High-strength compensator
By setting thickened pipes, telescopic thickened pipes and pressure devices in the high-strength compensator, the problem of weak outer wall of the compensator is solved, and higher durability and service life are achieved, reducing maintenance and maintenance costs.
Patent Information
- Application Number
- CN202422226977.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-11
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-09-11
AI Technical Summary
The outer wall of existing high-strength compensators is thinner and difficult to use for a long time and easily deform, resulting in high maintenance and maintenance costs.
A high-strength compensator is designed to increase the thickness and durability of the outer wall by setting up thickened tubes, telescopic thickened tubes and pressure devices, and to prevent deformation by applying pressure to the outside through the pressure device.
It effectively solves the problem of weak outer wall of the compensator, increases durability and service life, and reduces maintenance and maintenance costs.
Smart Images

Figure CN223035970U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of pipeline instruments, and more specifically, particularly relates to a high-strength compensator. Background Technique
[0002] The high-strength compensator has a profound technical background and is widely used in various industrial fields. Its core lies in improving the pressure resistance, wear resistance and the ability to adapt to complex working conditions through unique designs. For example, the high-temperature and high-pressure unconstrained corrugated compensator is made of high-strength and corrosion-resistant metal materials to form a corrugated pipe, which can flexibly expand and contract in high-temperature and high-pressure environments, absorb and release displacement energy, and ensure the stable operation of the pipeline system.
[0003] Based on the above, many compensators are prone to breakage during expansion and contraction due to their relatively thin outer walls, resulting in high maintenance and repair costs, and are prone to deformation and difficult to use for a long time. Content of the Utility Model
[0004] In order to solve the above technical problems, the utility model provides a high-strength compensator to solve the problems that the existing high-strength compensator has a relatively thin outer wall, is difficult to use for a long time and is prone to deformation, resulting in high maintenance and repair costs.
[0005] A high-strength compensator of the utility model is achieved by the following specific technical means:
[0006] A high-strength compensator includes a main pipeline shell, a pressure vessel shell, a thickened pipe, fastening screws, a telescopic thickened pipe A, a telescopic thickened pipe B and a pressure vessel; sliding limit blocks are slidably connected in the T-shaped sliding grooves on both sides inside the pipeline of the main pipeline shell, and the T-shaped sliding grooves on the outer circle of the thickened pipe are slidably connected to the other side of the sliding limit blocks; a group of curved pipes are provided on both sides in the middle of the main pipeline shell; fastening screws are threadedly connected in the circular holes on both sides of the main pipeline shell; the circular holes on the outer sides of the telescopic thickened pipe A and the telescopic thickened pipe B are bolted to the circular holes on both sides of the main pipeline shell through the fastening screws; connecting long screws are threadedly connected in the circular holes on both sides of the main pipeline shell; the circular holes on both sides of the pressure vessel shell are bolted to the circular holes on both sides of the main pipeline shell through the connecting long screws; a pressure spring is movably connected in the circular groove at the top of the pressure vessel shell; the circular groove at the top of the pressure vessel is movably connected to the lower part of the circular groove at the bottom of the pressure vessel shell through the pressure spring.
[0007] Furthermore, twelve groups of circular threaded connection holes are provided on each of the outermost sides of the main pipeline shell; a group of circular threaded holes are provided on each of the inner sides of the main pipeline shell corresponding to the circular threaded holes on both sides of the pressure vessel shell, and are tightened and connected through the threads at the bottom of the connecting long screws.
[0008] Furthermore, the telescopic thickened pipe A and the telescopic thickened pipe B are telescopically connected in an up-and-down sliding manner; the arc at the bottom of the pressure device is attached to the telescopic thickened pipe A and is supported and connected by a pressure spring.
[0009] Furthermore, four groups of T-shaped sliding grooves with closed ends are provided on the outer surface of the thickened pipe, corresponding to the four groups of T-shaped grooves on both sides of the main pipe shell, and are slidably connected through sliding limit blocks.
[0010] Compared with the prior art, the present utility model has the following beneficial effects:
[0011] 1. By providing the thickened pipe, the present utility model thickens the thin part of the curved surface of the tank body, so that it will not be damaged due to being too thin.
[0012] 2. By providing the telescopic thickened pipe A and the telescopic thickened pipe B, the present utility model also strengthens the outside to make it more durable.
[0013] 3. By providing the pressure device, the present utility model applies a pressure to the outside to prevent it from expanding and deforming. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 is a schematic perspective view of the main body of the present utility model.
[0015] Figure 2 is a schematic structural view of the pressure device of the present utility model.
[0016] Figure 3 is a schematic cross-sectional view of the installation of the sliding limit block of the present utility model.
[0017] Figure 4 is a schematic cross-sectional view of the main body of the present utility model.
[0018] In the figure, the correspondence between the component names and the reference numerals of the drawings is as follows:
[0019] 1. Main pipe shell; 2. Pressure device housing; 3. Thickened pipe; 4. Connecting long screw; 101. Fastening screw; 102. Curved surface pipe; 103. Sliding limit block; 104. Telescopic thickened pipe A; 105. Telescopic thickened pipe B; 201. Pressure spring; 202. Pressure device. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0020] The following further describes in detail the embodiments of the present utility model in conjunction with the drawings and examples. The following examples are used to illustrate the present utility model, but cannot be used to limit the scope of the present utility model.
[0021] Example:
[0022] As shown in the attached Figure 1 to the attached Figure 4As shown in the figure:
[0023] The utility model provides a high-strength compensator, which includes a main pipeline shell 1, a pressure vessel shell 2, a thickened pipe 3, fastening screws 101, telescopic thickened pipes A 104, telescopic thickened pipes B 105 and a pressure vessel 202. Sliding limit blocks 103 are slidably connected in the T-shaped sliding grooves on both sides inside the pipeline of the main pipeline shell 1, and the T-shaped sliding grooves on the outer circle of the thickened pipe 3 are slidably connected to the other side of the sliding limit blocks 103. A group of curved pipes 102 are provided on both sides in the middle of the main pipeline shell 1. Fastening screws 101 are screwed in the circular holes on both sides of the main pipeline shell 1. The circular holes on the outer sides of the telescopic thickened pipes A 104 and the telescopic thickened pipes B 105 are bolted to the circular holes on both sides of the main pipeline shell 1 through the fastening screws 101. Connecting long screws 4 are screwed in the circular holes on both sides of the main pipeline shell 1. The circular holes on both sides of the pressure vessel shell 2 are bolted to the circular holes on both sides of the main pipeline shell 1 through the connecting long screws 4. A pressure spring 201 is movably connected in the circular groove at the top of the pressure vessel shell 2. The circular groove at the top of the pressure vessel 202 is movably connected to the lower part of the circular groove at the bottom of the pressure vessel shell 2 through the pressure spring 201.
[0024] Among them, twelve groups of circular threaded connection holes are provided on each of the outermost sides of the main pipeline shell 1. Six groups of circular threaded holes are provided on each of the two sides on the inner side of the main pipeline shell 1 corresponding to the circular threaded holes on both sides of the pressure vessel shell 2, and are tightened and connected through the threads at the bottom of the connecting long screws 4 to play a limiting role.
[0025] Among them, the telescopic thickened pipes A 104 and the telescopic thickened pipes B 105 are slidably connected up and down. The arc at the bottom of the pressure vessel 202 is attached to and connected to the telescopic thickened pipe A 104, and is supported and connected through the pressure spring 201 to protect the internal shell.
[0026] Among them, four groups of T-shaped sliding grooves with closed ends are provided on the outer surface of the thickened pipe 3, corresponding to the four groups of T-shaped grooves on both sides of the main pipeline shell 1, and are slidably connected through the sliding limit blocks 103 for telescopic sliding.
[0027] The specific usage method and function of this embodiment:
[0028] In the present utility model, by adding the thickened pipe 3, the thickness inside is increased. Even if the curved pipe 102 is deformed or damaged, the thickened pipe 3 can still maintain the normal operation of the device. Under the action of the sliding limiting block 103, the expansion and contraction of the curved pipe 102 will not affect the flow. In addition, the outside of the curved pipe 102 is reinforced. The telescopic thickened pipe A 104 and the telescopic thickened pipe B 105 are used to protect the outside. The inner diameters of the telescopic thickened pipe A 104 and the telescopic thickened pipe B 105 are not the same, realizing cross-sliding connection and not affecting the expansion and contraction. The pressure device 202 on the outside applies a pressure to the telescopic thickened pipe A 104, the telescopic thickened pipe B 105 and the curved pipe 102 inside, so that they will not easily deform and the service life is increased.
[0029] Where the present utility model is not described in detail, it is the well-known technology of those skilled in the art.
Claims
1. A high-strength compensator, characterized in that: It comprises a main pipe shell (1), a pressure vessel shell (2), a thickened pipe (3), a fastening screw (101), a telescopic thickened pipe A (104), a telescopic thickened pipe B (105) and a pressure vessel (202); Sliding limiting blocks (103) are slidably connected in the T-shaped sliding grooves on both sides of the main pipe shell (1), and the T-shaped sliding groove on the outer ring of the thickened pipe (3) is slidably connected to the other side of the sliding limiting block (103); a group of curved pipes (102) are provided on both sides of the middle of the main pipe shell (1); The circular holes on both sides of the main pipe shell (1) are threadedly connected with fastening screws (101); the circular holes on the outer sides of the telescopic thickened pipe A (104) and the telescopic thickened pipe B (105) are bolted to the circular holes on both sides of the main pipe shell (1) via the fastening screws (101); The circular holes on both sides of the main pipe shell (1) are threadedly connected with long tightening screws (4); the circular holes on both sides of the pressure device shell (2) are bolted to the circular holes on both sides of the main pipe shell (1) through the long tightening screws (4); a pressure spring (201) is movably connected in the circular groove at the top of the pressure device shell (2); and the circular groove at the top of the pressure device (202) is movably connected to the lower part of the circular groove at the bottom of the pressure device shell (2) through the pressure spring (201).
2. A high-strength compensator as claimed in claim 1, characterized in that: Twelve groups of circular threaded connection holes are respectively provided on the outermost sides of the main pipe shell (1); six groups of circular threaded holes are respectively provided on the inner side of the main pipe shell (1) to correspond to the circular threaded holes on both sides of the pressure device shell (2), and are connected by tightening the threads at the bottom of the long screws (4).
3. A high-strength compensator as claimed in claim 1, characterized in that: The telescopic thickened tube A (104) and the telescopic thickened tube B (105) are connected by sliding upward and downward telescopically; the arc at the bottom of the pressure device (202) is fitted and connected to the telescopic thickened tube A (104), and is supported and connected by a pressure spring (201).
4. A high-strength compensator as claimed in claim 1, characterized in that: The outer surface of the thickened tube (3) is provided with four groups of T-shaped sliding grooves with both ends closed, corresponding to the four groups of T-shaped grooves on both sides of the main tube shell (1), and slidably connected via a sliding limiting block (103).