Compact folding high-efficiency energy-saving condenser
By introducing a combination design of heat sinks, fan blades, spiral baffles and cooling pipes into the condenser, the problem of traditional condenser heat dissipation being affected by the environment is solved, achieving a highly efficient and energy-saving heat exchange effect and ensuring stable equipment operation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGSU MAVEN TECH CO LTD
- Filing Date
- 2025-07-22
- Publication Date
- 2026-07-21
AI Technical Summary
Traditional condenser heat dissipation methods are greatly affected by the environment, leading to decreased heat dissipation efficiency and affecting equipment performance and stability.
It uses heat sinks and fan blades together, combined with spiral baffles and cooling pipe structure, to enhance heat dissipation capacity and fluid turbulence, improve heat exchange efficiency, and facilitate cleaning and adjustment through detachable design.
It achieves efficient heat dissipation in a limited space, improves the efficiency and reliability of the refrigeration system, and avoids performance degradation and refrigerant leakage caused by overheating.
Smart Images

Figure CN224534539U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of heat exchange technology, specifically a compact baffled high-efficiency energy-saving condenser. Background Technology
[0002] Heat exchange equipment plays a vital role in many industrial and civilian sectors, such as refrigeration, air conditioning, chemical industry, and power. With the rapid development of various industries, increasingly higher requirements are being placed on the performance of condensers, requiring them to achieve higher heat exchange efficiency within a limited space to meet the development trend of system compactness and high efficiency.
[0003] Traditional condensers dissipate heat mainly through two methods: air cooling and water cooling. Both of these methods rely on a large amount of air or water and are greatly affected by the environment. Poor environmental conditions can reduce heat dissipation efficiency, and problems with the heat dissipation medium can lead to a decrease in heat dissipation efficiency, which in turn affects the overall performance and stability of the equipment.
[0004] Therefore, this utility model provides a compact, baffled, high-efficiency, and energy-saving condenser. Utility Model Content
[0005] To overcome the shortcomings of existing technologies and solve at least one of the problems mentioned in the background art, a compact baffled high-efficiency energy-saving condenser is proposed.
[0006] The technical solution adopted by this utility model to solve its technical problem is as follows: A compact, baffled, high-efficiency, energy-saving condenser of this utility model includes a shell. A water inlet is provided on the side wall of the shell, and a water outlet is provided on the side wall of the shell near the water inlet. A refrigerant inlet is provided in the middle of the shell, and a refrigerant outlet is provided in the middle of the shell away from the refrigerant inlet. A first fixing block is fixedly connected to the middle of the shell near the first fixing ring. Two symmetrically arranged first fixing frames are fixedly connected to the middle of the first fixing block. A second fixing frame is fixedly connected to the middle of the first fixing frame. A motor is fixedly connected to the top of the second fixing frame. A rotating shaft is rotatably connected to the output end of the motor. Multiple equidistantly distributed fan blades are fixedly connected to the middle of the rotating shaft. A flow guide is fixed to the bottom of the second fixed frame near the fan blades. A heat sink is fixed to the middle of the first fixed block near the first fixed frame. A safety valve port is opened in the middle of the housing away from the water outlet. A fixing component is installed in the middle of the housing. A spiral baffle is fixed to the middle of the fixing component. Multiple heat exchange tubes distributed at equal intervals are detachably connected to the middle of the spiral baffle. Through the above structure, the combined use of the heat sink and the fan blades greatly enhances the heat dissipation capacity of the heat sink, which can quickly and effectively dissipate the heat generated by the device during operation. Timely heat dissipation is more conducive to the heat exchange process inside the device, preventing the device from degrading due to overheating, ensuring its stable operation, and improving the efficiency and reliability of the entire refrigeration system.
[0007] Preferably, a support plate is fixedly connected to the end of the housing away from the water inlet, a liquid storage tank is fixedly connected to the top of the support plate, a connecting pipe is fixedly connected to the top of the liquid storage tank, a cooling sleeve is fixedly connected to the middle of the housing near the first fixing block, a plurality of equally spaced cooling pipes are fixedly connected to the middle of the cooling sleeve, and the end of the connecting pipe away from the liquid storage tank is fixedly connected to the cooling pipes. With the above structure, the combined use of heat sink and cooling pipes can greatly improve heat dissipation efficiency, and can dissipate the heat generated by the device more quickly and effectively, ensuring the cooling effect of the device and avoiding problems such as excessive pressure and refrigerant leakage caused by overheating of the device.
[0008] Preferably, the fixing component includes a first fixing ring, and the middle of the housing has a plurality of first sliding grooves that are equidistantly distributed. Two first fixing rings that are symmetrically arranged are slidably connected in the middle of the first sliding grooves. A plurality of sliding rods that are equidistantly distributed are fixed in the middle of the first fixing rings. The sliding rods are used in conjunction with the spiral baffle. With the above structure, the spiral baffle can enhance the degree of fluid turbulence compared with the traditional straight baffle, thereby improving the heat transfer coefficient and effectively improving the heat exchange efficiency of the condenser. The sliding design of the first fixing ring makes the disassembly of the spiral baffle very convenient. It can be removed simply by sliding the first fixing ring. Moreover, it can be easily adjusted and replaced when facing different working conditions and needs, improving the versatility and adaptability of the device.
[0009] Preferably, the first fixing ring has two sets of symmetrically arranged second sliding grooves in the middle, the second fixing ring is slidably connected to the middle of the second sliding groove, and multiple equidistantly distributed third fixing rings are fixed to the middle of the second fixing ring and used in conjunction with the heat exchange tube. With the above structure, when cleaning the heat exchange tube, it is not necessary to disassemble and install the heat exchange tube one by one, so as to carry out a comprehensive and thorough cleaning of the heat exchange tube and ensure the heat exchange effect.
[0010] Preferably, a second fixing block is fixedly connected to the middle of the housing near the slider, and two sets of symmetrically arranged telescopic rods are fixedly connected to the middle of the second fixing block. Telescopic wheels are fixedly connected to the output ends of the telescopic rods. Through this structure, the telescopic wheels can be extended or retracted at any time according to actual needs, facilitating convenient and quick movement of the device and adapting it to various working scenarios.
[0011] Preferably, a support frame is detachably connected to the middle of the slider, and a plurality of equally spaced fixing bolts are detachably connected to the middle of the support frame and pass through the support frame. Through the above structure, the weight of the device can be transferred to the ground, effectively dispersing the pressure brought by the weight of the device and ensuring the stability of the device during operation.
[0012] The beneficial effects of this utility model are as follows:
[0013] 1. The compact baffled high-efficiency energy-saving condenser described in this utility model greatly enhances the heat dissipation capacity of the heat sink by using heat sinks and fan blades in combination. It can quickly and effectively dissipate the heat generated by the device during operation. Timely heat dissipation is more conducive to the heat exchange process inside the device, prevents the device from degrading due to overheating, ensures its stable operation, and improves the efficiency and reliability of the entire refrigeration system.
[0014] 2. The compact baffled high-efficiency energy-saving condenser described in this utility model can greatly improve heat dissipation efficiency by using heat sinks and cooling pipes in combination. It can dissipate the heat generated by the device more quickly and effectively, ensure the cooling effect of the device, and avoid problems such as excessive pressure and refrigerant leakage caused by overheating of the device. Attached Figure Description
[0015] The present invention will be further described below with reference to the accompanying drawings.
[0016] Figure 1 This is a perspective view of the present invention;
[0017] Figure 2 This is a schematic diagram of the structure of the spiral baffle plate and the heat exchange tube in this utility model;
[0018] Figure 3 This is a schematic diagram of the structure of the connecting pipe and the cooling pipe in this utility model;
[0019] Figure 4 This is a schematic diagram of the structure of the support frame and the fixing bolt in this utility model;
[0020] Legend:
[0021] 1. Shell; 11. Inlet; 12. Outlet; 13. Refrigerant Inlet; 14. Safety Valve Port; 15. First Fixing Frame; 16. Slider; 17. First Fixing Block; 18. Heat Sink; 19. Motor; 110. Second Fixing Frame; 111. Flow Guide; 112. Fan Blade; 113. Rotating Shaft; 114. Spiral Baffle; 115. Heat Exchanger Tube; 116. Refrigerant Outlet; 2. Liquid Storage Tank; 21. Connecting Pipe; 22. Support Plate; 23. Cooling Pipe; 24. Cooling Jacket; 3. First Fixing Ring; 31. Sliding Rod; 32. First Sliding Groove; 4. Second Sliding Groove; 41. Second Fixing Ring; 42. Third Fixing Ring; 5. Second Fixing Block; 51. Telescopic Wheel; 6. Support Frame; 61. Fixing Bolt; 7. Shock Absorbing Pad. Detailed Implementation
[0022] 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 skilled in the art without creative effort are within the protection scope of the present utility model.
[0023] Specific implementation examples are given below.
[0024] like Figures 1 to 4 As shown, a compact, baffled, high-efficiency, energy-saving condenser according to an embodiment of this utility model includes a shell 1. A water inlet 11 is provided on the side wall of the shell 1, and a water outlet 12 is provided on the side wall of the shell 1 near the water inlet 11. A refrigerant inlet 13 is provided in the middle of the shell 1, and a refrigerant outlet 116 is provided in the middle of the shell 1 away from the refrigerant inlet 13. A first fixing block 17 is fixedly connected to the middle of the shell 1 near the first fixing ring 3. Two symmetrically arranged first fixing brackets 15 are fixedly connected to the middle of the first fixing block 17. A second fixed bracket 110 is connected, and a motor 19 is fixedly connected to the top of the second fixed bracket 110. The output end of the motor 19 is rotatably connected to a rotating shaft 113. Multiple fan blades 112, which are evenly distributed, are fixedly connected to the middle of the rotating shaft 113. A flow guide shroud 111 is fixedly connected to the bottom of the second fixed bracket 110 near the fan blades 112. A heat sink 18 is fixedly connected to the middle of the first fixed block 17 near the middle of the first fixed bracket 15. A safety valve port 14 is opened in the middle of the housing 1 away from the water outlet 12. A fixing component is installed in the middle of the housing 1. A spiral baffle 114 is connected, and multiple heat exchange tubes 115 distributed at equal intervals are detachably connected to the middle of the spiral baffle 114. During operation, refrigerant enters the housing 1 through the refrigerant inlet 13, while chilled water flows in from the water inlet 11. At this time, the refrigerant and chilled water exchange heat through the heat exchange tubes 115. The exchanged refrigerant flows out from the water outlet 12. During the heat exchange process, the heat sink 18 increases the contact area between the device and the air. The motor 19 drives the rotating shaft 113 to rotate, synchronously driving the fan blades 112 to rotate. The airflow around the heat sink 18 can be accelerated, allowing the air to carry away the heat from the heat sink 18 more quickly, improving its heat exchange efficiency and overall performance. Through the above structure, the combined use of the heat sink 18 and the fan blade 112 greatly enhances the heat dissipation capacity of the heat sink 18, which can quickly and effectively dissipate the heat generated by the device during operation. Timely heat dissipation is more conducive to the heat exchange process inside the device, preventing the device from degrading due to overheating, ensuring its stable operation, and improving the efficiency and reliability of the entire refrigeration system.
[0025] like Figures 1 to 3As shown, a support plate 22 is fixedly connected to the end of the housing 1 away from the water inlet 11. A liquid storage tank 2 is fixedly connected to the top of the support plate 22. A connecting pipe 21 is fixedly connected to the top of the liquid storage tank 2. A cooling jacket 24 is fixedly connected to the middle of the housing 1 near the first fixed block 17. Multiple cooling pipes 23 are fixedly connected to the middle of the cooling jacket 24 at equal intervals. The end of the connecting pipe 21 away from the liquid storage tank 2 is fixedly connected to the cooling pipes 23. During operation, the pressure pump in the middle of the liquid storage tank 2 can be activated. The pressure pump can flow the coolant stored in the middle of the liquid storage tank 2 through the connecting pipe 21 to the middle of the cooling pipes 23. At this time, the coolant flows in the cooling pipes 23, which can absorb the heat generated by the device and the heat sink 18 and reduce the temperature of the device and the heat sink 18. Through the above structure, the combined use of the heat sink 18 and the cooling pipes 23 can greatly improve the heat dissipation efficiency, and can dissipate the heat generated by the device more quickly and effectively, ensuring the cooling effect of the device and avoiding problems such as excessive pressure and refrigerant leakage caused by overheating of the device.
[0026] like Figure 2 As shown, the fixing assembly includes a first fixing ring 3. Multiple equidistant first sliding grooves 32 are provided in the middle of the housing 1. Two symmetrically arranged first fixing rings 3 are slidably connected in the middle of the first sliding grooves 32. Multiple equidistant sliding rods 31 are fixed to the middle of the first fixing rings 3. The sliding rods 31 cooperate with the spiral baffle 114. During operation, the spiral baffle 114 allows the refrigerant and chilled water inside the device to flow in a spiral path, thereby improving heat exchange efficiency. The first fixing rings 3 are installed at both ends of the spiral baffle 114 and can slide in the middle of the housing 1. When it is necessary to adjust the spiral baffle... When disassembling and cleaning the spiral baffle 114, the first fixing ring 3 along with the spiral baffle 114 can be directly pulled out for easy cleaning. Through the above structure, the spiral baffle 114 can enhance the turbulence of the fluid compared with the traditional straight baffle, thereby improving the heat transfer coefficient and effectively improving the heat exchange efficiency of the condenser. The sliding design of the first fixing ring 3 makes the disassembly of the spiral baffle 114 very convenient. It can be removed simply by sliding the first fixing ring 3. Moreover, it can be easily adjusted and replaced when facing different working conditions and needs, improving the versatility and adaptability of the device.
[0027] like Figure 2As shown, the first fixing ring 3 has two sets of symmetrically arranged second sliding grooves 4 in the middle. The second fixing ring 41 is slidably connected to the middle of the second sliding groove 4. Multiple third fixing rings 42 are fixedly connected to the middle of the second fixing ring 41 and are used in conjunction with the heat exchange tube 115. During operation, multiple third fixing rings 42 are installed in the middle of the heat exchange tube 115 and connected by connecting blocks to form a large fixing ring, which fixes multiple heat exchange tubes 115 in specific positions and spacings. Even during the cleaning process of the middle of the heat exchange tube 115, the second fixing ring 41 can continue to constrain the heat exchange tube 115, so that the heat exchange tube 115 will not fall or deform due to loss of support. With the above structure, when cleaning the heat exchange tube 115, it is not necessary to disassemble and install the heat exchange tube 115 one by one, so that the heat exchange tube 115 can be thoroughly cleaned, ensuring the heat exchange effect.
[0028] like Figure 4 As shown, a second fixing block 5 is fixedly connected to the middle of the housing 1 near the slider 16. Two sets of symmetrically arranged telescopic rods are fixedly connected to the middle of the second fixing block 5. Telescopic wheels 51 are fixedly connected to the output ends of the telescopic rods. During operation, if it is necessary to move the device, the telescopic wheels 51 can be extended downwards using the telescopic rods installed at the bottom of the second fixing block 5 and adjusted to contact the ground, thus realizing the movable state of the device. Through the above structure, the telescopic wheels 51 can be extended or retracted at any time according to actual needs, which can conveniently and quickly realize the movement of the device and make the equipment adaptable to various working scenarios.
[0029] like Figure 4 As shown, a support frame 6 is detachably connected to the middle of the slider 16. A plurality of equally spaced fixing bolts 61 are detachably connected to the middle of the support frame 6 and pass through the support frame 6. During operation, the support frame 6 can be fixed to the middle of the slider 16 using the fixing bolts 61. At this time, the bottom of the support frame 6 is in contact with the ground, forming a stable support structure. Through the above structure, the weight of the device can be transferred to the ground, effectively dispersing the pressure brought by the weight of the device and ensuring the stability of the device during operation.
[0030] like Figure 4 As shown, a shock-absorbing pad 7 is fixed to the bottom of the support frame 6. The shock-absorbing pad 7 is made of rubber. During operation, it can effectively absorb and buffer the vibration energy generated by the device during operation, preventing problems such as loosening or damage of vibrating parts. Through the above structure, the shock-absorbing pad 7 can maintain a good shock absorption effect under different pressures and vibration frequencies, enabling the device to adapt to the operating needs under various working conditions.
[0031] During operation, refrigerant enters the housing 1 through refrigerant inlet 13, while chilled water flows in from inlet 11. The refrigerant and chilled water exchange heat through heat exchange tube 115. The exchanged refrigerant then flows out from outlet 12. During this heat exchange process, the heat sink 18 increases the contact area between the device and the air. The motor 19 drives the shaft 113 to rotate, simultaneously rotating the fan blades 112. This rotation accelerates the airflow around the heat sink 18, allowing the air to carry away heat from the heat sink 18 more quickly, thus improving its heat dissipation capacity. To improve heat exchange efficiency and overall performance, during equipment operation, the pressure pump in the middle of the storage tank 2 can be activated. The pressure pump can flow the coolant stored in the middle of the storage tank 2 through the connecting pipe 21 to the middle of the cooling pipe 23. At this time, the coolant flows in the cooling pipe 23, which can absorb the heat generated by the device and the heat sink 18, and reduce the temperature of the device and the heat sink 18. The spiral baffle 114 allows the refrigerant and chilled water inside the device to flow in a spiral path, thereby improving the heat exchange efficiency. The first fixing ring 3 is installed on the spiral baffle 114. The first fixing ring 3, along with the spiral baffle 114, can slide in the middle of the shell 1 when the spiral baffle 114 needs to be disassembled and cleaned. This makes it easy to clean. Multiple third fixing rings 42 are installed in the middle of the heat exchange tube 115 and connected by connecting blocks to form a large fixing ring. This ring fixes the multiple heat exchange tubes 115 in specific positions and spacings. Even during the cleaning of the middle of the heat exchange tube 115, the second fixing ring 41 can continue to constrain the heat exchange tube 115, preventing it from falling or deforming due to loss of support. If the device needs to be moved, the telescopic rod installed at the bottom of the second fixing block 5 can be used to extend the telescopic wheel 51 downwards and adjust it to contact the ground, thus enabling the device to move. During operation, the support frame 6 can be fixed in the middle of the slider 16 using the fixing bolt 61. At this time, the bottom of the support frame 6 contacts the ground, forming a stable support structure that can effectively absorb and buffer the vibration energy generated during operation, preventing problems such as loosening or damage of vibrating components.
[0032] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A compact, baffled, high-efficiency, energy-saving condenser, comprising a shell (1), characterized in that: The shell (1) has a water inlet (11) on its side wall, a water outlet (12) on its side wall near the water inlet (11), a refrigerant inlet (13) in the middle of the shell (1), and a refrigerant outlet (116) in the middle of the shell (1) away from the refrigerant inlet (13). A first fixing block (17) is fixed to the middle of the shell (1) near the first fixing ring (3). Two symmetrically arranged first fixing frames (15) are fixed to the middle of the first fixing block (17). A second fixing frame (110) is fixed to the middle of the first fixing frame (15). A motor (19) is fixed to the top of the second fixing frame (110). The output end of 19) is rotatably connected to a rotating shaft (113). Multiple fan blades (112) are fixedly connected to the middle of the rotating shaft (113). A flow guide (111) is fixedly connected to the bottom of the second fixed frame (110) near the fan blades (112). A heat sink (18) is fixedly connected to the middle of the first fixed block (17) near the first fixed frame (15). A safety valve port (14) is opened in the middle of the housing (1) away from the water outlet (12). A fixing component is installed in the middle of the housing (1). A spiral baffle (114) is fixedly connected to the middle of the fixing component. Multiple heat exchange tubes (115) are detachably connected to the middle of the spiral baffle (114).
2. The compact baffled high-efficiency energy-saving condenser according to claim 1, characterized in that: A support plate (22) is fixed to the end of the housing (1) away from the water inlet (11). A liquid storage tank (2) is fixed to the top of the support plate (22). A connecting pipe (21) is fixed to the top of the liquid storage tank (2). A cooling sleeve (24) is fixed to the middle of the housing (1) near the first fixing block (17). A plurality of cooling pipes (23) are fixed to the middle of the cooling sleeve (24). The end of the connecting pipe (21) away from the liquid storage tank (2) is fixed to the cooling pipes (23).
3. A compact, baffled, high-efficiency, energy-saving condenser according to claim 2, characterized in that: The fixing component includes a first fixing ring (3), and a plurality of first sliding grooves (32) are provided in the middle of the housing (1) in which they are equally distributed. Two first fixing rings (3) are slidably connected in the middle of the first sliding grooves (32), and a plurality of sliding rods (31) are fixed in the middle of the first fixing rings (3) in which they are equally distributed. The sliding rods (31) are used in conjunction with the spiral baffle (114).
4. A compact, baffled, high-efficiency, energy-saving condenser according to claim 3, characterized in that: The first fixing ring (3) has two sets of symmetrically arranged second sliding grooves (4) in the middle. The second fixing ring (41) is slidably connected to the middle of the second sliding groove (4). The second fixing ring (41) has multiple equidistantly distributed third fixing rings (42) fixed to the middle of the second fixing ring (41) and is used in conjunction with the heat exchange tube (115).
5. A compact, baffled, high-efficiency, energy-saving condenser according to claim 4, characterized in that: The housing (1) is fixed to the middle of the slider (16) with a second fixing block (5), and the middle of the second fixing block (5) is fixed with two sets of telescopic rods arranged symmetrically, and the output end of the telescopic rod is fixed with a telescopic wheel (51).
6. A compact, baffled, high-efficiency, energy-saving condenser according to claim 5, characterized in that: The middle part of the slider (16) is detachably connected to a support frame (6), and the middle part of the support frame (6) is detachably connected to a plurality of equally spaced fixing bolts (61) that penetrate the support frame (6).
7. A compact, baffled, high-efficiency, energy-saving condenser according to claim 6, characterized in that: The bottom of the support frame (6) is fixed with a shock-absorbing pad (7), which is made of rubber.