Energy-saving heat transfer copper pipe
By setting fins and inner walls of the copper tube, plum-shaped reinforcement rods and triangular reinforcement ribs are installed, the problem of easy deformation of traditional copper tubes during heat exchange is solved, efficient heat transfer and structural stability are achieved, and service life is extended.
Patent Information
- Application Number
- CN202421609203.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-09
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-07-09
AI Technical Summary
Traditional copper tubes are prone to deform or damage due to temperature changes and pressure fluctuations during heat exchange, which affects the stability and durability of the system and is not very heat transfer efficiency.
Fins are arranged on the outer wall of the copper tube to increase the contact area, and plum-shaped reinforcement rods and triangular reinforcement ribs are arranged on the inner wall to enhance structural strength and disperse the pressure in a high temperature and high pressure environment.
It improves heat exchange efficiency, enhances the stability and durability of copper tubes, extends service life, and reduces energy consumption.
Smart Images

Figure CN223064421U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of copper tubes, and specifically to a copper tube for energy-saving heat transfer. Background Art
[0002] With the rapid development of modern industrial technology, heat exchange systems have been widely used in various fields. Especially in refrigeration, air conditioning, heating, and energy conversion systems, their efficiency directly affects the overall performance and energy consumption of the system. In a heat exchange system, as an important heat transfer component, the heat transfer efficiency and structural stability of a copper tube have an important impact on the system performance.
[0003] Traditional copper tube designs have limitations in heat transfer efficiency. The contact area between the outer wall and the surrounding medium is limited, resulting in low heat transfer efficiency. In addition, during the heat exchange process, the copper tube may be affected by temperature changes and pressure fluctuations, leading to deformation or damage of the copper tube, thereby affecting the stability and durability of the system. In view of the above situation, we have introduced a copper tube for energy-saving heat transfer. Summary of the Utility Model
[0004] The purpose of the utility model is to provide a copper tube for energy-saving heat transfer to solve the problem that the copper tube may be affected by temperature changes and pressure fluctuations during the heat exchange process, resulting in deformation or damage of the copper tube as mentioned in the above background art.
[0005] The technical solution of the utility model is as follows:
[0006] A heat exchanger housing, the inner wall of the heat exchanger housing is evenly distributed with a copper tube main body, the outer wall of the copper tube main body is provided with a first groove, and the inner wall of the first groove is evenly distributed with fins;
[0007] The inner wall of the copper tube main body is provided with a second groove, a reinforcing rod is connected inside the second groove, and a reinforcing rib is fixedly connected to the inner edge of the second groove.
[0008] Furthermore, the reinforcing rod has a plum blossom shape structure, and the end of the reinforcing rod is fixedly connected to the second groove.
[0009] The structural strength of the copper tube is enhanced. Since the copper tube may be affected by temperature changes and pressure fluctuations during the heat exchange process, this structural reinforcement helps to ensure the stability and durability of the copper tube, can effectively prevent the copper tube from deforming in a high-temperature or high-pressure environment, can disperse the pressure, avoid excessive stress on a local area of the copper tube, enhance the structural strength of the copper tube and prevent deformation, and can extend the service life of the copper tube.
[0010] Furthermore, the reinforcing rib has a triangular shape structure, and the surface of the copper tube main body is coated with an anti-corrosion layer.
[0011] The copper pipe is made more robust and durable by the reinforcing ribs that are fixedly connected to form a triangular structure. When facing pressure, vibration, or external impact, it can better maintain its shape and stability, extend the service life of the copper pipe, and optimize the stress distribution of the copper pipe when subjected to external forces, avoiding local damage caused by stress concentration.
[0012] The present utility model provides a copper pipe for energy-saving heat transfer through improvement. Compared with the prior art, it has the following improvements and advantages:
[0013] Firstly: In the present utility model, fins are uniformly and fixedly connected to the inner wall of the first groove. The presence of the fins greatly increases the contact area between the copper pipe and the surrounding medium, thereby improving the efficiency of heat exchange. Moreover, the design of the fins enables heat to be transferred from the copper pipe to the surrounding medium more effectively. Then, the fins not only increase the heat exchange area, but also are horizontally arranged on the surface of the copper pipe body, which can promote the turbulence and perturbation of the fluid, thereby reducing the thermal resistance and improving the heat transfer efficiency.
[0014] Secondly: In the present utility model, reinforcing rods in a plum blossom structure are uniformly fixed to the inner wall of the second groove. The ends of the reinforcing rods uniformly support six groups of second grooves, enhancing the structural strength of the copper pipe. Since the copper pipe may be affected by temperature changes and pressure fluctuations during the heat exchange process, this structural reinforcement helps to ensure the stability and durability of the copper pipe, can effectively prevent the copper pipe from deforming under high-temperature or high-pressure environments, can disperse the pressure, avoid excessive stress on local areas of the copper pipe, enhance the structural strength of the copper pipe and prevent deformation, can extend the service life of the copper pipe, and reinforcing ribs in a triangular structure are fixedly connected to the edge of the second groove, making the copper pipe more robust and durable. When facing pressure, vibration, or external impact, it can better maintain its shape and stability, extend the service life of the copper pipe, and optimize the stress distribution of the copper pipe when subjected to external forces, avoiding local damage caused by stress concentration. Description of the Drawings
[0015] The following further explains the present utility model in conjunction with the drawings and embodiments:
[0016] Figure 1 is a schematic diagram of the overall structure of the present utility model;
[0017] Figure 2 is a schematic diagram of the structure of the copper pipe body of the present utility model;
[0018] Figure 3 is a schematic diagram of the connection structure of the copper pipe body of the present utility model.
[0019] Description of the reference numerals: 1. Heat exchanger housing; 101. Positioning hole; 2. Copper tube body; 201. First groove; 202. Fins; 3. Second groove; 301. Reinforcing rod; 302. Reinforcing rib; 4. Mounting plate; 401. Threaded bolt; 402. Positioning rod. Detailed implementation
[0020] The following will be combined with the attached Figures 1 to 3 The present invention will be described in detail. The technical solutions in the embodiments of the present invention are clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0021] The present invention provides a copper tube for energy-saving heat transfer by improvement, as Figures 1 - 3 shown, which includes a heat exchanger housing 1. The inner wall of the heat exchanger housing 1 is evenly distributed with a copper tube body 2. The outer wall of the copper tube body 2 is provided with a first groove 201, and the inner wall of the first groove 201 is evenly distributed with fins 202;
[0022] The inner wall of the copper tube body 2 is provided with a second groove 3. The inside of the second groove 3 is connected with a reinforcing rod 301, and the inner side edge of the second groove 3 is fixedly connected with a reinforcing rib 302.
[0023] In this embodiment: The first grooves 201 are evenly formed on the outer wall of the copper tube body 2. Then, the inner walls of the first grooves 201 are evenly fixedly connected with fins 202. The presence of the fins 202 greatly increases the contact area between the copper tube and the surrounding medium, thereby improving the heat exchange efficiency. Due to the improvement of the heat transfer efficiency, the energy consumption of the entire heat exchange system is reduced, achieving an energy-saving effect. And the design of the fins 202 enables heat to be transferred from the copper tube to the surrounding medium more effectively. Then, the fins 202 not only increase the heat exchange area, but also are horizontally arranged on the surface of the copper tube body 2, which can also promote the turbulence and disturbance of the fluid, thereby reducing the thermal resistance and improving the heat transfer efficiency. Moreover, the inner wall of the copper tube body 2 is evenly provided with second grooves 3. Then, on the inner walls of the second grooves 3, reinforcing rods 301 in a plum blossom shape are evenly fixed. The ends of the reinforcing rods 301 evenly support the six groups of second grooves 3, enhancing the structural strength of the copper tube. Since the copper tube may be affected by temperature changes and pressure fluctuations during the heat exchange process, this structural reinforcement helps to ensure the stability and durability of the copper tube, can effectively prevent the copper tube from deforming under high-temperature or high-pressure environments, can disperse the pressure, avoid excessive stress on local areas of the copper tube, enhance the structural strength of the copper tube and prevent deformation, and can extend the service life of the copper tube. And at the edges of the second grooves 3, reinforcing ribs 302 in a triangular shape are fixedly connected, making the copper tube more robust and durable. When facing pressure, vibration or external impact, it can better maintain its shape and stability, extend the service life of the copper tube, and can optimize the stress distribution of the copper tube when subjected to external forces, avoiding local damage caused by stress concentration.
[0024] In a preferred embodiment, the reinforcing rods 301 are in a plum blossom shape, and the ends of the reinforcing rods 301 are fixedly connected to the second grooves 3, enhancing the structural strength of the copper tube. Since the copper tube may be affected by temperature changes and pressure fluctuations during the heat exchange process, this structural reinforcement helps to ensure the stability and durability of the copper tube, can effectively prevent the copper tube from deforming under high-temperature or high-pressure environments, can disperse the pressure, avoid excessive stress on local areas of the copper tube, enhance the structural strength of the copper tube and prevent deformation, and can extend the service life of the copper tube.
[0025] In a preferred embodiment, positioning holes 101 are provided on the surface of the heat exchanger housing 1. Both ends of the copper tube body 2 are fixedly connected with mounting plates 4. Six groups of threaded bolts 401 are arranged inside the mounting plates 4. Six groups of positioning rods 402 are fixedly connected to the front end surface of the mounting plates 4. An anti-corrosion layer is coated on the surface of the copper tube body 2. The copper tube body 2 is positioned and connected to the positioning holes 101 on the surface of the heat exchanger housing 1 through the positioning rods 402 on the mounting plates 4, and then the threaded bolts 401 are rotated to complete the installation and locking work. Through the pre-positioning of the positioning rods 402 and the positioning holes 101, the installation process is greatly simplified. Workers only need to align the positioning rods 402 with the positioning holes 101 and then rotate the threaded bolts 401 to complete the installation, without complicated adjustment and calibration work, improving the installation efficiency.
[0026] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to these embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A copper tube for energy-saving heat transfer, characterized in that: It includes a heat exchanger housing (1), the inner wall of the heat exchanger housing (1) is evenly distributed with copper tube bodies (2), the outer wall of the copper tube body (2) is provided with first grooves (201), and the inner walls of the first grooves (201) are evenly distributed with fins (202); The inner wall of the copper tube body (2) is provided with second grooves (3), a reinforcing rod (301) is connected inside the second grooves (3), and a reinforcing rib (302) is fixedly connected to the inner edge of the second grooves (3).
2. The copper tube for energy-saving heat transfer according to claim 1, wherein: The reinforcing rod (301) has a plum blossom shape structure, and the end of the reinforcing rod (301) is fixedly connected to the second groove (3).
3. A copper tube for energy-saving heat transfer according to claim 1, characterized in that: The reinforcing rib (302) has a triangular structure.
4. A copper tube for energy-saving heat transfer according to claim 1, characterized in that: The surface of the heat exchanger housing (1) is provided with positioning holes (101).
5. A copper tube for energy-saving heat transfer according to claim 1, characterized in that: Both ends of the copper tube body (2) are fixedly connected with mounting plates (4), and six groups of threaded bolts (401) are arranged inside the mounting plates (4).
6. The copper tube for energy-saving heat transfer according to claim 5, wherein: Six groups of positioning rods (402) are fixedly connected to the front end face of the mounting plate (4).
7. The copper tube for energy-saving heat transfer according to claim 1, characterized in that: The surface of the copper tube body (2) is coated with an anti-corrosion layer.