Wine steamer condensing system based on efficient air-cooled condenser
By incorporating spiral guide strips, a gas distribution chamber, and a constant temperature exchanger into the air-cooled condenser, and optimizing the heat dissipation pipe layout, the problem of poor condensation effect of high-pressure and high-temperature steam was solved, resulting in more complete condensation and higher production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YIBIN ZHITE MASCH CO LTD
- Filing Date
- 2025-02-28
- Publication Date
- 2026-04-21
AI Technical Summary
When handling high-pressure, high-temperature steam, existing air-cooled condensers result in poor condensation performance because the steam enters the heat dissipation pipes too quickly.
It adopts a high-efficiency air-cooled condenser with internal spiral guide strips and air distribution chambers. Combined with a constant temperature exchanger and exhaust fan, it enhances the steam cooling path and airflow. The fins are used to increase the contact surface and optimize the layout density and spacing of the heat dissipation pipe assembly.
It improves the condensation effect, ensures that the steam is fully cooled into liquid, keeps the wine at a suitable temperature for storage, improves production efficiency, prevents impurities from entering, and enhances heat exchange efficiency.
Smart Images

Figure CN224151463U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of heat exchange equipment, and in particular to a wine condenser condensation system based on a high-efficiency air-cooled condenser. Background Technology
[0002] The working principle of an air-cooled condenser is as follows: Steam enters the air-cooled condenser. At this time, the steam is in a high-pressure and high-temperature state. The air-cooled condenser uses the airflow generated by the fan to accelerate the flow of air on the surface of the heat dissipation tube assembly, transferring the heat of the steam to the air, thereby completing the heat exchange, and gradually causing the steam in the heat dissipation tube assembly to cool and condense into a high-pressure and low-temperature liquid. This process is an exothermic process.
[0003] In the brewing process using a wine cellar, key steps such as cooking, fermentation, and distillation generate a large amount of steam, which needs to be cooled. After cooling, the wine can be obtained. To process this steam and obtain the wine, an air-cooled condenser can be used. However, some problems were found when using the existing air-cooled condenser. Because it is high-pressure steam, the steam enters the heat dissipation pipes of the condenser very quickly. Therefore, it is often discharged before it has completed sufficient heat exchange, resulting in poor condensation effect and failing to achieve the desired effect. Therefore, it is necessary to improve the existing air-cooled condenser. Utility Model Content
[0004] The purpose of this invention is to provide a wine cell condensation system based on a high-efficiency air-cooled condenser, which solves the problem that the high-pressure, high-temperature steam generated in the existing wine cell enters the heat dissipation pipe of the air-cooled condenser too quickly, affecting the condensation effect.
[0005] To solve the above-mentioned technical problems, the present invention adopts the following technical solution:
[0006] A wine cell condensing system based on a high-efficiency air-cooled condenser includes a high-efficiency air-cooled condenser and a wine cell. A high-temperature steam pipe is provided at the top of the wine cell, and the outlet of the high-temperature steam pipe is connected to the steam inlet of the high-efficiency air-cooled condenser. The liquid discharge pipe of the thermostatic exchanger located at the bottom of the high-efficiency air-cooled condenser is connected to a wine cell located between the high-efficiency air-cooled condenser and the wine cell. A guide strip is provided inside the heat dissipation pipe assembly inside the high-efficiency air-cooled condenser, and the guide strip is spirally arranged along the inner wall of the pipe body.
[0007] This solution employs a high-efficiency air-cooled condenser, which results in more complete condensation and better condensation effect. Specifically, the spiral guide strips installed inside the heat dissipation pipe assembly extend the transport distance within the pipe, allowing the steam inside the pipe to be cooled more thoroughly through a longer cooling path.
[0008] As a further preferred embodiment of this utility model, the high-efficiency air-cooled condenser further includes an air inlet chamber, a heat exchange chamber, and an exhaust pipe arranged sequentially from bottom to top. A thermostatic exchanger is installed in the air inlet chamber. The middle part of the heat exchange chamber is a heat exchange cavity, and the two sides of the heat exchange cavity are accessory cavities. The top and bottom of the heat exchange cavity are respectively connected to the exhaust pipe and the air inlet chamber. A heat dissipation pipe assembly is installed in the heat exchange cavity. The heat dissipation pipe assembly includes an air inlet heat dissipation pipe section and other heat dissipation pipe sections. The air inlet end of the air inlet heat dissipation pipe section is connected to a gas distribution chamber located on the upper part of one side of the accessory cavity. The gas distribution chamber is connected to a steam inlet. The air outlet end of the air inlet heat dissipation pipe section is connected to a condensate collection chamber located on the upper part of the other side of the accessory cavity. The other heat dissipation pipe sections are located below the air inlet heat dissipation pipe section. Both ends of the other heat dissipation pipe sections are respectively connected to condensate collection chambers located in the accessory cavities on both sides of the heat exchange cavity. The condensate collection chamber at the bottom is connected to the thermostatic exchanger via a pipe. An exhaust fan is installed at the air inlet of the exhaust pipe.
[0009] In this design, a gas distribution chamber is set in the upper part of the accessory cavity. Since it is a large chamber, the high-temperature and high-pressure steam will slow down after entering it, which can achieve the effect of static pressure gas distribution. Therefore, compared with directly connecting the steam pipe to the heat dissipation pipe, the steam flows more slowly and evenly after entering the heat dissipation pipe, and can be cooled better. The water cooled into liquid will flow along the heat dissipation pipe assembly into the condensate collection chamber, and finally collect in the bottom condensate collection chamber, and then enter the thermostatic exchanger. The exhaust fan in the exhaust pipe can accelerate the air flow, so that the heat dissipation pipe assembly in the heat exchange chamber can achieve rapid air-cooled heat exchange.
[0010] As a further preferred embodiment of this utility model, air inlets are provided on both sides of the air inlet chamber.
[0011] As a further preferred embodiment of this utility model, the cooling water inlet pipe and cooling water outlet pipe of the thermostatic exchanger are respectively connected to the refrigeration / heating device and the circulating pump. The water inlet pipe of the refrigeration / heating device and the water outlet pipe of the circulating pump are respectively connected to the water outlet and water inlet of the water replenishment tank. The water replenishment tank is located in the accessory cavity. The water replenishment tank is also provided with a water replenishment port, which is connected to an external pipeline through a water replenishment pipe.
[0012] As a further preferred embodiment of the present invention, the outer wall of the heat dissipation pipe assembly is provided with fins.
[0013] Adding fins to the outer wall of the heat exchanger assembly can increase the contact surface and improve heat exchange efficiency.
[0014] As a further preferred embodiment of this invention, the gap between the pipes in the heat dissipation pipe assembly is 55-65mm.
[0015] The spacing is determined by the steam temperature at different locations.
[0016] As a further preferred embodiment of this utility model, the heat dissipation pipe assembly has its pipes arranged to be inclined downwards alternately from top to bottom and left to right, with an inclination angle of 4-6°.
[0017] As a further preferred embodiment of this invention, the density of the heat dissipation pipe assembly gradually decreases from top to bottom.
[0018] The density of these installations is determined by the steam temperature at different locations.
[0019] As a further preferred embodiment of this invention, the top of the dimple is provided with a cover plate.
[0020] The cover prevents impurities from entering the dimples.
[0021] Compared with the prior art, the present invention can achieve at least one of the following beneficial effects:
[0022] 1. This solution uses a high-efficiency air-cooled condenser, which makes condensation more complete and the condensation effect better. Specifically, the spiral guide strips set inside the heat dissipation pipe assembly can extend the delivery distance inside the pipe, so that the steam inside the pipe can be cooled more fully through a longer cooling path.
[0023] 2. A constant temperature exchanger is installed at the bottom of the air-cooled condenser. The constant temperature exchanger further cools the wine obtained after condensation by the air-cooled condenser. After cooling, the temperature is 20℃-30℃, which makes it easy to directly pour the obtained wine into the wine cellar for storage, effectively improving production efficiency.
[0024] 3. In this design, a gas distribution chamber is set in the upper part of the accessory cavity. Since it is a large chamber, the high-temperature and high-pressure steam will slow down after entering it, which can achieve the effect of static pressure gas distribution. Therefore, compared with directly connecting the steam pipe to the heat dissipation pipe, the steam flows more slowly and evenly after entering the heat dissipation pipe, and can be cooled better. The cooled water will flow into the condensate collection chamber along the heat dissipation pipe assembly, and finally collect in the bottom condensate collection chamber, and then enter the thermostatic exchanger. The exhaust fan in the exhaust pipe can accelerate the air flow, so that the heat dissipation pipe assembly in the heat exchange chamber can achieve rapid air-cooled heat exchange.
[0025] 4. Adding fins to the outer wall of the heat exchange pipe assembly can increase the contact surface and improve heat exchange efficiency.
[0026] 5. The gap between the pipes in the heat dissipation pipe assembly is determined according to the steam temperature at different locations.
[0027] 6. The pipe layout density of the heat dissipation pipe assembly is also determined according to the steam temperature at different locations.
[0028] 7. The cover plate can prevent impurities from entering the dimples. Attached Figure Description
[0029] Figure 1 This is a schematic diagram of the structure of this utility model.
[0030] Figure 2 This is a schematic diagram of the structure of the high-efficiency air-cooled condenser of this utility model.
[0031] Figure 3 This is a horizontal cross-sectional view of the heat dissipation pipe assembly of this utility model.
[0032] Figure 4 This is a horizontal layout diagram of the constant temperature heat exchanger, refrigeration / heating device and water replenishment tank of this utility model. Detailed Implementation
[0033] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. The components of the embodiments of this utility model described and shown in the accompanying drawings can typically be arranged and designed in various different configurations.
[0034] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.
[0035] It should be noted that, where there is no conflict, the embodiments and features in the embodiments of this utility model can be combined with each other.
[0036] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0037] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product of this utility model is in use, or the orientation or positional relationship commonly understood by those skilled in the art. They are only used for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first," "second," etc., are only used to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0038] In the description of this utility model, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances. Specific Implementation
[0039] Figure 1 , Figure 2 , Figure 3 , Figure 4 A wine cell condensing system based on a high-efficiency air-cooled condenser is shown, including a high-efficiency air-cooled condenser and a wine cell 12. The top of the wine cell 12 is provided with a high-temperature steam pipe, and the outlet of the high-temperature steam pipe is connected to the steam inlet of the high-efficiency air-cooled condenser. The liquid discharge pipe 13 of the thermostatic exchanger 4 located at the bottom of the high-efficiency air-cooled condenser is connected to the wine cell 14 located between the high-efficiency air-cooled condenser and the wine cell 12. The heat dissipation pipe assembly 5 inside the high-efficiency air-cooled condenser is provided with a guide strip in the pipe, and the guide strip is spirally arranged along the inner wall of the pipe body.
[0040] This solution employs a high-efficiency air-cooled condenser, which results in more complete condensation and better condensation effect. Specifically, the spiral guide strips installed inside the heat dissipation pipe assembly extend the transport distance within the pipe, allowing the steam inside the pipe to be cooled more thoroughly through a longer cooling path. Specific Implementation
[0041] This embodiment further describes the high-efficiency air-cooled condenser based on specific embodiment 1. The high-efficiency air-cooled condenser also includes an air inlet chamber 1, a heat exchange chamber 2, and an exhaust duct 3 arranged sequentially from bottom to top. A constant-temperature exchanger 4 is installed inside the air inlet chamber 1. The center of the heat exchange chamber 2 is a heat exchange cavity 21, and the two sides of the heat exchange cavity 21 are accessory cavities 22. The top and bottom of the heat exchange cavity 21 are connected to the exhaust duct 3 and the air inlet chamber 1, respectively. A heat dissipation pipe assembly 5 is installed inside the heat exchange cavity 21. The heat dissipation pipe assembly 5 includes an air inlet heat dissipation pipe section 51 and other heat dissipation pipe sections 52. The air inlet of the air-heating pipe section 51 is connected to the air distribution chamber 6 located on the upper part of the accessory cavity 22 on one side. The air distribution chamber 6 is connected to the steam inlet. The air outlet of the air-heating pipe section 51 is connected to the condensate collection chamber 7 located on the upper part of the accessory cavity 22 on the other side. Other heat dissipation pipe sections 52 are located below the air-heating pipe section 51. Both ends of the other heat dissipation pipe sections 52 are connected to the condensate collection chambers 7 located in the accessory cavities 22 on both sides of the heat exchange cavity 21. The condensate collection chamber 7 located at the bottom is connected to the thermostatic exchanger 4 through a pipe. An exhaust fan 8 is provided at the air inlet of the exhaust pipe 3.
[0042] In this design, a gas distribution chamber is set in the upper part of the accessory cavity. Since it is a large chamber, the high-temperature and high-pressure steam will slow down after entering it, which can achieve the effect of static pressure gas distribution. Therefore, compared with directly connecting the steam pipe to the heat dissipation pipe, the steam flows more slowly and evenly after entering the heat dissipation pipe, and can be cooled better. The water cooled into liquid will flow along the heat dissipation pipe assembly into the condensate collection chamber, and finally collect in the bottom condensate collection chamber, and then enter the thermostatic exchanger. The exhaust fan in the exhaust pipe can accelerate the air flow, so that the heat dissipation pipe assembly in the heat exchange chamber can achieve rapid air-cooled heat exchange. Specific Implementation
[0043] This embodiment further describes the air inlet chamber 1 based on specific embodiment 2. The air inlet chamber 1 has air inlets on both sides. Specific Implementation
[0044] This embodiment further describes the thermostatic heat exchanger 4 based on specific embodiment 2. The cooling water inlet pipe and cooling water outlet pipe of the thermostatic heat exchanger 4 are respectively connected to the refrigeration / heating device 9 and the circulating pump 10. The water inlet pipe of the refrigeration / heating device 9 and the water outlet pipe of the circulating pump 10 are respectively connected to the water outlet and water inlet of the water replenishment tank 11. The water replenishment tank 11 is set in the accessory cavity 22. The water replenishment tank 11 is also provided with a water replenishment port, which is connected to the external pipeline through a water replenishment pipe. Specific Implementation
[0045] This embodiment further describes the heat dissipation pipe assembly 5 based on specific embodiment 2. The outer wall of the heat dissipation pipe assembly 5 is provided with fins.
[0046] Adding fins to the outer wall of the heat exchanger assembly can increase the contact surface and improve heat exchange efficiency. Specific Implementation
[0047] This embodiment further describes the heat dissipation pipe assembly 5 based on specific embodiment 2. The gap between the pipes in the heat dissipation pipe assembly 5 is 55-65mm.
[0048] The spacing is determined by the steam temperature at different locations. Specific Implementation
[0049] This embodiment further describes the heat dissipation pipe assembly 5 based on specific embodiment 2. The pipes of the heat dissipation pipe assembly 5 are arranged to be inclined downwards alternately from top to bottom and left to right, with an inclination angle of 4-6°. Specific Implementation
[0050] This embodiment further describes the heat dissipation pipe assembly 5 based on specific embodiment 2. The density of the pipes in the heat dissipation pipe assembly 5 gradually decreases from top to bottom.
[0051] The density of these installations is determined by the steam temperature at different locations. Specific Implementation
[0052] This embodiment further describes the dimple 14 based on specific embodiment 1, wherein the top of the dimple 14 is provided with a cover plate 15.
[0053] The cover prevents impurities from entering the dimples.
[0054] Although the present invention 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 invention should be included within the protection scope of the present invention.
Claims
1. A high-efficiency air-cooled condenser-based wine distillation condensing system, characterized in that: It includes a high-efficiency air-cooled condenser and a wine cell (12). The top of the wine cell (12) is provided with a high-temperature steam pipe. The outlet of the high-temperature steam pipe is connected to the steam inlet of the high-efficiency air-cooled condenser. The liquid discharge pipe (13) of the thermostatic exchanger (4) located at the bottom of the high-efficiency air-cooled condenser is connected to the wine cell (14) located between the high-efficiency air-cooled condenser and the wine cell (12). The heat dissipation pipe assembly (5) inside the high-efficiency air-cooled condenser is provided with a guide strip in the pipe. The guide strip is spirally arranged along the inner wall of the pipe body.
2. The high-efficiency air-cooled condenser-based wine distillation system of claim 1, wherein: The high-efficiency air-cooled condenser also includes an air inlet chamber (1), a heat exchange chamber (2), and an exhaust pipe (3) arranged sequentially from bottom to top. The air inlet chamber (1) is equipped with a thermostatic exchanger (4). The middle part of the heat exchange chamber (2) is a heat exchange cavity (21), and the two sides of the heat exchange cavity (21) are accessory cavities (22). The top and bottom of the heat exchange cavity (21) are respectively connected to the exhaust pipe (3) and the air inlet chamber (1). The heat exchange cavity (21) is equipped with a heat dissipation pipe assembly (5). The heat dissipation pipe assembly (5) includes an air inlet heat dissipation pipe section (51) and other heat dissipation pipe sections (52). The air inlet end of the air inlet heat dissipation pipe section (51) is connected to the exhaust pipe (3) and the exhaust pipe (4) arranged in the middle of the heat exchange chamber (2). The gas distribution chamber (6) at the top of the accessory cavity (22) on one side is connected to the steam inlet. The outlet end of the air inlet heat dissipation pipe section (51) is connected to the condensate collection chamber (7) located at the top of the accessory cavity (22) on the other side. The other heat dissipation pipe section (52) is located below the air inlet heat dissipation pipe section (51). The two ends of the other heat dissipation pipe section (52) are respectively connected to the condensate collection chamber (7) located in the accessory cavities (22) on both sides of the heat exchange cavity (21). The condensate collection chamber (7) at the bottom is connected to the thermostatic exchanger (4) through a pipe. An exhaust fan (8) is provided at the air inlet of the exhaust pipe (3).
3. The high-efficiency air-cooled condenser-based wine distillation system of claim 2, wherein: The air inlet chamber (1) has air inlets on both sides.
4. The high-efficiency air-cooled condenser-based wine distillation system of claim 2, wherein: The cooling water inlet pipe and cooling water outlet pipe of the thermostatic exchanger (4) are connected to the refrigeration / heating device (9) and the circulation pump (10) respectively. The water inlet pipe of the refrigeration / heating device (9) and the water outlet pipe of the circulation pump (10) are connected to the water outlet and water inlet of the water replenishment tank (11) respectively. The water replenishment tank (11) is located in the accessory cavity (22). The water replenishment tank (11) is also provided with a water replenishment port. The water replenishment port is connected to the external pipeline through the water replenishment pipe.
5. The high-efficiency air-cooled condenser-based wine distillation system of claim 2, wherein: The outer wall of the heat dissipation pipe assembly (5) is provided with fins.
6. The high-efficiency air-cooled condenser-based wine distillation system of claim 2, wherein: The gap between the pipes in the heat dissipation pipe assembly (5) is 55-65mm.
7. The wine condenser condensing system based on a high-efficiency air-cooled condenser according to claim 2, characterized in that: The heat dissipation pipe assembly (5) is arranged with the pipes tilted downwards alternately from top to bottom and left to right, with an inclination angle of 4-6°.
8. The high-efficiency air-cooled condenser-based wine distillation system of claim 2, wherein: The density of the heat dissipation pipe assembly (5) gradually decreases from top to bottom.
9. The high-efficiency air-cooled condenser-based wine distillation system of claim 1, wherein: The top of the dimple (14) is provided with a cover plate (15).