Ribosome antibody detection device based on chemiluminescence analysis
By introducing a carrier plate and drive assembly into a fully automated chemiluminescence analyzer, combined with a pressure plate and damper, the problem of back-and-forth turbulence and loss of ribosome antibody culture medium in the detection block was solved, achieving stable delivery and improving detection efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHANGCHUN VOCATIONAL INST OF TECH
- Filing Date
- 2023-09-08
- Publication Date
- 2026-04-24
AI Technical Summary
The detection blocks in the sockets on the detection loop of existing fully automated chemiluminescence analyzers are prone to causing the ribosomal antibody culture medium to agitate back and forth and be lost or overflowed, affecting detection efficiency and stability.
Using a carrier plate and drive assembly, combined with first and second pressure plates and micro dampers, and driven by a servo motor, stable delivery and reduced impact are achieved. The ribosome antibody culture medium is stably clamped by a buffer pad and damper.
This improved the stability of the detection block, prevented the loss or overflow of ribosomal antibody culture medium, and enhanced detection efficiency and stability.
Smart Images

Figure CN224163575U_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of medical testing technology, and in particular relates to a ribosomal antibody detection device based on chemiluminescence analysis. Background Technology
[0002] Chemiluminescence detection technology is one of the important non-radioactive immunoassay techniques in current medical testing. It utilizes chemiluminescent substances to amplify signals and uses their luminescence intensity to directly measure the immune binding process of ribosomal antibodies. The detection equipment for chemiluminescence detection is called a chemiluminescence analyzer. A chemiluminescence analyzer mainly includes a housing, a chemiluminescence analysis and detection mechanism, a feeding mechanism, and a control terminal. The housing houses and protects the chemiluminescence analysis and detection mechanism, the feeding mechanism, and the control terminal. The chemiluminescence analysis and detection mechanism detects the ribosomal antibodies input into the equipment, and the feeding mechanism transports the ribosomal antibodies, allowing them to automatically enter and exit the chemiluminescence analyzer.
[0003] Existing document CN216433894U – A Fully Automated Chemiluminescence Analyzer – describes a fully automated chemiluminescence analyzer comprising a body, a display screen and an operation panel fixedly connected to one side of the body, a detection device fixedly connected to the upper side of the body, and a plate fixedly connected to one side of the body. The plate has a semi-circular groove on its upper side and two clearance holes on one side of the body. A detection ring is slidably connected within the semi-circular groove, allowing it to extend into the body through the clearance holes. A rotating device is provided on the plate. The detection ring has two parallel insertion holes on its upper side, each into which a detection block is inserted. The horizontal height of the upper side of the inner wall of the clearance hole is the same as the horizontal height of the upper side of the detection block. The advantage of this invention is that the continuous rotation of the detection ring within the semi-circular groove allows the detection device to continuously detect different samples, effectively improving the sample detection efficiency. However, it still has the following drawbacks in practical use:
[0004] 1. The aforementioned fully automated chemiluminescence analyzer has two opposing sockets on its detection ring, and each socket is fitted with a detection block. The detection blocks on the detection ring are driven sequentially into the interior of the chemiluminescence analyzer by a rotating device. However, the circular transport causes the culture medium containing ribosomal antibodies in the detection blocks to swirl back and forth, which is not conducive to the analysis and detection work.
[0005] 2. The fully automated chemiluminescence analyzer described above uses a detection block to carry the culture medium containing ribosomal antibodies. However, the surface of the detection block is smooth, which can easily cause the culture medium containing ribosomal antibodies to be lost or overflow from the detection block.
[0006] Therefore, the fully automated chemiluminescence analyzer described above cannot meet the needs of actual use, so there is an urgent need for improved technologies on the market to solve the above problems. Utility Model Content
[0007] The purpose of this invention is to provide a ribosomal antibody detection device based on chemiluminescence analysis. By utilizing a support plate and a drive assembly, the feeding and unloading process is made more stable. Furthermore, the first and second pressure plates can stably hold the ribosomal antibody culture medium carrier and reduce the impact during the movement of the support plate, thus solving the problems of the aforementioned fully automated chemiluminescence analyzer.
[0008] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:
[0009] This utility model relates to a ribosome antibody detection device based on chemiluminescence analysis, comprising a body, a display, control buttons, and a feedback light. The display is embedded in the outer wall of the body, and control buttons are installed on one side of the outer wall of the body, while a feedback light is installed on the other side. A feeding mechanism is slidably installed inside the body. Sliders are bonded to both ends of the support plate in the feeding mechanism, and a drive assembly is installed on the outer wall of the slider. A servo motor in the drive assembly is connected to the slider via a lead screw. Connecting sleeves are bonded to both sides of the support plate, and the connecting sleeves are connected to a sealing plate via connecting rods. A storage groove is formed inside the support plate, and snap-fit grooves are formed on both ends of the outer wall of the support plate. A first pressure plate is installed on one inner wall of the storage groove, and a second pressure plate is installed on the other inner wall of the storage groove. A micro damper is installed on the outer wall of the second pressure plate, and the other outer wall of the micro damper is connected to an abutment plate.
[0010] Furthermore, a detection groove is provided inside the machine body, and a sliding groove is provided at the center of the front and rear side walls of the detection groove, and an equipment groove is provided on the outer wall at the end of the sliding groove.
[0011] Furthermore, the machine body is slidably connected to the slider on the support plate via a slide groove, and the machine body is connected to the motor frame in the drive assembly via an equipment slot.
[0012] Furthermore, a servo motor is installed inside the motor frame. The motor shaft of the servo motor is connected to one end of the lead screw via a coupling, and the other end of the lead screw is connected via a drive screw sleeve.
[0013] Furthermore, the first pressure plate is arranged in a mountain-shaped structure, and a first buffer pad is adhered to the outer wall of each ridge of the first pressure plate.
[0014] Furthermore, the second pressure plate is configured as a flat plate, and the abutment plate is configured as a mountain-shaped structure, with a second buffer pad adhered to the outer wall of each ridge of the abutment plate.
[0015] Furthermore, two micro dampers are provided between the second pressure plate and the abutment plate, and the micro dampers are symmetrically arranged on both sides about the center point of the second pressure plate.
[0016] This utility model has the following beneficial effects:
[0017] 1. This utility model, by setting up a support plate and a drive assembly, has a drive assembly installed at both ends of the support plate during use. The servo motor in the drive assembly is connected to the support plate through a lead screw and a drive sleeve, which not only makes the driving process stable, but also prevents slippage with the cooperation of the slide block and the slide groove. This solves the problem of the above-mentioned fully automated chemiluminescence analyzer, where the detection ring has two opposite insertion holes, and each insertion hole is used to insert a detection block. The detection blocks on the detection ring are driven by a rotating device to enter the interior of the chemiluminescence analyzer in sequence. However, the circular transport causes the culture medium containing ribosomal antibodies in the detection blocks to swirl back and forth, which is not conducive to the analysis and detection work.
[0018] 2. This utility model, by setting up a support plate, a first pressure plate, and a second pressure plate, allows the first and second pressure plates to be embedded in the side walls of the detection groove within the support plate during use. The first buffer pad on the first pressure plate and the micro damper and second buffer pad on the second pressure plate can effectively reduce the impact force during the movement of the support plate, preventing the ribosomal antibody culture medium from being lost or overflowing, thus improving stability. This solves the problem of the aforementioned fully automated chemiluminescence analyzer, which uses a detection block to carry the culture medium containing ribosomal antibodies, but the surface of the detection block is smooth, which easily causes the ribosomal antibody culture medium to be lost or overflow from the detection block. Attached Figure Description
[0019] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0020] Figure 1 This is a schematic diagram of a ribosomal antibody detection device based on chemiluminescence analysis;
[0021] Figure 2 An exploded view of the feeding mechanism;
[0022] Figure 3 This is an exploded view of the structure of the bearing plate, the first pressure plate, and the second pressure plate.
[0023] The attached diagram lists the components represented by each number as follows:
[0024] 1. Machine body; 101. Detection groove; 102. Slide groove; 103. Equipment groove; 2. Display; 3. Control buttons; 4. Feedback light; 5. Feeding mechanism; 501. Bearing plate; 5011. Storage groove; 5012. Snap-fit groove; 502. Slider; 503. Drive assembly; 5031. Servo motor; 5032. Lead screw; 5033. Drive screw sleeve; 5034. Motor frame; 504. Connecting sleeve; 505. First pressure plate; 5051. First buffer pad; 506. Second pressure plate; 5061. Miniature damper; 5062. Abutment plate; 5063. Second buffer pad; 507. Connecting rod; 508. Sealing plate. Detailed Implementation
[0025] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.
[0026] Please see Figures 1 to 3 As shown, this utility model is a ribosome antibody detection device based on chemiluminescence analysis, including a body 1, a display 2, control buttons 3, and a feedback lamp 4. The display 2 is embedded in the outer wall of the body 1, and the control buttons 3 are installed on one side of the outer wall of the body 1. The feedback lamp 4 is installed on the other side of the outer wall of the body 1. A feeding mechanism 5 is slidably installed inside the body 1. Slider 502 is bonded to both ends of the support plate 501 in the feeding mechanism 5. A drive assembly 503 is installed on the outer wall of the slider 502. The servo motor 5031 in the drive assembly 503 is connected to the lead screw 503. 2. Connected to slider 502, connecting sleeves 504 are glued to both sides of the bearing plate 501. The connecting sleeves 504 are connected to the sealing plate 508 through connecting rod 507. The bearing plate 501 has a storage groove 5011 inside. The outer walls of both ends of the bearing plate 501 have snap-fit grooves 5012. A first pressure plate 505 is installed on one inner wall of the storage groove 5011, and a second pressure plate 506 is installed on the other inner wall of the storage groove 5011. A micro damper 5061 is installed on the outer wall of the second pressure plate 506, and the other outer wall of the micro damper 5061 is connected to the abutment plate 5062.
[0027] Among them, such as Figure 1 As shown, the machine body 1 has a detection groove 101 inside, and a sliding groove 102 is provided at the center of the front and rear side walls of the detection groove 101. A device groove 103 is provided on the outer wall of the end of the sliding groove 102. Specifically, the detection groove 101 can accommodate the feeding mechanism 5, and the sliding groove 102 can assist the support plate 501 in the feeding mechanism 5 to slide back and forth.
[0028] Among them, such as Figure 2 As shown, the machine body 1 is slidably connected to the slider 502 on the support plate 501 via the slide groove 102, and the machine body 1 is connected to the motor frame 5034 in the drive assembly 503 via the equipment slot 103; the motor frame 5034 is equipped with a servo motor 5031, and the motor shaft of the servo motor 5031 is connected to one end of the lead screw 5032 via a coupling, and the other end of the lead screw 5032 is connected via a drive screw sleeve 5033; specifically, the cooperation of the servo motor 5031, the lead screw 5032 and the drive screw sleeve 5033 can provide driving force support for the support plate 501.
[0029] Among them, such as Figure 3 As shown, the first pressure plate 505 is arranged in a mountain-shaped structure, and a first buffer pad 5051 is adhered to the outer wall of each ridge of the first pressure plate 505; specifically, the first pressure plate 505 abuts against the outer wall of the ribosome antibody culture medium detection block through the first buffer pad 5051; the second pressure plate 506 is arranged in a flat plate structure, and the abutment plate 5062 is arranged in a mountain-shaped structure, and a second buffer pad 5063 is adhered to the outer wall of each ridge of the abutment plate 5062; the second pressure plate 5062 is arranged in a mountain-shaped structure, and a second buffer pad 5063 is adhered to the outer wall of each ridge of the abutment plate 5062; the second pressure plate 5062 is arranged in a mountain-shaped structure, and a second buffer pad 5063 is adhered to the outer wall of each ridge of the abutment plate 5062; the second pressure plate 5062 is arranged in a mountain-shaped structure, and a first buffer pad 5051 ... Two micro dampers 5061 are provided between the plate 506 and the abutment plate 5062. The micro dampers 5061 are symmetrically arranged on both sides of the center point of the second pressure plate 506. Specifically, the abutment plate 5062 abuts against the outer wall of the ribosome antibody culture medium detection block on the other side through the second buffer pad 5063. The first buffer pad 5051 and the second buffer pad 5063 are both made of rubber material. At the same time, the micro dampers 5061 can greatly reduce the vibration when the push stops.
[0030] The above are merely preferred embodiments of the present utility model and do not limit the present utility model. Any modifications, equivalent substitutions, or improvements made to the technical solutions described in the foregoing embodiments, or to some of the technical features, shall fall within the protection scope of the present utility model.
Claims
1. A ribosomal antibody detection device based on chemiluminescence analysis, comprising a body (1), a display (2), control buttons (3), and a feedback lamp (4), wherein the display (2) is embedded in the outer wall of the body (1), and the control buttons (3) are installed on the outer wall of the body (1) on one side of the display (2), and the feedback lamp (4) is installed on the outer wall of the body (1) on the other side of the display (2), characterized in that: A feeding mechanism (5) is slidably installed inside the machine body (1). Sliders (502) are glued to both ends of the bearing plate (501) in the feeding mechanism (5). A drive assembly (503) is installed on the outer wall of the slider (502). The servo motor (5031) in the drive assembly (503) is connected to the slider (502) through a lead screw (5032). Connecting sleeves (504) are glued to both sides of the bearing plate (501). The connecting sleeves (504) are connected to the sealing plate (508) through connecting rods (507). The support plate (501) has a storage slot (5011) inside. Both ends of the support plate (501) have snap-fit slots (5012). A first pressure plate (505) is installed on one inner wall of the storage slot (5011), and a second pressure plate (506) is installed on the other inner wall of the storage slot (5011). A miniature damper (5061) is installed on the outer wall of the second pressure plate (506), and the other outer wall of the miniature damper (5061) is connected to the abutment plate (5062).
2. The ribosomal antibody detection device based on chemiluminescence analysis according to claim 1, characterized in that: The body (1) has a detection groove (101) inside, and a sliding groove (102) is provided at the center of the front and rear side walls of the detection groove (101). An equipment groove (103) is provided on the outer wall of the end of the sliding groove (102).
3. The ribosomal antibody detection device based on chemiluminescence analysis according to claim 2, characterized in that: The body (1) is slidably connected to the slider (502) on the support plate (501) via the slide groove (102), and the body (1) is connected to the motor frame (5034) in the drive assembly (503) via the equipment slot (103).
4. The ribosomal antibody detection device based on chemiluminescence analysis according to claim 3, characterized in that: The motor frame (5034) is equipped with a servo motor (5031). The motor shaft of the servo motor (5031) is connected to one end of a lead screw (5032) via a coupling. The other end of the lead screw (5032) is connected via a drive screw sleeve (5033).
5. The ribosomal antibody detection device based on chemiluminescence analysis according to claim 1, characterized in that: The first pressure plate (505) is arranged in a mountain-shaped structure, and a first buffer pad (5051) is attached to the outer wall of each ridge of the first pressure plate (505).
6. The ribosomal antibody detection device based on chemiluminescence analysis according to claim 1, characterized in that: The second pressure plate (506) is configured as a flat plate, and the abutment plate (5062) is configured as a mountain-shaped structure. A second buffer pad (5063) is adhered to the outer wall of each ridge of the abutment plate (5062).
7. The ribosomal antibody detection device based on chemiluminescence analysis according to claim 6, characterized in that: Two miniature dampers (5061) are provided between the second pressure plate (506) and the abutment plate (5062), and the miniature dampers (5061) are symmetrically arranged on both sides of the center point of the second pressure plate (506).
Citation Information
Patent Citations
Full-automatic chemiluminescence analyzer
CN216433894U