Cooling system structure of bubble water generator

Through the combined casting structure of inner tube, outer tube and stainless steel cylinder, combined with foam shell and casting body, the problem that traditional sparkling water machines cannot cool during the bubbling process is solved, the rapid cooling and temperature reduction of the sparkling water is achieved, the safety and water quality are improved, and the diverse taste needs of users are met.

CN223484629UActive Publication Date: 2025-10-28ZHONGSHAN JIN ZHONG ELECTRICAL TECH LTD
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Patent Information

Application Number
CN202422831238.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-20
Publication Date
2025-10-28
Estimated Expiration
2034-11-20

AI Technical Summary

Technical Problem

When making sparkling water, traditional sparkling water machines are unable to cool and circulate the hot water during the bubbling process, resulting in relatively simple functionality and inability to meet the taste needs of different users.

Method used

It adopts a combined casting structure of inner tube, outer tube and stainless steel cylinder, combined with foam shell and casting body. The heat is taken away by connecting the inner tube to the external circulating water pump, and the refrigerant is introduced by using external cooling equipment to cool and reduce the temperature of the bubble water. The circulating water in the inner tube is cooled, and a water retaining plate and filter mesh are set for filtration. The pressure relief valve prevents excessive pressure.

Benefits of technology

The rapid cooling and temperature reduction effect of the bubble water is achieved, the safety and water quality of the bubble water generator are improved, and the taste requirements of different users are met.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a cooling system structure of a steam bubble water generator, which comprises a foam shell, an inner pipe used for taking away heat of water in the steam bubble water generator to balance and adjust temperature is arranged in the foam shell through a casting body, an outer pipe is arranged in the inner pipe, and the inner pipe, the outer pipe, a main body and a stainless steel cylinder are combined and cast into a whole. A foam shell is arranged outside the casting body in a wrapping manner, so that heat generated outside the casting body after hot water enters the stainless steel cylinder is connected with an external circulating water pump through an inner pipe, cold water is introduced into the inner pipe for circulation, the generated heat is rapidly taken away in a circulating manner, and the water cooling effect is achieved; according to the cooling device for the bubble water, the outer pipe is internally provided with the cooling device, the external cooling device introduces a refrigerant into the outer pipe, the bubble water can be cooled, circulating water in the inner pipe can also be cooled, the circulating water can cool hot water, and therefore the effect that the device cools and lowers the temperature of the bubble water is achieved.
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Description

Technical Field

[0001] This utility model belongs to the technical field of bubble water generators, and specifically relates to a cooling system structure for a bubble water generator. Background Technology

[0002] A sparkling water maker, as the name suggests, is a machine used to make sparkling water. Traditional sparkling water makers use a fixed amount of gas input into the water bottle and a fixed pressure on the pressure regulating valve, resulting in a fixed amount of gas released from the valve. Because the taste of the sparkling water depends entirely on the amount of gas incorporated into the bottle, the resulting sparkling water has a uniform taste and cannot satisfy the diverse taste preferences of different users.

[0003] Therefore, a pressure regulating mechanism for a sparkling water machine, with announcement number "CN217762074U", includes a body, a water bottle, and further includes: a pressure regulating valve, placed inside the body and connected to the water bottle; and an adjusting component, movably mounted on the body and in contact with the pressure regulating valve. The movable adjusting component controls the pressure value that the pressure regulating valve can withstand, thereby controlling the amount of gas remaining in the water bottle. By setting a movable adjusting component and having adjusting plates with different adjustment levels on the adjusting component contact a first plug, the compression degree of the spring inside the valve body is changed, thereby changing the deformation caused by the gas impacting the second plug, thus controlling the amount of gas flowing out of the pressure regulating valve and controlling the amount of gas remaining in the water bottle. By setting a corrugated strip and a lever to facilitate the rotation of the movable sleeve, the amount of gas remaining in the sparkling water bottle is controlled, thereby controlling the taste of the sparkling water produced and meeting the taste needs of different users.

[0004] However, although the pressure regulating mechanism on the aforementioned sparkling water machine is movably mounted on the machine body and in contact with the pressure regulating valve, and the regulating element is moved to control the pressure value that the pressure regulating valve can withstand, thereby controlling the amount of gas remaining in the water bottle, the following obvious defects still exist during use: the device can only process water bubbles after the hot water has naturally cooled to a suitable temperature, and cannot cool and circulate the hot water during the bubble-making process to lower the temperature and achieve the effect of turning it into ice water, thus its functionality is relatively limited. Utility Model Content

[0005] The purpose of this invention is to provide a cooling system structure for a bubble water generator to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a cooling system structure for a bubble water generator, comprising:

[0007] The foam shell has an inner tube inside the casting body for carrying away heat from the water in the bubble water generator to balance and regulate the temperature. The inner tube has an outer tube inside the inner tube for cooling the water processed in the bubble water generator. A temperature probe tube is inserted into the casting body to detect the temperature at one end of the casting body.

[0008] The stainless steel cylinder has a water-blocking plate inside the cylinder that blocks water from entering through a water-blocking bracket. The two ends of the stainless steel cylinder are respectively sealed with a lower end cover and an upper end cover. The upper end cover is provided with a pressure relief pipe, a water inlet pipe, and a water outlet pipe for relieving pressure inside the cylinder and allowing water to enter and exit.

[0009] Preferably, the casting is installed inside the foam shell, and a fixed through hole A is provided at the corner of one end surface of the casting and the foam shell to allow the inlet and outlet of the outer tube to pass through and be fixed. The cooling medium can be introduced through the cooling equipment connected to the outer tube to cool the bubble water into ice water.

[0010] Preferably, a fixed through hole B is provided at the corner of one end surface of the casting and the foam shell to allow the inlet and outlet pipes of the inner tube to pass through to the outside, so as to fix the inlet and outlet pipes of the inner tube to the casting and the foam shell S.

[0011] Preferably, the center of one end of the casting body and foam shell assembly is provided with an assembly hole for installing the stainless steel cylinder into the casting body, so as to realize the function of integrally casting the stainless steel cylinder into the casting body for heat preservation and cold preservation.

[0012] Preferably, the water-blocking bracket is fixed inside the stainless steel cylinder, and a cylindrical filter screen is provided at the center of the water-blocking plate and the water-blocking bracket and is connected to the water outlet pipe to filter harmful substances from the output bubble water.

[0013] Preferably, a pressure relief valve is provided on one side of the pressure relief pipe and on the side of the upper end cap surface to relieve pressure inside the stainless steel cylinder, so as to avoid the phenomenon of pipe rupture due to excessive pressure inside the stainless steel cylinder.

[0014] Preferably, the outer tube, inner tube, stainless steel cylinder and casting body are cast together to achieve sufficient heat exchange. The inlet and outlet of the outer tube extend to the outside of the foam shell through the fixed through hole B, and the inlet and outlet of the inner tube extend to the outside of the foam shell through the fixed through hole A, so as to connect with the external cooling equipment and circulating water pump.

[0015] Preferably, the water outlet pipe extends from the center of the upper end cover to the outside, and a pipe joint is provided on one side of the water outlet pipe and on the surface of the upper end cover, so that the water treated with bubbles can be output from the water outlet pipe.

[0016] Compared with the prior art, the technical effects and advantages of this utility model are as follows: The cooling system structure of this bubble water generator is formed by casting an inner tube, outer shell, main body, and stainless steel cylinder together. The casting body is wrapped with a foam shell. After hot water enters the stainless steel cylinder, the heat generated outside the generator is utilized by connecting the inner tube to an external circulating water pump. Cold water is circulated into the inner tube to quickly remove the generated heat, achieving the effect of cooling the water. In order to turn the bubble water into ice water, the external cooling equipment circulates refrigerant into the outer tube. This not only cools the bubble water but also cools the circulating water in the inner tube, allowing the circulating water to cool the hot water. Thus, the device achieves the effect of cooling and lowering the temperature of the bubble water.

[0017] The water-blocking plate on the stainless steel universal internal water-blocking bracket can block the bubble water, and the cylindrical filter screen filters the bubble water, thus filtering out harmful substances and improving the quality of the water output from the outlet pipe. When the water is pressurized inside the stainless steel cylinder to generate bubbles, the pressure can be released through the pressure relief valve to prevent the bubble water from bursting and being damaged during output due to excessive pressure, thus further improving the safety of the bubble water generator during operation. Attached Figure Description

[0018] Figure 1 This is an exploded structural diagram of the cooling system of the bubble water generator of this utility model;

[0019] Figure 2 This is a schematic cross-sectional view (AA) of the cooling system structure of the bubble water generator of this utility model;

[0020] Figure 3 This is a schematic cross-sectional view of the cooling system structure of the bubble water generator of this utility model;

[0021] Figure 4 This is a schematic diagram of the overall structure of the cooling system of the bubble water generator of this utility model.

[0022] In the diagram: 1. Foam shell; 2. Cast body; 3. Outer tube; 4. Inner tube; 5. Temperature probe tube; 6. Stainless steel cylinder; 7. Water baffle bracket; 8. Water baffle plate; 9. Lower end cap; 10. Upper end cap; 11. Pressure relief pipe; 12. Water inlet pipe; 13. Water outlet pipe; 14. Fixed through hole A; 15. Fixed through hole B; 16. Assembly hole; 17. Filter screen; 18. Pressure relief valve; 19. Pipe joint. Detailed Implementation

[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0024] Please see Figure 1-4 This utility model provides a technical solution: a cooling system structure for a bubble water generator, comprising:

[0025] The foam shell 1 has an inner tube 4 inside the casting 2, which is used to remove heat from the water in the bubble water generator to balance and regulate the temperature. The inner shell of the inner tube 4 is circulated by water and is connected to an external circulation pump to balance the water temperature. The inner tube 4 also has an outer tube 3 inside to cool the water processed in the bubble water generator. The outer tube 3 can be filled with refrigerant to cool the stainless steel cylinder 6, turning the bubble water into ice bubble water. It is also connected to an external refrigeration device. The casting 2 has a temperature probe 5 at one end of its surface corner, which is inserted into the casting 2 to detect the temperature of the water in the stainless steel cylinder 6.

[0026] The stainless steel cylinder 6 has a water-blocking plate 8 inside the cylinder 6, which is provided by a water-blocking bracket 7 to block the water in the stainless steel cylinder 6 and keep it within a certain space. The two ends of the stainless steel cylinder 6 are respectively sealed with a lower end cover 9 and an upper end cover 10, which can be combined into a single unit to enhance the sealing performance. The upper end cover 10 is provided with a pressure relief pipe 11, a water inlet pipe 12, and a water outlet pipe 13 for depressurizing the cylinder and allowing water to enter and exit. The pressure relief pipe 11 can relieve excessive pressure inside the stainless steel cylinder 6, allowing the water to be treated to enter the stainless steel cylinder 6 through the water inlet pipe 12, and the produced aerated water is output through the water outlet pipe 13.

[0027] The casting 2 is installed inside the foam shell 1 to insulate the liquid inside the stainless steel cylinder 6, maintaining the liquid temperature at a suitable level. At the corners of one end of the casting 2 and foam shell 1, corresponding obliquely aligned, are fixed through holes A14 for the inlet and outlet pipes of the outer pipe 3, connecting the outer pipe 3 to external refrigeration equipment and allowing refrigerant to flow through. At the corners of one end of the casting 2 and foam shell 1, corresponding obliquely aligned, are fixed through holes B15 for the inlet and outlet pipes of the inner pipe 4 to pass through to the outside, allowing the inner pipe... 4. The connection with the external circulating water pump is used to circulate water to remove heat and balance the temperature. The center of one end of the combination of casting body 2 and foam shell 1 is provided with an assembly hole 16 for installing stainless steel cylinder 6 into the interior of casting body 2. The stainless steel cylinder 6 can be integrally cast and installed into casting body 2. Water baffle bracket 7 is fixed inside stainless steel cylinder 6. The center of water baffle plate 8 and water baffle bracket 7 is provided with a cylindrical rod-shaped filter screen 17 and connected to water outlet pipe 13, which can effectively filter impurities in the output bubble water.

[0028] A pressure relief valve 18 for relieving pressure inside the stainless steel cylinder 6 is provided on one side of the pressure relief pipe 11 and on the surface of the upper end cover 10. The outer pipe 3, inner pipe 4, stainless steel cylinder 6 and casting body 2 are cast together to achieve sufficient heat exchange. The main purpose is to enable the three to fully exchange heat. The inlet and outlet of the outer pipe 3 pass through the fixed through hole B15 to the outside of the foam shell 1 for connection with the external circulating water pump. The inlet and outlet of the inner pipe 4 pass through the fixed through hole A14 to the outside of the foam shell 1. The outlet pipe 13 passes through the center of the upper end cover 10 to the outside. A pipe connector 19 is provided on one side of the outlet pipe 13 and on the surface of the upper end cover 10 to connect the external water pipe to the pipe connector 19.

[0029] Specifically, in use, first, the inner tube 4 is installed into the casting body 2, and the outer tube 3 is installed into the inner tube 4, with one end of the outer tube 3 located at a corner outside the inner tube 4. After the inner and outer tubes are installed, the inlet and outlet pipes extend to the outside through the fixed through holes A14 and B15 and are fixed. The circulation port of the inner tube 4 is connected to an external circulation pump, and water is introduced into the pipeline. This further removes the heat generated by the stainless steel cylinder 6, balancing and regulating the temperature so that the water cools to a suitable temperature. At the same time, the two ports of the outer tube 3 are connected to an external refrigeration device, and refrigerant is injected into the pipeline to cool the sparkling water. Then, the foam shell 1 is placed over the outside of the casting body 2 for heat insulation. The stainless steel cylinder 6 is then installed inside the outer tube 3, contacting its surface. The inner tube 4, outer tube 3, and stainless steel cylinder 6 are then in place. The main purpose of combining the casting with the casting body 2 is to enable sufficient heat exchange between the three components, cooling the bubble water into ice bubble water. The outer pipes of the stainless steel cylinder 6, which are equipped with water inlet pipe 12 and water outlet pipe 13, are placed in the middle of the inner pipe 4. Through heat exchange, low-temperature bubble water is generated, which not only cools the bubble water but also cools the circulating water in the inner pipe 4. This allows the circulating water to cool the hot water, thus achieving the effect of cooling and lowering the temperature of the bubble water.

[0030] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A cooling system structure for a bubble water generator, characterized in that, include: Foam shell (1), the foam shell (1) is provided with an inner tube (4) through the casting body (2) for carrying away heat from the water in the bubble water generator to balance and regulate the temperature, and the inner tube (4) is provided with an outer tube (3) for cooling the water processed in the bubble water generator, and a temperature probe (5) is provided at one end of the surface corner of the casting body (2) for inserting into the casting body (2) to detect the temperature. The stainless steel cylinder (6) has a water baffle (8) inside the stainless steel cylinder (6) provided by a water baffle bracket (7) to block the water inside the stainless steel cylinder (6). The stainless steel cylinder (6) is sealed at both ends with a lower end cap (9) and an upper end cap (10) to seal the stainless steel cylinder (6). The upper end cap (10) is provided with a pressure relief pipe (11), a water inlet pipe (12) and a water outlet pipe (13) for depressurizing the cylinder and allowing water to enter and exit.

2. The cooling system structure of a bubble water generator according to claim 1, characterized in that: The casting (2) is installed inside the foam shell (1), and a fixed through hole A (14) is provided at the corner of one end surface of the casting (2) and the foam shell (1) so that the inlet and outlet of the outer tube (3) can pass through and be fixed.

3. The cooling system structure of a bubble water generator according to claim 2, characterized in that: The casting (2) and the foam shell (1) are provided with a fixed through hole B (15) at the corners of their respective ends, through which the inlet and outlet pipes of the inner tube (4) pass to the outside.

4. The cooling system structure of a bubble water generator according to claim 1, characterized in that: The center of one end of the casting (2) and foam shell (1) assembly is provided with an assembly hole (16) for installing the stainless steel cylinder (6) into the casting (2).

5. The cooling system structure of a bubble water generator according to claim 1, characterized in that: The water-blocking bracket (7) is fixed inside the stainless steel cylinder (6), and the water-blocking plate (8) and the center position of the water-blocking bracket (7) are provided with a cylindrical filter screen (17) and connected to the water outlet pipe (13).

6. The cooling system structure of a bubble water generator according to claim 1, characterized in that: A pressure relief valve (18) for relieving pressure inside the stainless steel cylinder (6) is provided on one side of the pressure relief pipe (11) and on the side of the surface of the upper end cap (10).

7. The cooling system structure of a bubble water generator according to claim 3, characterized in that: The outer tube (3), inner tube (4), stainless steel cylinder (6) and casting body (2) are cast together to achieve sufficient heat exchange. The inlet and outlet of the outer tube (3) are passed through the fixed through hole B (15) to the outside of the foam shell (1), and the inlet and outlet of the inner tube (4) are passed through the fixed through hole A (14) to the outside of the foam shell (1).

8. The cooling system structure of a bubble water generator according to claim 3, characterized in that: The water outlet pipe (13) extends from the center of the upper end cover (10) to the outside, and a pipe joint (19) is provided on one side of the water outlet pipe (13) and on the surface of the upper end cover (10).

Citation Information

Patent Citations

  • Pressure adjusting mechanism on sparkling water machine

    CN217762074U