Temporary fixing and supporting structure for electromechanical pipeline
By designing a temporary fixed support structure for electromechanical pipelines that includes a lifting component and a clamping component, the problems of traditional support structures such as difficulty in accurately adjusting height, poor stability and low adaptability are solved. Precise adjustment of pipeline height and improved construction stability are achieved, thereby improving construction efficiency and safety.
Patent Information
- Application Number
- CN202520161562.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2035-01-23
AI Technical Summary
Traditional temporary support structures for electromechanical pipelines have problems such as difficulty in precise height adjustment, poor stability, low adaptability, and cumbersome operation, resulting in low construction efficiency and increased costs.
A temporary fixed support structure for electromechanical pipelines is designed, which includes a lifting assembly and a clamping assembly. The lifting and lowering of the lifting cylinder is precisely controlled by a transmission system consisting of a drive motor, a drive shaft, a drive gear and a toothed plate. Combined with the threaded holes and supporting threaded columns on the base, it achieves stable fixation and can adapt to pipelines of different diameters through the clamping assembly.
It achieves precise adjustment of pipeline height, improves construction stability and adaptability, simplifies operating procedures, improves construction efficiency and safety, and reduces construction costs.
Smart Images

Figure CN223318611U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of electromechanical pipeline installation, in particular to a temporary fixing support structure for electromechanical pipelines. Background Art
[0002] In the field of electromechanical engineering construction, the installation and laying of pipelines are extremely critical links. Electromechanical pipelines are of various types and specifications. During the construction process, temporary fixed supports are often required to ensure the smooth progress of subsequent construction processes.
[0003] Traditional temporary support methods for electromechanical pipelines have numerous drawbacks. For one thing, many temporary support structures employ simple wooden wedges, bricks, or ordinary tripods with ropes. These structures are difficult to precisely adjust in height, making them unsuitable for pipeline projects requiring precise installation heights. Furthermore, they are unstable and easily displaced by minor collisions or vibrations during construction, compromising pipeline installation accuracy and safety. Rope-binding methods are not only cumbersome to operate but can also cause pipeline slippage due to rope wear and loosening. Furthermore, conventional tripods lack flexible lifting capabilities and are incompatible with pipelines of varying diameters. Each change in pipeline specification may necessitate remaking or reassembling support components, significantly increasing construction time and cost. Therefore, a temporary fixed support structure for electromechanical pipelines was proposed. Utility Model Content
[0004] The purpose of the present invention is to provide a temporary fixing support structure for electromechanical pipelines to solve one of the problems raised in the above background technology.
[0005] The utility model is implemented by the following technical solutions: a temporary fixed support structure for electromechanical pipelines, including a lifting assembly, wherein the lifting assembly includes a base, a plug-in cylinder, a support cylinder, a lifting cylinder, a drive shaft, a slide groove, a drive gear, a tooth plate, a drive motor and a clamping assembly;
[0006] The cam is secured to the upper and lower surfaces of the drive shaft and is adapted to engage with the gear train of the drive shaft so as to engage with the gear train of the drive shaft and engage with the gear train of the drive shaft.
[0007] As a further preferred embodiment of the present technical solution: the clamping assembly includes a connecting block, a connecting hole, a connecting column, a hexagonal socket, a hexagonal column, a lower semicircular clamping arm, a pin shaft, an upper semicircular clamping arm and a lock buckle;
[0008] A connecting block is fixedly connected to the top of the lifting cylinder, a connecting hole is provided at the center of the upper surface of the connecting block, a connecting column is rotatably connected to the inner side wall of the connecting hole, a hexagonal socket is provided at the center of the upper surface of the connecting column, a hexagonal column is slidably connected to the inner side wall of the hexagonal socket, a lower semicircular clamping arm is welded to the top of the hexagonal column, one end of the lower semicircular clamping arm is rotatably connected to the upper semicircular clamping arm via a pin shaft, and the other end of the lower semicircular clamping arm is fixedly connected to the end of the upper semicircular clamping arm away from the pin shaft via a lock.
[0009] As a further preferred embodiment of the present technical solution: a screw hole is provided on an upper portion of one side of the connecting column, an inner side wall of the screw hole is threadedly connected to a limit screw, and an end of the limit screw away from the hexagonal prism is fixedly connected to a knob.
[0010] As a further preferred embodiment of the present technical solution: threaded holes are provided at the four corners of the upper surface of the base, the inner side walls of the threaded holes are threadedly connected to support threaded columns, the lower part of the outer side walls of the support threaded columns are rotatably connected to a support plate, and the bottom of the support plate is provided with multiple anti-slip teeth.
[0011] As a further preferred embodiment of the present technical solution: a controller is fixedly connected to a lower portion of one side of the support cylinder close to the driving motor, and an input end of the driving motor is electrically connected to an output end of the controller.
[0012] As a further preferred embodiment of the present technical solution: an adjusting knob is fixedly connected to the top of the supporting threaded column.
[0013] As a further preferred embodiment of the present technical solution: the inner side walls of the lower semicircular clamping arm and the upper semicircular clamping arm are both fixedly connected with anti-slip pads.
[0014] As a further preferred embodiment of the present technical solution: a touch screen is provided on a side of the controller away from the support tube.
[0015] Advantages of this utility model:
[0016] 1. This utility model can precisely control the lifting of the lifting cylinder through a transmission system consisting of a drive motor, drive shaft, drive gear and toothed plate. Construction workers only need to input the required height value on the touch screen, and the controller will drive the motor to operate, causing the pipeline to smoothly rise or fall to the specified height. This meets the different requirements for temporary fixed height of pipelines in various construction scenarios. This is a great improvement over the traditional wooden wedge and brick support method, which is difficult to accurately adjust the height.
[0017] 2. This utility model uses threaded holes on the base, coupled with supporting threaded columns and a support plate with anti-slip teeth on the bottom. By rotating the adjustment knob, the support plate can be closely fitted to the ground, enhancing friction with the ground and firmly fixing the entire device. It is not easily displaced by collisions and vibrations during construction, ensuring stability during pipe installation. This is far superior to the traditional simple tripod with ropes that are easily loosened.
[0018] 3. The utility model can slide and adjust the hexagonal prism in the clamping assembly in the hexagonal socket and lock it with a limit screw. In addition, the lower semicircular clamping arm and the upper semicircular clamping arm can be replaced to adapt to different pipe diameters. It can easily cope with electromechanical pipelines of various diameters, solving the problem that conventional tripods are difficult to adapt to different pipe diameters. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0020] Figure 1 This is a structural diagram of the utility model from one perspective;
[0021] Figure 2 This is a structural schematic diagram from another perspective of the present invention;
[0022] Figure 3 This is a schematic diagram of the overall cutaway structure of the present utility model;
[0023] Figure 4 This is a schematic diagram of the connecting column and hexagonal prism structure of the utility model.
[0024] In the figure: 1. Lifting assembly; 11. Base; 12. Connecting tube; 13. Support tube; 14. Lifting tube; 15. Drive shaft; 16. Slide groove; 17. Drive gear; 18. Tooth plate; 19. Drive motor; 2. Clamping assembly; 20. Connecting block; 21. Connecting hole; 22. Connecting column; 23. Hexagonal socket; 24. Hexagonal column; 25. Lower semicircular clamping arm; 26. Pin; 27. Upper semicircular clamping arm; 28. Lock; 29. Screw hole; 30. Limit screw; 31. Knob; 32. Threaded hole; 33. Support threaded column; 34. Support plate; 35. Anti-slip teeth; 36. Controller; 37. Adjustment knob; 38. Anti-slip pad; 39. Touch screen. DETAILED DESCRIPTION
[0025] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0026] Example
[0027] See also Figures 1-4 The utility model provides a technical solution: a temporary fixed support structure for electromechanical pipelines, comprising a lifting assembly 1, wherein the lifting assembly 1 comprises a base 11, a plug-in cylinder 12, a support cylinder 13, a lifting cylinder 14, a drive shaft 15, a slide 16, a drive gear 17, a tooth plate 18, a drive motor 19 and a clamping assembly 2;
[0028] A plug-in cylinder 12 is welded to the outside of the center of the upper surface of the base 11, and a support cylinder 13 is slidably connected to the inner side wall of the plug-in cylinder 12, and a lifting cylinder 14 is slidably connected to the inner side wall of the support cylinder 13. A driving shaft 15 passes through the upper part of one side of the support cylinder 13, and sliding grooves 16 are provided on both sides of the inner side wall of the lifting cylinder 14. The middle part of the outer side wall of the driving shaft 15 is slidably connected to the inner side walls of the two sliding grooves 16 respectively, and the middle part of the outer side wall of the driving shaft 15 is fixedly connected to a driving gear 17. A tooth plate 18 is provided on the inner rear wall of the lifting cylinder 14. The outer wall of the driving gear 17 is meshedly connected to the front surface of the tooth plate 18, and the upper part of one side of the support cylinder 13 is fixedly connected to the outer side of the driving shaft 15, and one end of the driving shaft 15 is fixedly connected to the output end of the driving motor 19. The support cylinder 13 is limited by the plug-in cylinder 12, thereby increasing the stability of the installation of the support cylinder 13. The top of the lifting cylinder 14 is fixedly connected with the clamping assembly 2, and the lifting cylinder 14 is slid inside the support cylinder 13 to limit the lifting cylinder 14, thereby increasing the stability of the up and down movement of the lifting cylinder 14.
[0029] In this embodiment, specifically: the clamping assembly 2 includes a connecting block 20, a connecting hole 21, a connecting column 22, a hexagonal socket 23, a hexagonal column 24, a lower semicircular clamping arm 25, a pin 26, an upper semicircular clamping arm 27 and a lock 28;
[0030] The top of the lifting cylinder 14 is fixedly connected to a connecting block 20, and a connecting hole 21 is opened at the center of the upper surface of the connecting block 20, and the inner side wall of the connecting hole 21 is rotatably connected to a connecting column 22, and a hexagonal plug hole 23 is opened at the center of the upper surface of the connecting column 22, and the inner side wall of the hexagonal plug hole 23 is slidably connected to a hexagonal column 24, and a lower semicircular clamping arm 25 is welded on the top of the hexagonal column 24, one end of the lower semicircular clamping arm 25 is rotatably connected to the upper semicircular clamping arm 27 through a pin shaft 26, and the other end of the lower semicircular clamping arm 25 is fixedly connected to the end of the upper semicircular clamping arm 27 away from the pin shaft 26 by a lock buckle 28, and the connecting column 22 is rotated inside the connecting hole 21, so as to facilitate the adjustment of the angle of the lower semicircular clamping arm 25 and the upper semicircular clamping arm 27, and the lock buckle 28 is convenient for locking and fixing the lower semicircular clamping arm 25 and the upper semicircular clamping arm 27, so as to facilitate the clamping and fixing of the electromechanical pipeline.
[0031] In this embodiment, specifically: a screw hole 29 is opened on the upper part of one side of the connecting column 22, and the inner wall of the screw hole 29 is threadedly connected to a limiting screw 30, and the end of the limiting screw 30 away from the hexagonal prism 24 is fixedly connected with a knob 31, which facilitates the limiting fixation of the hexagonal prism 24 through the limiting screw 30.
[0032] In this embodiment, specifically: threaded holes 32 are opened at the four corners of the upper surface of the base 11, the inner side walls of the threaded holes 32 are threadedly connected to support threaded columns 33, and the lower part of the outer side wall of the support threaded columns 33 is rotatably connected to a support plate 34, and the bottom of the support plate 34 is provided with multiple anti-slip teeth 35. The multiple anti-slip teeth 35 at the bottom of the support plate 34 are embedded in the ground, and the friction and grip of the multiple anti-slip teeth 35 are relied on to ensure that the base 11 is firmly fixed on the working plane.
[0033] In this embodiment, specifically: a controller 36 is fixedly connected to the lower part of the driving motor 19 on one side of the support cylinder 13, and the input end of the driving motor 19 is electrically connected to the output end of the controller 36, so that the start and stop and operating parameters of the driving motor 19 can be easily controlled through the controller 36.
[0034] In this embodiment, specifically: an adjusting knob 37 is fixedly connected to the top of the supporting threaded column 33 , and the adjusting knob 37 is used to facilitate the rotation of the supporting threaded column 33 .
[0035] In this embodiment, specifically: the inner walls of the lower semicircular clamping arm 25 and the upper semicircular clamping arm 27 are fixedly connected with anti-slip pads 38. The anti-slip properties of the anti-slip pads 38 in the lower semicircular clamping arm 25 and the upper semicircular clamping arm 27 not only prevent the pipe surface from being scratched, but also increase the friction coefficient.
[0036] In this embodiment, specifically: a touch screen 39 is provided on the side of the controller 36 away from the support tube 13, and the touch screen 39 is used to facilitate input of pipeline lifting height parameters and the like.
[0037] Working principle or structural principle, when in use, first, carry the entire device to the construction site where the electromechanical pipeline needs to be temporarily fixed and supported, and place the base 11 stably on the predetermined working plane. Since the flatness of the ground on site is different, observe the status of the base 11 at this time, manually rotate the adjustment knob 37 located on the top of the support thread column 33, and the adjustment knob 37 drives the support thread column 33 to rotate in the threaded holes 32 at the four corners of the upper surface of the base 11. As the support thread column 33 rotates, the support plate 34 connected to the lower part of its outer wall will gradually descend until it touches the ground. The multiple anti-slip teeth 35 at the bottom of the support plate 34 are embedded in the ground, relying on friction and grip to allow the base to 11 is firmly fixed on the working plane to complete the initial stabilization and horizontal adjustment of the entire device. Before fixing the pipeline, the clamping assembly 2 needs to be adapted and adjusted according to the diameter of the electromechanical pipeline to be fixed. First, turn the knob 31 counterclockwise to unscrew the limit screw 30 from the screw hole 29 of the connecting column 22, and release the limit on the hexagonal column 24. Then, pull out the originally connected hexagonal column 24 from the hexagonal socket 23, replace it with the hexagonal column 24 equipped with the lower semicircular clamping arm 25 and the upper semicircular clamping arm 27 suitable for the pipe diameter, and then insert the new hexagonal column 24 into the hexagonal socket 23. After that, turn the knob 31 clockwise to drive the limit screw 30 into the screw hole 29 until it is tightened. Make sure the hexagonal prism 24 is firmly fixed to avoid unnecessary displacement later. After the preparation work is ready, open the lock 28, open the upper semicircular clamping arm 27, and carefully place the electromechanical pipeline on the lower semicircular clamping arm 25. Because the inner walls of the lower semicircular clamping arm 25 and the upper semicircular clamping arm 27 are paved with anti-slip pads 38, they can prevent the pipeline surface from being scratched and increase the friction coefficient. Then, close the upper semicircular clamping arm 27 to make it fit tightly with the lower semicircular clamping arm 25, and buckle the lock 28 again. At this time, the pipeline is firmly clamped in the encircling structure formed by the semicircular clamping arm. According to the construction requirements, the construction personnel input the desired position on the touch screen 39 on the side of the controller 36. The touch screen 39 transmits the command to the controller 36, which then sends a start signal to the drive motor 19 and adjusts its rotation direction. The output end of the drive motor 19 drives the drive shaft 15 to rotate, and the drive gear 17 in the middle of the drive shaft 15 rotates synchronously. Since the drive gear 17 is engaged with the toothed plate 18 on the inner rear wall of the lifting cylinder 14, under the action of the gear transmission, the lifting cylinder 14 overcomes its own gravity and begins to rise or fall steadily along the inner wall of the support cylinder 13, eventually driving the pipe clamped at the top to move accurately to the specified height, so as to adapt to the diverse needs of temporary fixed height of pipes in different construction scenarios.
[0038] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A temporary fixed support structure for electromechanical pipelines, characterized in that: The lifting assembly (1) comprises a base (11), an inserting cylinder (12), a supporting cylinder (13), a lifting cylinder (14), a driving shaft (15), a sliding groove (16), a driving gear (17), a tooth plate (18), a driving motor (19) and a clamping assembly (2); A plug-in cylinder (12) is welded to the outer side of the center of the upper surface of the base (11), the inner side wall of the plug-in cylinder (12) is slidably connected to a support cylinder (13), the inner side wall of the support cylinder (13) is slidably connected to a lifting cylinder (14), a driving shaft (15) passes through the upper part of one side of the support cylinder (13), and both sides of the inner side wall of the lifting cylinder (14) are provided with sliding grooves (16), and both sides of the middle of the outer side wall of the driving shaft (15) are slidably connected to the inner side walls of the two sliding grooves (16), and the driving shaft (15) is connected to the inner side walls of the two sliding grooves (16). A driving gear (17) is fixedly connected to the middle of the outer wall of the shaft (15), a tooth plate (18) is provided on the inner rear wall of the lifting cylinder (14), and the outer wall of the driving gear (17) is meshedly connected to the front surface of the tooth plate (18). A driving motor (19) is fixedly connected to the outer side of the driving shaft (15) at the upper part of one side of the supporting cylinder (13), one end of the driving shaft (15) is fixedly connected to the output end of the driving motor (19), and a clamping assembly (2) is fixedly connected to the top of the lifting cylinder (14).
2. A temporary fixed support structure for electromechanical pipelines according to claim 1, characterized in that: The clamping assembly (2) comprises a connecting block (20), a connecting hole (21), a connecting column (22), a hexagonal socket (23), a hexagonal column (24), a lower semicircular clamping arm (25), a pin (26), an upper semicircular clamping arm (27) and a lock (28); The top of the lifting cylinder (14) is fixedly connected to a connecting block (20), a connecting hole (21) is provided at the center of the upper surface of the connecting block (20), the inner side wall of the connecting hole (21) is rotatably connected to a connecting column (22), a hexagonal socket (23) is provided at the center of the upper surface of the connecting column (22), the inner side wall of the hexagonal socket (23) is slidably connected to a hexagonal column (24), a lower semicircular clamping arm (25) is welded to the top of the hexagonal column (24), one end of the lower semicircular clamping arm (25) is rotatably connected to an upper semicircular clamping arm (27) through a pin shaft (26), and the other end of the lower semicircular clamping arm (25) is fixedly connected to an end of the upper semicircular clamping arm (27) away from the pin shaft (26) through a lock buckle (28).
3. A temporary fixing support structure for electromechanical pipelines according to claim 2, characterized in that: A screw hole (29) is provided on an upper portion of one side of the connecting column (22), and a limit screw (30) is threadedly connected to the inner wall of the screw hole (29), and a knob (31) is fixedly connected to the end of the limit screw (30) away from the hexagonal prism (24).
4. The temporary fixing support structure for electromechanical pipelines according to claim 1, characterized in that: The four corners of the upper surface of the base (11) are each provided with a threaded hole (32), the inner side wall of the threaded hole (32) is threadedly connected to a support threaded column (33), the lower portion of the outer side wall of the support threaded column (33) is rotatably connected to a support plate (34), and the bottom of the support plate (34) is provided with a plurality of anti-slip teeth (35).
5. The temporary fixing support structure for electromechanical pipelines according to claim 1, characterized in that: A controller (36) is fixedly connected to a lower portion of one side of the support cylinder (13) near the driving motor (19), and an input end of the driving motor (19) is electrically connected to an output end of the controller (36).
6. A temporary fixing support structure for electromechanical pipelines according to claim 4, characterized in that: An adjusting knob (37) is fixedly connected to the top of the supporting threaded column (33).
7. The temporary fixing support structure for electromechanical pipelines according to claim 2, characterized in that: The inner side walls of the lower semicircular clamping arm (25) and the upper semicircular clamping arm (27) are both fixedly connected with anti-slip pads (38).
8. The temporary fixing support structure for electromechanical pipelines according to claim 5, characterized in that: A touch screen (39) is provided on one side of the controller (36) away from the support cylinder (13).