Condenser with refrigeration function

By introducing a cooling device and heat-conducting rod structure into the condenser, and by using the connection between cooling water and cold air to improve condensation efficiency, the problem of low condenser cooling efficiency is solved, and rapid condensation and high-efficiency production are achieved.

CN223985404UActive Publication Date: 2026-03-10SHANDONG YINGDA ENVIRONMENTAL PROTECTION EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-15
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing condensers have unsatisfactory condensation performance and low cooling efficiency under high heat load conditions, which affects the continuity of production processes and product quality in food and chemical production, leading to increased time and economic costs.

Method used

It adopts a cooling device and heat-conducting rod structure. Through the connection of the water inlet pipe and the air inlet pipe, the cooling water and cold air are used to cool the condenser tube, and the heat is conducted through the heat-conducting rod to improve the condensation efficiency.

Benefits of technology

It achieves efficient condensation, shortens cooling time, improves the continuity of the production process and product quality, and reduces time and economic costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of condensers, and discloses a condenser with a refrigeration function, a cooling device is composed of a fixing plate, a water pump, a water inlet pipe, a connecting pipe, an annular pipe, a water outlet pipe, a heat conduction rod and an air inlet pipe, the fixing plate is fixedly installed on the surface of a condensation cylinder, the water pump is fixedly installed on the top of the fixing plate, and the connecting pipe is fixedly installed on the top of the fixing plate. The water inlet pipe is fixedly installed at the water inlet end of the water pump. According to the condenser with the refrigeration function, the water inlet pipe is communicated with external cooling water, refrigerated cold air is communicated with the air inlet pipe, then a medium to be condensed is guided into the liquid inlet pipe, the water pump is started, the cooling water is sprayed to the surface of the condensation pipe through the water outlet spray head, and the condensation pipe can be cooled; and meanwhile, heat in the condensation pipe can be conducted into the heat conduction rod, external refrigerated cold air can take out the heat in the heat conduction rod, then the heat carried by a medium in the condensation pipe is taken away, the condensation process is completed, and the condensation effect is good.
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Description

Technical Field

[0001] This utility model relates to the field of condenser technology, specifically to a condenser with a refrigeration function. Background Technology

[0002] The condenser plays a crucial role in the refrigeration system. It is responsible for effectively cooling the high-temperature, high-pressure refrigerant vapor discharged from the compressor, causing it to gradually condense into liquid refrigerant, thus providing the necessary conditions for the subsequent processes of the refrigeration cycle.

[0003] Existing condensers, during operation, fail to achieve ideal condensation effects due to their limited heat dissipation mechanisms. Specifically, during heat exchange, their heat dissipation pathways are limited, mostly relying on conventional air or water convection, which is insufficient to handle high heat loads. This directly results in low condensation or cooling efficiency, making it impossible to rapidly reduce the temperature of high-temperature media to the target range within a short time. For example, in the food cold chain processing, high-temperature food needs to be condensed to a suitable storage temperature quickly, but existing condensers, due to their slow heat dissipation, cause food to remain in an unsuitable temperature range for extended periods, affecting quality. Similarly, in chemical production, certain reaction products need to be rapidly condensed and recovered, but the slow condensation speed of traditional condensers severely hinders the continuity of the production process, prolongs individual production cycles, and consequently affects the overall condensation quality of the product. Over time, this significantly reduces the efficiency of the entire production operation, increasing time costs and potentially causing economic losses due to unstable product quality, failing to meet current demands. Utility Model Content

[0004] The purpose of this invention is to provide a condenser with a refrigeration function to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a condenser with a cooling function, comprising a support leg, a condenser cylinder, a cooling device, a condenser tube, a liquid inlet pipe, and a liquid outlet pipe. The condenser cylinder is fixedly installed on the top of the support leg, the cooling device is disposed on the surface of the condenser cylinder, the condenser tube is fixedly installed inside the condenser cylinder, the liquid inlet pipe is fixedly installed on the surface of the condenser cylinder, and the liquid outlet pipe is fixedly installed on the surface of the condenser cylinder.

[0006] The cooling device consists of a fixed plate, a water pump, an inlet pipe, a connecting pipe, an annular pipe, an outlet pipe, a heat-conducting rod, and an air inlet pipe. The fixed plate is fixedly installed on the surface of the condenser cylinder, the water pump is fixedly installed on the top of the fixed plate, the inlet pipe is fixedly installed at the inlet end of the water pump, the connecting pipe is fixedly installed at the outlet end of the water pump, the annular pipe is fixedly installed inside the condenser cylinder, the outlet pipe is fixedly installed on the surface of the condenser cylinder, the heat-conducting rod is fixedly installed inside the condenser cylinder, and the air inlet pipe is fixedly installed at the bottom of the condenser cylinder. The heat-conducting rod has an air inlet hole and an air outlet hole inside.

[0007] Preferably, the connecting pipe and the annular pipe are fixedly connected, which facilitates the introduction of water from inside the connecting pipe into the annular pipe.

[0008] Preferably, the bottom of the annular tube is arranged in a circumferential array with water nozzles, which are correspondingly arranged with the condenser tube. The annular tube can stably store cooling water, and the position and angle of the matching water nozzles are carefully designed so that the water stored inside the annular tube can be accurately sprayed onto the surface of the condenser tube in a uniform and pressurized water flow state, thereby helping to enhance the condensation effect.

[0009] Preferably, the condenser is connected to the inlet pipe and the outlet pipe. The medium to be condensed is introduced into the inlet pipe, and the medium is introduced into the condenser at a stable and controllable flow rate. Inside the condenser, the heat carried by the medium is efficiently carried away, completing the condensation process. Finally, the condensate is discharged from the outlet pipe connected to the condenser.

[0010] Preferably, the air intake pipe and the air intake hole are connected, and this arrangement allows the cooled air after external cooling to be introduced into the interior of the air intake hole through the air intake pipe.

[0011] Preferably, the heat-conducting rod has vent holes arranged in a circumferential array inside, and the air inlet and vent holes are connected. The bottom of the condenser cylinder has a slot that matches the vent holes. This arrangement allows the cooled air to be discharged through the air inlet, vent holes, and slot, which can cool the heat-conducting rod. The cooled air generated by the external cooling components will be discharged in an orderly manner through the air inlet under the action of system pressure, and then through the vent holes and the slot connected to them. In this process, the cooled air can carry away the heat inside the heat-conducting rod, thereby effectively cooling the heat-conducting rod.

[0012] Preferably, the condenser tube is attached to the surface of the heat-conducting rod. When the condenser tube is working, the heat generated inside the condenser tube due to the condensation of the medium will be efficiently conducted to the interior of the heat-conducting rod due to the good contact conditions between the two and the high thermal conductivity of the material itself, thereby facilitating the subsequent heat dissipation process.

[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: This condenser with refrigeration function connects the inlet pipe and the external cooling water, connects the cooled air and the air inlet pipe, and then introduces the medium to be condensed into the liquid inlet pipe. When the water pump is started, the cooling water is sprayed onto the surface of the condenser tube through the water outlet nozzle, which can cool the condenser tube. At the same time, the heat inside the condenser tube is also conducted to the inside of the heat conduction rod. The cooled air outside can carry away the heat inside the heat conduction rod, thereby taking away the heat carried by the medium inside the condenser tube, completing the condensation process, and the condensation effect is good. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0015] Figure 2 This is a schematic diagram of the supporting leg, condenser cylinder, and cooling device of this utility model;

[0016] Figure 3 This is a schematic diagram of the structure of the fixing plate, water pump, and water inlet pipe of this utility model;

[0017] Figure 4 This is a schematic diagram of the overall structure of the heat-conducting rod of this utility model;

[0018] Figure 5 This is a schematic diagram of the air inlet and exhaust port structure of this utility model.

[0019] In the diagram: 1. Support leg; 2. Condenser cylinder; 3. Cooling device; 301. Fixing plate; 302. Water pump; 303. Water inlet pipe; 304. Connecting pipe; 305. Annular pipe; 306. Water outlet pipe; 307. Heat conduction rod; 308. Air inlet pipe; 309. Air inlet hole; 310. Exhaust hole; 4. Condenser pipe; 5. Liquid inlet pipe; 6. Liquid outlet pipe. Detailed Implementation

[0020] 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.

[0021] Please see Figure 1-5This utility model provides a technical solution: a condenser with a refrigeration function, including a support leg 1, a condenser cylinder 2, a cooling device 3, a condenser tube 4, a liquid inlet pipe 5, and a liquid outlet pipe 6. The condenser cylinder 2 is fixedly installed on the top of the support leg 1. The cooling device 3 is disposed on the surface of the condenser cylinder 2. The condenser tube 4 is fixedly installed inside the condenser cylinder 2. The liquid inlet pipe 5 is fixedly installed on the surface of the condenser cylinder 2. The liquid outlet pipe 6 is fixedly installed on the surface of the condenser cylinder 2. The condenser tube 4, the liquid inlet pipe 5, and the liquid outlet pipe 6 are connected. The medium to be condensed is introduced into the liquid inlet pipe 5. The medium is introduced into the condenser tube 4 at a stable and controllable flow rate. Inside the condenser tube 4, the heat carried by the medium is efficiently carried away, completing the condensation process. Finally, the condensate is discharged from the liquid outlet pipe 6 connected to the condenser tube 4.

[0022] The cooling device 3 consists of a fixed plate 301, a water pump 302, an inlet pipe 303, a connecting pipe 304, an annular pipe 305, an outlet pipe 306, a heat-conducting rod 307, and an air inlet pipe 308. The fixed plate 301 is fixedly installed on the surface of the condenser cylinder 2, the water pump 302 is fixedly installed on the top of the fixed plate 301, the inlet pipe 303 is fixedly installed at the inlet end of the water pump 302, the connecting pipe 304 is fixedly installed at the outlet end of the water pump 302, and the annular pipe 305 is fixedly installed inside the condenser cylinder 2. The connecting pipe 304 and the annular pipe 305 are fixedly connected. This arrangement facilitates the introduction of water from inside the connecting pipe 304 into the annular pipe 305. Inside the annular tube 305, water nozzles are arranged in a circular array at the bottom. These nozzles correspond to the condenser tube 4. The annular tube 305 stably stores cooling water, and the carefully designed positions and angles of the water nozzles ensure that the water stored inside the annular tube 305 is precisely sprayed onto the surface of the condenser tube 4 in a uniform and pressurized flow, thus enhancing the condensation effect. The water outlet pipe 306 is fixedly installed on the surface of the condenser cylinder 2, and the heat-conducting rod 307 is fixedly installed inside the condenser cylinder 2. The condenser tube 4 is attached to the surface of the heat-conducting rod 307. When condensation... When tube 4 is working, the heat generated by the condensation of the medium inside tube 4 is efficiently conducted to the interior of heat-conducting rod 307 due to the good contact between the two and the high thermal conductivity of the material itself, thus facilitating the subsequent heat dissipation process. Inlet pipe 308 is fixedly installed at the bottom of condenser cylinder 2. Inlet hole 309 is provided inside heat-conducting rod 307, and inlet pipe 308 and inlet hole 309 are connected. This arrangement allows cold air from external cooling to be introduced into the interior of inlet hole 309 through inlet pipe 308. Exhaust hole 310 is provided inside heat-conducting rod 307, and the interior of heat-conducting rod 307 is arranged in a circumferential array. The device is equipped with an exhaust port 310, and an air inlet 309 is connected to the exhaust port 310. The bottom of the condenser cylinder 2 is provided with a slot that matches the exhaust port 310. This configuration allows the cooled air to be discharged through the air inlet 309, the exhaust port 310, and the slot, which can cool the heat conduction rod 307. The cooled air generated by the operation of the external cooling component will be discharged in an orderly manner through the air inlet 309 under the action of system pressure, and then through the exhaust port 310 and the slot connected to it. In this process, the cooled air can carry away the heat inside the heat conduction rod 307, thereby effectively cooling the heat conduction rod 307.

[0023] In use, the inlet pipe 303 is connected to the external cooling water, and the cooled air is connected to the inlet pipe 308. Then, the medium to be condensed is introduced into the liquid inlet pipe 5. The medium is introduced into the condenser tube 4 at a stable and controllable flow rate. The water pump 302 is started, and the cooling water passes through the inlet pipe 303, the connecting pipe 304, and the annular pipe 305, and is finally sprayed onto the surface of the condenser tube 4 through the water outlet nozzle, which can cool the condenser tube 4. At the same time, the heat inside the condenser tube 4 is also conducted to the inside of the heat conduction rod 307. The cooled air generated by the operation of the external refrigeration components will be discharged in an orderly manner through the air inlet 309 under the action of system pressure, and then through the exhaust port 310 and the slot connected to it. In this process, the cooled air can carry away the heat inside the heat conduction rod 307, thereby effectively cooling the condenser tube 4. The heat carried by the medium inside the condenser tube 4 will be efficiently carried away, completing the condensation process. Finally, the condensate will be discharged from the liquid outlet pipe 6 connected to the condenser tube 4, and the cooling water will be discharged from the water outlet pipe 306.

Claims

1. A condenser with refrigeration function, comprising support legs (1), a condensing cylinder (2), a cooling device (3), a condensing pipe (4), a liquid inlet pipe (5), and a liquid outlet pipe (6), characterized in that: The condensing cylinder (2) is fixedly installed on the top of the supporting leg (1), the cooling device (3) is arranged on the surface of the condensing cylinder (2), the condensing pipe (4) is fixedly installed in the condensing cylinder (2), the liquid inlet pipe (5) is fixedly installed on the surface of the condensing cylinder (2), and the liquid outlet pipe (6) is fixedly installed on the surface of the condensing cylinder (2). The cooling device (3) is composed of a fixed plate (301), a water pump (302), a water inlet pipe (303), a connecting pipe (304), an annular pipe (305), a water outlet pipe (306), a heat conduction rod (307) and an air inlet pipe (308), the fixed plate (301) is fixedly installed on the surface of the condensing cylinder (2), the water pump (302) is fixedly installed on the top of the fixed plate (301), the water inlet pipe (303) is fixedly installed on the water inlet end of the water pump (302), the connecting pipe (304) is fixedly installed on the water outlet end of the water pump (302), the annular pipe (305) is fixedly installed in the condensing cylinder (2), the water outlet pipe (306) is fixedly installed on the surface of the condensing cylinder (2), the heat conduction rod (307) is fixedly installed in the condensing cylinder (2), the air inlet pipe (308) is fixedly installed on the bottom of the condensing cylinder (2), the air inlet hole (309) is arranged in the heat conduction rod (307), and the air outlet hole (310) is arranged in the heat conduction rod (307).

2. The condenser with refrigeration function according to claim 1, characterized in that: The connecting pipe (304) and the annular pipe (305) are fixedly connected.

3. The condenser with refrigeration function according to claim 1, characterized in that: The bottom of the annular pipe (305) is circularly and arrayedly provided with water outlet nozzles, and the water outlet nozzles are correspondingly arranged with the condensing pipe (4).

4. The condenser having a refrigeration function according to claim 1, characterized in that: The condensing pipe (4) is communicated with the liquid inlet pipe (5) and the liquid outlet pipe (6).

5. The condenser having a refrigeration function according to claim 1, characterized in that: The air inlet pipe (308) is communicated with the air inlet hole (309).

6. The condenser having a refrigeration function according to claim 1, characterized in that: The air outlet hole (310) is circularly and arrayedly arranged in the heat conduction rod (307), the air inlet hole (309) is communicated with the air outlet hole (310), and the bottom of the condensing cylinder (2) is provided with a slot matched with the air outlet hole (310).

7. The condenser having a refrigeration function according to claim 1, characterized in that: The condensing pipe (4) is attached to the surface of the heat conduction rod (307).