Multi-pipe arrangement structure based on heat distribution pipeline system
By employing various compensating pipeline layout methods in the thermal pipeline system, the problem of unreasonable pipeline system layout has been solved, improving space utilization efficiency and operational convenience, and reducing installation and maintenance difficulty and costs.
Patent Information
- Application Number
- CN202520318602.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-26
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-26
AI Technical Summary
Existing heating pipeline systems are prone to problems such as pipe interference, unreasonable pipeline design, and malfunctioning compensators during layout and installation, leading to installation and maintenance difficulties and increased economic costs.
Multiple methods are used to arrange the multi-pipe structure, including setting up inclined and parallel compensating pipes, and forming various layouts through crossing connections, such as double-layer, staggered, and inverted U-shaped, to optimize the pipe layout, save space and improve operational convenience.
It effectively avoids pipe clashes and unreasonable designs, saves floor space, improves the work efficiency and convenience of staff, and reduces the difficulty and cost of installation and maintenance.
Smart Images

Figure CN223895429U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of thermal pipeline system application technology, and in particular to a multi-pipe arrangement structure based on thermal pipeline systems. Background Technology
[0002] Heating pipes are a type of piping system specifically designed to transport heat energy. They are typically made of metallic materials, such as steel or copper, and are designed to withstand high-temperature environments and ensure safe operation. In urban heating systems, heating pipes are responsible for delivering heat energy generated by heat sources to various buildings, providing residents with a comfortable indoor environment. This includes heating and hot water supply for residential, commercial, and office buildings.
[0003] When installing existing heating pipeline systems, the arrangement of multiple pipelines can easily lead to problems such as pipeline interference, unreasonable pipeline design, malfunctioning compensators, large space occupation, and complex layout. These issues cause difficulties for workers in installation and subsequent maintenance, thereby increasing the overall economic cost. Therefore, this utility model proposes a multi-pipe arrangement structure based on heating pipeline systems. Utility Model Content
[0004] The technical problem to be solved by this utility model is to provide a multi-pipe arrangement structure based on a thermal pipeline system. By arranging multiple pipes in various ways, it avoids situations such as pipe interference, unreasonable pipeline design, and malfunctioning compensators within a reasonable space, thus eliminating some unreasonable situations in multi-pipe design from the source.
[0005] To solve the above-mentioned technical problems, the present invention provides a multi-pipe arrangement structure based on a thermal pipeline system, including multiple thermal pipelines, wherein a compensation structure is provided at the middle position of the multiple thermal pipelines.
[0006] The present invention is further configured such that: the compensation structure includes a compensation pipe A, a compensation pipe B and a compensation pipe C arranged at inclinations and parallel to each other, the compensation pipe C crosses the heat pipes connected at the inlets of the compensation pipes A and B, the compensation pipes B and A both cross the heat pipes connected at the outlets of the compensation pipe C, and the compensation pipes A and C are respectively located on both sides of the compensation pipe B.
[0007] The above technical solution utilizes one compensation pipe to intersect and cross the other two compensation pipes, thereby saving floor space in the layout of straight thermal pipelines, reducing costs, and facilitating reasonable adjustments based on actual needs in the future.
[0008] The present invention is further configured such that: the compensation structure includes compensation pipes D, E and F arranged at inclination and parallel to each other, and the heat pipes connected to the inlet and outlet of the compensation pipes D, E and F are arranged in a staggered manner.
[0009] The above technical solution allows multiple compensation pipes to be arranged at equal intervals without interfering with each other, ensuring that workers can make reasonable use of the work space and thus improving their efficiency and quality of work.
[0010] The present invention is further configured such that: the compensation structure includes a compensation pipe G, a compensation pipe H, and a compensation pipe I arranged at inclinations and parallel to each other; the heat pipe connected to the compensation pipe G is located at the bottom of the heat pipes connected to the compensation pipes H and I, forming a double-layer arrangement; the compensation pipe G is far away from the compensation pipes H and I, and crosses the heat pipes connected at the outlets of the compensation pipes H and I; the compensation pipe H crosses the heat pipe connected at the inlet of the compensation pipe I, and the compensation pipe I crosses the heat pipe connected at the outlet of the compensation pipe H.
[0011] The above technical solution, taking into account the double-layer layout and space, allows two small-diameter heat pipes to be laid above the large-diameter heat pipe, and keeps the large-diameter compensation pipe away from the two small-diameter compensation pipes. This enables workers to operate the double-layer compensation pipes quickly without interfering with each other, improving the flexibility and convenience of the workers in their work.
[0012] The present invention is further configured such that: the compensation structure includes compensation pipe J, compensation pipe K, compensation pipe L and compensation pipe M, the heat pipes connected to compensation pipe J and compensation pipe K are located on top of the heat pipes connected to compensation pipe L and compensation pipe M, and are arranged in a double layer, the compensation pipes J and compensation pipe K are arranged in a three-section configuration and are arranged in an inverted U-shape, the compensation pipe L crosses the heat pipe connected at the inlet of compensation pipe M, and the compensation pipe M crosses the heat pipe connected at the outlet of compensation pipe M.
[0013] The above technical solution allows for multi-pipe installation using a double-layer compensation method when space is available. Small-diameter pipes are laid in the lower layer, while large-diameter pipes are laid in the upper layer. Furthermore, the upper layer pipes can be laid far away from the heating pipes, enabling workers to operate the double-layer compensation pipes quickly without interference during installation and subsequent maintenance, thus improving the flexibility and convenience of the work.
[0014] The present invention is further configured such that: the compensation structure includes inclined and parallel compensation pipes N, O, P and Q, the heat pipes connected to the compensation pipes N and O are located at the bottom of the heat pipes connected to the compensation pipes P and Q, and are arranged in a double layer; the compensation pipes N and O span the heat pipes connected to the compensation pipes P and Q; the compensation pipes P and Q are far from the compensation pipes N and O, and span the heat pipes connected to the compensation pipes N and O.
[0015] The above technical solution allows for the installation of four pipes using this compensation method when space is limited. By using a double-layer setup, multiple pipes can be divided into layers, with small-diameter pipes laid in the lower layer and large-diameter pipes laid in the upper layer. This allows multiple pipes to be installed reasonably within a limited space during compensation installation and facilitates future maintenance.
[0016] The beneficial effects of this utility model are as follows:
[0017] The multi-pipe arrangement structure based on the thermal pipeline system proposed in this utility model avoids pipe interference, unreasonable pipeline design, and malfunctioning compensators within a reasonable space by arranging multiple pipes in various ways, thus eliminating some unreasonable situations in multi-pipe design from the source. Attached Figure Description
[0018] Figure 1 This is a top view of Embodiment 1 of the present utility model;
[0019] Figure 2 This is a top view of Embodiment 2 of the present invention;
[0020] Figure 3 This is a top view of Embodiment 3 of the present invention;
[0021] Figure 4 This is a top view of Embodiment 4 of the present invention;
[0022] Figure 5 This is a top view of Embodiment 5 of the present invention.
[0023] In the diagram: 1. Thermal pipeline; 2. Compensation structure; 201. Compensation pipeline A; 202. Compensation pipeline B; 203. Compensation pipeline C; 204. Compensation pipeline D; 205. Compensation pipeline E; 206. Compensation pipeline F; 207. Compensation pipeline G; 208. Compensation pipeline H; 209. Compensation pipeline I; 210. Compensation pipeline J; 211. Compensation pipeline K; 212. Compensation pipeline L; 213. Compensation pipeline M; 214. Compensation pipeline N; 215. Compensation pipeline O; 216. Compensation pipeline P; 217. Compensation pipeline Q. Detailed Implementation
[0024] The preferred embodiments of the present invention will now be described in detail with reference to the accompanying drawings, so that the advantages and features of the present invention can be more easily understood by those skilled in the art, thereby making a clearer and more definite definition of the scope of protection of the present invention.
[0025] The multi-pipe arrangement structure based on the thermal pipeline system includes multiple thermal pipelines 1, and a compensation structure 2 is set in the middle of the multiple thermal pipelines 1.
[0026] Example 1:
[0027] like Figure 1 As shown, the compensation structure 2 includes three inclined and parallel compensation pipes: A201, B202, and C203. Compensation pipe C203 crosses the heat pipe 1 connected at the inlet of compensation pipes A201 and B202. Compensation pipes B202 and A201 both cross the heat pipe 1 connected at the outlet of compensation pipe C203. Compensation pipes A201 and C203 are located on both sides of compensation pipe B202. By using one compensation pipe to pass through the other two compensation pipes, the floor space of the straight heat pipe 1 is saved, thereby reducing costs and facilitating reasonable adjustments according to actual needs in the future.
[0028] Example 2:
[0029] like Figure 2 As shown, the compensation structure 2 includes compensation pipes D204, E205, and F206 arranged at inclinations and parallel to each other. The heat pipes 1 connected to the inlets and outlets of the compensation pipes D204, E205, and F206 are staggered, which facilitates the equal spacing of multiple compensation pipes without interference, ensuring that workers can make reasonable use of the workspace, thereby improving the efficiency and quality of their work.
[0030] Example 3:
[0031] like Figure 3As shown, the compensation structure 2 includes three inclined and parallel compensation pipes: G207, H208, and I209. The heating pipe 1 connected to compensation pipe G207 is located at the bottom of the heating pipe 1 connected to compensation pipes H208 and I209, forming a double-layer arrangement. Compensation pipe G207 is away from compensation pipes H208 and I209 and crosses the heating pipe 1 connected at the outlet of compensation pipes H208 and I209. Compensation pipe H208 crosses the heating pipe 1 connected at the inlet of compensation pipe I209, and compensation pipe I209 crosses the heating pipe 1 connected at the outlet of compensation pipe H208. Considering the double-layer arrangement and space, two small-diameter heating pipes 1 can be laid above the large-diameter heating pipe 1, and the large-diameter compensation pipe is kept away from the two small-diameter compensation pipes. This allows workers to operate the double-layer compensation pipes quickly without interfering with each other, improving the flexibility and convenience of workers in their work.
[0032] Example 4:
[0033] like Figure 4 As shown, the compensation structure 2 includes compensation pipes J210, K211, L212, and M213. The heating pipe 1 connected to compensation pipes J210 and K211 is located on top of the heating pipe 1 connected to compensation pipes L212 and M213, forming a double-layer arrangement. Compensation pipes J210 and K211 are arranged in three sections in an inverted U-shape. Compensation pipe L212 crosses the heating pipe 1 connected at the inlet of compensation pipe M213, and compensation pipe M213 crosses the heating pipe 1 connected at the outlet of compensation pipe M213. When space is sufficient, this double-layer compensation method can be used for multi-pipe installation, with a small-diameter pipe laid in the lower layer and a large-diameter pipe laid in the upper layer. The upper pipe can be laid away from the laying line of heating pipe 1, allowing workers to quickly operate the double-layer compensation pipes without interference during installation and subsequent maintenance, improving the flexibility and convenience of the workers.
[0034] Example 5:
[0035] like Figure 5As shown, the compensation structure 2 includes inclined and parallel compensation pipes N214, O215, P216, and Q217. The heating pipe 1 connected to compensation pipes N214 and O215 is located at the bottom of the heating pipe 1 connected to compensation pipes P216 and Q217, forming a double-layer arrangement. Compensation pipes N214 and O215 cross over the heating pipe 1 connected to compensation pipes P216 and Q217, while compensation pipes P216 and Q217 are away from compensation pipes N214 and O215 and cross over the heating pipe 1 connected to compensation pipes N214 and O215. This compensation method allows for the installation of four pipes when space is limited. The double-layer arrangement allows for the layering of multiple pipes, with smaller diameter pipes laid in the lower layer and larger diameter pipes laid in the upper layer. This enables the multiple pipes to be installed reasonably within a limited space during compensation installation and facilitates later maintenance.
[0036] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the description and drawings of this utility model, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A multi-pipe arrangement structure based on a thermal pipeline system, comprising multiple thermal pipelines (1), characterized in that: A compensation structure (2) is provided at the middle position of multiple of the heat pipes (1).
2. The multi-pipe arrangement structure based on a thermal pipeline system according to claim 1, characterized in that: The compensation structure (2) includes a compensation pipe A (201), a compensation pipe B (202) and a compensation pipe C (203) arranged at inclinations and parallel to each other. The compensation pipe C (203) crosses the heat pipe (1) connected at the inlet of the compensation pipe A (201) and the compensation pipe B (202). The compensation pipe B (202) and the compensation pipe A (201) both cross the heat pipe (1) connected at the outlet of the compensation pipe C (203). The compensation pipe A (201) and the compensation pipe C (203) are located on both sides of the compensation pipe B (202).
3. The multi-pipe arrangement structure based on a thermal pipeline system according to claim 1, characterized in that: The compensation structure (2) includes a compensation pipe D (204), a compensation pipe E (205) and a compensation pipe F (206) arranged in an inclined and parallel manner. The thermal pipes (1) connected to the inlet and outlet of the compensation pipes D (204), E (205) and F (206) are arranged in a staggered manner.
4. The multi-pipe arrangement structure based on a thermal pipeline system according to claim 1, characterized in that: The compensation structure (2) includes a compensation pipe G (207), a compensation pipe H (208), and a compensation pipe I (209) that are inclined and parallel to each other. The heat pipe (1) connected to the compensation pipe G (207) is located at the bottom of the heat pipe (1) connected to the compensation pipe H (208) and the compensation pipe I (209), forming a double layer. The compensation pipe G (207) is far away from the compensation pipe H (208) and the compensation pipe I (209) and crosses the heat pipe (1) connected at the outlet of the compensation pipe H (208) and the compensation pipe I (209). The compensation pipe H (208) crosses the heat pipe (1) connected at the inlet of the compensation pipe I (209), and the compensation pipe I (209) crosses the heat pipe (1) connected at the outlet of the compensation pipe H (208).
5. The multi-pipe arrangement structure based on a thermal pipeline system according to claim 1, characterized in that: The compensation structure (2) includes compensation pipe J (210), compensation pipe K (211), compensation pipe L (212) and compensation pipe M (213). The heat pipe (1) connected to the compensation pipe J (210) and compensation pipe K (211) is located on top of the heat pipe (1) connected to the compensation pipe L (212) and compensation pipe M (213), and is arranged in a double layer. The compensation pipe J (210) and compensation pipe K (211) are arranged in three sections and are arranged in an inverted U-shape. The compensation pipe L (212) crosses the heat pipe (1) connected at the inlet of the compensation pipe M (213), and the compensation pipe M (213) crosses the heat pipe (1) connected at the outlet of the compensation pipe M (213).
6. The multi-pipe arrangement structure based on a thermal pipeline system according to claim 1, characterized in that: The compensation structure (2) includes inclined and parallel compensation pipes N (214), O (215), P (216) and Q (217). The heat pipe (1) connected to the compensation pipes N (214) and O (215) is located at the bottom of the heat pipe (1) connected to the compensation pipes P (216) and Q (217), and is arranged in a double layer. The compensation pipes N (214) and O (215) cross the heat pipe (1) connected to the compensation pipes P (216) and Q (217). The compensation pipes P (216) and Q (217) are far away from the compensation pipes N (214) and O (215) and cross the heat pipe (1) connected to the compensation pipes N (214) and O (215).