Pipe supporting ring for heat preservation

By using a shell and stop components made of polymer materials, combined with a groove design, thermal insulation materials, and aerogel, the problem of high thermal conductivity of the tube bundle components is solved, thereby improving the insulation effect and providing stable positioning, achieving energy saving and power saving.

CN223868844UActive Publication Date: 2026-02-03DIRECTLYTEK TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520731039.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-17
Publication Date
2026-02-03
Estimated Expiration
2035-04-17

AI Technical Summary

Technical Problem

Existing tube bundle components have high thermal conductivity, which leads to rapid heat conduction in high-temperature fluid pipelines, damaging the insulation effect. Furthermore, conventional insulation materials cannot meet the requirements for pressure resistance and stability.

Method used

The shell is made of polymer material, combined with a stop component and groove design, and filled with thermal insulation material and aerogel to form a closed air chamber to reduce heat conduction and improve the thermal insulation effect.

Benefits of technology

It significantly reduces heat conduction between tube bundle components and pipelines, improves insulation effect, stabilizes and limits positioning, saves energy and electricity, and enhances thermal insulation performance through aerogel.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a heat preservation pipe supporting ring which is mainly characterized in that the heat preservation pipe supporting ring comprises a sleeve shell part and a pipeline penetrating and sleeving hole oppositely formed in the center of the sleeve shell part, and the pipeline penetrating and sleeving hole is used for being arranged outside a heat preservation conveying pipe in a sleeving mode; wherein the sleeve shell part is made of a high polymer material with heat insulation and high pressure resistance, the heat conduction of the sleeve shell part is between 0.2 W / Mk and 0.4 W / Mk, the compressive strength of the sleeve shell part is between 100 kgf / cm and 2000 kgf / cm, the high temperature resistance of the sleeve shell part is between 170 DEG C and 240 DEG C, and the thickness of the sleeve shell part is between 5 mm and 25 mm; the sleeve shell part is further provided with a stop component in an assembled mode, and the stop component is provided with a convex abutting part used for abutting against the heat preservation conveying pipe, so that the sleeve shell part is relatively limited.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a pipe support ring, in particular to a pipe support ring for heat preservation. BACKGROUND

[0002] In terms of manufacturing practice, some processes must transport some high-temperature fluids through the extension of pipes, and the temperature of the fluids must be maintained within a certain range during transportation.

[0003] Therefore, the relevant industry usually wraps the outside of the pipe with heat insulation materials to achieve the effect of heat preservation. However, because the pipe that transports high-temperature fluids usually has a considerable extension length, in order to stably support the pipe, pipe bundle members are used to hold and limit the pipe at every interval position of the pipe. The relevant industry has found that the pipe bundle members are usually made of high-rigidity metal materials, which have excellent thermal conductivity. Because the pipe bundle members directly clamp the pipe, the heat of the pipe is directly conducted through the pipe bundle members, thereby breaking the aforementioned heat preservation mechanism.

[0004] Perhaps the relevant industry can also wrap the pipe bundle members with general known heat insulation materials, but the problem is that the characteristics of the pipe bundle members require compression resistance and stability functions for the pipe. However, general known heat insulation materials are usually in a foamed form, so they cannot meet the functional requirements. This part is an important technical issue that deserves attention and breakthrough by the relevant industry. SUMMARY

[0005] The main purpose of the utility model is to provide a pipe support ring for heat preservation. The technical problem to be solved is how to develop a new type of heat preservation pipe support ring with more ideal practicality. The pipe support ring for heat preservation is specially used for holding and limiting the pipe bundle members of a heat preservation conveying pipe.

[0006] Based on the foregoing purpose, the utility model is achieved as follows.

[0007] A pipe support ring for heat preservation includes a sleeve part and a pipe passing hole formed in the center of the sleeve part. The pipe passing hole is used to wrap the outside of a heat preservation conveying pipe. The sleeve part is made of a high polymer material with heat insulation and high compression resistance. The thermal conductivity is between 0.2 and 0.4 W / Mk, the compression strength is between 100 and 2000 kgf / cm², the high temperature resistance is between 170 and 240 degrees Celsius, and the thickness of the sleeve part is between 5 and 25 mm. The sleeve part is further provided with a stop member with a protruding part to abut against the heat preservation conveying pipe, thereby limiting the sleeve part.

[0008] The utility model discloses a pipe support ring for heat preservation, which can effectively and significantly reduce the heat conduction between the heat preservation conveying pipe and the pipe bundle component, thereby achieving the effect of energy saving and power saving.

[0009] The pipe support ring for heat preservation can effectively and significantly reduce the heat conduction between the heat preservation conveying pipe and the pipe bundle component, thereby achieving the effect of energy saving and power saving. The stop component can effectively compensate for the problem that the sleeve part is easy to slide due to being composed of a high polymer material, and can stably limit the use state of the pipe support ring for heat preservation. The pipe support ring for heat preservation has the advantages of further improving the heat insulation effect and practical progressiveness.

[0010] The pipe support ring for heat preservation can effectively and significantly reduce the heat conduction between the heat preservation conveying pipe and the pipe bundle component, thereby achieving the effect of energy saving and power saving. The stop component can effectively compensate for the problem that the sleeve part is easy to slide due to being composed of a high polymer material, and can stably limit the use state of the pipe support ring for heat preservation. The pipe support ring for heat preservation has the advantages of further improving the heat insulation effect and practical progressiveness.

[0011] The pipe support ring for heat preservation can effectively and significantly reduce the heat conduction between the heat preservation conveying pipe and the pipe bundle component, thereby achieving the effect of energy saving and power saving. The stop component can effectively compensate for the problem that the sleeve part is easy to slide due to being composed of a high polymer material, and can stably limit the use state of the pipe support ring for heat preservation. The pipe support ring for heat preservation has the advantages of further improving the heat insulation effect and practical progressiveness.

[0012] The pipe support ring for heat preservation can effectively and significantly reduce the heat conduction between the heat preservation conveying pipe and the pipe bundle component, thereby achieving the effect of energy saving and power saving. The stop component can effectively compensate for the problem that the sleeve part is easy to slide due to being composed of a high polymer material, and can stably limit the use state of the pipe support ring for heat preservation. The pipe support ring for heat preservation has the advantages of further improving the heat insulation effect and practical progressiveness. BRIEF DESCRIPTION OF DRAWINGS

[0013] Figure 1 It is a combined perspective view of a preferred embodiment of the pipe support ring for heat preservation.

[0014] Figure 2 It is an exploded perspective view of a preferred embodiment of the pipe support ring for heat preservation.

[0015] Figure 3 It is a sectional view of a preferred embodiment of the pipe support ring for heat preservation.

[0016] Figure 4 It is a sectional view of another preferred embodiment of the pipe support ring for heat preservation.

[0017] Figure 5 It is a sectional view of another preferred embodiment of the pipe support ring for heat preservation.

[0018] Figure 6 It is a sectional view of another preferred embodiment of the pipe support ring for heat preservation.

[0019] Figure 7 is a sectional view of another preferred embodiment of the pipe support ring for heat preservation of the utility model.

[0020] Figure 8 is a variation embodiment diagram of the pipe support ring for heat preservation of the utility model, in which the groove is filled with thermal insulation material.

[0021] Figure 9 is a variation example perspective view of the thermal insulation material of the pipe support ring for heat preservation of the utility model, which includes a soft bag and aerogel contained in the soft bag.

[0022] Figure 10 is a sectional view of the disclosed embodiment. Figure 9

[0023] Figure 11 is a grid diagram of the 11 part marked in the figure. Figure 10 DETAILED DESCRIPTION

[0024] Please refer to Figure 1 , 2 , 3, 4, which are preferred embodiments of the pipe support ring for heat preservation of the utility model, but these embodiments are only for illustration and do not limit the structure in the patent application.

[0025] The pipe support ring 100 for heat preservation is specially used for holding each pipe bundle component part 06 of a heat preservation conveying pipe 05; the pipe support ring 100 for heat preservation includes a sleeve part 10 and a pipe line through sleeve hole 20 formed in the center of the sleeve part 10, the pipe line through sleeve hole 20 is used to sleeve the outside of the heat preservation conveying pipe 05; wherein the sleeve part 10 is composed of a high polymer material with heat insulation and high compression resistance, the heat conduction is between 0.2 and 0.4 W / Mk, the compression strength is between 100 and 2000 kgf / cm², the high temperature resistance is between 170 and 240 degrees Celsius, and the thickness of the sleeve part 10 is between 5 and 25 mm; and the sleeve part 10 is further provided with a stop component 30, the stop component 30 has a protruding part 31 abutting against the heat preservation conveying pipe 05, thereby limiting the sleeve part 10 (preventing it from sliding).

[0026] The high polymer material constituting the sleeve part 10 includes any one of the following: polytetrafluoroethylene (PTFE), polyether ether copper (PEEK), and polyphenylene sulfide (PPS). The above-mentioned materials are excellent high polymer materials, which have good electrical and electronic properties, arc resistance, and can maintain ideal mechanical strength and chemical corrosion resistance even in an environment above 200℃. ​​

[0027] like Figure 2 As shown, in this example, the top side of the casing portion 10 of the insulation pipe support ring 100 is further formed with a notch portion 40, which forms a non-closed C-shaped outline relative to the casing portion 10.

[0028] like Figure 4 and Figure 5 As shown, in this example, the housing part 10B of the insulation pipe support ring 100 is composed of two semi-annular components 101 and 102 connected together.

[0029] like Figure 6 and Figure 7 As shown, in this example, the sleeve portion 10 of the insulation pipe support ring 100 is further formed with a plurality of grooves 50. The recessed direction of each groove 50 is consistent with the direction of the pipe through hole 20, and each groove 50 forms a slot 51, which is further sealed by a cover 60. In this example, the arrangement of the grooves 50 and the cover 60 can form several closed air chambers, thereby achieving the advantage of further improving the heat insulation effect of the insulation pipe support ring 100.

[0030] like Figure 6 As shown, each groove 50 is further filled with an insulating material 70. The insulating material 70 includes any one of the following: cellulose, glass wool, rock wool, polystyrene, polyurethane, vermiculite, perlite, animal and plant fibers (flax, cotton, cork, sheep wool, etc.), fabric, plant straw, soil, or aerogel. In this example, the morphological characteristics of the insulating material 70 filled into the grooves 50 are mainly used to further enhance the thermal insulation effect of the pipe support ring 100.

[0031] like Figures 7 to 9 As shown, in this example, the thermal insulation material 70 includes a soft pouch 71 and an aerogel 72 enclosed within the soft pouch 71. The aerogel 72 described in this example is currently considered the lightest solid material in the world with the lowest thermal conductivity. Therefore, its application in the structure of the thermal insulation pipe support ring 100 of this utility model effectively enhances the thermal insulation effect.

[0032] like Figures 1 to 3 As shown, in this example, the stop member 30 is a plurality of bolts 32, so that the housing part 10 forms a through bolt hole 11 on each of the two opposite sides for each bolt 32 to be screwed in. Each bolt 32 has a protruding abutment 31 at one end and a driven end 33 (such as a slotted, cross-shaped, or hexagonal slot) at the other end for connection and drive by existing tools (such as a starter or wrench).

[0033] Based on the above-described structural composition and technical features, the insulation pipe support ring 100 disclosed in this utility model can be specifically applied as follows: Figures 1 to 3As shown, this is a tube bundle support portion 06 for assembly on an insulated conveying pipe 05, the tube bundle support portion 06 as follows: Figure 1 As shown, this is typically a combination of C-shaped steel and P-shaped pipe clamps, as referred to in the industry. The insulation pipe support ring 100 of this invention is clamped inside the P-shaped pipe clamp and covers the outside of the insulation conveying pipe 05. Because the casing 10 is made of a heat-insulating and highly compressive polymer material, it effectively and significantly reduces heat conduction between the insulation conveying pipe 05 and the pipe bundle component support part 06, thereby achieving energy saving. Furthermore, the stop member 30 effectively compensates for the problem of easy slippage of the casing 10 due to its polymer material composition, thus ensuring the stable and limited use of the insulation pipe support ring 100.

Claims

1. A pipe support ring for thermal insulation, specifically designed for supporting various pipe bundle components assembled in a thermal insulation conveying pipe; the pipe support ring for thermal insulation is characterized in that... The device includes a shell and a pipe through hole formed in the center of the shell. The pipe through hole is used to fit over the outside of the insulated conveying pipe. The shell is made of a high-molecular material with heat insulation and high compressive strength. Its thermal conductivity is between 0.2 and 0.4 W / Mk, its compressive strength is between 100 and 2000 kgf / cm², its high temperature resistance is between 170 and 240 degrees Celsius, and its thickness is between 5 and 25 mm. The shell is also equipped with a stop member with a protruding part to abut against the insulated conveying pipe, thereby limiting the shell.

2. The insulation pipe support ring according to claim 1, characterized in that... The polymeric materials constituting the casing include any one of the following: polytetrafluoroethylene, polyether ether copper, and polyphenylene sulfide.

3. The insulation pipe support ring according to claim 1, characterized in that... The top side of the casing of the insulation pipe support ring has a notch, which forms a non-closed C-shaped profile of the casing.

4. The insulation pipe support ring according to claim 1, characterized in that... The housing of the pipe support ring for thermal insulation is composed of two semi-ring-shaped components joined together.

5. The insulation pipe support ring according to claim 1, characterized in that... The sleeve portion of the insulation pipe support ring is further formed with a plurality of grooves, the recessed direction of each groove is consistent with the direction of the pipe through hole, and each groove forms a slot, which is further sealed by a cover.

6. The insulation pipe support ring according to claim 4, characterized in that... Each groove is further filled with thermal insulation material.

7. The insulation pipe support ring according to claim 6, characterized in that... Thermal insulation materials include any one of the following: cellulose, glass wool, rock wool, polystyrene, polyurethane, vermiculite, perlite, animal or plant fibers, fabric, plant straw, soil, or aerogel.

8. The insulation pipe support ring according to claim 6, characterized in that... The thermal insulation material comprises a soft capsule and an aerogel enclosed within the soft capsule.

9. The insulation pipe support ring according to claim 1, characterized in that... The stop member consists of multiple bolts, so that a through bolt hole is formed on each of the two opposite sides of the housing for each bolt to be screwed in. One end of each bolt forms a protruding abutment, and the other end is the driven end for use with existing tool assembly for driving.