Oxygenation pump capable of avoiding resonance with fish tank

By introducing a shock-absorbing and noise-reducing mechanism and a detachable connection design into the air pump, the problems of resonance between the air pump and the aquarium and poor versatility are solved, achieving better shock absorption and noise control, and making it suitable for a variety of aquariums.

CN223694651UActive Publication Date: 2025-12-23ZHUHAI MAOTIAN TECH
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Patent Information

Application Number
CN202520115347.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-17
Publication Date
2025-12-23
Estimated Expiration
2035-01-17

AI Technical Summary

Technical Problem

Existing air pumps are prone to resonance with the aquarium during use, resulting in poor noise and vibration reduction, and they cannot be used in different aquariums, thus lacking versatility.

Method used

An air pump was designed, comprising a booster pump body, a retaining column, a base, shock absorbers, and a shock absorption and noise reduction mechanism. By utilizing the combination of an arc-shaped retaining groove, a telescopic spring, and an arc-shaped retaining component, the air pump achieves shock absorption and noise reduction effects, and its detachable connection makes it suitable for different aquariums.

Benefits of technology

It effectively avoids resonance between the air pump and the aquarium, improves vibration damping, reduces noise, and enhances the applicability of the air pump to different aquariums.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of oxygenation pumps, in particular to an oxygenation pump capable of avoiding resonance with a fish tank, which comprises a booster pump body, a frame body is mounted on the surface of the booster pump body, a clamping column is mounted on the surface of one side of the booster pump body, and the clamping column is matched with the inner wall of a base in a clamping manner. Damping and noise-proof mechanisms are arranged on the inner wall of the base and the surface of the damping piece. According to the oxygen increasing pump, resonance between the oxygen increasing pump and the fish tank can be avoided when the oxygen increasing pump is used, the noise phenomenon in the using process of the oxygen increasing pump is avoided, meanwhile, the damping effect of the oxygen increasing pump is better when the oxygen increasing pump is used, and meanwhile the oxygen increasing pump is installed on different fish tanks to be used when the oxygen increasing pump is used. Therefore, the oxygenation pump can be suitable for different fish tanks, the universality is higher, and the use requirements during use can be better met.
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Description

Technical Field

[0001] This utility model relates to the field of air pump technology, specifically an air pump that can avoid resonance with the fish tank. Background Technology

[0002] Ornamental aquariums are widely used in decoration and renovation, suitable for hotels, companies, and homes, and have high ornamental value. However, many people are not good at caring for fish. To solve this problem, many aquarium accessories have emerged. These devices are used to circulate water, oxygenate it, and beautify the aquarium environment. The air pump is the most important piece of equipment in aquariums, used to deliver oxygen and generate bubbles. Currently, there is a need for an air pump that can avoid resonance with the aquarium.

[0003] Existing air pumps are mainly used to deliver oxygen, but their aesthetic appeal is poor, and they no longer adequately meet people's needs. In addition, existing air pumps have some other drawbacks. They generate vibration during use, and their shock absorption and noise reduction effects are insufficient. Furthermore, they cannot be used on different aquariums. This makes it easy for the air pump to resonate with the aquarium, leading to noise during operation. At the same time, the reduced shock absorption effect makes it inconvenient to install on different aquariums, reducing its versatility and failing to meet the needs of users. Utility Model Content

[0004] The purpose of this invention is to provide an air pump that can avoid resonance with the fish tank, thereby solving the problems mentioned in the background art, such as insufficient shock absorption and noise reduction effect of the air pump during use, and inability to be used on different fish tanks.

[0005] To achieve the above objectives, this utility model provides the following technical solution: an oxygenation pump that can avoid resonance with the fish tank, including a booster pump body, a locking post installed on one side of the booster pump body, and a shock-absorbing and noise-reducing mechanism provided on one side of the booster pump body, the internal of which includes an arc-shaped locking groove, a telescopic spring, an arc-shaped locking piece, and a groove.

[0006] Preferably, a base is provided on the surface of the booster pump body, and the base is detachably connected to the booster pump body. The locking pin is engaged with the inner wall of the base, and the locking pin is detachably connected to the base. The base contains a shock-absorbing component for shock absorption of the booster pump body and the base. The shock-absorbing component is made of silicone. All surfaces of the base are threaded with fastening screws, one end of which penetrates the base and is threadedly fastened to the surface of the booster pump body.

[0007] Preferably, the surface of the booster pump body is equipped with positioning blocks, and the inner wall of the base is provided with positioning slots, which are engaged with the surface of the positioning blocks.

[0008] Preferably, a fixing pipe is installed on the surface of the booster pump body, and an installation pipe is installed on the surface of the fixing pipe, the installation pipe being connected to the interior of the fixing pipe.

[0009] Preferably, the inner wall of the base is provided with a groove, and an arc-shaped clamp for positioning the shock absorber and preventing displacement is provided inside the groove. The arc-shaped clamp slides and engages with the inner wall of the groove.

[0010] Preferably, the surfaces on both sides of the shock absorber are provided with arc-shaped grooves, which are engaged with the surfaces of the arc-shaped clips. Each surface of the arc-shaped clips is equipped with a telescopic spring, one end of which is fixed to the inner wall of the groove.

[0011] Compared with the prior art, the beneficial effects of this utility model are: the air pump that can avoid resonance with the fish tank can avoid resonance with the fish tank when the air pump is used, thus avoiding noise during the use of the air pump, and making the shock absorption effect of the air pump better. At the same time, the air pump can be installed on different fish tanks, making the air pump suitable for different fish tanks, with stronger versatility and better meeting the needs of use.

[0012] By incorporating a shock-absorbing and noise-reducing mechanism, the user can easily cause the shock absorber to wobble inside the base, making installation inconvenient and time-consuming. However, the elasticity of the telescopic spring inside the groove drives the arc-shaped locking piece, automatically engaging with the arc-shaped groove on the surface of the shock absorber. This locking action positions the shock absorber, preventing displacement and wobbling within the base. When the booster pump is operating, the shock absorber's internal mechanism further enhances vibration reduction, eliminating noise and achieving the pump's shock absorption and noise reduction function. This prevents resonance between the pump and the aquarium, avoiding noise during operation. Furthermore, the improved shock absorption allows for installation on different aquariums, making the pump more versatile and better meeting various user needs. Attached Figure Description

[0013] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0014] Figure 2 This is a three-dimensional structural diagram of the present invention;

[0015] Figure 3 This is a schematic diagram of the front cross-sectional structure of this utility model;

[0016] Figure 4 This is a three-dimensional structural diagram of the present invention;

[0017] Figure 5 This is a bottom-view cross-sectional structural diagram of the present invention;

[0018] Figure 6 This is a top view cross-sectional structural diagram of the present invention;

[0019] Figure 7 This is a side view sectional structural diagram of the present invention.

[0020] In the diagram: 1. Booster pump body; 101. Base; 102. Shock absorber; 103. Fastening screw; 104. Positioning block; 105. Positioning slot; 106. Mounting tube; 107. Fixing tube; 108. Locking post; 2. Shock absorption and noise reduction mechanism; 21. Arc-shaped slot; 22. Telescopic spring; 23. Arc-shaped clamp; 24. Groove. Detailed Implementation

[0021] 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, not all embodiments. In addition, the terms "first", "second", "third", "upper", "lower", "left", "right", etc. are used for descriptive purposes only and should not be construed as indicating or implying relative importance. At the same time, in the description of the present utility model, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present utility model.

[0022] Example 1

[0023] Reference Figure 3 and Figure 5This is the first embodiment of the present invention. The present invention provides an air pump structure that avoids resonance with the fish tank, solving the problem of the air pump causing resonance with the fish tank during use. It includes a booster pump body 1, a base 101 on the surface of the booster pump body 1, and a detachable connection between the base 101 and the booster pump body 1. A locking post 108 is installed on one side of the booster pump body 1, and the locking post 108 engages with the inner wall of the base 101. A shock-absorbing component 1 is placed inside the base 101 to prevent vibration between the booster pump body 1 and the base 101. 02. The shock absorber 102 is made of silicone. The surface of the base 101 is threaded with fastening screws 103. One end of the fastening screw 103 passes through the base 101 and is threadedly fastened to the surface of the booster pump body 1. The surface of the booster pump body 1 is equipped with positioning blocks 104. The inner wall of the base 101 is provided with positioning slots 105. The positioning slots 105 and the surfaces of the positioning blocks 104 engage with each other. The surface of the booster pump body 1 is equipped with a fixing tube 107. The surface of the fixing tube 107 is equipped with an installation tube 106. The installation tube 106 is connected to the interior of the fixing tube 107.

[0024] Furthermore, such as Figure 3 and Figure 5 As shown, the inner wall of the base 101 and the surface of the shock absorber 102 are both provided with a shock absorption and noise reduction mechanism 2. The shock absorption and noise reduction mechanism 2 includes an arc-shaped groove 21, a telescopic spring 22, an arc-shaped clip 23 and a groove 24. The inner wall of the base 101 is provided with a groove 24. The inside of the groove 24 is provided with an arc-shaped clip 23 for positioning the shock absorber 102 and preventing displacement. The arc-shaped clip 23 and the inner wall of the groove 24 slide against each other. The surfaces on both sides of the shock absorber 102 are provided with arc-shaped grooves 21. The surfaces of the arc-shaped grooves 21 and the arc-shaped clip 23 engage with each other. The surface of the arc-shaped clip 23 is provided with a telescopic spring 22. One end of the telescopic spring 22 is fixed to the inner wall of the groove 24.

[0025] During implementation, the base 101 is first placed at the bottom of the booster pump body 1, causing the booster pump body 1 to automatically engage the positioning block 104 into the corresponding positioning slot 105. The engagement of the positioning block 104 and the positioning slot 105 installs the base 101 at the bottom of the booster pump body 1, facilitating user disassembly and assembly of the booster pump body 1 and the base 101. Subsequently, the user places the shock absorber 102 inside the base 101. The shock absorber 102 is prone to wobbling inside the base 101, making it inconvenient and time-consuming to install the base 101 and shock absorber 102 in the designated position. At this point, the elastic force of the telescopic spring 22 inside the groove 24 drives the arc-shaped locking piece 23 to move, making... The arc-shaped clip 23 automatically engages with the arc-shaped groove 21 on the surface of the shock absorber 102. The engagement of the arc-shaped groove 21 and the arc-shaped clip 23 positions the shock absorber 102, preventing displacement and shaking within the base 101. When the booster pump body 1 is working, the shock absorber 102 inside the base 101 further enhances the shock absorption effect, preventing noise and achieving the function of shock absorption and noise reduction for the air pump. This prevents resonance between the air pump and the aquarium, thus avoiding noise during operation and improving the shock absorption effect.

[0026] Example 2

[0027] Reference Figure 4 and Figure 7 This is the second embodiment of the present invention. Unlike the previous embodiment, this embodiment provides an air pump structure that can avoid resonance with the fish tank, thus solving the problem of installation for different fish tanks.

[0028] Specifically, a base 101 is provided on the surface of the booster pump body 1. The base 101 is detachably connected to the booster pump body 1. A locking post 108 is installed on one side of the booster pump body 1. The locking post 108 is engaged with the inner wall of the base 101. A shock absorber 102 is placed inside the base 101 to prevent shock from entering the booster pump body 1 and the base 101. The shock absorber 102 is made of silicone. Fastening screws 103 are threaded onto the surface of the base 101. One end of the fastening screw 103 passes through the base 101 and is threaded onto the surface of the booster pump body 1. Positioning blocks 104 are installed on the surface of the booster pump body 1. Positioning slots 105 are opened on the inner wall of the base 101. The positioning slots 105 are engaged with the surfaces of the positioning blocks 104. A fixing tube 107 is installed on the surface of the booster pump body 1. An installation tube 106 is installed on the surface of the fixing tube 107. The installation tube 106 is connected to the interior of the fixing tube 107.

[0029] During implementation, the base 101 is first placed on one side of the booster pump body 1, causing the booster pump body 1 to automatically engage the positioning block 104 into the corresponding positioning slot 105. The engagement of the positioning block 104 and the positioning slot 105 installs the base 101 onto the surface of the booster pump body 1, facilitating user disassembly and assembly of the booster pump body 1 and the base 101. Subsequently, the user places the shock absorber 102 inside the base 101. The shock absorber 102 is prone to wobbling inside the base 101, making it inconvenient and time-consuming to install the base 101 and shock absorber 102 in the designated position. At this point, the elastic force of the telescopic spring 22 inside the groove 24... The movement of the arc-shaped locking member 23 causes it to automatically engage with the arc-shaped groove 21 on the surface of the shock absorber 102. The engagement between the arc-shaped groove 21 and the arc-shaped locking member 23 positions the shock absorber 102, preventing displacement and wobbling within the base 101. When the booster pump body 1 is operating, the shock absorber 102 inside the base 101 further enhances the shock absorption, reducing noise and enabling universal installation of the air pump. This allows the air pump to be installed on different aquariums, making it more versatile and better meeting user needs.

[0030] Working principle: In use, first place the base 101 on one side of the booster pump body 1, so that the booster pump body 1 drives the positioning block 104 to automatically engage with the corresponding positioning slot 105. Under the engaging action of the positioning block 104 and the positioning slot 105, the base 101 is installed on the surface of the booster pump body 1, making it convenient for the user to disassemble and install the booster pump body 1 and the base 101. Subsequently, the user places the shock absorber 102 inside the base 101. The shock absorber 102 is prone to shaking inside the base 101, making it inconvenient and time-consuming to install the base 101 and the shock absorber 102 in the designated position. At this time, under the elastic force of the telescopic spring 22 inside the groove 24, the arc-shaped clamp 23 moves, so that the arc-shaped clamp 23 automatically engages with the inside of the arc-shaped slot 21 on the surface of the shock absorber 102. The locking action of the arc-shaped clip 23 can position the shock absorber 102, preventing displacement and shaking of the shock absorber 102 inside the base 101. When the booster pump body 1 is working, the shock absorber 102 inside the base 101 provides better shock absorption, eliminating noise and achieving the function of shock absorption and noise reduction for the air pump. This prevents resonance between the air pump and the aquarium, avoiding noise during operation. Furthermore, it improves the shock absorption effect and enables universal installation, allowing the air pump to be installed on different aquariums, making it more versatile and better meeting user needs.

[0031] 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.

Claims

1. An oxygenation pump capable of avoiding resonance with a fish tank, comprising a booster pump body (1), characterized in that: The surface of one side of the booster pump body (1) is provided with a clamping column (108), and one side of the booster pump body (1) is provided with a shock-absorbing and noise-proof mechanism (2), which contains an arc-shaped clamping groove (21), an elastic spring (22), an arc-shaped clamping piece (23) and a groove (24) inside.

2. The oxygenation pump according to claim 1, wherein: The surface of the booster pump body (1) is provided with a base (101), which is detachably connected with the booster pump body (1), the clamping column (108) and the inner wall of the base (101) are mutually clamped and matched, the clamping column (108) and the base (101) are detachably connected, the inside of the base (101) is placed with a shock-absorbing piece (102) for shock-absorbing the booster pump body (1) and the base (101), the material of the shock-absorbing piece (102) is silica gel material, the surface of the base (101) is threadedly connected with a fastening screw (103), one end of the fastening screw (103) penetrates through the base (101) and is threadedly fastened with the surface of the booster pump body (1).

3. The oxygenation pump according to claim 2, wherein: The surface of the booster pump body (1) is provided with a positioning clamping block (104), the inner wall of the base (101) is provided with a positioning clamping groove (105), and the positioning clamping groove (105) and the surface of the positioning clamping block (104) are mutually clamped and matched.

4. The oxygenation pump according to claim 1, wherein: The surface of the booster pump body (1) is provided with a fixed pipe (107), the surface of the fixed pipe (107) is provided with an installation pipe (106), and the installation pipe (106) and the inside of the fixed pipe (107) are communicated.

5. The oxygenation pump according to claim 2, wherein: The inner wall of the base (101) is provided with a groove (24), the inside of the groove (24) is provided with an arc-shaped clamping piece (23) for positioning and preventing displacement of the shock-absorbing piece (102), and the arc-shaped clamping piece (23) and the inner wall of the groove (24) are mutually slidingly matched.

6. The oxygenation pump of claim 2, wherein: The surface of the shock-absorbing piece (102) is provided with an arc-shaped clamping groove (21), the arc-shaped clamping groove (21) and the surface of the arc-shaped clamping piece (23) are mutually clamped and matched, the surface of the arc-shaped clamping piece (23) is provided with an elastic spring (22), and one end of the elastic spring (22) is fixed with the inner wall of the groove (24).