensure biological activity, the salvaged marine organisms need to be detected immediately. However, the existing equipment has the problem of inconvenience to carry, and it is difficult to meet the demand of timely detection.
[0005] Therefore, the present application provides a bearing platform based on biological monitoring, which can eliminate the drawbacks of the existing device. UTILITY MODEL CONTENT
[0006] The utility model aims at providing a bearing platform based on biological monitoring to solve the problems in the background art.
[0007] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:
[0008] A bearing platform based on biological monitoring, comprising a bottom support plate, an upper cover plate is provided on the top of the bottom support plate, a detection plate is provided in the bottom support plate, and a plurality of sample boxes are provided in the detection plate.
[0009] Preferably, the bottom support plate comprises a bottom plate shell, an arc-shaped slot, a fixing slot, a support column, a first buckle hole, a semi-cylindrical groove, a handle and an upper cover plate groove hole, the front side of the bottom plate shell is provided with an arc-shaped slot, the bottom of the bottom plate shell is provided with a plurality of fixing slots, the two sides of the fixing slot are provided with a plurality of support columns, and the bottom of the bottom plate shell is further provided with four first buckle holes; a plurality of semi-cylindrical grooves are symmetrically arranged on the left and right sides of the bottom plate shell, and a pair of handles are further arranged on the outer wall of the bottom plate shell; a plurality of upper cover plate groove holes are arranged on the rear side of the bottom plate shell.
[0010] Preferably, the support column is composed of two cylinders with different radii; the diameter of the semi-cylindrical groove is 30 mm; and the upper surface of the handle is arc-shaped.
[0011] Preferably, the detection plate comprises a detection plate plane, a signal contact, a second buckle hole, a support column mounting hole and a sample box mounting slot, the upper surface of the detection plate plane is provided with a plurality of signal contacts, four second buckle holes are arranged on the detection plate plane, two support column mounting holes are further arranged between the front and rear second buckle holes, and three sample box mounting slots are further arranged at the middle position of the detection plate plane.
[0012] Preferably, the size of the second buckle hole is consistent with that of the first buckle hole; and the size of the support column mounting hole is consistent with that of the upper half of the support column.
[0013] Preferably, the upper cover plate comprises an upper cover platform, an avoidance slot, a pressing slot, a reagent port, an extension block, an elastic buckle, a support column fixing sleeve and a sample box upper cover, the front side of the upper cover platform is provided with an avoidance slot, and the two sides of the upper cover platform are symmetrically provided with two pressing slots; the top of the upper cover platform is further provided with three reagent ports, and the rear side of the upper cover platform is provided with a plurality of extension blocks; the bottom of the upper cover platform is provided with four elastic buckles, two support column fixing sleeves are arranged between the front and rear elastic buckles, and three sample box upper covers are further arranged at the middle position of the bottom of the upper cover platform.
[0014] Preferably, the surface of the pressing slot is provided with anti-skid particles; the size of the extension block is consistent with that of the upper cover plate groove hole; and the size of the elastic buckle is consistent with that of the second buckle hole.
[0015] Preferably, the sample box comprises a box body, a wire hole, a sample mounting hole and a sample box handle, the front side of the box body is provided with a wire hole, and the top of the box body is provided with a sample mounting hole; and the rear side of the box body is provided with a sample box handle.
[0016] Preferably, the signal contact is electrically connected with the sample to be tested through the wire hole.
[0017] Preferably, the upper cover plate 300 is made of transparent plastic.
[0018] Compared with the prior art, the utility model has the advantages that:
[0019] 1、 The utility model discloses a bottom support plate and upper cover plate are set up, and the handle is set up on both sides of bottom support plate, reduce the volume, improve the portability of detection device.
[0020] 2、 The utility model discloses the mode of assembly to fixed sample box, wherein sample box is plastic material, and the cost is low, and can replace once, can effectively prevent the pollution of detection device after sample detection, utilizes recycling, and further protects the environment. BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 It is the structure schematic drawing of the utility model.
[0022] Figure 2 It is the explosion drawing of the utility model.
[0023] Figure 3 It is the structure schematic drawing of bottom support plate in the utility model.
[0024] Figure 4 It is the structure schematic drawing of detection plate in the utility model.
[0025] Figure 5 It is the structure schematic drawing of upper cover plate in the utility model.
[0026] Figure 6 It is the bottom view of the utility model in Figure 5 .
[0027] Figure 7 It is the structure schematic drawing of sample box in the utility model.
[0028] Mark annotation: 100, bottom support plate;101, bottom plate shell;102, arc slot;103, fixed groove;104, support column;105, first buckle hole;106, semicircular groove;107, handle;108, upper cover plate recess hole;200, detection plate;201, detection plate plane;202, signal contact;203, second buckle hole;204, support column mounting hole;205, sample box installation slot;300, upper cover plate;301, upper cover platform;302, avoiding slot;303, pressing groove;304, reagent port;305, extension block;306, elastic buckle;307, support column fixed sleeve;308, sample box upper cover;400, sample box;401, box body;402, wire hole;403, sample mounting hole;404, sample box handle. DETAILED DESCRIPTION
[0029] In order to make the utility model purposes, technical solutions and advantages more clearly, the following will be further described in detail with the drawings and examples.
[0030] In one embodiment, as shown in Figures 1-2 A bearing platform based on biological monitoring, comprising a bottom support plate 100, a top cover plate 300 is matched on the top of the bottom support plate 100, the top cover plate 300 and the bottom support plate 100 are matched with each other to assemble and fix the detection plate 200 and the sample box 400; a detection plate 200 is arranged in the bottom support plate 100, which is used for collecting biological data of the measured object; a plurality of sample boxes 400 are arranged in the detection plate 200, which are used for containing the measured biological object.
[0031] In one embodiment, as shown in Figure 3 The bottom support plate 100 comprises a bottom plate shell 101, an arc-shaped groove 102, a fixing groove 103, a support column 104, a first buckle hole 105, a semicircular column groove 106, a handle 107 and an upper cover plate recess hole 108, the front side of the bottom plate shell 101 is provided with an arc-shaped groove 102, which reserves space for opening the upper cover plate 300; a plurality of fixing grooves 103 are arranged at the bottom of the bottom plate shell 101, and the sample box 400 is fixedly arranged in the fixing grooves 103; a plurality of support columns 104 are arranged at the two sides of the fixing grooves 103, which are used for supporting the detection plate 200; four first buckle holes 105 are further arranged at the bottom of the bottom plate shell 101; a plurality of semicircular column grooves 106 are symmetrically arranged at the left and right sides of the bottom plate shell 101, which facilitate opening of the upper cover plate 300; a pair of handles 107 are further arranged on the outer wall of the bottom plate shell 101, so that the bottom support plate 100 is convenient to carry; a plurality of upper cover plate recess holes 108 are arranged at the rear side of the bottom plate shell 101, and the sample box 400 is fixed through the upper cover plate 300.
[0032] In one embodiment, as shown in Figure 3 The support column 104 is composed of two cylinders with different radii, the upper cylinder is used for sleeving the detection plate 200, and the lower cylinder provides support; the diameter of the semicircular column groove 106 is 30 mm, which is greater than the diameter of the human finger, so as to facilitate opening of the upper cover plate 300; the upper surface of the handle 107 is arc-shaped, so that the operator holds more comfortably.
[0033] In one embodiment, as shown in Figure 4 The detection plate 200 comprises a detection plate plane 201, a signal contact 202, a second buckle hole 203, a support column mounting hole 204 and a sample box mounting groove 205, the upper surface of the detection plate plane 201 is provided with a plurality of signal contacts 202, which transmit the collected signals; four second buckle holes 203 are arranged on the detection plate plane 201, two support column mounting holes 204 are further arranged between the front and rear second buckle holes 203, three sample box mounting grooves 205 are further arranged at the middle position of the detection plate plane 201, and the sample box 400 is fixed.
[0034] In one embodiment, such as Figure 4 As shown, the second buckle hole 203 and the first buckle hole 105 are matched in size, which facilitates the passage of the elastic buckle 306; the support column mounting hole 204 and the upper cylindrical part of the support column 104 are matched in size, so that the detection plate 200 is fitted onto the support column 104 through the support column mounting hole 204.
[0035] In one embodiment, such as Figures 5-6 As shown, the upper cover plate 300 includes an upper cover platform 301, a clearance groove 302, a pressing groove 303, a reagent port 304, an extension block 305, an elastic buckle 306, a support column fixing sleeve 307, and a sample box upper cover 308. An clearance groove 302 is provided on the front side of the upper cover platform 301 to reserve space for the signal contact 202. Two pressing grooves 303 are symmetrically provided on both sides of the upper cover platform 301 to facilitate pressing and fixing the upper cover plate 300 onto the bottom support plate 100. Three reagent ports 304 are also provided at the top of the upper cover platform 301 for injecting chemical reagents. Multiple extension blocks 305 are provided on the rear side of the upper cover platform 301. Four elastic buckles 306 are provided at the bottom of the upper cover platform 301, and two support column fixing sleeves 307 are provided between the front and rear elastic buckles 306 for fixing the detection plate 200. Three sample box upper covers 308 are also provided in the middle of the bottom of the upper cover platform 301 for sealing the sample box 400.
[0036] In one embodiment, such as Figures 5-6 As shown, the surface of the pressing groove 303 is provided with anti-slip particles to prevent the upper cover plate 300 from shaking during the pressing process; the size of the extension block 305 matches the groove hole 108 of the upper cover plate, and the sample box 400 is fixed by the snap-fit between the extension block 305 and the groove hole 108 of the upper cover plate; the size of the elastic buckle 306 matches the second buckle hole 203, and the two cooperate with each other to snap the upper cover plate 300 and the bottom support plate 100.
[0037] In one embodiment, such as Figure 7 As shown, the sample box 400 includes a box body 401, a wire hole 402, a sample mounting hole 403, and a sample box handle 404. A wire hole 402 is provided on the front side of the box body 401 for wires to extend into the box body 401 to connect to the test object; a sample mounting hole 403 is provided on the top of the box body 401 for placing the test object; a sample box handle 404 is provided on the rear side of the box body 401 for easy removal of the sample box 400.
[0038] In the embodiment, the sample box 400 is placed on the bottom support plate 100 through the sample box installation slot 205, the sample box handle 404 is placed into the upper cover plate recess hole 108, the upper cover plate 300 is clamped through the elastic buckle 306 and the second buckle hole 203, and the upper cover plate 300 and the bottom support plate 100 are fixed together, wherein the extension block 305 presses the sample box handle 404 to fix the sample box 400.
[0039] In one embodiment, as shown in Figure 4 and Figure 7 The signal contact 202 is electrically connected to the sample to be tested through the wire passing through the wire hole 402, and the received biometric information is transmitted.
[0040] In one embodiment, as shown in Figure 5 The upper cover plate 300 is made of transparent plastic material, which facilitates timely observation of the biological sample to be tested.
[0041] Working principle: first, the detection plate 200 is sleeved on the support column 104 through the support column installation hole 204, the sample box 400 is placed in the sample box installation slot 205, the sample box handle 404 is aligned and placed into the upper cover plate recess hole 108, the sample to be tested is connected to the signal contact 202 through the wire, finally, the upper cover plate 300 is clamped through the elastic buckle 306 and the second buckle hole 203, and the upper cover plate 300 and the bottom support plate 100 are fixed; after the detection is completed, the upper cover plate 300 is opened, and the sample box 400 is taken out for recycling.
[0042] The above is only a specific embodiment of the present application, but the protection scope of the present application is not limited thereto, any person skilled in the art can easily think of changes or replacements within the technical range disclosed in the present application, which should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A support platform for biological monitoring, comprising a bottom support plate (100), wherein a top cover plate (300) is fitted onto the top of the bottom support plate (100), characterized in that, The bottom support plate (100) is provided with a detection plate (200), and the detection plate (200) is fitted with a plurality of sample boxes (400).
2. The biological monitoring-based platform according to claim 1, characterized in that, The bottom support plate (100) includes a bottom plate shell (101), an arc-shaped groove (102), a fixing groove (103), a support column (104), a first buckle hole (105), a semi-cylindrical groove (106), a handle (107), and a top cover plate groove hole (108). An arc-shaped groove (102) is provided on the front side of the bottom plate shell (101). Multiple fixing grooves (103) are provided on the bottom of the bottom plate shell (101). Multiple support columns (104) are provided on both sides of the fixing grooves (103). Four first buckle holes (105) are also provided on the bottom of the bottom plate shell (101). Multiple semi-cylindrical grooves (106) are symmetrically provided on the left and right sides of the bottom plate shell (101). A pair of handles (107) are also provided on the outer wall of the bottom plate shell (101). Multiple top cover plate groove holes (108) are provided on the rear side of the bottom plate shell (101).
3. The biological monitoring-based platform according to claim 2, characterized in that, The support column (104) is composed of two cylinders with different radii; the diameter of the semi-cylindrical groove (106) is 30mm; and the upper surface of the handle (107) is an arc surface.
4. The biological monitoring-based platform according to claim 1, characterized in that, The detection plate (200) includes a detection plate plane (201), signal contacts (202), second snap-fit holes (203), support column mounting holes (204), and sample box mounting slots (205). The upper surface of the detection plate plane (201) is provided with multiple signal contacts (202). The detection plate plane (201) is provided with four second snap-fit holes (203). Two support column mounting holes (204) are provided between the front and rear two second snap-fit holes (203). Three sample box mounting slots (205) are provided in the middle of the detection plate plane (201).
5. The biological monitoring-based platform according to claim 4, characterized in that, The second snap-fit hole (203) and the first snap-fit hole (105) are of the same size; the support column mounting hole (204) and the upper cylindrical part of the support column (104) are of the same size.
6. The biological monitoring-based platform according to claim 1, characterized in that, The upper cover plate (300) includes an upper cover platform (301), a clearance groove (302), a pressing groove (303), a reagent port (304), an extension block (305), an elastic buckle (306), a support column fixing sleeve (307), and a sample box upper cover (308). The upper cover platform (301) has a clearance groove (302) on its front side and two pressing grooves (303) symmetrically arranged on both sides of the upper cover platform (301). The upper cover platform (301) also has three reagent ports (304) on its top and multiple extension blocks (305) on its rear side. The upper cover platform (301) has four elastic buckles (306) at its bottom and two support column fixing sleeves (307) between the front and rear elastic buckles (306). The upper cover platform (301) also has three sample box upper covers (308) at the middle position of its bottom.
7. A biological monitoring-based platform according to claim 6, characterized in that, The surface of the pressing groove (303) is provided with anti-slip particles; the size of the extension block (305) matches the groove hole (108) of the upper cover plate; the size of the elastic buckle (306) matches the second buckle hole (203).
8. The biological monitoring-based platform according to claim 1, characterized in that, The sample box (400) includes a box body (401), a wire hole (402), a sample mounting hole (403), and a sample box handle (404). A wire hole (402) is provided on the front side of the box body (401), and a sample mounting hole (403) is provided on the top of the box body (401). A sample box handle (404) is provided on the rear side of the box body (401).
9. A biological monitoring-based platform according to claim 4, characterized in that, The signal contact (202) is electrically connected to the sample under test via a wire passing through the wire hole (402).
10. A biological monitoring-based platform according to claim 6, characterized in that, The top cover (300) is made of transparent plastic.
Citation Information
Patent Citations
Platform for biological detection
CN221433126U