Laboratory protein analyzer
By designing components such as a detection cup holder, a telescopic cylinder structure, and a limiting guide rail, the laboratory protein analyzer was able to perform parallel multi-sample detection, solving the problem of low efficiency in traditional instruments and improving the degree of automation and detection efficiency.
Patent Information
- Application Number
- CN202422856255.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-22
- Publication Date
- 2025-11-28
- Estimated Expiration
- 2034-11-22
AI Technical Summary
Traditional protein analyzers can only analyze one sample at a time, which requires repeated operations when testing multiple samples, thus affecting detection efficiency.
A laboratory protein analyzer was designed, comprising a detection cup holder, a telescopic cylinder structure, a limiting guide rail, and a protein solution container. It can process multiple samples simultaneously and ensures stability and accuracy through the limiting structure and the return spring structure. Combined with a flow controller, the solution flow rate is precisely controlled to achieve automated parallel detection.
It improves detection efficiency, reduces repetitive operations, and can process five samples simultaneously, ensuring the stability and accuracy of detection and meeting the needs of high-throughput analysis.
Smart Images

Figure CN223611518U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of analysis appearance, specifically is a laboratory protein analysis appearance. BACKGROUND
[0002] Laboratory protein analysis appearance mainly comes from the rapid development of life science, biotechnology and medical diagnosis etc. field. With the in-depth research of protein structure and function in these fields, it is particularly important to accurately, quickly and efficiently analyze the protein. Although the traditional protein analysis method, such as electrophoresis, chromatography and mass spectrum etc. can provide high-precision analysis results, it is often complex, time-consuming and high in cost, which cannot meet the demand of large-scale, high-throughput analysis.
[0003] However, the existing traditional analysis appearance can only analyze one sample at a time, so when multiple samples need to be detected, the operation of placing and taking out the sample needs to be repeated, which is complicated and affects the detection efficiency. Therefore, it does not meet the existing demand, and for this we propose a laboratory protein analysis appearance. UTILITY MODEL CONTENT
[0004] The utility model aims at providing a laboratory protein analysis appearance to solve the problem that the existing traditional analysis appearance can only analyze one sample at a time, so when multiple samples need to be detected, the operation of placing and taking out the sample needs to be repeated, which is complicated and affects the detection efficiency.
[0005] To achieve the above purpose, the utility model provides the following technical scheme: a laboratory protein analysis appearance, which comprises a laboratory protein analysis device, the laboratory protein analysis device comprises a shell component and a base component, and further comprises: the protein analysis appearance component is inlaidly connected in the shell component, the protein analysis appearance component is inlaidly connected with the electric lifting rod, which is connected with the internal motor, one end of the electric lifting rod is fixedly connected with the connecting rod, the connecting rod is fixedly connected with the protein analysis probe structure, the protein analysis appearance component and the protein analysis probe structure on the connecting rod are respectively electrically connected with both ends of the connecting line, the upper end of the shell component is fixedly connected with the protein solution container, the protein solution container is provided with five, the protein solution container is fixedly connected with the infusion tube, the detection containing assembly is placed in the shell component, the protein detection cup is inlaidly connected on the detection containing assembly.
[0006] Preferably, the base member comprises a bottom plate extension plate, a detection cup rack, a telescopic air cylinder structure, the bottom plate extension plate is arranged on the base member, and the bottom plate extension plate is fixedly connected with the base member, the detection cup rack is arranged on the bottom plate extension plate, and the detection cup rack is clampedly connected with the bottom plate extension plate, the telescopic air cylinder structure is arranged on the bottom plate extension plate, and the telescopic air cylinder structure is fixedly connected with the bottom plate extension plate, and one end of the shaft rod of the telescopic air cylinder structure is connected with one side of the detection cup rack.
[0007] Preferably, the base member comprises a limiting guide rail and a limiting structure, the limiting guide rail is arranged at the upper end of the base member and is fixedly connected with the upper end of the base member, and the limiting structure is arranged on the base member and is inlaidly connected with the base member.
[0008] Preferably, the limiting structure of the base member comprises a limiting block and a reset spring structure, the limiting block is arranged in the limiting structure and is inlaidly connected with the base member, and the reset spring structure is arranged on the limiting block and is inlaidly connected with the limiting block.
[0009] Preferably, the detection cup rack in the detection assembly comprises a detection cup placing groove, a guide rail groove and a ball, the detection cup placing groove is arranged on the detection cup rack and is integrally formed with the detection cup rack, the detection cup placing groove is provided with five detection cup placing grooves, the guide rail groove is arranged on the detection cup rack and is integrally formed with the detection cup rack, and the bottom of the detection cup rack is provided with the ball which is inlaidly connected with the bottom of the detection cup rack.
[0010] Preferably, the detection cup rack is provided with a label plate which is fixedly connected with the detection cup rack.
[0011] Preferably, the protein solution container comprises a mounting frame and a flow controller, the mounting frame is arranged at the lower end of the protein solution container and is fixedly connected with the lower end of the protein solution container at one end and with the upper end of the shell member at the other end, and the flow controller is arranged on the infusion tube and is fixedly connected with the infusion tube.
[0012] Compared with the prior art, the protein solution container has the advantages that:
[0013] 1、The utility model discloses a detection cup rack, telescopic air cylinder structure, detection cup placing groove, limiting guide rail, guide rail groove, ball, limiting structure, limiting block, reset spring structure, the setting of protein solution container, detection cup rack is used for placing protein detection cup, and it makes multiple detection cups can be placed on the analyzer simultaneously to simultaneously process multiple samples. Greatly improve the detection efficiency, reduce the repeated placement and the operation of taking out sample. Telescopic air cylinder structure is responsible for pushing the movement of detection cup rack. Through the telescopic control of air cylinder, detection cup rack can be moved to the specified position of analyzer automatically, further reduces manual operation, improves the degree of automation. Five detection cup placing grooves make that detection cup rack can accommodate five detection cups simultaneously, thereby realizing the parallel detection of five samples. Improve the detection efficiency, and make that one analysis can process more samples. Limiting guide rail provides the guidance and limitation for the movement of detection cup rack, ensures its stability and accuracy in the movement process. Guide rail groove cooperates with limiting guide rail, further enhances the stability and accuracy of detection cup rack in the movement process. Ball reduces the friction resistance of detection cup rack in the movement process, improves the movement efficiency and smoothness. Limiting structure is used for limiting the position of detection cup rack, and limiting block is a part of limiting structure, ensures the stability of detection cup rack on the specific position. When detection cup rack reaches the predetermined position, limiting block will limit the movement of pushing detection cup rack, and then limiting block resets through reset spring structure. Five protein solution containers are used for storing five different protein solution samples respectively. Make that the analyzer can process five different samples simultaneously, thereby improving the detection efficiency. Besides, every container is equipped with flow controller, can accurately control the flow rate and flow of protein solution, satisfies the experimental demand, improves the accuracy and reliability of experiment.
[0014] In summary, the laboratory protein analyzer can process multiple samples simultaneously, thereby solving the problems of traditional analyzers in handling multiple samples, such as complicated operation and low detection efficiency. The telescopic air cylinder structure, detection cup rack and five detection cup placing grooves enable the analyzer to automatically move multiple detection cups to the specified position for parallel detection; the limiting guide rail, guide rail groove and ball improve the stability and accuracy of the detection cup rack in the movement process; the limiting structure and reset spring structure ensure the stability of the detection cup rack on the specific position; and the five protein solution containers enable the analyzer to process five different samples simultaneously. The combined action of these structures enables the laboratory protein analyzer to efficiently process multiple samples and improves the detection efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 It is the laboratory protein analysis device positive end face structure schematic drawing of the utility model;
[0016] Figure 2 It is the base member partial structure schematic drawing of the utility model;
[0017] Figure 3 The limiting structure schematic view of the utility model is shown in the figure;
[0018] Figure 4 The detection cup rack structure schematic view of the utility model is shown in the figure;
[0019] In the figure: 1, laboratory protein analysis device;2, shell component;3, base component;31, bottom plate extension plate;32, telescopic air cylinder structure;33, limiting guide rail;34, limiting structure;341, limiting block;342, reset spring structure;4, protein analyzer component;5, electric lifting rod;6, connecting rod;7, protein analysis probe structure;8, connecting line;9, protein solution container;91, infusion tube;92, mounting rack;93, flow controller;10, detection containing assembly;101, detection cup rack;102, detection cup placing groove;103, guide rail groove;104, ball;105, label plaque;11, protein detection cup. DETAILED DESCRIPTION
[0020] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments.
[0021] Please refer to Figures 1-4 The utility model provides an embodiment: a kind of laboratory protein analyzer, including laboratory protein analysis device 1, laboratory protein analysis device 1 includes shell component 2 and base component 3, still include: shell component 2 is inlayed and is connected with protein analyzer component 4, protein analyzer component 4 is inlayed and is connected with electric lifting rod 5 on it, it is connected with internal motor, one end of electric lifting rod 5 is fixedly connected with connecting rod 6, connecting rod 6 is fixedly connected with protein analysis probe structure 7, protein analyzer component 4 and the protein analysis probe structure 7 on connecting rod 6 are respectively electrically connected with the two ends of connecting line 8 respectively, the upper end of shell component 2 is fixedly connected with protein solution container 9, protein solution container 9 is provided with five, protein solution container 9 is fixedly connected with infusion tube 91, shell component 2 is placed with detection containing assembly 10, detection containing assembly 10 is clamped and embedded and is connected with protein detection cup 11.
[0022] Please refer to Figure 2, the base member 3 comprises a bottom plate extension plate 31, a detection cup holder 101, a telescopic cylinder structure 32, the bottom plate extension plate 31 is arranged on the base member 3, and the bottom plate extension plate 31 is fixedly connected with the base member 3, the detection cup holder 101 is arranged on the bottom plate extension plate 31, and the detection cup holder 101 is clampedly connected with the bottom plate extension plate 31, the telescopic cylinder structure 32 is arranged on the bottom plate extension plate 31, and the telescopic cylinder structure 32 is fixedly connected with the bottom plate extension plate 31, one end of the shaft rod of the telescopic cylinder structure 32 is connected with one side of the detection cup holder 101, and the bottom plate extension plate 31 provides additional support area and enhances the stability of the base member 3. The detection cup holder 101 is convenient to install and disassemble through the clamped connection, and is convenient to replace or clean. The telescopic cylinder structure 32 can push the detection cup holder 101 to move, realize automatic positioning or adjustment of the detection cup, and improve the degree of automation.
[0023] Please refer to Figure 2 , the base member 3 comprises a limiting guide rail 33 and a limiting structure 34, the limiting guide rail 33 is arranged at the upper end of the base member 3 and is fixedly connected with the upper end of the base member 3, and the limiting structure 34 is arranged on the base member 3 and is inlayedly connected with the base member 3, the limiting guide rail 33 provides guidance and limitation for the movement of the detection cup holder 101, and ensures the stability and accuracy of the detection cup holder 101 during movement. The limiting structure 34 is used for limiting the position of the detection cup holder 101.
[0024] Please refer to Figure 3 , the limiting structure 34 of the base member 3 comprises a limiting block 341 and a reset spring structure 342, the limiting block 341 is arranged in the limiting structure 34 and is inlayedly connected with the base member 3, the reset spring structure 342 is arranged on the limiting block 341 and is inlayedly connected with the limiting block 341, the limiting block 341 provides physical limitation and ensures the stability of the detection cup holder 101 at a specific position. The reset spring structure 342 can automatically restore the original position of the detection cup holder 101 after movement.
[0025] Please refer to Figure 4The detection cup rack 101 comprises a detection cup placing groove 102, a guide rail groove 103 and a ball 104. The detection cup placing groove 102 is arranged on the detection cup rack 101 and is integrally formed with the detection cup rack 101. Five detection cup placing grooves 102 are arranged on the detection cup rack 101. The guide rail groove 103 is arranged on the detection cup rack 101 and is integrally formed with the detection cup rack 101. The ball 104 is arranged at the bottom of the detection cup rack 101 and is embeddedly connected with the bottom of the detection cup rack 101. The detection cup placing groove 102 is used for placing the detection cup, so as to facilitate experimental operation. The guide rail groove 103 cooperates with the limiting guide rail 33, so as to ensure the stability and accuracy of the detection cup rack 101 during movement. The ball 104 reduces the frictional resistance of the detection cup rack 101 during movement, and improves the movement efficiency and smoothness.
[0026] Please refer to Figure 4 The detection cup rack 101 is provided with a label plate 105, and the label plate 105 is fixedly connected with the detection cup rack 101. The label plate 105 provides information about the detection of the protein solution by the detection cup rack 101, so as to facilitate the identification of the experimental personnel.
[0027] Please refer to Figure 1 The protein solution container 9 comprises a mounting frame 92 and a flow controller 93. The mounting frame 92 is arranged at the lower end of the protein solution container 9 and is fixedly connected with the lower end of the protein solution container 9 at one end and is fixedly connected with the upper end of the outer shell member 2 at the other end. The flow controller 93 is arranged on the infusion tube 91 and is fixedly connected with the infusion tube 91. The mounting frame 92 is used for fixing the protein solution container 9, so as to ensure the stability and safety thereof. The flow controller 93 can accurately control the flow rate and flow of the protein solution, meets the experimental requirements, and improves the accuracy and reliability of the experiment.
[0028] Working principle: in use, first, the bottom plate expansion plate 31 is fixed on the main body of the base member 3, providing a stable support foundation for the whole device. Then, the detection cup rack 101 is installed on the bottom plate expansion plate 31 by clamping, and it can move smoothly under the push of the telescopic cylinder structure 32. At the same time, check whether the limiting guide rail 33 and the limiting structure 34, the limiting block 341 and the reset spring structure 342 are installed in place, to ensure the stability and accuracy of the detection cup rack 101 during movement. After the shell member 2 is assembled, the protein analyzer member 4 is inlaid and connected in the appropriate position of the shell member 2. Ensure that the electric lifting rod 5 is connected stably with the internal motor, and the connecting rod 6 and the protein analysis probe structure 7 are fixedly connected at the end of the electric lifting rod 5 according to the design requirements. The protein solution container 9 is fixed on the upper end of the shell member 2 through the mounting bracket 92, and the flow controller 93 is installed on the infusion tube 91 to accurately control the delivery of protein solution. Pour the protein solution to be detected into the protein solution container 9, and adjust the flow controller 93 according to the experimental requirements to control the protein solution flowing to the detection cup through the infusion tube 91. Place the protein detection cup 11 in the detection cup placing groove 102 of the detection cup rack 101. At this time, different detection cup racks 101 and their corresponding detection items can be identified by the label plate 105. Start the telescopic cylinder structure 32 to push the detection cup rack 101 to move to the designated detection position along the limiting guide rail 33. When the detection cup rack 101 reaches the predetermined position, the limiting block 341 will limit the movement of the detection cup rack 101, and then the limiting block 341 will be reset by the reset spring structure 342. The electric lifting rod 5 is driven by the internal motor to lower the connecting rod 6 and the protein analysis probe structure 7 into the detection cup. At this time, the protein analysis probe structure 7 is electrically connected with the protein analyzer member 4 through the connecting line 8, and the protein analysis begins. The protein analyzer member 4 analyzes the protein solution in the detection cup, collects and processes the data, and finally obtains the experimental results. The experimental personnel can view the experimental results through the display screen or other output devices of the protein analyzer member 4.
[0029] It is apparent for a person skilled in the art that the present application is not limited to the details of the above exemplary embodiments, but can be implemented in other concrete forms without departing from the spirit or essential characteristics of the present application. Therefore, the embodiments should be considered in all respects as illustrative and not restrictive, the scope of the present application being defined by the appended claims rather than the above description, and it is intended to embrace all changes and modifications that fall within the meaning and scope of equivalents of the claims. Any reference signs in the claims should not be construed as limiting the claims to which they belong.
[0030] The electrical components appearing in the text are all electrically connected with the main controller and 220V mains, and the main controller can control the conventional known devices such as servo motor, contact sensor, processor, alarm module and driving module, the standard parts used in the present application can be purchased from the market, the specific connection mode of each part is connected by using the conventional means such as bolt, rivet and welding in the prior art, and the mechanical, parts and equipment all adopt the conventional type in the prior art, plus the circuit connection adopts the conventional connection mode in the prior art, which will not be described in detail here.
Claims
1. A laboratory protein analyzer comprising a laboratory protein analysis device (1), which laboratory protein analysis device (1) comprises a housing member (2) and a base member (3), characterized in that: Also includes: the shell member (2) inlayed with protein analyzer member (4), the protein analyzer member (4) is inlayed with electric lifting rod (5), which is connected with the internal motor, one end of the electric lifting rod (5) is fixedly connected with connecting rod (6), the connecting rod (6) is fixedly connected with protein analysis probe structure (7), the protein analyzer member (4) and connecting rod (6) on the protein analysis probe structure (7) are respectively electrically connected with both ends of connecting line (8), the upper end of the shell member (2) is fixedly connected with protein solution container (9), the protein solution container (9) is fixedly connected with infusion tube (91), the protein solution container (9) is provided with five, the shell member (2) is placed with detection containing assembly (10), the detection containing assembly (10) is clamped and embedded with protein detection cup (11).
2. The laboratory protein analyzer of claim 1, wherein: The base member (3) comprises a bottom plate expansion plate (31), a detection cup rack (101) and a telescopic cylinder structure (32). The bottom plate expansion plate (31) is arranged on the base member (3) and fixedly connected with the base member (3). The detection cup rack (101) is arranged on the bottom plate expansion plate (31) and clamped and embedded with the bottom plate expansion plate (31). The telescopic cylinder structure (32) is arranged on the bottom plate expansion plate (31) and fixedly connected with the bottom plate expansion plate (31). One end of the shaft of the telescopic cylinder structure (32) is connected with one side of the detection cup rack (101).
3. The laboratory protein analyzer of claim 1, wherein: The base member (3) comprises a limiting guide rail (33) and a limiting structure (34). The limiting guide rail (33) is arranged on the upper end of the base member (3) and fixedly connected with the upper end of the base member (3). The limiting structure (34) is arranged on the base member (3) and inlaidly connected with the base member (3).
4. The laboratory protein analyzer of claim 1, wherein: The limiting structure (34) of the base member (3) comprises a limiting block (341) and a return spring structure (342). The limiting block (341) is arranged in the limiting structure (34) and inlaidly connected with the base member (3). The return spring structure (342) is arranged on the limiting block (341) and inlaidly connected with the limiting block (341).
5. The laboratory protein analyzer of claim 1, wherein: The detection cup rack (101) in the detection containing assembly (10) comprises a detection cup placing groove (102), a guide rail groove (103) and a ball (104), the detection cup placing groove (102) is arranged on the detection cup rack (101) and is integrally formed with the detection cup rack (101), five detection cup placing grooves (102) are arranged, the guide rail groove (103) is arranged on the detection cup rack (101) and is integrally formed with the detection cup rack (101), the bottom of the detection cup rack (101) is provided with the ball (104), and the ball (104) is inlayed and connected with the bottom of the detection cup rack (101).
6. The laboratory protein analyzer of claim 2, wherein: The detection cup rack (101) is provided with a label plate (105), and the label plate (105) is fixedly connected with the detection cup rack (101).
7. The laboratory protein analyzer of claim 1, wherein: The protein solution container (9) comprises a mounting rack (92) and a flow controller (93), the lower end of the protein solution container (9) is provided with the mounting rack (92), one end of the mounting rack (92) is fixedly connected with the lower end of the protein solution container (9), the other end is fixedly connected with the upper end of the shell member (2), and the infusion tube (91) is provided with the flow controller (93), and the flow controller (93) is fixedly connected with the infusion tube (91).