A highly adaptable support assembly for a heating pipe

CN224665496UActive Publication Date: 2026-08-21JINAN HUITONG HEAT CO LTD
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Patent Information

Application Number
CN202522208603.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-20
Publication Date
2026-08-21
Estimated Expiration
2035-10-20

AI Technical Summary

Technical Problem

[0004]为了改善上述背景技术中管道支撑不稳定的问题,本实用新型提供一种高适应性供热管道用支撑组件

Benefits of technology

1.本实用新型提供了一种高适应性的供热管道用支撑组件,双层垫板的下层适配板嵌入在承载框架,通过在下层适配板上固定连接不同高度的连接梁和不同弧度的上层贴合板,实现上层贴合板与供热管道的良好贴合,以适配不同规格的供热管道,保证支撑稳定性。

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Abstract

The utility model relates to a kind of high adaptability support assembly for heating pipeline, it is related to the technical field of heating pipeline auxiliary equipment, it includes bottom plate and the arc-shaped bearing frame being set on it, double-layer backing plate is connected with the inside of bearing frame towards heating pipeline side, double-layer backing plate includes arc-shaped upper layer adhering plate and lower layer adaptation board being coaxially arranged inside and outside, by fixedly connecting the connecting beam of different height and the upper layer adhering plate of different radian on lower layer adaptation board, it is adapted to different specifications of heating pipeline;The inner arc surface of bearing frame is towards heating pipeline side and is provided with the recess of accommodating lower layer adaptation board, buffer layer is arranged between recess inside and lower layer adaptation board, the impact force caused by displacement and external vibration of heating pipeline due to thermal expansion and cold shrink is evenly dispersed to buffer layer, avoid rigid damage to heating pipeline and support assembly itself;Arc plate is installed above upper layer adhering plate, and upper layer adhering plate and arc plate form annular clamping space.
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Description

Technical Field

[0001] This utility model relates to the technical field of auxiliary equipment for heating pipelines, and in particular to a support component for highly adaptable heating pipelines. Background Technology

[0002] In heating systems, heating pipelines are the core carriers of heat energy transmission. The stable support of heating pipelines is a key link to ensure the safe operation of the system, and its long-term stable operation depends on reliable support components.

[0003] Existing support components have insufficient support fit. For pipes of different specifications, the gap between the support plate and the outer wall of the pipe is large, which leads to stress concentration, causing pipe shaking and local wear, resulting in safety hazards. At the same time, most of the products on the market use support beams to support heating pipes. When the heating pipes are subjected to internal and external impacts, they are prone to hard damage to the heating pipes and support components themselves. Utility Model Content

[0004] To improve the problem of unstable pipe support in the above-mentioned background art, this utility model provides a support component for highly adaptable heating pipes.

[0005] The present invention provides a highly adaptable support assembly for heating pipelines, which adopts the following technical solution: A highly adaptable support assembly for heating pipelines is provided for supporting heating pipelines. It includes a base plate and an arc-shaped load-bearing frame disposed thereon. The arc-shaped opening of the load-bearing frame faces upward and is internally fitted with a double-layer pad. The double-layer pad includes an arc-shaped upper bonding plate and a lower adapter plate arranged coaxially inside and outside. The lower adapter plate and the upper bonding plate are connected and fixed by a connecting beam. The upper bonding plate is adapted to the outer diameter of the heating pipe. The arc-shaped opening of the bearing frame is provided with a groove to accommodate the lower adapter plate. The edge of the groove is provided with a limiting baffle to restrict the lower adapter plate from detaching, and a buffer layer is provided between the inner part of the groove and the lower adapter plate.

[0006] Preferably, an arc-shaped plate with an opening facing downwards is installed above the upper bonding plate. The upper bonding plate and the arc-shaped plate together form an annular clamping space that fits against the outer wall of the heating pipe. Lifting lugs are connected to both sides of the upper bonding plate and both sides of the arc-shaped plate and are fastened with bolts.

[0007] Preferably, the bolt is a countersunk bolt, and the lifting lug has a countersunk hole adapted to the bolt head. The head of the countersunk bolt is recessed into the countersunk hole and does not protrude from the upper surface of the lifting lug. The opening of the countersunk hole is sealed with a plug that is interference-fitted with the countersunk hole.

[0008] Preferably, the connecting beam is provided with a number of reinforcing ribs at intervals around its periphery.

[0009] Preferably, the buffer layer is filled with an elastic rubber pad, which is bonded and fixed to the inner wall of the groove by an adhesive.

[0010] Preferably, the buffer layer has positioning posts distributed within it, and the positioning posts penetrate the bottom of the elastic rubber pad.

[0011] Preferably, there are two load-bearing frames, which are fixedly installed on the upper surface of the same base plate and arranged at intervals along the axial direction of the heating pipe.

[0012] In summary, this utility model has the following beneficial technical effects: 1. This utility model provides a highly adaptable support component for heating pipelines. The lower adapter plate of the double-layer pad is embedded in the load-bearing frame. By fixing and connecting beams of different heights and upper bonding plates of different curvatures to the lower adapter plate, a good fit between the upper bonding plate and the heating pipeline is achieved, so as to adapt to heating pipelines of different specifications and ensure the stability of the support.

[0013] 2. This utility model has excellent buffering performance. The pad evenly distributes the displacement of the heating pipe caused by thermal expansion and contraction and the impact force caused by external vibration to the buffer layer inside the bearing frame, avoiding hard damage to the heating pipe and support components themselves, and extending the service life of the heating pipe and support components.

[0014] 3. In this utility model, the countersunk bolt is sunk into the countersunk hole and sealed with a plug, which effectively protects the bolt and prevents dust, impurities and other contaminants from entering the countersunk hole, and prevents the bolt from being damaged by external corrosion and impact. Attached Figure Description

[0015] Figure 1 This is an exploded structural diagram of a support component for a highly adaptable heating pipeline according to an embodiment of the present invention; Figure 2 This is a schematic diagram of the external structure of a support component for a highly adaptable heating pipeline according to an embodiment of the present utility model; Figure 3 This is a perspective view of the internal structure of a support assembly for a highly adaptable heating pipeline according to an embodiment of this utility model; Figure 4 This is a schematic diagram of the installation of the heating pipeline according to an embodiment of the present utility model; Figure 5 yes Figure 4 Enlarged diagram of point A in the middle.

[0016] Explanation of reference numerals in the attached diagram: 1. Heating pipe; 2. Base plate; 3. Load-bearing frame; 31. Groove; 32. Limiting baffle; 33. Buffer layer; 331. Elastic rubber pad; 332. Positioning post; 4. Double-layer pad; 41. Lower adapter plate; 42. Upper bonding plate; 43. Connecting beam; 44. Reinforcing rib; 5. Curved plate; 6. Lifting lug; 61. Bolt; 62. Countersunk hole; 63. Plug; 7. Anti-slip and shock-absorbing pads. Detailed Implementation

[0017] The following combination Figures 1-5 The present invention will be described in further detail below.

[0018] This utility model discloses a support component for highly adaptable heating pipelines.

[0019] Reference Figure 1 , Figure 4 A highly adaptable support assembly for heating pipelines is used to support heating pipeline 1. It includes a base plate 2 and an arc-shaped load-bearing frame 3 fixed thereon. Mounting holes are opened at appropriate positions on the side of the base plate 2 so as to fix the support assembly on the mounting beam or a preset mounting position. The arc-shaped opening of the load-bearing frame 3 faces upward and is fitted with a double-layer pad 4 inside. The double-layer pad 4 includes an arc-shaped upper bonding plate 42 and a lower adapter plate 41 arranged coaxially inside and outside. The lower adapter plate 41 and the upper bonding plate 42 are connected and fixed by a connecting beam 43. By adapting the connecting beam 43 of different heights and the upper bonding plate 42 of different curvatures, the inner diameter of the arc structure formed by the upper bonding plate 42 changes, which can achieve good fit between the upper bonding plate 42 and the heating pipe 1 of different specifications, and ensure the stability of the support.

[0020] The arc-shaped opening of the supporting frame 3 has a groove 31 for accommodating the lower adapter plate 41. The size of the groove 31 matches the size of the lower adapter plate 41, ensuring that the lower adapter plate 41 can be tightly locked in the groove 31. A limiting baffle 32 is provided at the edge of the groove 31 to prevent the lower adapter plate 41 from falling out. A buffer layer 33 is provided between the inside of the groove 31 and the lower adapter plate 41. The double-layer pad 4 evenly distributes the displacement of the heating pipe 1 caused by thermal expansion and contraction and the impact force caused by external vibration to the buffer layer 33, avoiding hard damage to the heating pipe 1 and the supporting components themselves.

[0021] Reference Figure 1 , Figure 4 , Figure 5An arc-shaped plate 5 with an opening facing downwards is installed above the upper bonding plate 42. The upper bonding plate 42 and the arc-shaped plate 5 enclose and form an annular clamping space that fits against the outer wall of the heating pipe 1, further improving the fit and clamping stability between the support component and the heating pipe 1. Lifting lugs 6 are connected to both sides of the upper bonding plate 42 and both sides of the arc-shaped plate 5 and are fastened by bolts 61. Spring washers are installed between the bolts 61 and the lifting lugs 6 to prevent loosening.

[0022] Bolt 61 is a countersunk bolt. The lifting lug 6 has a countersunk hole 62 that matches the head of bolt 61. The head of bolt 61 is recessed into the countersunk hole 62 and does not protrude from the upper surface of the lifting lug 6, preventing the head of bolt 61 from being damaged by external corrosion and impact. The opening of the countersunk hole 62 is sealed with a plug 63 that is interference-fitted with the countersunk hole 62. The plug 63 is made of rubber and its outer diameter is 0.5-1mm larger than the inner diameter of the countersunk hole 62 to achieve an interference fit and ensure a tight seal. The plug 63 can prevent dust, impurities and other contaminants from entering the countersunk hole 62 and ensure the normal use of bolt 61.

[0023] The curved plate 5 and the upper bonding plate 42 are attached to the side of the heating pipe 1 with a nitrile rubber anti-slip and shock-absorbing pad 19. The surface of the anti-slip and shock-absorbing pad 19 has a serrated anti-slip texture.

[0024] Reference Figure 1 , Figure 2 , Figure 3 The connecting beam 43 is provided with a number of reinforcing ribs 44 at intervals around its periphery. In this embodiment, the connecting beam 43 is provided with two parallel sections, and the inner sides of the two sections of the connecting beam 43 are provided with reinforcing ribs 44 at intervals. The reinforcing ribs 44 can effectively disperse the pressure transmitted by the upper bonding plate 42 and prevent the connecting beam 43 from deforming due to excessive force, thereby improving the overall load-bearing capacity of the double-layer pad 4.

[0025] Reference Figure 1 , Figure 2 , Figure 3 The buffer layer 33 is filled with an elastic rubber pad 331, which is bonded to the inner wall of the groove 31 with an adhesive. Positioning posts 332 are distributed within the buffer layer 33, penetrating the bottom of the elastic rubber pad 331 to position and limit its movement, preventing excessive deformation or displacement during stress. When the heating pipe 1 experiences displacement due to thermal expansion and contraction or is subjected to external vibrations during use, the elastic rubber pad 331 in the buffer layer 33 absorbs the impact force, preventing hard damage to the heating pipe 1 and its supporting components, effectively protecting them. There are two load-bearing frames 3 to support a section of heating pipe 1. The two load-bearing frames 3 are fixedly installed on the upper surface of the same base plate 2 and are arranged at intervals along the axial direction of the heating pipe 1. When there are multiple parallel heating pipes 1, multiple load-bearing frames 3 are set laterally to support multiple heating pipes 1.

[0026] The implementation principle of a highly adaptable support component for heating pipelines according to this utility model embodiment is as follows: Measure the diameter of the heating pipe 1 in advance. Based on the different specifications of the heating pipe 1, weld the connecting beam 43 of the corresponding height and the upper bonding plate 42 of the corresponding curvature on the lower adapter plate 41 to achieve the matching of the double-layer pad 4 with the specifications of the heating pipe 1 and the good bonding of the upper bonding plate 42 with the heating pipe 1 of different specifications. The base plate 2 is fixed to the mounting beam or the preset installation position with bolts. Then, the elastic rubber pad 331 is glued and fixed in the groove 31 of the bearing frame 3. Next, the lower adapter plate 41 of the double-layer pad 4 is snapped into the groove 31. The lower adapter plate 41 is limited by the limiting baffle 32. The above steps can be completed before the actual installation of the heating pipe 1.

[0027] Place the heating pipe 1 on the upper bonding plate 42 of the double-layer pad 4, cover it with the arc plate 5, so that the annular clamping space formed by the upper bonding plate 42 and the arc plate 5 is tightly fitted with the outer wall of the heating pipe 1. Then, fasten the lifting lug 6 with countersunk bolts. Finally, insert the plug 63 into the countersunk hole 62 to complete the installation of the support component.

[0028] The above are all preferred embodiments of this utility model, and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape and principle of this utility model should be covered within the scope of protection of this utility model.

Claims

1. A highly adaptable support assembly for heating pipelines, used to support heating pipelines (1), characterized in that: It includes a base plate (2) and an arc-shaped support frame (3) disposed thereon, wherein the arc-shaped opening of the support frame (3) faces upward and is fitted with a double-layer pad (4) inside. The double-layer pad (4) includes an arc-shaped upper bonding plate (42) and a lower adapter plate (41) arranged coaxially inside and outside. The lower adapter plate (41) and the upper bonding plate (42) are connected and fixed by a connecting beam (43). The upper bonding plate (42) is adapted to the outer diameter of the heating pipe (1). The arc-shaped opening of the bearing frame (3) is provided with a groove (31) for accommodating the lower adapter plate (41). The edge of the groove (31) is provided with a limiting baffle (32) to restrict the lower adapter plate (41) from disengaging, and a buffer layer (33) is provided between the inside and the lower adapter plate (41).

2. The support assembly for a highly adaptable heating pipeline according to claim 1, characterized in that: An arc-shaped plate (5) with an opening facing downwards is installed above the upper bonding plate (42). The upper bonding plate (42) and the arc-shaped plate (5) enclose and form an annular clamping space that fits against the outer wall of the heating pipe (1). Lifting lugs (6) are connected to both sides of the upper bonding plate (42) and both sides of the arc-shaped plate (5) and are fastened by bolts (61).

3. A support assembly for a highly adaptable heating pipeline according to claim 2, characterized in that: The bolt (61) is a countersunk bolt. The lug (6) has a countersunk hole (62) that is adapted to the head of the bolt (61). The head of the bolt (61) is sunk into the countersunk hole (62) and does not protrude from the upper surface of the lug (6). The opening of the countersunk hole (62) is sealed with a plug (63) that is interference fit with the countersunk hole (62).

4. A support assembly for a highly adaptable heating pipeline according to claim 1, characterized in that: The connecting beam (43) is provided with several reinforcing ribs (44) at intervals around its periphery.

5. A support assembly for a highly adaptable heating pipeline according to claim 1, characterized in that: The buffer layer (33) is filled with an elastic rubber pad (331), and the elastic rubber pad (331) is bonded and fixed to the inner wall of the groove (31) by an adhesive.

6. A support assembly for a highly adaptable heating pipeline according to claim 5, characterized in that: The buffer layer (33) contains positioning posts (332), which penetrate the bottom of the elastic rubber pad (331).

7. A support assembly for a highly adaptable heating pipeline according to claim 1, characterized in that: There are two load-bearing frames (3), which are fixedly installed on the upper surface of the same base plate (2) and arranged at intervals along the axial direction of the heating pipe (1).