Shockproof efficient vortex air pump
By introducing buffer guides and shock absorbers into the vortex air pump, the problem of air pump vibration was solved, and the stability and sealing performance were improved, ensuring the safety and normal operation of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-21
- Publication Date
- 2026-04-14
AI Technical Summary
Existing vortex air pumps are prone to vibration during operation, which can lead to equipment instability and safety hazards, potentially damaging components or causing personal injury.
The design incorporates a buffer guide assembly and a shock-absorbing assembly, including a guide support sleeve, a guide buffer spring, an internal shock-absorbing spring, and a shock-absorbing support plate, which, together with a fixed connection sealing assembly, enhance the stability and sealing performance of the air pump.
It effectively reduces vibration during air pump operation, improves stability and safety performance, ensures normal operation and sealing of the air pump, and avoids damage and safety hazards caused by vibration.
Smart Images

Figure CN224120385U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of vortex air pump technology, specifically a shockproof and high-efficiency vortex air pump. Background Technology
[0002] In the context of modern industrial production and technological applications, vortex air pumps are seeing their application fields continuously expand due to their unique working principle and performance advantages. The impeller of a vortex air pump typically consists of dozens of blades, resembling a large gas turbine impeller in appearance. When the impeller rotates at high speed, the air in the middle of the blades moves continuously towards the edge of the impeller under the action of centrifugal force. This air then enters the annular cavity of the pump body and returns to the starting point of the blades, creating a powerful circulating airflow that ultimately leaves the air pump with extremely high energy, providing the necessary air source power for various equipment and processes. In the printing industry, vortex air pumps are used for the adsorption and transfer of paper; in the food processing industry, they are applied to material conveying and packaging.
[0003] However, with the increasing complexity of application scenarios and the continuous improvement of equipment performance requirements, existing vortex air pumps have gradually exposed some problems. In actual operation, vortex air pumps are prone to vibration. This vibration not only affects the stability of the air pump itself, but also causes a series of safety hazards. When the air pump collides accidentally with surrounding organisms, such as operators or other organisms, it will cause serious damage. On the one hand, the air pump's components may be damaged due to the collision, causing the air pump to malfunction and affecting the production progress; on the other hand, the collision may also cause harm to the organisms, greatly reducing the safety of the device. To address this, we propose a vibration-resistant and high-efficiency vortex air pump. Utility Model Content
[0004] (a) Technical problems to be solved
[0005] To address the shortcomings of existing technologies, this invention provides a shockproof and high-efficiency vortex air pump, which solves the aforementioned problems.
[0006] (II) Technical Solution
[0007] To achieve the above-mentioned objectives, this utility model provides the following technical solution:
[0008] A shockproof and high-efficiency vortex air pump includes a drive motor, a right-side housing of the vortex air pump, and a left-side housing of the vortex air pump. The right side of the drive motor is fixedly connected to the right-side housing of the vortex air pump, and the right side of the right-side housing of the vortex air pump is fixedly connected to the left-side housing of the vortex air pump. A fixed support plate is fixedly connected to the bottom surface of the drive motor. A fixed connection sealing assembly is provided between the right-side housing and the left-side housing of the vortex air pump. A buffer guide assembly and a shock-absorbing assembly are provided on the bottom surface of the fixed support plate. An air pump drive assembly is provided inside the right-side housing and the left-side housing of the vortex air pump.
[0009] Preferably, a motor fixing support platform is fixedly connected to the left side of the top surface of the fixed support plate, a drive motor is fixedly connected to the top surface of the motor fixing support platform, an air pump fixing support platform is fixedly connected to the right side of the top surface of the fixed support plate, a right outer shell of a vortex air pump and a left outer shell of a vortex air pump are fixedly connected to the top surface of the air pump fixing support platform, and equidistant guide grooves are provided on the bottom surface of the fixed support plate.
[0010] Preferably, the fixed connection sealing assembly includes a connecting sealing ring, a connecting fixing bolt, and a fixing nut. An internal sealing groove is formed on the inner side of the right and left outer shells of the vortex pump. Equidistant fixed connection platforms are fixedly connected to the outer sides of the right and left outer shells of the vortex pump. A connecting sealing ring is fixedly connected to the inner side of the internal sealing groove. A connecting sealing ring is fixedly connected to the inner side of the right and left outer shells of the vortex pump. A connecting connection platform has a communicating hole on its inner side. A connecting fixing bolt is slidably connected to the inner side of the communicating hole. A fixing nut is threaded onto the right side of the connecting fixing bolt. A fixing nut is rotatably connected to the right side of the fixed connection platform.
[0011] Preferably, the buffer guide assembly includes a guide support sleeve, a bottom support platform, and a guide buffer spring. The top surface of the bottom support platform has guide grooves that are evenly distributed. A guide buffer spring is fixedly connected to the top surface of the inner side of the guide groove at the bottom of the fixed support plate. A guide support sleeve is fixedly connected to the bottom surface of the guide buffer spring at the bottom of the fixed support plate. A guide buffer spring is fixedly connected to the bottom surface of the guide groove inside the bottom support platform. A guide support sleeve is fixedly connected to the top surface of the guide buffer spring inside the bottom support platform. A guide support sleeve is slidably connected to the inner side of the guide groove.
[0012] Preferably, the shock absorption assembly includes internal shock absorption springs and a shock absorption support plate. The bottom surface of the fixed support plate is fixedly connected with equidistantly distributed internal shock absorption springs. The bottom of the internal shock absorption springs is fixedly connected with the shock absorption support plate. The top of the bottom support platform is fixedly connected with equidistantly distributed internal shock absorption springs. The top of the internal shock absorption springs on the top surface of the bottom support platform is fixedly connected with the shock absorption support plate.
[0013] Preferably, the air pump drive assembly includes an air inlet pipe, an exhaust pipe, and an internal active impeller. The output shaft of the drive motor is fixedly connected to the internal active impeller. The internal active impeller is rotatably connected to the inner side of the right housing of the vortex air pump. The bottom of the right housing of the vortex air pump is fixedly connected to the air inlet pipe and the exhaust pipe. The top of the fixed support plate is fixedly connected to the air inlet pipe and the exhaust pipe.
[0014] (III) Beneficial Effects
[0015] Compared with the prior art, the advantages of this utility model are:
[0016] This invention enables the vortex air pump to have a buffering and shock-absorbing function through the cooperation between the buffer guide component and the shock-absorbing component, thereby avoiding vibration during the operation of the vortex air pump and improving the stability and safety performance of the vortex air pump. At the same time, the fixed connection density component enables the vortex air pump to have high-strength sealing performance. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0018] Figure 2 This is a schematic diagram showing the overall structure of this utility model disassembled;
[0019] Figure 3 This is a cross-sectional view of the overall structure of this utility model;
[0020] Figure 4 This is a cross-sectional schematic diagram of a buffer guide component in part of the structure of this utility model.
[0021] In the diagram: 1. Drive motor; 2. Right side housing of the vortex air pump; 3. Connecting sealing ring; 4. Left side housing of the vortex air pump; 5. Connecting fixing bolt; 6. Fixing nut; 7. Fixing support plate; 8. Air pump fixing support platform; 9. Motor fixing support platform; 10. Guide support sleeve; 11. Bottom support platform; 12. Internal shock-absorbing spring; 13. Shock-absorbing support plate; 14. Air inlet pipe; 15. Exhaust pipe; 16. Internal active impeller; 17. Fixing connecting platform; 18. Internal sealing groove; 19. Guide groove; 20. Guide buffer spring. Detailed Implementation
[0022] 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.
[0023] Please see Figure 1-4 This utility model provides a technical solution;
[0024] A shockproof and high-efficiency vortex air pump includes a drive motor 1, a right-side housing 2 of the vortex air pump, and a left-side housing 4 of the vortex air pump. The right side of the drive motor 1 is fixedly connected to the right-side housing 2 of the vortex air pump, and the right side of the right-side housing 2 of the vortex air pump is fixedly connected to the right-side housing 4 of the vortex air pump. A fixed support plate 7 is fixedly connected to the bottom surface of the drive motor 1. A fixed connection sealing assembly is provided between the right-side housing 2 of the vortex air pump and the left-side housing 4 of the vortex air pump. A buffer guide assembly and a shock-absorbing assembly are provided on the bottom surface of the fixed support plate 7. An air pump drive assembly is provided inside the right-side housing 2 of the vortex air pump and the left-side housing 4 of the vortex air pump.
[0025] Furthermore, a motor fixing support platform 9 is fixedly connected to the left side of the top surface of the fixed support plate 7, a drive motor 1 is fixedly connected to the top surface of the motor fixing support platform 9, an air pump fixing support platform 8 is fixedly connected to the right side of the top surface of the fixed support plate 7, a vortex air pump right outer shell 2 and a vortex air pump left outer shell 4 are fixedly connected to the top surface of the air pump fixing support platform 8, and guide grooves 19 are evenly distributed on the bottom surface of the fixed support plate 7.
[0026] Furthermore, the fixed connection sealing assembly includes a connecting sealing ring 3, a connecting fixing bolt 5, and a fixing nut 6. An internal sealing groove 18 is provided on the inner side of the right outer shell 2 and the left outer shell 4 of the vortex pump. Fixed connecting platforms 17, evenly distributed at intervals, are fixedly connected to the outer sides of the right outer shell 2 and the left outer shell 4 of the vortex pump. A connecting sealing ring 3 is fixedly connected to the inner side of the internal sealing groove 18. A connecting sealing ring 3 is fixedly connected to the inner side of the right outer shell 2 and the left outer shell 4 of the vortex pump. A connecting connecting platform 17 has a connecting hole on its inner side. A connecting fixing bolt 5 is slidably connected to the inner side of the connecting hole. A fixing nut 6 is threadedly connected to the right side of the connecting fixing bolt 5. A fixing nut 6 is rotatably connected to the right side of the fixed connecting platform 17. Through the action of the fixed connection sealing assembly, the vortex pump has a high-strength sealing performance.
[0027] Furthermore, the buffer guide assembly includes a guide support sleeve 10, a bottom support platform 11, and a guide buffer spring 20. The top surface of the bottom support platform 11 is provided with equidistantly distributed guide grooves 19. The guide buffer spring 20 is fixedly connected to the top surface of the inner side of the guide groove 19 at the bottom of the fixed support plate 7. The guide support sleeve 10 is fixedly connected to the bottom surface of the guide buffer spring 20 at the bottom of the fixed support plate 7. The bottom surface of the guide groove 19 inside the bottom support platform 11 is fixedly connected to the guide buffer spring 20. The top surface of the guide buffer spring 20 inside the bottom support platform 11 is fixedly connected to the guide support sleeve 10. The guide support sleeve 10 is slidably connected to the inner side of the guide groove 19. Through the action of the buffer guide assembly, the damping offset will not occur during shock absorption.
[0028] Furthermore, the shock absorption assembly includes internal shock absorption springs 12 and shock absorption support plates 13. The bottom surface of the fixed support plate 7 is fixedly connected with equidistantly distributed internal shock absorption springs 12, the bottom of the internal shock absorption springs 12 is fixedly connected with the shock absorption support plates 13, the top of the bottom support platform 11 is fixedly connected with equidistantly distributed internal shock absorption springs 12, and the top of the internal shock absorption springs 12 on the top surface of the bottom support platform 11 is fixedly connected with the shock absorption support plates 13. Through the action of the shock absorption assembly, the vortex air pump has a shock absorption effect when working, avoiding high-frequency vibrations generated during operation.
[0029] Furthermore, the air pump drive assembly includes an air inlet pipe 14, an exhaust pipe 15, and an internal active impeller 16. The output shaft of the drive motor 1 is fixedly connected to the internal active impeller 16. The internal active impeller 16 is rotatably connected to the inside of the right outer casing 2 of the vortex air pump. The bottom of the right outer casing 2 of the vortex air pump is fixedly connected to the air inlet pipe 14 and the exhaust pipe 15. The top of the fixed support plate 7 is fixedly connected to the air inlet pipe 14 and the exhaust pipe 15. Through the action of the air pump drive assembly, the vortex air pump can work normally.
[0030] Structural Description:
[0031] Drive motor 1: It is the power core of the vortex air pump. Its right side is fixedly connected to the right outer shell 2 of the vortex air pump. Its output shaft directly drives the internal active impeller 16 to rotate. It provides the operating power for the air pump, determines the working efficiency and performance of the air pump, and is the key power source of the air pump drive component.
[0032] Right side housing 2 of the vortex air pump: As an important component of the air pump, the right side is connected to the left side housing 4 of the vortex air pump, together forming the external protective structure of the air pump; the inner side provides rotation space for the internal active impeller 16, and the bottom is provided with an air inlet pipe 14 and an exhaust pipe 15. At the same time, it is fixed to the left side housing through a fixed connection sealing component to ensure the air pump's sealing performance.
[0033] Connecting sealing ring 3: Installed in the inner sealing groove 18 inside the right outer shell 2 and the left outer shell 4 of the vortex air pump; its main function is to prevent gas leakage inside the air pump, ensure stable internal air pressure when the air pump is working, maintain the efficient operation of the air pump, and is a key sealing component for fixing the connecting sealing assembly.
[0034] Left outer casing 4 of the vortex air pump: works together with right outer casing 2 of the vortex air pump to form the outer casing of the air pump; it is tightly connected to the right outer casing through a fixed connection sealing component, providing protection for the internal components of the air pump and ensuring the integrity and sealing of the overall structure of the air pump;
[0035] Connection fixing bolt 5: passes through the connecting hole of the outer fixing connection platform 17 of the right outer shell 2 and the left outer shell 4 of the vortex air pump; cooperates with the fixing nut 6 to firmly connect the right outer shell and the left outer shell together, ensuring the overall structure of the air pump is stable, and is the key connecting component in the fixed connection sealing assembly to realize the shell connection;
[0036] Fixed nut 6: Threaded connection is located on the right side of the connecting fixed bolt 5 and rotatably connected to the right side of the fixed connection platform 17; by tightening the fixed nut 6, the connecting fixed bolt 5 tightly fixes the right outer shell 2 and the left outer shell 4 of the vortex air pump, enhancing the stability of the air pump shell connection, and is a fastening component of the fixed connection sealing assembly.
[0037] Fixed support plate 7: provides support for drive motor 1, right housing 2 of vortex air pump and left housing 4 of vortex air pump; the motor fixed support platform 9 on the left side of the top surface fixes drive motor 1, the air pump fixed support platform 8 on the right side fixes air pump housing, and the bottom surface has a guide groove 19 for installing buffer guide components and shock absorption components to enhance the overall stability of air pump.
[0038] Air pump fixed support platform 8: Located on the right side of the top surface of the fixed support plate 7, it is mainly used to fix the right outer shell 2 of the vortex air pump and the left outer shell 4 of the vortex air pump; it stably fixes the air pump shell on the fixed support plate 7, ensuring that the shell position is stable when the air pump is working, and providing a support foundation for the normal operation of the air pump.
[0039] Motor mounting support 9: Fixed on the top left side of the mounting support plate 7, used to securely install the drive motor 1; ensure that the drive motor 1 remains stable during operation, reduce the shaking of the motor during operation, enable the drive motor 1 to output power stably, and thus ensure the stable operation of the air pump.
[0040] Guide support sleeve 10: In the buffer guide assembly, it is located in the guide groove 19 inside the bottom of the fixed support plate 7 and the bottom support platform 11; it is connected to the guide buffer spring 20, slides in the guide groove 19, plays a guiding role, prevents deviation during shock absorption, and ensures the normal operation of the buffer guide assembly;
[0041] Bottom support platform 11: The top surface is provided with equally spaced guide grooves 19 for installing guide support sleeves 10 and guide buffer springs 20; it provides an installation base for the buffer guide assembly, and together with the fixed support plate 7, it realizes the buffer and guide function of the air pump vibration, and enhances the stability of the air pump.
[0042] Internal shock-absorbing springs 12: distributed on the bottom surface of the fixed support plate 7 and the top of the bottom support platform 11, and connected to the shock-absorbing support plate 13; when the air pump vibrates during operation, it absorbs vibration energy through elastic deformation, buffers the high-frequency vibration of the air pump, and reduces the impact of vibration on the air pump's own structure and the surrounding environment.
[0043] Vibration damping support plate 13: connected to the internal vibration damping spring 12, located between the fixed support plate 7 and the bottom support platform 11; plays the role of transmitting and dispersing vibration energy in the vibration damping assembly, and works with the internal vibration damping spring 12 to enhance the vibration damping effect of the air pump and improve the operational stability of the air pump.
[0044] Inlet pipe 14: Fixed to the bottom of the right outer casing 2 of the vortex air pump and connected to the inside of the air pump; responsible for drawing in external air into the air pump and providing an air source for the air pump to generate circulating airflow; it is the channel for air to enter the air pump drive assembly.
[0045] Exhaust pipe 15: It is also fixed to the bottom of the right outer casing 2 of the vortex air pump and communicates with the inside of the air pump; it is used to discharge the high-pressure airflow generated by the air pump and output the air source power generated by the air pump to external equipment or processes. It is the channel for gas discharge in the air pump drive assembly.
[0046] Internal active impeller 16: It is fixedly connected to the output shaft of the drive motor 1 and rotates inside the outer casing 2 on the right side of the vortex air pump; when rotating at high speed, it uses centrifugal force to form a circulating airflow. It is the core component for generating air power for the air pump and determines the working performance of the air pump.
[0047] Fixed connecting platform 17: distributed on the outside of the right outer shell 2 and the left outer shell 4 of the vortex air pump, with a connecting hole on the inside; providing an installation position for the connecting fixing bolt 5, and through cooperation with the connecting fixing bolt 5 and the fixing nut 6, the right outer shell and the left outer shell are fixedly connected, ensuring the overall structure of the air pump is stable;
[0048] Internal sealing groove 18: It is opened on the inside of the right outer casing 2 and the left outer casing 4 of the vortex air pump, and is used to install the connecting sealing ring 3; it provides installation space for the connecting sealing ring 3, so that the connecting sealing ring 3 can effectively seal the inside of the air pump, prevent gas leakage, and ensure the normal operation of the air pump.
[0049] Guide groove 19: It is evenly distributed on the bottom surface of the fixed support plate 7 and the top surface of the bottom support platform 11; it provides a sliding track for the guide support sleeve 10, so that the guide support sleeve 10 can slide stably during the shock absorption process and play a guiding role. It is a key structure for the buffer guide assembly to perform its function.
[0050] Guide buffer spring 20: Installed in the guide groove 19 inside the bottom of the fixed support plate 7 and the bottom support platform 11, and connected to the guide support sleeve 10; when the air pump vibrates, it absorbs vibration energy through elastic deformation and plays a buffering role. Together with the guide support sleeve 10, it realizes the buffering and guiding function of the air pump vibration.
[0051] Working principle: After the drive motor 1 is powered on, its output shaft begins to rotate, driving the internal active impeller 16, which is fixedly connected to it, to rotate at high speed. The internal active impeller 16 is similar to a gas turbine impeller, consisting of dozens of blades. When the impeller rotates at high speed, the air in the middle of the blades moves continuously towards the edge of the impeller under the action of centrifugal force. This air enters the annular cavity of the pump body and returns to the starting point of the blades, thus forming a powerful circulating airflow. The air inlet pipe 14 at the bottom of the right outer casing 2 of the vortex pump is responsible for drawing in air, while the generated high-pressure airflow is discharged through the exhaust pipe 15, providing power to external equipment or... The process provides the necessary air source power. During the operation of the air pump, if vibration occurs, the fixed support plate 7 will shake. At this time, the guide buffer spring 20 in the guide groove 19 at the bottom of the fixed support plate 7 will be compressed or stretched first. The guide buffer spring 20 has a certain elasticity and can absorb some vibration energy. Simultaneously, the guide support sleeve 10 slides within the guide groove 19, playing a guiding role and ensuring that the fixed support plate 7 does not shift during vibration damping, allowing the air pump to maintain a stable posture during vibration. The guide buffer spring 20 on the bottom surface of the guide groove 19 inside the bottom support platform 11 and... The guide support sleeve 10 also plays the same role, further enhancing the buffering and guiding effect. The internal damping springs 12 are connected between the bottom surface of the fixed support plate 7 and the damping support plate 13, and between the top of the bottom support platform 11 and the damping support plate 13. When the air pump vibrates, the internal damping springs 12 undergo elastic deformation, converting the mechanical energy generated by the vibration into the elastic potential energy of the spring. In this way, the internal damping springs 12 can effectively buffer the high-frequency vibrations generated during air pump operation, reducing the impact of vibration on the air pump's own structure and the surrounding environment, improving the stability and service life of the air pump. The connecting sealing ring 3 is installed in the internal sealing groove 18 inside the right outer shell 2 and the left outer shell 4 of the vortex air pump to seal and prevent gas leakage inside the air pump. The connecting fixing bolt 5 passes through the connecting hole inside the fixing connecting platform 17, and the right threaded fixing nut 6 is connected and rotated on the right side of the fixing connecting platform 17. During the tightening of the fixing nut 6, the connecting fixing bolt 5 will tightly fix the right outer shell 2 and the left outer shell 4 of the vortex air pump together, further enhancing the air pump's sealing performance and ensuring that the air pump has a high-strength sealing performance inside, thus guaranteeing the normal operation performance of the air pump.
[0052] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A shockproof and high-efficiency vortex air pump, comprising a drive motor (1), a right-side housing (2) of the vortex air pump, and a left-side housing (4) of the vortex air pump, wherein the right side of the drive motor (1) is fixedly connected to the right side of the right-side housing (2), and the right side of the right-side housing (2) of the vortex air pump is fixedly connected to the right side of the left-side housing (4), characterized in that: The bottom surface of the drive motor (1) is fixedly connected to a fixed support plate (7). A fixed connection sealing assembly is provided between the right outer shell (2) of the vortex air pump and the left outer shell (4) of the vortex air pump. A buffer guide assembly is provided on the bottom surface of the fixed support plate (7). A shock absorption assembly is provided on the bottom surface of the fixed support plate (7). An air pump drive assembly is provided inside the right outer shell (2) of the vortex air pump and the left outer shell (4) of the vortex air pump.
2. The shockproof and high-efficiency vortex air pump according to claim 1, characterized in that: The top left side of the fixed support plate (7) is fixedly connected to a motor fixed support platform (9), the top surface of the motor fixed support platform (9) is fixedly connected to a drive motor (1), the top right side of the fixed support plate (7) is fixedly connected to an air pump fixed support platform (8), the top surface of the air pump fixed support platform (8) is fixedly connected to a vortex air pump right outer shell (2) and a vortex air pump left outer shell (4), and the bottom surface of the fixed support plate (7) is provided with guide grooves (19) distributed at equal intervals.
3. The shockproof and high-efficiency vortex air pump according to claim 1, characterized in that: The fixed connection sealing assembly includes a connecting sealing ring (3), a connecting fixing bolt (5), and a fixing nut (6). An internal sealing groove (18) is provided on the inner side of the right outer shell (2) and the left outer shell (4) of the vortex pump. Fixed connecting platforms (17) with equidistant distributions are fixedly connected to the outer side of the right outer shell (2) and the left outer shell (4) of the vortex pump. A connecting sealing ring (3) is fixedly connected to the inner side of the internal sealing groove (18). A connecting sealing ring (3) is fixedly connected to the inner side of the right outer shell (2) and the left outer shell (4) of the vortex pump. A connecting connecting platform (17) has a connecting hole on its inner side. A connecting fixing bolt (5) is slidably connected to the inner side of the connecting hole. A fixing nut (6) is threadedly connected to the right side of the connecting fixing bolt (5). A fixing nut (6) is rotatably connected to the right side of the fixed connecting platform (17).
4. The shockproof and high-efficiency vortex air pump according to claim 2, characterized in that: The buffer guide assembly includes a guide support sleeve (10), a bottom support platform (11), and a guide buffer spring (20). The top surface of the bottom support platform (11) is provided with guide grooves (19) that are evenly distributed. The guide buffer spring (20) is fixedly connected to the top surface of the guide groove (19) at the bottom of the fixed support plate (7). The guide support sleeve (10) is fixedly connected to the bottom surface of the guide buffer spring (20) at the bottom of the fixed support plate (7). The guide buffer spring (20) is fixedly connected to the bottom surface of the guide groove (19) inside the bottom support platform (11). The guide support sleeve (10) is fixedly connected to the top surface of the guide buffer spring (20) inside the bottom support platform (11). The guide support sleeve (10) is slidably connected to the inside of the guide groove (19).
5. The shockproof and high-efficiency vortex air pump according to claim 4, characterized in that: The shock absorption assembly includes an internal shock absorption spring (12) and a shock absorption support plate (13). The bottom surface of the fixed support plate (7) is fixedly connected with an internally distributed shock absorption spring (12) at equal intervals. The bottom of the internally distributed shock absorption spring (12) is fixedly connected with a shock absorption support plate (13). The top of the bottom support platform (11) is fixedly connected with an internally distributed shock absorption spring (12) at equal intervals. The top of the internally distributed shock absorption spring (12) on the top surface of the bottom support platform (11) is fixedly connected with a shock absorption support plate (13).
6. The shockproof and high-efficiency vortex air pump according to claim 1, characterized in that: The air pump drive assembly includes an air inlet pipe (14), an exhaust pipe (15), and an internal active impeller (16). The output shaft of the drive motor (1) is fixedly connected to the internal active impeller (16). The internal active impeller (16) is rotatably connected to the inside of the right side housing (2) of the vortex air pump. The bottom of the right side housing (2) of the vortex air pump is fixedly connected to the air inlet pipe (14) and the exhaust pipe (15). The top of the fixed support plate (7) is fixedly connected to the air inlet pipe (14) and the exhaust pipe (15).