Condenser pipeline for marine container

By improving the condenser piping structure and adopting a base, shock absorber, and wraparound piping design, the problems of uneven refrigerant liquid delivery and slow heat dissipation were solved, resulting in a more efficient and stable cooling effect.

CN223992369UActive Publication Date: 2026-03-13YANGZHOU HONGREN IND
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-26
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

The existing condenser piping assembly has a complicated structure, resulting in excessively long refrigerant liquid delivery pipes, uneven cooling and heat dissipation, slow effect, and insufficient stability.

Method used

It adopts a base and condenser loop pipe structure, combined with shock absorber and electromagnetic control valve, and is designed as a loop pipeline. The refrigerant input structure delivers refrigerant evenly from top to bottom, and the sewage discharge structure is center-aligned. It is stably installed using sleeve plates and support plates.

Benefits of technology

It improves the installation stability of the condenser piping, buffers the impact of vibration, and enables rapid and uniform delivery and heat dissipation of the refrigerant liquid, thereby improving refrigeration efficiency and stability.

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Abstract

The utility model provides a condenser pipeline for a marine container, and relates to the technical field of condenser pipelines, the condenser pipeline comprises a base and a concentric-square-shaped condensation pipeline structure, the left side and the right side of the upper end face of the base are each fixedly provided with two sets of sleeve plates, and the concentric-square-shaped condensation pipeline structure is installed among the four sets of sleeve plates; a condensing agent input structure is mounted at the upper end of the condensing concentric-square-shaped pipeline structure, a pollution discharge structure is mounted at the lower end of the condensing concentric-square-shaped pipeline structure, the center of the condensing agent input structure and the center of the pollution discharge structure are located on the same axis, and the condensing agent input structure and the pollution discharge structure are both detachably connected with the condensing concentric-square-shaped pipeline structure; shock absorption dampers are arranged at the four corners of the base correspondingly, and base plates are fixed to the lower ends of the shock absorption dampers. The condensation pipeline is stably installed, the vibration influence is buffered, condensing agent liquid is conveniently, rapidly and evenly conveyed from top to bottom, media in the condensation pipeline are helped to rapidly and evenly refrigerate and dissipate heat, and the device is more efficient, stable and practical.
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Description

Technical Field

[0001] This utility model relates to the field of condenser piping technology, specifically to a condenser piping system for marine containers. Background Technology

[0002] A condenser is a component of a refrigeration system, a type of heat exchanger that converts gas or vapor into liquid, rapidly transferring heat from the tubes to the surrounding air. The condenser operation is exothermic, hence the relatively high temperatures. Power plants use numerous condensers to condense the steam discharged from turbines. The purpose of a condenser is to remove heat from hot steam or gas and convert it into a liquid form. A shell-and-tube design consists of an outer shell or chamber housing a bundle of tubes, typically made of copper, brass, or stainless steel. Hot steam or gas flows through the tubes, while a cooling fluid flows around the tubes within the shell. When hot steam or gas comes into contact with the condenser tubes, it releases heat, which is then transferred to the coolant. This process causes the steam or gas to condense into a liquid, which can then be collected and reused.

[0003] The specification of the condenser piping assembly, heat exchange piping and heat exchange equipment in the prior art (announcement number CN211503333U) mentions that "the condenser piping assembly includes a coil group, the coil group includes a first coil (1) and a second coil (2) arranged alternately along the airflow direction, the first coil (1) is formed as a spiral including multiple turns of the first tube section, the second coil (2) is formed as a spiral including multiple turns of the second tube section, and the second tube section is aligned with the gap between the adjacent first two turns of the tube section along the airflow direction." However, the condenser piping assembly in the prior art has a complicated structure, resulting in an excessively long diameter of the condensate liquid delivery pipe. This not only leads to uneven cooling and heat dissipation, but also to a relatively slow cooling effect, making it unstable and impractical. Utility Model Content

[0004] To overcome the shortcomings of existing technologies, a condenser piping system for marine containers is provided to solve the problems of cumbersome condenser piping system components in existing technologies, which result in excessively long refrigerant liquid delivery pipes, uneven cooling and heat dissipation, slow cooling effect, and instability.

[0005] To achieve the above objectives, a condenser piping system for marine containers is provided, comprising a base and a condenser loop piping structure. Two sets of sleeve plates are fixed on both the left and right sides of the upper end face of the base, and the condenser loop piping structure is installed between the four sets of sleeve plates. A refrigerant input structure is installed at the upper end of the condenser loop piping structure, and a drain structure is installed at the lower end of the condenser loop piping structure. The centers of the refrigerant input structure and the drain structure are located on the same axis, and the refrigerant input structure and the drain structure are detachably connected to the condenser loop piping structure.

[0006] Furthermore, shock absorbers are provided at all four corners of the base, and the lower end of the shock absorbers is fixed with a pad. The base adopts a U-shaped stainless steel base structure.

[0007] Furthermore, the sleeve plate has multiple sets of sleeve holes, and the pipes of the condensation loop pipe structure are arranged through the sleeve holes.

[0008] Furthermore, a lower support plate is provided on the lower part of the inner side of the sleeve plate, and the lower support plate rests on the bottom of the condensing loop pipe structure, and an upper support plate is provided on the upper part of the inner side of the sleeve plate, and the upper support plate presses against the top of the condensing loop pipe structure.

[0009] Furthermore, an output pipe head is provided on the upper left side of the condensation loop pipe structure, and an input pipe head is provided on the lower right side of the condensation loop pipe structure. Both the input pipe head and the output pipe head are equipped with electromagnetic control valves.

[0010] Furthermore, the upper end of the refrigerant input structure is provided with a liquid inlet hopper, and the lower part of the liquid inlet hopper is connected to four sets of upper guide pipes. The lower end of the upper guide pipe is inserted into the interface provided on the upper surface of the condenser loop pipe structure. Multiple sets of middle connecting pipes are provided below the upper guide pipes, and the middle connecting pipes are located between the upper and lower pipes of the condenser loop pipe structure.

[0011] Furthermore, the lower center of the sewage discharge structure is provided with an output port, and the upper part of the output port is connected to four sets of lower guide pipes, and the upper end of the lower guide pipes is inserted into the interface provided on the lower end face of the condensate loop pipe structure.

[0012] The beneficial effects of this utility model are as follows:

[0013] 1. This utility model utilizes four sets of sleeve plates on the base to stably mount the condenser loop pipe structure, which not only ensures the stability of the condenser loop pipe structure installation, but also uses a shock absorber to buffer the impact of vibration, making it safer, more stable and reliable.

[0014] 2. The condenser loop pipe structure of this utility model adopts a bottom-up loop pipe structure, with more space reserved in the center of the pipe structure to facilitate inspection and maintenance, making it more convenient, flexible and practical.

[0015] 3. The refrigerant input structure in this utility model can uniformly deliver refrigerant liquid into the condenser loop structure from top to bottom, resulting in more uniform and rapid cooling and heat dissipation. This helps to improve the overall cooling efficiency of the condenser pipeline, making it faster, more efficient, and more practical. Attached Figure Description

[0016] Figure 1 This is a front view schematic diagram of an embodiment of the present utility model;

[0017] Figure 2 This is a top view schematic diagram of an embodiment of the present utility model;

[0018] Figure 3 This is a schematic diagram of the structure on the base according to an embodiment of the present utility model;

[0019] Figure 4 This is a schematic diagram of the refrigerant input structure according to an embodiment of the present invention;

[0020] Figure 5 This is a schematic diagram of the sewage discharge structure according to an embodiment of the present utility model.

[0021] In the diagram: 1. Base; 10. Vibration damper; 11. Pad; 12. Lower support plate; 13. Sleeve plate; 14. Sleeve hole; 15. Upper support plate; 2. Condensation loop pipeline structure; 20. Inlet pipe head; 21. Outlet pipe head; 3. Refrigerant inlet structure; 30. Liquid inlet hopper; 31. Upper guide pipe; 32. Middle connecting pipe; 4. Drainage structure; 40. Lower guide pipe; 41. Outlet port. Detailed Implementation

[0022] To make the technical problems, technical solutions, and beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. The specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model. Specific details such as particular system structures and technologies are provided to facilitate a more thorough understanding of the embodiments of this utility model. The described embodiments are some, but not all, of the embodiments disclosed herein. However, those skilled in the art should understand that the present utility model can also be implemented in other embodiments without these specific details. All other embodiments obtained by those skilled in the art based on the embodiments of this disclosure without inventive effort are within the scope of protection of this disclosure.

[0023] The specific embodiments of this utility model will now be described in detail with reference to the accompanying drawings.

[0024] Figure 1 This is a front view schematic diagram of an embodiment of the present utility model. Figure 2 This is a top view schematic diagram of an embodiment of the present utility model. Figure 3 This is a schematic diagram of the structure on the base according to an embodiment of the present utility model. Figure 4 This is a schematic diagram of the refrigerant input structure according to an embodiment of the present invention. Figure 5 This is a schematic diagram of the sewage discharge structure according to an embodiment of the present utility model.

[0025] Reference Figures 1 to 5As shown, this utility model provides a condenser piping system for marine containers, including a base 1 and a condenser loop piping structure 2. Two sets of sleeve plates 13 are fixed on both the left and right sides of the upper end face of the base 1, and the condenser loop piping structure 2 is installed between the four sets of sleeve plates 13. A refrigerant input structure 3 is installed at the upper end of the condenser loop piping structure 2, and a drain structure 4 is installed at the lower end of the condenser loop piping structure 2. The centers of the refrigerant input structure 3 and the drain structure 4 are located on the same axis, and the refrigerant input structure 3 and the drain structure 4 are detachably connected to the condenser loop piping structure 2.

[0026] In this embodiment, dampers 10 are provided at the four corners of the base 1, and a pad 11 is fixed at the lower end of the damper 10. The base 1 adopts a base structure made of stainless steel in a U-shape. Multiple sets of sleeve holes 14 are provided on the sleeve plate 13, and the pipes of the condensing U-shaped pipe structure 2 are provided through the sleeve holes 14. A lower support plate 12 is provided on the lower part of the inner side of the sleeve plate 13, and the lower support plate 12 rests on the bottom of the condensing U-shaped pipe structure 2. An upper support plate 15 is provided on the upper part of the inner side of the sleeve plate 13, and the upper support plate 15 is pressed on the top of the condensing U-shaped pipe structure 2.

[0027] As a preferred embodiment, this utility model utilizes four sets of sleeve plates 13 on the base 1 to stably mount the condenser loop pipe structure 2, which not only ensures the stability of the condenser loop pipe structure 2 installation, but also uses the shock absorber 10 to buffer the impact of vibration, making it safer, more stable and reliable.

[0028] In this embodiment, an output pipe head 21 is provided on the upper left side of the condensation loop pipe structure 2, and an input pipe head 20 is provided on the lower right side of the condensation loop pipe structure 2. Both the input pipe head 20 and the output pipe head 21 are equipped with electromagnetic control valves.

[0029] As a preferred embodiment, the condenser loop pipe structure 2 of this utility model adopts a bottom-up wrap-around pipe structure, with more space reserved in the center of the pipe structure to facilitate inspection and maintenance, making it more convenient, flexible and practical.

[0030] In this embodiment, the upper end of the refrigerant input structure 3 is provided with a liquid inlet hopper 30, and the lower part of the liquid inlet hopper 30 is connected to four sets of upper guide pipes 31. The lower end of the upper guide pipe 31 is inserted into the interface provided on the upper surface of the condenser loop pipe structure 2. The lower part of the upper guide pipe 31 is provided with multiple sets of middle connecting pipes 32, and the middle connecting pipes 32 are located between the upper and lower pipes of the condenser loop pipe structure 2. The lower center of the sewage discharge structure 4 is provided with an output port 41, and the upper part of the output port 41 is connected to four sets of lower guide pipes 40. The upper end of the lower guide pipe 40 is inserted into the interface provided on the lower end face of the condenser loop pipe structure 2.

[0031] As a preferred embodiment, the refrigerant input structure 3 in this invention can uniformly deliver refrigerant liquid into the condenser loop structure 2 from top to bottom, resulting in more uniform and rapid cooling and heat dissipation. This helps to improve the overall cooling efficiency of the condenser pipeline, making it faster, more efficient, and more practical.

[0032] This invention effectively solves the problem in the prior art where the condenser piping assembly structure is cumbersome, resulting in excessively long refrigerant delivery pipes, uneven cooling and heat dissipation, slow cooling effect, and instability. This invention provides stable installation of the condenser piping, buffers the impact of vibration, and facilitates rapid and uniform delivery of refrigerant from top to bottom, helping the medium in the condenser piping to cool and dissipate heat quickly and evenly, making it more efficient, stable, and practical.

[0033] The above embodiments are used to explain and illustrate the present utility model, and not to limit the utility model. Any modifications and changes made to the present utility model within the spirit and scope of the claims should be included within the protection scope of the present utility model.

Claims

1. A marine condenser piping for a marine container, characterized by: Including the base (1) and condensing return pipe structure (2), both sides of the upper end surface of the base (1) are fixed with two groups of sleeve plate (13), and four groups of sleeve plate (13) are installed with condensing return pipe structure (2), the upper end of the condensing return pipe structure (2) is installed with condensing agent input structure (3), and the lower end of the condensing return pipe structure (2) is installed with blowdown structure (4), the center of the condensing agent input structure (3) and blowdown structure (4) is located on the same axis, and the condensing agent input structure (3), blowdown structure (4) are connected between the condensing return pipe structure (2).

2. A marine condenser pipe for a marine container according to claim 1, characterized in that The four corners of the base (1) are provided with shock absorber (10), and the lower end of the shock absorber (10) is fixed with the base plate (11), and the base (1) adopts the base structure of back-shaped stainless steel material.

3. A marine condenser piping for a marine container according to claim 1, wherein A plurality of sleeve holes (14) are formed in the sleeve plate (13), and the pipeline of the condensing return pipe structure (2) passes through the sleeve hole (14).

4. A marine condenser piping for a marine container according to claim 1, wherein The inner side surface of the sleeve plate (13) is provided with a lower bearing plate (12), and the lower bearing plate (12) is placed on the bottom of the condensing return pipe structure (2), and the inner side surface of the sleeve plate (13) is provided with an upper bearing plate (15), and the upper bearing plate (15) is pressed on the top of the condensing return pipe structure (2).

5. A marine condenser for a container according to claim 1, wherein The upper left side of the condensing return pipe structure (2) is provided with an output pipe head (21), and the lower right side of the condensing return pipe structure (2) is provided with an input pipe head (20), and the input pipe head (20) and the output pipe head (21) are provided with electromagnetic control valve.

6. A marine condenser for a container according to claim 1, wherein The upper end of the condensing agent input structure (3) is provided with a liquid inlet (30), and the lower part of the liquid inlet (30) is connected with four groups of upper guide pipe (31), and the lower end of the upper guide pipe (31) is inserted into the interface provided on the upper surface of the condensing return pipe structure (2), and a plurality of middle connecting pipes (32) are provided below the upper guide pipe (31), and the middle connecting pipes (32) are located between the upper and lower pipelines of the condensing return pipe structure (2).

7. A marine condenser for a container according to claim 1, wherein The lower center of the blowdown structure (4) is provided with an output pipe (41), and the upper part of the output pipe (41) is connected with four groups of lower guide pipe (40), and the upper end of the lower guide pipe (40) is inserted into the interface provided on the lower end surface of the condensing return pipe structure (2).

Citation Information

Patent Citations

  • Condenser pipeline assembly, heat exchange pipeline and heat exchange equipment

    CN211503333U