Code scanning structure for reagent card detection
By introducing optical path clips and sliding sleeve structures into the reagent card detection device, synchronous archive of reagent card scanning information and optical path detection information is achieved, which solves the problem of difficult to trace the detection results, and improves the detection efficiency and the number of detectable reagent cards.
Patent Information
- Application Number
- CN202421346099.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-13
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-06-13
AI Technical Summary
The existing reagent card detection devices lack real-time information identification and storage functions, making it difficult to trace the detection results.
A reagent card detection and scanning structure is designed, including optical path clip A and optical path clip B arranged in parallel, with an embedded sliding sleeve and guide rail sliding, combining the optical path detection module and the scanning module to realize the joint archive of the scanning information of the reagent card and the optical path detection information.
The synchronous archive of the reagent card scanning code information and the optical path detection information is realized, which facilitates the subsequent retrieval of detection results in the system, and improves the detection efficiency and the number of detectable reagent cards.
Smart Images

Figure CN223154845U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a reagent card detection and scanning structure, belonging to the technical field of reagent card detection. Background Art
[0002] The colloidal gold / dry fluorescence detection technology is a rapid detection technology. The device corresponding to this technical solution includes a colloidal gold / dry fluorescence reagent card, an optical detection module, and a reagent card moving assembly. The reagent card is moved to the corresponding detection position of the optical detection module by the moving assembly for scanning detection.
[0003] However, the reagent card detection and scanning device in the prior art is of a single structure and has no real-time information identification and storage function, resulting in the problem that it is not convenient to trace the detection results. If it is necessary to view the detection results later, it is difficult to directly retrieve and trace them in the system.
[0004] In summary, it is obvious that the prior art has inconveniences and defects in actual use, so it is necessary to improve it. Content of the Utility Model
[0005] Aiming at the deficiencies in the background art, the utility model provides a reagent card detection and scanning structure, which can jointly archive the scanning information and optical path detection information of each reagent card, and the detection results can be accurately traced later.
[0006] To solve the above technical problems, the utility model adopts the following technical solutions:
[0007] A reagent card detection and scanning structure includes a parallel light path clip A and a light path clip B. At the ends of the light path clip A and the light path clip B, there is a light block support arm cross beam fixedly connected to both of them. An optical detection module and a scanning module are installed in the space formed among the light path clip A, the light path clip B, and the light block support arm cross beam. The scanning direction of the scanning module and the scanning direction of the optical detection module both face the reagent card below.
[0008] The first sliding sleeve and the second sliding sleeve are embedded and fixed at both ends of the light path clip A and the light path clip B, and the first sliding sleeve and the second sliding sleeve are slidably installed on two guide rails.
[0009] Further, the whole formed by the light path clip A, the light path clip B, and the light block support arm cross beam is a U-shaped structure.
[0010] Further, the light path clip A, the light path clip B, and the light block support arm cross beam are fixedly connected by screws.
[0011] Further, the left and right ends of the optical detection module are fixedly connected to the opposite inner sides of the light path clip A and the light path clip B by screws.
[0012] Further, the code scanning module is located between the optical path detection module and the optical block support arm cross beam, and is fixedly installed on the side of the code scanning fixing member. The left and right ends of the code scanning fixing member are fixedly connected to the upper end surfaces of the optical path clamping piece A and the optical path clamping piece B by screws.
[0013] Further, the center lines of the first sliding sleeve and the second sliding sleeve are arranged in parallel.
[0014] Further, the first sliding sleeve and the second sliding sleeve in the optical path clamping piece A and the first sliding sleeve and the second sliding sleeve in the optical path clamping piece B are arranged symmetrically left and right.
[0015] Further, a connecting piece is provided on the side of the optical block support arm cross beam away from the optical path clamping piece A and the optical path clamping piece B. The optical block support arm cross beam is connected to the belt through the connecting piece, and the belt is in transmission connection with the power device.
[0016] After the present utility model adopts the above technical solutions, compared with the prior art, it has the following advantages:
[0017] The front and rear movement mechanism transports the reagent card to the code scanning position below the code scanning module and the optical path detection module. The optical path detection module detects the reagent on the reagent card, and the code scanning module scans the exclusive two-dimensional code information of the reagent card. The two work independently and cooperate with each other. The code scanning information and the optical path detection information of each reagent card are jointly archived. Subsequently, the inspection results can be conveniently retrieved and used in the system.
[0018] The whole device can slide left and right along the guide rail, so as to detect different reagent cards, increase the number of reagent cards that can be detected, and improve the detection efficiency.
[0019] The present utility model will be described in detail below with reference to the drawings and embodiments. Description of the Drawings
[0020] Figure 1 is a three-dimensional structure diagram of the present utility model;
[0021] Figure 2 is a three-dimensional structure diagram of the present utility model in another direction;
[0022] Figure 3 is a side view of the structure of the present utility model.
[0023] In the figure, 1 - optical path clamping piece A, 2 - optical path clamping piece B, 3 - optical block support arm cross beam, 4 - first sliding sleeve, 5 - second sliding sleeve, 6 - connecting piece, 7 - optical path detection module, 8 - code scanning module, 9 - code scanning fixing member, 10 - reagent card. Detailed Embodiment
[0024] To have a clearer understanding of the technical features, objectives, and effects of the present utility model, the specific embodiments of the present utility model will now be described with reference to the accompanying drawings.
[0025] As Figures 1 - 3 Collectively shown, the present utility model provides a reagent card detection and scanning structure, which includes a light path clip A1 and a light path clip B2 arranged in parallel. At the ends of the light path clip A1 and the light path clip B2, there is a light block support arm crossbeam 3 fixedly connected to both of them. Inside the space formed among the light path clip A1, the light path clip B2, and the light block support arm crossbeam 3, a light path detection module 7 and a scanning module 8 are installed.
[0026] The whole formed by the light path clip A1, the light path clip B2, and the light block support arm crossbeam 3 is a U-shaped structure, and the light path clip A1, the light path clip B2, and the light block support arm crossbeam 3 are fixedly connected by screws.
[0027] The left and right ends of the light path detection module 7 are fixedly connected to the opposite inner sides of the light path clip A1 and the light path clip B2 by screws.
[0028] The scanning module 8 is located between the light path detection module 7 and the light block support arm crossbeam 3, and is located on the side of the scanning fixing member 9. The left and right ends of the scanning fixing member 9 are fixedly connected to the upper end surfaces of the light path clip A1 and the light path clip B2 by screws.
[0029] The scanning direction of the scanning module 8 and the scanning direction of the light path detection module 7 both face the reagent card 10 below. The scanning module 8 is used to scan the exclusive two-dimensional code information of the reagent card 10, and the light path detection module 7 is used to detect the reagent on the reagent card 10.
[0030] At the two end parts of the light path clip A1 and the light path clip B2, a first sliding sleeve 4 and a second sliding sleeve 5 are embedded and fixed. The center lines of the first sliding sleeve 4 and the second sliding sleeve 5 are arranged in parallel.
[0031] The first sliding sleeve 4 and the second sliding sleeve 5 in the light path clip A1 and the first sliding sleeve 4 and the second sliding sleeve 5 in the light path clip B2 are arranged symmetrically left and right.
[0032] The first sliding sleeve 4 and the second sliding sleeve 5 are slidably installed on two guide rails, and the whole device can slide left and right along the guide rails, increasing the number of reagent cards that can be detected and improving the efficiency.
[0033] On the side of the light block support arm crossbeam 3 away from the light path clip A1 and the light path clip B2, there is a connecting member 6. The light block support arm crossbeam 3 is connected to a belt through the connecting member 6, and the belt is in transmission connection with a power device. The power device drives the whole to move left and right through the belt.
[0034] The specific working principle of the present utility model:
[0035] The front-back movement mechanism transports the reagent card 10 to the scanning position below the code scanning module 8 and the optical path detection module 7. The optical path detection module 7 detects the reagent on the reagent card 10, and the code scanning module 8 scans the exclusive two-dimensional code information of the reagent card 10. The two work independently and cooperate with each other. The code scanning information and the optical path detection information of each reagent card 10 are jointly archived, and subsequent viewing of the test results can be conveniently retrieved and traced back in the system for use.
[0036] The whole device can slide left and right along the guide rail, so as to detect different reagent cards, increase the number of reagent cards that can be detected, and improve the detection efficiency.
[0037] The above is an example of the best implementation mode of the present invention, and the parts not described in detail are all common general knowledge of those of ordinary skill in the art. The protection scope of the present invention shall be subject to the content of the claims, and any equivalent transformation based on the technical inspiration of the present invention is also within the protection scope of the present invention.
Claims
1. A reagent card detection and scanning structure, characterized in that: It includes optical path clamping pieces A (1) and optical path clamping pieces B (2) arranged in parallel. At the ends of the optical path clamping pieces A (1) and the optical path clamping pieces B (2), there is a light block support arm cross beam (3) fixedly connected to both of them. An optical path detection module (7) and a code scanning module (8) are installed in the space formed between the optical path clamping pieces A (1), the optical path clamping pieces B (2) and the light block support arm cross beam (3). The code scanning direction of the code scanning module (8) and the scanning direction of the optical path detection module (7) both face the reagent card (10) below. At both ends of the optical path clamping pieces A (1) and the optical path clamping pieces B (2), a first sliding sleeve (4) and a second sliding sleeve (5) are embedded and fixed. The first sliding sleeve (4) and the second sliding sleeve (5) are slidably installed on two guide rails.
2. The reagent card detection and code scanning structure according to claim 1, characterized in that: The whole formed by the optical path clamping pieces A (1), the optical path clamping pieces B (2) and the light block support arm cross beam (3) is a U-shaped structure.
3. The reagent card detection and code scanning structure according to claim 2, wherein: The optical path clamping pieces A (1), the optical path clamping pieces B (2) and the light block support arm cross beam (3) are fixedly connected by screws.
4. The reagent card detection and code scanning structure according to claim 1, wherein: The left and right ends of the optical path detection module (7) are fixedly connected to the opposite inner sides of the optical path clamping pieces A (1) and the optical path clamping pieces B (2) by screws.
5. The reagent card detection and code scanning structure according to claim 1, characterized in that: The code scanning module (8) is located between the optical path detection module (7) and the light block support arm cross beam (3), and is located on the side of the code scanning fixing part (9). The left and right ends of the code scanning fixing part (9) are fixedly connected to the upper end surfaces of the optical path clamping pieces A (1) and the optical path clamping pieces B (2) by screws.
6. The reagent card detection and scanning structure according to claim 1, characterized in that: The center lines of the first sliding sleeve (4) and the second sliding sleeve (5) are arranged in parallel.
7. The reagent card detection and scanning structure according to claim 1, characterized in that: The first sliding sleeve (4) and the second sliding sleeve (5) in the optical path clamping piece A (1) and the first sliding sleeve (4) and the second sliding sleeve (5) in the optical path clamping piece B (2) are arranged symmetrically left and right.
8. The reagent card detection and code scanning structure according to claim 1, characterized in that: On the side of the light block support arm cross beam (3) away from the optical path clamping pieces A (1) and the optical path clamping pieces B (2), there is a connecting piece (6). The light block support arm cross beam (3) is connected to a belt through the connecting piece (6), and the belt is in transmission connection with a power device.