Mechanical and electrical engineering electromechanical equipment transfer device

CN224714996UActive Publication Date: 2026-09-04SHENYANG ZHUZHUO TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202521568594.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-25
Publication Date
2026-09-04
Estimated Expiration
2035-07-25

AI Technical Summary

Technical Problem

传统转运设备的支撑调节机构往往操作繁琐,操作人员在调整支撑位置时需要耗费大量时间和精力,有时甚至需要使用专门的工具才能完成调整

Benefits of technology

[0016] Compared with the prior art, this utility model provides a transfer device for electromechanical equipment in electromechanical engineering, which has the following beneficial effects:

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Abstract

The utility model discloses a kind of electromechanical engineering electromechanical equipment transfer device, including support frame, support frame both sides are provided with support mechanism, the support mechanism includes fixed frame and adjusting plate, fixed frame is fixed in the outer wall of placing plate, adjusting plate is provided with multiple groups sliding in the both sides of fixed frame, multiple groups adjusting rod are all set with adjusting hole, multiple groups adjusting plate top are all fixed with hydraulic cylinder, multiple groups hydraulic cylinder bottom are all fixed with bottom plate, the both ends of fixed frame are all set with jack, multiple groups jack are inserted with fixed peg in, the top of fixed peg is provided with fixed mechanism, the fixed mechanism includes fixed sleeve and plug-in rod, fixed sleeve is fixed in the top surface of fixed frame, plug-in rod is fixed in the top of fixed peg and inserted in fixed sleeve, by the support mechanism of being set in support frame both sides, including the sliding fit structure of fixed frame and adjusting plate, in combination with the support system of hydraulic cylinder and bottom plate, so that equipment can be quickly unfolded support in any position, realize stable parking.
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Description

Technical Field

[0001] This utility model relates to the technical field, and more specifically, to a transfer device for electromechanical equipment used in electromechanical engineering. Background Technology

[0002] In modern industrial production and construction, the transfer and installation of large electromechanical equipment is a common and critical task, directly impacting operational efficiency and safety. Currently available transfer equipment often suffers from insufficient stability during equipment handling, particularly when temporary stops are required. The lack of effective support mechanisms leads to poor equipment stability, making it prone to tilting or displacement. Since transfer devices need to adjust their stability under different working environments and load conditions, the supporting components must be able to move flexibly to different positions to adapt to various situations. However, existing support structure designs are complex and cumbersome, failing to meet the need for rapid and convenient adjustments. This complexity directly affects the moving efficiency and practicality of the supporting components.

[0003] In complex working environments such as confined spaces or uneven ground, the transfer of electromechanical equipment requires a flexible and reliable support system to ensure operational safety. Traditional transfer equipment's support adjustment mechanisms are often cumbersome to operate, requiring operators to expend considerable time and effort to adjust the support positions, sometimes even necessitating the use of specialized tools. This not only reduces work efficiency but can also hinder timely adjustments and safe operation of the equipment in emergencies. Furthermore, the load-bearing capacity and stability of existing support structures often fail to meet the actual needs of transferring large electromechanical equipment, making them prone to loosening or deformation during support, further increasing the risk of equipment tipping over and threatening the personal safety of operators and the integrity of the equipment. Utility Model Content

[0004] (a) Technical problems to be solved

[0005] In view of the problems existing in the prior art, this utility model provides a transfer device for electromechanical equipment in electromechanical engineering to solve the technical problems mentioned in the background art.

[0006] (II) Technical Solution

[0007] To achieve the above objectives, this utility model provides the following technical solution: a transfer device for electromechanical equipment in electromechanical engineering, comprising a support frame, with support mechanisms on both sides of the support frame, each support mechanism including a fixed frame and an adjusting plate, the fixed frame being fixed to the outer wall of a placement plate, the adjusting plate having multiple sets of sliding rods on both sides of the fixed frame, each set of adjusting rods having adjusting holes, each set of adjusting plates having a hydraulic cylinder fixed to its top, each set of hydraulic cylinders having a base plate fixed to its bottom, each set of fixed frame having insertion holes at both ends, each set of insertion holes having a fixing bolt inserted into it, each fixing bolt having a fixing mechanism at its top, the fixing mechanism including a fixing sleeve and a plug rod, the fixing sleeve being fixed to the top surface of the fixed frame, the plug rod being fixed to the top of the fixing bolt and inserted into the fixing sleeve, the fixing sleeve having an inclined groove on its inner side, the inclined groove having multiple sets, each set of inclined blocks having slidably mounted on its inner side, each set of inclined blocks having a locking block fixedly mounted on its inner side, the plug rod having a locking groove on its outer wall, the locking groove having multiple sets and each locking block abutting against the locking blocks.

[0008] The present invention is further configured such that the outer wall of the fixed sleeve is provided with a sliding groove, the sliding groove is provided in multiple sets and a sliding sleeve is slidably provided on the outer side, and a push ring is fixedly provided on the inner side of the sliding sleeve. The push ring abuts against the bottom surface of multiple sets of locking blocks. This design forms a flexible transmission mechanism. The movement of the sliding sleeve can simultaneously control the movement of multiple locking blocks, achieving a balance between easy operation and reliable locking, reducing operation steps and improving locking efficiency.

[0009] The present invention is further configured such that the outer wall of the fixed sleeve is threadedly connected to a threaded sleeve, and a thrust bearing is connected between the bottom surface of the threaded sleeve and the sliding sleeve. This connection method allows the axial force generated when rotating the threaded sleeve to be smoothly transmitted to the sliding sleeve through the thrust bearing, avoiding wear and jamming caused by direct friction, and also reducing the operating force, making the locking and unlocking process more effortless and smooth.

[0010] The present invention is further provided in that a reset spring is connected between the bottom surface of each of the multiple sets of card blocks and the inner wall of the fixing sleeve. The reset spring provides the card block with an automatic return function. When the external force is released, the reset spring can automatically pull the card block back to its original position, so that the card block is disengaged from the card slot and automatically unlocks, avoiding the trouble of manually pulling out the card block and greatly improving the convenience and efficiency of the unlocking operation.

[0011] The present invention is further configured such that a positioning hole is provided on the inner side of the fixing sleeve, and a positioning block is fixedly provided on the top end of the insertion rod. Both the positioning hole and the positioning block are polygonal. The polygonal design prevents the insertion rod from rotating freely in the fixing sleeve, ensures that the angle between the insertion rod and the fixing sleeve is fixed, improves the torsional resistance and stability of the entire locking system, and also makes it easier for the operator to quickly find the installation direction.

[0012] The present invention is further configured such that each of the multiple card slots has a clearance groove at the bottom and each of the multiple card blocks has a rounded corner at the top. This structural design allows the card blocks to slide smoothly along the guide surface formed by the clearance groove and the rounded corner when entering or exiting the card slot, reducing the frictional resistance between the card blocks and the card slot, avoiding jamming, extending the service life of the components and improving the smoothness of operation.

[0013] The present invention is further configured such that a handle is fixedly provided at the top of the positioning block, and the handle is provided with rounded corners on the outside. The design of the handle provides the operator with a structure that is easy to grip, making the insertion and removal operation more effortless. The rounded corners on the outside avoid the possible injury to the operator caused by sharp corners, and also reduce the possible collision damage between the handle and other components, thereby improving the safety of the equipment and the human-machine interaction.

[0014] The present invention is further configured such that a rotating rod is rotatably provided on the bottom surface of the support frame, the rotating rod is provided with multiple sets and each end is fixedly provided with a transfer wheel, a placement plate is fixedly provided on the top surface of the support frame, and a motor is fixedly provided on the outside of the support frame. The output end of the motor is fixedly connected to one end of the rotating rod. This structural design realizes the power transfer function of the electromechanical equipment. The rotating rod driven by the motor drives the transfer wheel to rotate, so that the entire device can move smoothly and efficiently. The placement plate provides a stable bearing platform for the electromechanical equipment. The setting of multiple sets of rotating rods and transfer wheels enhances the bearing capacity and operational stability of the device.

[0015] (III) Beneficial Effects

[0016] Compared with the prior art, this utility model provides a transfer device for electromechanical equipment in electromechanical engineering, which has the following beneficial effects:

[0017] 1. The electromechanical equipment transfer device for electromechanical engineering provided by this utility model adopts an innovative support mechanism design, which effectively solves the problem that the transfer equipment is not easy to support when it stops in the prior art. Through the support mechanism set on both sides of the support frame, including the sliding cooperation structure of the fixed frame and the adjusting plate, combined with the support system of the hydraulic cylinder and the base plate, the equipment can be quickly deployed and supported at any position to achieve stable parking. In particular, the design of multiple sets of adjusting plates allows the support position to be flexibly adjusted according to the actual working environment, and the cooperation of the fixing bolt and the insertion hole ensures the accuracy and firmness of the adjusting plate position, which greatly improves the adaptability and operational safety of the transfer equipment in complex environments.

[0018] 2. The fixing mechanism of this utility model is precisely and reasonably designed. Through the interlocking of the fixing sleeve and the insertion rod, combined with the guiding effect of the inclined groove and the inclined block, a highly efficient and reliable locking system is formed. When the operator rotates the threaded sleeve, the sliding sleeve drives the push ring to push the locking block to slide along the inclined groove and lock into the locking groove of the insertion rod, thus achieving a firm lock. The design of multiple sets of locking blocks and locking grooves makes the locking more balanced and stable, avoiding the loosening and instability problems in traditional fixing methods. The setting of the return spring ensures the convenience of unlocking operation. The overall mechanism is simple and intuitive to operate, requiring no professional tools, and greatly improving work efficiency.

[0019] 3. The most significant technical advantage of this utility model lies in its improved overall performance. The rotating rod and transfer wheel structure at the bottom of the support frame, combined with the motor drive system, enables the smooth transfer of electromechanical equipment. The top placement plate provides a stable bearing platform for the equipment. When it is necessary to stop the transfer, the adjustment plate can be unfolded with a simple operation, and the bottom plate can be supported on the ground by the hydraulic cylinder, forming a stable three-point or multi-point support structure. This effectively prevents the equipment from shaking or tilting during parking. The polygonal design of the positioning block and positioning hole further enhances the torsional resistance of the entire support system. The rounded corners of the clearance groove and the locking block make the operation smoother, perfectly meeting the high requirements of modern electromechanical engineering for the safety, stability, and ease of operation of equipment transfer. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the overall structure of a transfer device for electromechanical engineering in this utility model;

[0021] Figure 2 This is a bottom view of the support frame in this utility model;

[0022] Figure 3 This is a cross-sectional view of the fixing frame in this utility model;

[0023] Figure 4 This is a cross-sectional view of the fixing sleeve in this utility model;

[0024] Figure 5 This is a schematic diagram of the insert rod in this utility model.

[0025] In the diagram: 1. Support frame; 2. Fixing frame; 3. Adjusting plate; 4. Adjusting hole; 5. Hydraulic cylinder; 6. Base plate; 7. Insertion hole; 8. Fixing bolt; 9. Fixing sleeve; 10. Inserting rod; 11. Inclined groove; 12. Inclined block; 13. Locking block; 14. Locking groove; 15. Sliding groove; 16. Sliding sleeve; 17. Push ring; 18. Threaded sleeve; 19. Thrust bearing; 20. Return spring; 21. Positioning hole; 22. Positioning block; 23. Leaving groove; 24. Handle block; 25. Rotating rod; 26. Transfer wheel; 27. Placement plate; 28. Motor. Detailed Implementation

[0026] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0027] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.

[0028] In this utility model, unless otherwise stated, the orientations used, such as "up" and "down", usually refer to the direction shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" usually refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.

[0029] Please see Figures 1-5 A transfer device for electromechanical equipment in electromechanical engineering includes a support frame 1. Support mechanisms are provided on both sides of the support frame 1. Each support mechanism includes a fixed frame 2 and an adjusting plate 3. The fixed frame 2 is fixed to the outer wall of a placement plate 27. The adjusting plate 3 has multiple sets of sliding rods on both sides of the fixed frame 2. Adjusting holes 4 are provided on each set of adjusting rods. Hydraulic cylinders 5 are fixed to the top of each set of adjusting plates 3. Base plates 6 are fixed to the bottom of each set of hydraulic cylinders 5. Insertion holes 7 are provided at both ends of the fixed frame 2, and multiple sets of insertion holes 7 are used to insert and connect various equipment. There is a fixing bolt 8, and a fixing mechanism is provided at the top of the fixing bolt 8. The fixing mechanism includes a fixing sleeve 9 and a plug rod 10. The fixing sleeve 9 is fixed to the top surface of the fixing frame 2. The plug rod 10 is fixed to the top of the fixing bolt 8 and inserted into the fixing sleeve 9. An inclined groove 11 is provided on the inner side of the fixing sleeve 9. Multiple sets of inclined grooves 11 are provided, and inclined blocks 12 are slidably provided on the inner side of each set of inclined blocks 12. A locking block 13 is fixed on the inner side of each set of inclined blocks 12. A locking groove 14 is provided on the outer wall of the plug rod 10. Multiple sets of locking grooves 14 are provided and abut against each of the multiple sets of locking blocks 13.

[0030] The outer wall of the fixed sleeve 9 is provided with a sliding groove 15. Multiple sets of sliding grooves 15 are provided, and a sliding sleeve 16 is slidably provided on the outer side. A push ring 17 is fixedly provided on the inner side of the sliding sleeve 16. The push ring 17 abuts against the bottom surface of multiple sets of locking blocks 13. The sliding groove 15 provides a moving track for the sliding sleeve 16. When the sliding sleeve 16 moves along the sliding groove 15, it drives the push ring 17 to move synchronously. The push ring 17 directly acts on the bottom surface of the locking block 13, forming a linkage mechanism. By controlling the position of the sliding sleeve 16, the action state of multiple locking blocks 13 can be controlled simultaneously, realizing centralized control and reducing the complexity of operation.

[0031] The outer wall of the fixed sleeve 9 is threaded with a threaded sleeve 18. A thrust bearing 19 is connected between the bottom surface of the threaded sleeve 18 and the sliding sleeve 16. The threaded connection between the threaded sleeve 18 and the fixed sleeve 9 converts the rotational motion into axial motion. The thrust bearing 19 plays a role in reducing friction and transmitting force between the threaded sleeve 18 and the sliding sleeve 16. When the threaded sleeve 18 is rotated, the axial force is transmitted to the sliding sleeve 16 through the thrust bearing 19, causing it to move along the sliding groove 15. At the same time, the thrust bearing 19 also reduces the rotational friction resistance, improving the sensitivity of operation and service life.

[0032] Each set of locking blocks 13 is connected to a return spring 20 between its bottom surface and the inner wall of the fixing sleeve 9. The return spring 20 provides a continuous pull force to the locking blocks 13. After the threaded sleeve 18 is loosened, the return spring 20 will automatically pull the locking blocks 13 back to their original position, causing the locking blocks 13 to disengage from the slot 14 and realize the automatic unlocking function. This elastic reset design avoids the operation of manually pulling out each locking block 13, simplifies the unlocking process, and improves work efficiency.

[0033] A positioning hole 21 is provided on the inner side of the fixed sleeve 9, and a positioning block 22 is fixedly provided on the top of the insertion rod 10. Both the positioning hole 21 and the positioning block 22 are polygonal. The polygonal positioning hole 21 and the positioning block 22 form an anti-rotation limiting mechanism. When the insertion rod 10 is inserted into the fixed sleeve 9, the positioning block 22 is embedded in the positioning hole 21. Due to the polygonal shape, the insertion rod 10 cannot rotate freely in the fixed sleeve 9, which ensures the angle fixation and stability of the locking mechanism and enhances the ability of the entire support system to resist torsional forces.

[0034] Each of the multiple card slots 14 has a clearance groove 23 at its bottom, and each of the multiple card blocks 13 has a rounded corner at its top. The clearance groove 23 provides buffer and guiding space for the card blocks 13 to enter and exit the card slots 14, while the rounded corner design at the top of the card blocks 13 allows them to slide in or out of the card slots 14 more smoothly. This structure reduces the friction and impact between the card blocks 13 and the card slots 14, avoids component wear and jamming, and extends the service life of the device.

[0035] The top of the positioning block 22 is fixedly provided with a handle 24. The handle 24 has rounded corners on the outside. The handle 24 serves as an operating handle, which makes it easy for the operator to grip and apply force, making the insertion and removal of the insertion rod 10 more effortless and accurate. The rounded corner design on the outside of the handle 24 avoids possible injury to the operator's hands during operation, and also reduces the collision damage that the handle 24 may cause to surrounding parts, thus improving the safety and comfort of the equipment.

[0036] The bottom surface of the support frame 1 is equipped with rotating rods 25, which are arranged in multiple sets and have transfer wheels 26 fixed at both ends. The top surface of the support frame 1 is fixed with a placement plate 27, and the outside of the support frame 1 is fixed with a motor 28. The output end of the motor 28 is fixedly connected to one end of the rotating rod 25. The motor 28 serves as a power source to drive the rotating rod 25 to rotate. The rotating rod 25 drives the transfer wheels 26 at both ends to realize the movement function of the entire device. The design of multiple sets of rotating rods 25 and transfer wheels 26 enhances the load-bearing capacity and operational stability of the device. The placement plate 27 provides a stable bearing platform for the electromechanical equipment to be transferred. The entire transmission system forms a power chain of motor 28-rotating rod 25-transfer wheel 26, realizing the efficient transfer of electromechanical equipment.

[0037] In this embodiment, during use, the electromechanical equipment is placed on the support plate 27. The motor 28 drives the rotating rod 25 to rotate, and the rotating rod 25 drives multiple sets of transfer wheels 26 to rotate to transport the electromechanical equipment. When support is needed for the support plate 27, the adjusting plate 3 is slid out of the fixed frame 2 to a suitable length, and the adjusting hole 4 is aligned with the insertion hole 7 and the fixing sleeve 9. The fixing bolt 8 is inserted into the fixing sleeve 9 and the adjusting hole 4, and the insertion rod 10 is inserted into the fixing sleeve 9. The positioning block 22 is used for positioning and insertion with the positioning hole 21. Then, the threaded sleeve 18 is rotated clockwise to engage with the outer wall of the fixed sleeve 9. The thrust bearing 19 pulls the sliding sleeve 16 to slide along multiple sets of sliding grooves 15, while the push ring 17 pushes multiple sets of locking blocks 13. This causes the multiple sets of locking blocks 13 to slide along the inclined groove 11 through the inclined block 12 and stretch the return spring 20. This causes the multiple sets of locking blocks 13 to engage in the slot 14 through the relief groove 23, thus fixing the adjusting plate 3. Then, the base plate 6 is pushed out by the telescopic end of the hydraulic cylinder 5 and supported on the bottom surface, thereby supporting the entire equipment.

[0038] More specifically, when it is necessary to unlock the adjustment plate 3, the threaded sleeve 18 is rotated counterclockwise to push the sliding sleeve 16 to slide along the sliding groove 15 through the thrust bearing 19, and drive the push ring 17 to release the contact with the multiple sets of locking blocks 13. The multiple sets of reset springs 20 pull the multiple sets of locking blocks 13 out of the locking groove 14 along the relief groove 23, releasing the locking of the insertion rod 10. Then, the handle 24 is pulled to drive the insertion rod 10 and the fixing bolt 8 to be pulled out of the adjustment hole 4 and the fixing sleeve 9 respectively, thus completing the unlocking of the adjustment plate 3.

[0039] In summary, during use or operation of the overall equipment: When in use, the electromechanical equipment is moved and supported on the placement plate 27. The motor 28 drives the rotating rod 25 to rotate, which in turn drives multiple sets of transfer wheels 26 to transport the electromechanical equipment. When support for the placement plate 27 is required, the adjusting plate 3 is slid out of the fixed frame 2 to a suitable length, and the adjusting hole 4 is aligned with the insertion hole 7 and the fixing sleeve 9. The fixing bolt 8 is inserted into the fixing sleeve 9 and the adjusting hole 4, and the insertion rod 10 is inserted into the fixing sleeve 9. The positioning block 22 is aligned with the positioning hole 21. Positioning and insertion are performed, and then the threaded sleeve 18 is rotated clockwise to engage with the outer wall of the fixed sleeve 9. The sliding sleeve 16 is pulled along multiple sets of sliding grooves 15 by the thrust bearing 19, while the push ring 17 pushes multiple sets of locking blocks 13. The multiple sets of locking blocks 13 slide along the inclined groove 11 through the inclined block 12 and stretch the return spring 20. The multiple sets of locking blocks 13 are engaged in the slot 14 through the relief groove 23, thus fixing the adjusting plate 3. Then, the base plate 6 is pushed out by the extension end of the hydraulic cylinder 5 and supported on the bottom surface, thereby supporting the entire equipment.

[0040] When it is necessary to unlock the adjusting plate 3, rotate the threaded sleeve 18 counterclockwise to push the sliding sleeve 16 along the sliding groove 15 through the thrust bearing 19, and drive the push ring 17 to release the contact with the multiple sets of locking blocks 13. The multiple sets of reset springs 20 pull the multiple sets of locking blocks 13 out of the locking groove 14 along the relief groove 23, releasing the locking of the insertion rod 10. Then pull the handle 24 to drive the insertion rod 10 and the fixing bolt 8 to be pulled out of the adjusting hole 4 and the fixing sleeve 9 respectively, thus completing the unlocking of the adjusting plate 3.

[0041] Of all the solutions mentioned above, those involving connections between two components can be selected based on the actual situation, such as welding, bolt and nut connection, bolt or screw connection, or other well-known connection methods. These will not be elaborated on here. For all the fixed connections mentioned above, welding is the preferred option.

[0042] In all the solutions mentioned above, the operation of electrical components, unless otherwise specified, is controlled by a controller. Since the devices matched with the controllers are common devices, their control principles and wiring connections are existing, well-known, and mature technologies, and their specific circuit structures will not be described in detail here. The specific models and specifications of the electrical components involved in this solution need to be selected and determined according to the actual specifications of the device. The specific selection and calculation methods adopt existing technologies in this field, and therefore will not be described in detail.

[0043] Of all the solutions mentioned above, those involving motors can be combined with reducers if necessary. The connection structure and working principle between the motor and the reducer are existing known technologies and will not be described in detail in this utility model.

[0044] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A transfer device for electromechanical equipment used in electromechanical engineering, comprising a support frame (1), characterized in that: The support frame (1) is provided with support mechanisms on both sides. The support mechanism includes a fixed frame (2) and an adjusting plate (3). The fixed frame (2) is fixed to the outer wall of the placement plate (27). The adjusting plate (3) is provided with multiple sets of sliding rods on both sides of the fixed frame (2). Each set of adjusting rods is provided with an adjusting hole (4). Each set of adjusting plates (3) is provided with a hydraulic cylinder (5) at the top. Each set of hydraulic cylinders (5) is provided with a base plate (6) at the bottom. Each fixed frame (2) is provided with a socket (7) at both ends. Each set of sockets (7) is provided with a fixing bolt (8). The fixing bolt (8) is provided with a top. A fixing mechanism is provided, which includes a fixing sleeve (9) and a plug rod (10). The fixing sleeve (9) is fixed on the top surface of the fixing frame (2), and the plug rod (10) is fixed on the top of the fixing bolt (8) and inserted into the fixing sleeve (9). The fixing sleeve (9) has an inclined groove (11) on its inner side. The inclined groove (11) is provided with multiple sets, and each set has a sliding inclined block (12) on its inner side. Each set of inclined blocks (12) has a fixed locking block (13) on its inner side. The plug rod (10) has a locking groove (14) on its outer wall. The locking groove (14) is provided with multiple sets and abuts against each of the multiple sets of locking blocks (13).

2. The electromechanical equipment transfer device for electromechanical engineering according to claim 1, characterized in that: The outer wall of the fixed sleeve (9) is provided with a sliding groove (15), the sliding groove (15) is provided with multiple sets and the outer side is provided with a sliding sleeve (16), the inner side of the sliding sleeve (16) is fixed with a push ring (17), and the push ring (17) abuts against the bottom surface of multiple sets of locking blocks (13).

3. The electromechanical equipment transfer device for electromechanical engineering according to claim 2, characterized in that: The outer wall of the fixed sleeve (9) is threaded with a threaded sleeve (18), and a thrust bearing (19) is connected between the bottom surface of the threaded sleeve (18) and the sliding sleeve (16).

4. The electromechanical equipment transfer device for electromechanical engineering according to claim 3, characterized in that: multiple sets A reset spring (20) is provided between the bottom surface of the card block (13) and the inner wall of the fixing sleeve (9).

5. A transfer device for electromechanical equipment in electromechanical engineering according to claim 4, characterized in that: The inner side of the fixed sleeve (9) is provided with a positioning hole (21), and the top of the insertion rod (10) is fixed with a positioning block (22). Both the positioning hole (21) and the positioning block (22) are polygonal.

6. The electromechanical equipment transfer device for electromechanical engineering according to claim 5, characterized in that: Each of the multiple card slots (14) has a clearance groove (23) at the bottom, and each of the multiple card blocks (13) has a rounded corner at the top.

7. A transfer device for electromechanical equipment in electromechanical engineering according to claim 6, characterized in that: The top of the positioning block (22) is fixedly provided with a handle block (24), and the outer side of the handle block (24) is provided with rounded corners.

8. A transfer device for electromechanical equipment in electromechanical engineering according to claim 7, characterized in that: The bottom surface of the support frame (1) is provided with a rotating rod (25), the rotating rod (25) is provided with multiple sets and both ends are fixed with transfer wheels (26), the top surface of the support frame (1) is fixed with a placement plate (27), the outside of the support frame (1) is fixed with a motor (28), and the output end of the motor (28) is fixedly connected to one end of the rotating rod (25).