Reagent shelf line integration module

By designing split support mechanism and interface components on the reagent rack, multiple lines are integrated separately for easy installation and maintenance, the existing reagent rack lines are solved, and the problems of inconvenient installation, winding and stacking, and difficult to repair damage are achieved, and the cleanliness and beauty of the lines are improved.

CN222956438UActive Publication Date: 2025-06-10QINGDAO DEFANGSI ARCHITECTURAL DESIGN ENG CO LTD +1
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Patent Information

Application Number
CN202421589524.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-08
Publication Date
2025-06-10
Estimated Expiration
2034-07-08

AI Technical Summary

Technical Problem

The interior of the existing reagent rack is invisible due to external obstruction, which leads to inconvenient installation of the line and is easy to wrap and stack. When damaged, it requires a lot of time to be wasted in line to search for repairs. It is visually chaotic and unsightly, and has a major safety hazard.

Method used

A reagent frame circuit integration module is designed, and the gas pipeline, water pipeline, exhaust pipeline and strong circuit pipeline are integrated into the support mechanism through a split support mechanism. A split structure and interface components are installed for easy installation, maintenance and maintenance.

Benefits of technology

It realizes the clean and beautiful line, facilitates the maintenance and maintenance of different pipelines, avoids the impact of short circuit failures on other pipelines, and improves safety and aesthetics.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN222956438U_ABST
    Figure CN222956438U_ABST
Patent Text Reader

Abstract

The utility model provides a reagent shelf line integration module which comprises a reagent shelf frame, a plurality of supporting mechanisms are arranged in the reagent shelf frame, an exhaust pipeline, an air channel pipeline and a water channel pipeline are arranged in the middle of each supporting mechanism, and strong and weak circuit pipelines are laid on the tops of the supporting mechanisms. An air exhaust connector frame is arranged on the side edge of the air exhaust pipeline, an air channel connector and a water channel connector are arranged on the air channel pipeline and the water channel pipeline respectively, and a strong and weak circuit connector is arranged on the strong and weak circuit pipeline. Compared with the prior art, the utility model has the following beneficial effects: through the design of the split type supporting mechanism, the air channel pipeline, the water channel pipeline, the exhaust pipeline and the strong and weak circuit pipeline can be separately integrated in the supporting mechanism, so that different pipelines can be conveniently overhauled and maintained while neatness and attractiveness are realized, and meanwhile, the structure is simple and convenient. And when faults such as short circuit occur, other pipelines are not influenced.
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Description

Technical Field

[0001] The utility model relates to an integrated circuit module for a reagent rack, belonging to the field of integrated modules for reagent racks. Background Art

[0002] The functions of reagent racks on the laboratory bench are increasing, and more and more circuits need to be integrated. However, the inside of the existing reagent racks cannot be seen due to external occlusion. This causes that when operators install, multiple circuits are wound and stacked together. Due to the random placement of the circuits, when the circuits are damaged and need to be repaired, a large amount of time is wasted in arranging the wires to find them before maintenance can be carried out, which is not convenient for maintenance. The random placement of the circuits without unified planning will give people a visually chaotic feeling and is not beautiful enough. There are great safety hazards in the winding and stacking of multiple circuits, and it is easy to cause a fire in case of accidental conditions such as circuit short circuits. Content of the Utility Model

[0003] Aiming at the deficiencies of the prior art, the purpose of the utility model is to provide an integrated circuit module for a reagent rack.

[0004] In order to achieve the above purpose, the utility model is realized through the following technical solutions:

[0005] An integrated circuit module for a reagent rack includes a reagent rack frame. A plurality of support mechanisms are arranged inside the reagent rack frame. An exhaust duct, a gas pipeline and a water pipeline are arranged in the middle of the support mechanism. A strong and weak circuit pipeline is laid on the top of the support mechanism. An exhaust interface rack is arranged on the side of the exhaust duct. Gas interfaces and water interfaces are respectively arranged on the gas pipeline and the water pipeline. Strong and weak circuit interfaces are arranged on the strong and weak circuit pipeline. Interface components matching with the exhaust interface rack, the gas interfaces, the water interfaces and the strong and weak circuit interfaces are arranged on the outer surface of the reagent rack frame.

[0006] Furthermore, the support mechanism includes a bottom support plate and a top support plate. The top support plate is directly above the bottom support plate. A receiving groove is opened at the center of the bottom of the top support plate. The exhaust duct is placed in the receiving groove. Gas connection holes and water connection holes are also opened between the bottom support plate and the top support plate. The gas pipeline and the water pipeline are clamped in the gas connection holes and the water connection holes. A pipeline clamping plate is arranged on the top of the top support plate. A pipeline clamping space is formed between the pipeline clamping plate and the top of the top support plate. The strong and weak circuit pipeline is arranged in the pipeline clamping space.

[0007] Further, the air path clamping hole includes a first air path clamping groove and a first water path clamping groove. The first air path clamping groove and the first water path clamping groove are respectively formed on opposite sides of the bottom support plate and the top support plate, and the first air path clamping groove and the first water path clamping groove are docked together.

[0008] Further, the water path clamping hole includes a second air path clamping groove and a second water path clamping groove. The second air path clamping groove and the second water path clamping groove are respectively formed on opposite sides of the bottom support plate and the top support plate, and the second air path clamping groove and the second water path clamping groove are docked together.

[0009] Further, the interface assembly includes an exhaust air slot, an air path slot, a water path slot, and a strong and weak electricity slot formed on the outer surface side of the reagent rack frame. The exhaust air slot, the air path slot, the water path slot, and the strong and weak electricity slot correspond to the exhaust air interface rack, the air path interface, the water path interface, and the strong and weak circuit interface respectively.

[0010] Advantages of the present utility model:

[0011] Through the design of the split support mechanism of the present utility model, the air path pipeline, the water path pipeline, the exhaust air pipeline, and the strong and weak circuit pipelines can be separately integrated inside the support mechanism. While being neat and beautiful, it is also convenient to repair and maintain different pipelines. At the same time, when a fault such as a short circuit occurs, it will not affect other pipelines.

[0012] Through the design of the support mechanism of the present utility model, through the setting method of the split structure, it is convenient to install the air path pipeline, the water path pipeline, the exhaust air pipeline, and the strong and weak circuit pipelines, and at the same time integrate the air path pipeline, the water path pipeline, the exhaust air pipeline, and the strong and weak circuit pipelines with the support mechanism.

[0013] Through the design of the air path clamping hole of the present utility model, it is convenient to collect and fix the air path pipeline inside the support mechanism.

[0014] Through the design of the interface assembly of the present utility model, it is convenient for the exhaust air interface rack, the air path interface, the water path interface, and the strong and weak circuit interface to be docked with the outside.

[0015] Through the design of the water path clamping hole of the present utility model, it is convenient to integrate and fix the water path pipeline inside the support mechanism. Description of the drawings

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0017] Figure 1 Schematic three-dimensional structure diagram of a reagent rack circuit integration module of the present invention;

[0018] Figure 2 Schematic front view structure diagram of a reagent rack circuit integration module of the present invention;

[0019] Figure 3 Schematic side view structure diagram of a reagent rack circuit integration module of the present invention;

[0020] Figure 4 Schematic three-dimensional partial structure diagram of a reagent rack circuit integration module of the present invention;

[0021] Figure 5 Schematic side view partial structure diagram of a reagent rack circuit integration module of the present invention.

[0022] In the figure, 1, reagent rack frame; 2, exhaust air interface rack; 3, gas pipeline; 4, water pipeline; 5, strong and weak circuit pipelines; 6, gas interface; 7, water interface; 8, strong and weak circuit interfaces; 9, bottom support plate; 10, top support plate; 11, gas clamping holes; 12, water clamping holes; 13, pipeline clamping plate; 14, pipeline clamping space; 15, first gas slot; 16, first water slot; 17, second gas slot; 18, second water slot; 19, exhaust air slot; 20, gas slot; 21, water slot; 22, strong and weak electricity slot; 23, exhaust air pipeline; 24, accommodation groove. Detailed implementation manners

[0023] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the drawings in the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.

[0024] Please refer to Figures 1 - 5, the present utility model provides a technical solution for a reagent rack circuit integration module, including a reagent rack frame 1. Inside the reagent rack frame 1, there are several support mechanisms. In the middle of the support mechanism, there are an exhaust duct 23, a gas pipeline 3, and a water pipeline 4. On the top of the support mechanism, there is a strong and weak circuit pipeline 5 laid. On the side of the exhaust duct 23, there is an exhaust interface frame 2. On the gas pipeline 3 and the water pipeline 4, there are a gas interface 6 and a water interface 7 respectively. On the strong and weak circuit pipeline 5, there is a strong and weak circuit interface 8. On the outer surface of the reagent rack frame 1, there is an interface component that matches the exhaust interface frame 2, the gas interface 6, the water interface 7, and the strong and weak circuit interface 8. Through the design of the split support mechanism, the gas pipeline 3, the water pipeline 4, the exhaust duct 23, and the strong and weak circuit pipeline 5 can be separately integrated inside the support mechanism. While being neat and beautiful, it is also convenient to repair and maintain different pipelines. At the same time, when a fault such as a short circuit occurs, it will not affect other pipelines.

[0025] Refer to Figures 3 - 5 , the support mechanism includes a bottom support plate 9 and a top support plate 10. The top support plate 10 is directly above the bottom support plate 9. At the center of the bottom of the top support plate 10, there is a receiving groove 24. The exhaust duct 23 is placed in the receiving groove 24. Between the bottom support plate 9 and the top support plate 10, there are also a gas connection hole 11 and a water connection hole 12. The gas pipeline 3 and the water pipeline 4 are clamped in the gas connection hole 11 and the water connection hole 12. On the top of the top support plate 10, there is a pipeline clamping plate 13. Between the pipeline clamping plate 13 and the top of the top support plate 10, there is a pipeline clamping space 14. The strong and weak circuit pipeline 5 is arranged in the pipeline clamping space 14. The gas connection hole 11 includes a first gas clamping groove 15 and a first water clamping groove 16. The first gas clamping groove 15 and the first water clamping groove 16 are respectively opened on the opposite sides of the bottom support plate 9 and the top support plate 10. The first gas clamping groove 15 and the first water clamping groove 16 are butted together. The water connection hole 12 includes a second gas clamping groove 17 and a second water clamping groove 18. The second gas clamping groove 17 and the second water clamping groove 18 are respectively opened on the opposite sides of the bottom support plate 9 and the top support plate 10. The second gas clamping groove 17 and the second water clamping groove 18 are butted together. Through the design of the support mechanism, through the setting method of the split structure, it is convenient to install the gas pipeline 3, the water pipeline 4, the exhaust duct 23, and the strong and weak circuit pipeline 5. At the same time, the gas pipeline 3, the water pipeline 4, the exhaust duct 23, and the strong and weak circuit pipeline 5 are integrated with the support mechanism.

[0026] Refer to Figures 1 - 2The interface component includes an exhaust slot 19, an air path slot 20, a water path slot 21 and a strong and weak electricity slot 22 which are opened on the side of the outer surface of the reagent rack frame 1. The exhaust slot 19, the air path slot 20, the water path slot 21 and the strong and weak electricity slot 22 correspond to the exhaust interface frame 2, the air path interface 6, the water path interface 7 and the strong and weak circuit interface 8; the utility model facilitates the exhaust interface frame 2, the air path interface 6, the water path interface 7 and the strong and weak circuit interface 8 to dock with the outside through the design of the interface component.

[0027] When in use, first install the bottom support plate 9 in the reagent rack frame 1, then place the exhaust duct 23 at the top center of the bottom support plate 9, then place the gas pipeline 3 and the water pipeline 4 in the gas path card slot 15 and the water path card slot 16 at the top of the bottom support plate 9 respectively, and then install the top support plate 10 in the reagent rack frame 1, and ensure that the bottom of the top support plate 10 is docked with the top of the bottom support plate 9, so that the receiving groove 24, the gas path card slot 17 and the water path card slot 18 on the top support plate 10 are clamped in the exhaust duct 2 3. In the upper part of the air pipeline 3 and the water pipeline 4, the accommodating groove 24 limits the exhaust pipeline 23, the air pipeline clamping hole 11 formed by the air pipeline clamping groove 15 and the water pipeline clamping groove 16 limits the air pipeline 3, and the water pipeline clamping hole 12 formed by the air pipeline clamping groove 2 17 and the water pipeline clamping groove 2 18 limits the water pipeline 4, and then the pipeline clamping space 14 is formed by connecting the pipeline clamping plate 13 with the top side of the top support plate 10, and the strong and weak circuit pipelines 5 are installed in the pipeline clamping space 14. At this point, the reagent rack line integrated module is installed.

[0028] Although this specification is described according to implementation modes, not every implementation mode includes only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.

Claims

1. A reagent rack circuit integrated module, characterized in that: The invention comprises a reagent rack frame (1), wherein a plurality of supporting mechanisms are arranged inside the reagent rack frame (1), wherein an exhaust duct (23), an air duct (3) and a water duct (4) are arranged in the middle of the supporting mechanism, and a strong and weak circuit duct (5) is laid on the top of the supporting mechanism, an exhaust interface frame (2) is arranged on the side of the exhaust duct (23), an air duct (6) and a water duct (7) are respectively arranged on the air duct (3) and the water duct (4), and a strong and weak circuit interface (8) is arranged on the strong and weak circuit duct (5), and an interface component which cooperates with the exhaust interface frame (2), the air duct (6), the water duct (7) and the strong and weak circuit interface (8) is opened on the outer surface of the reagent rack frame (1).

2. A reagent rack circuit integrated module according to claim 1, characterized in that: The support mechanism comprises a bottom support plate (9) and a top support plate (10), wherein the top support plate (10) is located directly above the bottom support plate (9), a receiving groove (24) is provided at the bottom center of the top support plate (10), and the exhaust duct (23) is placed in the receiving groove (24), and an air circuit clamping hole (11) and a water circuit clamping hole (12) are provided between the bottom support plate (9) and the top support plate (10), and the air circuit duct (3) and the water circuit duct (4) are clamped in the air circuit clamping hole (11) and the water circuit clamping hole (12), and a duct clamping plate (13) is provided at the top of the top support plate (10), and a duct clamping space (14) is formed between the duct clamping plate (13) and the top of the top support plate (10), and the strong and weak circuit duct (5) is arranged in the duct clamping space (14).

3. A reagent rack circuit integrated module according to claim 2, characterized in that: The air circuit card hole (11) comprises an air circuit card slot (15) and a water circuit card slot (16), wherein the air circuit card slot (15) and the water circuit card slot (16) are respectively arranged on opposite sides of the bottom support plate (9) and the top support plate (10), and the air circuit card slot (15) and the water circuit card slot (16) are butt-jointed together.

4. A reagent rack circuit integrated module according to claim 2, characterized in that: The water circuit clamping hole (12) comprises a second air circuit clamping slot (17) and a second water circuit clamping slot (18), wherein the second air circuit clamping slot (17) and the second water circuit clamping slot (18) are respectively arranged on opposite sides of the bottom support plate (9) and the top support plate (10), and the second air circuit clamping slot (17) and the second water circuit clamping slot (18) are butt-jointed together.

5. A reagent rack circuit integrated module according to claim 4, characterized in that: The interface assembly comprises an exhaust slot (19), an air path slot (20), a water path slot (21) and a strong and weak current slot (22) which are arranged on the side of the outer surface of the reagent rack frame (1); the exhaust slot (19), the air path slot (20), the water path slot (21) and the strong and weak current slot (22) correspond to the exhaust interface frame (2), the air path interface (6), the water path interface (7) and the strong and weak current interface (8).