Building electromechanical pipeline laying structure

By combining an adjustable-spacing right-angle iron structure with an adjustable number of support rods, the problem of universality in laying pipes of different diameters is solved, achieving flexible adaptation and material saving in pipe laying.

CN223924077UActive Publication Date: 2026-02-17SHENYANG GEYUAN ELECTROMECHANICAL EQUIP MFG CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520473327.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-18
Publication Date
2026-02-17
Estimated Expiration
2035-03-18

AI Technical Summary

Technical Problem

In existing technologies, the laying of building electromechanical pipelines requires right angle irons of different lengths to accommodate pipes of different diameters, resulting in a variety of models and making them difficult to use interchangeably.

Method used

It adopts an adjustable-spacing right-angle iron structure, and adjusts the angle iron spacing to adapt to pipes of different diameters through a combination of studs and straight threaded cylinders. It also utilizes an adjustable number of support rods for support, achieving universal laying.

Benefits of technology

It enables universal and adaptable laying of pipes of different diameters, reduces material waste, and simplifies management and manufacturing processes.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223924077U_ABST
    Figure CN223924077U_ABST
Patent Text Reader

Abstract

The utility model provides a building electromechanical pipeline laying structure which comprises two right-angle angle irons, kidney-shaped holes are formed in the upper surfaces of the right-angle angle irons, detachable lifting pieces used for being installed on an indoor top plate are installed in the kidney-shaped holes, supporting lugs are installed on the vertical portions of the two right-angle angle irons, and the supporting lugs are connected with the right-angle angle irons. Penetrating holes are formed in the opposite faces of the two supporting lugs, a straight threaded cylinder is arranged between the two supporting lugs, two studs are in threaded connection with the interior of the straight threaded cylinder, the ends, located on the outer side of the straight threaded cylinder, of the studs penetrate through the penetrating holes, and limiting nuts are arranged on the two sides, in the length direction of the studs, of the penetrating holes; the two right-angle angle irons are connected with the stud in a threaded mode, the limiting nuts are connected to the stud in a threaded mode, positioning sleeves are installed on the horizontal portions of the two right-angle angle irons, and a lifting piece used for lifting a pipeline is installed between the two positioning sleeves. And right-angle angle irons with different lengths are not required to be manufactured.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to a kind of building electromechanical pipeline laying structures, belong to pipeline laying technical field. BACKGROUND

[0002] When building electromechanical pipeline is laid, it is often restricted on the building indoor roof by support formed by two hangers and right-angle angle iron, because the diameter of pipeline is different, for the pipeline of different diameters, different length right-angle angle iron is needed to be used to lift the pipeline, this kind of mode needs support different length right-angle angle iron, so that the model of right-angle angle iron is various, it is not conducive to pipeline, and it is difficult to achieve universal, so a kind of building electromechanical pipeline laying structure that can be suitable for the need of installation of different diameter pipeline needs to be designed. INVENTION CONTENTS

[0003] In view of the deficiencies in the prior art, the utility model aims to provide a kind of building electromechanical pipeline laying structure to solve the problems raised in the above background, the utility model can be suitable for the need of installation of different diameter pipeline, realize universal, without making different length right-angle angle iron.

[0004] In order to achieve the above object, the utility model is implemented by the following technical scheme: a kind of building electromechanical pipeline laying structure, including two right-angle angle iron, the upper surface of right-angle angle iron is provided with waist hole, detachable for installing in indoor roof is installed in waist hole, two the vertical part of right-angle angle iron is equipped with lug, two The opposite surface of lug is provided with through hole, straight screw thread cylinder is arranged between two lugs, two threaded rods are connected in straight screw thread cylinder, the end of threaded rod outside straight screw thread cylinder penetrates through hole, the both sides of through hole along the length direction of threaded rod is equipped with limit nut, limit nut is connected on threaded rod, the horizontal part of two right-angle angle iron is equipped with positioning sleeve, two positioning sleeves are equipped with lifting piece for lifting pipeline.

[0005] Further, the lifting piece includes a hanger, the hanger is vertically arranged in the waist hole, the lower end of the hanger is externally threaded, the lower end of the hanger is threaded with an upper nut and a lower nut, the upper nut is arranged on the upper side of the waist hole, the lower nut is arranged on the lower side of the waist hole, the upper end of the hanger is provided with a top seat, the top surface of the top seat is provided with two symmetrically arranged fixing holes.

[0006] Further, the lifting piece comprises a supporting rod, a plurality of supporting rods are arranged between the two positioning sleeves in series, the supporting rod is circular in cross section, a threaded head is fixedly connected to one end of the supporting rod, a threaded blind hole is formed in one side of the supporting rod away from the threaded head, the threaded head on one supporting rod is threadedly connected into the threaded blind hole on another supporting rod, and a positioning screw for limiting the relative position of the supporting rod and the positioning sleeve is threadedly connected to the side of the outer surface of the positioning sleeve away from the right-angle angle iron.

[0007] Further, a small hole is formed in the side of the outer surface of the positioning sleeve away from the right-angle angle iron, a threaded sleeve concentric with the small hole is arranged outside the small hole, the threaded sleeve is fixedly connected to the positioning sleeve at one end, the positioning screw is threadedly connected into the threaded sleeve, and one end of the positioning screw penetrates through the small hole and is in contact with the supporting rod.

[0008] Further, the threaded head and the supporting rod are formed in an integral structure, and the length of the threaded head is the same as the depth of the threaded blind hole.

[0009] Further, an axle hole for penetrating the circular rod is formed in the outer surface of one end of the threaded stud outside the straight-threaded cylinder, and the axle hole is arranged along the radial direction of the threaded stud.

[0010] The utility model discloses beneficial effects are as follows:

[0011] 1. the structure formed by installing two threaded studs and a straight-threaded cylinder between two right-angle angle irons, adjusting the length of the threaded stud in the straight-threaded cylinder according to the diameter of the pipeline, so that the spacing of the two right-angle angle irons meets the needs of pipeline laying, then installing a supporting rod between the two positioning sleeves, lifting the pipeline by the supporting rod, and then installing a suspender on the indoor roof to complete the support of the pipeline at one place, because the spacing of the right-angle angle irons is adjustable, so it can be applied to the needs of installing pipelines of different diameters, is universal, does not need to make right-angle angle irons of different lengths, and is convenient to manage.

[0012] 2. when the spacing of the two right-angle angle irons is adjusted, the appropriate number of supporting rods is selected according to the spacing between the two positioning sleeves, the threaded head on one supporting rod is screwed into the threaded blind hole on another supporting rod, and the assembly of multiple supporting rods is completed in this way, because the number of supporting rods can be increased or decreased, so it is applicable to lifting pipelines of different diameters, thereby reducing the waste of excess materials, that is, there is no need to make supporting rods of a relatively long length. BRIEF DESCRIPTION OF DRAWINGS

[0013] Other features, objects and advantages of the utility model will become more apparent through reading the following detailed description of non-restrictive embodiments with reference to the accompanying drawings:

[0014] Figure 1 It is a structural schematic view of the utility model building electromechanical pipeline laying structure;

[0015] Figure 2 Another perspective view of the building mechanical and electrical pipeline laying structure of the utility model;

[0016] Figure 3 The assembly schematic view of the supporting rod, the positioning sleeve, the supporting lug and the right angle angle iron in the building mechanical and electrical pipeline laying structure of the utility model;

[0017] Figure 4 The assembly schematic view of the stud and the straight thread cylinder in the building mechanical and electrical pipeline laying structure of the utility model;

[0018] In the drawing: 1 - right angle angle iron, 2 - waist hole, 3 - upper nut, 4 - suspender, 5 - fixed hole, 6 - top seat, 7 - supporting rod, 8 - positioning screw, 9 - positioning sleeve, 10 - supporting lug, 11 - limiting nut, 12 - straight thread cylinder, 13 - stud, 14 - lower nut, 15 - threaded sleeve, 16 - threaded head, 17 - threaded blind hole, 18 - perforation, 19 - shaft hole. DETAILED DESCRIPTION

[0019] In order to make the technical means, creative features, purposes and effects achieved by the utility model easy to understand, the utility model is further described below in combination with specific implementation manners.

[0020] Please refer to Figures 1-3 The utility model provides a technical scheme: a building mechanical and electrical pipeline laying structure, including two right angle angle iron 1, the upper surface of right angle angle iron 1 is set with waist hole 2, the waist hole 2 is inserted with the suspender 4 of vertical arrangement, the lower end outer surface of suspender 4 is processed with external thread, and the lower end threaded connection of suspender 4 has upper nut 3 and lower nut 14, upper nut 3 is set on the upper side of waist hole 2, lower nut 14 is set on the lower side of waist hole 2, and the top seat 6 is installed on the upper end of suspender 4, the upper surface of top seat 6 is set with two symmetrical fixed holes 5, after the lower end of suspender 4 penetrates waist hole 2, the relative position of suspender 4 and right angle angle iron 1 is limited by using upper nut 3 and lower nut 14, the assembly of suspender 4 and right angle angle iron 1 is completed, the position of suspender 4 is adjusted along waist hole 2, the position of indoor ceiling corresponding to fixed hole 5 is changed under the condition that the position of right angle angle iron 1 is not adjusted, top seat 6 is installed on indoor ceiling by using fixed hole 5, and the limitation of the position of right angle angle iron 1 is completed.

[0021] Please refer to Figures 1-4The vertical part of the two right angle irons 1 is provided with an ear 10, the opposite surface of the two ears 10 is provided with a through hole 18, the two ears 10 are provided with a straight thread cylinder 12 arranged horizontally, the straight thread cylinder 12 is provided with two threaded studs 13, the threaded studs 13 are arranged outside the straight thread cylinder 12, the through hole 18 is provided with a limiting nut 11 arranged along the length direction of the threaded stud 13, the limiting nut 11 is screwed on the threaded stud 13, the threaded stud 13 is inserted into the through hole 18, the two limiting nuts 11 are used to limit the relative position of the threaded stud 13 and the ear 10, the threaded stud 13 is assembled with the right angle iron 1, the outer surface of the threaded stud 13 arranged outside the straight thread cylinder 12 is provided with an axle hole 19 used for inserting a round rod, the axle hole 19 is arranged along the radial direction of the threaded stud 13, the round rod is inserted into the axle hole 19, the round rod is used to rotate the threaded stud 13, the length of the threaded stud 13 in the straight thread cylinder 12 is adjusted, the structure formed by the two threaded studs 13 and the straight thread cylinder 12 between the two right angle irons 1 is adjusted according to the diameter of the pipeline, the length of the threaded stud 13 in the straight thread cylinder 12 is adjusted, the distance between the two right angle irons 1 meets the needs of pipeline laying, then the supporting rod 7 is arranged between the two positioning sleeves 9, the pipeline is lifted by the supporting rod 7, then the suspender 4 is arranged on the indoor roof, the support of the pipeline is completed, the distance between the right angle irons 1 can be adjusted, so it can be applied to the needs of pipeline installation with different diameters, it is universal, different lengths of right angle irons 1 are not needed, and it is convenient for management.

[0022] Referring to Figures 1-4 The horizontal part of the two right angle irons 1 is provided with a positioning sleeve 9, a plurality of supporting rods 7 connected end to end are arranged between the two positioning sleeves 9, the cross section of the supporting rod 7 is circular, one end of the supporting rod 7 is connected with a threaded head 16, the threaded head 16 and the supporting rod 7 are an integral structure, the surface of the supporting rod 7 away from the threaded head 16 is provided with a threaded blind hole 17, the length of the threaded head 16 is the same as the depth of the threaded blind hole 17, the outer surface of the positioning sleeve 9 away from the right angle iron 1 is screwed with a positioning screw 8 used for limiting the relative position of the supporting rod 7 and the positioning sleeve 9, the outer surface of the positioning sleeve 9 away from the right angle iron 1 is provided with a small hole, the outer side of the small hole is provided with a threaded sleeve 15 arranged concentrically with the small hole, one end of the threaded sleeve 15 is connected with the positioning sleeve 9, the positioning screw 8 is screwed in the threaded sleeve 15, one end of the positioning screw 8 penetrates the small hole and contacts with the supporting rod 7, the design of the threaded sleeve 15 realizes the stable connection of the positioning screw 8 and the positioning sleeve 9, when the distance between the two right angle irons 1 is adjusted, the appropriate number of supporting rods 7 is selected according to the distance between the two positioning sleeves 9, the threaded head 16 on one supporting rod 7 is screwed into the threaded blind hole 17 on another supporting rod 7, and so on, the assembly of the plurality of supporting rods 7 is completed, the number of the supporting rods 7 can be increased or decreased, so it is suitable for lifting the pipeline with different diameters, thereby reducing the waste of excess materials, that is, the supporting rod 7 with long length is not needed.

[0023] Although the present specification is described in terms of embodiments, not every embodiment exhibits every characteristic or implements every combination of features described in the present specification. In addition, not every embodiment includes every embodiment described in the present specification. The description herein of any embodiment, including any preferred embodiment, is thus intended to be illustrative, and not restrictive. The scope of the present application is thus intended to be broad, and will be set forth in the following claims.

Claims

1. A building electromechanical duct laying structure comprising two right-angle angles (1), characterized in that: The upper surface of the right-angle angle iron (1) is provided with a waist hole (2), a detachable lifting piece for mounting on the indoor roof is mounted in the waist hole (2), the vertical part of the two right-angle angle irons (1) is provided with an ear (10), the opposite surface of the two ears (10) is provided with a through hole (18), a straight thread cylinder (12) is arranged between the two ears (10), two threaded studs (13) are threadedly connected in the straight thread cylinder (12), one end of the threaded stud (13) outside the straight thread cylinder (12) penetrates the through hole (18), the two sides of the through hole (18) along the length direction of the threaded stud (13) are provided with a limiting nut (11), the limiting nut (11) is threadedly connected on the threaded stud (13), the horizontal part of the two right-angle angle irons (1) is provided with a positioning sleeve (9), and a lifting piece for lifting the pipeline is mounted between the two positioning sleeves (9).

2. A building electromechanical duct laying structure according to claim 1, characterized in that: The lifting piece comprises a lifting rod (4), the lifting rod (4) is vertically arranged and inserted in the waist hole (2), an outer thread is processed on the lower end outer surface of the lifting rod (4), an upper nut (3) and a lower nut (14) are threadedly connected on the lower end of the lifting rod (4), the upper nut (3) is arranged on the upper side of the waist hole (2), the lower nut (14) is arranged on the lower side of the waist hole (2), a top seat (6) is mounted on the upper end of the lifting rod (4), and two symmetrical fixing holes (5) are formed in the upper surface of the top seat (6).

3. The building electromechanical pipe laying structure according to claim 1, characterized in that: The lifting piece comprises a lifting rod (7), a plurality of lifting rods (7) are arranged in series between the two positioning sleeves (9), the cross section of the lifting rod (7) is circular, a threaded head (16) is connected and fixed to one end of the lifting rod (7), a threaded blind hole (17) is formed in the side of the lifting rod (7) away from the threaded head (16), the threaded head (16) on one lifting rod (7) is threadedly connected in the threaded blind hole (17) on another lifting rod (7), and a positioning screw (8) for limiting the relative position of the lifting rod (7) and the positioning sleeve (9) is threadedly connected to the side of the positioning sleeve (9) away from the right-angle angle iron (1).

4. A building electromechanical duct laying structure according to claim 3, characterized in that: A small hole is formed in the side of the positioning sleeve (9) away from the right-angle angle iron (1), a threaded sleeve (15) concentrically arranged with the small hole is arranged outside the small hole, one end of the threaded sleeve (15) is connected and fixed with the positioning sleeve (9), the positioning screw (8) is threadedly connected in the threaded sleeve (15), and one end of the positioning screw (8) penetrates the small hole and contacts the lifting rod (7).

5. The building electromechanical duct laying structure according to claim 3, characterized in that: The threaded head (16) and the lifting rod (7) are an integral structure, and the length of the threaded head (16) is the same as the depth of the threaded blind hole (17).

6. The building electromechanical duct laying structure according to claim 1, characterized in that: An axle hole (19) for inserting a round rod is formed in the outer surface of one end of the threaded stud (13) outside the straight thread cylinder (12), and the axle hole (19) is arranged along the radial direction of the threaded stud (13).