Adjustable comprehensive support for sleeve interval pipeline

Through the design of the sleeve interval adjustable integrated bracket, the adjustment of the curved steel plate and universal base, combined with the P-type pipe clamp and hydraulic lifter, the problem of the inability to adjust the embedded bracket is solved, and the rapid installation and reliable fixation of the fire-fighting pipeline is achieved.

CN120506536APending Publication Date: 2025-08-19NANNING RAIL TRANSIT CONSTR CO LTD +1
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Patent Information

Application Number
CN202510915447.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-03
Publication Date
2025-08-19

AI Technical Summary

Technical Problem

In the prior art, the embedded pipe bracket cannot be adjusted, resulting in waste of materials and time during installation, and the pipes are susceptible to external forces in the tunnel.

Method used

The sleeve interval adjustable integrated bracket is adopted, and the universal base and support arm are adjusted on the curved steel plate, combined with the P-type pipe clamp to achieve rapid adjustable installation of the fire-fighting pipe, and the fixing reliability is improved through hydraulic lifters and buffer components.

Benefits of technology

It realizes rapid installation of fire-fighting pipes, saves material and labor costs, and improves the fixed reliability and vibration resistance of the pipes in the tunnel.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a sleeve interval pipeline adjustable comprehensive support, and relates to the technical field of pipeline adjustable comprehensive supports, the sleeve interval adjustable comprehensive support comprises an arc-shaped steel plate, three universal bases are installed on the arc-shaped steel plate, and the three universal bases are locked and fixed through bolts penetrating through installation holes; toothed arc holes are formed in the three universal bases, supporting arms are rotationally installed on the three universal bases, square holes are formed in one point ends of the supporting arms, square clamping shafts are inserted into the toothed arc holes in a penetrating mode, and P-type pipe clamps are installed on the multiple supporting arms. The fire-fighting pipeline can be adjusted during installation by adjusting the installation position of the universal base on the arc-shaped steel plate and rotating the supporting arm on the universal base, after angle adjustment is completed, the supporting arm and the universal base are fixed through the square clamping shaft, and then the fire-fighting pipeline is fixed to the supporting arm through the P-shaped pipe clamp.
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Description

Technical Field

[0001] The invention relates to the technical field of adjustable pipeline integrated supports, in particular to a sleeve interval pipeline adjustable integrated support. Background Art

[0002] With the development of people's lives, people's daily movements are becoming more and more frequent, and the demand for transportation is increasing. However, it is often necessary to dig tunnels to pass through. Fire water pipes and cables usually need to be installed in the tunnels. At this time, a large number of pipe supports are needed to support the pipes to prevent the pipes from sinking, deformation or damage by external forces.

[0003] When pre-buried pipe supports are currently used for installation, small errors in measurement are magnified by the length of the pipe. Since the pipe supports cannot be adjusted, more materials and installation time are consumed when installing the pipe. Summary of the Invention

[0004] The purpose of the present invention is to provide an adjustable integrated support for sleeve interval pipelines to solve the problems raised in the prior art.

[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: the sleeve interval adjustable integrated bracket includes an arc-shaped steel plate, a plurality of mounting holes are provided on the arc-shaped steel plate, three universal bases are installed on the arc-shaped steel plate, the three universal bases are locked and fixed by bolts passing through the mounting holes, the three universal bases are provided with toothed arc holes, and the three universal bases are rotatably installed with support arms, a square hole is provided at one end of the support arm close to the toothed arc hole, a square card shaft is inserted in the toothed arc hole, the square card shaft passes through the square hole, and multiple support arms are installed Equipped with a P-type pipe clamp, a fire-fighting pipe or cable is placed on the support arm and fixed by the P-type pipe clamp. When the fire-fighting pipe is installed, the height of the support arm is adjusted by adjusting the installation position of the universal base on the arc-shaped steel plate, and then the support arm is rotated on the universal base to achieve adjustment within a certain angle range when installing the fire-fighting pipe. When the angle adjustment is completed, the support arm and the universal base are fixed by the square clamp shaft, and then the fire-fighting pipe is fixed to the support arm by the P-type pipe clamp, thereby realizing fast and adjustable installation of the fire-fighting pipe, thereby achieving the purpose of saving material and labor costs.

[0006] As an optimal technical solution, a supporting steel plate is installed at the bottom of the support arm where the fire-fighting pipe is installed, and a rotating connecting piece is installed at the end of the support steel plate away from the support arm. The rotating connecting piece is connected to the mounting hole on the arc-shaped steel plate by bolts.

[0007] As an optimal technical solution, 5mm gaskets are installed between the fire protection pipe and the support arm and P-type pipe clamp.

[0008] As a preferred technical solution, a support platform is installed on one side of the arc-shaped steel plate, and an auxiliary clamping component, a detection component and a buffer component are provided on the support platform;

[0009] The detection component controls the output clamping force of the auxiliary clamping component according to the detection result, and the buffer component provides a stable detection environment for the detection component.

[0010] As a preferred technical solution, the auxiliary clamping assembly includes an upper clamping body, a lower clamping body, a hydraulic lifter and an arc-shaped clamping block;

[0011] A lower clamping body is installed on the top of the support platform, and an upper clamping body is installed on the lower clamping body. Hydraulic lifters are installed in the upper and lower clamping bodies. The two hydraulic lifters are symmetrical, and arc-shaped clamping blocks are installed on the hydraulic lifters. When the vibration source causes the fire-fighting pipe to vibrate, the hydraulic lifters in the upper and lower clamping bodies are driven, and the hydraulic lifters drive the arc-shaped clamping blocks to apply radial force to clamp the pipe, thereby reducing the rigid impact on the P-type pipe clamp, and thus achieving the reliability of the fire-fighting pipe fixation.

[0012] As a preferred technical solution, the detection assembly includes a box body, a concave slider, a slot, a push rod, a sliding sleeve, a contact block, a sensor, a contact, a sleeve, a rotating shaft, an upper dial, an upper rotating sleeve, a left hinge, a lower dial, a lower rotating sleeve and a right hinge;

[0013] The top of the upper rotary sleeve is lower than the bottom of the concave slider, and the top of the lower rotary sleeve is higher than the top of the concave slider. The top of the rotating shaft is provided with an upper dial, and the top of the upper rotating sleeve is provided with a lower dial. The bottom of the upper dial and the top of the lower dial are eccentrically provided with a driving rod, and the two driving rods are respectively stuck in two card slots, and the sensor is electrically connected to the hydraulic lifter. When a car passes in the tunnel, the faster the car speed, the greater the wind pressure and vibration generated. When the wind pressure generated by the car speed drives the left hinge and the right hinge to rotate toward each other, the left hinge and the right hinge are combined to drive the upper dial on the rotating shaft and the lower dial on the top of the upper rotating sleeve to rotate, thereby causing the driving rods on the upper dial and the lower dial to rotate in a circumferential direction, thereby pushing the concave slider to slide in the box body, thereby causing the contact block on the push rod to slide in the sliding sleeve. When the contact block touches the contact on the sensor and causes the contact to drop, the thrust of the hydraulic lifter is controlled by the amount of the contact being pressed, thereby realizing dynamic control of the clamping force of the arc clamp on the fire pipe.

[0014] As a preferred technical solution, the buffer assembly includes a connecting ring, a buffer box, a bar groove, a fixing plate, a pulley, a connecting rope, a guide column, a first buffer block, a second buffer block and a buffer spring;

[0015] The support platform is provided with a buffer box, the top of the buffer box is provided with a connecting ring, one side of the buffer box is provided with a strip groove, and a fixing plate is installed on the side wall of the buffer box provided with the strip groove, and a pulley is rotatably installed on the fixing plate, and a connecting rope is sleeved on the pulley, and a guide column is installed in the buffer box, and a first buffer block and a second buffer block are slidably installed on the guide column, and the first buffer block is connected to the top of the buffer box by a buffer spring, and the first buffer block and the second buffer block are connected by a connecting rope. When the fire pipe vibrates, the vibration is transmitted to the buffer box through the connecting ring, causing the first buffer block in the buffer box to slide downward, and initial buffering is performed by the buffer spring between the first buffer block and the buffer box, and then the first buffer block drives the second buffer block to slide in the buffer box through the connecting rope sleeved on the pulley, completing secondary buffering, thereby reducing the failure of the fixation of the fire pipe due to vibration.

[0016] As an optimal technical solution, a support sleeve is installed on the arc steel plate, and the support sleeve is slidably installed in the support column, and a plurality of tooth grooves are provided on the support column. The top of the support column is hinged to the support platform, and a square groove is provided on the support sleeve. A bracket is installed directly above the square groove. A pull rod is slidably installed on the bracket, and the end of the pull rod passes through the square groove, and a limit plate is installed at the end of the pull rod, and the limit plate is meshed with the tooth groove. A reset spring is provided on the pull rod, and the two ends of the reset spring are respectively connected to the limit plate and the bracket. When the support arm rotates, the limit plate on the pull rod is disengaged from the tooth groove by pulling out the pull rod on the bracket. At this time, the support platform hinged to the top of the support column rotates synchronously with the support arm through the support column sliding in the support sleeve. When the adjustment is completed, the pull rod is released and the limit plate is reset under the elastic force of the reset spring. At this time, the support column and the support sleeve are fixed.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] 1. When installing the fire protection pipe, the pipe installation position is initially adjusted by adjusting the installation position of the universal base on the arc-shaped steel plate. The fire protection pipe can be adjusted within a certain angle range when installed by rotating the support arm on the universal base. After the angle adjustment is completed, the support arm and the universal base are fixed by the square clamp shaft, and then the fire protection pipe is fixed to the support arm by the P-type pipe clamp, thereby realizing quick and adjustable installation of the fire protection pipe.

[0019] 2. The wind pressure generated when a vehicle passes by drives the left hinge and the right hinge, and the upper dial and the lower dial are rotated by the left hinge and the right hinge, thereby driving the push rod on the concave slider to move, and then driving the contact block on the push rod to slide in the sliding sleeve. The thrust of the hydraulic lifter is dynamically controlled by the number of contacts pressed down by the contact block, so that the arc-shaped clamping block clamps the fire pipe.

[0020] 3. When the fire-fighting pipe vibrates, the vibration is transmitted to the buffer box through the connecting ring, causing the first buffer block in the buffer box to move. The buffer spring between the first buffer block and the buffer box performs preliminary buffering. Then, the first buffer block drives the second buffer block to slide in the buffer box through the connecting rope set on the pulley, completing the secondary buffering, thereby reducing the failure of the fire-fighting pipe fixation due to vibration. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 This is a schematic diagram of the main structure of the present invention from a first perspective;

[0022] Figure 2 This is a schematic diagram of the structure of the main body of the present invention from a second viewing angle;

[0023] Figure 3 This is a schematic diagram of the cross-section structure of the auxiliary clamping assembly of the present invention;

[0024] Figure 4 It is a schematic diagram of a first partial cutaway structure of the present invention;

[0025] Figure 5 It is a schematic diagram of a second partial cutaway structure of the present invention;

[0026] Figure 6 This is a schematic diagram of the cross-section structure of the detection component of the present invention;

[0027] Figure 7 It is a schematic diagram of the structure of the detection component of the present invention;

[0028] Figure 8 This is a schematic diagram of the combined structure of the support column and the support sleeve of the present invention;

[0029] Figure 9 for Figure 4 A in the figure shows the enlarged structural diagram;

[0030] Figure 10 for Figure 5 The enlarged structural diagram at B in FIG.

[0031] In the figure: 11, curved steel plate; 12, universal base; 121, tooth arc hole; 124, square clamping shaft; 13, supporting arm; 15, P-type pipe clamp; 17, rotating connecting piece; 18, supporting steel plate;

[0032] 2. Support platform; 21. Support sleeve; 211. Square groove; 22. Support column; 221. Tooth groove; 23. Bracket; 24. Pull rod; 241. Limit plate; 242. Return spring;

[0033] 3. Auxiliary clamping assembly; 31. Upper clamping body; 32. Lower clamping body; 33. Hydraulic lifter; 331. Arc clamping block;

[0034] 4. Buffer assembly; 41. Connecting ring; 42. Buffer box; 421. Strip groove; 43. Fixing plate; 44. Pulley; 45. Connecting rope; 46. Guide post; 47. First buffer block; 48. Second buffer block; 49. Buffer spring;

[0035] 5. Detection assembly; 51. Box body; 52. Concave slider; 521. Slot; 522. Push rod; 53. Sleeve; 531. Contact block; 54. Sensor; 541. Contact; 55. Sleeve; 56. Rotating shaft; 561. Upper dial; 57. Upper rotating sleeve; 571. Left hinge; 572. Lower dial; 58. Lower rotating sleeve; 581. Right hinge. DETAILED DESCRIPTION

[0036] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0037] Example: Figure 1-Figure 5 As shown, the present invention provides a technical solution for an adjustable integrated support for sleeve interval pipes, the sleeve interval adjustable integrated support comprises an arc-shaped steel plate 11, a plurality of mounting holes are provided on the arc-shaped steel plate 11, three universal bases 12 are installed on the arc-shaped steel plate 11, the three universal bases 12 are all locked and fixed by bolts passing through the mounting holes, the three universal bases 12 are all provided with toothed arc holes 121, and the three universal bases 12 are all rotatably installed with support arms 13, the support arms 13 are provided with a square hole at one end close to the toothed arc hole 121, a square card shaft 124 is inserted in the toothed arc hole 121, the square card shaft 124 passes through the square hole, and the plurality of support arms 13 are A P-type pipe clamp 15 is installed, and a fire-fighting pipe or cable is placed on the support arm 13 and fixed by the P-type pipe clamp 15. When the fire-fighting pipe is installed, the height of the support arm 13 is adjusted by adjusting the installation position of the universal base 12 on the arc-shaped steel plate 11, and then the support arm 13 is rotated on the universal base 12 to achieve adjustment within a certain angle range when installing the fire-fighting pipe. When the angle adjustment is completed, the support arm 13 and the universal base 12 are fixed by the square clamping shaft 124, and then the fire-fighting pipe is fixed to the support arm 13 by the P-type pipe clamp 15, thereby achieving quick and adjustable installation of the fire-fighting pipe, thereby achieving the purpose of saving material and labor costs.

[0038] A supporting steel plate 20 is installed at the bottom of the support arm 13 on which the fire-fighting pipe is installed. A rotating connecting piece 17 is installed at the end of the support steel plate 20 away from the support arm 13. The rotating connecting piece 17 is connected to the mounting hole on the arc-shaped steel plate 11 by bolts.

[0039] 5mm gaskets are installed between the fire protection pipe, the support arm 13 and the P-type pipe clamp 15.

[0040] A support platform 2 is installed on one side of the arc-shaped steel plate 11, and an auxiliary clamping component 3, a detection component 5 and a buffer component 4 are provided on the support platform 2;

[0041] The detection component 5 controls the output clamping force of the auxiliary clamping component 3 according to the detection result, and the buffer component 4 provides a stable detection environment for the detection component 5.

[0042] like Figure 1-Figure 5 As shown, the auxiliary clamping assembly 3 includes an upper clamping body 31, a lower clamping body 32, a hydraulic lifter 33 and an arc-shaped clamping block 331;

[0043] A lower clamping body 32 is installed on the top of the support platform 2, and an upper clamping body 31 is installed on the lower clamping body 32. Hydraulic lifters 33 are installed in the upper clamping body 31 and the lower clamping body 32. The two hydraulic lifters 33 are symmetrical, and arc-shaped clamping blocks 331 are installed on the hydraulic lifters 33. When the vibration source causes the fire-fighting pipe to vibrate, the hydraulic lifters 33 in the upper clamping body 31 and the lower clamping body 32 are driven, and the arc-shaped clamping blocks 331 are driven by the hydraulic lifters 33 to apply radial force to clamp the pipe, thereby reducing the rigid impact on the P-type pipe clamp 15, and thus achieving the reliability of the fire-fighting pipe fixation.

[0044] like Figure 1-Figure 7 and Figure 9 As shown, the detection assembly 5 includes a box body 51, a concave slider 52, a slot 521, a push rod 522, a sliding sleeve 53, a contact block 531, a sensor 54, a contact 541, a sleeve 55, a rotating shaft 56, an upper dial 561, an upper rotating sleeve 57, a left hinge 571, a lower dial 572, a lower rotating sleeve 58 and a right hinge 581;

[0045] The support platform 2 is provided with a box body 51, in which a concave slider 52 is slidably installed, and two slots 521 are symmetrically provided at the groove of the concave slider 52. A push rod 522 is installed on one side of the concave slider 52, and the other end of the concave slider 52 is connected to the box body 51 through a spring. A sliding sleeve 53 is installed in the box body 51, and a contact block 531 is slidably installed in the sliding sleeve 53. The contact block 531 is fixedly connected to one end of the push rod 522. A sensor 54 is installed at the bottom of the sliding sleeve 53. The multiple contacts 541 all pass through the sliding sleeve 53, and a sleeve 55 is installed at the bottom of the support platform 2. A rotating shaft 56 is rotatably installed in the sleeve 55. The rotating shaft 56 is provided with an upper rotating sleeve 57 near the top of the rotating shaft 56, and a lower rotating sleeve 58 is fixedly installed near the bottom of the rotating shaft 56. A left hinge 571 is installed on the upper rotating sleeve 57, and a right hinge 581 is installed on the lower rotating sleeve 58. The rotating shaft 56 and the upper rotating sleeve 57 pass through the bottom of the box body 51, and the top of the upper rotating sleeve 57 is lower than the bottom of the concave slider 52, and the top of the rotating shaft 56 is higher than the concave slider 5 2 top, the top of the rotating shaft 56 is installed with an upper dial 561, and the top of the upper rotating sleeve 57 is installed with a lower dial 572. The bottom of the upper dial 561 and the top of the lower dial 572 are eccentrically installed with a lever, and the two levers are respectively stuck in the two slots 521. The sensor 54 is electrically connected to the hydraulic lifter 33. When a car passes through the tunnel, the faster the speed of the car, the greater the wind pressure and vibration generated. When the wind pressure generated by the speed of the car drives the left hinge 571 and the right hinge 581 to rotate towards each other, the left hinge 571 and the right hinge 581 are combined to drive the rotating shaft 5 6 and the lower dial 572 on the top of the upper rotating sleeve 57 rotate, so that the dial rods on the upper dial 561 and the lower dial 572 rotate in a circular direction, thereby pushing the concave slider 52 to slide in the box body 51, so that the contact block 531 on the push rod 522 slides in the sliding sleeve 53. When the contact block 531 touches the contact 541 on the sensor 54 and causes the contact 541 to descend, the thrust of the hydraulic lifter 33 is controlled by the amount by which the contact 541 is pressed down, thereby realizing dynamic control of the clamping force of the arc clamping block 331 on the fire protection pipe.

[0046] like Figure 1-Figure 5 and Figure 10 As shown, the buffer assembly 4 includes a connecting ring 41, a buffer box 42, a strip groove 421, a fixing plate 43, a pulley 44, a connecting rope 45, a guide post 46, a first buffer block 47, a second buffer block 48 and a buffer spring 49;

[0047] A buffer box 42 is installed on the support platform 2, a connecting ring 41 is installed on the top of the buffer box 42, a strip groove 421 is opened on one side of the buffer box 42, a fixing plate 43 is installed on the side wall of the buffer box 42 with the strip groove 421, a pulley 44 is rotatably installed on the fixing plate 43, a connecting rope 45 is sleeved on the pulley 44, a guide column 46 is installed in the buffer box 42, a first buffer block 47 and a second buffer block 48 are slidably installed on the guide column 46, the first buffer block 47 is connected to the top of the buffer box 42 by a buffer spring 49, and the first buffer The block 47 and the second buffer block 48 are connected by a connecting rope 45. When the fire-fighting pipe vibrates, the vibration is transmitted to the buffer box 42 through the connecting ring 41, causing the first buffer block 47 in the buffer box 42 to slide downward, and preliminary buffering is performed by the buffer spring 49 between the first buffer block 47 and the buffer box 42. Then, the first buffer block 47 drives the second buffer block 48 to slide in the buffer box 42 through the connecting rope 45 provided on the pulley 44, completing the secondary buffering, thereby reducing the failure of the fire-fighting pipe fixation due to vibration.

[0048] like Figure 1-Figure 5 and Figure 8 As shown, a support sleeve 21 is installed on the arc-shaped steel plate 11, and the support sleeve 21 is slidably installed in the support column 22. A plurality of tooth grooves 221 are provided on the support column 22. The top of the support column 22 is hinged to the support platform 2. A square groove 211 is provided on the support sleeve 21. A bracket 23 is installed just above the square groove 211. A pull rod 24 is slidably installed on the bracket 23. The end of the pull rod 24 passes through the square groove 211. A limit plate 241 is installed at the end of the pull rod 24. The limit plate 241 is engaged with the tooth groove 221. A reset plate is sleeved on the pull rod 24. Spring 242, the two ends of the reset spring 242 are respectively connected to the limit plate 241 and the bracket 23. When the support arm 13 rotates, the pull rod 24 on the bracket 23 is pulled out to make the limit plate 241 on the pull rod 24 disengage from the tooth groove 221. At this time, the support column 22 slides in the support sleeve 21 to make the support platform 2 hinged on the top of the support column 22 rotate synchronously with the support arm 13. When the adjustment is completed, release the pull rod 24 and reset the limit plate 241 under the elastic force of the reset spring 242. At this time, the support column 22 is fixed to the support sleeve 21.

[0049] Working principle of the present invention:

[0050] When the fire-fighting pipe is installed, the height of the support arm 13 is adjusted by adjusting the installation position of the universal base 12 on the arc-shaped steel plate 11, and then the support arm 13 is rotated on the universal base 12 to achieve the adjustment of the fire-fighting pipe within a certain angle range during installation. After the angle adjustment is completed, the support arm 13 and the universal base 12 are fixed by the square clamping shaft 124, and then the fire-fighting pipe is fixed to the support arm 13 by the P-type pipe clamp 15, thereby achieving fast and adjustable installation of the fire-fighting pipe, thereby achieving the purpose of saving material and labor costs.

[0051] When a car passes through the tunnel, the faster the car speeds, the greater the wind pressure and vibration generated. When the wind pressure generated by the car speed drives the left hinge 571 and the right hinge 581 to rotate toward each other, the left hinge 571 and the right hinge 581 engage with each other, driving the upper dial 561 on the rotating shaft 56 and the lower dial 572 on the top of the upper rotating sleeve 57 to rotate, thereby causing the levers on the upper dial 561 and the lower dial 572 to rotate in a circumferential direction, thereby pushing the concave slider 52 to slide in the box body 51, thereby causing the contact block 531 on the push rod 522 to slide in the sliding sleeve 53. When the contact block 531 touches the contact 541 on the sensor 54 and causes the contact 541 to descend, the thrust of the hydraulic lifter 33 is controlled by the amount by which the contact 541 is pressed down, thereby dynamically controlling the clamping force of the arc-shaped clamping block 331 on the fire-fighting pipe. At this time, the hydraulic lifter 33 in the upper clamping body 31 and the lower clamping body 32 is driven, and the arc-shaped clamping block 331 is driven by the hydraulic lifter 33 to apply radial force to clamp the pipe, thereby reducing the rigid impact on the P-type pipe clamp 13, thereby achieving the reliability of the fire-fighting pipe fixation.

[0052] When the fire-fighting pipe vibrates, the vibration is transmitted to the buffer box 42 through the connecting ring 41, causing the first buffer block 47 in the buffer box 42 to slide downward, and initial buffering is performed by the buffer spring 49 between the first buffer block 47 and the buffer box 42. Then, the first buffer block 47 drives the second buffer block 48 to slide in the buffer box 42 through the connecting rope 45 provided on the pulley 44, completing secondary buffering, thereby avoiding failure of the fixing parts of the fire-fighting pipe due to vibration.

[0053] When the support arm 13 rotates, the pull rod 24 on the bracket 23 is pulled out to disengage the limit plate 241 on the pull rod 24 from the tooth groove 221. At this time, the support column 22 slides in the support sleeve 21 to make the support platform 2 hinged on the top of the support column 22 rotate synchronously with the support arm 13. When the adjustment is completed, the pull rod 24 is released and the limit plate 241 is reset under the elastic force of the reset spring 242. At this time, the support column 22 is fixed to the support sleeve 21.

[0054] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

Claims

1. An adjustable integrated support for sleeve interval pipes, characterized by: The sleeve interval adjustable integrated bracket includes an arc-shaped steel plate (11), a plurality of mounting holes are provided on the arc-shaped steel plate (11), three universal bases (12) are installed on the arc-shaped steel plate (11), the three universal bases (12) are all locked and fixed by bolts passing through the mounting holes, the three universal bases (12) are all provided with toothed arc holes (121), and the three universal bases (12) are all rotatably installed with supporting arms (13), a square hole is provided at one end of the supporting arm (13) close to the toothed arc hole (121), a square clamping shaft (124) is inserted into the toothed arc hole (121), and the square clamping shaft (124) passes through the square hole, and a plurality of supporting arms (13) are all installed with P-type pipe clamps (15), and fire-fighting pipes or cables are placed on the supporting arms (13) and fixed by the P-type pipe clamps (15).

2. The sleeve interval pipe adjustable integrated support according to claim 1, characterized in that: A supporting steel plate (20) is installed at the bottom of the supporting arm (13) on which the fire-fighting pipe is installed. A rotating connecting piece (17) is installed at one end of the supporting steel plate (20) away from the supporting arm (13). The rotating connecting piece (17) is connected to the mounting hole on the arc-shaped steel plate (11) by bolts.

3. The sleeve interval pipe adjustable integrated support according to claim 2, characterized in that: A 5mm gasket is installed between the fire-fighting pipe, the support arm (13) and the P-type pipe clamp (15).

4. The sleeve interval pipe adjustable integrated support according to claim 3, characterized in that: A support platform (2) is installed on one side of the arc-shaped steel plate (11), and an auxiliary clamping component (3), a detection component (5) and a buffer component (4) are provided on the support platform (2); The detection component (5) controls the output clamping force of the auxiliary clamping component (3) based on the detection result, and the buffer component (4) provides a stable detection environment for the detection component (5).

5. The sleeve interval pipe adjustable integrated support according to claim 4, characterized in that: The auxiliary clamping assembly (3) comprises an upper clamping body (31), a lower clamping body (32), a hydraulic lifter (33) and an arc-shaped clamping block (331); A lower clamping body (32) is installed on the top of the support platform (2), an upper clamping body (31) is installed on the lower clamping body (32), and hydraulic lifters (33) are installed in the upper clamping body (31) and the lower clamping body (32), the two hydraulic lifters (33) are symmetrical, and arc-shaped clamping blocks (331) are installed on the hydraulic lifters (33).

6. The sleeve interval pipe adjustable integrated support according to claim 4, characterized in that: The detection assembly (5) comprises a box body (51), a concave slider (52), a card slot (521), a push rod (522), a sliding sleeve (53), a contact block (531), a sensor (54), a contact (541), a sleeve (55), a rotating shaft (56), an upper dial (561), an upper rotating sleeve (57), a left hinge (571), a lower dial (572), a lower rotating sleeve (58) and a right hinge (581); A box body (51) is installed on the support platform (2), and a concave slider (52) is slidably installed in the box body (51). Two slots (521) are symmetrically provided at the groove of the concave slider (52). A push rod (522) is installed on one side of the concave slider (52). The other end of the concave slider (52) is connected to the box body (51) through a spring. A sliding sleeve (53) is installed in the box body (51), and a contact block (531) is slidably installed in the sliding sleeve (53). The contact block (531) is fixedly connected to one end of the push rod (522). A sensor (54) is installed at the bottom of the sliding sleeve (53), and multiple contacts (541) on the sensor (54) all pass through the sliding sleeve (53). A sleeve (55) is installed at the bottom of the support platform (2), and a rotating shaft (56) is rotatably installed in the sleeve (55). The rotating shaft (56) An upper rotating sleeve (57) is provided near the top movable sleeve, and a lower rotating sleeve (58) is fixedly installed near the bottom of the rotating shaft (56), a left hinge (571) is installed on the upper rotating sleeve (57), and a right hinge (581) is installed on the lower rotating sleeve (58), the rotating shaft (56) and the upper rotating sleeve (57) pass through the bottom of the box body (51), the top of the upper rotating sleeve (57) is lower than the bottom of the concave slider (52), the top of the rotating shaft (56) is higher than the top of the concave slider (52), an upper dial (561) is installed on the top of the rotating shaft (56), and a lower dial (572) is installed on the top of the upper rotating sleeve (57), the bottom of the upper dial (561) and the top of the lower dial (572) are both eccentrically installed with a shift rod, and the two shift rods are respectively stuck in two card slots (521), and the sensor (54) is electrically connected to the hydraulic lifter (33).

7. The sleeve interval pipe adjustable integrated support according to claim 6, characterized in that: The buffer assembly (4) comprises a connecting ring (41), a buffer box (42), a strip groove (421), a fixing plate (43), a pulley (44), a connecting rope (45), a guide post (46), a first buffer block (47), a second buffer block (48) and a buffer spring (49); A buffer box (41) is installed on the support platform (2), a connecting ring (41) is installed on the top of the buffer box (42), a strip groove (421) is opened on one side of the buffer box (42), a fixing plate (43) is installed on the side wall of the buffer box (42) with the strip groove (421), a pulley (44) is rotatably installed on the fixing plate (43), a connecting rope (45) is sleeved on the pulley (44), a guide column (46) is installed in the buffer box (42), a first buffer block (47) and a second buffer block (48) are slidably installed on the guide column (46), the first buffer block (47) is connected to the top of the buffer box (42) by a buffer spring (49), and the first buffer block (47) and the second buffer block (48) are connected by a connecting rope (45).

8. The sleeve interval pipe adjustable integrated support according to claim 7, characterized in that: A support sleeve (21) is installed on the arc-shaped steel plate (11), and the support sleeve (21) is slidably installed on the support column (22). A plurality of tooth grooves (221) are provided on the support column (22), and the top of the support column (22) is hinged to the support platform (2). A square groove (211) is provided on the support sleeve (21), and a bracket (23) is installed just above the square groove (211). A pull rod (24) is slidably installed on the bracket (23), and the end of the pull rod (24) passes through the square groove (211). A limit plate (241) is installed at the end of the pull rod (24), and the limit plate (241) is engaged with the tooth groove (221). A reset spring (242) is sleeved on the pull rod (24), and the two ends of the reset spring (242) are respectively connected to the limit plate (241) and the bracket (23).