Detachable low-speed peristaltic gas detection pump for in-situ photovoltaic driving of pollution source

By introducing an angle adjustment component and a connection component into the low-speed peristaltic air pump, and by using solar panels for power supply and optimizing the tilt angle, the problems of power consumption and disassembly difficulty of the low-speed peristaltic air pump are solved, achieving energy saving and convenient disassembly.

CN224218331UActive Publication Date: 2026-05-08CHINA UNIV OF MINING & TECH +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHINA UNIV OF MINING & TECH
Filing Date
2025-05-09
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Existing low-speed peristaltic air pumps consume significant amounts of electricity during long-term continuous operation, and the installation and removal of solar panels are difficult, especially in outdoor environments where bolts are prone to corrosion, making disassembly difficult.

Method used

A detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power source was designed. It adopts an angle adjustment component and a connecting component. The peristaltic gas detection pump is powered by a solar panel and a power distribution box. The angle adjustment component optimizes the tilt angle of the solar panel, and the connecting component enables quick fixation and convenient disassembly, avoiding the corrosion problem caused by traditional bolt fixation.

Benefits of technology

It improves energy efficiency, enhances the applicability of solar panels in different scenarios, and enables quick and secure fixing and convenient disassembly, solving the problems of power consumption and disassembly difficulties.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a pollution source in-situ photovoltaic-driven detachable low-speed peristaltic gas detection pump, which comprises a support, a peristaltic gas detection pump, a solar panel and a mounting plate, an angle adjusting component is arranged between the solar panel and the mounting plate, a base is arranged on the support, and the mounting plate is connected with the base through a connecting component. The peristaltic gas detection pump is fixed to the top of the support, a distribution box is arranged on the outer wall of the support, and the peristaltic gas detection pump and the solar panel are electrically connected with the distribution box. According to the utility model, the inclination angle of the solar panel can be adjusted through the angle adjusting assembly, so that the applicability of the solar panel in different scenes is improved; besides, the connecting assembly can enable the mounting plate and the base station to be quickly and firmly fixed, so that the solar panel is fixed on the support, and the solar panel can be quickly and conveniently disassembled through the connecting assembly, and the situation that the solar panel is rusted and difficult to disassemble due to the adoption of a traditional bolt fixing mode is avoided.
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Description

Technical Field

[0001] This utility model relates to the field of environmental monitoring technology, specifically a detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power for pollution sources. Background Technology

[0002] Environmental pollution has multifaceted impacts on human life, necessitating effective measures to reduce pollution, protect the environment, safeguard human health, improve quality of life, promote economic development, and maintain ecological balance.

[0003] Low-speed peristaltic gas detection pumps can perform quantitative and qualitative analysis on specific pollution sources, accurately collect gas samples, and ensure that the collected samples are representative, thereby providing accurate basic data for subsequent detection. Peristaltic pumps are highly adaptable to fluids and can stably deliver flue gas containing solid particles or other complex pollution source gases without jamming or blockage, making them suitable for various pollution source detection scenarios.

[0004] Existing methods for collecting and qualitatively analyzing environmental data using low-speed peristaltic gas detectors have some shortcomings. For example, these pumps consume electrical energy, which can be significant for applications requiring continuous operation over extended periods, resulting in insufficient energy efficiency. Using solar panels to power these pumps also presents challenges. Solar panels are typically bolted to a high frame, requiring installation and disassembly during transport. Prolonged exposure to outdoor environments can cause bolt corrosion, making disassembly difficult. Utility Model Content

[0005] The purpose of this invention is to provide a detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power generation for pollution sources, so as to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] A detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power generation for pollution sources includes a bracket, a peristaltic gas detection pump, a solar panel, and a mounting plate. An angle adjustment component is provided between the solar panel and the mounting plate. When the angle adjustment component is in operation, the tilt angle of the solar panel will be changed.

[0008] The bracket is provided with a base, and the mounting plate is connected to the base via a connecting component, which enables the mounting plate to be quickly fixed or disassembled from the base.

[0009] The peristaltic gas detection pump is fixed to the top of the bracket, and an electrical distribution box is provided on the outer wall of the bracket. Both the peristaltic gas detection pump and the solar panel are electrically connected to the electrical distribution box.

[0010] As a further embodiment of this utility model:

[0011] The connecting assembly includes a sleeve and a rotating rod with one end slidably engaged with the sleeve. The sleeve is horizontally disposed on the base platform, and the rotating rod is horizontally rotatably disposed on the mounting plate.

[0012] The outer wall of the rotating rod is provided with a locking block along its length direction. There are multiple locking blocks, and the multiple locking blocks are evenly distributed along the circumference. The inner side wall of one end of the sleeve is evenly provided with multiple slots along the circumference, and the multiple locking blocks are respectively located in the multiple slots.

[0013] One end of the sleeve is evenly provided with multiple through slots along the circumference for multiple locking blocks to slide into the sleeve, and the multiple through slots and multiple locking slots are staggered. The end of the rotating rod away from the sleeve is provided with a handle.

[0014] As a further improvement of this utility model:

[0015] A positioning sleeve is horizontally arranged on the base, and a positioning rod is horizontally arranged on the mounting plate. One end of the positioning rod is slidably inserted into the positioning sleeve.

[0016] As a further improvement of this utility model:

[0017] The sleeve is slidably provided with a slide block inside, and one end of the slide block abuts against one end of the rotating rod;

[0018] The other end of the sleeve is horizontally provided with a threaded sleeve, and a lead screw is provided in the threaded sleeve with horizontal thread engagement.

[0019] As a further improvement of this utility model:

[0020] The lead screw is provided with a baffle and a knob at both ends, and the baffle is located inside the sleeve.

[0021] The sleeve is equipped with a spring inside, and the two ends of the spring abut against the other end of the slide and the baffle, respectively.

[0022] As a further improvement of this utility model:

[0023] The angle adjustment assembly includes a fixing frame and a support base. The fixing frame is fixedly connected to the solar panel, and the support base is disposed on the mounting plate.

[0024] The fixing frame is provided with a rotating shaft, which is rotatably connected to the support base.

[0025] As a further improvement of this utility model:

[0026] A worm gear is provided on the rotating shaft, and a worm is rotatably provided on the mounting plate;

[0027] The worm gear and the worm mesh with each other, and a handwheel is provided at one end of the worm.

[0028] Compared with the prior art, the beneficial effects of this utility model are:

[0029] The solar panels and distribution box work together to provide power for the peristaltic air pump, thereby improving energy efficiency. The angle adjustment component allows for adjustment of the tilt angle of the solar panels, improving their applicability in different scenarios. In addition, the connecting component enables quick and secure fixing of the mounting plate to the base, thus securing the solar panels to the bracket. The connecting component also allows for quick and easy disassembly, avoiding the problems of corrosion and difficulty in disassembly caused by traditional bolt fixing methods. Attached Figure Description

[0030] Figure 1 A schematic diagram of the overall structure of an embodiment of a detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power for pollution sources.

[0031] Figure 2 A cross-sectional view of the base in one embodiment of a detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power for pollution sources.

[0032] Figure 3 for Figure 2 Enlarged view of point A in the middle.

[0033] Figure 4 A cross-sectional view of the mounting plate, base, sleeve, and threaded sleeve after removing the bracket, peristaltic gas detection pump, solar panel, distribution box, and fixing frame in one embodiment of a photovoltaic-driven detachable low-speed peristaltic gas detection pump for pollution sources.

[0034] Figure 5 A schematic diagram showing the disassembled positioning sleeve and positioning rod, sleeve base and rotating rod in one embodiment of a detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power for pollution sources.

[0035] Figure 6 A schematic diagram showing the partial disassembly of connecting components in one embodiment of a detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power for pollution sources.

[0036] Figure 7 This is a schematic diagram of the overall structure of one embodiment of a detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power for pollution sources, from another perspective.

[0037] Figure 8 A schematic diagram of the angle adjustment component in one embodiment of a detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power for pollution sources.

[0038] Figure 9 for Figure 8 Enlarged view of section B in the middle.

[0039] In the diagram: 1. Bracket; 2. Peristaltic air pump; 3. Solar panel; 4. Mounting plate; 5. Base; 6. Distribution box; 7. Sleeve; 701. Slot; 702. Through slot; 8. Rotating rod; 801. Locking block; 9. Handle; 10. Positioning sleeve; 11. Positioning rod; 12. Slide; 13. Threaded sleeve; 14. Lead screw; 15. Baffle; 16. Knob; 17. Spring; 18. Fixing frame; 19. Support base; 20. Rotating shaft; 21. Worm gear; 22. Worm; 23. Handwheel. Detailed Implementation

[0040] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0041] Furthermore, the elements in this invention are referred to as being "fixed to" or "set on" another element, which may be directly on the other element or may also include an intervening element. When an element is considered to be "connected" to another element, it may be directly connected to the other element or may also include an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.

[0042] Please see Figures 1-9 In this embodiment of the present invention, a detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power source for pollution sources includes a bracket 1, a peristaltic gas detection pump 2, a solar panel 3 and a mounting plate 4. An angle adjustment component is provided between the solar panel 3 and the mounting plate 4. When the angle adjustment component is running, the tilt angle of the solar panel 3 will be changed.

[0043] The bracket 1 is provided with a base 5, and the mounting plate 4 is connected to the base 5 through a connecting component. The connecting component enables the mounting plate 4 and the base 5 to be quickly fixed or separated.

[0044] The peristaltic gas detection pump 2 is fixed to the top of the bracket 1. The outer wall of the bracket 1 is provided with a power distribution box 6. The peristaltic gas detection pump 2 and the solar panel 3 are both electrically connected to the power distribution box 6.

[0045] In this solution, the solar panel 3 and the distribution box 6 work together to provide power for the peristaltic air pump 2, thereby improving energy saving. The tilt angle of the solar panel 3 can be adjusted by the angle adjustment component to improve the applicability of the solar panel 3 in different scenarios. In addition, the connecting component enables the mounting plate 4 to be quickly and firmly fixed to the base 5, so that the solar panel 3 is fixed on the bracket 1. The connecting component also enables quick and convenient disassembly, avoiding the situation of difficult disassembly due to rust caused by the traditional bolt fixing method.

[0046] As a further embodiment of this utility model, the connecting assembly includes a sleeve 7 and a rotating rod 8 with one end slidably engaged with the sleeve 7. The sleeve 7 is horizontally disposed on the base 5, and the rotating rod 8 is horizontally rotatably disposed on the mounting plate 4.

[0047] The outer wall of the rotating rod 8 is provided with a locking block 801 along its length direction. There are multiple locking blocks 801, and the multiple locking blocks 801 are evenly distributed along the circumference. The inner side wall of one end of the sleeve 7 is evenly provided with multiple slots 701 along the circumference. The multiple locking blocks 801 are respectively located in the multiple slots 701.

[0048] One end of the sleeve 7 is evenly provided with multiple through slots 702 along the circumference for multiple locking blocks 801 to slide into the interior of the sleeve 7, and the multiple through slots 702 and the multiple locking slots 701 are staggered. The end of the rotating rod 8 away from the sleeve 7 is provided with a handle 9.

[0049] In this embodiment, since the multiple locking blocks 801 fixed on the rotating rod 8 are respectively located in multiple locking slots 701, the rotating rod 8 cannot be moved out of the sleeve 7, and the rotating rod 8 cannot rotate; and since the rotating rod 8 is rotatably mounted on the mounting plate 4, and the sleeve 7 is horizontally mounted on the base 5, the mounting plate 4 and the base 5 will remain locked.

[0050] During disassembly, since one end of the sleeve 7 is evenly provided with multiple through slots 702 along the circumference for multiple locking blocks 801 to slide into the interior of the sleeve 7, and the multiple through slots 702 and multiple locking slots 701 are misaligned, when the mounting plate 4 is moved closer to the base 5 by external force, the rotating rod 8 will drive the multiple locking blocks 801 to move out of the multiple locking slots 701 respectively. At this time, the rotating rod 8 will be able to rotate freely. Then, the handle 9 will drive the rotating rod 8 to rotate, so that the multiple locking blocks 801 are aligned with the multiple through slots 702. In this state, the rotating rod 8 is moved out of the sleeve 7, and the multiple locking blocks 801 slide out of the multiple through slots 702 respectively, thereby completing the disassembly.

[0051] As a further embodiment of this utility model, a positioning sleeve 10 is horizontally arranged on the base 5, and a positioning rod 11 is horizontally arranged on the mounting plate 4, with one end of the positioning rod 11 slidably inserted into the positioning sleeve 10.

[0052] In this embodiment, during the installation of the rotating rod 8 and the sleeve 7, one end of the positioning rod 11 will also slide into the positioning sleeve 10 to make the connection between the mounting plate 4 and the base 5 more secure.

[0053] As a further embodiment of this utility model, a slide block 12 is slidably disposed inside the sleeve 7, and one end of the slide block 12 abuts against one end of the rotating rod 8;

[0054] The other end of the sleeve 7 is provided with a threaded sleeve 13, and a lead screw 14 is provided in the threaded sleeve 13 with a horizontal thread engagement.

[0055] The two ends of the lead screw 14 are respectively provided with a baffle 15 and a knob 16, and the baffle 15 is located inside the sleeve 7;

[0056] The sleeve 7 is provided with a spring 17 inside, and the two ends of the spring 17 abut against the other end of the slide 12 and the baffle 15, respectively.

[0057] In this embodiment, due to the presence of the spring 17 and its compressed state, and the fact that one end of the slide 12 abuts against one end of the rotating rod 8, the rotating rod 8 will always be pushed by the slide 12. Without external force, the rotating rod 8 will always have the tendency to slide out of the sleeve 7. Since the multiple locking blocks 801 are located in the multiple locking slots 701 respectively, one end of the rotating rod 8 will be firmly locked in the sleeve 7. Therefore, during disassembly, the rotating rod 8 drives the multiple locking blocks 801 to move out of the multiple locking slots 701 respectively, and the rotating rod 8 will drive the slide 12 to further compress the spring 17.

[0058] Since the lead screw 14 is threadedly engaged with the threaded sleeve 13 at the other end of the sleeve 7, and the two ends of the lead screw 14 are respectively provided with baffle 15 and knob 16, and the two ends of the spring 17 abut against the other end of the slide block 12 and the baffle 15, when the lead screw 14 is rotated by the knob 16, the baffle 15 will move inside the sleeve 7, thereby changing the compression of the spring 17.

[0059] During installation and disassembly, rotating knob 16 reduces the compression of spring 17, thereby reducing the external force required for installation and disassembly. After installation, rotating knob 16 increases the compression of spring 17, allowing one end of rotating rod 8 to be stably locked within sleeve 7.

[0060] As a further embodiment of this utility model, the angle adjustment component includes a fixing frame 18 and a support base 19. The fixing frame 18 is fixedly connected to the solar panel 3, and the support base 19 is disposed on the mounting plate 4.

[0061] The fixed frame 18 is provided with a rotating shaft 20, which is rotatably connected to the support base 19;

[0062] A worm gear 21 is provided on the rotating shaft 20, and a worm 22 is rotatably provided on the mounting plate 4;

[0063] The worm gear 21 and the worm 22 mesh with each other, and a handwheel 23 is provided at one end of the worm 22.

[0064] In this embodiment, since the worm gear 21 and the worm 22 mesh with each other, and a handwheel 23 is provided at one end of the worm 22, when the handwheel 23 is rotated by an external force, the worm 22 will drive the worm gear 21 to rotate.

[0065] Since the worm gear 21 is rotatably mounted on the support base 19 via the rotating shaft 20, and the solar panel 3 is fixed to the rotating shaft 20 via the fixing bracket 18, the solar panel 3 will rotate along with the worm gear 21 when it rotates.

[0066] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0067] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power generation for pollution sources, comprising a bracket (1), a peristaltic gas detection pump (2), a solar panel (3), and a mounting plate (4), characterized in that, An angle adjustment component is provided between the solar panel (3) and the mounting plate (4). When the angle adjustment component is running, the tilt angle of the solar panel (3) will be changed. The bracket (1) is provided with a base (5), and the mounting plate (4) is connected to the base (5) through a connecting component. The connecting component enables the mounting plate (4) and the base (5) to be quickly fixed or separated. The peristaltic gas detection pump (2) is fixed to the top of the bracket (1), and the outer wall of the bracket (1) is provided with a power distribution box (6). The peristaltic gas detection pump (2) and the solar panel (3) are both electrically connected to the power distribution box (6).

2. The detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power generation for pollution sources according to claim 1, characterized in that, The connecting assembly includes a sleeve (7) and a rotating rod (8) with one end slidably engaged with the sleeve (7). The sleeve (7) is horizontally disposed on the base (5), and the rotating rod (8) is horizontally rotatably disposed on the mounting plate (4). The outer wall of the rotating rod (8) is provided with a locking block (801) along its length direction. There are multiple locking blocks (801), and the multiple locking blocks (801) are evenly distributed along the circumference. The inner side wall of one end of the sleeve (7) is evenly provided with multiple slots (701) along the circumference. The multiple locking blocks (801) are respectively located in the multiple slots (701). One end of the sleeve (7) is evenly provided with multiple through slots (702) along the circumference for multiple locking blocks (801) to slide into the interior of the sleeve (7), and the multiple through slots (702) and the multiple locking slots (701) are staggered. The end of the rotating rod (8) away from the sleeve (7) is provided with a handle (9).

3. The detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power generation for pollution sources according to claim 1, characterized in that, A positioning sleeve (10) is horizontally arranged on the base (5), and a positioning rod (11) is horizontally arranged on the mounting plate (4). One end of the positioning rod (11) is slidably inserted into the positioning sleeve (10).

4. The detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power generation for pollution sources according to claim 2, characterized in that, The sleeve (7) is slidably provided with a slide block (12), one end of the slide block (12) abutting against one end of the rotating rod (8); The other end of the sleeve (7) is provided with a threaded sleeve (13) horizontally, and a screw (14) is provided in the threaded sleeve (13) with a horizontal thread engagement.

5. A detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power generation for pollution sources according to claim 4, characterized in that, The lead screw (14) is provided with a baffle (15) and a knob (16) at both ends, and the baffle (15) is located inside the sleeve (7); The sleeve (7) is provided with a spring (17) inside, and the two ends of the spring (17) abut against the other end of the slide (12) and the baffle (15) respectively.

6. A detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power generation for pollution sources according to claim 1, characterized in that, The angle adjustment assembly includes a fixing frame (18) and a support base (19). The fixing frame (18) is fixedly connected to the solar panel (3), and the support base (19) is disposed on the mounting plate (4). The fixed frame (18) is provided with a rotating shaft (20), which is rotatably connected to the support base (19).

7. A detachable low-speed peristaltic gas detection pump driven by on-site photovoltaic power generation for pollution sources according to claim 6, characterized in that, A worm gear (21) is provided on the rotating shaft (20), and a worm (22) is rotatably provided on the mounting plate (4). The worm gear (21) and the worm (22) mesh with each other, and a handwheel (23) is provided at one end of the worm (22).