A hoisting mechanism based on high-stability air compressor
By designing a highly stable hoisting mechanism and utilizing the collaborative work of multiple components, the problem of maintaining the center of gravity during the hoisting of air compressors was solved, thereby improving stability and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-22
- Publication Date
- 2026-03-31
AI Technical Summary
In existing technologies, it is difficult to maintain the center of gravity of air compressors during hoisting, resulting in poor stability and potential safety hazards.
A highly stable lifting mechanism was designed, comprising a lifting assembly, a clamping assembly, and a support assembly. By utilizing components such as a drive component, a transmission component, a guide component, and a shock absorber to work together, the stability and safety of the air compressor during the lifting process are ensured.
This improves the stability and safety of air compressor hoisting, reduces the risk of falling, and enhances operational convenience and efficiency.
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Figure CN114436141B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of air compressor hoisting technology, and in particular to an air compressor hoisting mechanism based on high stability. Background Technology
[0002] An air compressor is a device used to compress gas. Air compressors are similar in structure to water pumps. Most air compressors are reciprocating piston type, rotary vane type, or rotary screw type. Centrifugal air compressors are used in very large applications. When air compressors need maintenance or other operations, they generally require hoisting to improve the efficiency of workers. However, the surface of air compressors is often irregularly shaped with various irregular protrusions. Currently, workers typically manually fix ropes or other hoisting aids to these irregular protrusions before hoisting. This method makes it difficult to maintain the air compressor's center of gravity, and the stability during hoisting is poor, easily leading to falls and posing significant safety hazards. Summary of the Invention
[0003] The purpose of this section is to outline some aspects of embodiments of the present invention and to briefly describe some preferred embodiments. Simplifications or omissions may be made in this section, as well as in the abstract and title of this application, to avoid obscuring the purpose of these documents; however, such simplifications or omissions should not be construed as limiting the scope of the invention.
[0004] In view of the problems existing in the above and / or existing air compressor hoisting mechanisms based on high stability, the present invention is proposed.
[0005] Therefore, the problem that this invention aims to solve is that in the prior art, workers usually manually fix ropes and other hoisting aids to these irregular protrusions before hoisting. This method makes it difficult to maintain the center of gravity of the air compressor, and the stability during hoisting is poor, which can easily lead to falling and other situations, posing a significant safety hazard.
[0006] To solve the above technical problems, the present invention provides the following technical solution: a high-stability air compressor hoisting mechanism, comprising: a hoisting assembly including a mounting frame, a clamping plate, a driving component, and a transmission component; the mounting frame sliding on both sides of the bottom of the clamping plate; the driving component fixed to the top of the mounting frame; and the transmission component mounted on the clamping plate and cooperating with the driving component; a clamping assembly disposed inside the clamping plate, including a movable plate, a guide, a shock absorber, a receiving component, and a triggering component; an mounting groove formed inside the clamping plate; the movable plate sliding within the mounting groove; the guide being disposed at the bottom of the movable plate; the shock absorber being disposed between the guide and the movable plate; the receiving components evenly distributed inside the movable plate; and the triggering component being disposed outside the movable plate; and a support assembly disposed outside the hoisting assembly, including a support, a limiting component, and a steering component; the hoisting assembly located inside the support; the limiting component fixed to the top of the mounting frame; and the steering component disposed between the support and the mounting frame.
[0007] As a preferred embodiment of the high-stability air compressor hoisting mechanism of the present invention, the support component includes a support frame, a hydraulic telescopic rod, and a support plate. The support frame is disposed on the outside of the hoisting assembly, the hydraulic telescopic rod is fixed to the inner top wall of the support frame, and the support plate is fixed to the bottom end of the hydraulic telescopic rod.
[0008] As a preferred embodiment of the high-stability air compressor hoisting mechanism of the present invention, the limiting component includes a support rod, a connecting frame, a fixing ring, a mounting rod, and a connecting block. The support rod is fixed to the top four corners of the mounting frame. The connecting frame is fixed to the top of the support rod. The fixing ring is fixed to the bottom of the support plate. The bottom end of the mounting rod is fixed to the connecting frame, and the top end is rotatably connected to the bottom of the support plate. The connecting block is fixed to both sides of the top of the connecting frame and has a limiting groove. The fixing ring slides within the limiting groove.
[0009] As a preferred embodiment of the high-stability air compressor hoisting mechanism of the present invention, the steering component includes a drive motor, a drive gear, and a driven gear. The drive motor is fixed to the bottom of the support plate, the drive gear is fixed to the output end of the drive motor, and the driven gear is fixed to the surface of the mounting rod and meshes with the drive gear.
[0010] As a preferred embodiment of the high-stability air compressor hoisting mechanism of the present invention, the steering component further includes a mounting block, which is fixed to both sides of the drive motor, and the other side is fixed to the bottom of the support plate.
[0011] As a preferred embodiment of the high-stability air compressor hoisting mechanism of the present invention, the driving component includes a fixed frame, a connecting shaft, a fixed plate, a first gear, and a second gear. The fixed frame is fixed to the top of the mounting frame, the fixed plate is installed inside the fixed frame, the connecting shaft rotates on the inner top wall of the fixed frame, the first gear is fixed to the bottom end of the connecting shaft and located below the fixed plate, and the second gear is fixed to the connecting shaft and located above the fixed plate.
[0012] The driving component also includes a worm gear and a servo motor. The worm gear is fixed to the fixed plate and meshes with the second gear. The output end of the servo motor is fixed to one end of the worm gear.
[0013] As a preferred embodiment of the high-stability air compressor hoisting mechanism of the present invention, the transmission component includes a toothed plate and a first slider. The toothed plate is fixed to the top of the clamping plate, and the two toothed plates respectively mesh with the two sides of the first gear. The first slider is fixed to the top of the two sides of the clamping plate and slides on the mounting frame.
[0014] The transmission component also includes a fixing block and a guide rod. The fixing block is installed on both sides of the bottom of the mounting frame, and the guide rod is fixed between the two fixing blocks. A first guide groove is provided on the clamping plate, and the guide rod slides in the first guide groove.
[0015] As a preferred embodiment of the high-stability air compressor hoisting mechanism of the present invention, the guide component includes a sliding plate, a fixed rod, a guide plate, and a second slider. The sliding plate slides within the mounting groove, the fixed rod is fixed to both sides of the top of the sliding plate, the second slider is fixed to the inner side of the fixed rod, a sliding groove is provided on the movable plate, the second slider slides within the sliding groove, the guide plate is fixed to the inner wall of the mounting groove, and a second guide groove is provided on the sliding plate, the guide plate slides within the second guide groove.
[0016] The shock absorber includes a first hinge seat, a second hinge seat, a connecting rod, a first spring, and a second spring. The first hinge seat is fixed to both sides of the bottom of the movable plate, the second hinge seat slides on both sides of the top of the slide plate, the two ends of the connecting rod are respectively hinged to the first hinge seat and the second hinge seat, the two ends of the first spring are respectively fixed to the movable plate and the slide plate, and the two ends of the second spring are respectively fixed to the second hinge seat and the fixed rod.
[0017] As a preferred embodiment of the high-stability air compressor hoisting mechanism of the present invention, the receiving component includes a receiving frame, a receiving plate, and a third spring. The receiving frame is fixed to the inner side of the movable plate, the receiving plate slides within the receiving frame, and the two ends of the third spring are respectively fixed to the receiving frame and the receiving plate.
[0018] The receiving component also includes a limiting strip and protrusions. The limiting strip is fixed to the top of the receiving frame, and the protrusions are fixed to both sides of the top of the receiving plate.
[0019] As a preferred embodiment of the high-stability air compressor hoisting mechanism of the present invention, the actuating element includes an inclined plate, a connecting rod, and a roller. The inclined plate is fixed to the outside of the clamping plate, the connecting rod is fixed to both sides of the outside of the movable plate, the roller is fixed between the two connecting rods, and the roller slides on the inclined plate.
[0020] The beneficial effects of this invention are as follows: the support component makes the installation of the hoisting component more stable and convenient, and the hoisting position is adjustable. Then, the clamping component improves the stability of the air compressor hoisting, and the hoisting stability can be further improved by its own weight. Attached Figure Description
[0021] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Wherein:
[0022] Figure 1 This is an overall structural diagram of an air compressor hoisting mechanism based on high stability.
[0023] Figure 2 This is a structural diagram showing the connection between the limiting component and the steering component of a high-stability air compressor hoisting mechanism.
[0024] Figure 3 Another perspective view of the limiting component of the air compressor hoisting mechanism based on high stability.
[0025] Figure 4 This is a structural diagram showing the connection between the drive and transmission components of a high-stability air compressor hoisting mechanism.
[0026] Figure 5 Another perspective view of the clamping plate of the air compressor hoisting mechanism based on high stability.
[0027] Figure 6Another perspective view of the movable plate of the air compressor hoisting mechanism based on high stability.
[0028] Figure 7 This is a structural diagram of the receiving component of a high-stability air compressor hoisting mechanism.
[0029] Figure 8 This is a structural diagram showing the connection between the guide and shock absorber components of a high-stability air compressor hoisting mechanism. Detailed Implementation
[0030] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
[0031] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and those skilled in the art can make similar extensions without departing from the spirit of the invention. Therefore, the invention is not limited to the specific embodiments disclosed below.
[0032] Secondly, the term "one embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that is mutually exclusive with other embodiments.
[0033] Example 1
[0034] Reference Figure 1 This is the first embodiment of the present invention. This embodiment provides a high-stability air compressor hoisting mechanism. The high-stability air compressor hoisting mechanism includes a hoisting component 100, a clamping component 200, and a supporting component 300. The air compressor is hoisted by the hoisting component 100. At this time, the clamping component 200 improves the stability of the air compressor during hoisting, and the supporting component 300 makes the hoisting component 100 more stable and convenient to use.
[0035] Specifically, the hoisting assembly 100 includes a mounting frame 101, a clamping plate 102, a driving component 103, and a transmission component 104. The mounting frame 101 slides on both sides of the bottom of the clamping plate 102, the driving component 103 is fixed to the top of the mounting frame 101, and the transmission component 104 is mounted on the clamping plate 102 and cooperates with the driving component 103.
[0036] The clamping plates 102 are symmetrically distributed at the bottom of the mounting frame 101. When it is necessary to clamp the air compressor, the two clamping plates 102 move inward simultaneously through the drive component 103 and the transmission component 104, so that the air compressor can always be in the center position during the hoisting process, which greatly facilitates the operation of the staff.
[0037] The clamping assembly 200 is disposed inside the clamping plate 102 and includes a movable plate 201, a guide 202, a shock absorber 203, a receiving member 204, and an actuating member 205. The clamping plate 102 has an installation groove S on its inner side, and the movable plate 201 slides in the installation groove S. The guide 202 is disposed at the bottom of the movable plate 201, the shock absorber 203 is disposed between the guide 202 and the movable plate 201, the receiving member 204 is evenly distributed inside the movable plate 201, and the actuating member 205 is disposed outside the movable plate 201.
[0038] The movable plate 201 can slide within the mounting groove S. It can be limited by the guide 202 to prevent it from shifting during movement. The surface of the air compressor is uneven. Multiple support pieces 204 can support the air compressor at different positions. The setting of the trigger 205 allows the air compressor to move the movable plate 201 inward when it is lifted, thereby improving the stability of the contact between the air compressor and the support piece 204. The shock absorber 203 provides a shock absorption effect to prevent the movable plate 201 from being damaged due to gravity. The greater the weight of the air compressor, the tighter the clamping, which greatly improves the safety of the workers during the operation.
[0039] The support assembly 300 is located outside the hoisting assembly 100 and includes a support member 301, a limiting member 302, and a steering member 303. The hoisting assembly 100 is located inside the support member 301. The limiting member 302 is fixed to the top of the mounting frame 101, and the steering member 303 is located between the support member 301 and the mounting frame 101.
[0040] The support member 301 is used to support the entire device and improve its stability during use. The limiting member 302 is used to connect the hoisting assembly 100 and the support member 301, and at the same time makes it easier for the hoisting assembly 100 to move during use, thereby improving its hoisting efficiency. Then, the hoisting assembly 100 can be rotated during use by the setting of the steering member 303, so that the air compressor can be hoisted at different angles, further improving its hoisting efficiency.
[0041] Example 2
[0042] Reference Figures 1-3 This is the second embodiment of the present invention, which is based on the previous embodiment.
[0043] Specifically, the support component 301 includes a support frame 301a, a hydraulic telescopic rod 301b, and a support plate 301c. The support frame 301a is located on the outside of the hoisting assembly 100, the hydraulic telescopic rod 301b is fixed to the inner top wall of the support frame 301a, and the support plate 301c is fixed to the bottom end of the hydraulic telescopic rod 301b.
[0044] The support frame 301a is U-shaped, with its bottom sides in contact with the ground and fixed with anti-slip pads to improve the stability of the device installation. The hydraulic telescopic rod 301b can drive the support plate 301c to move up and down. The support plate 301c has limit sliders on both sides to prevent it from shifting during the up and down movement.
[0045] The limiting component 302 includes a support rod 302a, a connecting frame 302b, a fixing ring 302c, a mounting rod 302d, and a connecting block 302e. The support rod 302a is fixed to the top four corners of the mounting frame 101. The connecting frame 302b is fixed to the top of the support rod 302a. The fixing ring 302c is fixed to the bottom of the support plate 301c. The bottom end of the mounting rod 302d is fixed to the connecting frame 302b, and its top end is rotatably connected to the bottom of the support plate 301c. The connecting block 302e is fixed to both sides of the top of the connecting frame 302b, and a limiting groove K is provided on it. The fixing ring 302c slides in the limiting groove K.
[0046] The support rod 302a is used to fix the connecting frame 302b and the mounting frame 101. The mounting frame 101 can rotate. When it rotates, it is limited by the fixing ring 302c and the connecting block 302e to prevent it from shifting during rotation.
[0047] The steering component 303 includes a drive motor 303a, a drive gear 303b, and a driven gear 303c. The drive motor 303a is fixed to the bottom of the support plate 301c. The drive gear 303b is fixed to the output end of the drive motor 303a. The driven gear 303c is fixed to the surface of the mounting rod 302d and meshes with the drive gear 303b.
[0048] The drive motor 303a is a servo motor. When the drive motor 303a drives the drive gear 303b to rotate, the drive gear 303c and the mounting rod 302d will rotate through the drive gear 303b. In turn, the mounting rod 302d will drive the connecting frame 302b to rotate, so that the hoisting assembly 100 will rotate with it. This allows the air compressor to be hoisted at different angles and positions, making it more convenient to use.
[0049] The steering component 303 also includes a mounting block 303d, which is fixed to both sides of the drive motor 303a, and the other side is fixed to the bottom of the support plate 301c.
[0050] Mounting block 303d is used to fix the drive motor 303a in place to prevent it from falling off during use.
[0051] Example 3
[0052] Reference Figures 1-8 This is the third embodiment of the present invention, which is based on the first two embodiments.
[0053] Specifically, the drive component 103 includes a fixed frame 103a, a connecting shaft 103b, a fixed plate 103c, a first gear 103d, and a second gear 103e. The fixed frame 103a is fixed to the top of the mounting frame 101, the fixed plate 103c is installed inside the fixed frame 103a, the connecting shaft 103b rotates on the inner top wall of the fixed frame 103a, the first gear 103d is fixed to the bottom end of the connecting shaft 103b and is located below the fixed plate 103c, and the second gear 103e is fixed on the connecting shaft 103b and is located above the fixed plate 103c.
[0054] The fixing bracket 103a is U-shaped and fixed on the mounting frame 101. The fixing plate 103c is used to fix the connecting shaft 103b, making it more stable when rotating. When the connecting shaft 103b rotates, the first gear 103d and the second gear 103e can rotate together with it.
[0055] The drive unit 103 also includes a worm gear 103f and a servo motor 103g. The worm gear 103f is fixed on the fixed plate 103c and meshes with the second gear 103e. The output end of the servo motor 103g is fixed to one end of the worm gear 103f.
[0056] The servo motor 103g can drive the worm gear 103f to rotate, and then the worm gear 103f drives the second gear 103e and the connecting shaft 103b to rotate, thereby driving the first gear 103d to rotate.
[0057] The transmission component 104 includes a toothed plate 104a and a first slider 104b. The toothed plate 104a is fixed to the top of the clamping plate 102. The two toothed plates 104a mesh with the two sides of the first gear 103d respectively. The first slider 104b is fixed to the top of both sides of the clamping plate 102 and slides on the mounting frame 101.
[0058] The first slider 104b is U-shaped and slides on the clamping plate 102 on its inner side. The first slider 104b limits the clamping plate 102 to prevent it from shifting during left and right movements. The toothed plate 104a is fixed to the clamping plate 102. When the first gear 103d rotates, it can drive the two toothed plates 104a to move inward or outward at the same time, so that the two clamping plates 102 can move at the same time to clamp and release the air compressor. The air compressor is always in the centered position when clamped and hoisted, which greatly improves the convenience of operation for the staff.
[0059] The transmission component 104 also includes a fixing block 104c and a guide rod 104d. The fixing block 104c is installed on both sides of the bottom of the mounting frame 101, and the guide rod 104d is fixed between the two fixing blocks 104c. A first guide groove M1 is provided on the clamping plate 102, and the guide rod 104d slides in the first guide groove M1.
[0060] The clamping plate 102 is further limited by the guide rod 104d and the first guide groove M1, making it easier to move left and right and preventing it from deviating during movement.
[0061] The guide component 202 includes a slide plate 202a, a fixed rod 202b, a guide plate 202c, and a second slider 202d. The slide plate 202a slides in the mounting groove S. The fixed rod 202b is fixed to both sides of the top of the slide plate 202a. The second slider 202d is fixed to the inner side of the fixed rod 202b. The movable plate 201 has a sliding groove N. The second slider 202d slides in the sliding groove N. The guide plate 202c is fixed to the inner wall of the mounting groove S. The slide plate 202a has a second guide groove M2. The guide plate 202c slides in the second guide groove M2.
[0062] The guide plate 202c and the second guide groove M2 limit the sliding plate 202a to prevent it from deviating during sliding. There are two fixed rods 202b on each side. The second slider 202d is fixed between the two fixed rods 202b. The second slider 202d and the slide groove N limit the movable plate 201 to prevent it from deviating when it moves downwards by being pressed by the air compressor.
[0063] The shock absorber 203 includes a first hinge seat 203a, a second hinge seat 203b, a connecting rod 203c, a first spring 203d, and a second spring 203e. The first hinge seat 203a is fixed to both sides of the bottom of the movable plate 201, the second hinge seat 203b slides on both sides of the top of the slide plate 202a, the two ends of the connecting rod 203c are hinged to the first hinge seat 203a and the second hinge seat 203b respectively, the two ends of the first spring 203d are fixed to the movable plate 201 and the slide plate 202a respectively, and the two ends of the second spring 203e are fixed to the second hinge seat 203b and the fixed rod 202b respectively.
[0064] When the movable plate 201 is pressed down by the air compressor, the movable plate 201 and the first hinge seat 203a press the connecting rod 203c down, thereby pressing the second hinge seat 203b outward through the connecting rod 203c. At this time, the second spring 203e plays a buffering and shock-absorbing role to prevent the movable plate 201 from being damaged during the downward movement. At the same time, the first spring 203d further improves the buffering effect of the movable plate 201.
[0065] The receiving component 204 includes a receiving frame 204a, a receiving plate 204b, and a third spring 204c. The receiving frame 204a is fixed to the inner side of the movable plate 201, the receiving plate 204b slides within the receiving frame 204a, and the two ends of the third spring 204c are fixed to the receiving frame 204a and the receiving plate 204b, respectively.
[0066] The receiving plate 204b slides within the receiving frame 204a. The third spring 204c pushes the receiving plate 204b outward, making it easier for it to be positioned at the bottom of the protruding part on the air compressor. Multiple sets of receiving frames 204a and receiving plates 204b are provided and evenly distributed on the movable plate 201. Because the protruding parts on different models of air compressors are different, multiple sets of receiving plates 204b are provided so that they can adaptively support different protruding parts during hoisting, further improving the stability of the hoisting of the device.
[0067] The receiving component 204 also includes a limiting strip 204d and a protrusion 204e. The limiting strip 204d is fixed to the top of the receiving frame 204a, and the protrusion 204e is fixed to both sides of the top of the receiving plate 204b.
[0068] The receiving plate 204b is limited by the limiting strip 204d and the protrusion 204e to prevent it from detaching from the inside of the receiving frame 204a during use.
[0069] The actuator 205 includes a ramp 205a, a connecting rod 205b, and a roller 205c. The ramp 205a is fixed to the outside of the clamping plate 102, the connecting rod 205b is fixed to both sides of the outside of the movable plate 201, and the roller 205c is fixed between the two connecting rods 205b. The roller 205c slides on the ramp 205a.
[0070] At least two sets of inclined plates 205a are provided and are evenly distributed on the clamping plate 102. When the movable plate 201 is pressed down by the air compressor, the roller 205c slides on the inclined plate 205a, so that the movable plate 201 moves inward while moving downward, thereby clamping the air compressor more securely. The greater the weight of the air compressor, the greater the inward force that the clamping plate 102 can receive, making the clamping of the air compressor more stable.
[0071] In use, the air compressor and the device are placed in the designated position. Then, the hydraulic telescopic rod 301b moves the support plate 301c downward, positioning the air compressor between the two clamping plates 102. When the position needs to be adjusted, the drive motor 303a is started. The drive motor 303a drives the drive gear 303b to rotate, which in turn drives the driven gear 303c and the mounting rod 302d to rotate. This, in turn, causes the mounting rod 302d to rotate the connecting frame 302b, making the lifting assembly 100 rotate accordingly. This allows the air compressor to be lifted at different angles and positions. The installation operation is performed, and then the servo motor 103g is started. The servo motor 103g drives the worm gear 103f to rotate, which in turn drives the second gear 103e and the connecting shaft 103b to rotate, thereby driving the first gear 103d to rotate. The first gear 103d drives the two gear plates 104a to move inward or outward simultaneously, so that the two clamping plates 102 can move simultaneously to clamp the air compressor. The air compressor is always in a centered position during clamping and hoisting, which greatly improves the convenience of operation for the staff. At this time, the third spring 204c pushes the receiving plate 204b outward. The device is then moved so that it can be more easily positioned at the bottom of the protruding part on the air compressor. The device and the air compressor are then lifted, and the air compressor's own weight presses the receiving plate 204b and the movable plate 201 downwards. At this time, the roller 205c slides on the inclined plate 205a, causing the movable plate 201 to move inwards while moving downwards. This allows for a more secure clamping of the air compressor. The greater the weight of the air compressor, the greater the inward force on the clamping plate 102, resulting in a more stable clamping of the air compressor. Simultaneously, the movable plate 201 and the first hinge seat 203a... Pressing the connecting rod 203c downwards causes the second hinge seat 203b to be pressed outwards. At this time, the second spring 203e provides cushioning and shock absorption, preventing damage to the movable plate 201 during downward movement. Meanwhile, the first spring 203d further enhances the cushioning effect of the movable plate 201, improving the safety of the device during use. During hoisting, the device ensures that the air compressor remains in a centered position, and the weight of the air compressor itself enhances the stability of the hoisting, eliminating the need for manual tightening and greatly improving the convenience of the operation.
[0072] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.
Claims
1. A high stability based air compressor hoisting mechanism characterized by: Including, The lifting assembly (100) comprises a mounting frame (101), a clamping plate (102), a driving member (103) and a transmission member (104), the mounting frame (101) is slid on both sides of the bottom of the clamping plate (102), the driving member (103) is fixed on the top of the mounting frame (101), and the transmission member (104) is mounted on the clamping plate (102) and cooperates with the driving member (103); The clamping assembly (200) is arranged on the inner side of the clamping plate (102) and comprises a movable plate (201), a guide member (202), a damping member (203), a receiving member (204) and a triggering member (205), the inner side of the clamping plate (102) is provided with a mounting groove (S), the movable plate (201) is slid in the mounting groove (S), the guide member (202) is arranged on the bottom of the movable plate (201), the damping member (203) is arranged between the guide member (202) and the movable plate (201), the receiving member (204) is evenly arranged on the inner side of the movable plate (201), and the triggering member (205) is arranged on the outer side of the movable plate (201); and The supporting assembly (300) is arranged on the outer side of the lifting assembly (100) and comprises a supporting member (301), a limiting member (302) and a turning member (303), the lifting assembly (100) is located on the inner side of the supporting member (301), the limiting member (302) is fixed on the top of the mounting frame (101), and the turning member (303) is arranged between the supporting member (301) and the mounting frame (101).
2. The high stability based air compressor hoist mechanism of claim 1, wherein: The supporting member (301) comprises a supporting frame (301a), a hydraulic telescopic rod (301b) and a supporting plate (301c), the supporting frame (301a) is arranged on the outer side of the lifting assembly (100), the hydraulic telescopic rod (301b) is fixed on the inner top wall of the supporting frame (301a), and the supporting plate (301c) is fixed at the bottom end of the hydraulic telescopic rod (301b).
3. The high-stability air compressor hoist mechanism of claim 2, wherein: The limiting member (302) comprises a supporting rod (302a), a connecting frame (302b), a fixed ring (302c), a mounting rod (302d) and a connecting block (302e), the supporting rod (302a) is fixed on the top of the mounting frame (101) at four corners, the connecting frame (302b) is fixed at the top end of the supporting rod (302a), the fixed ring (302c) is fixed on the bottom of the supporting plate (301c), the mounting rod (302d) is fixed at the bottom end of the connecting frame (302b) and rotatably connected to the bottom of the supporting plate (301c) at the top end, and the connecting block (302e) is fixed on the top of the connecting frame (302b) at both sides and is provided with a limiting groove (K) therein, and the fixed ring (302c) is slid in the limiting groove (K).
4. The high-stability air compressor hoist mechanism of claim 3, wherein: The steering part (303) comprises a driving motor (303a), a driving gear (303b) and a driven gear (303c), the driving motor (303a) is fixed at the bottom of the support plate (301c), the driving gear (303b) is fixed with the output end of the driving motor (303a), the driven gear (303c) is fixed on the surface of the mounting rod (302d) and engaged with the driving gear (303b).
5. The high-stability air compressor hoist mechanism of claim 4, wherein: The steering part (303) further comprises a mounting block (303d) fixed on both sides of the driving motor (303a) and fixed with the bottom of the support plate (301c) on the other side.
6. The high-stability air compressor hoist mechanism according to any one of claims 1 to 4, characterized in that: The driving part (103) comprises a fixing frame (103a), a connecting shaft (103b), a fixed plate (103c), a first gear (103d) and a second gear (103e), the fixing frame (103a) is fixed on the top of the mounting frame (101), the fixed plate (103c) is installed on the inner side of the fixing frame (103a), the connecting shaft (103b) is rotatable on the inner top wall of the fixing frame (103a), the first gear (103d) is fixed with the bottom end of the connecting shaft (103b) and located below the fixed plate (103c), the second gear (103e) is fixed on the connecting shaft (103b) and located above the fixed plate (103c). The driving part (103) further comprises a worm (103f) and a servo motor (103g), the worm (103f) is fixed on the fixed plate (103c) and engaged with the second gear (103e), the output end of the servo motor (103g) is fixed with one end of the worm (103f).
7. The high-stability air compressor hoist mechanism of claim 6, wherein: The transmission part (104) comprises a toothed plate (104a) and a first sliding block (104b), the toothed plate (104a) is fixed on the top of the clamping plate (102), two toothed plates (104a) are respectively engaged with both sides of the first gear (103d), the first sliding block (104b) is fixed on the top of both sides of the clamping plate (102) and slides on the mounting frame (101); The transmission part (104) further comprises a fixed block (104c) and a guide rod (104d), the fixed block (104c) is installed on both sides of the bottom of the mounting frame (101), the guide rod (104d) is fixed between the two fixed blocks (104c), the clamping plate (102) is provided with a first guide groove (M1), and the guide rod (104d) slides in the first guide groove (M1).
8. The high-stability air compressor hoist mechanism of claim 7, wherein: The guide piece (202) comprises a sliding plate (202a), a fixed rod (202b), a guide plate (202c) and a second sliding block (202d), the sliding plate (202a) slides in the mounting groove (S), the fixed rod (202b) is fixed on the top of the two sides of the sliding plate (202a), the second sliding block (202d) is fixed on the inner side of the fixed rod (202b), the movable plate (201) is provided with a sliding groove (N), the second sliding block (202d) slides in the sliding groove (N), the guide plate (202c) is fixed on the inner wall of the mounting groove (S), and the sliding plate (202a) is provided with a second guide groove (M2), and the guide plate (202c) slides in the second guide groove (M2); The damping piece (203) comprises a first hinged seat (203a), a second hinged seat (203b), a connecting rod (203c), a first spring (203d) and a second spring (203e), the first hinged seat (203a) is fixed on the bottom of the two sides of the movable plate (201), the second hinged seat (203b) slides on the top of the two sides of the sliding plate (202a), the connecting rod (203c) is hinged with the first hinged seat (203a) and the second hinged seat (203b) at two ends respectively, the first spring (203d) is fixed with the movable plate (201) and the sliding plate (202a) at two ends respectively, and the second spring (203e) is fixed with the second hinged seat (203b) and the fixed rod (202b) at two ends respectively.
9. The high-stability air compressor hoist mechanism of claim 7 or 8, wherein: The receiving piece (204) comprises a receiving frame (204a), a receiving plate (204b) and a third spring (204c), the receiving frame (204a) is fixed on the inner side of the movable plate (201), the receiving plate (204b) slides in the receiving frame (204a), and the third spring (204c) is fixed with the receiving frame (204a) and the receiving plate (204b) at two ends respectively. The receiving piece (204) further comprises a limiting strip (204d) and a protruding block (204e), the limiting strip (204d) is fixed on the top of the receiving frame (204a), and the protruding block (204e) is fixed on the top of the two sides of the receiving plate (204b).
10. The high-stability air compressor hoist mechanism of claim 9, wherein: The touch piece (205) comprises an inclined plate (205a), a connecting rod (205b) and a roller (205c), the inclined plate (205a) is fixed on the outer side of the clamping plate (102), the connecting rod (205b) is fixed on the outer two sides of the movable plate (201), the roller (205c) is fixed between the two connecting rods (205b), and the roller (205c) slides on the inclined plate (205a).
Citation Information
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