Base structure of helicobacter pylori detector

By rationally arranging the base structure, the problem of interference between components of the Helicobacter pylori detector has been solved, ensuring the accuracy and applicability of the test, making it suitable for mobile healthcare and complex medical environments.

CN224163676UActive Publication Date: 2026-04-24HUNAN SAILIS MEDICAL BIOTECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUNAN SAILIS MEDICAL BIOTECHNOLOGY CO LTD
Filing Date
2025-05-15
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Existing Helicobacter pylori testing instruments suffer from inaccurate test results and interference due to unreasonable component layout.

Method used

A rationally laid-out base structure was designed, including a detection area, a voltage switching area, an energy area, and a clamping area. By rationally arranging the positions of the power supply, high-voltage module, detection structure, and circuit board, interference between components is avoided, and the connection and anti-static effect are enhanced by reinforcing plates and conductive paint layers.

Benefits of technology

It ensures the normal operation of the detector components, avoids interference, improves the accuracy of detection, and is suitable for mobile healthcare and complex medical environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a base structure of a helicobacter pylori detector, and belongs to the technical field of helicobacter pylori detectors. The helicobacter pylori detector solves the problem that interference exists among parts due to unreasonable layout of the parts of an existing helicobacter pylori detector. The utility model discloses a base structure of a helicobacter pylori detector. The base structure comprises a bottom plate, a detection area, a pressure changing area, an energy area and a clamping area, according to the utility model, the clamping area is located between the energy area and the pressure change area, one side of the clamping area is right opposite to the detection area, and the working surface of the detection structure faces one side edge of the bottom plate and is close to the side edge, so that the detection structure can smoothly contact an object to be detected. Therefore, the power supply, the high-voltage module, the detection structure and the circuit board can be reasonably arranged on the bottom plate, mutual interference among parts of the detector is avoided, and the space on the bottom plate can be effectively utilized, so that the parts of the detector can work normally.
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Description

Technical Field

[0001] This utility model belongs to the technical field of Helicobacter pylori detection instruments, and relates to a base structure for a Helicobacter pylori detection instrument. Background Technology

[0002] The Helicobacter pylori assay instrument is a specialized 13C / 14C urea breath test that measures the collected exhaled breath sample. The beta rays generated by the decay of radioactive nuclides on the breath card are detected by the instrument and generate an electrical signal. Based on the set judgment threshold, the instrument gives the diagnostic result of the sample. Therefore, the Helicobacter pylori assay instrument is a precision detection instrument. However, in the existing technology, the layout of the components of the Helicobacter pylori assay instrument often leads to interference during the detection process, resulting in inaccurate test results. Summary of the Invention

[0003] The purpose of this invention is to address the aforementioned problems in existing technologies by proposing a rationally designed base structure for a Helicobacter pylori detector that avoids interference between components.

[0004] The objective of this utility model can be achieved through the following technical solution: a base structure for a Helicobacter pylori detector, comprising:

[0005] The base plate has a detection area, a voltage switching area, an energy area, and a clamping area. The detection area is used to install the detection structure of the detector, the voltage switching area is used to install the high voltage module of the detector, the energy area is used to install the power supply of the detector, and the clamping area is used to install the circuit board of the detector. The clamping area is located between the energy area and the voltage switching area, and one side of the clamping area faces the detection area.

[0006] In the base structure of the Helicobacter pylori detector described above, the energy zone includes a first enclosure and a second enclosure disposed on the base plate. The first enclosure and the second enclosure are arranged opposite each other, and the second enclosure is provided with at least two first bolts for connecting the power supply.

[0007] In the base structure of the Helicobacter pylori detector described above, the cross-sectional shape of the first and second seats is U-shaped, and multiple reinforcing plates are provided between the outer side of the first seat and the bottom plate, and between the second seat and the bottom plate.

[0008] In the base structure of the Helicobacter pylori detector described above, the clamping area includes a first clamping plate and a plurality of second clamping plates. The plane of each second clamping plate is perpendicular to the first clamping plate, and a gap for clamping a circuit board is provided between each second clamping plate and the first clamping plate.

[0009] In the base structure of the Helicobacter pylori detector described above, the clamping area further includes a pair of card holders, which are located at both ends of the first card plate. The card holders and the first card plate are located on the same side of the circuit board, and the first card plate and the second card plate are located on both sides of the circuit board.

[0010] In the base structure of the Helicobacter pylori detector described above, the pressure-changing area includes a mounting plate disposed on the base plate, the mounting plate being perpendicular to the base plate, and the top edge of the mounting plate being provided with at least two mounting slots for mounting high-voltage modules.

[0011] In the base structure of the Helicobacter pylori detector described above, a limiting plate is provided on one side of the base plate located in the pressure exchange area, and one end of the limiting plate abuts against one side of the high-voltage module.

[0012] In the base structure of the Helicobacter pylori detector described above, the detection area includes multiple mounting seats on the base plate, and each mounting seat is provided with a second bolt for connecting the detection structure.

[0013] In the base structure of the Helicobacter pylori detector described above, the base plate is provided with a plurality of parallel first inclined plates and a plurality of parallel second inclined plates, the first inclined plates and the second inclined plates being perpendicular to each other. The base plate is provided with a plurality of parallel horizontal plates and a plurality of parallel vertical plates, the horizontal plates and the vertical plates being perpendicular to each other.

[0014] In the base structure of the aforementioned Helicobacter pylori detection instrument, the surface of the base is provided with a paint layer.

[0015] Compared with the prior art, the present invention has the following beneficial effects:

[0016] In this invention, the clamping area is located between the energy area and the pressure-changing area. One side of the clamping area faces the detection area, and the working surface of the detection structure faces and is close to one side of the base plate, so that the detection structure can smoothly contact the object to be tested. With the above layout, the power supply, high voltage module, detection structure and circuit board can be reasonably arranged on the base plate to avoid mutual interference between the various components of the detector. Secondly, the space on the base plate can be effectively utilized, so that the various components of the detector can work normally. Attached Figure Description

[0017] Figure 1 This is a structural schematic diagram of a preferred embodiment of the present invention.

[0018] Figure 2 This is a structural diagram of the base plate.

[0019] Figure 3 yes Figure 2 A structural diagram from another perspective.

[0020] Figure 4 yes Figure 2 Enlarged view at point A. Detailed Implementation

[0021] The following are specific embodiments of the present invention, which are described in conjunction with the accompanying drawings. However, the present invention is not limited to these embodiments.

[0022] like Figure 1 — Figure 4 As shown, the base structure of the Helicobacter pylori detector of this utility model includes a base plate 100, a detection area 200, a pressure exchange area 600, an energy area 300, and a clamping area 500.

[0023] The base plate 100 is provided with a detection area 200, a voltage switching area 600, an energy area 300, and a clamping area 500. The detection area 200 is used to install the detection structure 210 of the detector. The voltage switching area 600 is used to install the high-voltage module 610 of the detector. The energy area 300 is used to install the power supply 310 of the detector. The clamping area 500 is used to install the circuit board 510 of the detector. The clamping area 500 is located between the energy area 300 and the voltage switching area 600. One side of the clamping area 500 faces the detection area 200, and the working surface of the detection structure 210 faces the base plate 100. The circuit board 510 is positioned close to one side of the base plate 100 so that the detection structure 210 can make smooth contact with the object to be tested. With the above layout, the power supply 310, high voltage module 610, detection structure 210 and circuit board 510 can be reasonably arranged on the base plate 100 to avoid mutual interference between the various components of the detector. In particular, the power supply 310 and high voltage module 610 are isolated by the circuit board 510 to avoid mutual interference between the power supply 310 and high voltage module 610. Secondly, the space on the base plate 100 can also be effectively utilized so that the various components of the detector can work normally.

[0024] The energy zone 300 includes a first enclosure 320 and a second enclosure 330 disposed on the base plate 100. The first enclosure 320 and the second enclosure 330 are arranged opposite each other. The cross-sectional shape of the first enclosure 320 and the second enclosure 330 is U-shaped. The second enclosure 330 is provided with at least two first bolts 331 for connecting the power supply 310. During installation, both ends of the power supply 310 need to be inserted into the first enclosure 320 and the second enclosure 330 respectively. Then, the second enclosure 330 and the side of the power supply 310 near the second enclosure 330 are threaded together by the first bolts 331. In this way, the power supply 310 can be stably installed between the first enclosure and the second enclosure, thereby ensuring that the power supply 310 can stably provide power.

[0025] Multiple reinforcing plates 340 are provided between the outer side of the first enclosure 320 and the base plate 100, and between the second enclosure 330 and the base plate 100. By setting the reinforcing plates 340, the connection strength between the first enclosure 320 and the base plate 100 can be effectively enhanced, and the connection strength between the second enclosure 330 and the base plate 100 can also be effectively enhanced.

[0026] The clamping area 500 includes a first clamping plate 520 and a plurality of second clamping plates 530. The plane of each second clamping plate 530 is perpendicular to the first clamping plate 520. Each second clamping plate 530 and the first clamping plate 520 is provided with a gap 540 for clamping the circuit board 510. During installation, the bottom edge of the circuit board 510 needs to be inserted into the gap 540 between the first clamping plate 520 and the second clamping plate 530 so that the plurality of second clamping plates 530 and the first clamping plate 520 clamp the circuit board 510.

[0027] Furthermore, the clamping area 500 also includes a pair of card holders 550, which are located at both ends of the first card plate 520. The card holders 550 and the first card plate 520 are located on the same side of the circuit board 510. The first card plate 520 and the second card plate 530 are located on both sides of the circuit board 510. Each card holder 550 is provided with a mounting hole 551. When the circuit board 510 is clamped between the first card plate 520 and the second card plate 530, both ends of the circuit board 510 need to contact the two card holders 550 respectively. After that, the mounting hole 551 is connected to the circuit board 510 by bolts so that the circuit board 510 can be stably installed on the base plate 100.

[0028] The pressure-changing area 600 includes a mounting plate 620 disposed on a base plate 100. The mounting plate 620 is perpendicular to the base plate 100. The top edge of the mounting plate 620 is provided with at least two mounting slots 621 for mounting high-voltage modules 610. A limiting plate 630 is provided on one side of the base plate 100 located in the pressure-changing area 600. One end of the limiting plate 630 abuts against one side of the high-voltage module 610. During installation, one side of the high-voltage module 610 needs to be abutted against the limiting plate 630, and the other side of the high-voltage module 610 needs to be in contact with the mounting plate 620. Then, the mounting slots 621 and the high-voltage module 610 are connected by bolts, so that the high-voltage module 610 can be installed on the base plate 100. Furthermore, the side of the high-voltage module 610 in contact with the mounting plate 620 is perpendicular to the side of the high-voltage module 610 in contact with the limiting plate 630, so as to further prevent the high-voltage module 610 from shifting on the base plate 100.

[0029] The detection area 200 includes multiple mounting seats 220 on the base plate 100. Each mounting seat 220 is provided with a second bolt 221 for connecting the detection structure 210. During installation, the detection structure 210 needs to be placed directly above each mounting seat 220. Then, the detection structure 210 is connected to the mounting seat 220 by the second bolt 221, so that the detection structure 210 can be stably installed on the base plate 100.

[0030] The base plate 100 is provided with a plurality of parallel first inclined plates 110 and a plurality of parallel second inclined plates 120, the first inclined plates 110 and the second inclined plates 120 being perpendicular to each other. The base plate 100 is also provided with a plurality of parallel horizontal plates 130 and a plurality of parallel vertical plates 140, the horizontal plates 130 and the vertical plates 140 being perpendicular to each other. The arrangement of the first inclined plates 110, the second inclined plates 120, the horizontal plates 130 and the vertical plates 140 can effectively enhance the stability of the base plate 100.

[0031] The surface of the base is covered with a paint layer (not shown in the figure). The paint layer (not shown in the figure) is made of conductive paint, which has an anti-static effect. In this way, the base plate 100 has a good anti-static effect, further preventing the components of the detector from being interfered with by static electricity.

[0032] Based on the above description, this base structure can be applied to the following scenarios:

[0033] 1. Mobile healthcare and outdoor screening

[0034] Because the base plate 100 is reinforced by multiple reinforcing plates 340, horizontal plates 130, vertical plates 140, first inclined plates 110 and second inclined plates 120, the overall impact resistance is improved and it can adapt to transportation bumps. Thus, the base structure can be used for portable and vibration-resistant testing instruments in remote areas for mobile clinics, emergency rescue or health screenings.

[0035] 2. Clinical testing by medical institutions

[0036] Because the power supply 310 and the high-voltage module 610 are isolated by the voltage switching area 600, electromagnetic interference is effectively reduced, making the detector with this base structure suitable for complex working conditions in medical environments where multiple devices operate in parallel.

[0037] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in this utility model embodiment are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.

[0038] Furthermore, in this utility model, the use of terms such as "first," "second," and "a" is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this utility model, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0039] In this utility model, unless otherwise explicitly specified and limited, the terms "connection," "fixing," etc., should be interpreted broadly. For example, "fixing" can mean a fixed connection, a detachable connection, or an integral part; it can mean a mechanical connection or an electrical connection; it can mean a direct connection or an indirect connection through an intermediate medium; it can mean the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0040] Furthermore, the technical solutions of the various embodiments of this utility model can be combined with each other, but only if they are based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be considered that such combination of technical solutions does not exist and is not within the protection scope claimed by this utility model.

Claims

1. A base structure for a Helicobacter pylori detector, characterized in that, include: The base plate has a detection area, a voltage switching area, an energy area, and a clamping area. The detection area is used to install the detection structure of the detector, the voltage switching area is used to install the high voltage module of the detector, the energy area is used to install the power supply of the detector, and the clamping area is used to install the circuit board of the detector. The clamping area is located between the energy area and the voltage switching area, and one side of the clamping area faces the detection area.

2. The base structure of a Helicobacter pylori detector according to claim 1, characterized in that, The energy zone includes a first enclosure and a second enclosure disposed on the base plate, the first enclosure and the second enclosure being arranged opposite each other, and the second enclosure being provided with at least two first bolts for connecting the power supply.

3. The base structure of a Helicobacter pylori test apparatus according to claim 2, wherein Both the first and second enclosures have a concave cross-sectional shape, and multiple reinforcing plates are provided between the outer side of the first enclosure and the bottom plate, and between the second enclosure and the bottom plate.

4. The base structure of a Helicobacter pylori test apparatus according to claim 1, wherein The clamping area includes a first clamping plate and a plurality of second clamping plates. The plane of each second clamping plate is perpendicular to the first clamping plate, and a gap for clamping the circuit board is provided between each second clamping plate and the first clamping plate.

5. The base structure of a Helicobacter pylori test apparatus according to claim 4, wherein The clamping area also includes a pair of card holders, which are located at both ends of the first card plate. The card holders and the first card plate are located on the same side of the circuit board, and the first card plate and the second card plate are located on opposite sides of the circuit board.

6. The base structure of a Helicobacter pylori test apparatus according to claim 1, wherein The pressure-changing area includes a mounting plate on the base plate, which is perpendicular to the base plate. The top edge of the mounting plate is provided with at least two mounting slots for mounting high-voltage modules.

7. The base structure of a Helicobacter pylori test apparatus according to claim 6, wherein The base plate is provided with a limiting plate on one side of the pressure changing area, and one end of the limiting plate abuts against one side of the high voltage module.

8. The base structure of a Helicobacter pylori detector according to claim 1, characterized in that, The detection area includes multiple mounting bases on the base plate, and each mounting base is provided with a second bolt for connecting the detection structure.

9. The base structure of a Helicobacter pylori test apparatus according to claim 1, wherein The base plate is provided with a plurality of parallel first inclined plates and a plurality of parallel second inclined plates, the first inclined plates and the second inclined plates being perpendicular to each other. The base plate is also provided with a plurality of parallel horizontal plates and a plurality of parallel vertical plates, the horizontal plates and the vertical plates being perpendicular to each other.

10. The base structure of a Helicobacter pylori test apparatus according to claim 1, wherein The surface of the base is coated with paint.