High-adaptability air pump for motorcycle suspension system

By designing a highly adaptable air pump in the motorcycle suspension system, power conversion and coolant circulation are achieved using transmission and cooling devices, the shortcomings of traditional air pumps in heat dissipation and cooling are solved, and the adaptability and reliability of the system are improved.

CN120007553AActive Publication Date: 2025-05-16WU XI BO XI TE ZHI NENG KE JI YOU XIAN GONG SI +1
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Patent Information

Application Number
CN202510035599.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-09
Publication Date
2025-05-16
Estimated Expiration
2045-01-09

AI Technical Summary

Technical Problem

The air pumps used in traditional motorcycle suspension systems have shortcomings in terms of heat dissipation and cooling, and cannot perform corresponding heat dissipation requirements according to the operating frequency of the air pump, resulting in excessive temperature and affecting performance and life.

Method used

A highly adaptable air pump for motorcycle suspension system is designed, using a unique transmission and cooling device. The transmission converts power into linear motion through the transmission motor and the transmission shaft. The cooling device uses negative pressure airbags and transmission connecting rods to achieve automatic circulating cooling of the coolant.

Benefits of technology

It improves the working efficiency and stability of the air pump, and can perform appropriate cooling cooling according to the operating frequency of the air pump, extends the service life of the air pump and improves its adaptability under different working conditions.

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Abstract

The invention belongs to the field of motorcycle suspension systems, and discloses a high-adaptability air pump for a motorcycle suspension system, which comprises a bracket, a low-pressure box fixedly arranged on one side of the bracket, a high-pressure box fixedly arranged at one end of the low-pressure box, an air outlet valve fixedly arranged on one side of the high-pressure box, and a control valve fixedly arranged on one side of the air outlet valve. A transmission device is adaptively arranged on the inner wall of the low-voltage box, a cooling device is fixedly arranged below the low-voltage box, and a heat dissipation device is fixedly arranged on one side of the cooling device; the air pump solves the problem that in the prior art, a traditional air pump adopts natural heat dissipation cooling and water cooling cooling, and adaptive heat dissipation cooling cannot be conducted according to the operation frequency of the air pump, and is suitable for a motorcycle suspension system.
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Description

Technical Field

[0001] The invention relates to the technical field of motorcycle suspension systems, in particular to a high-adaptability air pump for a motorcycle suspension system. Background Art

[0002] In the development of modern motorcycles, the performance of the suspension system plays a vital role in improving riding comfort, handling stability and safety. As a key component of the motorcycle suspension system, the performance of the air pump directly affects the working effect of the suspension system.

[0003] There are many problems that need to be solved in the traditional air pumps for motorcycle suspension systems. First, in terms of heat dissipation, the existing air pump heat dissipation methods are relatively simple, mostly relying on simple heat sinks for natural heat dissipation, or using fans for forced heat dissipation. However, when the motorcycle is running for a long time or working under high load, this heat dissipation method often cannot meet the corresponding heat dissipation requirements according to the working frequency of the air pump, resulting in excessively high temperatures inside the air pump. Excessive temperatures will not only reduce the performance of the air pump components, accelerate their aging and wear, but may also cause failures, seriously affecting the service life and reliability of the air pump.

[0004] Furthermore, the existing cooling system often cannot achieve good coordination with the working state of the air pump. The circulation of the coolant is not efficient enough, and the cooling intensity cannot be adjusted in time according to the different workloads and temperature changes of the air pump. This makes it impossible for the air pump to be effectively cooled under some working conditions, further affecting its performance and life.

[0005] In summary, the existing air pumps for motorcycle suspension systems have deficiencies in heat dissipation and cooling, which limit their adaptability and reliability under different working conditions. Therefore, a highly adaptable air pump for motorcycle suspension systems is proposed, which can overcome the above-mentioned problems and meet the increasingly high performance requirements of modern motorcycle suspension systems. Summary of the invention

[0006] The present invention is intended to provide a highly adaptable air pump for a motorcycle suspension system, so as to solve the problem that conventional air pumps in the prior art use natural heat dissipation and water cooling, and are unable to perform heat dissipation and cooling according to the operating frequency of the air pump.

[0007] In order to achieve the above object, the present invention provides the following technical solutions: The technical solution provided by the present invention is: a highly adaptable air pump for a motorcycle suspension system, comprising a bracket, a low-pressure box is fixedly arranged on one side of the bracket, a high-pressure box is fixedly arranged on one end of the low-pressure box, an air outlet valve is fixedly arranged on one side of the high-pressure box, a control valve is fixedly arranged on one side of the air outlet valve, a transmission device is adaptedly arranged on the inner wall of the low-pressure box, a cooling device is fixedly arranged below the low-pressure box, and a heat dissipation device is fixedly arranged on one side of the cooling device; The transmission device comprises a transmission motor fixedly installed above the low-voltage box, a transmission shaft is adapted to be provided at the output end of the transmission motor, a transmission rod is eccentrically provided on the surface of the transmission shaft, a transmission ring is movably provided on the surface of the transmission rod, a transmission plate is fixedly provided on the side of the transmission ring, a conical plate is fixedly provided at one end of the transmission plate, a transmission connecting plate is movably provided at one end of the transmission rod, and a transmission connecting rod is fixedly provided at one end of the transmission connecting plate; The cooling device includes a cooling box fixedly installed below the low-pressure box, a cooling pipe fixedly arranged in the cooling box, a water outlet fixedly arranged on one side of the cooling pipe, a negative pressure air bag fixedly arranged on one end of the cooling pipe, a cooling rod fixedly arranged on one end of the negative pressure air bag, the cooling rod is fixedly connected to one end of a transmission connecting rod, a circulating water pipe fixedly arranged on one side of the inner wall of the low-pressure box, a water inlet fixedly arranged on the other end of the circulating water pipe, and the water inlet is communicated with the cooling box.

[0008] Furthermore, a movable groove is fixedly opened at the bottom of the low-pressure box, a telescopic plate is movably provided in the movable groove, the telescopic plate is fixedly connected to the surface of the transmission connecting rod, a sealing plate is fixedly provided at the bottom of the low-pressure box, and an air inlet pipe is provided at one side of the low-pressure box.

[0009] Furthermore, the heat dissipation device includes a heat dissipation shaft fixedly installed on the inner wall of the cooling box, a water wheel is fixedly provided on the surface of the heat dissipation shaft, a first heat dissipation gear is fixedly provided at one end of the heat dissipation shaft, a transmission belt is adapted to be provided on the surface of the first heat dissipation gear, a second heat dissipation gear is adapted to be provided on the other end of the transmission belt, and heat dissipation fans are fixedly provided on the surfaces of the first heat dissipation gear and the second heat dissipation gear.

[0010] Furthermore, dustproof nets are fixedly provided on both sides of the heat dissipation fan.

[0011] Furthermore, heat dissipation fins are symmetrically provided on one side of the cooling box, and a plurality of guide grooves are provided on the surface of the heat dissipation fins.

[0012] The beneficial effects of this technical solution are: (1) The present invention can efficiently transmit and convert the power of the transmission motor through a unique transmission device design to achieve the required linear motion, provide power support for the cooling device, etc., and improve the working efficiency of the air pump.

[0013] (2) The cooling device utilizes the linkage between the negative pressure airbag and the transmission connecting rod to realize automatic circulation cooling of the coolant, which can effectively reduce the temperature of the air pump and enable it to perform water circulation cooling according to the operating frequency of the air pump, thereby ensuring its stability and reliability during long-term operation.

[0014] (3) The heat dissipation device cleverly uses the flow of coolant to drive the cooling fan to rotate, achieving passive heat dissipation without the need for an additional power source. This reduces energy consumption while being able to cool down the air accordingly according to the operating frequency of the air pump. The design of the cooling fins and dustproof net further improves the heat dissipation effect and the protective performance of the device, thereby extending the service life of the air pump. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is one of the structural schematic diagrams of a highly adaptable air pump for a motorcycle suspension system proposed by the present invention; Figure 2 This is a second structural schematic diagram of a highly adaptable air pump for a motorcycle suspension system proposed by the present invention; Figure 3 This is a third structural schematic diagram of a highly adaptable air pump for a motorcycle suspension system proposed by the present invention; Figure 4 This is a schematic cross-sectional plan view of a highly adaptable air pump for a motorcycle suspension system proposed by the present invention; Figure 5 A schematic cross-sectional structure diagram of a highly adaptable air pump for a motorcycle suspension system proposed by the present invention; Figure 6 A schematic diagram of the partial structure of a cooling device for a highly adaptable air pump for a motorcycle suspension system proposed by the present invention; Figure 7 This is a schematic cross-sectional structure diagram of a cooling device for a highly adaptable air pump for a motorcycle suspension system proposed by the present invention; Figure 8 This is a partial structural schematic diagram of a heat dissipation device of a highly adaptable air pump for a motorcycle suspension system proposed by the present invention.

[0016] The names of the corresponding marks in the accompanying drawings are: 1, bracket; 2, low-pressure box; 3, high-pressure box; 4, outlet valve; 5, control valve; 6, transmission device; 7, cooling device; 8, heat dissipation device; 201, moving groove; 202, telescopic plate; 203, sealing plate; 204, air inlet pipe; 601, transmission motor; 602, transmission shaft; 603, transmission rod; 604, transmission ring; 605, transmission plate; 606, cone plate; 607, transmission plate; 608, transmission plate; 609, transmission plate; 610, transmission plate; 611, transmission plate; 612, transmission plate; 613, transmission plate; 614, transmission plate; 615, transmission plate; 616, transmission plate; 617, transmission plate; 618, transmission plate; 619, transmission plate; 620, transmission plate; 621, transmission plate; 622, transmission plate; 623, transmission plate; 624, transmission plate; 625, transmission plate; 626, transmission plate; 627, transmission plate; 628, transmission plate; 629, transmission plate; 630, transmission plate; 631, transmission plate; 632, transmission plate; 633, transmission plate; 634, transmission plate; 635, transmission plate; 636, transmission plate; 637, transmission plate; 638, transmission plate; 639, transmission plate; 640, transmission plate; 641, transmission plate; 642, transmission plate; 643, transmission plate; 644, transmission plate 07, transmission connecting plate; 608, transmission connecting rod; 701, cooling box; 702, cooling pipe; 703, water outlet; 704, negative pressure airbag; 705, cooling rod; 706, circulating water pipe; 707, water inlet; 708, cooling fins; 801, cooling shaft; 802, water wheel; 803, first cooling gear; 804, transmission belt; 805, second cooling gear; 806, cooling fan; 807, dust net. DETAILED DESCRIPTION

[0017] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0018] The specific implementation process is as follows: Embodiment 1: See also Figure 1-8The present invention provides a technical solution: a highly adaptable air pump for a motorcycle suspension system, comprising a bracket 1, a low-pressure box 2 is fixedly installed on one side of the bracket 1, a high-pressure box 3 is fixedly installed on one end of the low-pressure box 2, an air outlet valve 4 is fixedly installed on one side of the high-pressure box 3, a control valve 5 is fixedly installed on one side of the air outlet valve 4, a transmission device 6 is adapted to be installed on the inner wall of the low-pressure box 2, a cooling device 7 is fixedly installed below the low-pressure box 2, the transmission device 6 comprises a transmission motor 601 fixedly installed above the low-pressure box 2, a transmission shaft 602 is adapted to be installed on the output end of the transmission motor 601, a transmission rod 603 is eccentrically installed on the surface of the transmission shaft 602, a transmission ring 604 is movably installed on the surface of the transmission rod 603, a transmission plate 605 is fixedly installed on the side of the transmission ring 604, and one end of the transmission plate 605 is fixed A conical plate 606 is fixedly installed, a transmission connecting plate 607 is movably installed at one end of the transmission rod 603, and a transmission connecting rod 608 is fixedly installed at one end of the transmission connecting plate 607. After the transmission motor 601 is started, it drives the transmission shaft 602 to rotate, thereby making the eccentrically arranged transmission rod 603 do circular motion. The transmission ring 604 moves on the transmission rod 603 to convert the circular motion of the transmission rod 603 into the linear motion of the transmission plate 605. The conical plate 606 helps to transmit power more smoothly, and the transmission connecting plate 607 and the transmission connecting rod 608 further transmit the power to achieve a specific function. The cooling device 7 includes a cooling box 701 fixedly installed below the low-pressure box 2, and a cooling pipe 702 is fixedly installed in the cooling box 701. The cooling pipe 702 is A water outlet 703 is fixedly installed on the side, a negative pressure airbag 704 is fixedly installed on one end of the cooling tube 702, a cooling rod 705 is fixedly installed on one end of the negative pressure airbag 704, the cooling rod 705 is fixedly connected to one end of the transmission connecting rod 608, a circulating water pipe 706 is fixedly installed on one end of the water outlet 703, the circulating water pipe 706 is fixedly installed on one side of the inner wall of the low-pressure box 2, and a water inlet 707 is fixedly installed on the other end of the circulating water pipe 706, and the water inlet 707 is communicated with the cooling box 701. When the transmission connecting rod 608 moves, the cooling rod 705 is driven to move back and forth, and the surface of the cooling rod 705 causes the negative pressure airbag 704 to generate negative pressure, so that the coolant in the cooling box 701 is drawn out from the water outlet 703 through the cooling tube 702, and then from the water inlet through the circulating water pipe 706. 707 flows back to the cooling box 701 to realize the circulating cooling of the coolant. A movable groove 201 is fixedly opened at the bottom of the low-pressure box 2. A telescopic plate 202 is movably arranged in the movable groove 201. A sealing plate 203 is fixedly installed at the bottom of the low-pressure box 2. The inner wall of the sealing plate 203 is movably adapted to the cooling rod 705. A sealing strip is fixedly arranged at the contact position between the sealing plate 203 and the cooling rod 705 to ensure the sealing inside the low-pressure box 2. The telescopic plate 202 is fixedly connected to the surface of the transmission connecting rod 608. This structure enables the transmission connecting rod 608 to drive the telescopic plate 202 to move in the movable groove 201 when it moves, and plays a certain guiding and stabilizing role. At the same time, an air inlet pipe 204 is arranged on one side of the low-pressure box 2, and the outside air enters the low-pressure box 2 through the air inlet pipe 204; The specific implementation process is as follows: When in use, outside air enters the low-pressure box 2 through the air inlet pipe 204, and after a series of treatments, it is output through the high-pressure box 3, the air outlet valve 4 and the control valve 5 to provide the required air pressure for the motorcycle suspension system, and the transmission motor 601 is started. The transmission motor 601 drives the transmission shaft 602 to rotate, and the eccentric transmission rod 603 on the transmission shaft 602 performs a circular motion accordingly. The transmission ring 604 moves on the transmission rod 603, converting the circular motion into a linear motion of the transmission plate 605, and transmitting power through the transmission connecting plate 607 and the transmission connecting rod 608. The transmission connecting rod 608 drives the cooling rod 705 to move, so that the negative pressure airbag 704 generates negative pressure, and the coolant in the cooling box 701 is drawn out from the water outlet 703 through the cooling pipe 702, and the coolant flows back to the cooling box 701 from the water inlet 707 through the circulating water pipe 706, so that it can circulate the coolant according to the operating frequency of the air pump, cool the air pump, and make the air pump have higher adaptability.

[0019] Embodiment 2: See also Figure 1-8The present invention provides a technical solution: a highly adaptable air pump for a motorcycle suspension system, comprising a bracket 1, a low-pressure box 2 is fixedly installed on one side of the bracket 1, a high-pressure box 3 is fixedly installed on one end of the low-pressure box 2, an air outlet valve 4 is fixedly installed on one side of the high-pressure box 3, a control valve 5 is fixedly installed on one side of the air outlet valve 4, a transmission device 6 is adaptively installed on the inner wall of the low-pressure box 2, a cooling device 7 is fixedly installed below the low-pressure box 2, a heat dissipation device 8 is fixedly installed on one side of the cooling device 7, the transmission device 6 comprises a transmission motor 601 fixedly installed above the low-pressure box 2, a transmission shaft 602 is adaptively installed on the output end of the transmission motor 601, a transmission rod 603 is eccentrically installed on the surface of the transmission shaft 602, a transmission ring 604 is movably installed on the surface of the transmission rod 603, and a transmission plate is fixedly installed on the side of the transmission ring 604 605, a conical plate 606 is fixedly installed at one end of the transmission plate 605, a transmission connecting plate 607 is movably installed at one end of the transmission rod 603, and a transmission connecting rod 608 is fixedly installed at one end of the transmission connecting plate 607. After the transmission motor 601 is started, it drives the transmission shaft 602 to rotate, thereby making the eccentrically arranged transmission rod 603 do circular motion. The transmission ring 604 moves on the transmission rod 603 to convert the circular motion of the transmission rod 603 into the linear motion of the transmission plate 605. The conical plate 606 helps to transmit power more smoothly. The transmission connecting plate 607 and the transmission connecting rod 608 further transmit the power to achieve a specific function. The cooling device 7 includes a cooling box 701 fixedly installed below the low-pressure box 2, and a cooling pipe 70 is fixedly installed in the cooling box 701. 2. A water outlet 703 is fixedly installed on one side of the cooling pipe 702, a negative pressure airbag 704 is fixedly installed on one end of the cooling pipe 702, a cooling rod 705 is fixedly installed on one end of the negative pressure airbag 704, the cooling rod 705 is fixedly connected to one end of the transmission connecting rod 608, a circulating water pipe 706 is fixedly installed on one end of the water outlet 703, the circulating water pipe 706 is fixedly installed on one side of the inner wall of the low-pressure box 2, and a water inlet 707 is fixedly installed on the other end of the circulating water pipe 706, and the water inlet 707 is communicated with the cooling box 701. When the transmission connecting rod 608 moves, the cooling rod 705 is driven to move forward and backward, and the surface of the cooling rod 705 further generates negative pressure in the negative pressure airbag 704, so that the coolant in the cooling box 701 is drawn out from the water outlet 703 through the cooling pipe 702, and then passes through the circulating water pipe 706 and then The coolant flows back to the cooling box 701 from the water inlet 707 to realize the circulating cooling of the coolant. A movable groove 201 is fixedly opened at the bottom of the low-pressure box 2, and a telescopic plate 202 is movably arranged in the movable groove 201. A sealing plate 203 is fixedly installed at the bottom of the low-pressure box 2. The inner wall of the sealing plate 203 is movably adapted to the cooling rod 705. A sealing strip is fixedly arranged at the contact position between the sealing plate 203 and the cooling rod 705 to ensure the sealing inside the low-pressure box 2. The telescopic plate 202 is fixedly connected to the surface of the transmission connecting rod 608. This structure enables the transmission connecting rod 608 to drive the telescopic plate 202 to move in the movable groove 201 when it moves, which plays a certain guiding and stabilizing role. At the same time, an air inlet pipe 204 is arranged on one side of the low-pressure box 2, and the outside air enters the low-pressure box 2 through the air inlet pipe 204.The heat dissipation device 8 includes a heat dissipation shaft 801 fixedly mounted on the inner wall of the cooling box 701, a water wheel 802 is fixedly arranged on the surface of the heat dissipation shaft 801, a first heat dissipation gear 803 is fixedly arranged at one end of the heat dissipation shaft 801, a transmission belt 804 is adapted to be arranged on the surface of the first heat dissipation gear 803, a second heat dissipation gear 805 is adapted to be arranged at the other end of the transmission belt 804, and a heat dissipation fan 806 is fixedly arranged on the surface of the first heat dissipation gear 803 and the second heat dissipation gear 805. When the coolant flows in the cooling pipe 702, it impacts the water wheel 802, so that the heat dissipation shaft 801 rotates, and then drives the first heat dissipation gear 803 to rotate, and the transmission The second heat dissipation gear 805 is also rotated by the driving belt 804, so that the two heat dissipation fans 806 rotate at the same time to achieve the heat dissipation function. Dust-proof nets 807 are fixedly arranged on both sides of the heat dissipation fans 806. The dust-proof nets 807 can effectively prevent dust and other impurities from entering the heat dissipation device 8, protect the heat dissipation fans 806 and other internal components, and extend their service life. Heat dissipation fins 708 are symmetrically opened on one side of the cooling box 701. A plurality of guide grooves are arranged on the surface of the heat dissipation fins 708. These heat dissipation fins 708 increase the heat dissipation area of ​​the cooling box 701, and the guide grooves help to guide the air flow and improve the heat dissipation efficiency. The specific implementation process is as follows: When in use, outside air enters the low-pressure box 2 through the air inlet pipe 204, and after a series of treatments, it is output through the high-pressure box 3, the air outlet valve 4 and the control valve 5 to provide the required air pressure for the motorcycle suspension system, and the transmission motor 601 is started. The transmission motor 601 drives the transmission shaft 602 to rotate, and the eccentric transmission rod 603 on the transmission shaft 602 performs a circular motion accordingly. The transmission ring 604 moves on the transmission rod 603, converting the circular motion into a linear motion of the transmission plate 605, and transmitting power through the transmission connecting plate 607 and the transmission connecting rod 608. The transmission connecting rod 608 drives the cooling rod 705 to move, so that the negative pressure airbag 7 04 generates negative pressure, and the coolant in the cooling box 701 is extracted from the water outlet 703 through the cooling pipe 702, and the coolant flows back to the cooling box 701 from the water inlet 707 through the circulating water pipe 706, so that it can circulate the coolant according to the operating frequency of the air pump, cool the air pump, and make the air pump more adaptable. When the coolant flows out of the cooling pipe 702, it hits the water wheel 802 through the water inlet 707, so that the heat dissipation shaft 801 rotates, driving the first heat dissipation gear 803 to rotate, and the second heat dissipation gear 805 rotates through the transmission belt 804, and then drives the two heat dissipation fans 806 to rotate to achieve heat dissipation.

[0020] The above is only an embodiment of the present invention, and the common knowledge such as the known specific technical solutions or characteristics in the solution is not described in detail here. It should be pointed out that for those skilled in the art, several modifications and improvements can be made without departing from the technical solution of the present invention, which should also be regarded as the protection scope of the present invention, and these will not affect the effect of the implementation of the present invention and the practicality of the patent. The scope of protection required by this application shall be based on the content of its claims, and the specific implementation methods and other records in the specification can be used to interpret the content of the claims.

Claims

1. A highly adaptable air pump for a motorcycle suspension system, comprising a bracket (1), characterized in that: A low-pressure box (2) is fixedly provided on one side of the bracket (1), a high-pressure box (3) is fixedly provided on one end of the low-pressure box (2), an air outlet valve (4) is fixedly provided on one side of the high-pressure box (3), a control valve (5) is fixedly provided on one side of the air outlet valve (4), a transmission device (6) is adapted to be provided on the inner wall of the low-pressure box (2), a cooling device (7) is fixedly provided below the low-pressure box (2), and a heat dissipation device (8) is fixedly provided on one side of the cooling device (7); The transmission device (6) comprises a transmission motor (601) fixedly mounted above the low-voltage box (2); a transmission shaft (602) is adapted to be provided at the output end of the transmission motor (601); a transmission rod (603) is eccentrically provided on the surface of the transmission shaft (602); a transmission ring (604) is movably provided on the surface of the transmission rod (603); a transmission plate (605) is fixedly provided on the side of the transmission ring (604); a conical plate (606) is fixedly provided at one end of the transmission plate (605); a transmission connecting plate (607) is movably provided at one end of the transmission rod (603); and a transmission connecting rod (608) is fixedly provided at one end of the transmission connecting plate (607); The cooling device (7) comprises a cooling box (701) fixedly mounted below the low-pressure box (2); a cooling pipe (702) is fixedly mounted inside the cooling box (701); a water outlet (703) is fixedly mounted on one side of the cooling pipe (702); a negative pressure air bag (704) is fixedly mounted on one end of the cooling pipe (702); a cooling rod (705) is fixedly mounted on one end of the negative pressure air bag (704); the cooling rod (705) is fixedly mounted on one end of the transmission connecting rod (608); a circulating water pipe (706) is fixedly mounted on one side of the inner wall of the low-pressure box (2); a water inlet (707) is fixedly mounted on the other end of the circulating water pipe (706); and the water inlet (707) is communicated with the cooling box (701).

2. The highly adaptable air pump for a motorcycle suspension system according to claim 1, characterized in that: A movable groove (201) is fixedly provided below the low-pressure box (2), a telescopic plate (202) is movably provided in the movable groove (201), the telescopic plate (202) is fixedly connected to the surface of the transmission connecting rod (608), a sealing plate (203) is fixedly provided below the low-pressure box (2), and an air inlet pipe (204) is provided on one side of the low-pressure box (2).

3. The highly adaptable air pump for a motorcycle suspension system according to claim 1, characterized in that: The heat dissipation device (8) comprises a heat dissipation shaft (801) fixedly mounted on the inner wall of the cooling box (701); a water wheel (802) is fixedly provided on the surface of the heat dissipation shaft (801); a first heat dissipation gear (803) is fixedly provided on one end of the heat dissipation shaft (801); a transmission belt (804) is adapted to be provided on the surface of the first heat dissipation gear (803); a second heat dissipation gear (805) is adapted to be provided on the other end of the transmission belt (804); and heat dissipation fans (806) are fixedly provided on the surfaces of both the first heat dissipation gear (803) and the second heat dissipation gear (805).

4. The highly adaptable air pump for a motorcycle suspension system according to claim 3, characterized in that: Dust-proof nets (807) are fixedly provided on both sides of the heat dissipation fan (806).

5. The highly adaptable air pump for a motorcycle suspension system according to claim 1, characterized in that: One side of the cooling box (701) is symmetrically provided with heat dissipation fins (708), and the surface of the heat dissipation fins (708) is provided with a plurality of guide grooves.

Citation Information

Patent Citations

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    CN104976103A

  • Efficient heat dissipation device for air compressor

    CN113107815A

  • small air pump

    JP3091004U