High-stability air compressor for energy storage
By designing a shock-absorbing base and components on the air compressor, the problems of leakage and energy consumption caused by vibration and tilt during the movement and installation of the air compressor are solved, the stability of the air source and lubricating oil level is achieved, and the stable operation of the air compressor is ensured.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- JIANGSU JIELI KINETIC ENERGY TECH CO LTD
- Filing Date
- 2026-01-21
- Publication Date
- 2026-05-15
AI Technical Summary
Existing air compressors are prone to leakage of compressed air inside the compressor due to vibration during movement and installation, which increases energy consumption. Furthermore, the movement process can easily cause pulling on the drain pipe and displacement of the lubricating oil level, affecting stability.
The system employs a shock-absorbing base and shock-absorbing components, including elastic telescopic rods, limiting grooves, elastic telescopic plates, and shock-absorbing frames. Through limiting and supporting designs, it prevents compressor vibration and intake pipe deformation, ensuring a stable air supply. Support components and anti-tilt components prevent the drain pipe from loosening and tilting, ensuring a stable lubricating oil level.
It effectively prevents excessive vibration and leakage during compressor operation, reduces energy consumption, ensures stable air supply, protects drain pipe connections, prevents condensate backflow, ensures stable lubricating oil level, and enables continuous and stable compressor operation.
Smart Images

Figure CN122040577A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of air compressor technology, and more particularly to an air compressor with high stability for energy storage. Background Technology
[0002] When adding pneumatic tools or other air-using terminals at the work site, the original location usually cannot cover the new air-using point, so the air compressor needs to be moved to optimize the air supply range, and the air compressor with storage container comes with its own storage container.
[0003] Patent CN223120131U relates to an air compressor, including at least one air tank, a compressor head, a first air delivery pipe, and a second air delivery pipe. The compressor head includes an air compression pump and at least one quick-connect air delivery connector. The first air delivery pipe is used to fluidly connect the at least one air tank and the air compression pump. Air compressed by the air compression pump is delivered to the at least one air tank via the first air delivery pipe. The second air delivery pipe is used to fluidly connect the at least one air tank and the at least one quick-connect air delivery connector. Compressed air in the at least one air tank is delivered to the at least one quick-connect air delivery connector via the first air delivery pipe. Two air compressors can be stacked vertically. In the stacked state, the upper air compressor is supported on the compressor head of the lower air compressor, thereby facilitating the stacking of air compressors and saving floor space.
[0004] In the aforementioned patent, the two air compressors can be stacked one on top of the other, which can save floor space. However, it is difficult to prevent the compressor from vibrating excessively during operation due to loose installation. Vibration caused by loose installation will increase the amount of compressed air leakage inside the compressor, increasing the overall energy consumption cost. Furthermore, moving the compressor to cover a new air consumption point can easily pull on the drain pipe. At the same time, uneven placement of the compressor will cause the lubricating oil level to shift, resulting in discontinuous oil pump suction and thus causing control system failure. Therefore, it is necessary to design an air compressor with strong stability for energy storage to solve the above problems. Summary of the Invention
[0005] The purpose of this invention is to address the shortcomings of existing technologies by proposing a highly stable air compressor for energy storage.
[0006] To achieve the above objectives, the present invention adopts the following technical solution: A high-stability air compressor for energy storage includes a vibration-damping base and a vibration-damping assembly. The compressor is mounted on the inner wall of the vibration-damping base, and an intake pipe is fixedly installed on the right side of the compressor. The vibration-damping assembly includes a movable frame, an adjustment hole, a movable hole, an elastic telescopic rod, a limiting groove, an elastic telescopic plate, an elastic telescopic roller, and a vibration-damping frame. The movable frame is fixedly installed at the bottom of the compressor. The adjustment hole is located on the front side of the vibration-damping base, and the movable hole is located on the front side of the movable frame. The elastic telescopic rod is fixedly installed on the inner wall of the movable frame, and the limiting groove is located on the free side of the elastic telescopic rod. The elastic telescopic plate is fixedly installed on the bottom of the inner wall of the moving frame, the elastic telescopic roller is fixedly installed on the bottom of the inner wall of the moving frame, the shock absorber is fixedly installed on the free end of the elastic telescopic roller, the elastic telescopic rod is used to limit the moving frame, the shock absorber is used to support the air intake pipe, the elastic telescopic plate is used to limit the elastic telescopic rod, and the compressor bottom is provided with rollers. Pressing the elastic telescopic plate downward will disengage it from the limiting groove and release the limiting of the elastic telescopic rod. The depth of the front side of the limiting groove is less than the depth of the rear side of the limiting groove.
[0007] As a preferred embodiment of the present invention, the elastic telescopic rod contacts the inner wall of the adjusting hole, the elastic telescopic rod contacts the inner wall of the moving hole, the free end of the elastic telescopic plate contacts the inner wall of the limiting groove, and the shock absorber will disengage from the air intake pipe when it moves downward.
[0008] As a preferred embodiment of the present invention, the free end of the elastic telescopic plate abuts against the shock absorber, the shock absorber abuts against the air intake pipe, the inner wall of the limiting groove is set as an inclined surface, and the shock absorber moves upward and resets to contact the air intake pipe and support the air intake pipe.
[0009] As a preferred embodiment of the present invention, it further includes a support assembly and an anti-tilt assembly. The support assembly is used to support the drain hose, and the anti-tilt assembly is used to prevent the compressor from tilting. The support assembly includes a drain trough, a drain bracket, an arc panel, a drain spring, and a spring telescopic rod. When the drain bracket moves downward, it will disengage from the arc panel and release the restriction on the drain hose. The drain trough is located on the right side of the compressor. The drain bracket is slidably installed on the inner wall of the drain trough. The arc panel is fixedly installed on the inner wall of the drain trough. The drain spring is disposed between the drain bracket and the drain trough. The spring telescopic rod is fixedly installed on the right side of the compressor.
[0010] As a preferred technical solution of the present invention, the support assembly further includes a straightening frame and a linkage frame. The straightening frame is fixedly installed on the circumferential surface of the free end of the spring telescopic rod. The spring telescopic rod can drive the straightening frame to reset. When the straightening frame moves to the right, it will continuously contact the sewage pipe and straighten the sewage pipe. The linkage frame is fixedly installed at the bottom of the straightening frame.
[0011] As a preferred technical solution of the present invention, the drain rack is in contact with the shock absorber rack, the left side of the linkage rack is set as an inclined surface, the drain rack is in contact with the linkage rack, and the drain pipe bent at the drain interface is prone to condensation in low-lying areas. Once the machine stops or the air pressure fluctuates, the accumulated liquid will flow back into the compressor body.
[0012] As a preferred embodiment of the present invention, the anti-tilt assembly includes an anti-tilt frame, an anti-tilt hole, an elastic telescopic block, a friction plate, a wire rope, and a counterweight. If the shock-absorbing base is tilted, the counterweight will move downwards and, in conjunction with its own weight, will misalign with the anti-tilt frame. The anti-tilt frame is fixedly installed at the bottom of the inner wall of the movable frame. The anti-tilt hole is opened on the circumferential surface of the anti-tilt frame. The elastic telescopic block is fixedly installed on the rear side of the anti-tilt frame. The friction plate is fixedly installed on the free section of the elastic telescopic block. The wire rope is fixedly installed at the bottom of the sewage discharge frame. The counterweight is fixedly installed at the bottom of the wire rope.
[0013] As a preferred embodiment of the present invention, the top front side of the friction plate is set as an inclined surface. By setting the top front side of the friction plate as an inclined surface, the friction force when the friction plate contacts the counterweight can be reduced. The friction plate contacts the inner wall of the anti-tilt hole, and the friction plate is used to slow down the movement speed of the anti-tilt frame and the moving frame.
[0014] The present invention has the following beneficial effects: 1. In this invention, when the compressor needs to be moved to a position close to the gas-using equipment, pressing the elastic telescopic plate downwards will disengage it from the limiting groove and release the limiting of the elastic telescopic rod. The press-to-unlock trigger method can prevent the limiting from failing due to accidental contact during daily operation. The automatic limiting design after reset can ensure that the elastic telescopic rod is stably locked, thereby avoiding excessive vibration and leakage caused by the limiting falling off during compressor operation. This further prevents the amount of compressed air leakage inside the compressor from increasing and reduces overall energy consumption. If the shock absorber is always in contact with the intake pipe when the compressor is moved, the intake pipe is easily squeezed and deformed due to bumps or tilting during movement. By moving the shock absorber downwards, it will disengage from the intake pipe, which can reduce the risk of gas leakage during subsequent operations due to the deformation of the intake pipe.
[0015] 2. In this invention, the shock absorber frame moves upward and resets under the elastic force of the elastic telescopic roller. When the shock absorber frame moves upward and resets, it will contact the intake pipe and support the intake pipe. The elastic support of the shock absorber frame can absorb vibration energy and reduce the resonance and vibration of the intake pipe, thereby ensuring the stability of the air supply to the compressor.
[0016] 3. In this invention, the drain rack moves downwards and disengages from the arc panel, releasing the drain pipe from its limiting position. This allows the drain pipe to flexibly adjust its posture according to the direction of compressor movement, thereby protecting the connection between the drain pipe and the compressor and preventing the interface from becoming loose.
[0017] 4. In this invention, the straightening frame moves to the right and continuously contacts the drain pipe, straightening it. The drain pipe, which is bent at the drain interface, is prone to condensation in low-lying areas. Once the machine stops or the air pressure fluctuates, the accumulated liquid will flow back into the compressor body. The straightened drain pipe is easy to form a reasonable slope, guiding the condensate to flow unidirectionally to the discharge port to prevent condensate backflow.
[0018] 5. In this invention, if the shock-absorbing base is placed flat, the friction plate contacts the inner wall of the shock-absorbing base, thereby increasing the friction between the compressor and the shock-absorbing base when the compressor is adjusted laterally. If the shock-absorbing base is tilted, the friction plate is not squeezed by the counterweight and cannot contact the inner wall of the shock-absorbing base, thereby causing the compressor to move quickly when the compressor is adjusted laterally. The operator can judge whether the compressor is tilted by the speed of movement of the compressor during lateral adjustment, so as to straighten the compressor in time and avoid the lubricating oil level shifting due to uneven placement during operation, which would cause the oil pump to draw oil intermittently, thereby ensuring the continuous and stable operation of the compressor. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure proposed in this invention; Figure 2 This is a schematic diagram of the position structure of the adjustment hole and the moving hole proposed in this invention; Figure 3 This is a schematic diagram of the compressor and intake pipe positions proposed in this invention; Figure 4 This is a schematic diagram of the compressor half-section structure proposed in this invention; Figure 5 This is a schematic diagram of the position and structure of the compressor and the sewage tank proposed in this invention; Figure 6 This is a schematic diagram of the positional structure of the limiting groove and the elastic telescopic plate proposed in this invention; Figure 7 This is a schematic diagram of the positional structure of the spring telescopic rod and the straightening frame proposed in this invention; Figure 8 This is a schematic diagram of the half-section structure of the anti-slant frame proposed in this invention.
[0020] In the diagram: 1. Shock-absorbing base; 2. Compressor; 3. Inlet pipe; 4. Moving frame; 5. Adjustment hole; 6. Moving hole; 7. Elastic telescopic rod; 8. Limiting groove; 9. Elastic telescopic plate; 10. Elastic telescopic roller; 11. Shock-absorbing frame; 121. Sewage discharge trough; 122. Sewage discharge frame; 123. Arc panel; 124. Sewage discharge spring; 125. Spring telescopic rod; 126. Straightening frame; 127. Linkage frame; 131. Anti-slant frame; 132. Anti-slant hole; 133. Elastic telescopic block; 134. Friction plate; 135. Steel wire rope; 136. Counterweight. Detailed Implementation
[0021] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0022] Reference Figure 1-8 One embodiment of the present invention is as follows: a high-stability air compressor for energy storage, including a shock-absorbing base 1 and a shock-absorbing assembly. A compressor 2 is disposed on the inner wall of the shock-absorbing base 1, and an air inlet pipe 3 is fixedly installed on the right side of the compressor 2. The shock-absorbing assembly includes a movable frame 4, an adjustment hole 5, a movement hole 6, an elastic telescopic rod 7, a limiting groove 8, an elastic telescopic plate 9, an elastic telescopic roller 10, and a shock-absorbing frame 11. The movable frame 4 is fixedly installed at the bottom of the compressor 2. The adjustment hole 5 is opened on the front side of the shock-absorbing base 1, the movement hole 6 is opened on the front side of the movable frame 4, the elastic telescopic rod 7 is fixedly installed on the inner wall of the movable frame 4, the limiting groove 8 is opened on the circumferential surface of the free end of the elastic telescopic rod 7, and the elastic telescopic plate 9 is fixedly installed. At the bottom of the inner wall of the movable frame 4, the elastic telescopic roller 10 is fixedly installed, the shock absorber 11 is fixedly installed at the free end of the elastic telescopic roller 10, the elastic telescopic rod 7 is used to limit the movable frame 4, the shock absorber 11 is used to support the air inlet pipe 3, the elastic telescopic plate 9 is used to limit the elastic telescopic rod 7, and the bottom of the compressor 2 is equipped with rollers. The depth of the front side of the limiting groove 8 is less than the depth of the rear side of the limiting groove 8. The press-to-unlock trigger method can prevent the limit failure caused by accidental contact during daily operation, while the automatic limit design after reset can ensure that the elastic telescopic rod 7 is stably locked, thereby avoiding excessive vibration leakage caused by the limit falling off during the operation of the compressor 2.
[0023] The elastic telescopic rod 7 contacts the inner wall of the adjusting hole 5, the elastic telescopic rod 7 contacts the inner wall of the moving hole 6, the free end of the elastic telescopic plate 9 contacts the inner wall of the limiting groove 8, and the shock absorber 11 moves downward and disengages from the air inlet pipe 3. By moving the shock absorber 11 downward and disengaging from the air inlet pipe 3, the risk of gas leakage during subsequent operations due to deformation of the air inlet pipe 3 can be reduced.
[0024] The free end of the elastic telescopic plate 9 abuts against the shock absorber 11, and the shock absorber 11 abuts against the air intake pipe 3. The inner wall of the limiting groove 8 is set as an inclined surface. When the shock absorber 11 moves upward and resets, it will contact the air intake pipe 3 and support the air intake pipe 3. The elastic support of the shock absorber 11 can absorb vibration energy and reduce the resonance and vibration of the air intake pipe 3, thereby ensuring the stability of the air supply of the compressor 2.
[0025] During operation: When the compressor 2 needs to be moved to a position closer to the gas-using equipment to shorten the pipeline length and reduce pressure loss, pressing the elastic telescopic plate 9 downward will disengage it from the limiting groove 8 and release the limiting of the elastic telescopic rod 7. After the limiting of the elastic telescopic rod 7 is released, push the free end of the elastic telescopic rod 7 to move it to the rear. The movement of the free end of the elastic telescopic rod 7 to the rear will disengage it from the adjusting hole 5 and release the limiting of the moving frame 4. At the same time, the movement of the free end of the elastic telescopic rod 7 to the rear will align the front inclined surface of the limiting groove 8 with the elastic telescopic plate 9. After the elastic telescopic plate 9 is aligned with the front inclined surface of the limiting groove 8; The free end of the elastic telescopic plate 9 moves upward under its own elastic force. The upward movement of the free end of the elastic telescopic plate 9 will contact the front inclined surface of the limiting groove 8 and perform secondary limiting on the free end of the elastic telescopic rod 7. After the limiting of the moving frame 4 is released, the compressor 2 is pushed to move closer to the gas-using equipment. After the compressor 2 moves to the designated position, the elastic telescopic plate 9 is pressed down again. The elastic telescopic plate 9 moves down and disengages from the contact with the front side of the limiting groove 8 and releases the limiting on the free end of the elastic telescopic rod 7. After the limiting on the free end of the elastic telescopic rod 7 is released, the free end of the elastic telescopic rod 7 moves forward to reset under its own elastic force. The free end of the elastic telescopic rod 7 moves forward to reset and contacts the adjusting hole 5 and restores the limiting on the moving frame 4 and the compressor 2. The elastic telescopic rod 7 restores the limiting on the compressor 2, thus completing the position adjustment of the compressor 2. Simultaneously, the free end of the elastic telescopic plate 9 moves downward and contacts the shock absorber 11, squeezing it. The shock absorber 11 moves downward under the pressure of the elastic telescopic plate 9, squeezing the free end of the elastic telescopic roller 10. The free end of the elastic telescopic roller 10 moves downward and stores force. At the same time, the shock absorber 11 moves downward and disengages from the air intake pipe 3. When the free end of the elastic telescopic plate 9 moves upward and resets, it disengages from the shock absorber 11. After the shock absorber 11 disengages from the elastic telescopic plate 9, it moves upward and resets under the elastic force of the elastic telescopic roller 10. The upward reset of the shock absorber 11 contacts the air intake pipe 3 and supports it.
[0026] Reference Figure 1-8Based on the above embodiments, another embodiment of the present invention further includes a support component and an anti-tilt component. The support component is used to support the drain hose, and the anti-tilt component is used to prevent the compressor 2 from tilting. The support component includes a drain trough 121, a drain frame 122, an arc panel 123, a drain spring 124, and a spring telescopic rod 125. The drain trough 121 is located on the right side of the compressor 2. The drain frame 122 is slidably installed on the inner wall of the drain trough 121. The arc panel 123 is fixedly installed on the inner wall of the drain trough 121. The drain spring 124 is disposed between the drain frame 122 and the drain trough 121. The spring telescopic rod 125 is fixedly installed on the right side of the compressor 2. The drain hose can flexibly adjust its posture according to the direction of movement of the compressor 2, thereby protecting the connection between the drain hose and the compressor 2 and preventing the interface from becoming loose.
[0027] The support assembly also includes a straightening frame 126 and a linkage frame 127. The straightening frame 126 is fixedly installed on the circumferential surface of the free end of the spring telescopic rod 125. The spring telescopic rod 125 can drive the straightening frame 126 to reset. When the straightening frame 126 moves to the right, it will continue to contact the sewage pipe and straighten the sewage pipe. The linkage frame 127 is fixedly installed at the bottom of the straightening frame 126.
[0028] The drain rack 122 contacts the shock absorber 11. The left side of the linkage frame 127 is set as an inclined surface. The drain rack 122 contacts the linkage frame 127. The drain pipe with bends at the drain interface is prone to condensation in low-lying areas. Once the machine stops or the air pressure fluctuates, the accumulated liquid will flow back to the compressor 2 body. The straightened drain pipe is easy to form a reasonable slope, guiding the condensate to flow unidirectionally to the discharge port to prevent condensate backflow.
[0029] The anti-tilt assembly includes an anti-tilt frame 131, an anti-tilt hole 132, an elastic telescopic block 133, a friction plate 134, a wire rope 135, and a counterweight 136. The anti-tilt frame 131 is fixedly installed on the bottom of the inner wall of the movable frame 4. The anti-tilt hole 132 is opened on the circumferential surface of the anti-tilt frame 131. The elastic telescopic block 133 is fixedly installed on the rear side of the anti-tilt frame 131. The friction plate 134 is fixedly installed on the free section of the elastic telescopic block 133. The wire rope 135 is fixedly installed on the bottom of the drain rack 122. The counterweight 136 is fixedly installed on the bottom of the wire rope 135. The operator can judge whether the compressor 2 is tilted by the movement speed when the compressor 2 is adjusted laterally. This allows the operator to correct the compressor 2 in time and avoid the lubricating oil level shifting due to uneven placement during subsequent work, which would cause the oil pump to draw oil intermittently. This ensures that the compressor 2 operates continuously and stably.
[0030] The top front side of the friction plate 134 is set as an inclined surface. By setting the top front side of the friction plate 134 as an inclined surface, the friction force when the friction plate 134 contacts the counterweight 136 can be reduced. The friction plate 134 contacts the inner wall of the anti-skewing hole 132. The friction plate 134 is used to slow down the movement speed of the anti-skewing frame 131 and the moving frame 4.
[0031] During operation, the shock absorber 11 moves downward and contacts the drain rack 122, squeezing the drain rack 122. The drain rack 122 moves downward under the pressure of the shock absorber 11, squeezing the drain spring 124. The drain spring 124 deforms and stores force under the pressure of the drain rack 122. At the same time, the drain rack 122 moves downward and disengages from the arc panel 123, releasing the limit on the drain pipe. Simultaneously, the drain rack 122 moves downward and contacts the inclined surface of the linkage frame 127, squeezing the linkage frame 127. The linkage frame 127 moves to the right under the pressure of the drain rack 122. When the linkage frame 127 moves to the right, it will cause the straightening frame 126 to move to the right. The straightening frame 126 moving to the right will cause the free end of the spring telescopic rod 125 to move to the right and store force. At the same time, the straightening frame 126 will continue to contact the sewage pipe and straighten it as it moves to the right. When the shock absorber 11 moves downward, it will disengage from the sewage discharge frame 122. After the sewage discharge frame 122 disengages from the shock absorber 11, it will move upward and reset under the elastic force of the sewage discharge spring 124. The upward movement of the sewage discharge frame 122 will disengage from the linkage frame 127. After the linkage frame 127 disengages from the sewage discharge frame 122, the straightening frame 126 will move to the right and reset under the elastic force of the spring telescopic rod 125.
[0032] When the sewage rack 122 moves downward, it will cause the wire rope 135 to move downward. When the wire rope 135 moves downward, it will cause the counterweight 136 to move downward. If the shock-absorbing base 1 is placed flat, the counterweight 136 moves downward and, in conjunction with its own weight, contacts the inner wall of the anti-tilt frame 131. The counterweight 136 contacts the inner wall of the anti-tilt frame 131. At the same time, the counterweight 136 moves downward and contacts the inclined surface of the friction plate 134 and squeezes the friction plate 134. The friction plate 134 is pressed by the counterweight 136 and moves backward. The backward movement of the friction plate 134 will drive the free end of the elastic telescopic block 133 to move backward and store force. At the same time, the friction plate 134 will contact the inner wall of the shock-absorbing base 1. The contact between the friction plate 134 and the inner wall of the shock-absorbing base 1 will increase the friction between the compressor 2 and the shock-absorbing base 1 when the compressor 2 is adjusted laterally. The increased friction between the compressor 2 and the shock-absorbing base 1 will cause the compressor 2 to move slowly when the lateral position is adjusted. If the shock-absorbing base 1 is tilted, the counterweight 136 will move downwards and, combined with its own weight, will misalign with the anti-tilt frame 131. The misalignment between the counterweight 136 and the anti-tilt frame 131 prevents the counterweight 136 from pressing the friction plate 134. Without the pressure of the counterweight 136, the friction plate 134 cannot contact the inner wall of the shock-absorbing base 1, thus causing the compressor 2 to move quickly when adjusting its position laterally.
[0033] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A high-stability air compressor for energy storage, comprising a shock-absorbing base (1), characterized in that, It also includes a shock-absorbing component, a support component and an anti-tilt component. The inner wall of the shock-absorbing base (1) is provided with a compressor (2), and an air inlet pipe (3) is fixedly installed on the right side of the compressor (2). The shock absorption assembly includes a movable frame (4), an adjustment hole (5), a movable hole (6), an elastic telescopic rod (7), a limiting groove (8), an elastic telescopic plate (9), an elastic telescopic roller (10), and a shock absorption frame (11). The movable frame (4) is fixedly installed at the bottom of the compressor (2). The adjustment hole (5) is located on the front side of the shock absorption base (1). The movable hole (6) is located on the front side of the movable frame (4). The elastic telescopic rod (7) is fixedly installed on the inner wall of the movable frame (4). The limiting groove (8) is located on the elastic telescopic rod (7). The elastic telescopic plate (9) is fixedly installed on the bottom of the inner wall of the movable frame (4), the elastic telescopic roller (10) is fixedly installed on the bottom of the inner wall of the movable frame (4), the shock absorber (11) is fixedly installed on the free end of the elastic telescopic roller (10), the elastic telescopic rod (7) is used to limit the movable frame (4), the shock absorber (11) is used to support the air inlet pipe (3), the elastic telescopic plate (9) is used to limit the elastic telescopic rod (7), and the compressor (2) is provided with rollers at the bottom. The support assembly is used to support the drain hose, and the anti-tilt assembly is used to prevent the compressor (2) from tilting.
2. The air compressor with high stability for energy storage according to claim 1, characterized in that, The elastic telescopic rod (7) is in contact with the inner wall of the adjusting hole (5), the elastic telescopic rod (7) is in contact with the inner wall of the moving hole (6), and the free end of the elastic telescopic plate (9) is in contact with the inner wall of the limiting groove (8).
3. The air compressor with high stability for energy storage according to claim 2, characterized in that, The free end of the elastic telescopic plate (9) abuts against the shock absorber (11), the shock absorber (11) abuts against the air intake pipe (3), and the inner wall of the limiting groove (8) is set as an inclined surface.
4. The air compressor for energy storage with high stability according to claim 3, characterized in that, The support assembly includes a drain trough (121), a drain rack (122), an arc panel (123), a drain spring (124), and a spring telescopic rod (125). The drain trough (121) is located on the right side of the compressor (2). The drain rack (122) is slidably installed on the inner wall of the drain trough (121). The arc panel (123) is fixedly installed on the inner wall of the drain trough (121). The drain spring (124) is located between the drain rack (122) and the drain trough (121). The spring telescopic rod (125) is fixedly installed on the right side of the compressor (2).
5. A high-stability air compressor for energy storage according to claim 4, characterized in that, The support assembly also includes a straightening frame (126) and a linkage frame (127). The straightening frame (126) is fixedly installed on the circumferential surface of the free end of the spring telescopic rod (125), and the linkage frame (127) is fixedly installed at the bottom of the straightening frame (126).
6. A high-stability air compressor for energy storage according to claim 5, characterized in that, The sewage rack (122) is in contact with the shock absorber (11), and the left side of the linkage frame (127) is set as an inclined surface, and the sewage rack (122) is in contact with the linkage frame (127).
7. A high-stability air compressor for energy storage according to claim 6, characterized in that, The anti-tilt assembly includes an anti-tilt frame (131), an anti-tilt hole (132), an elastic telescopic block (133), a friction plate (134), a steel wire rope (135), and a counterweight (136). The anti-tilt frame (131) is fixedly installed on the bottom of the inner wall of the movable frame (4). The anti-tilt hole (132) is opened on the circumferential surface of the anti-tilt frame (131). The elastic telescopic block (133) is fixedly installed on the rear side of the anti-tilt frame (131). The friction plate (134) is fixedly installed on the free section of the elastic telescopic block (133). The steel wire rope (135) is fixedly installed on the bottom of the sewage rack (122). The counterweight (136) is fixedly installed on the bottom of the steel wire rope (135).
8. A highly stable air compressor for energy storage according to claim 7, characterized in that, The front top of the friction plate (134) is set as an inclined surface. The friction plate (134) contacts the inner wall of the anti-skewing hole (132). The friction plate (134) is used to slow down the movement speed of the anti-skewing frame (131) and the moving frame (4).