Pipeline elevator support
By designing symmetrically distributed three-tiered gourd-shaped mounting holes on the pipe hanger bracket, the problems of inflexible height adjustment and low installation accuracy caused by the single mounting hole design in the existing technology are solved, thus achieving efficient and stable pipe installation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-28
- Publication Date
- 2026-03-31
AI Technical Summary
The existing pipe hanger brackets have a single mounting hole design, which leads to inflexible height adjustment, low installation efficiency, difficulty in ensuring installation accuracy, and single-point connection, which can easily cause bracket deformation and loosening, affecting system stability and increasing installation costs.
Design a pipe hanger bracket with two symmetrically distributed mounting brackets. Each bracket has three symmetrical gourd-shaped mounting holes, providing six height options. Combining metal material and anti-slip structure, it is suitable for complex installation environments and ensures accurate installation.
It achieves a high degree of flexibility and precision in adjustment, improves installation efficiency, ensures pipeline stability and installation accuracy, and reduces installation costs and risks.
Smart Images

Figure CN224064979U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of pipeline system engineering technology, and in particular to a pipeline hanger support. Background Technology
[0002] In modern buildings and industrial facilities, piping systems are widely used in many fields such as water supply and drainage, heating, ventilation, and chemical material transportation. The safe and stable operation of pipelines is crucial to the normal operation of the entire system, and pipeline hangers and supports, as key components for supporting and fixing pipelines, directly affect the reliability and service life of the pipeline system.
[0003] Currently, most pipe hanger brackets use a conventional design with a single mounting hole spaced at intervals. This design has significant drawbacks in terms of height adjustment. With only one mounting hole, height selection is limited to a single position, making it inflexible for complex and diverse installation scenarios, such as building spaces with varying floor heights or piping projects requiring coordination with existing equipment. Installers are often forced to spend considerable time attempting to change the pipe installation height through tedious methods such as adding extra shims and repeatedly adjusting the bracket position. This is not only inefficient but also makes it difficult to guarantee installation accuracy, potentially leading to pipe installation deviations and affecting normal system operation. For example, drainage pipes may experience drainage problems due to improper height, and chemical material conveying pipelines may suffer from reduced material conveying efficiency due to inadequate installation height.
[0004] From an installation stability perspective, a single mounting hole means the bracket is connected to the mounting surface at only one point. The gravity, internal fluid impact, and stress caused by thermal expansion and contraction during pipeline operation are all concentrated on this single connection point. Over time, the bracket is highly susceptible to deformation, loosening, or even breakage due to excessive localized stress. This is especially problematic in locations with extremely high pipeline stability requirements, such as oxygen supply systems in hospitals and ultrapure water delivery pipelines in electronic chip manufacturing workshops. Bracket failure would have serious consequences.
[0005] Furthermore, the tolerance for errors in a single mounting hole is extremely low. During installation, if the mounting hole has processing errors, is accidentally damaged on the construction site, or interferes with other surrounding structural components, the entire installation process will be forced to stop. This can only be resolved by time-consuming and labor-intensive methods such as reprocessing the mounting plate and replacing the bracket, which greatly increases the installation cost and the risk of project delays. Utility Model Content
[0006] In order to overcome the shortcomings mentioned in the background art, this utility model provides a pipe hanger bracket.
[0007] The technical solution of this utility model is as follows: a pipe hanger bracket, including an installation bracket and a sleeve fitting. There are two installation brackets, which are symmetrically distributed front and back. A horizontally arranged sleeve fitting is connected between the bottoms of the two installation brackets. The sleeve fitting is used to connect the pipe. The installation bracket has two vertically symmetrical three-stage installation holes, which are gourd-shaped.
[0008] Furthermore, the three-tiered mounting hole has three grooves of different heights to allow for the selection of three different mounting positions.
[0009] Furthermore, the mounting bracket is made of metal with a thickness of 3mm-5mm.
[0010] Furthermore, the inner diameter of the sleeve is matched with the outer diameter of the pipe to be installed, and its inner wall is provided with an anti-slip structure.
[0011] Furthermore, the front and back of the mounting bracket feature a streamlined, rounded design.
[0012] Furthermore, the edges of the three-dimensional mounting holes are chamfered.
[0013] This utility model has the following advantages: each mounting bracket has two three-stage mounting holes, each hole provides three height options, for a total of six height adjustment points. Installers can quickly and accurately find the appropriate installation height based on complex and varied installation environments, such as building spaces with different floor heights and intricate pipe layouts, without the need for time-consuming and tedious shim additions or significant adjustments to the bracket position, greatly improving installation efficiency and ensuring that the pipes can be accurately installed to the ideal elevation. Attached Figure Description
[0014] Figure 1 This is a front view of the present invention.
[0015] Figure 2 This is a top view of the present invention.
[0016] Figure 3 This is the left view of the present invention.
[0017] The markings in the attached diagram are: 1: mounting bracket, 2: sleeve fitting, 3: three-stage mounting hole. Detailed Implementation
[0018] Example: A pipe hanger support, such as Figures 1-3As shown, the device includes a mounting bracket 1 and a sleeve fitting 2. Two mounting brackets 1 are provided, symmetrically distributed front and back. A horizontally positioned sleeve fitting 2 is rigidly connected between the bottoms of the two mounting brackets 1. The sleeve fitting 2 is used to fit the pipe, its inner diameter matching the outer diameter of the pipe to be installed, and its inner wall has an anti-slip structure to enhance the fixing effect on the pipe. The mounting bracket 1 is made of metal with a thickness of 3mm-5mm, possessing sufficient strength and rigidity to support the weight of the pipe. The mounting bracket 1 has two symmetrically arranged three-tiered mounting holes 3, shaped like a gourd, with three grooves of different heights to allow for three different installation heights. In different installation environments, such as at high altitudes, the bracket height can be flexibly adjusted to adapt to different space and height requirements, ensuring the pipe is accurately installed to the appropriate height.
[0019] The front and back of the mounting bracket 1 are designed with streamlined arcs for easy gripping and operation by construction personnel; the edges of the three-stage mounting holes 3 are chamfered to prevent scratching of the connectors or installers during installation.
[0020] When installing pipes, first, the pipe is fitted onto the sleeve fitting 2. The construction personnel accurately position the pipe to the designed installation position and fix the pipe with connectors. Then, based on the overall layout and elevation requirements of the pipeline system, the appropriate installation height is selected using the three-stage installation holes 3 on the mounting bracket 1. The mounting bracket 1 is then inserted into the pre-installed brackets or beams on the building structure and fixed with connectors, thereby completing the installation of the pipe hanger and the pipe, ensuring that the pipeline system meets the design layout and functional requirements.
Claims
1. A pipe elevator hanger characterized by: It includes mounting bracket (1) and sleeve piece (2), mounting bracket (1) is provided with two, front and back symmetry distribution, two mounting bracket (1) bottom between the connection has the transverse setting sleeve piece (2), sleeve piece (2) is used for the sleeve pipe, mounting bracket (1) is opened and is symmetrically two three order mounting hole (3) in up and down, three order mounting hole (3) shape is calabash shape.
2. A pipe elevator hanger according to claim 1, characterized in that: Three order mounting hole (3) has three different height grooves, to realize three different height installation position selection.
3. A pipe elevator hanger according to claim 1, characterized in that: Mounting bracket (1) is made of metal material, thickness is 3mm-5mm.
4. A pipe elevator hanger according to claim 1, wherein: The inner diameter of sleeve piece (2) is matched with the outer diameter of the pipeline to be installed, and the inner wall is provided with an anti-skid structure.
5. A pipe elevator hanger as defined in claim 1 wherein: The front and back of mounting bracket (1) are designed as streamline circular arc.
6. A pipe elevator hanger according to claim 1, wherein: The edge of three order mounting hole (3) is chamfered.