Intelligent air conditioner heat exchange device with efficient heat recovery function
By designing heat recovery components and water circulation structures in the air conditioning system, the residence time of gaseous Freon is extended, solving the problem of short residence time of gaseous Freon and achieving more efficient heat absorption and improved energy efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-07
- Publication Date
- 2026-04-14
AI Technical Summary
In existing air conditioning systems, gaseous Freon has a short residence time in the condenser, resulting in insufficient heat absorption and utilization, which affects the overall system's heat recovery efficiency and energy efficiency ratio.
Design an intelligent air conditioning heat exchange device that includes a heat recovery component. The device absorbs heat from gaseous Freon through water circulation, increasing its residence time. The residence time of gaseous Freon in the device is extended by using a U-shaped circulating water pipe and an isolation cylinder structure.
This improves heat recovery efficiency, ensuring that more heat is effectively removed and enhancing the system's energy efficiency ratio.
Smart Images

Figure CN224121380U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of air conditioning technology, and in particular to an intelligent air conditioning heat exchange device with high-efficiency heat recovery. Background Technology
[0002] With the continuous development of modern refrigeration and air conditioning technology, improving energy efficiency and reducing environmental impact have become key issues in the industry. As a traditional refrigerant, gaseous Freon plays an important role in transferring heat in air conditioning systems. Although existing air conditioning systems can cool and liquefy gaseous Freon through the condenser during operation, the residence time of gaseous Freon in the condenser is often short, resulting in insufficient heat absorption and utilization, which affects the overall system's heat recovery efficiency and energy efficiency ratio.
[0003] Therefore, it is necessary to design an intelligent air conditioning heat exchange device that can increase the residence time of gaseous Freon while absorbing heat from gaseous Freon through water circulation, ensuring that more heat is effectively removed and improving heat recovery efficiency. Utility Model Content
[0004] To overcome the shortcomings of existing air conditioning systems where the residence time of gaseous Freon in the condenser is short during operation, resulting in insufficient heat absorption and utilization and thus affecting the overall system's heat recovery efficiency and energy efficiency ratio, this invention provides an intelligent air conditioning heat exchange device that can increase the residence time of gaseous Freon while absorbing heat from it through water circulation, ensuring that more heat is effectively removed and improving heat recovery efficiency.
[0005] The technical solution is as follows: A high-efficiency heat recovery intelligent air conditioning heat exchange device includes a base frame, an outer cylinder and a heat recovery component. The outer cylinder is connected to the front of the base frame, and the heat recovery component is provided on the outer cylinder to increase the residence time of gaseous Freon.
[0006] Preferably, the heat recovery assembly includes a circulating water pipe, a first isolation cylinder, a second isolation cylinder, and a sealing partition. The circulating water pipe is connected inside the outer cylinder, and the first isolation cylinder is connected to the inner sides of both the left and right sides of the outer cylinder. A sealing partition is connected between the first isolation cylinders, and the second isolation cylinder is connected to the middle of the sealing partition. The second isolation cylinder is connected to the outer cylinder, and the first isolation cylinder is located outside the second isolation cylinder.
[0007] Preferably, the circulating water pipe has a U-shaped structure.
[0008] Preferably, the system also includes a motor, a two-way lead screw, and hooks. The motor is connected to the upper right side of the base frame, and the two-way lead screw is connected to the motor output shaft. The two-way lead screw is rotatably connected to the base frame. Hooks are threadedly connected to both the left and right sides of the two-way lead screw, and the hooks are slidably connected to the base frame.
[0009] Preferably, it also includes thermal insulation cotton, with thermal insulation cotton connected to the inner side of the outer cylinder, and the thermal insulation cotton is connected to the sealing partition.
[0010] Preferably, it also includes an air inlet pipe and an air outlet pipe, with an air inlet pipe connected between the outer cylinder and the upper right part of the insulation cotton, and an air outlet pipe connected between the outer cylinder and the lower left part of the insulation cotton.
[0011] This invention has the following advantages: In this invention, the gaseous Freon passes through the first isolation cylinder on the right and then enters the second isolation cylinder, and then passes through the first isolation cylinder on the left and enters the left area of the outer cylinder. The heat on the gaseous Freon is absorbed by the water in the circulating water pipe, which achieves the effect of increasing the residence time of the gaseous Freon while absorbing the heat of the gaseous Freon through water circulation, ensuring that more heat is effectively removed and improving the heat recovery efficiency. Attached Figure Description
[0012] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0013] Figure 2 This is a three-dimensional structural diagram of the motor and bidirectional lead screw components of this utility model.
[0014] Figure 3 This is a cross-sectional three-dimensional structural diagram of the circulating water pipe and the first isolation cylinder of this utility model.
[0015] Figure 4 This is a three-dimensional structural diagram of the first and second isolation cylinders and other components of this utility model.
[0016] Explanation of reference numerals in the attached drawings: 1_base frame, 2_motor, 3_double-acting lead screw, 4_hook, 5_outer cylinder, 6_insulation cotton, 7_air inlet pipe, 8_air outlet pipe, 9_circulating water pipe, 10_first isolation cylinder, 11_second isolation cylinder, 12_sealing partition. Detailed Implementation
[0017] The following description is only a preferred embodiment of the present invention and does not limit the scope of protection of the present invention.
[0018] A high-efficiency heat recovery intelligent air conditioning heat exchange device, such as Figures 1-4As shown, the system includes a base frame 1, a motor 2, a bidirectional lead screw 3, hooks 4, an outer cylinder 5, insulation cotton 6, an air inlet pipe 7, an air outlet pipe 8, and a heat recovery assembly. The motor 2 is connected to the upper right side of the base frame 1. The bidirectional lead screw 3 is connected to the output shaft of the motor 2 and is rotatably connected to the base frame 1. Hooks 4 are threadedly connected to both sides of the bidirectional lead screw 3, and both hooks 4 are slidably connected to the base frame 1. The outer cylinder 5 is connected to the front of the base frame 1. Insulation cotton 6 is connected to the inside of the outer cylinder 5. An air inlet pipe 7 is connected between the upper right side of the outer cylinder 5 and the insulation cotton 6, and an air outlet pipe 8 is connected between the lower left side of the outer cylinder 5 and the insulation cotton 6. The outer cylinder 5 is equipped with a heat recovery assembly, which includes a circulating water pipe 9, a first isolation cylinder 10, a second isolation cylinder 11, and a sealing partition 12. The circulating water pipe 9 is connected inside the outer cylinder 5. The circulating water pipe 9 has a U-shaped structure to facilitate increasing the residence time of water in the circulating water pipe 9. The inner sides of the left and right sides of the outer cylinder 5 are connected to the first isolation cylinder 10. The sealing partition 12 is connected between the first isolation cylinders 10. The heat insulation cotton 6 is connected to the sealing partition 12. The second isolation cylinder 11 is connected to the middle of the sealing partition 12. The second isolation cylinder 11 is connected to the outer cylinder 5. The first isolation cylinders 10 are all located outside the second isolation cylinder 11.
[0019] When using this device, first place the base frame 1 next to the outdoor unit of the air conditioner, then start the motor 2 to drive the double-acting screw 3 to rotate, causing the hook 4 to move under the action of the thread. After adjusting the hook 4 to a suitable position, hang the base frame 1 next to the outdoor unit of the air conditioner through the hook 4. Then connect it to the condenser pipe of the outdoor unit of the air conditioner through the inlet pipe 7. The gaseous refrigerant in the condenser pipe will enter the outer cylinder 5 through the inlet pipe 7 and be insulated by the insulation cotton 6. The gaseous refrigerant in the outer cylinder 5 will pass through the first isolation cylinder 10 on the right and then enter the second isolation cylinder 11. The Freon moves to the left along the second isolation cylinder 11 and enters the left area of the outer cylinder 5 through the first isolation cylinder 10 on the left. This causes the gaseous Freon to be discharged from the outlet pipe 8 and flow back to the condenser pipe of the outdoor unit of the air conditioner for liquefaction. During this process, the water in the circulating water pipe 9 absorbs the heat from the gaseous Freon. The circulating water pipe 9 has a U-shaped structure, which facilitates increasing the residence time of the water in the circulating water pipe 9. This increases the residence time of the gaseous Freon while absorbing the heat from the gaseous Freon through water circulation, ensuring that more heat is effectively removed and improving the heat recovery efficiency.
[0020] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made using the content of this utility model specification, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A high-efficiency heat recovery intelligent air conditioning heat exchange device, characterized in that, It includes a base frame (1), an outer cylinder (5) and a heat recovery assembly. The base frame (1) is connected to the front of the outer cylinder (5), and the outer cylinder (5) is equipped with a heat recovery assembly that can increase the residence time of gaseous Freon.
2. The intelligent air conditioning heat exchange device with high-efficiency heat recovery according to claim 1, characterized in that, The heat recovery assembly includes a circulating water pipe (9), a first isolation cylinder (10), a second isolation cylinder (11), and a sealing partition (12). The circulating water pipe (9) is connected inside the outer cylinder (5). The first isolation cylinder (10) is connected to the inner sides of both the left and right sides of the outer cylinder (5). The sealing partition (12) is connected between the first isolation cylinders (10). The second isolation cylinder (11) is connected to the middle of the sealing partition (12). The second isolation cylinder (11) is connected to the outer cylinder (5). The first isolation cylinders (10) are all located outside the second isolation cylinder (11).
3. The intelligent air conditioning heat exchange device with high-efficiency heat recovery according to claim 2, characterized in that, The circulating water pipe (9) has a U-shaped structure.
4. The intelligent air conditioning heat exchange device with high-efficiency heat recovery according to claim 1, characterized in that, It also includes a motor (2), a two-way lead screw (3) and a hook (4). The motor (2) is connected to the upper right side of the base frame (1). The two-way lead screw (3) is connected to the output shaft of the motor (2). The two-way lead screw (3) is rotatably connected to the base frame (1). The left and right sides of the two-way lead screw (3) are threadedly connected to hooks (4). The hooks (4) are slidably connected to the base frame (1).
5. The intelligent air conditioning heat exchange device with high-efficiency heat recovery according to claim 1, characterized in that, It also includes thermal insulation cotton (6), and the inner side of the outer cylinder (5) is connected with thermal insulation cotton (6), and the thermal insulation cotton (6) is connected to the sealing partition (12).
6. The intelligent air conditioning heat exchange device with high-efficiency heat recovery according to claim 5, characterized in that, It also includes an air inlet pipe (7) and an air outlet pipe (8). The air inlet pipe (7) is connected between the outer cylinder (5) and the upper right part of the insulation cotton (6), and the air outlet pipe (8) is connected between the outer cylinder (5) and the lower left part of the insulation cotton (6).