Inclined structure for brucellosis antibody detection
By designing a tilted structure for brucellosis antibody detection, and utilizing motor-driven shaking and tilting motions to achieve automatic sample mixing, the problem of large manual operation errors and high safety risks in brucellosis detection is solved, thereby improving detection efficiency and consistency.
Patent Information
- Application Number
- CN202422646198.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-31
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2034-10-31
AI Technical Summary
Brucellosis testing is characterized by large human error, high safety risks, and low efficiency, making it difficult to achieve uniform mixing and consistent testing of large batches of samples.
A tilting structure for brucellosis antibody detection was designed, comprising a base plate, a partition, a motor, an eccentric shaft, a slide table, and an LED light panel. The motor-driven shaking and tilting motion achieves automatic sample mixing, reducing manual operation and improving detection efficiency.
This method ensures thorough mixing of samples in the reaction plate, reduces experimental errors, improves detection efficiency and safety, and lowers the risk of human error.
Smart Images

Figure CN223565711U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to cloth disease antibody detection equipment field, specifically, it is a cloth disease antibody detection inclination structure. BACKGROUND
[0002] Brucellosis is caused by brucella bacteria infection and is a zoonosis infectious disease, and the rose bengal plate agglutination test is also called the bruce munggala red plate agglutination test, because the used antigen is an acid (PH3.6-3.9) colored antigen, the antigen can inhibit the agglutination activity of IgM class antibodies in the serum when reacting with the detected serum, the detected antibody is IgG class, therefore the specificity of the reaction is improved, and when being detected, 25ul of serum and antigen are respectively sucked and added to the two sides of the glass plate square, then the serum and antigen are quickly mixed, the result is observed after 4min of standing;
[0003] When the standard negative serum does not appear agglutination and the standard positive serum appears agglutination, the test is established, the person who appears visible agglutination phenomenon is judged as positive (+), and the person who does not appear agglutination phenomenon and the reaction mixed solution is pink is judged as negative (-);
[0004] The separation and culture of brucella have been the gold standard for the laboratory diagnosis of brucellosis infection, but because the experimental time is long and the biological safety risk is high, it is not suitable for universal use, and the most widely used serum detection method at present is the rose bengal plate agglutination test (RBT) and SAT;
[0005] At present, the detection of brucellosis is mostly artificial operation, if the detection quantity is more, the required artificial quantity is more, the artificial work intensity is big, and certain artificial operation error can also be caused, errors can appear when adding serum and antigen, and the effect cannot be guaranteed when mixing, and the brucellosis detection experiment has certain safety risk, the brucella can be transmitted through damaged skin mucous membrane, digestive tract and respiratory tract and other ways, and the artificial operation can have the risk of infection, thereby the detection work is inconvenient.
[0006] Therefore, the utility model provides a cloth disease antibody detection inclination structure to solve the above problems. UTILITY MODEL CONTENT
[0007] In order to solve the above technical problems, the utility model provides the following technical scheme:
[0008] The utility model relates to a kind of oblique structures of brucellosis antibody detection, including bottom plate, partition, first motor, eccentric shaft, second motor, sliding table, carrier frame and LED lamp plate, the partition is located the top of bottom plate, the LED lamp plate is inlaid in the surface of carrier frame, the carrier frame is located the top of partition, the first motor and eccentric shaft are installed between bottom plate and partition, the first motor and eccentric shaft are used to generate wobble, the second motor and sliding table are installed in the top of partition, the second motor and sliding table are used to do semicircle gauge movement, the carrier frame and LED lamp plate are used to carry detection sample.
[0009] Further, in the utility model, the top of bottom plate is further provided with support and shell, the shell is used to provide protective space for first motor, eccentric shaft, second motor and sliding table, and the support is used to support first motor.
[0010] Further, in the utility model, rubber stand and spring are installed around the top of bottom plate and in the inner cavity of shell, the spring is sleeved on the surface of rubber stand, and both ends of rubber stand and spring are fixedly connected with bottom plate and partition respectively.
[0011] Further, in the utility model, the support and shell are fixedly connected with bottom plate, the first motor is installed on the top of support and fixedly connected with support.
[0012] Further, in the utility model, the output shaft of first motor penetrates through the top of support and is in transmission connection with eccentric shaft, and the eccentric shaft is movably connected with partition through bearing.
[0013] Further, in the utility model, the output shaft of second motor is in transmission connection with sliding table, the second motor is fixed on the top of partition, and the carrier frame is installed on the top of sliding table.
[0014] Beneficial effects, the utility model has following beneficial effects:
[0015] The utility model discloses a kind of oblique structures of brucellosis antibody detection, including bottom plate, partition, first motor, eccentric shaft, second motor, sliding table, carrier frame and LED lamp plate, the partition is located the top of bottom plate, the LED lamp plate is inlaid in the surface of carrier frame, the carrier frame is located the top of partition, the first motor and eccentric shaft are installed between bottom plate and partition, the first motor and eccentric shaft are used to generate wobble, the second motor and sliding table are installed in the top of partition, the second motor and sliding table are used to do semicircle gauge movement, the carrier frame and LED lamp plate are used to carry detection sample. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 It is the main view structural schematic diagram of the utility model;
[0017] Figure 2 It is the connection state structural schematic diagram of carrier frame and LED lamp plate of the utility model;
[0018] Figure 3 This is a schematic diagram of the connection structure between the base plate and the partition plate of this utility model;
[0019] Figure 4 This is a cross-sectional structural diagram of the outer shell of this utility model;
[0020] Figure 5 This is a schematic diagram of the connection structure between the base plate, the rubber column, and the spring of this utility model.
[0021] In the picture:
[0022] 1. Base plate; 2. Partition plate; 3. First motor; 4. Eccentric shaft; 5. Second motor; 6. Slide table; 7. Support frame; 8. LED light panel; 9. Bracket; 10. Housing; 11. Rubber column; 12. Spring. Detailed Implementation
[0023] To better understand the technical content of this utility model, specific embodiments are described below in conjunction with the accompanying drawings. Various aspects of this utility model are described in this disclosure with reference to the accompanying drawings, which illustrate numerous illustrative embodiments. The embodiments of this disclosure are not necessarily defined to include all aspects of this utility model. It should be understood that the various concepts and embodiments described above, as well as those described in more detail below, can be implemented in any of many ways, because the concepts and embodiments disclosed in this utility model are not limited to any particular implementation. Furthermore, some aspects of this utility model can be used alone or in any suitable combination with other aspects disclosed in this utility model.
[0024] Example 1
[0025] like Figures 1-5 As shown, this is the first embodiment of the present invention. This embodiment provides a tilted structure for brucellosis antibody detection, including a base plate 1, a partition plate 2, a first motor 3, an eccentric shaft 4, a second motor 5, a slide table 6, a support frame 7, and an LED light panel 8. The partition plate 2 is located above the base plate 1, and the LED light panel 8 is embedded in the surface of the support frame 7, which is located above the partition plate 2. The first motor 3 and the eccentric shaft 4 are installed between the base plate 1 and the partition plate 2, and are used to generate shaking. The second motor 5 and the slide table 6 are installed on the top of the partition plate 2, and are used to perform semi-circular motion. The support frame 7 and the LED light panel 8 are used to support the detection sample.
[0026] like Figures 1-5As shown, the test sample is placed on top of the support frame 7 and above the LED light panel 8. The LED light panel 8 can improve illumination, thus facilitating the observation of test results. The output shaft of the first motor 3 rotates, driving the eccentric shaft 4 to rotate, causing the eccentric shaft 4 to drive the partition 2 to shake, thereby causing the test sample to shake. By adjusting the speed of the first motor 3, the shaking frequency can be adjusted. After the shaking is completed, the output shaft of the second motor 5 rotates, driving the slide table 6 to move back and forth in a semi-circular motion, thereby driving the support frame 7 to move in a semi-circular motion, realizing the forward, backward, up, and down tilting of the support frame 7. The start and stop time of the second motor 5 can be set by the external control, thereby setting the tilting motion time. In this way, batch mixing can be tested through fixed mechanical motion, ensuring test consistency, and the oscillation shaking and tilting can be integrated, effectively improving the test efficiency of the sample.
[0027] Example 2
[0028] Reference Figures 1-5 This is the second embodiment of the present invention, which is based on the previous embodiment.
[0029] In this embodiment, a bracket 9 and a housing 10 are also installed on the top of the base plate 1. The housing 10 is used to provide protective space for the first motor 3, the eccentric shaft 4, the second motor 5 and the slide table 6, and the bracket 9 is used to provide support for the first motor 3.
[0030] Rubber columns 11 and springs 12 are installed around the top of the base plate 1 and inside the outer shell 10. The springs 12 are sleeved on the surface of the rubber columns 11, and the two ends of the rubber columns 11 and springs 12 are fixedly connected to the base plate 1 and the partition plate 2, respectively.
[0031] Both the bracket 9 and the outer casing 10 are fixedly connected to the base plate 1. The first motor 3 is installed on the top of the bracket 9 and is fixedly connected to the bracket 9.
[0032] The output shaft of the first motor 3 extends through the top of the bracket 9 and is connected to the eccentric shaft 4 for transmission. The eccentric shaft 4 is movably connected to the partition plate 2 through a bearing.
[0033] The output shaft of the second motor 5 is connected to the slide table 6 for transmission. The second motor 5 is fixed to the top of the partition plate 2, and the support frame 7 is installed on the top of the slide table 6.
[0034] like Figures 1-5 As shown, the rubber column 11 and spring 12 provide support for the overall structure and eliminate irregular shaking to ensure stability. The outer shell 10 is used to support the first motor 3 so that the first motor 3 can operate stably. The base plate 1, partition 2, bearing frame 7, bracket 9 and outer shell 10 are all made of aluminum alloy.
[0035] In use, first, the detection sample is placed on the top of the bearing frame 7 and above the LED lamp plate 8, the output shaft of the first motor 3 rotates to drive the eccentric shaft 4 to rotate, so that the eccentric shaft 4 drives the baffle 2 to shake, thereby being capable of driving the detection sample to shake, through the rubber stand column 11 and the spring 12, the overall structure can be supported and irregular shaking can be eliminated to ensure stability, by adjusting the rotating speed of the first motor 3, the shaking frequency can be adjusted, after shaking, the output shaft of the second motor 5 rotates to drive the sliding table 6 to make semicircle rule movement, thereby being capable of driving the bearing frame 7 to make semicircle rule movement, realizing the front and back up and down inclination of the bearing frame 7, so that the test batch can be mixed uniformly through the fixed mechanical movement, the test consistency is ensured, and the oscillation shaking and inclination integration can be realized, the detection efficiency of the sample is effectively improved, and the test result can be conveniently and auxiliary observed through the LED lamp plate 8.
[0036] The standard parts used in the application file can be purchased from the market, and can be ordered according to the description and the drawings, and the specific connection mode of each part adopts the conventional means such as bolt, rivet and welding in the prior art, the mechanical, parts and equipment adopt the conventional type in the prior art, the control mode is automatically controlled through the controller, the control circuit of the controller can be realized through simple programming by the person skilled in the art, which belongs to the common knowledge in the art, and the application is mainly used to protect the mechanical device, so the control mode and circuit connection are not explained in detail.
[0037] Although the present application has been disclosed with the preferred embodiment, it is not intended to limit the present application. Those skilled in the art can make various modifications and decorations without departing from the spirit and scope of the present application. Therefore, the protection scope of the present application is defined by the claims.
Claims
1. A kind of oblique structure of cloth disease antibody detection, including bottom plate (1), partition (2), first motor (3), eccentric shaft (4), second motor (5), sliding table (6), bearing frame (7) and LED lamp plate (8), it is characterized in that: The partition plate (2) is located above the bottom plate (1), the LED lamp plate (8) is inlaid in the surface of the bearing frame (7), the bearing frame (7) is located above the partition plate (2), the first motor (3) and the eccentric shaft (4) are installed between the bottom plate (1) and the partition plate (2), the first motor (3) and the eccentric shaft (4) are used for generating shaking, the second motor (5) and the sliding table (6) are installed on the top of the partition plate (2), the second motor (5) and the sliding table (6) are used for making semicircle rule movement, and the bearing frame (7) and the LED lamp plate (8) are used for bearing detection samples.
2. The antibody detection tilt structure of claim 1, wherein: the antibody detection tilt structure is a lateral flow assay. The top of the bottom plate (1) is further provided with a support (9) and a shell (10), the shell (10) is used for providing a protection space for the first motor (3), the eccentric shaft (4), the second motor (5) and the sliding table (6), and the support (9) is used for supporting the first motor (3).
3. The brucellosis antibody detection tilted structure as described in claim 2, characterized in that: The rubber stand column (11) and the spring (12) are installed around the top of the bottom plate (1) and in the inner cavity of the shell (10), the spring (12) is sleeved on the surface of the rubber stand column (11), and the two ends of the rubber stand column (11) and the spring (12) are fixedly connected with the bottom plate (1) and the partition plate (2) respectively.
4. The antibody detection tilt structure of claim 2, wherein: the antibody detection tilt structure is a lateral flow assay. The support (9) and the shell (10) are fixedly connected with the bottom plate (1), and the first motor (3) is installed on the top of the support (9) and fixedly connected with the support (9).
5. The tilted structure for brucellosis antibody detection as described in claim 1, characterized in that: The output shaft of the first motor (3) penetrates through the top of the support (9) and is in transmission connection with the eccentric shaft (4), and the eccentric shaft (4) is movably connected with the partition plate (2) through a bearing.
6. The antibody detection tilt structure of claim 1, wherein: the antibody detection tilt structure is a lateral flow assay. The output shaft of the second motor (5) is in transmission connection with the sliding table (6), the second motor (5) is fixed on the top of the partition plate (2), and the bearing frame (7) is installed on the top of the sliding table (6).